Nondestructive Evaluation of Contact Damage of Ferromagnetic Materials Based on Metal Magnetic Memory Method

被引:0
作者
K. Yao
L.B. Wu
Y.S. Wang
机构
[1] Beijing Jiaotong University,Department of Mechanics, School of Civil Engineering
来源
Experimental Techniques | 2019年 / 43卷
关键词
Metal magnetic memory; Magnetic flux leakage; Contact stress-concentration; Contact damage; Magneto-mechanical coupling;
D O I
暂无
中图分类号
学科分类号
摘要
A technique based on the metal magnetic memory (MMM) is developed to evaluate the contact damage of ferromagnetic materials under nonferromagnetic and ferromagnetic indenters by measuring the magnetic flux leakage (MFL) signals. Great difference between the MFL signals for the ferromagnetic indenter and non-ferromagnetic indenter is experimentally observed. The normal signal shows a dip in the contact region for the ferromagnetic indenter but an increase for the non-ferromagnetic indenter; the tangential signal experiences a peak-peak change through zero in the contact region for the ferromagnetic indenter but a peak for the non-ferromagnetic indenter. Furthermore, the amplitude of MFL signals for the ferromagnetic indenter is considerably larger than that for the non-ferromagnetic indenter. The mechanism of the signal variation is analyzed by considering the magnetic-stress coupling effect. Criteria of the early contact damage are developed based on the variations of the MFL signals and their gradients; and the evaluation parameters are extracted.
引用
收藏
页码:273 / 285
页数:12
相关论文
共 63 条
  • [11] Song K(2012)Evaluation of residual stress in ferromagnetic steels based on residual magnetic field measurements NDT & E Int 45 55-62
  • [12] Ren JL(2012)Experimental research on metal magnetic memory technique Exp Mech 52 305-314
  • [13] Dong LH(2009)Magnetic field variation induced by cyclic bending stress NDT & E Int 42 410-414
  • [14] Xu BS(2010)Stress concentration degree affects spontaneous magnetic signals of ferromagnetic steel under dynamic tension load NDT & E Int 43 8-12
  • [15] Dong SY(2008)Monitoring fatigue crack propagation of ferromagnetic materials with spontaneous abnormal magnetic signals Int J Fatigue 30 1599-1605
  • [16] Song L(2016)Metal magnetic memory technique used to predict the fatigue crack propagation behavior of 0.45%C steel J Magn Magn Mater 405 150-157
  • [17] Chen JZ(1998)Theory of the magnetomechanical effect J Phys D Appl Phys 28 1537-1546
  • [18] Wang D(2011)Physical model of plastic deformation on magnetization in ferromagnetic materials J Phys D Appl Phys 109 45-60
  • [19] Jian XL(2016)Magnetic charge model for 3D MMM signals Nondestruct Test Eva 31 112-118
  • [20] Jian XC(2014)Three-dimensional finite element analysis of residual magnetic field for ferromagnets under early damage J Magn Magn Mater 254 undefined-undefined