Cu-0.6Cr-0.1Zr合金在高压扭转下的非单调性变化是由硬化机制引起的

D. Aksenov, S. Faizova, I. Faizov
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引用次数: 0

摘要

相变在弥散硬化合金(如Cu-Cr-Zr系合金)的性能形成中起着重要作用。已知在剧烈塑性变形下,扩散条件发生显著变化,导致相变动力学发生变化。本文研究了Cu-0.6Cr-0.1Zr合金在高压扭转(高达10次循环)下的低浓度固溶体状态。在这种情况下,由于固溶体浓度低,形成了大颗粒系综,在第一阶段排除了固溶体分解的过程。通过对电导率和晶格参数等结构敏感特性的初步分析,可以确定高温高温相变过程中固溶体中合金元素浓度变化的非单调性质。非单调性与高压作用下第二相粒子系综特性的显著变化有关。这种显著的结构变化反映在机械特性的性质变化上。作者发现,随着HPT转数的增加,强度的变化也具有非单调性,这与合金元素浓度和电导率变化的非单调性相对应。分析了各因素对Cu-0.6Cr-0.1Zr合金硬化的影响。分析表明,色散增强在力学特性的非单调变化中起主要作用。计算的数据与得到的实验结果相吻合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hardening mechanisms contribution at nonmonotonic change of properties in the Cu–0.6Cr–0.1Zr alloy at high pressure torsion
Phase transformations play an important role in the formation of properties in the dispersion-hardened alloys, for example, such as the Cu–Cr–Zr system alloys. It is known that under severe plastic deformation, the diffusion conditions change significantly, which leads to a change in the phase transformation kinetics. In this work, the authors studied the Cu–0.6Cr–0.1Zr alloy in the low concentration solid solution state subjected to high pressure torsion (up to 10 cycles). In this case, due to the solid solution low concentration and the formed ensemble of large particles, the process of solid solution decomposition was excluded at the first stages. The preliminary work on the analysis of such structurally sensitive characteristics as electrical conductivity and lattice parameter made it possible to identify the nonmonotonic nature of a change in the alloying elements concentration in the solid solution during HPT. Nonmonotonicity is related to the significant changes in the characteristics of the second phase particles ensemble under the influence of high voltages. Such significant structural changes are reflected in the nature of the mechanical characteristics change. The authors identified that when increasing the number of HPT revolutions, changes in strength also have a nonmonotonic nature, which corresponds to the nonmonotonic nature of changes in the concentration of alloying elements and electrical conductivity. Various contributions to the Cu–0.6Cr–0.1Zr alloy hardening were analyzed. The analysis identified that the dispersion strengthening contribution plays the main role in the nonmonotonic change in the mechanical characteristics. The calculated data correlate with the obtained experimental results.
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