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TR

CIRCUIT THEORY I

Course
EEE202 - CIRCUIT THEORY I
Department
Electrical - Electronic Engineering - English - Master
Course Type
Scientific Preparation
Status
Required
Language
English
Credit
0
ECTS
0
T+P+L
0 + 0 + 0
Course Coordinator(s)
Asst. Prof. Dr. Mehmet ŞENOL
Prerequisite
-
Keywords
-

Course Description

-

CIRCUIT THEORY I

Evaluation Tools (Active Term)

Item Type Weight (%)
Mid-Term Exam Midterm 35
Final Exam Final 45
Project Project 10
Laboratory Assignment 10
Total 100

Course outcomes

  1. 01 To be able to Identify linear systems and represent those systems in schematic form
  2. 02 To be able to Apply Kirchhoff's current and voltage laws and Ohm's law to circuit problems
  3. 03 To be able to Simplify circuits using series and parallel equivalents and using Thevenin and Norton equivalents
  4. 04 To be able to Perform node and loop analyses and set these up in standard matrix format
  5. 05 To be able to Identify and model first and second order electric systems involving capacitors and inductors
  6. 06 To be able to Predict the transient behavior of first and second order circuits

Course Syllabus

Week Topic
Week 1 Introduction, basic concepts in electronics, Kirchoff's Voltage and Current Laws
Week 2 Tellegen's Theorem, power and energy, voltage sources, resistive circuits ohms law
Week 3 Resistive ciruits, parallel resistances and resistive networks, voltage and current dividers
Week 4 Graphical Analysis of the circuit properties
Week 5 Resistive ciruits, parallel resistances and resistive networks, voltage and current dividers
Week 6 Nodal Analysis
Week 7 Midterms
Week 8 Mesh Analysis
Week 9 Circuit Theorems, Linearity Property,Superposition,Source Transformation
Week 10 Resistive Circuits, thevenin equivalent, norton equivalent circuits, source transformation, maximum power transfer
Week 11 Capacitors
Week 12 Inductors
Week 13 Inductance and Capacitance, steady state and transient analysis
Week 14 Revision
Week 15 -

Reference Books & Course Materials

  1. 01 Electrical Engineering Principles and Applications, 3rd Edition, by Allan R. Hambley, Pearson Education 2005.
  2. 02 Electronics for Computer Technology, Terrell, Thomson Delmar Learning, 2003
  3. 03 Fundamentals of Electric Circuits (Third Edition), C. K. Alexander, M. N. O. Sadiku, McGraw Hill, 2007
  4. 04 Electric Circuits Fundamentals, 6th Edition, by Thomas L. Floyd, Pearson Education 2004.

Learning Outcomes

  1. L01 To be able to Identify linear systems and represent those systems in schematic form
  2. L02 To be able to Apply Kirchhoff's current and voltage laws and Ohm's law to circuit problems
  3. L03 To be able to Simplify circuits using series and parallel equivalents and using Thevenin and Norton equivalents
  4. L04 To be able to Perform node and loop analyses and set these up in standard matrix format
  5. L05 To be able to Identify and model first and second order electric systems involving capacitors and inductors
  6. L06 To be able to Predict the transient behavior of first and second order circuits

Program Outcomes

No program outcomes have been defined.

Po-Lo Matrix

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