Finite element simulation of thermomechanical training on functional stability of shape memory alloy wave spring actuator

Author:

Wang Jun12ORCID,Zhang Weihong2,Zhu Jihong12,Xu Yingjie2,Gu Xiaojun12,Moumni Ziad23

Affiliation:

1. Intelligent Materials and Structures, Unmanned System Research Institute, Northwestern Polytechnical University, Xi’an, China

2. State IJR Center of Aerospace Design and Additive Manufacturing, Northwestern Polytechnical University, Xi’an, China

3. IMSIA, UMR 8193 CNRS-EDF-CEA-ENSTA, Université Paris Saclay, Palaiseau, France

Abstract

Pre-service thermomechanical training is of great significance to achieve functional stability for shape memory alloy device. This article presents a finite element simulation of the training behavior of a shape memory alloy wave spring actuator using a thermomechanically coupled and finite-strain shape memory alloy model (Wang et al., 2017a). The model is implemented into ABAQUS/Explicit by means of a user-defined material subroutine VUMAT. The introduction of a finite-Hencky-strain return-mapping integration scheme substantially improves the numerical efficiency and stability. Model predictions are validated against the experimental data. The good agreement between both demonstrates the capabilities of the model of well describing the training behavior of shape memory alloy when subjected to large cyclic thermomechanical loading. Simulation results illustrate several primary thermomechanical characteristics during training process, such as the expansion of the phase transformation zone, the accumulation of the residual deformation, and the concentration of the internal stress. The present finite element approach provides a powerful tool in design and optimization of shape memory alloy wave spring actuator, especially to improve the geometric precision and to enhance the two-way shape memory effect.

Funder

National Key Research and Development Program

natural science foundation of shaanxi province

National Natural Science Foundation of China

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

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1. Constitutive modeling for the training process of two-way shape memory effect under thermal cyclic loading;Journal of Intelligent Material Systems and Structures;2023-01-12

2. Actuation performance of machined helical springs from NiTi shape memory alloy;International Journal of Mechanical Sciences;2022-12

3. Design of a Morphing Skin with Shape Memory Alloy Based on Equivalent Thermal Stress Approach;Micromachines;2022-06-13

4. Modelling fatigue crack growth in shape memory alloys;Fatigue & Fracture of Engineering Materials & Structures;2022-01-13

5. Shape-Memory Materials;Advanced Materials;2021-11-22

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