A thermomechanical finite strain shape memory alloy model and its application to bistable actuators

被引:0
|
作者
Marian Sielenkämper
Stephan Wulfinghoff
机构
[1] Kiel University,Institute for Materials Science – Computational Materials Science
来源
Acta Mechanica | 2022年 / 233卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
This work presents a thermomechanical finite strain shape memory alloy model that utilizes a projection method to deal with the incompressibility constraint on inelastic strains. Due to its finite strain formulation, it is able to accurately predict the behavior of shape memory alloys with high transformation strains. The key feature of this model is the thermomechanical modeling of the shape memory effect and superelastic behavior by optimizing a global, incremental mixed thermomechanical potential, the variation of which yields the linear momentum balance, the energy balance, the evolution equations of the internal variables as well as boundary conditions of Neumann- and Robin-type. The proposed thermal strain model allows to properly capture transformation induced volume changes, which occur in some shape memory alloys. A finite strain dissipation potential is formulated, which incorporates the disappearance of inelastic strains upon austenite transformation. This important property is consistently transferred to the time-discrete potential using a logarithmic strain formulation. Yield and transformation criteria are derived from the dual dissipation potential. The implementation based on an active set search and the algorithmically consistent linearization are discussed in detail. The model is applied in three-dimensional simulations of a bistable actuator design to explore its capabilities.
引用
收藏
页码:3059 / 3094
页数:35
相关论文
共 50 条
  • [41] Thermomechanical properties of TiNi shape memory alloy
    Tobushi, H
    Ikai, A
    Yamada, S
    Tanaka, K
    Lexcellent, C
    JOURNAL DE PHYSIQUE IV, 1996, 6 (C1): : 385 - 393
  • [42] An experimental approach to the thermomechanical characterization of a NiTiCu shape memory alloy using strain gauges
    Fabregat-Sanjuan, Albert
    Ferrando Piera, Francesc
    De la Flor Lopez, Silvia
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART L-JOURNAL OF MATERIALS-DESIGN AND APPLICATIONS, 2017, 231 (1-2) : 113 - 121
  • [43] Shape Memory Alloy Actuators for Silicon Microgrippers
    Garces-Schroeder, Mayra
    Zimmermann, Tom
    Siemers, Carsten
    Leester-Schaedel, Monika
    Boel, Markus
    Dietzel, Andreas
    JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2019, 28 (05) : 869 - 881
  • [44] Time response of shape memory alloy actuators
    Potapov, PL
    dA Silva, EP
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2000, 11 (02) : 125 - 134
  • [45] Investigation of torsional shape memory alloy actuators
    Davidson, FM
    Liang, C
    Lobitz, D
    SMART STRUCTURES AND INTEGRATED SYSTEMS: SMART STRUCTURES AND MATERIALS 1996, 1996, 2717 : 672 - 682
  • [46] A mathematical model for pseudoelasticity of shape memory alloy and its application in passive control
    Wei, Z
    Ma, HY
    Sun, DC
    JOURNAL OF VIBRATION AND CONTROL, 2002, 8 (01) : 41 - 49
  • [47] Modeling and design of shape memory alloy actuators
    Langelaar, MS
    Yoon, GH
    Gurav, S
    Kim, YY
    van Keulen, F
    THERMAL, MECHANICAL AND MULTI-PHYSICS SIMULATION AND EXPERIMENTS IN MICRO-ELECTRONICS AND MICRO-SYSTEMS, 2005, : 626 - 633
  • [48] Micropositioning using shape memory alloy actuators
    E. Asua
    A. García-Arribas
    V. Etxebarria
    The European Physical Journal Special Topics, 2008, 158 : 231 - 236
  • [49] A mathematical model for pseudoelasticity of shape memory alloy and its application in passive control
    Wei, Zhi
    Ma, Haiyun
    Sun, Dongchang
    JVC/Journal of Vibration and Control, 2002, 8 (01): : 41 - 49
  • [50] Folded geometry shape memory alloy actuators
    MacGregor, R
    Von Behrens, P
    Szilagyi, A
    EMERGING TECHNOLOGIES UPDATE, VOL II, 2002, 426 : 11 - 22