Energy-based fatigue model for shape memory alloys including thermomechanical coupling

Yahui Zhang, Jihong Zhu, Ziad Moumni, Alain Van Herpen, Weihong Zhang

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

This paper is aimed at developing a low cycle fatigue criterion for pseudoelastic shape memory alloys to take into account thermomechanical coupling. To this end, fatigue tests are carried out at different loading rates under strain control at room temperature using NiTi wires. Temperature distribution on the specimen is measured using a high speed thermal camera. Specimens are tested to failure and fatigue lifetimes of specimens are measured. Test results show that the fatigue lifetime is greatly influenced by the loading rate: as the strain rate increases, the fatigue lifetime decreases. Furthermore, it is shown that the fatigue cracks initiate when the stored energy inside the material reaches a critical value. An energy-based fatigue criterion is thus proposed as a function of the irreversible hysteresis energy of the stabilized cycle and the loading rate. Fatigue life is calculated using the proposed model. The experimental and computational results compare well.

Original languageEnglish
Article number035042
JournalSmart Materials and Structures
Volume25
Issue number3
DOIs
StatePublished - 23 Feb 2016

Keywords

  • fatigue criterion
  • hysteresis energy
  • shape memory alloys
  • strain rate
  • thermomechanical coupling

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