Course
BME4134020
ELECTROMAGNETICS
Biomedical Engineering
- LECTURE
- 3
- LAB
- 0
- CREDITS
- 3
- ECTS
- 6
REQUIRES
REQUIRED BY
None
TAUGHT IN
AIM
In this course, the key concept that makes up electromagnetics are studied so that students are able to understand how electromagnetic waves are generated and radiated. This way the transfer of energy or information from a point to another will be better understood whether the medium is wired or wireless.
CONTENT
This course contains; Coulomb law, electric field and potential, dielectrics.,Gauss’ law, capacitance, boundary value problems.,DC current, Ohm’s and Kirchoff’s current laws.,Energy, Joule’s law, resistance.,Biot-Savart law and applications.,Ampere’s law, magnetization, and applications,Magnetic materials and energy.,Force, torque and magneto statics boundary value problems.,Inductances,Faraday’s law. Lenz’s law.,Maxwell equations.,Plane Waves.,Fresnel’s and Snell’s law,Introduction to RF Transmission Lines..
LEARNING OUTCOMES
- 1
1. Understanding of Coulomb's law and the related concepts.
Taught by: Problem Solving Method, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Oral Exam, Homework, Quiz
- 2
2. Understanding of Gauss' law and the related concepts.
Taught by: Problem Solving Method, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Oral Exam, Homework, Quiz
- 3
4. Understanding Faraday's and Lenz's laws.
Taught by: Problem Solving Method, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Oral Exam, Homework, Quiz
- 4
5. Understanding magnetism.
Taught by: Problem Solving Method, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Oral Exam, Homework, Quiz
- 5
5. By understanding Maxwell's equation, developing the ability to generate electromagnetic waves.
Taught by: Problem Solving Method, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Oral Exam, Homework, Quiz
WEEKLY PLAN
- WEEK 1
Coulomb law, electric field and potential, dielectrics.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 2
Gauss’ law, capacitance, boundary value problems.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 3
DC current, Ohm’s and Kirchoff’s current laws.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 4
Energy, Joule’s law, resistance.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 5
Biot-Savart law and applications.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 6
Ampere’s law, magnetization, and applications
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 7
Magnetic materials and energy.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 8
Force, torque and magneto statics boundary value problems.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 9
Inductances
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 10
Faraday’s law. Lenz’s law.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 11
Maxwell equations.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 12
Plane Waves.
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 13
Fresnel’s and Snell’s law
Preparation: Related chapters/sections of the Notes and Textbook
- WEEK 14
Introduction to RF Transmission Lines.
Preparation: Related chapters/sections of the Notes and Textbook
ASSESSMENT
- Rate of Midterm Exam to Success30%
- Rate of Final Exam to Success70%
WORKLOAD
| ACTIVITY | COUNT | HOURS | TOTAL |
|---|---|---|---|
| Course Hours | 14 | 3 | 42 |
| Guided Problem Solving | 6 | 2 | 12 |
| Resolution of Homework Problems and Submission as a Report | 6 | 8 | 48 |
| Term Project | 0 | 0 | 0 |
| Presentation of Project / Seminar | 0 | 0 | 0 |
| Quiz | 5 | 3 | 15 |
| Midterm Exam | 1 | 24 | 24 |
| General Exam | 1 | 24 | 24 |
| Performance Task, Maintenance Plan | 0 | 0 | 0 |
READING
- Fawwaz T. Ulaby, Umberto Ravaioli, Fundamentals of Applied Electromagnetics, 2020, 8th Ed., Galobal Ed. Pearson, ISBN 10: 1-292-43673-5.
- David K. Cheng, Fundamentals of Engineering Electromagnetics, 2013, Pearson, ISBN :9781292026589 Other electromagnetics books.
TEACHING STAFF
- Assoc.Prof. Hüseyin Şerif SAVCICOORDINATOR
- Assoc.Prof. Hüseyin Şerif SAVCI