首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Achieving excellent superplasticity in an ultrafine-grained QE22 alloy at both high strain rate and low-temperature regimes
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Achieving excellent superplasticity in an ultrafine-grained QE22 alloy at both high strain rate and low-temperature regimes

机译:在高应变速率和低温制度下实现超细颗粒QE22合金中的优异超塑性

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The high-temperature tensile deformation behavior of ultrafine-grained (UFG) QE22 alloy developed by friction stir processing was investigated at various strain rates (5 x 10(-4) - 1 x 10(-2) s(-1)) and temperatures (300-450 degrees C). The UFG QE22 alloy exhibited excellent high strain rate superplasticity with the maximum elongation of 1630% at a temperature of 450 degrees C and strain rate of 1 x 10(-2) s(-1), which is the highest elongation reported till date in QE22 alloy. The UFG QE22 alloy also shows superior low-temperature superplasticity with a maximum elongation of 850% at a temperature of 350 degrees C and strain rate of 3 x 10(-3) s(-1). Thus, the developed UFG microstructure is found to demonstrate dual-mode superplasticity; both at high strain rate and low-temperature. The primary UFG microstructure and basal texture developed via multi-pass FSP, along with pinning action of Mg12Nd eutectic and fine nano precipitates of Mg12Nd2Ag at grain boundaries played a major role in contributing to the dual-mode superplasticity. The cavitation behavior of the UFG QE22 alloy during superplastic deformation in a dual-mode regime has been studied. The kinetics of superplastic deformation of UFG QE22 alloy was estimated and found to be significantly faster as compared to conventional magnesium alloys processed by various severe plastic deformation routes. (C) 2018 Elsevier B.V. All rights reserved.
机译:在各种应变速率下研究了通过摩擦搅拌加工产生的超细晶粒(UFG)QE22合金的高温拉伸变形行为(5×10(-4) - 1×10(2)S(-1))和温度(300-450℃)。 UFG QE22合金具有优异的高应变率超塑性,其最大伸长率为1630%,温度为450℃和1×10(-2)S(-1)的应变率,这是迄今为止报告的最高伸长率QE22合金。 UFG QE22合金还显示出优异的低温超塑性,其最大伸长率为850%,温度为350℃和3×10(3)S(-1)的应变速率。因此,发现开发的UFG微观结构展示了双模超塑性;在高应变率和低温下。通过多通FSP开发的主要UFG微观结构和基础纹理以及晶界Mg12nd2Ag的Mg12 Nnd2Ag的钉纳沉淀物的钉扎作用在促进双模超塑性方面发挥了重要作用。研究了UFG QE22合金在双模制度中的超塑性变形期间的空化行为。估计UFG QE22合金的超塑性变形动力学,并发现与各种严重塑性变形途径加工的常规镁合金相比显着更快。 (c)2018年elestvier b.v.保留所有权利。

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