Course detail
Structural and Mechanical Properties of Advanced Materials
FSI-TVNAcad. year: 2016/2017
Crystalline structure, microstructure mechanical properties and application of selected advanced materials in the engineering practice. Nanostructured materials - carbon fibers, nanolayers and nanotubes, bulk magnetic nanomaterials and ultra-fine grained materials. Shape-memory alloys - shape-memory effect and principles of mechatronic actuators. Composite materials - fiber-reinforced composites, particle-reinforced composites and laminates.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Learning outcomes of the course unit
Prerequisites
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Course curriculum
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
Recommended reading
Suresh S.: Fatigue of Materials. Cambridge, UK: Cambridge University Press; 1998. (EN)
Classification of course in study plans
- Programme B3A-P Bachelor's
branch B-FIN , 3 year of study, summer semester, compulsory-optional
- Programme M2A-P Master's
branch M-PMO , 1 year of study, summer semester, compulsory-optional
branch M-FIN , 2 year of study, summer semester, compulsory-optional
branch M-FIN , 1 year of study, summer semester, compulsory-optional
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
Theory of deformation and fracture (6 - 11).
Nanomaterials:
- carbon fibers, layers and tubes (12 - 13),
- magnetic nanomaterials (14 - 15),
ultra-fine grained materials (16 - 17),
Shape-memory alloys:
- shape-memory effect (18 - 19)
- principles of mechatronic actuators (20-21)
Composite materials:
- fiber reinforced composites and laminates (22-24)
- particle-reinforced composites (25-26).
Exercise
Teacher / Lecturer
Syllabus
- theory of atomic bonds (1-4)
- ideal crystalline structures(5-8).
- theory of dislocations (9 - 12).
Fracture mechanics:
- stress- strain field at the crack tip (13-16)
- quantitative fractography of fatigue fracture (17-18)
Nanomaterials and shape-memory alloys:
- theoretical strength of carbon nanotubes (19-20)
- elasticity of ideal crystals and twins in Ni-Ti alloy (21-22)
- deformation micromechanisms of ultra-fine grained materials (23-24)
Excursion to the Institute of Physics of Materials in Brno (25-26)