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About the Program Educational Objectives Key Learning Outcomes Course Structure Diagram with Credits Field Qualifications Matrix of Course& Program Qualifications Matrix of Program Outcomes&Field Qualifications
  • Faculty of Engineering
  • Dept.of Electrical and Electronics Engineering(Eng)
  • Course Structure Diagram with Credits
  • Linear Control Systems
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  • Description
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Course Introduction Information

Code - Course Title EEM491 - Linear Control Systems
Course Type Area Elective Courses
Language of Instruction İngilizce
Laboratory + Practice 3+0
ECTS 5.0
Course Instructor(s) DOKTOR ÖĞRETİM ÜYESİ SEMİHA TÜRKAY
Mode of Delivery
Prerequisites
Courses Recomended
Recommended Reading List * R.C. Dorf, Modern Control Systems, Addison-Wesley, 1989.
Assessment methods and criteria
Work Placement
Sustainability Development Goals

Content

Weeks Topics
Week - 1 Introduction to linear control systems. Linearization of nonlinear systems.
Week - 2 Frequency response of linear systems.
Week - 3 Nyquist stability criterion. Relative stability.
Week - 4 Stability (phase and gain) margins. Steady-state errors. Compensation by static gain controllers.
Week - 5 Compensation by dynamic controllers. Phase-lead and phase-lag controllers. Transient response performance criteria in the frequency domain. Nichols charts.
Week - 6 Midterm Exam No. I.
Week - 7 Proportional, proportional-integral, proportional-derivative, and proportional-integral-derivative controllers. Sensitivity analysis.
Week - 8 Introduction to the time-domain analysis of control systems. Response of linear time-varying systems. Introduction to controllability and observability.
Week - 9 Controllability and observability of linear time-invariant systems. (Un)controllable and (un)observable modes. Stabilizability and detectability. Kalman decomposition.
Week - 10 Mode assignment by state feedback. Asymptotic observers. Observer-based output feedback for mode placement.
Week - 11 Direct design of dynamic output feedback controllers for mode placement. The robust servomechanism problem.
Week - 12 Midterm Exam No. II.
Week - 13 An introduction to optimal control. Linear-quadratic regulator problem.
Week - 14 An indroduction to decentralized control. Decentralized fixed modes. Decentralized robust servomechanism problem.

Learning Activities and Teaching Methods

Assessment Methods

Assessment Method and Passing Requirements
Quamtity Percentage (%)
1.Midterm Exam 1 30
2.Midterm Exam 1 30
Final Exam 1 40
Toplam (%) 100
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