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Magnetic Barkhausen emission technique for detecting the overstressing during bending fatigue in case-carburised En36 steel

机译:Barkhausen磁性发射技术用于检测渗碳的En36钢在弯曲疲劳过程中的过应力

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The effect of bending fatigue at different maximum stress levels on the magnetic Barkhausen emission (MBE) has been studied in case-carburised En36 steel specimens. The low frequency MBE profile has been measured after unloading the specimen at different number of fatigue cycles. It has been found that, beyond 1000 MPa, the MBE peak height decreases just after few thousand cycles and the percentage reduction in the MBE peak increases with maximum bending stress level. The reduction in MBE peak at lower stresses (< 1400 MPa) is attributed mainly to the effect of residual stresses becoming more compressive below the surface due to the application prior tensile stress. At higher stresses (1500 MPa), the variation in the MBE peak also indicates the effect of cyclic hardening and softening with progressive fatigue cycles. The MBE profiles measured after monotonic loading and unloading with different maximum stress levels also show similar reduction in the MBE peak with increase in pre-stress level. However, at higher stresses (> 1400 MPa), the cyclic loading shows larger reduction in the MBE peak than the monotonic loading. This is attributed to the effect of cyclic microplasticity induced enhancement of dislocation density in addition to the residual stress modification. This study clearly shows the MBE technique can be used to detect the maximum stress level seen by the specimen beyond 1000 MPa. Any overstressing of this case-carburised steel beyond the fatigue limit of 1150 MPa can be easily detected from the percentage reduction in the MBE peak. Since the crack propagation stage is insignificant in these hard steels, the detection of any overstressing using the MBE technique would be very useful in assessing and preventing the impending catastrophic failure.
机译:在表面渗碳的En36钢试样中,研究了在不同最大应力水平下弯曲疲劳对Barkhausen磁辐射(MBE)的影响。在不同次数的疲劳循环下卸载样品后,已测量了低频MBE轮廓。已经发现,在超过1000 MPa时,MBE峰高仅在几千次循环后就降低,并且MBE峰的降低百分比随最大弯曲应力水平而增加。在较低应力(<1400 MPa)下MBE峰的减少主要归因于残余应力的影响,这是由于施加先于拉伸应力而在表面下方变得更具压缩性。在较高的应力(1500 MPa)下,MBE峰的变化还表明随着疲劳循环的进行,循环硬化和软化的影响。在单调加载和卸载后以不同的最大应力水平测量的MBE轮廓也显示,随着预应力水平的增加,MBE峰也有类似的降低。但是,在较高的应力(> 1400 MPa)下,与单调加载相比,循环加载显示MBE峰的减小幅度更大。这归因于除了残余应力改性之外,循环微塑性诱导位错密度增强的效果。这项研究清楚地表明,MBE技术可用于检测超过1000 MPa的试样所看到的最大应力水平。从MBE峰的降低百分比可以很容易地发现这种渗碳钢的疲劳极限超过1150 MPa。由于在这些硬钢中裂纹扩展阶段无关紧要,因此使用MBE技术检测任何过应力对评估和防止即将发生的灾难性故障将非常有用。

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