Eddy Current Loss and Thermal Control of Giant Magnetostrictive Transducer

被引:0
|
作者
Lan T. [1 ]
Feng P. [1 ]
Zhang J. [1 ]
Zhou H. [1 ]
机构
[1] Department of Mechanical Engineering, Tsinghua University, Beijing
关键词
eddy current loss; giant magnetostriction; thermal control; transducer; ultrasonic machining;
D O I
10.3901/JME.2022.21.243
中图分类号
学科分类号
摘要
Giant magnetostrictive material can realize large-amplitude ultrasonic processing when it is used in a transducer. When the giant magnetostrictive transducer is used, it will generated a large eddy current loss, which will cause the temperature rise of the internal system of the transducer, and cause the unnecessary power loss. Thus, optimizing the design of the interior of the transducer to reduce the eddy current loss inside the transducer can effectively improve the energy utilization rate, reduce the temperature rise of the system, and improve the amplitude stability of the transducer. The theoretical model of the eddy current loss inside the giant magnetostrictive transducer is established, and the influence of the giant magnetostrictive material and permanent magnet slices on the eddy current loss is especially analyzed. The finite element simulation analysis of the eddy current loss and the overall temperature rise of the transducer caused by the giant magnetostrictive transducer is carried out with the help of ANSYS Workbench, and the eddy current loss law inside the transducer is obtained at theoretical level. Finally, a permanent magnet slice optimization scheme for giant magnetostrictive transducer is proposed. The results show that the eddy current loss of the transducer after slice optimization is significantly reduced, and the temperature rise during operation was significantly suppressed. © 2022 Editorial Office of Chinese Journal of Mechanical Engineering. All rights reserved.
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页码:243 / 249
页数:6
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共 15 条
  • [1] LU Fuzai, XIANG Zhanqin, CHENG Yaodong, Et al., Research on high speed and powerful solenoid valve of rare earth giant magnetostrictive material [J], Transactions of CSICE, 18, 2, pp. 199-202, (2000)
  • [2] LI Mingfan, XIANG Zhanqin, Et al., Magnetic circuit design and optimization of giant magnetostrictive transducer [J], Journal of Zhejiang University, 40, 2, pp. 192-196, (2006)
  • [3] FENG Pingfa, WANG Jianjian, ZHANG Jianfu, Et al., Research status and future prospects of rotary ultrasonic machining of hard and brittle materials [J], Journal of Mechanical Engineering, 53, 19, pp. 3-21, (2017)
  • [4] CAI Wanchong, ZHANG Jianfu, YU Dingwen, Et al., Research on the electromechanical conversion efficiency for giant magnetostrictive ultrasonic machining system [J], Journal of Mechanical Engineering, 53, 19, pp. 52-58, (2017)
  • [5] Yuchuan ZHU, Liang JI, Theoretical and experimental investigations of the temperature and thermal deformation of a giant magnetostrictive actuator [J], Sensors & Actuators A:Physical, 218, 1, pp. 167-178, (2014)
  • [6] MOONGKI C,, WAKIKAWA H, YAJIMA H, Et al., Power loss analysis by measuring temperature rise in T-GMA [J], Japanese AEM, 19, 3, pp. 503-508, (2011)
  • [7] ZUCCA M, ROCCATO P E, BOTTAUSCIO O, Et al., Analysis of losses in a magnetostrictive device under dynamic supply conditions [J], IEEE Transactions on Magnetics, 46, 2, pp. 183-186, (2010)
  • [8] TAO Menglun, CHEN Dingfang, LU Quanguo, Et al., Eddy current losses of giant magnetostrictors:modeling and experimental analysis [J], Journal of Mechanical Engineering, 48, 13, pp. 146-151, (2012)
  • [9] LI P, LIU Q, ZHOU X, Et al., Effect of Terfenol-D rod structure on vibration performance of giant magnetostrictive ultrasonic transducer [J], Journal of Vibration and Control, 27, 5-6, pp. 573-581, (2021)
  • [10] KALETA J, LEWANDOWSKI D, MECH R., Magnetostriction of field-structural composite with Terfenol-D particles[J], Archives of Civil & Mechanical Engineering, 15, 4, pp. 897-902, (2015)