Prediction of hysteresis model at different external conditions for giant magnetostrictive materials

被引:0
|
作者
Yan, Hong-Bo [1 ]
Huang, Hai-Tao [1 ]
Wang, Jian-Xin [1 ]
Huang, Jian [1 ]
Xie, Kai [1 ]
机构
[1] Inner Mongolia Univ Sci & Technol, Coll Mech Engn, Baotou 014010, Peoples R China
基金
中国国家自然科学基金;
关键词
giant magnetostrictive materials; Jiles-Atherton dynamic model; eddy current loss; residual loss;
D O I
10.7498/aps.73.20241219
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The hysteresis model of giant magnetostrictive materials (GMMs) changes with model parameters: the excitation amplitude, bias condition and excitation frequency. The existing hysteresis model is unable to predict the effects of simultaneous changes in the three external conditions. In this paper, the hysteresis loss mechanism is explained by using the traditional Jiles-Atherton (J-A) dynamic model, and the relation equation is established according to the operating conditions and material properties to respond to the changes of external conditions. For the J-A model, the relationship equation related to the excitation amplitude is established, and the relationship equation relating the residual loss coefficient to the excitation amplitude and the bias condition is established for the residual loss, while the eddy current loss of the system is redefined by using the fractional order to obtain the modified hysteresis model. In the paper, the genetic algorithm is used to identify the model parameters of the test data under different operating conditions, and the corresponding correction coefficients are obtained according to the model parameters and the operating conditions. The accuracy of the modified model is verified by simulating the model and analyzing the influences of eddy currents and residual losses and their effects on the model predictions. The hysteresis model is evaluated to compare the hysteresis curves with the hysteresis losses in terms of errors. The results show that the modified model is capable of predicting various excitations with high accuracy, and that neglecting dynamic losses at low frequencies results in large errors. If the model order of the eddy current loss is smaller than the actual order of the material, the predicted hysteresis curve will be contracted inward and the predicted eddy current loss will be small; on the contrary, the predicted hysteresis curve will be expanded outward and the predicted eddy current loss will be large, and with the increase of the excitation frequency, both cases will cause the prediction error to become larger and larger. When the bias magnetic field is zero, the residual loss coefficient is unchanged; when the bias magnetic field is kept constant, the excitation amplitude increases and the residual loss coefficient decreases; when the excitation amplitude is unchanged, the bias magnetic field increases and the residual loss coefficient also increases. When both the bias magnetic field and the excitation amplitude change at the same time, it is necessary to conduct an actual analysis of their corresponding residual loss coefficients. Using hysteresis curves to evaluate hysteresis is more accurate.
引用
收藏
页数:11
相关论文
共 23 条
  • [1] Ablikim M, 2024, J HIGH ENERGY PHYS, DOI 10.1007/JHEP01(2024)180
  • [2] [陈彬 Chen Bin], 2022, [中国电机工程学报, Proceedings of the Chinese Society of Electrical Engineering], V42, P4590
  • [3] Research on the Intelligent Control and Simulation of Automobile Cruise System Based on Fuzzy System
    Chen, Xue-wen
    Zhang, Jin-guo
    Liu, Yan-jun
    [J]. MATHEMATICAL PROBLEMS IN ENGINEERING, 2016, 2016
  • [4] Dynamic Jiles-Atherton Model for Determining the Magnetic Power Loss at High Frequency in Permanent Magnet Machines
    Du, Ruoyang
    Robertson, Paul
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2015, 51 (06)
  • [5] Minor hysteresis loops model based on exponential parameters scaling of the modified Jiles-Atherton model
    Hamimid, M.
    Mimoune, S. M.
    Feliachi, M.
    [J]. PHYSICA B-CONDENSED MATTER, 2012, 407 (13) : 2438 - 2441
  • [6] Design and characterisation of a piezoelectric knee-joint energy harvester with frequency up-conversion through magnetic plucking
    Kuang, Yang
    Yang, Zhihao
    Zhu, Meiling
    [J]. SMART MATERIALS AND STRUCTURES, 2016, 25 (08)
  • [7] Magnetic Circuit Optimization and Physical Modeling of Giant Magnetostrictive Actuator
    Li, Yuesong
    [J]. SHOCK AND VIBRATION, 2023, 2023
  • [8] Liu Ren, 2019, High Voltage Engineering, V45, P4062, DOI 10.13336/j.1003-6520.hve.20181205024
  • [9] Analytical Prediction Model of Energy Losses in Soft Magnetic Materials Over Broadband Frequency Range
    Liu, Ren
    Li, Lin
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2021, 36 (02) : 2009 - 2017
  • [10] Giant magnetostrictive actuator nonlinear dynamic Jiles-Atherton model
    Liu, Yongguang
    Gao, Xiaohui
    Li, Yunlong
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2016, 250 : 7 - 14