ENGINEERING

ENGINEERING

Level 1

EG 1008 - PRINCIPLES OF ELECTRONICS
Credit Points
15
Course Coordinator
Dr T Thevar

Pre-requisites

Higher Mathematics

Co-requisites

None

Overview

The aim of the course is to introduce basic concepts of electronics within a context of general engineering. The topics covered are kept at levels 1 and 2. A further aim of the course is to illustrate applications of the concepts discussed that are of interest to all students. It will adopt the philosophy of application oriented teaching. During each topic the students will be provided with examples of day-to-day devices that they will understand by the end of that topic. The theoretical aspects of the course are placed in an illustrative practical context.

The course includes atomic theory and the concept of current flow. The basic principles of electrical circuits are introduced. Ohm's law is applied to simple dc circuits. The origin of electronics is introduced through the concept of "black box" amplifiers and their application. Operational amplifier circuits and some applications are discussed and analysed. Logic gates, Boolean algebra, and logic design illustrate that application of digital electronics. Practical examples of digital circuit implementation are provided. The course also provides an overview of wave theory and propagation with emphasis on electronic communication. Finally an introduction to ac concepts is provided.

Structure

The course will consist of 30 one-hour lectures, 6 one-hour tutorials and 5 two-hour laboratory/design sessions. Detailed schedules are provided separately.

Assessment

1st Attempt: One written examination of three-hours duration (80%) and continuous assessment based on the laboratory/design exercises (20%).

Resit: One written examination of three-hours duration (80%), with previous coursework marks used to make up the remaining (20%).

Formative Assessment

Students will have their log book and lab reports assessed on several occasions during the half session, and these will be returned to them with markers' comments. There will also be opportunities for informal formative assessment and feedback in the weekly tutorial sessions.

Feedback

The return of marked coursework (log books and lab reports) will provide formal feedback to the students. Informal feedback will be provided during weekly tutorial sessions.

EG 1009 - FUNDAMENTALS OF ENGINEERING MATERIALS
Credit Points
15
Course Coordinator
Dr M Kashtalyan

Pre-requisites

None

Co-requisites

None

Overview

  • Introduction. Materials, processes and choice: a historical prospective. Overview of material properties – physical, mechanical, thermal, electrical, magnetic, optical, chemical – with examples of where these properties are important. (2 lectures)

  • Organising materials and processes. Classification of materials and its hierarchical structure. Overview of the main classes of materials: metals, ceramics, polymers, hybrids. Material property charts. Classification of processes and its hierarchical structure. Computer-aided information management for materials and processes using CES Edupack. Materials and processes in the context of design. Case studies. (4 lectures)

  • Physical properties. density and how it is measured. Relevance to engineering applications. Underpinning principles: atomic structure. Exploring density chart with CES Edupack. (1 lecture)

  • Mechanical properties: stiffness. Modes of loading. Engineering stress and strain. Stress-strain curve. Elastic deformation, Hooke’s law and elastic moduli. Young’s modulus and its measurement. Underpinning principles: atomic packing and bonding. Bonding and packing in metals. Important crystallographic structures: hpc, fcc, bcc. Atom packing in ceramics, glasses and polymers. Exploring the modulus-density and modulus-cost charts with CES Edupack. (7 lectures)

  • Mechanical properties: yield and tensile strengths. Ductility. Definitions and measurement. Hardness test. Underpinning principles: crystalline imperfections. Exploring the yield strength-density and modulus-yield strength charts with CES Edupack. (3 lectures)

  • Thermal properties of materials. Melting temperature, glass temperature, thermal expansion, thermal conduction, heat capacity. Exploiting thermal properties. Using materials at high temperatures. Temperature dependence of material properties. (3 lectures)

  • Processing of materials. Shaping, joining and surface treatment and their attributes. Exploring material-process compatibility with CES Edupack. Shaping processes for metals (sand, investment and die casting). Microstructure evolution in processing. Underpinning principles: phase diagrams and the solidification of alloys. Shaping processes for polymers (injection, blow and rotational moulding). Deformation processes: rolling, forging, extrusion, drawing. Underpinning principles: Annealing of metals. Powder methods. Underpinning principles: diffusion. Joining processes (adhesive bonding, mechanical fastening, soldering and welding). (8 lectures)

  • Materials, processes and the environment. Material consumption and its growth. The material life cycle. Criteria for life cycle assessment: embodied energy, process energy and end of life potential. Exploring charts for embodied energy with CES Edupack. Selecting materials for eco-design. (2 lectures)

Structure

The course will consist of 30 one-hour lectures, 6 tutorials and 5 two-hour laboratory sessions. Detailed schedules are provided separately.

Assessment

1st Attempt: One written examination of two- hours duration (80%) and continuous assessment based on the laboratory/design exercises (20%).

Resit: One written examination of two-hours duration (80%), with previous coursework marks used to make up the remaining (20%).

Formative Assessment

Students will have their log book and lab reports assessed on several occasions during the half session, and these will be returned to them with markers' comments. There will also be opportunities for informal formative assessment and feedback in the weekly tutorial sessions.

Feedback

The return of marked coursework (log books and lab reports) will provide formal feedback to the students. Informal feedback will be provided during weekly tutorial sessions.

EG 1010 - CAD AND COMMUNICATION IN ENGINEERING PRACTICE
Credit Points
15
Course Coordinator
Dr Hongyue Sun

Pre-requisites

None 

Co-requisites

None

Overview

1. Oral Presentation
Preparing oral presentation using different and appropriate formats and best practice in oral presentation; using Microsoft PowerPoint as an effective presentation tool; importing of data from other sources into MS PowerPoint.

2. Written Presentation
Devise and follow a standard format, style and structure for report writing; use Microsoft (MS) Word and the facilities for correcting grammar and spelling; Importing data from other sources into MS Word; use of MS Excel spreadsheets, LTSpice and other CAD software for solving engineering problems and for producing graphs; use the library and the internet website as information resource for written and oral presentations.

3. Ethics, Environment and Personal Development
Introduce plagiarism, copyright and intellectual property, and different referencing styles; gain knowledge of all work is carried out within the confines of plagiarism and copyright laws; an exercise on Famous engineer leading to a marked essay presentation; review of engineering events with environmental issues, personal development planning, and CV writing.

4. Introduction to CAD
Standards for engineering drawings include what a “standard” is and why it exists; interpreting engineering drawing; use of SolidWorks for 3D sketching and producing 3D objects and simple assemblies from a series of 3D objects; converting 3D drawings of objects and assemblies into first and third angle engineering drawings; enhancement of engineering drawings using sections and break outs.

Structure

The course will consist of 19 one-hour lectures and 19 three-hour practical classes. Detailed schedules are provided separately.

Assessment

1st Attempt: Continuous assessment (100%): Oral presentation (20%); Written reports (20%); Pictorial and engineering drawings (60%).

Re-sit: Students who No Paper any element of assessment will not be given resubmission opportunity and will be required to re-register for this course or its equivalent at the next available opportunity. All other students should be referred to the course coordinator for resubmission.

Formative Assessment

Students must participate in all continuously assessed work and submit their reports and engineering drawings for marking when required. There will be opportunities for informal formative assessment and informal feedback in the weekly tutorial/practical sessions.

Feedback

The return of marked coursework will provide formal feedback to the students.

EG 1011 - INTRODUCTORY MATHEMATICS
Credit Points
15
Course Coordinator
Dr Henry Tan

Pre-requisites

Higher Mathematics (Grade C).

Co-requisites

None

Overview

  • Algebra, geometry, trigonometry, exponentials and logarithms. Powers, laws of indices.

  • Co-ordinate geometry: Cartesian co-ordinates, equations of straight line and circle.

  • Parametric representation of curves. Trigonometry: circular function, identities.

  • Recurrence relations (the limit of the sequence resulting from a recurrence relation) Factor/Remainder Theorem and quadratic theory.

  • Vectors in three dimensions: Scalar multiple, position vector, unit vector, component. Vector addition and multiplication by a scalar. Scalar product. Determine the distance between two points in three dimensional space.

  • Basic differentiation: Introduction to the derivative. Slopes. Newton Quotient. Rate of change and velocity. Derivatives of elementary functions. Differentiable at a point. Differentiable over an interval. The derived function (terms rate of change, average gradient, strictly increasing, strictly decreasing, stationary point (value), maximum turning point (value), minimum turning point (value), point of inflexion, the chain rule, basic trigonometric functions. Higher derivatives.

  • Basic integration: Introduction to integration: Integral, integrate, constant of integration, definite integral, limits of integration, indefinite integral. Area under a curve. Integration of elementary functions. Evaluate definite integrals. Determine the area bounded by two curves. Application of integration to finding areas, volumes of revolution, lengths of paths, first moments of area and centres of gravity of uniform laminae.

Structure

2½ one-hour lectures, and 1 one-hour tutorial per week. 5 two-hour lab or problem-solving sessions.

Assessment

1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

Resit: 1 three-hour written examination (80%) and continuous assessment (20%).

Formative Assessment

Students will have their continuous assessment work returned to them with markers' comments. There will also be informal formative assessment and feedback in the weekly tutorial sessions.

Feedback

Feedback will be provided by the return of marked coursework, and informal feedback at weekly tutorial sessions.

EG 1501 - ELECTRONICS DESIGN
Credit Points
15
Course Coordinator
Dr D Hendry

Pre-requisites

EG 1008

Co-requisites

EG 1503

Overview

  • Charges, charge per unit length, area and volume, dimensional analysis, forces on charges, Coulomb’s law, Millikan’s experiment, electric field and its units, work on a charged particle, voltage and its relation to electric field. Voltages and electric fields at the surface of a conductor. The parallel plate capacitor, Q=CV, forces on parallel plates; Electrostatic energy; dielectrics; Capacitors as circuit components, ac impedance. The electrostatic loudspeaker. (5 lectures)

  • Magnetic fields, magnets and compasses; Magnetic field due to a current carrying conductor; Visualising magnetic fields; Forces on a current carrying conductor; simple DC electric motors; The Earth’s magnetic field; Magnetostatic energy; simple magnetic materials; the inductor, ac impedance the solenoid; the transformer . (7 lectures)

  • Semiconductor devices: semiconductors, dopants, p-type, n-type, the p-n junction and the diode equation; the photodiode, camera sensors, opto-isolator; the bipolar transistor and its circuit behaviour; the common emitter amplifier; FETs and the MOSFET, simple logic circuits (inverter, NAND, NOR); the Thyristor and the Triac. (8 lectures)

  • The SPICE circuit simulator; entering a simple circuit; types of analyses; (3 lectures)

  • Circuit theory: Kirchoff’s laws and examples of their application; Thevenin and a better common emitter amp; Norton; Applications to operational amplifier circuits; Differentiating circuits, integrating circuits. (5 lectures)

  • The light shield design example, use of a photodiode to detect incoming light as a means of protecting a “priceless artefact” using a solenoid and mechanical slotted device. (2 lectures)

Structure

30 one-hour lectures, 12 one-hour tutorials and 5 two-hour laboratory/design sessions.  Detailed schedules are provided separately.

Assessment

1st Attempt: 1 three-hour written examination (80%) and continuous assessment based on laboratory/design exercises (20%).

Resit: 1 three-hour written examination (80%) and continuous assessment based on laboratory/design exercises (20%).

Formative Assessment

Students will have their log book and lab reports assessed on several occasions during the half session, and these will be returned to them with markers' comments. There will also be opportunities for informal formative assessment and feedback in the weekly tutorial sessions.

Feedback

The return of marked coursework (log books and lab reports) will provide formal feedback to the students. Informal feedback will be provided during weekly tutorial sessions.

EG 1502 - FUNDAMENTAL ENGINEERING MECHANICS
Credit Points
15
Course Coordinator
Dr P C Davidson

Pre-requisites

None

Co-requisites

None

Overview

1. Coordinate Systems, Newton’s Second and Third Laws, Static Equilibrium and Equations of Motion

  • Definition of Cartesian coordinate system for planar motion. Statement of equations of motion and static equilibrium

  • Definition of Polar coordinate system for planar motion. Statement of equations of motion and static equilibrium.


  • 2. Free Body Diagrams - Static Equilibrium
  • Beam

  • Truss structures

  • Gears, levers and pulleys


  • 3. Free Body Diagrams – Dynamic Equations of Motion
  • Accelerating car

  • Projectile including variable mass?

  • Spring mass damper system

  • Pendulum


  • 4. Definition of Stress and Strain
  • Definition of uniaxial stress and strain

  • Definition of shear stress and strain


  • 5. Loading of Beams
  • Shear Force Diagrams

  • Bending Moment Diagrams


  • 6. Trusses
  • Method of sections


  • 7. Work-Energy Methods
  • Free fall under gravity

  • Compression of a spring buffer


  • 8. Impulse Momentum Methods
  • Impact of rigid bodies
  • Structure

    The course will consist of 30 one-hour lectures, 12 one-hour tutorials and 5 two-hour laboratory/design sessions. Detailed schedules are provided separately.

    Assessment

    1st Attempt: 1 written examination of two hours duration (80%) and continuous assessment based on the laboratory/design exercises (20%).

    Resit: 1 written examination of three hours duration (80%), with previous coursework marks used to make up the remaining (20%).

    Formative Assessment

    Students will have their log book and lab reports assessed on several occasions during the half session, and these will be returned to them with markers' comments. There will also be opportunities for informal formative assessment and feedback in the weekly tutorial sessions.

    Feedback

    The return of marked coursework (log books and lab reports) will provide formal feedback to the students. Informal feedback will be provided during weekly tutorial sessions.

    EG 1503 - ENGINEERING MATHEMATICS 1
    Credit Points
    15
    Course Coordinator
    Dr Henry Tan

    Pre-requisites

    Higher Mathematics (Grade B)

    Co-requisites

    None

    Overview

    • Revision: Basic differentiation & Integration: Rules of differentiation - sum, product rule. Higher derivatives. Maxima & Minima: The idea and the basic tests, including 2nd derivative tests. Higher derivatives.

    • Differential calculus: Chain and quotient rule. The inverse trig functions arcsin, arccos, arctan and their derivatives. Log and exp. Properties and derivatives. Sinh, cosh & tanh.

    • Integral Calculus: Basic techniques: substitution, parts, partial fractions. Reduction formulae. Definite integrals. Definite integrals and applications of integration to finding areas, volumes of revolution, lengths of paths, first moments of area and centres of gravity of uniform laminae.

    • Complex Numbers: The arithmetic of complex numbers. Argand plane. Modulus, conjugate, argument etc. Polar form and de Moivre's theorem. Solution of zn = 1. Theory of equations: Roots and factors of polynomials. Multiple roots. Fundamental theorem of Algebra. Complex roots of real polynomials occur in conjugate pairs. The Fourier matrix and applications.

    • Matrices: Basic definition and notation (m x n). Algebra of matrices: multiplication by scalar, addition & subtraction, multiplication. Zero matrix, identity matrix, transpose, symmetric & anti- symmetric matrices. The meaning of matrix inversion. Inverse of 2x2 matrix. Determinants, with some work on row & column operations together with general expansion formula. Systems of linear equations. Geometrical interpretation. Discussion of various possibilities: unique solution, no solution, infinitely many solutions. Gaussian reduction: Solution of systems of linear equations by formal Gaussian reduction with partial pivoting down to upper triangular form followed by backsubstitution.

    Structure

    30 one-hour lectures, 1 one-hour tutorial per week and 5 two-hour problem solving sessions.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

    Resit: 1 three-hour written examination (80%) and continuous assessment (20%).

    Formative Assessment

    Students will have their continuous assessment work returned to them with markers' comments. There will also be informal formative assessment and feedback in the weekly tutorial sessions.

    Feedback

    Feedback will be provided by the return of marked coursework, and informal feedback at weekly tutorial sessions.

    Level 2

    EG 2001 - ENGINEERING MATHEMATICS 2
    Credit Points
    15
    Course Coordinator
    Dr Henry Tan

    Pre-requisites

    EG 1503, Engineering Mathematics 1

    Co-requisites

    None

    Overview

    Approximation & Taylor Series, Ordinary Differential Equations, Partial Differentiation, Fourier series, Fourier transforms, Laplace Transforms.

    Structure

    The course will consist of 30 one hour lectures and 12 one hour tutorials and 5 two-hour problem solving sessions.

    Assessment

    1st Attempt: One written examination of three hours duration (80%) and in-course assessment (20%).

    Resit: One written examination of three-hours duration (100%).

    Formative Assessment

    Formative assessment will be provided at problem solving sessions.

    Feedback

    Students will receive formative feedback through coursework assignments, and at problem solving sessions and tutorial classes. Feedback on summative assessment will be provided through marked coursework assignments.

    EG 2002 - PROCESS ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr Neill Renton

    Pre-requisites

    EG 1503

    Co-requisites

    None

    Overview

    Engineering processes take raw materials and covert them into useful products. The transfer of mass, energy, momentum and charge within an engineering system play an important role in how processes achieve this. Students will be introduced to the basic concepts involved in modelling engineering processes and the use of units and dimensional analysis. The use of energy and mass balances will then be covered, with simple shell balances developed into more complex process problems before introducing the general concepts of rate of transfer, driving force and resistance. The course then considers macroscopic and microscopic level transport for each of heat, mass, momentum, and charge in turn, with students gaining insights into the similarities and differences between the various transport phenomena. Within each section, students will examine the equations governing the transport process in question, link these to real physical mechanisms occurring, and then see how these are then applied to real engineering systems. The taught material is supported by a range of simulation, laboratory, and problem based learning exercises.

    Structure

    28 one-hour lectures, 6 one-hour tutorials and 3 three-hour practicals in total

    Assessment

    1st Attempt: 3hr written examination (80%); continuous assessment (20%).

    Resit: 3hr written examination (100%).

    Formative Assessment

    WebCT quiz each week; Reading groups; class presentations.

    Feedback

    Feedback provided through WebCt functionality (students will be able to track their progress); two class tests (which will be marked).

    EG 2003 - FLUID MECHANICS AND THERMODYNAMICS
    Credit Points
    15
    Course Coordinator
    Mrs N Nikora

    Pre-requisites

    N/A

    Co-requisites

    N/A

    Overview

    Fluid Mechanics
    1. Fluids and their properties. Fundamental concepts relating to fluids. Differences between solids and fluids.
    Pressure. Viscosity. Flow patterns, laminar and turbulent flows.
    (2 lectures)
    2. Hydrostatics: Pressure. Variation of pressure with position in a fluid. Measurement of pressure. Pressure forces on a
    plane surface. Centre of pressure. Pressure forces on a curved surface. Buoyancy forces. Stability of floating bodies.
    (4 lectures)
    3. Kinematics of fluid motion. Lagrangian and Eulerian description of fluid flow. Acceleration of a fluid particle. Variation of flow
    parameters in time and space. Laminar and turbulent flow. Discharge and mean velocity. Continuity equation.
    (1 lectures)
    4. Bernoulli?s Equation for Ideal and Incompressible Fluid and its Applications. Total head. Pitot tube. Venturi-meter. Orifice-
    plate flow measurement. Theory of small orifices discharging to atmosphere.
    (4 lectures)
    5. Steady Incompressible Flow in Pipelines. Head lost to friction in a pipe. Friction factor, Darcy?s equation. Dependence of
    friction factor on Reynolds number and relative roughness. Other head losses in pipes: pipe entrance, sudden
    contractions, gradual and sudden expansions, bends. Total head and pressure lines. Velocity and shear stress in a
    circular pipe.
    (3 lectures)

    Thermodynamics
    1. Preliminaries: definitions. The ideal gas laws. Scope of thermodynamics. Units. Joule's experiments. General statement of
    the First Law for a closed system. Application to the heating of water by stirring. Application to the Ideal gas, expansion and
    compression. Reversibility, with special reference to the Ideal gas. Application to compressors.
    (4 lectures)
    2. Definition of enthalpy. Heat released in constant volume and constant pressure processes. First Law to non-stationary
    processes - the steady flow equation. Application to turbines, boilers, condensers and compressors. Summary of
    applications of the First Law.
    (4 lectures)
    3. The function of state entropy. Inequality of Clausius. The Third Law. Third law entropies. Entropy changes in the expansion
    and compression of an ideal gas. Entropy changes in heating of substances. Use of tables of standard entropies. T-S
    diagrams. The Clausius-Clapeyron equation.
    (2 lectures)
    4. The use of steam tables. p-V and T-V diagrams for steam. The Phase Rule as it applies to steam. Saturated steam. The
    dryness fraction. Superheated steam. Throttling of steam.
    (3 lectures)
    5. Introduction to the cyclic heat power plants. Carnot cycle, as applied to saturated steam. Carnot efficiency. The Rankine
    scale of temperature. The Rankine cycle applied to saturated and superheated steam.
    (1 lecture - optional)

    Structure

    30 hours lecture, 5 hours tutorial, 10 hours practicals.

    Assessment

    1st Attempt: 1 three hour written examination (80%); continuous assessment (20%).

    Resit: 1 three hour written examination (100%).

    Formative Assessment

    N/A

    Feedback

    Feedback includes marking of log books of the lab exercises with feedback comments, discussion on issues/performance at tutorial sessions, and forward feedback on common mistakes from past exams.

    EG 2501 - DESIGN AND COMPUTING IN ENGINEERING PRACTICE
    Credit Points
    15
    Course Coordinator
    Dr Hongyue Sun

    Pre-requisites

    EG 1010

    Co-requisites

    None

    Overview

    1. Design and Solid Modelling
    Principles of product specification and engineering design process and procedures; product specification within the confines of customer requirement, fit-for-purpose, quality and cost effective production; further development of solid modelling and engineering drawing skills through hands-on experience of using SolidWorks for configurations and simple structural analysis, linear and geometrical tolerances, fasteners etc.; extended design exercise involving the use of SolidWorks to produce precise and accurate drawings from written specification taking account of the limitations of the manufacturing process.
    2. Ethics
    Development of an existing design using reverse engineering within the requirements of Copyright, patents and design protection laws; Professional Design Lectures by visiting speakers from industries.
    3. Workshop Practice
    Hands-on exercises covering five skills areas: Machining, Surveying, Electronics, and Metrology; learn manufacture of simple parts using variety of machine tools and joining processes.
    4. Computing
    Knowledge of MATLAB as engineering analysis tool is developed through lectures and practical sessions on: basic arithmetic, functions and data structures; graph plotting and interpretation; vectors and matrices; complex numbers; polynomials and the integration of functions. Applications are developed for simple mechanical design exercise using engineering problems using batch files and basic programming constructs including loops and conditional statements. Each group prepares a report of the outcome of this work.

    Structure

    The course will consist of 17 one-hour lectures and 22 three-hour Practical classes, in total. Detailed times are provided separately. Detailed schedules are provided separately.

    Assessment

    1st attempt: Continuous Assessment 100%: Design 50%, Practical 10% and Computing 40%

    Re-sit: Students who No Paper any element of assessment will not be given resubmission opportunity and will be required to re-register for this course or its equivalent at the next available opportunity. All other students should be referred to the course coordinator for resubmission.

    Formative Assessment

    Students must participate in all continuously assessed work and submit their reports and engineering drawings for marking when required. There will be opportunities for informal formative assessment and informal feedback in the weekly tutorial/practical sessions.

    Feedback

    The return of marked coursework will provide formal feedback to the students.

    EG 2502 - SOLIDS AND STRUCTURES
    Credit Points
    15
    Course Coordinator
    Dr O Menshykov

    Pre-requisites

    EG 1009, EG 1502

    Co-requisites

    None

    Overview

    Stress Analysis

    1. Review of definitions of normal and shear stress and strain; complementary nature of shear stresses; two-
    dimensional stress; shear and normal stress on oblique planes; principal stress; elastic stress-strain
    relation: Young?s modulus, Poisson?s ratio, and shear modulus; extensional stiffness; thermal strains and
    stresses. (3 lectures)

    2. Membrane stresses: Thin-walled circular cylindrical and spherical vessels subject to internal pressure. (1 lecture)

    3. Torsion and torsional shear stresses in solid and hollow circular sections. Polar second moment of area,
    angle of twist. Torsional stiffness. Transmission of power by circular shafts. Combined torsion and direct stress. (2 lectures)

    Mechanical Behaviour of Solids

    4. Significance of defects and stress concentration in engineering design; origin of notches, defects and cracks:
    sharp corners, surface roughness, joining defects, porosity, inclusion of foreign objects; stress concentration
    factor. (1 lecture)

    5. Introduction to brittle fracture: Strain energy, surface energy and theoretical strength of solids; fracture toughness
    parameter, Kc and its applications. (2 lectures)

    6. Enhancement of fracture toughness, strength and stiffness: reinforced concrete, toughened glass, composites -
    upper and lower bound estimates of modulus; cellular foams. (2 lectures)

    7. Introduction to fatigue: description of fatigue, its occurrence, S-N curves and design implications. (1 lecture)

    8. Non-destructive evaluation (NDE) of structures: Ultrasonic methods, magnetic particle inspection, dye penetrant,
    radiography, acoustic method; introduction to strain gauges. (2 lectures)

    Structural Analysis

    9. Theory of elastic bending of beams, distribution of bending stress and strain. Radius of curvature, second
    moments of area, parallel axis theorem, section modulus. (3 lectures)

    10. Deflection of beams using integration method; bending stiffness. (3 lectures)

    11. Combined bending and direct stresses. Middle third rule. (2 lectures)

    12. Buckling of ideal columns. Concept of effective length. (2 lectures)

    13. Virtual work. Deflections of trusses. (3 lectures)

    14. Shear stress distributions for rectangular and I-sections beams. (1 lecture)

    Design Applications

    15. Selection of material and shape for strength and stiffness limited designs; application of CES software. (2 lectures)

    Structure

    27 hours lecture, 6 hours tutorial, 6 hours practicals.

    Assessment

    1st Attempt: 1 three hour written examination (80%); continuous assessment (20%).

    Resit:1 three hour written examination (100%).

    Formative Assessment

    N/A

    Feedback

    Feedback includes marking of log books of the lab exercises with feedback comments, discussion on issues/performance at tutorial sessions, and forward feedback on common mistakes from past exams.

    EG 2503 - ELECTRICAL AND MECHANICAL SYSTEMS
    Credit Points
    15
    Course Coordinator
    Dr Majid Aleyaasin

    Pre-requisites

    EG 1008

    Co-requisites

    None

    Notes

    A-level or Advanced Higher physics are alternative pre-requisites

    Overview

    The course content shall be the following:

    1. Introduction to an electrical ? mechanical system, Introduction to phasors and AC circuit theory, Multi-element circuits,
    Resonance of three element AC circuits, Power factor correction of AC circuits

    2. Basic Electromagnetism, Electrical machines: transformers, basic electromechanics, shunt and separately excited DC
    generators, series and shunt DC motors, stepper motors

    3. Free vibration: Spring-mass-damper system from free body diagram to mathematical representation. Analogue of LCR
    circuit. Damping coefficient, logarithmic decrement. Forced vibration: Spring-mass-damper system from free body diagram
    to mathematical representation. Analogue of LCR circuit. Frequency response. Dynamic magnifier.

    Structure

    The course will consist of 30 one hour lectures , 10 one hour tutorials, and 5 two-hour laboratory/design sessions.
    (Timetable to be arranged)

    Assessment

    1st Attempt: One written examination of three hours duration (80%), continuous assessment based on the tutorials (10%), continuous assessment based on the laboratory /design exercises (10%). A minimum of CAS 6 will be required in each of these components.

    Resit: One written examination of three hours duration (100%).

    Formative Assessment

    Lectures will include PRS multiple choice questions on the material being delivered. Feedback will be given over the course of the lab exercises as to the presentation and content of the submissions.

    Feedback

    Marked tutorial submissions by allocated study groups will be returned to the students within one week. Students will assess each other's contribution within these groups. The lab exercise submissions will be discussed in small groups. Marked submissions will be returned to the students promptly. The PRS system provides instant feedback on classroom understanding of content.

    EG 2504 - ELECTRONIC SYSTEMS
    Credit Points
    15
    Course Coordinator
    Dr F Verdicchio

    Pre-requisites

    EG 1008, EG 1501.

    Co-requisites

    None.

    Notes

    A-level or Advanced Higher Physics are alternative pre-requisites.

    Overview

    The course content shall be the following:

    1. Review of digital electronics: comparison of digital and analogue systems.

    2. Sequential logic: synchronous logic; registers and shift registers. Examples of digital logic applications in an
      engineering context.

    3. Basic architecture of programmable systems; software versus hardware; Microcontrollers and embedded systems; Integrating components to form real-world systems. Computer Systems Software; High and low level languages; interpreters and compilers.

    4. Fundamentals of real-time systems; timers; serial interfacing; asynchronous serial I/O; characters, common formats
      (eg. GPS strings); parity; case study using ASCII I/O.

    Structure

    The course will consist of 30 one-hour lectures, 6 one-hour tutorials, and associated laboratory/design sessions. (Timetable to be arranged)

    Assessment

    1st Attempt: One written examination of three-hours duration (80%), continuous assessment based on the tutorials and laboratory /design exercises (20%). A minimum of CAS 6 will be required in each of these components.

    Resit: One written examination of three-hours duration (100%).

    Formative Assessment

    The course will include opportunities to assess individual progress with the concepts and material being delivered. Feedback will be given over the course of the lab exercises as to the presentation and content of the submissions.

    Feedback

    Marked submissions will be returned to the students promptly, including feedback on the laboratory exercises.

    Level 3

    EG 3006 - ENGINEERING ANALYSIS AND METHODS 1A
    Credit Points
    10
    Course Coordinator
    Dr Henry Tan

    Pre-requisites

    EG 2510 together with EG 1570, ES 1571 or ES 1971.

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course is set in an environment of engineering applications. The course starts with an introduction to graph theory which is applied to a range problems in engineering. Engineering applications of MATLAB and SIMULINK are then discussed. An introduction is given to the symbolic features provided by packages such as the MATLAB Symbolic Toolbox. The numerical solution of ordinary differential equations (ODEs) is discussed in the context of MATLAB. A study is made of partial differential equations (PDEs) important to engineering including Laplace's equation and the wave and diffusion equations; boundary conditions are stressed. The facilities provided by the MATLAB Partial Differential Equations Toolbox are discussed. Practical work involving the MATLAB applications mentioned above is undertaken. The remainder of the course is deboted to the study of vector calculus including surface and line integrals, scalar and vector fields and Gauss's divergence theorem.

    Structure

    2 one-hour lectures and 1 one-hour tutorial or practical per week. Detailed times are provided separately. There are no classes in week 20.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).
    The in-course assessment will be based on a logbook record made of practical work based on MATLAB. The assessment will be based on the technical merit of the work done and the effectiveness of the records kept.

    EG 3015 - STRESS ANALYSIS A
    Credit Points
    15
    Course Coordinator
    Dr A R Akisanya

    Pre-requisites

    EG 2029 (CAS 9).

    Notes

    Available only to candidates following an Honours degree programme.

    Overview

    This course focuses on the fundamental relationship between the stresses and strains within engineering components and the load and displacements imposed at their boundaries. Analytical, experimental and numerical (finite element) methods are used predominantly for two-dimensional geometries and both elastic and plastic responses are considered. The design implications of material deformation are discussed.

    Students carry out experimental work to determine the stress distribution in an internally pressured cylinder. The finite element results of the stress distribution are compared with the thin-walled and thick-walled pressure vessel analyses.

    Structure

    27 one-hour lectures, 5 one-hour tutorials and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and in-course assessment (10%).

    EG 3018 - FLUID MECHANICS A
    Credit Points
    15
    Course Coordinator
    Professor T O'Donoghue

    Pre-requisites

    EG 2539 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course begins with the concept of dynamic similarity and the application of dimensional analysis to experimental fluid mechanics and model-testing. This is followed by a study of steady and unsteady flow in pressure conduits, with emphasis on unsteady aspects including water hammer theory and surge protection. A section on fluid machines deals mainly with the performance of rotodynamic machines. It considers the theoretical performance of impulse and radial flow machines but stresses that actual performance is obtained from testing. Machine specific speed, cavitation problems and pump-pipeline matching are all considered. A section on open channel flow introduces basic concepts for the analysis of flow with a free surface. It deals with steady uniform flow and the importance of bed roughness and applies energy methods and momentum methods to cases of rapidly varied flow. The final section of the course introduces the students to porous media flow with applications in civil, mechanical, chemical and petroleum engineering.

    The laboratory exercises are designed to help understand and reinforce concepts covered in lectures. They involve separate experiments to study the performance characteristics of hydraulic machines and the essential features of flow in an open channel.

    Structure

    27 one-hour lectures, 6 one-hour tutorials, and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and in-course assessment (10%).

    EG 3019 - ADVANCED TRANSPORT PROCESSES
    Credit Points
    15
    Course Coordinator
    Dr M Campbell-Bannerman

    Pre-requisites

    EG 2580

    Overview

    This course focuses on theory of heat, mass, and momentum transport phenomena. The course includes fundamentals of non-Newtonian flow, fundamentals of multiphase flow, boiling and condensation, heat exchanger design methods, steady and unsteady mass transfer, mass transfer across phase boundary.

    Students carry out numerical calculation using Matlab or Excel and course work to support theory.

    Structure

    27 one-hour lectures and 11 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

    Resit: 1 three-hour written examination (100%).

    EG 3020 - PROCESS THERMODYNAMICS
    Credit Points
    15
    Course Coordinator
    Dr J Kiefer

    Pre-requisites

    EG 2539 Fluid Mechanics and Thermodynamics, EG 2580 Chemical Engineering Fundamentals

    Overview

    The course begins with an introduction to essential process engineering thermodynamics. The ideal gas law and equations for the computation of process heat/work requirements for isochoric, isobaric and isothermal processes are briefly revised. The P-V and P-T phase diagrams for a pure substance are reviewed. The isothermal compressibility and volume expansivity are discussed for liquids. Vapour pressure and the Antoine Equation are treated allowing two-component vapour-liquid equilibrium to be discussed in terms of Raoult's law and modified Raoult's law, Knowledge of single component behaviour is extended to an advanced level through a detailed treatment of PVT equations of state and generalized compressibility factor methods. The virial, van der Waals, Redlich-Kwong, Peng-Robinson and Benedict-Webb-Rubin equations of state are discussed. Generalized correlations for the compressibility factor, Z are treated. The PVT relations for real gases are applied to phase transitions for isobaric, isochoric, isothermal and adiabatic phase transitions by hand computation and simulation. PVT relations for real gas mixtures are addressed; Dalton's & Amagat's laws modified by compressibility and the pseudocritical method employing Kay's law are covered. Residual properties and the experimental dtermination of thermodynamic properties are addressed. Finally, the course completes with key topics in solution thermodynamics.

    Structure

    27 one-hour lectures, 9 one-hour tutorials and 3 three-hour practicals (laboratories and simulation exercises). There are no classes, labs or tutorials in Week 20. Laboratories are carried out in accordance with the published rota.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).
    The continuous assessment will be based on the submission of engineering reports detailing the practical work. Detailed information relating to the format of reports will be given during course contact time.

    Resit: 1 three-hour written examination (100%).

    Formative Assessment

    Feedback

    EG 3027 - GEOTECHNICS 1A
    Credit Points
    15
    Course Coordinator
    Dr A Ivanovic

    Pre-requisites

    Two years of an Engineering degree programme or equivalent.

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course provides an introduction to engineering geology, covering such topics as the formation and classification of weathering processes, plate teotonics, aggregates, groundwaterfluviatile and coastal processes, and site investigation. The main part of the course is devoted to a study of the engineering behaviour of soils. This commences with an introduction to field classification and a description of the phase composition of soils.

    Following a study of the shear strength of soils, aspects of foundation engineering are covered such as stress distribution, bearing capacity and settlement of foundations.

    Practical exercises provide an introduction to both classification and strength testing of soils and rocks to BS5930 and BS1377.

    Structure

    27 one-hour lectures, 5 one-hour tutorials and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and in-course assessment (10%).

    EG 3034 - ENGINEERING MATERIALS A
    Credit Points
    15
    Course Coordinator
    Prof I Guz

    Pre-requisites

    EG 2029 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course builds on the knowledge of engineering materials gained at Level 2 by focussing, initially, on the major engineering alloy systems - steels, aluminium alloys and titanium alloys. Strengthening mechanisms in these systems and the relationship between microstructure and mechanical properties are highlighted. The main failure and degredation processes of materials in service fracture, fatigue, creep and corrosion, are considered in some detail. Finally, as materials may have to be joined during manufacture of components and structures, the major welding and adhesive bonding processes are introduced.

    Practical work is undertaken to select materials for particular design scenarios using materials selection software.

    Structure

    27 one-hour lectures, 5 one-hour tutorials, and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%), and in-course assessment (10%).

    EG 3043 - CONTROL SYSTEMS A
    Credit Points
    15
    Course Coordinator
    Dr Thevar

    Pre-requisites

    EG 2559 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course introduces basic concepts of feedback control systems using a number of practical examples. Mathematical modelling of physical systems and representing them in block diagrams with transfer functions are presented. Basic control system response characteristics (stability, transient response, steady state response) and analysis and design procedures are introduced using first and second order systems. Absolute and relative stability, the Routh-Hurwitz criterion and the root locus diagram are developed as general analysis and design tools. PID controllers and improvement of system performance using compensation techniques are investigated. The frequency domain approach is developed through use of the Bode diagram and application of lead and lag compensators.

    At the end of the course students will be able design a controller for any simple physical system in order to accomplish the specifications for the controlled parameter (eg temperature, pressure, weight, level, position). This will include mathematical modelling of the physical system, selection and design of an appropriate controller, validation of the overall system performance.

    The laboratory exercise develops the use of MATLAB/SIMULINK as computer-based tools. Effects of modelling approximations and the response characteristics are investigated.

    Structure

    33 one-hour lectures, 10 one-hour tutorials, and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%), and in-course assessment (10%).

    EG 3052 - SIGNALS AND SYSTEMS A
    Credit Points
    15
    Course Coordinator
    Dr S Aphale

    Pre-requisites

    EG 2010 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course commences with a review of techniques used to analyse and represent signals and systems, such as impulse response, Laplace transformation and state equations. Analogue and digital systems are analysed in the s and z domains respectively, as well as in the time domain, introducing concepts such as transfer functions and frequency response functions. Fourier techniques are used to examine the amplitude and phase spectra of signals. Concepts such as Autocorrelation and Cross correlation of signals as well as noise removal techniques are introduced. Practical work consists of a connected set of three laboratory exercises using Matlab exploring sampling, manipulation and correlation of signals.

    Structure

    27 one-hour lectures, 5 one-hour tutorials and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and in-course assessment (10%).

    EG 3078 - ENGINEERING DESIGN (MEng)
    Credit Points
    5
    Course Coordinator
    Dr H Sun

    Pre-requisites

    EG 2501.

    Notes

    Available only to students in programme year 3 of a MEng programme.

    Overview

    The major component of this course is an engineering design exercise under the supervision of members of staff. That design will draw on elements of theory from courses currently being studied by the student. This is accompanied by lectures from practising engineers on professional aspects of engineering. Students are encouraged to attend local meetings of professional engineering societies and institutions.

    Structure

    7 practice/design work undertaken in one week of concentrated study, together with some lectures throughout the half-session. Some preliminary work will be expected prior to the one week of concentrated study.

    Assessment

    1st Attempt: In-course assessment (100%): Project Report 80%; Oral Presentation 20%.
    Re-sit: Students who No Paper to the assessment will not be given resubmission opportunity and will be required to re-register for this course or its equivalent at the next available opportunity. All other students should be referred to the course coordinator for resubmission.

    Formative Assessment

    Students must participate in all continuously assessed work and submit their reports and other work for marking when required. There will be opportunities for informal formative assessment and feedback in the meeting sessions within the design week. Informal feedback will be provided during the practical sessions. The return of marked coursework will provide formal feedback to the students.

    EG 3079 - ENGINEERING DESIGN (BEng)
    Credit Points
    5
    Course Coordinator
    Dr H Sun

    Pre-requisites

    EG 2501

    Notes

    Available only to students in programme year 3 of a BEng programme.

    Overview

    The major component of this course is an engineering design exercise under the supervision of a member of staff. That design will draw on elements of theory from courses currently being studied by the student. This is accompanied by lectures from practising engineers on professional aspects of engineering. Students are encouraged to attend local meetings of professional engineering societies and institutions.

    Structure

    Seven projects of practice/design from seven subjects undertaken within one week of concentrated study, together with some lectures throughout the half-session.

    Assessment

    1st Attempt: In-course assessment (100%): Project Report 100%.
    Re-sit: Students who No Paper to the assessment will not be given resubmission opportunity and will be required to re-register for this course or its equivalent at the next available opportunity. All other students should be referred to the course coordinator for resubmission.

    Formative Assessment

    Students must participate in all continuously assessed work and submit their reports and other work for marking when required. There will be opportunities for informal formative assessment and feedback in the meeting sessions within the design week. Informal feedback will be provided during the practical sessions. The return of marked coursework will provide formal feedback to the students.

    EG 3092 - C/C++ PROGRAMMING A
    Credit Points
    15
    Course Coordinator
    Dr Nakkeeran

    Pre-requisites

    EG 2060 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    C programming is presented with an introduction to methods for design of well-structured and maintainable computer programs. The course begins by introducing the syntax and semantics of the C programming language. This includes the use of structures and of pointers with a view to a later introduction to the C++ language. Techniques for producing easily maintained and modifiable code are emphasised. An introduction to elementary data structures (lists, stacks and queues) is included. Practical activity includes the use of basic software development tools (context sensitive editors, debugging techniques, version control). The course concludes with an introduction to the C++ programming language.

    Structure

    27 one-hour lectures, 5 one-hour tutorials, and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and in-course assessment (10%).

    EG 3516 - MECHANICS OF STRUCTURE A
    Credit Points
    15
    Course Coordinator
    Professor H W Chandler

    Pre-requisites

    EG 2029 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The major topic of this course is an introduction to modern methods of elastic structural analysis. In this topic, direct, energy and matrix methods are jointly used to solve, initially, problems of the deformation of elastic trusses and simple beams. The theory of virtual work is introduced in the context of beams and frameworks.

    The rigid-plastic analysis of frames is then introduced along with the bounding theorems and their importance to engineering design.

    The practical work involves a sequence of four experiments, which illustrate unexpected or non-linear behaviour of structures. Two involve torsion, one an elastomeric framework, and another the buckling of a beam with open section. A design element takes the form of a failure investigation and an improved connection design.
    Students of Civil Engineering undertake an alternative to this practical work, which takes the form of a substantial design exercise. A forest park outdoor activity centre is to be designed, consisting of a reinforced, concrete, two-storey building. The design will also incorporate a reinforced concrete earth-retaining wall.

    Structure

    24 one-hour lectures, 6 one-hour tutorials, and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3529 - DESIGN OF STRUCTURAL ELEMENTS A
    Credit Points
    15
    Course Coordinator
    Dr P C Davidson

    Pre-requisites

    Co-requisites

    EG 3516

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course begins with concrete mix design and testing, and describes the material properties of hardened and fresh concrete. This is followed by an introduction to the principles of Limit State design. These principles are applied to the design of reinforced concrete beams in flexure and shear, as well as to axially and eccentrically loaded columns.
    The remainder of the course considers design in structural steelwork, beginning with the material itself, and the types of products it can be found in. The design of steel elements and of the connections between them is a major theme of this part of the course. It concludes with the design of composite beams and slabs for use in steel buildings.

    There is a substantial practical design exercise associated with this course. The design of a temporary steel frame office building has to be checked and recommendations made about remedial action. A brief final report is to be produced which will identify the remedial actions, outline remediation methods and appraise the risks associated with them.

    Structure

    24 one-hour lectures, 6 one-hour tutorials, and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3537 - DYNAMICS 1A
    Credit Points
    15
    Course Coordinator
    Dr E Pavlovskaia

    Pre-requisites

    EG 2559 (CAS 9) or PX 2007

    Notes

    Available only to students following an Honours degree programme.

    Overview

    This course commences with an overview of the dynamics of a particle and of general planar kinematics and dynamics before proceeding to a review of the free and forced vibration response of a linear single degree of freedom system. An introduction to the vibration of systems with two or more degrees of freedom follows, including natural frequencies and mode shapes, principal co-ordinates and calculation of the forced response using the impedance method. Then the dynamic forces and moments associated with rotating and reciprocating machinery are examined.

    The testing of a passive vibration absorber in the laboratory concludes the course.

    Structure

    24 one-hour lectures, 6 one-hour tutorials, and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3538 - STRUCTURAL DYNAMICS A
    Credit Points
    10
    Course Coordinator
    Dr E Pavlovskaia

    Pre-requisites

    EG 2559 or PX 2007

    Notes

    Available only to students following an honours degree programme.

    Overview

    This course commences with an overview of the dynamics of a particle and of general planar kinematics and dynamics proceeding to a review of the free and forced vibration responsse of a linear single degree of freedom system. An introduction to the vibration of systems with two or more degrees of freedom follows, including natural frequencies and mode shapes, principal co-ordinates and calculation of the forced response using the impedance method.

    Structure

    16 one-hour lectures over 8 weeks, 8 one-hour tutorials and 4 three-hour practicals (as part of a major design exercise shared with other Civil Engineering courses).

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    Resit: 1 three-hour written examination paper (80%) with previous mark for in-course assessment standing.

    Formative Assessment

    Feedback

    EG 3539 - THERMODYNAMICS 1A
    Credit Points
    15
    Course Coordinator
    Dr J C Jones

    Pre-requisites

    EG 2539 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    Steam and gas turbine power are examined followed by refrigeration and heat pump cycles. The performance of their components, particularly positive displacement and roto-dynamic machines are studied. Basic topics receiving detailed attention are I-D gas dynamics, psychrometry and combustion processes. A practical design exercise involving laboratory work concludes the course.

    Structure

    24 one-hour lectures, 6 one-hour tutorials, and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3557 - ELECTRICAL POWER ENGINEERING A
    Credit Points
    15
    Course Coordinator
    Dr D Jovcic

    Pre-requisites

    EG 2559 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course analyses the basic requirements for the generation, transmission and use of electrical energy. The per-unit notation system is introduced and its advantages in power systems highlighted. Basic approaches in the three phase and single phase AC systems analysis are introduced. Three-phase induction and synchronous machines are studied, in each case a simple equivalent circuit for the machine is derived and used to explore the operating limitations of each type of machine. Modern power conversion methods are discussed for conversion between AC and DC. This discussion includes, power electronics components used in conversion circuits and the basic topology of rectifiers, DC-DC converters and inverters. The advantages of switching conversion techniques over traditional circuits are highlighted.

    Structure

    24 one-hour lectures, 12 one-hour tutorials, and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3560 - DIGITAL ELECTRONIC SYSTEMS A
    Credit Points
    15
    Course Coordinator
    Dr D C Hendry

    Pre-requisites

    EG 2060 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The course commences with a discussion of design principles applicable to digital systems, including specification, structured hardware design and the use of computer-aided design. Combinational logic, including minimisation, and hazards, is studied. The design of synchronous and asynchronous sequential systems is examined. An introduction to VHDL is included. Coverage is sufficient to enable students to design simple combinational and sequential circuits and to use a synthesis tool. The testing of digital systems is considered. Students also carry out a design exercise using CAD facilities.

    Structure

    24 one-hour lectures, 6 one-hour tutorials, and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3567 - COMMUNICATIONS ENGINEERING 1A
    Credit Points
    15
    Course Coordinator
    Prof G Fairhurst

    Pre-requisites

    EG 2060 (CAS 9).

    Notes

    Available only to students following an Honours degree programme.

    Overview

    The practical working of a communications network is studied together with the fundamental features required to provide a communications service. The basic concepts and terminology used in data communications are explained with reference to the Open Systems Interconnection (OSI) reference model. For the Physical Layer the use of synchronous digital transmission is described. For the Link Layer the Ethernet local area network is studied, including a practical exercise to design a company network. For the Network Layer the Internet is used as an example of a wide area network. For the Transport Layer TCP and UDP protocols and the role of the transport service are discussed.

    Structure

    24 one-hour lectures, 6 one-hour tutorials and 6 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 3570 - SEPARATION PROCESSES
    Credit Points
    15
    Course Coordinator
    Dr M. Campbell-Bannerman.

    Pre-requisites

    EG 3019; EG 3020

    Overview

    Concepts of equilibrium and rated-based analysis of separation processes, and give examples of relevant separation processes, concept and analysis of a unit operation as applied to separation processes, analysis of relevant separation processes by applying mass and energy balance methods, evaporation processes of liquid without and with boiling point rise, vapour liquid equilibrium, phase rule and relative volatility, equilibrium or flash distillation and single batch or differential distillation processes, distillation towers and their calculation methods, adsorption and calculation method, liquid-liquid extraction and the basic processes.

    Structure

    3 one-hour lectures per week, 1 one-hour tutorial per week, 3 weeks of laboratory class.

    Assessment

    1st attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

    Resit: 1 three-hour written examination (100%).

    EG 3575 - UNIT OPERATIONS
    Credit Points
    15
    Course Coordinator
    Dr E J Bain

    Pre-requisites

    EG 3019; EG 3020; EG 3078 / EG 3079

    Overview

    Storage of liquefied gas; design, operation and safety. Heat transfer via radiation. Heat transfer to the gas phase. Quench cooling. Design/specification of compression trains. Design of condensers/evaporators. Plate heat exchangers. Design of distillation processes. PINCH technology. Introduction to process control. Heat transfer in agitated vessels.

    Structure

    27 one-hour lectures, 12 one-hour tutorials. Laboratory/site visits as available/required.

    Assessment

    1st attempt: 1 three-hour examination (50%) and continuous assessment (50%).

    Resit: 1 three-hour written examination.

    EG 3586 - ENGINEERING MANAGEMENT I - INTRODUCTION TO ENGINEERING, SUPPLY CHAIN AND SAFETY MANAGEMENT A
    Credit Points
    15
    Course Coordinator
    Mr J Cavanagh

    Pre-requisites

    None

    Co-requisites

    None

    Notes

    Available only to students in programme year 3 of a BEng or MEng programme or with the permission of the head of Engineering. (ES3586 is available to candidates following a non-Honours degree programme)

    Overview

    The course provides students with a broad ranging introduction to Engineering Management which should enable them to perform effectively as graduate engineers and in later more senior roles with broader ranging responsibilities. The course provides a brief introduction to risk, safety management, economics, organisations, management accounting, human resource management, contract/competition law and supply chain management. It also covers key professional skills such as time management, communication, teamwork and presentation of data. It concludes with a discussion of how one might go about setting a project up for success which students should find useful when embarking on individual and group projects at levels 4 and 5

    Structure

    Three hours of lectures and a one hour tutorial each week.

    Assessment

    1st Attempt: One two-hour written examination (65%) plus continuous assessment (35%). The particulars of continually assessed assignments will be outlined at the start of the course and published on WebCT.

    Resit: One two-hour written examination (65%) plus continuous assessment (35%). For students who are unable to pass the course by taking a resit due to poor results in in-course assessment, the course must be retaken in its entirety.

    EG 3593 - RESERVOIR ENGINEERING 1 - FUNDAMENTALS
    Credit Points
    15
    Course Coordinator
    Dr C Gao

    Pre-requisites

    Introduction to Geology for engineers.

    Co-requisites

    Per Geology for engineers.

    Overview

    Below is an indicative outline of the course content:

    (1) Reservoir Fluids Properties (8 hours)
    Nomenclature and units. Reservoir, separator and surface conditions. Classification of reservoirs. PVT and phase behaviour of reservoir fluids. Physical and Chemical properties of Liquids and Gases. Hydrocarbon Reserve Estimation (calculation of hydrocarbon volumes, recovery factor, etc). Introduction to production mechanisms (primary and improved recovery).

    (2) Reservoir Rock Properties (4 Hours)
    Porosity. Permeability. Wettability. Saturation. Releative permeability.

    (3) Flow in Porous Media (12 hours)
    Diffusivity equation. Flow regimes. Linear flow and redial flow. Darcy's law. Flow of gases in porous media. Multi-phase flow.

    Structure

    The course consists of 24 hours lectures. 12 one-hour tutorials and 12 hours equivalent lab or field based practicals.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment - report on field trips (20%).

    Resit: Examination (100%).

    Formative Assessment

    Feedback

    EG 3723 - FIELD SURVEY AND ENGINEERING HYDROLOGY FIELD COURSE A
    Credit Points
    5
    Course Coordinator
    Mrs N Nikora

    Pre-requisites

    EG 3027

    Co-requisites

    None

    Notes

    (i) Available only to students following an Honours degree programme.
    (ii) The field work aspects of this course may pose difficulties to some students with disabilities. If this arises alternative arrangements will be made available. Any student wishing to discuss this further should contact the School Disability Co-ordinator.
    (iii) Students will be required to contribute towards the cost of their accommodation during the field course.

    Overview

    The course provides students with practical opportunities to use a wide variety of surveying and hydrological instruments. Measurements obtained from the instruments are used to produce surveying drawings and to compute various hydrological and hydraulic characteristics.

    Structure

    5-6 days residential course to include lectures and practical work. The course will be held during the Easter Vacation.

    Assessment

    1st Attempt: In-course assessment (100%).

    Formative Assessment

    Feedback

    Level 4

    EG 4011 - ENGINEERING PROJECT ABROAD (BEng)
    Credit Points
    60
    Course Coordinator
    Mrs N Nikora

    Pre-requisites

    EG 3079

    Notes

    (i) Available only to students in programme year 4 of a BEng programme.
    (ii) Students are expected to do some preliminary work, under the direction of a nominated supervisor at Aberdeen, during the first half-session to prepare themselves for undertaking a project abroad. In particular, this involves establishing contact with a supervisor in the host institution (who will have been nominated by the co-ordinator in the host institution) and defining a project specification in consultation with the host supervisor. All of the credit points for this course are associated with the second half-session.

    Overview

    Every student is allocated an individual engineering project which is supervised by a member of the academic staff from both institutions. The project will normally be in the student’s area of professional interest.

    Projects are of wide variety: theoretical, computational, design, experimental, review and field work. In all cases aspects of project planning, written communication and oral presentation are included.

    Structure

    No formal teaching.

    Assessment

    1st Attempt: In-course assessment (100%).

    Resit: None.

    EG 4012 - ENGINEERING PROJECT (BEng)
    Credit Points
    45
    Course Coordinator
    Dr Y Guo, Dr A Allen, Dr L Cheng, Dr A J Starkey

    Pre-requisites

    EG 3079

    Notes

    (i) Available only to students in programme year 4 of a BEng programme.
    (ii) This course is spread over both half-sessions. The student effort expected is that of 15 credit points in the first half session and 30credit points in the second half-session.

    Overview

    Every student is allocated an individual engineering project which is supervised by a member of the academic staff. The project will normally be in the student’s area of professional interest.

    Projects are of a wide variety: theoretical, computational, design, experimental, review and field work. In all cases aspects of project planning, written communication, and oral presentation are included.

    Structure

    Equivalent to 10 weeks full time.

    Assessment

    1st Attempt: In-course assessment (100%).

    Resit: None.

    EG 40FD - ELECTRICAL MACHINES AND DRIVES
    Credit Points
    10
    Course Coordinator
    Dr D Jovcic

    Pre-requisites

    EG 3557

    Overview

    This course examines the performance and control of electrical machines and drives. Transient performance of various electrical machines (induction, synchronous and DC) is discussed using two-axis-machine theory. Steady state performance is also considered. Simulation techniques are used as appropriate in studying both transient and steady state performance of the electrical machines and drives.

    Medium and high-performance AC drives are considered, including V/f and vector control drives. Modern AC machine control in rotating DQ co-ordinate frame is studied in some detail. DC machine drives (thyristor-controlled and transistor-controlled drives) are discussed and analysed.

    Structure

    24 one-hour lectures and 12 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination (90%); course assessment (10%).

    EG 40GA - COMPUTER AND SOFTWARE ENGINEERING
    Credit Points
    10
    Course Coordinator
    Dr F. Verdicchio

    Pre-requisites

    EG 3560

    Overview

    Software Engineering - the course studies the application of formal techniques to the development of software - including requirements specifications, functional specifications, design documents and the acceptance test procedures. The concepts of quality of service, quality assuranc, validation and verification and correct by construction techniques, as applied to the specification, design and development of software, are introduced.

    Computer Engineering - the course studies the impact that the application domain, operating systems, technology, high-level languages, compilers and economic perspectives have on computer architecture.

    Structure

    2 one-hour lectures per week and a total of 11 two-hour laboratory sessions/tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).

    EG 40GD - COMMUNICATIONS ENGINEERING 2
    Credit Points
    15
    Course Coordinator
    Prof G Fairhurst

    Pre-requisites

    EG 3567

    Overview

    The course provides an overview of communications, with an analysis of signals and systems emphasising the role of Fourier transformation and linear filtering in communications. Pulse code modulation and related techniques for analogue to digital conversion are covered. Modulation techniques for both analogue and digital signals are discussed as well as the problems caused by intersymbol interference in data communication. A review of probability theory, is followed by a study of random processes with emphasis on the characterisation of wide band stationary processes and narrow band Gaussian processes. The effects of noise on amplitude and angle modulated signals are covered. There is a discussion of optimum receivers for data transmission, developing an understanding of the matched filter.

    Structure

    3 one-hour lectures per week and a total of 9 one-hour tutorials.

    Assessment

    1st Attempt: Course assessment (20%), 1 three-hour written examination (80%).

    EG 40HA - CHEMICAL REACTION ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr E J Bain

    Pre-requisites

    EG 3019, EG 3020

    Co-requisites

    N/A.

    Overview

    Reactor Design - General Principles:

    - Basic objectives in design of a reactor
    - Batch reactors
    - Tubular flow reactors
    - Continuous stirred-tank reactors
    - Comparison of batch, tubular and CSTR reactors for a single reaction
    - Comparison of batch, tubular and CSTR for multiple reactions

    Structure

    3 one-hour lectures per week
    1 one-hour tutorial per week
    2 three-hour laboratory sessions

    Assessment

    1st attempt: 1 three-hour written examination (80%); continuous assessment (20%).

    Resit: 1 three-hour written examination.

    EG 40HB - CHEMICAL ENGINEERING SYSTEMS
    Credit Points
    10
    Course Coordinator
    Dr J C Jones

    Pre-requisites

    EG 3575

    Overview

    The course deals with a systems engineering approach to plant design and operation. The basis concepts of systems engineering are introduced and the idea of combining unit operations into larger modules and plants discussed. Plant design operates under a number of constraints, which in turn affect specific unit-operation design decisions. Availability of utilities, manpower, raw materials and transportation network are considered. The environmental constraints on chemical engineering systems are considered for both aqueous and vapour/gas systems. Fire and explosion considerations of plant layout are examined and solutions developed. Wider plant safety systems and regulations covering plant operation both offshore and on-shore installations discussed. The learning developed is applied in a number of real-life plant design problems.

    Structure

    22 hours of lectures; 6 one-hour tutorials; 2 three-hour workshop sessions.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and in-course assessment (20%).

    Resit: 1 three-hour written examination (100%).

    EG 40HC - PROCESS CONTROL
    Credit Points
    10
    Course Coordinator
    Dr N C Renton

    Pre-requisites

    EG 3019 and EG 3575

    Overview

    This course will make use of the control theory lectures delivered in EG 3043 as follows. Control theory introduces the basic concepts of feedback control and the use of block diagrams and transfer functions. Basic response characteristics (stability, transient response, steady state response) and analysis and design procedures are introduced using first order systems. Development to more general situations is made through the study of second order systems and the application of compensation including PID control.

    The control theory developed is then applied to a range of chemical engineering processes and problems including pressure, level, and temperature control.

    Structure

    22 hours of lectures; 6 one-hour tutorials; 2 three-hour laboratory sessions.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and in-course assessment (20%).

    Resit: 1 three-hour written examination (100%).

    EG 40JC - INSTRUMENTATION
    Credit Points
    10
    Course Coordinator
    Dr D C Hendry

    Pre-requisites

    EG 3081 Analogue Electronics A

    Notes

    Available only to students following an Honours degree programme. This course is not available during session 2011/12.

    Overview

    Measurements: accuracy, repeatability, precision; Errors and their analysis. Transducers and their specifications; Circuit models and transfer functions for transducers; Transducer technologies; capacitive sensors; capacitance measurement circuits, resistive, piezo including strain gauges; Pressure, temperature and flow measurements; Gas sensing; MWD/LWD measurements; LVDT transducers; System level modelling;

    Signal conditioning, A/D conversions; Bridge circuits; Noise in electronic circuits; Instrumentation networks: network topologies, digital fieldbuses;

    Structure

    2 one-hour lectures and 1 one-hour tutorial per week.

    Assessment

    1st Attempt: 1 three-hour examination (90%) and continuous assessment (10%).

    EG 40JD - PHOTONICS II
    Credit Points
    10
    Course Coordinator
    Professor J Watson

    Pre-requisites

    EG 3585 Photonics IA

    Notes

    Available only to students following an Honours degree programme. This course is not available during session 2011/12.

    Overview

    Proposed content: The photonics system and photonics design concepts; Holography (CASE STUDY: design of a subsea holographic camera); 3D TV (CASE STUDY: design of a real-time, electronic, holographic display); Laser material processing (welding and drilling, LIBS etc) (CASE STUDY: design of a LIBS instrument); Fibre optics, sensing and communications (CASE STUDY: design of a fibre communications data link); Other photonics systems (laser fusion, optical tweezers, optical levitation etc).

    Structure

    2 one-hour lectures and 1 one-hour tutorial per week.

    Assessment

    1st Attempt: 1 three-hour written examination (90%) and continuous assessment (10%).

    EG 40JE - GEOTECHNICS 2
    Credit Points
    10
    Course Coordinator
    Dr A Ivanovic

    Pre-requisites

    EG 3026 or EG 3027

    Overview

    The course applies the principles of soil and rock mechanics gained in the pre-requisite course to the design of piles and piled foundations, earth pressure and retaining walls, stability of slopes and the design of open excavations. The course examines in particular groundwater and its influence on geotechnical problems. States of stress and strain in soils are also examined in detail including the concepts of stress paths and invariants and the three dimensional critical state model.

    Structure

    2 one-hour lectures per week and a total of 6 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JF - CIVIL ENGINEERING HYDRAULICS
    Credit Points
    10
    Course Coordinator
    Professor T O’Donoghue

    Pre-requisites

    EG 3013

    Notes

    May not be included with EG 40DB in a minimum curriculum.

    Overview

    The course begins with consideration of boundary layer development over a flat plate and curved surfaces, leading to boundary layer separation and forces on immersed bodies. This is followed by study of water wave theory with particular application to coastal and offshore engineering. The second part of the course is broadly concerned with the behaviour and management of rivers. The mechanics of open channel flow are first addressed with emphasis on gradually varied flow and the determination of stage-discharge relationships for man-made and natural channels. This is followed by consideration of fundamental aspects of sediment transport, including threshold criteria and the calculation of bed load and suspended load transport.

    Structure

    2 one-hour lectures per week and a total of 6 one-hour tutorials.

    Assessment

    1st Attemp: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JG - ADVANCED STRUCTURAL DESIGN
    Credit Points
    10
    Course Coordinator
    Dr P C Davidson

    Pre-requisites

    EG 3529

    Overview

    The course divides into three main topics. The first topic will introduce, in some detail, the principles involved in the analysis and design of pre-stressed concrete members. The second topic will cover the design of industrial buildings and multi-storey commercial buildings using structural steelwork. The third topic introduces the main features associated with the design of masonry and timber structures.

    Structure

    2 one-hour lectures per week and a total of 11 one-hour tuturials.

    Assessment

    1st Attempt: 1 three-hour written examination (90%) and continuous assessment (10%).

    EG 40JH - ADVANCED STRUCTURAL ANALYSIS
    Credit Points
    15
    Course Coordinator
    Dr M S Imbabi

    Pre-requisites

    EG 3516 and EG 3529

    Overview

    This course extends the basic stiffness method of analysis developed in the prerequisite courses. The fundamental principles of the stiffness method of analysis, with automatic assembly of the stiffness matrix for rigid jointed plane frames and space structures, are presented in some detail. Elastic instability of frames, and the design of continuous steel beams and portal frames using plastic methods will be undertaken. The analysis of flat plates and slabs using yield line theory, and an introduction to shells will also be covered. The course concludes with a brief outline of the finite element method of analysis, with computer-based applications forming an important practical component.

    Structure

    3 one-hour lectures per week and a total of 6 tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JI - ENVIRONMENTAL ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr Y Guo

    Pre-requisites

    EG 3013

    Overview

    The first part of the course is concerned with water pollution and main aspects of public health engineering. The following topics are covered: water quality characteristics, water supply and treatment, sources of water pollution and modelling of their impacts on aqueous environment, wastewater treatment.

    In the second part of the course, sustainable land management is introduced, including management of: groundwater, green and brown field sites, solid waste, and hazardous waste.

    The third part of the course provides an introduction to air pollution and control. It includes sources and effects of micro and macro air pollution and air pollution control techniques.

    Structure

    3 one-hour lectures per week and a total of 9 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%); continuous assessment (class test) (10%).

    EG 40JJ - FLUID DYNAMICS
    Credit Points
    10
    Course Coordinator
    Professor T O'Donoghue

    Pre-requisites

    EG 3013

    Overview

    The course begins with study of water wave theory with particular application to coastal and offshore engineering. This is followed by consideration of boundary layer development over a flat plate and curved surfaces, leading to boundary layer separation and forces on immersed bodies. These topics are also part of the EG40CB Civil Engineering Hydraulics course. The second part of the course concentrates on compressible flow. Using the fundamental conservation equations, the characteristics of converging-diverging nozzles and accelerating supersonic flows are examined. Plane and oblique shock waves and Prandtl-Meyer flow are then introduced. The course concludes with a discussion of the behaviour of transonic aerofoils, and the design of supersonic engine inlets.

    Structure

    2 one-hour lectures per week and a total of 6 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JK - THERMODYNAMICS 2
    Credit Points
    10
    Course Coordinator
    Dr Y Guo

    Pre-requisites

    EG 3536

    Overview

    Conduction: Fourier's Law applied to steady and non-steady conditions.
    Convection: Forced and natural.
    Radiation heat transfer: The Stefan-Boltzmann Law, view factors, the summation and reciprocity rules.
    Heat exchangers: Mode of operation and design calculations.

    Structure

    2 one-hour lectures per week and 6 tutorials in total.

    Assessment

    1st Attempt: 1 three-hour examination paper (90%); continuous assessment (class test) (10%).

    EG 40JL - ADVANCED ENGINEERING MATERIALS
    Credit Points
    15
    Course Coordinator
    Dr M Kashtalyan

    Pre-requisites

    EG 2028 or EG 2029

    Co-requisites

    None.

    Overview

    1. Basic concepts and characteristics of composite materials. Advantages and limitations of composites. Types and classifications of composites. Applications of composites. Constituent materials and their properties. Fibres and their properties. Fibre architecture. Particles and whiskers. Matrices and their properties. Reinforcement-matrix interface. (4 lectures - Dr M Kashtalyan).

    2.Manufacturing of fibrous composites. Polymer matrix composites. Metal matrix composites. Ceramic matrix composites. (2 lectures - Dr M Kashtalyan).

    3. Determination of stiffness properties of unidirectional fibre-reinforced composite material using mechanics of materials. Failure of unidirectional fibre-reinforced composite material under different types of loading. Damage mechanisms, damage accumulation, damage tolerance. Design philosophies for composite materials. (6 lectures - Dr M Kashtalyan).

    4.Stress-strain relations for unidirectional fibre-reinforced composite material.

    Relationships between stiffness, compliances and engineering constants. Stress-strain relations for thin lamina. Off-axis loading of unidirectional lamina. Transformation of stress and strain. Transformation of elastic and engineering constants for thin lamina. (6 lectures - Dr M Kashtalyan).

    5. Strenght of unidirectional lamina. Macromechanical strength parameters and failure theories. (2 lectures - Dr M Kashtalyan).

    6. Lamination theory of multidirectional composite laminates. Basic assumptions. Stress and strain variation in a laminate. Resultant forces and moments. General load-deformation relations. Inversion of load-deformation relations. Special classes of laminates: symmetric, antisymmetric, quasi-isotropic. Laminate engineering properties. (6 lectures - Dr M Kashtalyan).

    7. Failure analysis of multidirectional laminates. Types of failure. Stress analysis and safety factors for first-ply failure. Design of methodology for structural composite materials. (4 lectures - Dr M Kashtalyan).

    Structure

    30 one-hour lectures and 6 tutorials in total.

    Assessment

    1st Attempt: 1 three-hour written examination (90%) and continuous assessment (10%).

    Resit: 1 three-hour written examination (90%), continuous assessment (10%).

    EG 40JM - DYNAMICS 2
    Credit Points
    10
    Course Coordinator
    Dr R D Neilson

    Pre-requisites

    EG 3535

    Overview

    The course will commence with an overview of Lagrange’s equations of motion as an alternative formulation to Newton’s equations. Subsequently, the axial and torsional vibration of rods and lateral vibration of strings and beams will be examined with techniques presented for the calculation of the free vibration, normal modes and natural frequencies and forced response. The final part of the course will be an introduction to the vibration of non-linear systems with a qualitative description of non-linear effects, and quantitative evaluation of the influence of small non-linearities on a single degree of freedom vibrating systems using perturbation procedures and simulation. A short overview of instability in single degree of freedom systems will be presented.

    Structure

    2 one-hour lectures per week and a total of 6 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JN - CONTROL ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr T Thevar

    Pre-requisites

    EG 3043

    Notes

    Available only to students following an Honours degree programme. This course is not available during session 2011/12.

    Overview

    The course presents further techniques for control system modeling, analysis and design, together with applications and case studies, and is suitable for intending mechanical engineers as well as electrical and electronic engineers. The major topics discussed are:

    System Classification – continuous-, discrete-time and hybrid systems; linear and non-linear systems; time invariant and time varying systems.

    Transfer Function-based Methods for Hybrid Systems – systems with both continuous- and discrete-time components; system response and stability; root locus design; discrete approximations; direct method; frequency domain design.

    State Vector Methods – state vector models; stability, controllability and observability; state vector feedback; design methods for continuous and discrete-time systems; optimal control.

    State and Parameter Estimation – structure and design of state observers and parameter estimators.

    PID Control - PID controller design; design of generalised PID controllers.

    System Identification – model selection; impulse and frequency response testing; time and frequency domain methods for establishing systems models from experimental data.

    Self-tuning and Adaptive Systems – gain scheduling; self tuning controllers; model reference adaptive control.

    Artificial-intelligence-based control – types, structures, design and applications of artificial neural network, fuzzy logic and fuzzy-neural system identifiers and controllers.

    Structure

    36 one hour lectures and 9 tutorials, in total. Detailed times are provided separately.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JO - SIGNAL PROCESSING
    Credit Points
    10
    Course Coordinator
    Dr J Harrigan

    Pre-requisites

    EG 3052

    Overview

    This course introduces basic digital signal processing theory, with a special emphasis on digital filters. Topics covered include discrete time system analysis, Z transforms, DTFT’s, FFT’s convolution and correlation. The course looks at new trends in DSP architecture including DSP processors. A special study is made of discrete-time linear phase filters. The application of phase-locked loops to the solution of signal processing problems is discussed, and, in particular, the use of PLLs in domestic TV circuits is examined. The recovery of chrominance sub-carrier signals and the tracking of trains of pulses used to trigger the line timebase of TV receivers is studied.

    Structure

    2 one-hour lectures per week and a total of 6 one-hour tutorials. 1 three-hour written examination paper.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JP - OPTICAL ENGINEERING
    Credit Points
    10
    Course Coordinator
    Prof J Watson

    Pre-requisites

    (EG 2028 or EG 2029 or PX 2505) and EG 2069 all at CAS 9 or PX 3009.

    Notes

    Available only to students following an Honours degree programme. This course is not available during session 2011/12.

    Overview

    This course covers a systems approach to the study of lasers and optoelectronics and their application to engineering problems. Although aimed primarily at electrical and electronic engineers, the course should also appeal to mechanical, civil engineers, physicists and chemists with some experience of electronic properties of materials, analogue and digital electronics and optics. Course covers introductory concepts of optical engineering; nature and origins of light; amplification of light and laser action; solid state, gas and semiconductor lasers; laser design; light detection; imaging detectors; radiometry and light coupling; industrial applications such as optical communications, optical fibre sensing, holography and materials processing.

    Structure

    2 one-hour lectures per week and a total of 6 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JQ - SAFETY AND RELIABILITY ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr J C Jones

    Pre-requisites

    EG 3583 or EG 3584

    Overview

    The course includes three main topic areas. The first is the general theory of reliability, covering problem formulation and the use of methods such as FORM and Monte Carlo simulation. Applications include failure of structural and mechanical components, tolerance problems, failure by fatigue and the evaluation of safety factors for routine design.

    The second topic is fire safety, including ignition, combustion and extinguishment of cellulosic and hydrocarbon fires, and the use of active and passive methods of fire protection. Applications include fires in buildings and in offshore oil and gas production.

    The third main topic is an introduction to Safety Management and Human Reliability including Safety Management Systems.

    Structure

    3 one-hour lectures per week and a total of 9 one-hour tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination paper (90%) and continuous assessment (10%).

    EG 40JR - OFFSHORE OIL AND GAS PRODUCTION TECHNOLOGY
    Credit Points
    15
    Course Coordinator
    Dr B Wang

    Pre-requisites

    Overview

  • Field development and project organisation

  • Offshore vessels and production facilities

  • Drilling and well finishing

  • Up- and downstream processing

  • Essential personnel and roles

  • Safety systems
  • Structure

    Two hours of lectures and one hour tutorial per week.

    Assessment

    1st Attempt: Final closed book exam (90%) and continuous assessment (10%).

    Formative Assessment

    Feedback

    EG 40JS - RESERVOIR ENGINEERING II - PERFORMANCE AND MODELLING
    Credit Points
    10
    Course Coordinator
    Dr C Gao

    Pre-requisites

    EG 3593 Reservoir Engineering I - Fundamentals

    Co-requisites

    None.

    Overview

    Below is an indicative outline of the course content:
    (1) Reservoir Performance Prediction (Material balance) (8 hours)

    • Material Balance: Conservation of mass and volume

    • Gas reservoirs

    • Oil reservoirs

    • Accuracy of material balance equation

    • Fluid displacement models: Immiscible displacement calculations

    • Recovery factor

    • Microscopic, vertical and areal sweep efficiencies

    • Stratified reservoirs

    • Decline curves: Exponential, hyperbolic, Fetkovich decline curve analysis. Ranges of validity Streamline simulators

    (2) Integration into Reservoir Model (4 hours) - Geostatics. Object-based and Pixel-based models for reservoir characterisation. Multi-disciplinary data integration. The do's and don't of uncertainty quantification.
    • Geostatics

    • Object-based and Pixel-based models for reservoir characterisation

    • Multidisciplinary data integration

    • The Do's and Don't's of uncertainty quantification

    Numerical simulators (6 hours) - Theoretical background, types of models and their uses, Data sources and treatment in the simulator, limitations, practical considerations.
    • Reservoir models

    • Equations and terminology

    • Simulation models

    • Grid systems

    • Rock properties

    • Model relative permeability

    • Model capillary pressure

    • Fluid properties adn experiments

    • Model fluid properties

    • Aquifer treatment

    • Model well and production data

    • Tutorials

    Practical use of simulators (6 hours) - Introduction to the practical use of reservoir numerical simulators, build and execution of simulation models using basic Eclipse 100 facilities.
    • Eclipse features

    • File organisation and structure

    • Grids

    • Fluid properties

    • Rock properties

    • Wells

    • Aquifer modelling

    • History matching

    • Prediction

    Structure

    The course consists of 24 hours lectures, 6 one-hour tutorials and 2 practical sessions.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

    Resit: 1 three-hour written examination (100%).

    Formative Assessment

    Feedback

    EG 40JT - DRILLING AND WELL ENGINEERING
    Credit Points
    10
    Course Coordinator
    Dr C Gao

    Pre-requisites

    EG 3593 - Reservoir Engineering 1: Fundamentals

    Co-requisites

    None.

    Overview

    Below is an indicative outline of the course content:

      Well Construction (Drilling and Completion) (24 hours) - oilfield drilling, well engineering, well design, and drilling safety, well design and oilfield drilling, techniques and designs for completing wells, potential well and reservoir problems associated with production, solutions and completion strategies to overcome these production problems

    • Oilfield drilling

    • Drilling safety

    • Well engineering

    • Well design

    • Completing wells

    • Production

    Structure

    The course consists of 24 one-your lectures, 6 one-hour tutorials and 2 practical sessions.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

    Resit: 1 three-hour written examination (100%).

    Formative Assessment

    Feedback

    EG 40JU - PETROLEUM PRODUCTION ENGINEERING AND ECONOMICS
    Credit Points
    15
    Course Coordinator
    Dr J C Jones

    Pre-requisites

    EG 3593 Reservoir Engineering 1 - Fundamentals

    Co-requisites

    None.

    Overview

    Below is an indicative outline of the course content:

    • Production Engineering / Well performance (24 hours) - Essentials of the behaviour of the vapour/liquid mixtures in the wellbore and the necessary calculations, analysis and evaluation of the productivity and performance of wells including a summary of multiphase vertical flow correlations and artificial lift systems.

    • Flow of fluids into the wellbore

    • Single and multi-phase fluid flow in pipes

    • Productivity Index (PI) and Inflow Performance Relationships (IPR) for oil and gas wells

    • Nodal analysis

    • Gas condensate wells

    • Complex wells

    • Well deliverability for oil and gas wells

    • Artificial lift systems

    • Multi-phase flow measurement and metering

    • Oil Field chemistry - scaling and corrosion

    • Production enhancement by formation stimulation - eg. acidising, fracturing, etc.

    • Phenomenon of secondary mineral growth and related destruction of porosity and permeability - to be related to the (geo)chemistry of formation water.

    • Economics (12 hours) - Basic concepts relating to asset and project assessment and valuation: volumetrics, risk, uncertainty, discounted cash flow analysis, NPVs/EMVs and decision making.

    • Capex and Opex

    • Future Cash Flows

    • Measures of Financial Performance

    • Effects of Phased and Incremental Projects

    • Leasing and Outsourcing

    • General Frameworks for Taxation (This will include Concession Agreements)

    • Probabilistic and Monte-Carlo models

    • Decision theory and Criteria

    • External Financing and Loans

    • Future Markets

    • Relationships between reserves and economics (costs and oil price / revenue)

    Structure

    The course consists of a 36 one-hour lectures, 6 one-hour tutorials and 2 practical sessions.

    Assessment

    1st Attempt: 1 three-hour written examination (80%) and continuous assessment (20%).

    Resit: 1 three-hour written examination (100%).

    Formative Assessment

    Feedback

    EG 4513 - INDIVIDUAL PROJECT ABROAD (MEng)
    Credit Points
    60
    Course Coordinator
    Mrs N Nikora

    Pre-requisites

    EG 3078

    Co-requisites

    None

    Notes

    Available only to students in programme year 4 of an MEng programme.

    Overview

    Students will be allocated a project to be undertaken in the host institution or organisation, one of a number with which we have bilateral agreements within the SOCRATES scheme or where approved arrangements exist. The project is defined by the host institution in consultation with the Course Co-ordinator and will be supervised by a member of staff in the host institution as well as by a member of staff at the University of Aberdeen. The project will be in the area of the student's professional discipline, and may cover, for example, theoretical, computational, experimental or design aspects of project planning, writing communication and oral presentation are included.

    Structure

    No formal teaching.

    Assessment

    1st Attempt: in-course assessment: Thesis (60%); institution report from the host institution concerning the conduct of the project (20%) oral presentation (20%).

    Resit: None.

    EG 4515 - INDIVIDUAL PROJECT (MEng)
    Credit Points
    45
    Course Coordinator
    Dr Y Guo, Dr A Allen, Dr L Cheng, Dr A J Starkey

    Pre-requisites

    EG 3078

    Co-requisites

    None.

    Notes

    (i) Available only to students in programme year 4 of an MEng programme.
    (ii) A full-time student undertakes this course in the second half-session. The timing for a part-time student is determined on an individual case basis.

    Overview

    Every student is allocated an individual engineering research project which is supervised by a member of the academic staff. The project will normally be in the student's area of professional interest. Projects are of a wide variety and may include theoretical, computational, design, experimental, review and field work. In all cases aspects of project planning, written communication and oral presentation are included.

    Assessment

    1st Attempt: Thesis (80%), oral presentation (20%).

    Resit: None.

    EG 4516 - ENGINEERING PROJECT B (BENG)
    Credit Points
    45
    Course Coordinator
    Dr A Akisanya

    Pre-requisites

    EG 3079 Engineering Design (BEng)

    Co-requisites

    None.

    Notes

    This course is only available to students in programme year 4 of a BEng programme for which individual project is required to be carried out primarily in the second half-session.

    Overview

    Every student is allocated an individual project which is supervised by an academic member of staff. The project will normally be in the student's area of professional interest. Projects are of a wide variety: theoretical, computational, design and experimental. In all cases, aspects of project planning, written communication and presentation are included.

    Structure

    Students are expected to meet with their supervisor on a weekly basis.

    Assessment

    1st Attempt: Continuous assessment: Thesis (80%); Oral and/or Poster Presentation (20%).

    Formative Assessment

    Feedback

    EG 4525 - WELL & RESERVOIR ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr T Thevar

    Pre-requisites

    None

    Co-requisites

    None

    Overview

    • Properties of reservoir rocks, fluid properties, porosity and permeability.

    • Fluid flow in reservoirs, static pressure, well-test analysis and PVT analysis.

    • Determination of hydrocarbon volumes, estimation and classification of reserves.

    • Basic well design - the need for containment and barriers.

    • Casing cementing, trees, plugs and barriers.

    • Drilling rigs and rig equipment. Types of rigs, rig selection.

    • Drill stem design, drilling tubular goods, materials and corrosion.

    • Subsurface pressures, well control and well control equipment.

    • Drilling fluids, ECD, fluid flow management, swab and surge pressures, wellbore stability, fluid mechanics.

    • Methods of recovery, fundamentals of completion design.

    • Artificial lift and enhanced oil recovery.

    • Well testing.

    • Terotechnology and well design, well integrity management.

    Structure

    A total of three lecture hours per week.

    Assessment

    1st Attempt: 1 three-hour examination (80%), continuous assessment (20%).

    Formative Assessment

    Feedback

    EG 4570 - ENGINEERING MANAGEMENT II - ENGINEERING PROJECT MANAGEMENT, LEADERSHIP AND TEAMWORK
    Credit Points
    15
    Course Coordinator
    Mr J Cavanagh

    Pre-requisites

    EG 3586

    Notes

    Available only to students in programme year 4 of a BEng or MEng programme or with the permission of the head of Engineering.

    Overview

    The course is essentially an introduction to project management and is aimed at engineering students who expect to be working in a project related environment or are considering a potential career in project management. To course provides students with an insight into the purpose, principals, fundamental concepts and strategies of Project Management including both leadership and teamwork. Whilst it does cover areas such as planning and estimating it is NOT intended to prepare students for such roles.

    Structure

    1 three-hour lecture and 1 one-hour tutorial each week.

    Assessment

    1st Attempt: 1 three-hour written examination (80%), continuous assessment (20%).

    Resit: 1 three-hour written examination (80%) and in-course assessment (20%) carried forward. For students who are unable to pass the course by taking a resit due to poor results in in-course assessment, the course must be retaken in its entirety.

    EG 4576 - COMPUTER AIDED ENGINEERING DESIGN
    Credit Points
    15
    Course Coordinator
    Prof I Guz

    Pre-requisites

    EG 3079

    Notes

    (i) Available only to students in programme year 4 of a BEng programme or with the permission of the Head of Engineering.
    (ii) May not be included with EG 4577 in a minimum curriculum.

    Overview

    The course provides the opportunity to carry out a concentrated design and reporting exercise with a bias towards computer aided engineering. The exercise requires the exertion of project management and team liaison skills in addition to technical design ability. Written and oral presentations form part of the course. The work will be based around a number of commercial software packages and may include computer aided solid modelling, finite element stress analysis, computational fluid dynamics mechanism simulation and drafting.

    Structure

    No formal teaching. The course occupies 3 weeks.

    Assessment

    1st Attempt: In-course assessment: (100%).

    EG 4578 - GROUP DESIGN PROJECT (BENG)
    Credit Points
    15
    Course Coordinator
    Dr E Pavlovskaia

    Pre-requisites

    EG 3079

    Notes

    Available only to students in programme year 4 of a BEng programme or with the permission of the Head of Engineering.

    Overview

    The course is a concentrated design and reporting exercise which requires application of project management and team liaison skills in addition to technical design ability. Specific exercises will include interdisciplinary aspects and will relate to design requirements arising from the professional activities of the Engineering Department with School of Engineering or its industrial contacts. Written and oral presentations form part of the course.

    Structure

    3 weeks full-time.

    Assessment

    1st Attempt: In-course assessment: Project management and teamwork (20%); technical performance (40%); formal report (40%).

    Level 5

    EG 5055 - STRUCTURAL DYNAMICS
    Credit Points
    15
    Course Coordinator
    Dr R D Neilson

    Pre-requisites

    None

    Overview

    The course is aimed principally at students interested in civil engineering or in structural dynamics. The course will commence with a review of coordinates systems and the derivation of equations of motion. This will be followed by a review of the free, steady state forced and transient forced motion of single degree of freedom systems. This work will be extended to multi-degree of freedom systems and methods to calculate the natural frequencies, mode shapes and forced motion will be presented. Subsequently, the axial and torsional vibration of rods and lateral vibration of strings and beams will be examined with techniques presented for the calculation of the free vibration, normal modes and natural frequencies and forced response. The Rayleigh-Ritz method is presented as a means of finding the first natural frequency of a non-uniform beam. The final part of the course will be an introduction to the vibration of non-linear systems with a qualitative description of non-linear effects, and quantitative evaluation of the influence of small non-linearities on single degree of freedom vibration.

    Chapter 1 - Introduction: Background to why dynamics is important and an overview of the structure of the course (Approximate study time = 1 hrs)
    Chapter 2 - Review of Rigid Body Dynamics: To be able to analyse any dynamic system we need to be able to derive the equations of motion. A general method for planar dynamics is presented first followed by the form of the equations of motion in Cartesian and Polar coordinate systems.
    Chapter 3 - Overview of Single Degree of Freedom Systems: A review of the free and forced vibration of single degree of freedom systems is presented. The concept of natural frequency and damped free motion are introduced. Possible sources of external forcing are discussed and methods for calculating the forced motion resulting from both sinusoidal and transient excitation are explained. MathCAD examples are introduced as a means of calculating the response of real systems.
    Chapter 4 - Systems with Two or More Degrees of Freedom: This chapter introduces the concept of vibration modes and natural frequencies. The free vibration response, response due to harmonic forcing and response due to transient excitation of multi-degree of freedom systems are covered using two degree of freedom systems as examples. The concept of Principal Co-ordinates is introduced. The previous methods are then generalised to include larger, multi degree of freedom (MDOF) systems. Methods for the transformation to principal co-ordinates and orthogonalilty of principal co-ordinates are presented and the use of modal truncation explained. The transient vibration of MDOF systems is explored with the use of Matlab examples.
    Chapter 5 & 6 - Continuous Systems: Brief introduction to the modelling and solution for the vibration of coninuous systems eg rods, bars in torsion, cables in tension and beams in bending.
    Chapter 7 - Rayleigh Ritz Method: Brief introduction to the use of the Rayleigh-Ritz method for estimating the natural frequency of a structure or system.
    Chapter 8 - Nonlinear Systems: Brief introduction to the response of systems with nonlinear characteristics.

    Structure

    Distance Learning delivery with weekly tutorials.

    Continuous assessment (50%) and 1 three-hour examination (50%).

    Assessment

    1st Attempt: 1 three-hour written examination (100%).

    Formative Assessment

    Feedback

    EG 5085 - ADVANCED TOPICS FOR MEng STUDY
    Credit Points
    30
    Course Coordinator
    Dr R D Neilson

    Pre-requisites

    EG 4515 or EG 4513

    Co-requisites

    None

    Notes

    (i) Available only to students in programme year 5 of an MEng programme or with the permission of the Head of Engineering.
    (ii) A full-time student undertakes this course in the first half-session. The timing for a part-time student is determined on an individual case basis.

    Overview

    The course comprises two exercises which involve in depth technical self-study on a topic related to the MEng specialism of individual students. The exercise may take the form of, for example, an intelligent synthesis of published material on a topic, critical analysis of literature, comparison of methods of analysis or back analysis of case studies. The first exercise is examined by continuous. The second exercise is examined by continous asssessment and by conference presentation.

    Structure

    1 hour tutorial per week.

    Assessment

    1st Attempt: 1 paper (30%), 1 paper (50%) and 1 conference presentation (20%).

    The two papers should describe the student’s findings on two distinct technical exercises. Students are encouraged to pursue and demonstrate technical depth in the conduct of the exercises. The assessment of the papers will emphasise those aspects of the exercise assosiated with technical depth.

    EG 5090 - MATHEMATICAL OPTIMISATION
    Credit Points
    15
    Course Coordinator
    Dr A Starkey

    Pre-requisites

    EG 3006

    Overview

    1. General techniques of mathematical optimisation and minimisation: Methods for one variable: Newton's method; Fibonacci search: Golden-section search; Curve fitting approaches using Quadratic interpolation, Cubic interpolation; Brent's method. Methods for many variables: Direct search methods using Hooke and Jeeves' method, Downhill simplex (Nelder and Mead's) method: Gradient methods using the method of steepest descent, Quadratic functions, Newton-Raphson method, Conjugate directions, Fletcher-Reeves method, Davidson-Fletcher-Powell method. Constrained Optimisation: Equality constraints, Inequality constraints, Convexity and Concavity.

    2. Discipline specific applications: Modelling data using Non-linear least squares, Levenberg-Marquardt algorthm. Local and global optimisation using Simulated annealing, Genetic algorithms; Inverse problems; Regularisation: Applications of Local and global optimisation: simulated annealing and genetic algorithms in engineering problem solving procedures. Other Applications specific to engineering disciplines.

    Structure

    2 one-hour lectures, 1 one-hour tutorial and 1 one-hour computer application session per week.

    Assessment

    1st Attempt: 1 three-hour written examination paper (100%).

    EG 5094 - VLSI AND DIGITAL ARCHITECTURES
    Credit Points
    15
    Course Coordinator
    Dr DC Hendry

    Pre-requisites

    EG 3560 or EG40GA

    Notes

    Only available to candidates following an MEng programme or with the permission of Head of Engineering.

    Overview

    The course consists of essentially three blocks of lectures dealing with: semiconductor physics including the MOSFET and fabrication; CMOS circuits and design flows for their design; and digital architectures particularly for signal processing.

    The course starts with elements of the physics of semiconductors including charge transport, and a detailed study of the PN junction in both reverse and forward bias. Bipolar devices are briefly discussed. The MOSFET is discussed in detail including both first order and second order effects. This leads to a review of the SPICE circuit simulator and its use. This is followed by a description of the fabrication process for CMOS devices.

    CMOS circuit design is then described. Static logic gates and the design style known as "Standard Cell" are studied. The emphasis is on those aspects necessary for an understanding of a synthesis based CAD flow. The need for test of VLSI devices is discussed, and test methodologies considered.

    The final section of the course discusses synchronous digital architectures, an in particular those elements that are useful for digital signal processing. Architectures for multipliers are used as an example of how continued developments have improved the performance, and exploited the underlying technologies.

    Assessment

    1st Attempt: 1 three-hour written examination (80%); in-course assessment (20%).

    Resit: Not normally applicable.

    EG 5095 - SOLID MECHANICS AND MATERIALS MODELLING
    Credit Points
    15
    Course Coordinator
    Professor Ray Ogden

    Pre-requisites

    EG 3006

    Notes

    A range of techniques for analysing the mechanical behaviour of continuous and heterogeneous materials and structures is studied. Fundamental equations of solid and fluid mechanics are re-examined and a unified treatment of elasticity and flow of Newtonian fluids is given. The solution of Navier's equation of elasticity and Navier-Stokes equation for Newtonian fluids using the extremum method is discussed. The examples of non-linear and non-elastic constitutive equations are examined. The manufacturing of heterogeneous materials, their classification and use in construction are reviewed, with the particular focus on the emerging class of nanomaterials and nanotechnologies. The stress strain relations for different types of heterogeneous materials and their applications to the assessment of fracture and damage tolerance of heterogeneous engineering structures are presented. The compressive behaviour of direction-specific materials and the phenomenon of internal instability are discussed. The standard approaches to design of composite structures are introduced to the students. The joining technologies for fibre reinforced plastics and metal matrix composites are compared. The concept of multi-scale modelling of materials and structures is outlined.

    Overview

    Continuum Mechanics

    1. Mathematical foundations.
    Intorduction to Cartesian tensors: Summation conventions and alternating tensor; transformation of coordinates and tensor transformation laws; tensor algebra and tensor calculus; eigenvalues and eigenvectors; invariants of second order tensors. Tensor fields: divergence theorem of Gauss and its applications. (6 lectures)

    2. Stress: symmetrical and non-symmetrical stress tensors. Kinematics: Material (Lagrangian) and spatial (Eulerian) description; material derivative; deformation and strain tensors; deformation gradient. (3 lectures)

    3. Conservation laws
    Continuity equation; equation of motion; conservation of angular momentum; conservation of energy; the principle of virtual work. (3 lectures)

    4. Constitutive equations.
    Navier's equations for elasticity; Navier-Stokes equations for flow of Newtonian fluids. Examples of non-linear and non-elastic constitutive equations. (3 lectures)

    5. Computational methods.
    Introduction to extremum principles; solving Navier's equations for elasticity using extremum principle; variational approach as a basis for the finite element method. (3 lectures)

    Heterogenous Materials Modelling

    6. Overview of heterogeneous materials.
    Heterogeneous materials: traditional and new. Different types of heterogeneous materials. Overview of composites and their classification. Concrete and its use in construction. Granular materials. Ceramics. Functionally graded materials. Nanomaterials and nanotechnologies; manufacturing of nanomaterials. (4 lectures)

    7. Constitutive relationships for heterogeneous materials.
    Generalised Hooke's Law. General anisotropic materials. Orthotropic materials. Transversely isotropic materials. Restrictions on engineering constants. Transformation laws for the material constants. (3 lectures)

    8. Macro- and micro-mechanics of heterogeneous materials.
    Experimental and theoretical determination of effective properties of heterogeneous matreials. Strenght criteria. Failure theories. Specifics of compressive behaviour of direction-specific materials. Internal instability. (3 lectures)

    9. Applications of heterogeneous materials.
    Introduction to design of composite structures. Joining technologies for fibre reinforced plastics and metal matrix composites. Scaling effects. Multi-scale modelling of materials and structures. (2 lectures)

    Structure

    2 one-hour lectures per week, 3 on alternate weeks and 1 one-hour tutorial per week.

    Assessment

    1st Attempt: 1 three-hour written examination (100%).

    Resit: None.

    EG 5099 - UPSTREAM OIL AND GAS PROCESSING
    Credit Points
    15
    Course Coordinator
    Dr N Renton

    Pre-requisites

    EG3570; EG3575

    Overview

    Students will be introduced to the upstream systems and the processes involved in oil and gas treatment to condition the fluids for sales and disposal. Basic terminology and the interface with the hydrocarbon reservoir will be discussed. Fluid flow and the application to oil and gas well production will be covered. The use of equations of state and the development of heat and mass balances is presented. This is followed by a series of modules covering the major technologies and unit operations. The mechanisms involved in the separation of oil/gas/water are reviewed and models developed to allow residence time calculations to be made. Produced water treatment, gas compression and gas dehydration are then covered before moving onto to the topic of secondary recovery through the use of water injection and other methods. The topic of flow assurance deals with a range of physical phenomena present in upstream oil and gas systems related to the safe and continued operation of pipelines and flowlines. Fluid flow dynamics, particularly slugging, together with related effects; wax deposition, asphaltene precipitation, hydrate formation and sand are examined. The coupled flow and energy balance is reviewed. The subject of process safety and the many challenges posed by upstream oil and gas systems is tackled using a review of both theory and practical case studies. The taught material is supported by a range of simulation, laboratory, and, problem based learning exercises.

    Structure

    30 one-hour lectures; 6 one-hour tutorials and 3 three-hour practicals in total.

    Assessment

    1st Attempt: 1 three hour written examination (80%); continuous assessment (20%).

    Resit: 1 three hour written examination (100%).

    Formative Assessment

    Feedback

    EG 50AE - APPLIED ELECTROMAGENTICS
    Credit Points
    15
    Course Coordinator
    Dr C D Hendry

    Pre-requisites

    EG 3006

    Co-requisites

    None.

    Overview

    The course begins with a review of vector calculus and curvilinear coordinate systems. Fundamental results of electrostatic and magnetostatics are considered and their formulation in vector calculus. The basis of Maxwell's equations is discussed and applied to plane electromagnetic waves with emphasis on light. The course then turns to the technological applications of Maxwell's equations. Transmission lines are described, including impedance, reflections, terminations and matching. Finally, waveguides, both metal and dielectric are considered.

    Structure

    Thirty lectures and six tutorials plus weekly CAD sessions.

    Assessment

    1st Attempt: Written examination of three hours duration (80%) plus continuous assessment (report) (20%).

    Resit: The better of a written examination of 1) three hours duration (80%) plus the previous continuous assessment (20%), and 2) the written examination (100%).

    Formative Assessment

    Feedback

    EG 5570 - ENGINEERING MANAGEMENT III - APPLIED ENGINEERING MANAGEMENT TECHNIQUES
    Credit Points
    15
    Course Coordinator
    Mr J Cavanagh

    Pre-requisites

    EG3586 Engineering Management I and EG4570 Engineering Management II

    Overview

    The course aims to provide tools and techniques to enable students to draw conclusions and provide solutions to business and management issues which are applicable across various of corporate areas. The precise content may vary but typically includes topics such as Business Strategy, Programme Management, Management of Innovation, Leadership, Six sigma/Lean Manufacturing, Asset Management, Applied Economics & Corporate Social Responsibility.

    The course incorporates a compulsory residential course which aims to equip students with essential transferable skills which students will find invaluable in securing job and succeeding in their chosen career.

    Structure

    4 day residential course (9 hours per day).
    36 hrs of Lectures/Workshops/Tutorials.

    Assessment

    1st Attempt: 1 three-hour written examination (70%), continuous assessment (30%)

    Resit: 1 three-hour written examination (70%) and in-course assessment (30%) carried forward. For students who are unable to pass the course by taking a resit due to poor results in in-course assessment, the course must be retaken in its entirety.

    EG 5589 - GROUP PROJECT (MEng)
    Credit Points
    30
    Course Coordinator
    Dr J Harrigan

    Pre-requisites

    EG 4515 or EG 4513

    Co-requisites

    None

    Notes

    Available only to students in programme year 5 of an MEng programme or with the permission of the Head of Engineering.

    Overview

    Students are allocated to design teams which are supervised by members of the academic staff. The design project will be multi-disciplinary and students will work in there area of professional interest. As well as the technical aspects of the design, the design projects will require a wide variety of other issues to be addressed: safety, environmental, legal and commercial. In all cases project management, written communication, and oral presentation are included.

    Assessment

    1 Group design report (50%), 2 oral presentations (40%) and peer assessment (10%).

    EG 5597 - ADVANCED CHEMICAL ENGINEERING
    Credit Points
    15
    Course Coordinator
    Dr J Kiefer

    Pre-requisites

    EG40HA, EH40HB, EG40HC, EG3575, EG3570

    Overview

    The course content will be based on 5 advanced chemical engineering topics which will vary from year depending on research direction and challenegs facing the discipline. Examples are as follows:

  • Energy Storage & Power Generation;

  • Electrochemical processes and corrosion;

  • Spectroscopy and molecular characterisation of advanced materials and processes;
  • Multiphase flow;
  • Carbon-capture and storage;

  • Fuel Cells and Environmental Remediation.
  • Structure

    2-3 one hour lectures per week plus additional workshop sessions. (30 lectures total - 6 per topic).

    Assessment

    1st Attempt: 1 three hour written examination (50%); continuous assessment (50%).

    Resit: 1 three hour written examination (100%).

    Formative Assessment

    Feedback

    EG 5598 - APPLIED NUMERICAL METHODS
    Credit Points
    15
    Course Coordinator
    Dr D Pokrajac

    Pre-requisites

    None

    Notes

    The course covers a range of numerical methods suitable for solving wave equations. The theoretical part of the course deals with the derivations of the wave equations using the principles of solid mechanics, fluid mechanics and electromagnetic theory. The applied part of the course focuses on the following engineering problems: elastic waves in a rigid body, transient pipe flow and transient states in transmission lines. It covers several numerical methods suitable for solving hyperbolic equations. The methods are used to build simulation codes which can be used for solving a broad range of engineering problems.

    Overview

    Students carry out practical exercises using MATLAB for coding numerical solutions of wave equations. Numerical simulations are used as a virtual laboratory to investigate a selected practical engineering problem. The results of this investigation are presented in the report.

    Structure

    12 week course – 2 one-hour lectures per week for 12 weeks, 1 two-hour computing class per week for 8 weeks and 1 tutorial per week for 2 weeks.

    Assessment

    1st Attempt: 1 three-hour written examination paper (80%) and in-course assessment (20%).