首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part J. Journal of engineering tribology >An experimentally validated numerical model of indentation and abrasion by debris particles in machine-element contacts considering micro-hardness effects
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An experimentally validated numerical model of indentation and abrasion by debris particles in machine-element contacts considering micro-hardness effects

机译:考虑到微硬度效应的机械元件接触中的碎屑压痕和磨损的实验验证数值模型

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摘要

Indentation and abrasion of machine-element contacts by solid contamination particles is a major problem in many industries and manufacturing processes involving the automotive, aerospace, medical and electronics industries among others. Published theoretical studies on indentation and soft abrasion of surfaces by ductile debris particles other than those of the author are based on several major simplifications concerning material properties, hardness, plasticity modelling, interfacial friction, kinematic conditions, etc. None of the studies published in the literature to date (2011) have those simplifications concurrently relaxed. In view of the shortcomings of existing numerical models on debris particle indentation and abrasion, and given the importance of dent geometry and size on fatigue life of machine elements, a greatly improved numerical model has been developed based on the previous studies of the author. The new model deals with elastoplastic indentation and abrasion of rolling-sliding, dry and lubricated contacts by spherical particles of any hardness, from very soft (e.g. 40 HV) to very hard (e.g. over 1000 HV), including harder than the contact counterfaces. The model incorporates strain-hardening and strain-gradient or indentation-size micro-hardness effects with an expanding-cavity plasticity model, a localised treatment of friction, generalised boundary and kinematic conditions involving localised stick and slip of the particle, linear and nonlinear work-hardening models of the particle, a basic approach on pile-up/sink-in plasticity effects and several other improvements. The model has passed extensive validation tests and found to give realistic predictions that are quantitatively quite close to the experimental results published by independent researchers in the literature concerning dent dimensions and slope. Moreover, it has verified and explained theoretically for the first time the formation of dimples inside and outside dents experimentally observed in rolling and rolling-sliding contacts. This article presents the mathematics of the model, the validation procedure with several real cases from the experimental literature, and a parametric study to show the model's predictions on precise dent geometry in several realistic cases.
机译:在许多行业和涉及汽车,航空航天,医疗和电子行业等行业的制造过程中,固体污染物颗粒对机器元件触点的压痕和磨损是一个主要问题。已发表的有关除作者以外的延性碎屑颗粒压痕和表面软磨损的理论研究是基于有关材料性能,硬度,可塑性建模,界面摩擦,运动学条件等的几种主要简化方法。迄今为止(2011年)的文献都同时简化了这些简化。鉴于现有的关于碎屑颗粒压痕和磨损的数值模型的缺点,并且考虑到凹痕的几何形状和尺寸对机器元件的疲劳寿命的重要性,在作者先前的研究的基础上已经开发了一种大大改进的数值模型。新模型处理了各种硬度,从非常软(例如40 HV)到非常硬(例如1000 HV以上),包括比接触对接面更硬的任何硬度的球形颗粒的弹塑性压痕和滚动滑动,干燥和润滑触点的磨损。该模型将应变硬化和应变梯度或压痕大小的微观硬度效应与扩张型腔塑性模型,摩擦的局部处理,涉及颗粒的局部粘着和滑移的广义边界和运动条件,线性和非线性功结合在一起-颗粒的硬化模型,堆积/沉入塑性效应的基本方法以及其他一些改进。该模型已经通过了广泛的验证测试,并发现了可以在数量上非常接近独立研究人员在有关凹陷尺寸和坡度的文献中发表的实验结果的现实预测。此外,它首次在理论上验证和解释了在滚动和滚动滑动接触中实验观察到的凹痕内部和外部凹痕的形成。本文介绍了该模型的数学模型,以及来自实验文献的几个实际案例的验证程序以及参数研究,以显示该模型在几种实际案例中对精确凹痕几何形状的预测。

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