Inhalt

(*)Energy Solutions in Industry

Versionsauswahl
(*) Leider ist diese Information in Deutsch nicht verfügbar.
Workload Ausbildungslevel Studienfachbereich VerantwortlicheR Semesterstunden Anbietende Uni
3 ECTS M2 - Master 2. 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 fundamental principles of thermodynamics and fluid mechanics.
  • Explain energy transformations and thermodynamic processes in industrial systems, including heat exchangers, pumps, fans, turbines, and refrigeration cycles.
  • Analyse and evaluate thermodynamic cycles and fluid flow to improve efficiency and performance in practical applications.
  • Apply calculation methods to solve problems in heat transfer, fluid flow, and energy balances.
  • Use computational tools to model thermodynamic properties and optimize processes.
Fertigkeiten Kenntnisse
(*)
  • Apply fundamental laws: Use the first and second laws of thermodynamics, equations of state, and mass and energy balances to solve thermodynamic problems (k3).
  • Perform energy and efficiency calculations: Determine heat transfer, work, and efficiency for thermodynamic cycles, heat exchangers, and fluid systems (k3, k6).
  • Analyse fluid flow: Evaluate laminar, turbulent, and inviscid flow, calculate pressure losses, and assess pump and fan performance (k3, k5).
  • Model and simplify thermodynamic systems: Represent complex systems with control volumes, simplified models, or idealized cycles to facilitate analysis (k3, k6).
  • Use computational tools: Employ software like CoolProp to calculate thermodynamic properties, simulate processes, and optimize system performance (k3, k6).
(*)
  • Fundamental thermodynamic principles: First and second law of thermodynamics, internal and external energy, equations of state, thermodynamic cycles.
  • Heat transfer mechanisms: Conduction, convection, radiation, and combined heat transfer in industrial applications.
  • Fluid mechanics fundamentals: Continuity, Bernoulli equation, mass and energy balance, laminar and turbulent flow, pressure losses.
  • Components of thermal systems: Heat exchangers, pumps, fans, turbines, heat pumps, chillers, and air conditioning systems.
  • Computational thermodynamics: Use of software (e.g., CoolProp) to calculate properties, simulate processes, and optimize energy efficiency.
Beurteilungskriterien (*)Final exam
Lehrmethoden (*)Lecture, discussion, course material, exercise examples
Abhaltungssprache Englisch
Literatur (*)Slides, lecture notes
Lehrinhalte wechselnd? Nein
Präsenzlehrveranstaltung
Teilungsziffer 35
Zuteilungsverfahren Zuteilung nach Vorrangzahl