Linear Permanent Magnet Eddy Current Brake for Overwinding Protection

被引:7
作者
Yang, Panpan [1 ]
Zhou, Gongbo [1 ]
Zhu, Zhencai [1 ]
Tang, Chaoquan [1 ]
He, Zhenzhi [2 ]
Wang, Penghui [1 ]
机构
[1] China Univ Min & Technol, Sch Mechatron Engn, Jiangsu Key Lab Mine Mech & Elect Equipment, Xuzhou 221116, Jiangsu, Peoples R China
[2] Jiangsu Normal Univ, Sch Mech & Elect Engn, Xuzhou 221116, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Eddy current brake; linear permanent magnet; overwinding protection; DESIGN; PERFORMANCE;
D O I
10.1109/ACCESS.2019.2902892
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Overwinding protection devices are used to brake hoisting containers before these containers reach a limited height, thereby preventing the hoisting containers from impacting the hoisting system. However, in ultra-deep shafts (depth > 1000 m), traditional overwinding protection methods fail to protect the hoisting system, because this type of hoisting system has a greater mass, kinetic energy, and inertia than the traditional hoisting system, and also the environment of ultra-deep shafts is more complex. This paper presents a novel overwinding protection method that applies a linear permanent magnet eddy current brake (LPMECB) to the hoisting system in ultra-deep shafts. This paper also finds the optimum setting parameter of permanent magnets (PMs). First, an analytical model of the LPMECB is built, and the time-domain signals of the braking force are processed via fast Fourier transform, confirming the mechanism of the optimum setting parameter. Subsequently, the simulations are conducted by establishing a finite-element model of the LPMECB; the simulations prove the existence of the optimum setting parameter of PMs and demonstrate the influence of the air gap, velocity, and conductivity on this parameter. Finally, the experimental studies are carried out on a test bench of the LPMECB to validate the analytical model and the simulation results. The results show the existence of the optimum setting parameter of PMs and prove that the air gap has an effect on this parameter.
引用
收藏
页码:33922 / 33931
页数:10
相关论文
共 23 条
  • [1] ANALYSIS OF AN ELECTROMAGNETIC BRAKE
    BIGEON, J
    SABONNADIERE, JC
    [J]. ELECTRIC MACHINES AND POWER SYSTEMS, 1985, 10 (04): : 285 - 297
  • [2] Burger NDL, 2004, J S AFR I MIN METALL, V104, P411
  • [3] Two-Dimensional Analytical Permanent-Magnet Eddy-Current Loss Calculations in Slotless PMSM Equipped With Surface-Inset Magnets
    Dubas, Frederic
    Rahideh, Akbar
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2014, 50 (03) : 54 - 73
  • [4] Permanent-magnet linear eddy-current brake with a non-magnetic reaction plate
    Edwards, JD
    Jayawant, BV
    Dawson, WRC
    Wright, DT
    [J]. IEE PROCEEDINGS-ELECTRIC POWER APPLICATIONS, 1999, 146 (06): : 627 - 631
  • [5] Gay S. E., 2005, THESIS
  • [6] Parametric analysis of eddy-current brake performance by 3-D finite-element analysis
    Gay, SE
    Ehsani, M
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2006, 42 (02) : 319 - 328
  • [7] Gilson A, 2015, INT C ELECTR MACH SY, P1508, DOI 10.1109/ICEMS.2015.7385280
  • [8] Design, analysis and real time dynamic torque control of single-rotor-single-stator axial flux eddy current brake
    Gulec, Mehmet
    Yolacan, Ersin
    Aydin, Metin
    [J]. IET ELECTRIC POWER APPLICATIONS, 2016, 10 (09) : 869 - 876
  • [9] Hansel J., 2010, J KONBIN, V13, P187
  • [10] A linear eddy current braking system defined by finite element method.
    Hecquet, M
    Brochet, P
    Jin, LS
    Delsalle, P
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 1999, 35 (03) : 1841 - 1844