首页> 外文会议>International conference on processing manufacturing of advanced materials;THERMEC 2009 >Grain Refinement Efficiency in Equal Channel Angular Extrusion of FCC Metals Inferred from Crystal Plasticity Simulations of Slip Activities
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Grain Refinement Efficiency in Equal Channel Angular Extrusion of FCC Metals Inferred from Crystal Plasticity Simulations of Slip Activities

机译:从滑移活动的晶体可塑性模拟推断FCC金属在等通道角挤压中的晶粒细化效率

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Equal channel angular extrusion (ECAE) is a relatively new technique to produce ultrafine-grained materials by severe plastic deformation. Its efficiency of grain refinement varies with the processing route, i.e. the billet rotation (χ) about its longitudinal axis between successive passes. The influence of processing route can not be fully explained by existing theories that consider only the macroscopic deformation features. In this study, the mesoscopic deformation behavior during multi-pass ECAE of face-centered cubic (FCC) metals was simulated using a visco-plasticity self-consistent (VPSC) polycrystal model and assuming simple shear deformation in each pass. It is shown that the slip activities vary significantly at the transitions between successive passes, depending on the die angle and processing route. The efficiencies of grain refinement in the different cases can be well correlated to the contribution of slip systems newly activated in a subsequent pass. The grain refinement is more efficient when such contributions are higher, such as in route B (χ= 90°) with a 90° die or route A (χ=0°) with a 120° die. These crystal plasticity simulations provide insights into the efficiency of grain refinement during severe plastic deformation with strain path changes.
机译:等通道角挤压(ECAE)是一种相对较新的技术,可通过剧烈的塑性变形来生产超细颗粒的材料。其晶粒细化的效率随加工路线(即,在连续通过之间绕其纵轴的方坯旋转(χ))而变化。现有的仅考虑宏观变形特征的理论不能完全解释加工路径的影响。在这项研究中,使用粘塑性自洽(VPSC)多晶模型模拟了面心立方(FCC)金属在多道次ECAE期间的介观形变行为,并假设每道次中的简单剪切变形。结果表明,根据模具角度和加工路线,滑移活动在连续走刀之间的过渡处有很大变化。在不同情况下,晶粒细化的效率可以与在后续道次中新激活的滑移系统的贡献很好地相关。当这种贡献较高时,例如在带有90°模具的路线B(χ= 90°)或带有120°模具的路线A(χ= 0°)中,晶粒细化效率更高。这些晶体可塑性模拟可洞察应变路径变化导致的严重塑性变形期间晶粒细化的效率。

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