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Study information

Engineering Electromagnetics - 2024 entry

MODULE TITLEEngineering Electromagnetics CREDIT VALUE15
MODULE CODEENG3004 MODULE CONVENERUnknown
DURATION: TERM 1 2 3
DURATION: WEEKS 11 0 0
Number of Students Taking Module (anticipated) 30
DESCRIPTION - summary of the module content

A fundamental knowledge of electromagnetics is critical when pursuing a career in electronic engineering, providing you with understanding of how signals travel in conductors and in space for applications in communications and antenna systems and foundation for designing such systems. Beginning with the physical exploration of electromagnetics, you will study the origins of electric and magnetic fields, looking at the historical impact and application of electromagnetism. Furthermore, you will investigate electrostatics and the electric field as well as magnetic forces and magnetostatics, applying this knowledge to real world engineering problems; exploring theories, such as Maxwell's equations, you will develop essential problem-solving tools. Meanwhile, studying communication systems, you will consider elements such as the transmission of mobile phone signals and how radio works, incorporating Hertz's first measurement of radio waves. Case studies will challenge you to design your own antireflection coating for commercial solar cell of your choice and to evaluate its efficiency through simulation of transmission and reflection of light.

AIMS - intentions of the module

The aim of this module is to introduce you to the fundamental principles of electromagnetics, and to teach you how to apply theory to areas of technological importance, including communication systems, antenna design and energy harvesting systems. At the end of this module, you will understand the basic principles of electromagnetics, and have a solid foundation in tackling and analysing problems associated with electromagnetic technologies.

INTENDED LEARNING OUTCOMES (ILOs) (see assessment section below for how ILOs will be assessed)

This is a constituent module of one or more degree programmes which are accredited by a professional engineering institution under licence from the Engineering Council. The learning outcomes for this module have been mapped to the output standards required for an accredited programme, as listed in the current version of the Engineering Council’s ‘Accreditation of Higher Education Programmes’ document (AHEP-V3).

This module contributes to learning outcomes: SM1p, SM1m, SM2p, SM2m, EA1p, EA1m, EA2p, EA3p, EA2m, EA3m, EA5m, D3p, D3m, EP2p, EP2m, EP4p, EP4m, G1p-G3p, G1m-G3m

The AHEP document can be viewed in full on the Engineering Council’s website, at http://www.engc.org.uk/

On successful completion of this module, you should be able to:

Module Specific Skills and Knowledge: SM1p, SM1m, SM2p, SM2m, EA1p, EA1m, EA2p, EA3p, EA2m, EA3m, EA5m, D3p, D3m, EP2p, EP2m, EP4p, EP4m

1 describe the physical origins of electric and magnetic fields, the relationships between charge, current and fields in terms of Gauss's law, Ampere's law and Faraday's law and field relationships in dielectric and magnetic materials;

2 explain the relationship with capacitance and inductance, the mathematical form of a 1-D travelling wave and the significance of the 3-D wave equation, the form of electrical disturbances travelling in transmission lines, and the important aspects of antenna design;

3 apply  knowledge about 1 and 2 to the solution of 'real-world' engineering problems.

Discipline Specific Skills and Knowledge:

4 use mathematical software (Matlab) to model (electromagnetic) phenomena and systems, as well as to design practical systems.

Personal and Key Transferable/ Employment Skills and Knowledge: G1p-G3p, G1m-G3m

5 monitor your own progress through assignments and case study.

6 assess the effectiveness of your learning strategies, including time management, and modify appropriately;

7 use a variety of information sources to understand and supplement lecture material.
 

SYLLABUS PLAN - summary of the structure and academic content of the module
Introduction to Electromagnetic Waves and their propagation in different media
 
Transmission Lines and Waveguides
 
Maxwell’s Equations Wave Equation
 
Antenna and Radiation
 
Review of Modern EM Applications and Future Developments
LEARNING AND TEACHING
LEARNING ACTIVITIES AND TEACHING METHODS (given in hours of study time)
Scheduled Learning & Teaching Activities 42 Guided Independent Study 108 Placement / Study Abroad 0
DETAILS OF LEARNING ACTIVITIES AND TEACHING METHODS
Category Hours of study time Description
Scheduled learning & teaching activities 22 Lecture
Scheduled learning & teaching activities 20 Tutorial
Guided Independent Study 108 Preparation for scheduled sessions, follow-up work, wider reading or practice, completion of assessment tasks, revision

 

ASSESSMENT
FORMATIVE ASSESSMENT - for feedback and development purposes; does not count towards module grade
Form of Assessment Size of Assessment (e.g. duration/length) ILOs Assessed Feedback Method
None      
       

 

SUMMATIVE ASSESSMENT (% of credit)
Coursework 30 Written Exams 70 Practical Exams 0
DETAILS OF SUMMATIVE ASSESSMENT
Form of Assessment % of Credit Size of Assessment (e.g. duration/length) ILOs Assessed Feedback Method
Written exam – closed book 70 2 Hours 1-3, 6 (MC 1, 2)  Exam mark
Case Study Report 30 30 Hours 1-6 (MC 1, 2, 3, 4) On BART sheet, written and verbal (final tutorial)

 

DETAILS OF RE-ASSESSMENT (where required by referral or deferral)
Original Form of Assessment Form of Re-assessment ILOs Re-assessed Time Scale for Re-assessment
All of the above Exam (2 hours) 1 – 3, 6 (MC 1, 2)  Referral/deferral period

 

RE-ASSESSMENT NOTES

Deferrals: Reassessment will be by coursework and/or exam in the deferred element only. For deferred candidates, the module mark will be uncapped.

Referrals: Reassessment will be by a single written exam worth 100% of the module. As it is a referral, the mark will be capped at 40%.

 

RESOURCES
INDICATIVE LEARNING RESOURCES - The following list is offered as an indication of the type & level of
information that you are expected to consult. Further guidance will be provided by the Module Convener

Reading list for this module:

Type Author Title Edition Publisher Year ISBN
Set Fawwaz T. Ulaby, Eric Michielssen, Umberto Ravaioli Fundamentals of Applied Electromagnetics 7th Pearson 2015 9781292082455
Set Kraus, John and Daniel Fleisch Electromagnetics with Applications 5th Prentice-Hall 1999 000-0-201-32678-7
Set Popovic, Z and Popovic, B Introductory Electromagnetics Prentice Hall 1999 000-0-201-32678-7
CREDIT VALUE 15 ECTS VALUE 7.5
PRE-REQUISITE MODULES ENG1002, ENG2009
CO-REQUISITE MODULES
NQF LEVEL (FHEQ) 6 AVAILABLE AS DISTANCE LEARNING No
ORIGIN DATE Tuesday 14th May 2019 LAST REVISION DATE Friday 13th September 2024
KEY WORDS SEARCH Electromagnetics; wave propagation; transmission systems design.

Please note that all modules are subject to change, please get in touch if you have any questions about this module.