Finite element modelling and simulation of magnetostrictive materials

被引:0
|
作者
Perez-Aparicio, JL [1 ]
Sosa, H [1 ]
机构
[1] Univ Granada, E-18071 Granada, Spain
关键词
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Magnetostriction is a nonlinear phenomenon observed in all ferromagnetic materials that couples elastic, electric and magnetic fields. Its industrial applications include sensors, actuators, adaptive or functional structures, robotics, transducers and MEMS. While many of these applications can at present be addressed by simple analytical methods, it is expected that in the near future new very small or very big devices will require more sophisticated analysis of the numerical type. In this work we formulate new governing equations, which are fully coupled, 3-D, nonlinear (except for material properties), partially dynamic under small deformation and based on linear constitutive equations resembling piezoelectricity. Important effects, such as eddy currents responsible for heat generation, can be directly evaluated. If technological developments make it necessary, other effects such as full thermal coupling, elastic dynamics and/or shock waves, and material non-linearity can be added by adapting advanced features from Computational Mechanics. The formulation is implemented in the research finite element code FEAR In order to validate both the method and the implementation, we present results for several elastic and electromagnetic simple problems.
引用
收藏
页码:29 / 40
页数:12
相关论文
共 50 条
  • [31] Finite element modeling of magnetostrictive smart structures
    Bakhashwain, JM
    Sunar, M
    Hyder, SJ
    ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2004, 29 (1C) : 125 - 138
  • [32] Finite Element Modelling of Wave Propagation in Highly Scattering Materials
    Van Pamel, A.
    Huthwaite, P.
    Brett, C. R.
    Lowe, M. J. S.
    42ND ANNUAL REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION: INCORPORATING THE 6TH EUROPEAN-AMERICAN WORKSHOP ON RELIABILITY OF NDE, 2016, 1706
  • [33] Finite element modelling of orthogonal machining of hard to machine materials
    Ramesh, Ajith
    Sumesh, C.S.
    Abhilash, P.M.
    Rakesh, S.
    International Journal of Machining and Machinability of Materials, 2015, 17 (06) : 543 - 568
  • [34] Finite element modelling of permeability in brittle materials cracked in tension
    Rahal, S.
    Sellier, A.
    Casaux-Ginestet, G.
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2017, 113 : 85 - 99
  • [35] Finite element modelling of fibre-reinforced brittle materials
    Kullaa, Jyrki
    Heron, 1997, 42 (02): : 75 - 95
  • [36] Constitutive modelling of endothelium denudation for finite element simulation of angioplasty
    Delorme, Sebastien
    El-Ayoubi, Rouwayda
    Debergue, Patricia
    BIOMEDICAL SIMULATION, PROCEEDINGS, 2008, 5104 : 19 - 27
  • [37] Material Behaviour Modelling for Finite Element Vehicle Crash Simulation
    Rabbani, K.
    Daniels, M.
    Walker, N.
    Shirvani, B.
    SHEET METAL 2009, 2009, 410-411 : 521 - 532
  • [38] Modelling and finite element simulation of multi-sphere swimmers
    Berti, Luca
    Chabannes, Vincent
    Giraldi, Laetitia
    Prud'homme, Christophe
    COMPTES RENDUS MATHEMATIQUE, 2021, 359 (09) : 1119 - 1127
  • [39] Modelling and Simulation of Vascular Tissue Based on Finite Element Method
    Liu, Xiaohan
    Yao, Junfeng
    2018 5TH INTERNATIONAL CONFERENCE ON INFORMATION SCIENCE AND CONTROL ENGINEERING (ICISCE 2018), 2018, : 336 - 340
  • [40] Finite element modelling and simulation of contaminant transport in porous media
    Nair, K. Prabhakaran
    Praveen, A.
    Modelling, Measurement and Control B, 2005, 74 (3-4): : 33 - 42