Inhalt

(*)Electrical Energy Engineering

Versionsauswahl
(*) Leider ist diese Information in Deutsch nicht verfügbar.
Workload Ausbildungslevel Studienfachbereich VerantwortlicheR Semesterstunden Anbietende Uni
3 ECTS M1 - Master 1. Jahr Wirtschaftsinformatik Wilhelm Süßenbacher 2 SSt FH OÖ
Detailinformationen
Quellcurriculum Masterstudium Digital Energy Solutions 2026W
Lernergebnisse
Kompetenzen
(*)Upon successful completion of this course, students will be able to:

  • Demonstrate knowledge and understanding of the essential physical principles governing electrical circuits and their components.
  • Explain the concepts of electrical energy and power, including real power, reactive power, apparent power, and power factor.
  • Analyse and apply the fundamental principles of DC, AC, and multi-phase circuits in practical contexts.
  • Apply essential calculation methods to solve problems in DC, AC, and multi-phase circuit-analysis.
Fertigkeiten Kenntnisse
(*)
  • Apply fundamental laws and methods: Use Ohm’s law, Kirchhoff’s laws, and network theorems to solve circuit problems (k3)
  • Perform power calculations: Calculate real, reactive, and apparent power, as well as determine and improve the power factor in AC systems (k3, k6)
  • Analyse circuit behaviour: Evaluate the performance of circuits under steady-state conditions (k3, k5)
  • Model and simplify circuits: Represent complex circuits using Thevenin/Norton equivalents or other reduction techniques to facilitate analysis (k3)
  • Work with multiphase systems: Analyse star and delta connections, balance and unbalance conditions, and calculate voltages, currents, and power in three-phase networks (k3, k5)
(*)
  • Fundamental physical principles of electric currents and voltages: Ohm’s law, Kirchhoff’s laws, linear and nonlinear circuit elements.
  • Concepts of electrical power: Definition and distinction of real power, reactive power, apparent power, and power factor.
  • Characteristics of DC and AC systems: Time dependence, frequency, phase relations, and RMS values.
  • Understanding of multiphase systems: Three-phase circuits, star (Y) and delta (Δ) connections, power calculation in multiphase networks.
  • Methods of circuit analysis: Node-voltage method, mesh-current method, superposition theorem, Thevenin and Norton equivalents.
  • Knowledge of basic circuit components: Resistors, capacitors, inductors, transformers, and their frequency-dependent behavior.
Beurteilungskriterien (*)Final exam (schriftlich)
Lehrmethoden (*)Lecture, discussion, course material, exercise examples
Abhaltungssprache Englisch
Literatur (*)Slides, lecture notes
Lehrinhalte wechselnd? Nein
Präsenzlehrveranstaltung
Teilungsziffer 35
Zuteilungsverfahren Zuteilung nach Vorrangzahl