首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >A stored energy analysis of grains with shear texture orientations in Cu-Ni-Si and Fe-Ni alloys processed by high-pressure torsion
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A stored energy analysis of grains with shear texture orientations in Cu-Ni-Si and Fe-Ni alloys processed by high-pressure torsion

机译:高压扭转加工Cu-Ni-Si和Fe-Ni合金中具有剪切纹理取向的晶粒的储存能量分析

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Experiments were conducted to evaluate the evolution of the stored energy in grains with shear texture orientations A(1)* {111} (1)over bar>(1) over bar2 >, A(2)*{111} < 1<(2)over bar>1 >,A {111} < 1<(1)over bar>0 >, (A) over bar {111} < 0<(1)over bar>1 >, B {112} < 1<(1)over bar>0 >, (B) over bar {112} <1<(1)over bar>0> and C {100} < 110 > for Cu 2.5Ni 0.6Si and Fe-36Ni (wt%) alloys after high-pressure torsion (HPT) processing up to 10 turns at ambient temperature using a Kernel Average Misorientation (KAM) approach. A typical stable shear texture developed in the Cu-2.5Ni-0.6Si alloy immediately after 1 turn whereas there was a continuous transformation of texture in the Fe-36Ni alloy up to 10 turns. The results show that HPT processing produces similar stored energies of similar to 35 J/mol and similar to 24 J/mol but with different shear texture components for the Cu-2.5-Ni-0.6Si and the Fe-36Ni alloy, respectively. The stored energy in all shear components for the Cu-2.5Ni-0.6Si alloy increases with increasing HPT processing up to 1 turn and then slightly decreases through 10 turns. By contrast, the stored energy of the Fe-36Ni alloy continuously decreases with increasing numbers of HPT turns. These evolutions are examined with reference to the initial textures, dynamic recrystallization, grain refinement mechanisms and differences in the stacking fault energies. (C) 2020 Elsevier B.V. All rights reserved.
机译:通过实验评估了剪切织构取向A(1)*{111}(1)在bar>(1)在bar>(2)在bar>1>上,A(2)*{111}<1<(2)在bar>1>上,A{111}<1<(1)在bar>0>上,A{111}<0<(1)在bar 1>上,B{112}<1<(1)在bar 0>,(B)对于Cu 2.5Ni 0.6Si和Fe-36Ni(wt%)合金,在高压扭转(HPT)处理后,在环境温度下使用核平均取向错误(KAM)方法进行多达10圈的处理,超过bar{112}<1<(1)超过bar>0>和C{100}<110>。Cu-2.5Ni-0.6Si合金在转动1圈后立即形成了典型的稳定剪切织构,而Fe-36Ni合金在转动10圈后出现了织构的连续转变。结果表明,对于Cu-2.5-Ni-0.6Si和Fe-36Ni合金,HPT处理分别产生类似于35J/mol和类似于24J/mol的储能,但具有不同的剪切织构成分。Cu-2.5Ni-0.6Si合金的所有剪切组分中的储能随着HPT工艺的增加而增加,最多增加1圈,然后在10圈内略有减少。相比之下,随着HPT匝数的增加,Fe-36Ni合金的储能不断降低。本文从初始织构、动态再结晶、晶粒细化机制和层错能量差异等方面对这些演变进行了研究。(C) 2020爱思唯尔B.V.版权所有。

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