1. Course Title | Computer Applications in Power Systems | |||||||
2. Code | 4ФЕИТ09З001 | |||||||
3. Study program | ЕЕС | |||||||
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 | III/5 | 7. Number of ECTS credits | 6 | |||||
8. Lecturer | D-r Aleksandra Krkoleva Mateska | |||||||
9. Course Prerequisites | Passed: Fundamentals of Electric Circuits Taken course: Power Networks |
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10. Course Goals (acquired competencies): The objective of the course is to gain competences for development of software applications for power systems. The students will develop capabilities for understanding and solving various power system problems using developed software applications and specialized software tools. | ||||||||
11. Course Syllabus: Basic use of GNU Octave/Matpower/Python. Using matrices, plotting functions. Creating user-defined functions and files, repetition structures. Logical functions and selection structures. Computer applications for solving simple electrical networks. Computer applications for solving power flow and backward/forward sweep power flow. Computer applications for solving short circuits. Solving simple transient processes. Other power systems related problems. Solving simple power electric networks using various software tools. | ||||||||
12. Learning methods: Lectures, lab exercises, coursework assignments and homework. | ||||||||
13. Total number of course hours | 3 + 0 + 2 + 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 | 0 | ||||||
17.2. Seminar work/project (presentation: written and oral) | 20 | |||||||
17.3. Activity and participation | 10 | |||||||
17.4. Final exam | 70 | |||||||
18. Grading criteria (points) | up to 50 points | 5 (five) (F) | ||||||
from 51to 60 points | 6 (six) (E) | |||||||
from 61to 70 points | 7 (seven) (D) | |||||||
from 71to 80 points | 8 (eight) (C) | |||||||
from 81to 90 points | 9 (nine) (B) | |||||||
from 91to 100 points | 10 (ten) (A) | |||||||
19. Conditions for acquiring teacher’s signature and for taking final exam | Regular attendance of lectures and lab exercises. | |||||||
20. Forms of assessment | Two mid/end-term exams (120 min each), or a final exam (120 min) are organized. The student is obligated to complete and submit the required homework assignments and projects, according to the schedule published at the course web site. The exam consists of assignments which are completed using the software/tools covered within the course. The final mark is determined from the weighted average of scores from exams, homework, and project assignments. The exam is taken on a lab computer at the faculty, with no network or internet access. The use of built-in help is allowed. |
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21. Language | Macedonian and English | |||||||
22. Method of monitoring of teaching quality | Internal evaluation and polls | |||||||
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 | 2001 | ||||
2 | G. Kusic | Computer-Aided Power Systems Analysis | Routledge, CRC Press | 2009 | ||||
3 | R. Ackovski | Computer Applications in Power Systems | 2012 | |||||
23.2. Additional Literature | ||||||||
No. | Author | Title | Publisher | Year | ||||
1 | B. Hahn, D. T. Valentine | Essential Matlab for Engineers and Scientists | Elsevier | 2007 | ||||
2 | W. Y. Yang et. al | Applied Numerical Methods Using Matlab | John Wiley & Sons | 2005 |