Undergraduate
Faculty of Engineering and Architecture
Electrical and Electronics Engineering
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Electromagnetic Wave Theory

Course CodeSemester Course Name LE/RC/LA Course Type Language of Instruction ECTS
EE5321 5 Electromagnetic Wave Theory 2/2/0 CC English 5
Course Goals
To develop an understanding of fundamental concepts, rules and analysis methods used in electromagnetic wave theory.
 
Prerequisite(s) None
Corequisite(s) None
Special Requisite(s) -
Instructor(s) Assoc. Prof. Hamid TORPİ
Course Assistant(s) -
Schedule Tuesday 11:00-13:50 Wednesday 09:00-10:50
Office Hour(s) Monday 13:30-15:00, Friday 14:00-16:00 / D-05
Teaching Methods and Techniques presentation and application
Principle Sources David Cheng, Field and Wave Electromagnetics, Addison-Wesley.

Fawwaz Ulaby, Fundamentals of Applied Electromagnetics, Pearson Prentice Hall.
Other Sources -
Course Schedules
Week Contents Learning Methods
1. Week Introduction, Maxwell equations, Time-Harmonic Fields presentation and application
2. Week Wave Propagation presentation and application
3. Week Wave Propagation in Lossless Media presentation and application
4. Week General Relation between E and H presentation and application
5. Week Polarization presentation and application
6. Week Wave Propagation in Lossy Media Poynting vector, Power, Skin depth , complex Poynting vector, presentation and application
7. Week Midterm Exam
8. Week Reflection and refraction. presentation and application
9. Week Reflection and refraction. presentation and application
10. Week Normal Incidence. presentation and application
11. Week Oblique Incidence. presentation and application
12. Week Total reflection, non-homogeneous waves. presentation and application
13. Week Refraction and reflection from a lossy medium. presentation and application
14. Week Review presentation and application
15. Week
16. Week
17. Week
Assessments
Evaluation tools Quantity Weight(%)
Midterm(s) 1 40
Final Exam 1 60


Program Outcomes
PO-1Adequate knowledge in mathematics, science and engineering subjects pertaining to the relevant discipline; ability to use theoretical and applied information in these areas to model and solve engineering problems.
PO-2Ability to identify, formulate, and solve complex engineering problems; ability to select and apply proper analysis and modeling methods for this purpose.
PO-3Ability to design a complex system, process, device or product under realistic constraints and conditions, in such a way so as to meet the desired result; ability to apply modern design methods for this purpose. (Realistic constraints and conditions may include factors such as economic and environmental issues, sustainability, manufacturability, ethics, health, safety issues, and social and political issues according to the nature of the design.)
PO-4Ability to devise, select, and use modern techniques and tools needed for engineering practice; ability to employ information technologies effectively.
PO-5Ability to design and conduct experiments, gather data, analyze and interpret results for investigating engineering problems.
PO-6Ability to work efficiently in intra-disciplinary and multi-disciplinary teams; ability to work individually.
PO-7Ability to communicate effectively, both orally and in writing; knowledge of a minimum of one foreign language.
PO-8Recognition of the need for lifelong learning; ability to access information, to follow developments in science and technology, and to continue to educate him/herself.
PO-9Awareness of professional and ethical responsibility.
PO-10Information about business life practices such as project management, risk management, and change management; awareness of entrepreneurship, innovation, and sustainable development.
PO-11Knowledge about contemporary issues and the global and societal effects of engineering practices on health, environment, and safety; awareness of the legal consequences of engineering solutions.
Learning Outcomes
LO-1Solve reduced wave equation for time-varying fields in a simple medium by using Maxwell equations,
LO-2Defining the plane wave, calculate the basic problems of electromagnetic wave theory using plane wave approach.
LO-3Solve solutions of the Helmholtz equation for monochromatic waves,
LO-4Explain the concept of reflection and refraction of an incident monochromatic plane wave through a plane seperating two different mediums; Calculate reflection and transmission coefficients, and the power density.
Course Assessment Matrix:
Program Outcomes - Learning Outcomes Matrix
 PO 1PO 2PO 3PO 4PO 5PO 6PO 7PO 8PO 9PO 10PO 11