Courses in Stud.IP

current semester
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Dislocation Theory of Plasticity (VL)
Subtitle:
This course is part of the module: Mechanical Properties
Semester:
SoSe 24
Course type:
Lecture
Course number:
lv1662_s24
Lecturer:
Prof. Dr. Shan Shi
Description:

This class willcover the principles of dislocation theory from a physical metallurgyperspective, providing a fundamental understanding of the relations between thestrength and of crystalline solids and distributions of defects.

We will reviewthe concept of dislocations, defining terminology used, and providing anoverview of important concepts (e.g. linear elasticity, stress-strainrelations, and stress transformations) for theory development. We will developthe theory of dislocation plasticity through derived stress-strain fields,associated self-energies, and the induced forces on dislocations due to internaland externally applied stresses. Dislocation structure will be discussed,including core models, stacking faults, and dislocation arrays (including grainboundary descriptions). Mechanisms of dislocation multiplication andstrengthening will be covered along with general principles of creep and strainrate sensitivity. Final topics will include non-FCC dislocations, emphasizingthe differences in structure and corresponding implications on dislocationmobility and macroscopic mechanical behavior; and dislocations in finitevolumes.

Performance accreditation:
600 - Mechanical Properties<ul><li>600 - Mechanical Properties: Klausur schriftlich</li></ul>
ECTS credit points:
3
Stud.IP informationen about this course:
Home institute: Institut für Integrierte metallische Nanomaterialsysteme (M-EXK4)
Registered participants in Stud.IP: 12
Documents: 20
former semester
link to course in Stud.IP Studip_icon
Dislocation Theory of Plasticity (VL)
Subtitle:
This course is part of the module: Mechanical Properties
Semester:
SoSe 24
Course type:
Lecture
Course number:
lv1662_s24
Lecturer:
Prof. Dr. Shan Shi
Description:

This class willcover the principles of dislocation theory from a physical metallurgyperspective, providing a fundamental understanding of the relations between thestrength and of crystalline solids and distributions of defects.

We will reviewthe concept of dislocations, defining terminology used, and providing anoverview of important concepts (e.g. linear elasticity, stress-strainrelations, and stress transformations) for theory development. We will developthe theory of dislocation plasticity through derived stress-strain fields,associated self-energies, and the induced forces on dislocations due to internaland externally applied stresses. Dislocation structure will be discussed,including core models, stacking faults, and dislocation arrays (including grainboundary descriptions). Mechanisms of dislocation multiplication andstrengthening will be covered along with general principles of creep and strainrate sensitivity. Final topics will include non-FCC dislocations, emphasizingthe differences in structure and corresponding implications on dislocationmobility and macroscopic mechanical behavior; and dislocations in finitevolumes.

Performance accreditation:
600 - Mechanical Properties<ul><li>600 - Mechanical Properties: Klausur schriftlich</li></ul>
ECTS credit points:
3
Stud.IP informationen about this course:
Home institute: Institut für Integrierte metallische Nanomaterialsysteme (M-EXK4)
Registered participants in Stud.IP: 12
Documents: 20

Courses

For information on courses and modules, please refer to the current course catalogue and module manual of your degree programme.

Module / Course Period ECTS Credit Points
Module: Electrical Power Systems I: Introduction to Electrical Power Systems WiSe 6
Module: Electrical Power Systems II: Operation and Information Systems of Electrical Power Grids WiSe 6
Module: Electrical Power Systems III: Dynamics and Stability of Electrical Power Systems SuSe 6
Module: Electrical Engineering II: Alternating Current Networks and Basic Devices SuSe 6
Module: Electrical Engineering Project Laboratory SuSe 6
Module: Process Measurement Engineering SuSe 4
Module: Smart Grid Technologies WiSe, SuSe 6

Course: Seminar on Electromagnetic Compatibility and Electrical Power Systems

Further Information

WiSe, SuSe 2

SuSe: Summer Semester
WiSe: Winter Semester