A full 3D thermodynamic-based model for magnetic shape memory alloys

被引:22
|
作者
LaMaster, Douglas H. [1 ]
Feigenbaum, Heidi P. [1 ]
Ciocanel, Constantin [1 ]
Nelson, Isaac D. [1 ]
机构
[1] No Arizona Univ, Flagstaff, AZ 86011 USA
基金
美国国家科学基金会;
关键词
Magnetic shape memory alloys; ferromagnetic shape memory alloys; magneto-mechanical; three-dimensional; thermodynamic based model; INDUCED SUPERELASTIC STRAIN; VARIANT REORIENTATION; DEMAGNETIZING FACTORS;
D O I
10.1177/1045389X14546655
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Magnetic shape memory alloys (MSMAs) are interesting materials because they exhibit large recoverable strain (up to 10%) and fast response time (higher than 1kHz). MSMAs are composed of martensitic variants with tetragonal unit cells and a magnetization vector that is approximately aligned with the short side of the unit cell in the absence of an external applied magnetic field. These variants reorient either to align the magnetization vector with an applied magnetic field or to align the short side of the unit cell with an applied compressive stress. This reorientation leads to a mechanical strain and an overall change in the material's magnetization, allowing MSMAs to be used as actuators, sensors, and power harvesters. This paper builds upon the work of Kiefer and Lagoudas as well as improvements proposed by LaMaster et al. to present a thermodynamic-based continuum model able to predict the response of an MSMA to any three-dimensional (3D) magneto-mechanical loading. The 3D nature of the model requires that the three variants, associated with the three axes of an MSMA single crystal, should all be allowed to evolve. In addition, this model includes evolution rules for the three magnetic domain volume fractions and the rotation of the direction of the magnetization vectors in each variant based on thermodynamic requirements.
引用
收藏
页码:663 / 679
页数:17
相关论文
共 50 条
  • [21] Thermodynamic aspects of shape memory alloys
    Müller, I
    Seelecke, S
    [J]. MATHEMATICAL AND COMPUTER MODELLING, 2001, 34 (12-13) : 1307 - 1355
  • [22] A multiscale model of reorientation in magnetic shape memory alloys
    Stoilov, Vesselin
    [J]. SMART MATERIALS & STRUCTURES, 2007, 16 (01): : S1 - S10
  • [23] 3D printing of shape memory Alloys for complex architectures of smart structures
    Biasutti, T.
    Bettini, P.
    Nespoli, A.
    Grande, A. M.
    Scalia, T.
    Albano, M.
    Colosimo, B. M.
    Sala, G.
    [J]. ACTA ASTRONAUTICA, 2024, 221 : 206 - 217
  • [24] Exploring the potential of 3D printing for shape memory alloys: a critical review
    Ahmad, Shadab
    Hashmi, Abdul Wahab
    Iqbal, Faiz
    Rab, Shanay
    Tian, Yebing
    [J]. MEASUREMENT SCIENCE AND TECHNOLOGY, 2024, 35 (12)
  • [25] 3D Model Retrieval Based on a 3D Shape Knowledge Graph
    Nie, Weizhi
    Wang, Ya
    Song, Dan
    Li, Wenhui
    [J]. IEEE ACCESS, 2020, 8 : 142632 - 142641
  • [26] 3D Model Retrieval Based on a 3D Shape Knowledge Graph
    Nie, Weizhi
    Wang, Ya
    Song, Dan
    Li, Wenhui
    [J]. IEEE Access, 2020, 8 : 142632 - 142641
  • [27] A 3D finite-strain beam model for thermo-mechanical deformations of 2D shape memory alloys in 3D space
    Damanpack, A. R.
    [J]. FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2022, 211
  • [28] A thermodynamic finite-strain model for pseudoelastic shape memory alloys
    Mueller, Ch.
    Bruhns, O. T.
    [J]. INTERNATIONAL JOURNAL OF PLASTICITY, 2006, 22 (09) : 1658 - 1682
  • [29] Gradient-enhanced thermomechanical 3D model for simulation of transformation patterns in pseudoelastic shape memory alloys
    Rezaee-Hajidehi, Mohsen
    Tuma, Karel
    Stupkiewicz, Stanislaw
    [J]. INTERNATIONAL JOURNAL OF PLASTICITY, 2020, 128
  • [30] Hybrid Solenoids Based on Magnetic Shape Memory Alloys
    Mauch, Manuel
    Hutter, Marco
    Gundelsweiler, Bernd
    [J]. ACTUATORS, 2023, 12 (08)