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Surface plastic flow in polishing of rough surfaces

机译:粗糙表面抛光中的表面塑性流

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摘要

We present experimental evidence for a new mechanism for how smooth surfaces emerge during repetitive sliding contacts, as in polishing. Electron microscopy observations of Ti-6Al-4V surface with a spherical asperity structure—realized via additive manufacturing—during successive polishing stages suggest that asperity-abrasive contacts exhibit viscous behavior, where the asperity material flows in the form of thin (1–10 μm) fluid-like layers. Subsequent bridging of these layers among neighboring asperities results in progressive surface smoothening. Using analytical asperity-abrasive contact temperature modeling and microstructural characterization, we show that the sliding contacts encounter flash temperatures of the order of 700–900 K which is in the range of the dynamic recrystallization temperature of the material considered, thus supporting the experimental observations. Besides providing a new perspective on the long-held mechanism of polishing, our observations provide a novel approach based on graph theory to quantitatively characterize the evolution of surface morphology. Results suggest that the graph representation offers a more efficient measure to characterize the surface morphology emerging at various stages of polishing. The research findings and observations are of broad relevance to the understanding of plastic flow behavior of sliding contacts ubiquitous in materials processing, tribology, and natural geological processes as well as present unique opportunities to tailor the microstructures by controlling the thermomechanics of the asperity-abrasive contacts.
机译:我们为新机制提供了实验证据,该机制可用于在重复滑动接触期间(如在抛光过程中)出现光滑表面。在连续抛光阶段中通过增材制造实现的具有球形凹凸结构的Ti-6Al-4V表面的电子显微镜观察表明,粗糙磨料接触表现出粘性行为,其中粗糙材料以薄的形式流动(1–10μm )类液体层。随后将这些层桥接在相邻的凹凸不平之间,从而使表面逐渐平滑。通过使用分析性粗糙-磨料接触温度模型和微观结构表征,我们发现滑动接触遇到的闪点温度为700-900 K,这在所考虑材料的动态再结晶温度范围内,从而支持了实验观察。除了为抛光的长期机制提供新的视角之外,我们的观察还提供了一种基于图论的新颖方法,以定量表征表面形态的演变。结果表明,图形表示法提供了一种更有效的方法来表征在抛光的各个阶段出现的表面形态。研究结果和观察结果与理解材料加工,摩擦学和自然地质过程中普遍存在的滑动接触的塑性流动行为具有广泛的相关性,并且通过控制粗糙磨料接触的热力学为微结构的定制提供了独特的机会。 。

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