Course detail
Limit States and Reliability
FSI-RMSAcad. year: 2018/2019
The course is concerned wit the following topics:Limit states - classification, limit states in strength analysis. Basic terms of dependability theory with emphasized characteristics of reliability and durability. Most significant conceptions of linear elastic and elasto plastic fracture mechanics. Fatigue of structures, essential characteristics, durability assessment under low- and high-cycle fatigue. Evaluation of the resistance of structures to brittle fracture in the design stage. Assessment of the crack as a defect under monotonic and cyclic stresses.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Learning outcomes of the course unit
Prerequisites
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Examination consists of 2 parts: written (knowledge of elementary terms, important regularities and their applications) and oral (discussion over the written part of examination and problems solved in seminars). To pass the examination, neither the written nor the oral part must be evaluated by the failling degree F.
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
Bílý, M.: Dependability of Mechanical Systems, , Elsevier 1989
SAE: Fatigue Design Handbook, Society of Automotive Engineers, 1997
Recommended reading
Vlk, M.: Dynamická pevnost a životnost, VUT FS Brno 1992
Vlk, M.: Mezní stavy a spolehlivost, , VUT FS Brno 1991
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
2. An introduction to the fracture mechanics, systems of fracture mechanics concepts.
3. Griffith‘s theory. The stress intensity factor concept.
4. The crack opening displacement and J-integral approaches. Two-criteria approach.
5. Two-parameter fracture mechanics. Subcritical crack growth.
6. Crack growth under cyclic loading.
7. Assessment of the known crack-like defect in the real structure.
8. Assessment of the structure for brittle fracture resistance in the design stage
9. Probability assessment of limit states.
10. High- and low-cycle fatigue – influence of stress and strain concentration
11. Fatigue durability in the one-stage loading and simple and combined stresses.
12. Durability in the stochastic loading.
13. Laboratory testing of reliability and durability.
Computer-assisted exercise
Teacher / Lecturer
Syllabus
2. Determination of the stress intensity factor by means of finite element method.
3. Comparison of stress intensity factor from FEM and from the handbooks available.
4. Solving of materials non-linearity tasks in ANSYS.
5. Computation of J-integral.
6. Two-parameter fracture mechanics, Q-factor.
7. Computation of Q-factor for simple testing specimens.
8. Stress field near the crack tip under small scale yielding.
9. Probabilistic assessment in the program system ANSYS.
10. Simulation methods in ANSYS.
11. FORM and SORM methods.
12. Monte Carlo method with direct simulation - programs AntHill and VaP
13. Credit.