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Effects of surface roughness on scratch resistance and stress-strain fields during scratch tests

机译:表面粗糙度对划痕试验期间抗划伤性和应力应变场的影响

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A three-dimensional scratch model is proposed to numerically investigate the effects of surface roughness on the scratch resistance, stress concentration, residual stress and plastic deformation during scratch tests, with the help of the finite element method. Without loss of generality, the surface roughness of a coating is modelled by a sinusoidal function. The stress and plastic strain fields with various geometry parameters of roughness are obtained and discussed. In comparison with a smooth coating, the stress concentration, the residual stress, and the scratch resistance are significantly intensified and the plastic strain is increased by a factor of five in a corrugated coating, which may tremendously reduce the material performance. Consequently, the effects of surface roughness should not be ignored in both experiments and simulations. The geometry of roughness is determined by both the wave amplitude and wavelength, and their influences on the tribological behaviors can be significant. While existing experiments are only focused on the roughness in vertical direction (corresponding to the wave amplitude), the effects of wave amplitude and wavelength can be qualitatively different in many aspects and should be considered separately. The scratch depth and the area of contact region between the indenter and coating are not very sensitive to a moderate change in the wave amplitude, while they are reduced obviously with a rising wavelength. While the stress concentration increases monotonously with a rising amplitude, it becomes more complex and the decrease of wavelength can reduce the stress concentration in some cases. A growth in roughness by a large wave amplitude or a small wavelength leads to an enhancement on scratch friction coefficient and friction resistance, which is qualitatively consistent with experiments. The findings here contribute to a new way for quantitative evaluations of the effect of surface roughness and should be beneficial to modelling and simulation in scratch tests and also to the optimum designs on the surface coating for experiments.
机译:提出了三维划痕模型,利用有限元方法对划痕试验过程中表面粗糙度对耐划痕性,应力集中,残余应力和塑性变形的影响进行了数值研究。在不失一般性的情况下,涂层的表面粗糙度通过正弦函数建模。得到并讨论了具有各种粗糙度几何参数的应力和塑性应变场。与光滑涂层相比,波纹涂层中的应力集中,残余应力和耐刮擦性显着增强,塑性应变增加了五倍,这可能会大大降低材料性能。因此,在实验和模拟中都不应忽略表面粗糙度的影响。粗糙度的几何形状由波幅和波长决定,它们对摩擦学行为的影响可能很大。虽然现有的实验仅关注垂直方向上的粗糙度(与波幅相对应),但波幅和波长的影响在许多方面可能存在质的不同,因此应单独考虑。划痕深度和压头与涂层之间的接触区域的面积对波幅的适度变化不是很敏感,但是随着波长的增加它们会明显减小。虽然应力集中随振幅的增加而单调增加,但会变得更加复杂,并且波长的减小在某些情况下会降低应力集中。大振幅或小波长引起的粗糙度增加导致刮擦摩擦系数和摩擦阻力的提高,这在质量上与实验一致。此处的发现为定量评估表面粗糙度的影响提供了一种新方法,并且应有利于划痕测试中的建模和仿真,以及有利于实验表面涂层的最佳设计。

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  • 来源
    《AIP Advances》 |2017年第3期|共页
  • 作者

    Biao Feng;

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  • 中图分类 物理学;
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  • 入库时间 2022-08-18 07:40:49

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