Skip to main content
TR

CIRCUIT THEORY II

Course
EELE212 - CIRCUIT THEORY II
Department
Electrical - Electronic Engineering - English - PhD
Course Type
Scientific Preparation
Status
Required
Language
English
Credit
0
ECTS
0
T+P+L
0 + 0 + 0
Course Coordinator(s)
Assoc. Prof. Dr. Pouya BOLOURCHI
Prerequisite
-
Keywords

Course Description

Impedance, admittance and Kirchhoff"s laws in the frequency domain. Sinusoidal steady state analysis using the nodal and mesh techniques. Sinusoidal steady state analysis using source transformation and superposition. Thevenin and Norton Equivalents in the frequency domain. Instantenous power, average power and RMS value. Maximum average power transfer. Apparent power, power factor and the complex power. Power factor correction. Balanced Three-Phase voltages. Balanced Three-Phase connections: Y-Y, Y-Delta, Delta-Delta. Power in three phase systems. Mutual inductance and energy in a coupled circuit. Linear transformers. Ideal transformers. Transfer function, the decibel scale and Bode plots. Series and parallel resonance. Passive filters Active filters, properties of the Laplace transform. Applicaton of the Laplace transform. Application to integrodifferential equations and network stability.

CIRCUIT THEORY II

Evaluation Tools (Active Term)

Item Type Weight (%)
Midterm Midterm 35
Final Final 45
Lab Project 10
Quiz Quiz 5
Assignment Assignment 5
Total 100

Course outcomes

No course outcomes have been defined yet.

Course Syllabus

Week Topic
Week 1 Sinusoids and Phasors
Week 2 Sinusoids and Phasors
Week 3 Sinusoidal Steady-State Analysis
Week 4 Sinusoidal Steady-State Analysis
Week 5 AC Power Analysis
Week 6 AC Power Analysis
Week 7 Three-Phase Circuits
Week 8 Three-Phase Circuits
Week 9 Midterm Exam Week
Week 10 Magnetically Coupled Circuits
Week 11 Magnetically Coupled Circuits
Week 12 Frequency Response
Week 13 Frequency Response
Week 14 The Laplace Transform and Circuit Analysis in the s-Domain
Week 15 Final

Reference Books & Course Materials

  1. 01 1) K. Alexander, M. N. O. Sadiku,Electric Circuits(4th Edition), McGraw-Hill, Inc, USA, 2003.
  2. 02 2) R. Johnson,J. L. Hilburn, Electric Circuit Analysis (3rd Edition), Prentice-Hall, USA, 1997.J. W. Nilsson, S. A. .

Learning Outcomes

No learning outcomes have been defined.

Program Outcomes

  1. Based on master's-level qualifications, be able to develop and deepen current and advanced knowledge in the field at the level of expertise through original thinking and/or research, and achieve original conceptualizations that contribute innovation to the field.
  2. Should be able to comprehend the interdisciplinary interactions related to their field and employ specialized knowledge to analyze, synthesize, and evaluate new and complex ideas, leading to original conclusions.
  3. Should be able to systematically evaluate and apply new knowledge in their field.
  4. Should be able to develop innovative ideas, methods, designs, and/or applications that contribute to the advancement of the field, or apply existing ideas, methods, designs, and/or applications to a different field. Should be able to investigate, comprehend, design, adapt, and implement original research topics.
  5. hould be able to critically analyze, synthesize, and evaluate new and complex ideas.
  6. Should demonstrate advanced proficiency in the application of research methods in studies related to their field.
  7. Should be able to independently conduct original research that develops innovative ideas, methods, designs, and/or applications, or applies existing ideas, methods, designs, and/or applications to a different field, thereby contributing to the advancement of their field.
  8. Should be able to extend the frontiers of knowledge in their field by publishing at least one scientific article in a national and/or international peer-reviewed journal and/or by producing or critically interpreting an original work.
  9. Should be able to demonstrate leadership in addressing original and interdisciplinary problems within complex environments.
  10. Should be able to develop innovative ideas and methods in their field through the effective use of higher-order cognitive skills, including creative and critical thinking, problem-solving, and decision-making.
  11. Should be able to critically analyze and enhance social relationships and the norms that shape these relationships, and lead actions toward their transformation when necessary.
  12. Should be able to defend original viewpoints when discussing issues related to their field with experts and establish effective communication that demonstrates their expertise and competence in the field.
  13. Should be able to conduct advanced written, oral, and visual communication and participate in discussions using at least one foreign language at the C1 level of the European Language Portfolio.
  14. Should be able to contribute to the development and sustainability of a knowledge society by disseminating scientific, technological, social, and cultural advancements related to their field.
  15. Should be able to engage in effective interactions by employing strategic decision-making processes to address and solve problems encountered in their field.
  16. Should be able to contribute to solving social, scientific, cultural, and ethical issues related to their field and promote the advancement of these values.
  17. Based on master's-level qualifications, be able to develop and deepen current and advanced knowledge in the field at the level of expertise through original thinking and/or research, and achieve original conceptualizations that contribute innovation to the field.

Po-Lo Matrix

The PO-LO matrix has not been populated yet.