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Finite element modelling and experimental validation of bolt loosening due to thread wear under transverse cyclic loading

机译:横向循环载荷下螺纹磨损引起的螺栓松动的有限元建模与实验验证

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摘要

A finite element model, considered for the wear profile evolution of a threaded surface, is proposed to simulate the self-loosening of bolted joints under transverse loading. The method for wear profile simulation is based on an energy-based approach. To verify this finite element model, interrupted bolt loosening tests were carried out. The finite element model successfully simulated the phenomenon in which fretting wear causes a gradual reduction in clamping force by changing the distribution and magnitude of contact stress between the threads. The predicted results agreed with the experimental results with respect to the evolutionary trend of the wear profile and clamping force. It can be seen from the finite element analysis that the fretting wear causes a change in the distribution and magnitude of contact stress, and an increment in the sliding distance along the radial direction on the thread surface, which can further change the distribution of the wear depth. Because the accumulation of wear debris is not considered in the finite element model, the predicted wear depth and reduction of clamping force is larger than that obtained from the experimental results.
机译:考虑用于螺纹表面的磨损轮廓展开的有限元模型,以模拟横向负载下的螺栓接头的自松感。磨损轮廓模拟方法基于基于能量的方法。为了验证这种有限元模型,进行了中断的螺栓松动测试。有限元模型成功模拟了通过改变螺纹之间的接触应力的分布和幅度来引起夹紧力的逐渐降低的现象。预测结果同意了关于磨损型材和夹紧力的进化趋势的实验结果。从有限元分析可以看出,微动磨损导致接触应力的分布和幅度的变化,以及沿着螺纹表面上的径向的滑动距离增加,这可以进一步改变磨损的分布深度。因为在有限元模型中不考虑磨损碎片的累积,所以预测的磨损深度和夹紧力的降低大于从实验结果中获得的磨损。

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