Lehrveranstaltungen in Stud.IP

aktuelles Semester
link to course in Stud.IP Studip_icon
Electromagnetics for Engineers I: Time-Independent Fields (GÜ)
Subtitle:
This course is part of the module: Electromagnetics for Engineers I: Time-Independent Fields
Semester:
SoSe 24
Course type:
Exercise
Course number:
lv2282_s24
Lecturer:
Dr. Cheng Yang, Prof. Dr. sc. techn. Christian Schuster
Description:

- Maxwell’s Equations in integral and differential notation

- Boundary conditions

- Laws of conservation for energy and charge

- Classification of electromagnetic field properties

- Integral characteristics of time-independent fields (R, L, C)

- Generic approaches to solving Poisson’s Equation

- Electrostatic fields and specific methods of solving

- Magnetostatic fields and specific methods of solving

- Fields of electrical current density and specific methods of solving

- Action of force within time-independent fields

- Numerical methods for solving time-independent problems


Performance accreditation:
m1501 - Electromagnetics for Engineers I: Time-Independent Fields<ul><li>p1452 - Electromagnetics for Engineers I: Time-Independent Fields: Klausur schriftlich</li></ul>
ECTS credit points:
1
Stud.IP informationen about this course:
Home institute: Institut für Theoretische Elektrotechnik (E-18)
Registered participants in Stud.IP: 26
Documents: 23
voriges Semester
link to course in Stud.IP Studip_icon
Electromagnetics for Engineers I: Time-Independent Fields (GÜ)
Subtitle:
This course is part of the module: Electromagnetics for Engineers I: Time-Independent Fields
Semester:
SoSe 24
Course type:
Exercise
Course number:
lv2282_s24
Lecturer:
Dr. Cheng Yang, Prof. Dr. sc. techn. Christian Schuster
Description:

- Maxwell’s Equations in integral and differential notation

- Boundary conditions

- Laws of conservation for energy and charge

- Classification of electromagnetic field properties

- Integral characteristics of time-independent fields (R, L, C)

- Generic approaches to solving Poisson’s Equation

- Electrostatic fields and specific methods of solving

- Magnetostatic fields and specific methods of solving

- Fields of electrical current density and specific methods of solving

- Action of force within time-independent fields

- Numerical methods for solving time-independent problems


Performance accreditation:
m1501 - Electromagnetics for Engineers I: Time-Independent Fields<ul><li>p1452 - Electromagnetics for Engineers I: Time-Independent Fields: Klausur schriftlich</li></ul>
ECTS credit points:
1
Stud.IP informationen about this course:
Home institute: Institut für Theoretische Elektrotechnik (E-18)
Registered participants in Stud.IP: 26
Documents: 23

Lehrveranstaltungen

Informationen zu den Lehrveranstaltungen und Modulen entnehmen Sie bitte dem aktuellen Vorlesungsverzeichnis und dem Modulhandbuch Ihres Studienganges.

Modul / Lehrveranstaltung Zeitraum ECTS Leistungspunkte
Modul: Elektrische Energiesysteme I: Einführung in elektrische Energiesysteme WiSe 6
Modul: Elektrische Energiesysteme II: Betrieb und Informationssysteme elektrischer Energienetze WiSe 6
Modul: Elektrische Energiesysteme III: Dynamik und Stabilität elektrischer Energiesysteme SoSe 6
Modul: Elektrotechnik II: Wechselstromnetzwerke und grundlegende Bauelemente SoSe 6
Modul: Elektrotechnisches Projektpraktikum SoSe 6
Modul: Prozessmesstechnik SoSe 4
Modul: Smart-Grid-Technologien WiSe, SoSe 6

Lehrveranstaltung: Seminar zu Elektromagnetischer Verträglichkeit und Elektrischer Energiesystemtechnik

weitere Information

WiSe, SoSe 2

SoSe: Sommersemester
WiSe: Wintersemester