Computer-based Modeling in Power Engineering

Објавено: October 12, 2018
  1.    Course Title Computer-based Modeling in Power Engineering
  2.    Code 3ФЕИТ04Л009
  3.    Study program EEUM
  4.    Organizer of the study program (unit, institute, department) Faculty of Electrical Engineering and Information Technologies
  5.    Degree (first, second, third cycle) First cycle
  6.    Academic year/semester IV/8   7.    Number of ECTS credits 6.00
  8.    Lecturer Dr Sofija Nikolova-Poceva
  9.    Course Prerequisites

10.    Course Goals (acquired competencies):  Acquiring professional knowledge of the computer-based modeling of elements and processes in power engineering. Developing the ability to analyze conditions and processes in power plants. Using specialized software to solve specific problems in power engineering.

11.    Course Syllabus: Concepts and algorithms for computer-based modeling. Modeling of elements of the power system. Modeling of energy processes in hydro power plants. Optimization methods in power engineering. Numerical methods in power engineering. Optimal generation scheduling of power plants with respect to voltage conditions. Model of thermal power plant and hydro power plant for analysis of slow dynamic changes. Modeling of control systems in power engineering. Matrix methods for short-circuit current calculation. Using specialized software packages: Matlab/ Simulink, SimPowerSystems, Otimization Тoolbox, Control System Toolbox, MATPOWER, Power World Simulator, NEPLAN.

12.    Learning methods:  Lectures supported by presentations, interactive lectures, auditory exercises with solving practical examples and application of specialized software for analyzes and calculations in power engineering.

13.    Total number of course hours 3 + 2 + 0 + 0
14.    Distribution of course hours 180
15.    Forms of teaching 15.1. Lectures-theoretical teaching 45
15.2. Exercises (laboratory, practice classes), seminars, teamwork 30
16.    Other course activities 16.1. Projects, seminar papers 30
16.2. Individual tasks 30
16.3. Homework and self-learning 45
17.    Grading 17.1. Exams 35
17.2. Seminar work/project (presentation: written and oral) 10
17.3. Activity and participation 5
17.4. Final exam 50
18.    Grading criteria (points) up to 50 points     5 (five) (F)
from 51 to 60 points     6 (six) (E)
from 61 to 70 points     7 (seven) (D)
from 71 to 80 points     8 (eight) (C)
from 81 to 90 points     9 (nine) (B)
from 91 to 100 points   10 (ten) (A)
19.    Conditions for acquiring teacher’s signature and for taking final exam Regular attendance at lectures and auditory exercises.
20.  Forms of assessment Through two partial written exams (duration of 2 hours each) or a final written exam on the whole teaching material (duration 2 hours). The points from the partial exams/final exam are included in the final grade.
It is not allowed to use books, scripts, manuscripts or notes of any kind, mobile phone, tablet or any other electronic device during the exam
21.   Language Macedonian and English
22.  Method of monitoring of teaching quality Internal evaluation and surveys.
23.  Literature
23.1. Required Literature
No. Author Title Publisher Year
1 J Arrillaga, N. R. Watson Computer Modelling of Electrical Power Systems JOHN WILEY & SONS, LTD 2001
2 М. Calovic, A Saric Osnovi analize elektroenergetskih mreza i sistema Akademska Misao 2004
3 Jizhong Zhu Optimization of Power System Operation Wiley-IEEE Press 2009
23.2. Additional Literature
No. Author Title Publisher Year
1 Damian Flynn  Thermal Power Plant Simulation and Control  The Institution of Electrical Engineers  2003
2  A.Ordys, A.W. Pike,M.A.Johnson, R.M. Katebi,  M.J. Grimble  Modeling and Simulation of Power Generation Plants  Springer Verlag  1994
3  Federico Milano

Power System Modelling and Scripting

 Springer  2010