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A review of geometrical and microstructural size effects in micro-scale deformation processing of metallic alloy components

机译:金属合金构件微尺度变形加工中几何和微观结构尺寸效应的研究进展

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摘要

Plastic deformation at the macroscopic scale has been widely exploited in industrial practice in order to obtain desired shape and control the requested properties of metallic alloy parts and components. The knowledge of deformation mechanics involved in various forming processes has been systematically advanced over at least two centuries, and is now well established and widely used in manufacturing. However, the situation is different when the physical size of the workpiece is scaled down to the micro-scale (µ-scale). In such cases the data, information and insights from the macro-scale (m-scale) deformation mechanics are no longer entirely valid and fully relevant to µ-scale deformation behavior. One important reason for the observed deviation from m-scale rules is the ubiquitous phenomenon of Size Effect (SE). It has been found that the geometrical size of workpiece, the microstructural length scale of deforming materials and their interaction significantly affect the deformation response of µ-scale objects. This observation gives rise to a great deal of research interest in academia and industry, causing significant recent effort directed at exploring the range of related phenomena. The present paper summarizes the current state-of-the-art in understanding the geometrical and microstructural SEs and their interaction in deformation processing of µ-scale components. The geometrical and grain SEs in µ-scale deformation are identified and articulated, the manifestations of the SE are illustrated and the affected phenomena are enumerated, with particular attention devoted to pointing out the differences from those in the corresponding m-scale domain. We elaborate further the description of the physical mechanisms underlying the phenomena of interest, viz., SE-affected deformation behavior and phenomena, and the currently available explanations and modeling approaches are reviewed and discussed. Not only do the SEs and their interaction affect the deformation-related phenomena, but they also induce considerable scatter in properties and process performance measures, which in turn affects the repeatability and reliability of deformation processing. This important issue has become a bottleneck to the more widespread application of µ-scale deformation processing for mass production of µ-scale parts. What emerges is a panoramic view of the SE and related phenomena in µ-scale deformation processing. Furthermore, thereby the outstanding issues are identified to be addressed to benefit and promote practical applications.
机译:为了获得所需的形状并控制金属合金零件和部件的所需性能,在工业实践中已广泛采用宏观尺度的塑性变形。至少两个世纪以来,系统地促进了涉及各种成型过程的变形力学知识的发展,如今,它已广为人知并广泛用于制造中。但是,当将工件的物理尺寸缩小到微米级(μ级)时,情况就不同了。在这种情况下,来自宏观尺度(m尺度)变形机制的数据,信息和见解不再完全有效,并且与μ尺度变形行为完全相关。观察到的偏离m尺度规则的重要原因之一是大小效应(SE)的普遍现象。已经发现,工件的几何尺寸,变形材料的微观结构长度尺度及其相互作用显着影响μ尺度物体的变形响应。这种观察引起了学术界和工业界的大量研究兴趣,引起了近期针对探索相关现象范围的重大努力。本文总结了当前了解几何和微观结构SE及其在微米级零件变形处理中的相互作用的最新技术。识别并阐明了微米尺度变形中的几何SE和晶粒SE,阐明了SE的表现并列举了受影响的现象,并特别注意指出与相应m尺度域中的差异。我们进一步详细描述了感兴趣的现象(即SE影响的变形行为和现象)背后的物理机制,并对当前可用的解释和建模方法进行了回顾和讨论。 SE和它们的相互作用不仅影响与变形有关的现象,而且还引起性能和过程性能指标的显着分散,进而影响变形处理的可重复性和可靠性。这个重要的问题已成为大规模生产微米级零件的微米级变形加工应用的瓶颈。在微尺度变形处理中出现的是SE和相关现象的全景图。此外,由此确定了待解决的突出问题,以受益于和促进实际应用。

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