
Parameter
Mehr zum Buch
The present work aims at engineers and scientists in the field of computational mechanics of materials. The objective of this work is to develop a suitable constitutive law and apply it to study effects of cyclic loading and geometry on the fatigue assessment. Firstly, a systematical investigation on the mechanic behaviors of an austenitic stainless steel is carried out. Different multiaxial fatigue life prediction models are studied to assess fatigue damage. The Karim-Ohno kinematic hardening model is extended to incorporate more complex mechanical behaviors. The proposed constitutive model is implemented into FEM code ABAQUS. Finally a computational fatigue analysis methodology is proposed for performing life prediction of notched components based on elastic-plastic computation.
Buchkauf
Cyclic plasticity modeling and multiaxial fatigue assessment for an austenitic steel, Jie Fang
- Sprache
- Erscheinungsdatum
- 2015
Lieferung
Zahlungsmethoden
Feedback senden
- Titel
- Cyclic plasticity modeling and multiaxial fatigue assessment for an austenitic steel
- Sprache
- Englisch
- Autor*innen
- Jie Fang
- Verlag
- Utz
- Erscheinungsdatum
- 2015
- ISBN10
- 3831644845
- ISBN13
- 9783831644841
- Kategorie
- Skripten & Universitätslehrbücher
- Beschreibung
- The present work aims at engineers and scientists in the field of computational mechanics of materials. The objective of this work is to develop a suitable constitutive law and apply it to study effects of cyclic loading and geometry on the fatigue assessment. Firstly, a systematical investigation on the mechanic behaviors of an austenitic stainless steel is carried out. Different multiaxial fatigue life prediction models are studied to assess fatigue damage. The Karim-Ohno kinematic hardening model is extended to incorporate more complex mechanical behaviors. The proposed constitutive model is implemented into FEM code ABAQUS. Finally a computational fatigue analysis methodology is proposed for performing life prediction of notched components based on elastic-plastic computation.