ELECTRICAL - ELECTRONICS ENGINEERING (ENGLISH) | |||||
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Qualification Awarded | Program Süresi | Toplam Kredi (AKTS) | Öğretim Şekli | Yeterliliğin Düzeyi ve Öğrenme Alanı | |
Bachelor's (First Cycle) Degree | 4 | 240 | FULL TIME |
TYÇ, TR-NQF-HE, EQF-LLL, ISCED (2011):Level 6 QF-EHEA:First Cycle TR-NQF-HE, ISCED (1997-2013): 52 |
Course Code: | 1400121006 | ||||||||||
Ders İsmi: | Physics II | ||||||||||
Ders Yarıyılı: | Spring | ||||||||||
Ders Kredileri: |
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Language of instruction: | EN | ||||||||||
Ders Koşulu: | |||||||||||
Ders İş Deneyimini Gerektiriyor mu?: | No | ||||||||||
Other Recommended Topics for the Course: | |||||||||||
Type of course: | Necessary | ||||||||||
Course Level: |
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Mode of Delivery: | Face to face | ||||||||||
Course Coordinator : | Dr.Öğr.Üyesi Şeyda ŞAHİNER | ||||||||||
Course Lecturer(s): |
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Course Assistants: |
Course Objectives: | The aim of this course is to teach fundemantal concepts and laws of electricity and magnetism and in particular, to have students learn for themselves how physics as a discipline can be used to obtain a deep understanding of how the world works. |
Course Content: | Electric Charge, Coulomb's Law, Electric Fields, Electric Flux, Gauss’ Law, Electric Potential, Capacitance, Current and Resistance, Ohm's Law, Power, Circuits, Kirchhoff's Rules, Magnetic Forces, Biot-Savart Law, Two conductor parallel wires, Magnetic Field Due to Currents, Ampere's Law, Magnetic Flux, Faraday's Law, Lenz's Law, Induction |
The students who have succeeded in this course;
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Week | Subject | Related Preparation |
1) | Chapter 23. Electric Fields 23.1 Properties of Electric Charges. 23.2 Charging Objects by Induction. 23.3 Coulomb's Law. | |
2) | Chapter 23. continues 23.4 Analysis Model: Particle in an Electric Field. 23.5 Electric Field of a Continuous Charge Distribution. 23.6 Electric Field Lines. 23.7 Motion of Charged Particles in a Uniform Electric Field. | |
3) | Chapter 24. Gauss's Law 24.1 Electric Flux. 24.2 Gauss's Law. 24.3 Application of Gauss's Law to Various Charge Distributions. 24.4 Conductors in Electrostatic Equilibrium. | |
4) | Chapter 25. Electric Potential 25.1 Electric Potential and Potential Difference. 25.2 Potential Differences in a Uniform Electric Field. 25.3 Electric Potential and Potential Energy Due to Point Charges. 25.4 Obtaining the Value of the Electric Field from the Electric Potential. 25.5 Electric Potential Due to Continuous Charge Distributions. 25.6 Electric Potential Due to a Charged Conductor. | |
5) | Chapter 26. Capacitance and Dielectrics 26.1 Definition of Capacitance. 26.2 Calculating Capacitance. 26.3 Combinations of Capacitors. 26.4 Energy Stored in a Charged Capacitor. 26.5 Capacitors with Dielectrics. | |
6) | Chapter 27. Current and Resistance 27.1 Electric Current. 27.2 Resistance. 27.4 Resistance and Temperature. 27.6 Electrical Power | |
7) | Chapter 28. Direct Current Circuits 28.1 Electromotive Force 28.2 Resistors in Series and Parallel. 28.3 Kirchhoff's Rules. | |
8) | Midterm Exam | |
9) | Chapter 28. continues 28.4 RC Circuits. Chapter 29. Magnetic Fields 29.1 Analysis Model: Particle in a Magnetic Field. 29.2 Motion of a Charged Particle in a Uniform Magnetic Field. | |
10) | Chapter 29. continues 29.3 Applications Involving Charged Particles Moving in a Magnetic Field 29.4 Magnetic Force Acting on a Current-Carrying Conductor. 29.5 Torque on a Current Loop in a Uniform Magnetic Field. | |
11) | Chapter 30. Sources of Magnetic Field 30.1 The Biot-Savart Law. 30.2 The Magnetic Force Between Two Parallel Conductors. 30.3 Ampere's Law. | |
12) | Chapter 30. continues 30.4 The Magnetic Field of a Solenoid. 30.5 Gauss's Law in Magnetism. 34.1 Displacement Current and the General Form of Ampere's Law. 34.2 Maxwell's Equations. | |
13) | Chapter 31. Faraday's Law 31.1 Faraday's Law of Induction. 31.2 Motional emf. 31.3 Lenz's Law. 31.4 Induced emf and Electric Fields. 31.5 Generators and Motors. | |
14) | Chapter 32. Inductance 32.1 Self-Induction and Inductance. 32.2 RL Circuits. 32.3 Energy in a Magnetic Field. 32.4 Mutual Inductance. 32.5 Oscillations in an LC Circuit. | |
15) | General Review | |
16) | Final Exam |
Course Notes / Textbooks: | Physics for Scientists & Engineers, R. A. Serway & J. W. Jewett, 9th Edition |
References: | University Physics, Young & Freedman Fundamentals of Physics, Halliday & Resnick |
Ders Öğrenme Kazanımları | 1 |
2 |
3 |
3 |
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Program Outcomes | ||||||||||
1) Adequate knowledge in mathematics, science and related engineering disciplines; ability to use theoretical and applied knowledge in these areas to solve complex engineering problems | ||||||||||
2) Ability to identify, formulate and solve complex Electrical and Electronics Engineering problems; ability to select and apply appropriate analysis and modelling methods for this purpose | ||||||||||
3) Ability to design a complex system, process, device or product under realistic constraints and conditions to meet specific requirements; ability to apply modern design methods for this purpose | ||||||||||
4) Ability to select and use modern techniques and tools necessary for the analysis and solution of complex problems encountered in Electrical and Electronics Engineering practice; ability to use information technologies effectively | ||||||||||
5) Ability to design and conduct experiments, collect data, analyse and interpret results for investigating complex Electrical and Electronics Engineering problems or discipline-specific research topics | ||||||||||
6) Ability to work effectively in disciplinary and multidisciplinary teams; ability to work individually | ||||||||||
7) Ability to communicate effectively both orally and in writing; knowledge of at least one foreign language; ability to write effective reports and understand written reports, to prepare design and production reports, to make effective presentations, to give and receive clear and understandable instructions | ||||||||||
8) Awareness of the necessity of lifelong learning; the ability to access information, to follow developments in science and technology and to constantly renew oneself | ||||||||||
9) Knowledge about behaving in accordance with ethical principles, professional and ethical responsibility and standards used in Electrical and Electronics Engineering applications | ||||||||||
10) Knowledge about business life practices such as project management, risk management and change management; awareness about entrepreneurship, innovation; knowledge about sustainable development | ||||||||||
11) Knowledge about the effects of engineering practices on health, environment and safety in universal and social dimensions and knowledge about contemporary issues reflected in the field of Electrical and Electronics Engineering; awareness of the legal consequences of engineering solutions |
No Effect | 1 Lowest | 2 Low | 3 Average | 4 High | 5 Highest |
Program Outcomes | Level of Contribution | |
1) | Adequate knowledge in mathematics, science and related engineering disciplines; ability to use theoretical and applied knowledge in these areas to solve complex engineering problems | 5 |
2) | Ability to identify, formulate and solve complex Electrical and Electronics Engineering problems; ability to select and apply appropriate analysis and modelling methods for this purpose | |
3) | Ability to design a complex system, process, device or product under realistic constraints and conditions to meet specific requirements; ability to apply modern design methods for this purpose | |
4) | Ability to select and use modern techniques and tools necessary for the analysis and solution of complex problems encountered in Electrical and Electronics Engineering practice; ability to use information technologies effectively | |
5) | Ability to design and conduct experiments, collect data, analyse and interpret results for investigating complex Electrical and Electronics Engineering problems or discipline-specific research topics | 3 |
6) | Ability to work effectively in disciplinary and multidisciplinary teams; ability to work individually | 3 |
7) | Ability to communicate effectively both orally and in writing; knowledge of at least one foreign language; ability to write effective reports and understand written reports, to prepare design and production reports, to make effective presentations, to give and receive clear and understandable instructions | |
8) | Awareness of the necessity of lifelong learning; the ability to access information, to follow developments in science and technology and to constantly renew oneself | |
9) | Knowledge about behaving in accordance with ethical principles, professional and ethical responsibility and standards used in Electrical and Electronics Engineering applications | |
10) | Knowledge about business life practices such as project management, risk management and change management; awareness about entrepreneurship, innovation; knowledge about sustainable development | |
11) | Knowledge about the effects of engineering practices on health, environment and safety in universal and social dimensions and knowledge about contemporary issues reflected in the field of Electrical and Electronics Engineering; awareness of the legal consequences of engineering solutions |
Course | |
Grup çalışması ve ödevi | |
Labs | |
Problem Çözme | |
Rapor Yazma |
Yazılı Sınav (Açık uçlu sorular, çoktan seçmeli, doğru yanlış, eşleştirme, boşluk doldurma, sıralama) | |
Homework | |
Uygulama | |
Raporlama |
Semester Requirements | Number of Activities | Level of Contribution |
Laboratory | 1 | % 20 |
Homework Assignments | 1 | % 10 |
Midterms | 1 | % 30 |
Semester Final Exam | 1 | % 40 |
total | % 100 | |
PERCENTAGE OF SEMESTER WORK | % 60 | |
PERCENTAGE OF FINAL WORK | % 40 | |
total | % 100 |
Activities | Number of Activities | Duration (Hours) | Workload |
Course Hours | 14 | 3 | 42 |
Laboratory | 14 | 2 | 28 |
Study Hours Out of Class | 14 | 4 | 56 |
Quizzes | 1 | 2 | 2 |
Midterms | 1 | 2 | 2 |
Final | 1 | 3 | 3 |
Total Workload | 133 |