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Achieving Both Powder Consolidation and Grain Refinement for Bulk Nanostructured Materials by Equal-Channel Angular Pressing

机译:通过等通道角挤压实现块状纳米结构材料的粉末固结和​​细化

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摘要

Manufacturing bulk nanostructured materials with least grain growth from initial powders is challenging because of the bottle neck of bottom-up methods using the conventional powder metallurgy of compaction and sintering. In this study, bottom-up type powder metallurgy processing and top-down type SPD (Severe Plastic Deformation) approaches were combined in order to achieve both full density and grain refinement of metallic powders. ECAP (Equal-Channel Angular Pressing), one of the most promising processes in SPD, was used for the powder consolidation method. For understanding the ECAP process, investigating the powder density as well as internal stress, strain and strain rate distribution is crucial. We investigated the consolidation and plastic deformation of the metallic powders during ECAP using the finite element simulations. Almost independent behavior of powder densification in the entry channel and shear deformation in the main deformation zone was found by the finite element method in conjunction with a pressure dependent material yield model. Effects of processing parameters on densification and density distributions were investigated.
机译:由于使用传统的压实和烧结粉末冶金方法,自下而上方法的瓶颈,因此要用初始粉末制造出具有最小晶粒生长的块状纳米结构材料具有挑战性。在这项研究中,自下而上的粉末冶金加工和自上而下的SPD(严重塑性变形)方法相结合,以实现金属粉末的全密度和晶粒细化。 ECAP(等通道角挤压)是SPD中最有前途的工艺之一,用于粉末固结法。为了了解ECAP过程,研究粉末密度以及内部应力,应变和应变率分布至关重要。我们使用有限元模拟研究了ECAP期间金属粉末的固结和塑性变形。通过有限元方法结合压力相关的材料屈服模型,发现了进入通道中粉末致密化和主变形区域中的剪切变形几乎独立的行为。研究了工艺参数对致密化和密度分布的影响。

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