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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >A fractal model of contact between rough surfaces for a complete loading-unloading process
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A fractal model of contact between rough surfaces for a complete loading-unloading process

机译:完整装卸过程粗糙表面与粗糙表面之间的分形模型

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摘要

The mechanical properties of contact between rough surfaces play an important role in the reliability of the electromechanical system. In order to improve the design accuracy of precision instruments, an elastic-plastic contact model for three-dimensional rough surfaces based on the fractal theory is developed for a complete loading-unloading process based on the Majumdar and Bhushan model. The truncation size distribution functions of asperities for different values of asperity level in the loading process are given. Relationships between true contact area and total contact load in the complete loading-unloading process are obtained according to the truncation size distribution functions of asperities. The results show the range of asperity levels has significant effects on contact mechanical behaviors of fractal rough surfaces. When the first six levels of asperities do not exceed the critical elastic level, the fractal rough surfaces exhibit elastic behavior in a complete contact process, and the load-area relationships in the loading and unloading processes are coincident approximately. When the critical elastic level is less than the minimum level of asperity, the inelastic deformation begins to appear in fractal rough surfaces and the true contact area during the unloading process is always greater than the true area during the loading process for a given total contact load. In comparison with the K-K-E model, the present model is proved to be reasonable.
机译:粗糙表面之间接触的机械性能在机电系统的可靠性中起重要作用。为了提高精密仪器的设计精度,基于Majumdar和Bhushan模型的完整装卸过程开发了基于分形理论的三维粗糙表面的弹性塑料接触模型。给出了加载过程中不同值的粗糙度值的截断尺寸分布函数。根据粗糙度的截断大小分布函数获得真实接触面积与完整装卸过程中的总接触载荷之间的关系。结果表明,舒缓水平的范围对分形粗糙表面的接触机械行为具有显着影响。当前六个速度的粗糙度不超过临界弹性水平时,分形粗糙表面在完整的接触过程中表现出弹性行为,并且装载和卸载过程中的负荷面积关系近似。当临界弹性水平小于最小粗糙度时,非弹性变形开始出现在分形粗糙表面中,并且在卸载过程中的真正接触区域总是大于给定总接触负荷的加载过程中的真实区域。与K-K-E模型相比,证明了本模型是合理的。

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