EEE224 Circuit Theory II

6 ECTS - 4-2 Duration (T+A)- 4. Semester- 5 National Credit

Information

Unit FACULTY OF ENGINEERING
ELECTRICAL-ELECTRONIC ENGINEERING PR. (ENGLISH)
Code EEE224
Name Circuit Theory II
Term 2018-2019 Academic Year
Semester 4. Semester
Duration (T+A) 4-2 (T-A) (17 Week)
ECTS 6 ECTS
National Credit 5 National Credit
Teaching Language İngilizce
Level Lisans Dersi
Type Normal
Label C Compulsory
Mode of study Yüz Yüze Öğretim
Catalog Information Coordinator Prof. Dr. TURGUT İKİZ
Course Instructor Prof. Dr. TURGUT İKİZ (Bahar) (A Group) (Ins. in Charge)


Course Goal / Objective

Introduce the analysis of the ac circuit in phasor domain. Comprehend the ac power components. Introduc the concepts of the linear and ideal transformers. Give the concepts of the transfer function and filters. Comprehend the circuit analysis using Laplace transfpormation. Develop the concepts of the two terminal networks.

Course Content

The analysis of ac circuits in phasor domain. Power analysis in ac circuits. Mutual inductance, lineear and ideal transformers. Transfer functions and filters. Circuit analysis using Laplace transform technique. Two-port network and two- port network parameters.

Course Precondition

Resources

Notes

Fundamentals of Electric Circuits, Charles K. Alexander, McGraw-Hill


Course Learning Outcomes

Order Course Learning Outcomes
LO01 The student, upon succesful completion of this course
LO02 Analysis the ac circuit in phasor domain,
LO03 Apply the circuit theorem to simplify the circuit analysis in phasor domain,
LO04 Analysis the circuits including coils with mutual inductance and/or linear and/or ideal transformers,
LO05 Analysis the circuits excited by any time dependent sources using Laplace transform tecnique,
LO06 Divide a circuit into two-terminal subcircuits and determine the required parameters of this two-terminal subcircuits,
LO07 Analysis the circuit including two-terminal circuit with known parameters.


Relation with Program Learning Outcome

Order Type Program Learning Outcomes Level
PLO01 - Has capability in those fields of mathematics and physics that form the foundations of engineering. 0
PLO02 - Grasps the main knowledge in the basic topics of electrical and electronic engineering. 0
PLO03 - Comprehends the functional integrity of the knowledge gathered in the fields of basic engineering and electrical-electronics engineering. 5
PLO04 - Identifies problems and analyzes the identified problems based on the gathered professional knowledge. 0
PLO05 - Formulates and solves a given theoretical problem using the knowledge of basic engineering. 5
PLO06 - Has aptitude for computer and information technologies 0
PLO07 - Knows English at a level adequate to comprehend the main points of a scientific text, either general or about his profession, written in English. 4
PLO08 - Has the ability to apply the knowledge of electrical-electronic engineering to profession-specific tools and devices. 0
PLO09 - Has the ability to write a computer code towards a specific purpose using a familiar programming language. 0
PLO10 - Has the ability to work either through a purpose oriented program or in union within a group where responsibilities are shared. 2
PLO11 - Has the aptitude to identify proper sources of information, reaches them and uses them efficiently. 4
PLO12 - Becomes able to communicate with other people with a proper style and uses an appropriate language. 0
PLO13 - Internalizes the ethical values prescribed by his profession in particular and by the professional life in general. 0
PLO14 - Has consciousness about the scientific, social, historical, economical and political facts of the society, world and age lived in. 3


Week Plan

Week Topic Preparation Methods
1 Sinusoidals, phasors, terminal equations of circuit elements in phasor domain, impedance and atmittance, Basic laws in phasor domain, Equivalent impedance. Review of electric physiscs
2 Nodal analysis, Mesh analysis, superposition, source tranformations, Thevenin´s asnd Norton theorems in phasor domain Review of the previous lecture
3 Instantaneous and average power, maximum average power transfer theorem, effective value, apparent power and power factor Review of the previous lecture
4 Complex power, conservation of ac power, power factor correction Review of the previous lecture
5 Balanced three-phase voltages, Analysis of the Wye-Why circuits, Analysis of the Wye-delta circuits Review of the previous lecture
6 Analysis of the delta-delta circuits, Analysis of the delta-Wye circuits, Power analysis in three-phase circuits Review of the previous lecture
7 Midterm examination Review all of the previous lectures
8 Mutual inductance, energy in coupled coils, linear transformers, ideal transformers, ideal autotransformers Review of th Faraday´s law
9 Transfer functions, Series and parallel resonance circuits, Passive filters Review of the previous lecture
10 Bandwidth, quality factor, Determination of the characteristics of a general circuit Review of the previous lecture
11 Active filters; first order low-pass filter, first order high-pass filter, band-pass filter, band-stop filter Review of the previous lecture
12 Definition of the Laplace transform, properties of the Laplace transform, inverse Laplace transform Review of the previous lecture
13 The application of the Laplace transform to the electrical circuits, network stability and network synthesis in s-domain Review of the previous lecture
14 Impedance parameters, admittance parameters, hybrid parameters, transmission parameters Review of the previous lecture
15 Relationships between the parameters, interconnections of the two-port networks, Analysis of the networks including two-port networks with knowing parameters Review of the previous lecture
16 Final examination Review all of the previous lectures
17 Final examination Review all of the previous lectures


Assessment (Exam) Methods and Criteria

Assessment Type Midterm / Year Impact End of Term / End of Year Impact
1. Midterm Exam 100 40
General Assessment
Midterm / Year Total 100 40
1. Final Exam - 60
Grand Total - 100


Student Workload - ECTS

Works Number Time (Hour) Workload (Hour)
Course Related Works
Class Time (Exam weeks are excluded) 14 4 56
Out of Class Study (Preliminary Work, Practice) 14 5 70
Assesment Related Works
Homeworks, Projects, Others 0 0 0
Mid-term Exams (Written, Oral, etc.) 1 6 6
Final Exam 1 18 18
Total Workload (Hour) 150
Total Workload / 25 (h) 6,00
ECTS 6 ECTS

Update Time: 30.04.2025 01:06