特邀专栏:超声加工技术

超磁致伸缩超声振动系统的机电转换效率研究

  • 蔡万宠 ,
  • 张建富 ,
  • 郁鼎文 ,
  • 吴志军 ,
  • 冯平法
展开
  • 1. 清华大学机械工程系 北京 100084;
    2. 清华大学精密超精密制造装备及控制北京市重点实验室 北京 100084
蔡万宠,男,1991年出生,博士研究生。主要研究方向为超磁致伸缩旋转超声振动加工系统设计理论与加工机理,E-mail:cwcfengdou@163.com

收稿日期: 2016-07-18

  修回日期: 2016-10-29

  网络出版日期: 2017-10-05

基金资助

国家自然科学基金(51475260)和北京市自然科学基金(3141001)资助项目。

Research on the Electromechanical Conversion Efficiency for Giant Magnetostrictive Ultrasonic Machining System

  • CAI Wanchong ,
  • ZHANG Jianfu ,
  • YU Dingwen ,
  • WU Zhijun ,
  • FENG Pingfa
Expand
  • 1. Department of Mechanical Engineering, Tsinghua University, Beijing 100084;
    2. Beijing Key Laboratory of Precision/Ultra-Precision Manufacturing Equipments and Control, Tsinghua University, Beijing 100084

Received date: 2016-07-18

  Revised date: 2016-10-29

  Online published: 2017-10-05

摘要

为提高超声振动系统的能量转换效率和功率容量,提出超磁致伸缩超声振动系统的设计方法,研究导磁体材料特性对超声系统振动性能的影响规律。采用硅钢、铁氧体和磁粉心三种磁性材料设计导磁体,并建立超声振动系统的等效电路模型;通过阻抗分析建立3种超声振动系统的阻抗圆曲线,得到谐振频率和机电转换系数等参数,提出导磁材料特性对系统机电能量转换效率的影响规律。为验证阻抗分析结果的正确性,试验测定3种超声系统在不同电压幅值激励下的振幅-电流灵敏度与频率的关系曲线,验证导磁材料参数与系统机电能量转换效率之间的关系。结果表明:高磁导率铁氧体材料可提高超声振动系统在小功率工作条件下的机电能量转换效率,而对于大功率超声振动系统而言,需要兼顾磁导率和饱和磁通密度,使导磁体工作于非磁饱和状态,以提高系统换能效率,这有助于指导不同功率大小超声振动系统的导磁体材料选择。

本文引用格式

蔡万宠 , 张建富 , 郁鼎文 , 吴志军 , 冯平法 . 超磁致伸缩超声振动系统的机电转换效率研究[J]. 机械工程学报, 2017 , 53(19) : 52 -58 . DOI: 10.3901/JME.2017.19.052

Abstract

In order to improve the efficiency and capability of ultrasonic machining system, the design method of Giant magnetostrictive ultrasonic machining systems (GMUMS) is presented and the influence of magnetic material for the closed magnetic circuit on the vibration performance is studied. Three kinds of magnetic materials, including silicon steel, ferrite and magnetic powder core, are applied and the equivalent circuit is proposed. Based on impedance analysis method, the impedance circle is plotted to determine the resonant frequency and electromechanical conversion coefficient so that the rule of magnetic material properties and electromechanical conversion coefficient can be put forward. To verify the impedance analysis results, the relation of amplitude-current sensitivity and excitation frequency under four excitation voltage levels is established and the optimization selection method of the magnetic material for different power-capability ultrasonic system is proposed. The results reveal that a low-power GMUMS can generate a higher electromechanical conversion coefficient by using high permeability ferrite material, while the magnetic powder core with higher saturation magnetic flux density is well-suited for high-power GMUMS due to the influence of both the permeability and saturation magnetic flux density on the vibration performance. It is useful in choosing magnetic materials for the GMUMS with different levels of power.

参考文献

[1] WAN Y,LIN B,WANG S,et al. Study on the system matching of ultrasonic vibration assisted grinding for hard and brittle materials processing[J]. International Journal of Machine Tools and Manufacture,2014,77:66-73.
[2] ZHU Y,JI L. Theoretical and experimental investigations of the temperature and thermal deformation of a giant magnetostrictive actuator[J]. Sensors and Actuators A,2014,218:167-178.
[3] JIN K,KOU Y,ZHENG X. The resonance frequency shift characteristic of Terfenol-D rods for magnetostrictive actuators[J]. Smart Materials and Structures,2012,21(4):1-7.
[4] CHEN C,SHI Y L,ZHANG J,et al. Novel linear piezoelectric motor for precision position stage[J]. Chinese Journal of Mechanical Engineering,2016,29(2):378-385.
[5] 袁惠群,李莹,李东,等. 超磁致伸缩微致动器车削系统建模与控制[J]. 振动. 测试与诊断,2014,34(2):351-355. YUAN Huiqun,LI Ying,LI Dong,et al. Modelling and control for giant magnetostrictive micro-actuator turning system[J]. Journal of Vibration,Measurement & Diagnosis,2014,34(2):351-355.
[6] CAI W C,FENG P F,ZHANG J F,et al. Effect of temperature on the performance of a giant magnetostrictive ultrasonic transducer[J]. Journal of Vibroengineering,2016,18(2).
[7] 薛光明,张培林,何忠波,等. 喷油器用超磁致伸缩致动器多自由度模型[J]. 机械工程学报,2015,51(24):97-104. XUE Guangming,ZHANG Peilin,HE Zhongbo,et al. Multiple degrees of freedom model of giant magnetostrictive actuator used on high-pressure-common-rail injector[J]. Journal of Mechanical Engineering,2015,51(24):97-104.
[8] 李明范,项占琴,吕福在. 超磁致伸缩换能器磁路设计及优化[J]. 浙江大学学报,2006,40(2):192-196. LI Mingfan,XIANG Zhangqin,LÜ Fuzai. Magnet circuit design and optimization of giant magnetostrictive transducer[J]. Journal of Zhejiang University,2006,40(2):192-196.
[9] 曾庚鑫. 超磁致伸缩功率超声换能器理论分析与试验研究[D]. 广州:华南理工大学,2013. ZENG Gengxin. Theoretical analysis and experimental study of the giant magnetostrictive power ultrasonic transducer[D]. Guangzhou:South China University of Technology,2013.
[10] WAKIWAKA H,UMEZAWA T,YAMADA H,et al. Improvement of flux density uniformity in giant magnetostrictive material for acoustic vibration element[J]. IEEE Transactions on Magnetics,1993,29(6):2443-2445.
[11] WOOLLETT R S. Effective coupling factor of single degree of freedom transducers[J]. Journal of the Acoustical Society of America,1966,40:1112-1123.
[12] WAKIWAKA H,LIO M,NAGUMO M,et al. Impedance analysis of acoustic vibration element using giant magnetorestrictive material[J]. IEEE Transactions on Magnetics,1992,28(5):2208-2210.
[13] HE X, ZHANG P. A new calculation method for the number of radial slots of a Terfenol rod[J]. Science in China Series E:Technological Sciences,2009,52(2):336-338.
[14] BOMBA J,KALETA J,SAWA P. An initial investigation into change in magnetomechanical properties of terfenol-d rod due to prestress and temperature[J]. Anyagvizsgalok Lapja,2004(1):19-21.
文章导航

/