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Work-hardening effect and strain-rate sensitivity behavior during hot deformation of Ti–5Al–5Mo–5V–1Cr–1Fe alloy

机译:Ti-5Al-5Mo-5V-5V-1Cr-1Fe合金热变形过程中的加工硬化效应和应变率敏感性行为

摘要

The work-hardening effect and strain-rate sensitivity behavior during hot deformation have been quantitatively investigated in this present paper. Isothermal compression experiment of Ti–5Al–5Mo–5V–1Cr–1Fe titanium alloy has been conducted for verification. Linear relationship between work-hardening rate and true strain/stress has been derived from Kocks–Mecking dislocation relation. The work-hardening effect shows two obvious stages with strain: steady fluctuations and linear decreasing. Obvious work-hardening effect could be demonstrated under lower temperatures and higher strain rates. The work-hardening decrease at linear-decreasing regime becomes more stronger with temperature elevated and rate lowered, reverse-proportional to Zener–Hollomon parameters. Strain-rate sensitivity coefficient for hot deformation was decomposed into three parts from JMAK recrystallization kinetics. The influence of strain rate on DRX evolution has been termed as the major factor determining strain-rate sensitivity. Strain-rate sensitivity coefficients for steady-state deformation (ɛ = 0.7) of Ti–5Al–5Mo–5V–1Cr–1Fe alloy have been characterized as a function of deformation parameters and strain-rate sensitivity has been identified more obvious with temperature elevated and rate lowered.
机译:本文定量研究了热变形过程中的加工硬化效应和应变率敏感性行为。进行了Ti-5Al-5Mo-5V-5V-1Cr-1Fe钛合金的等温压缩实验。硬化率与真实应变/应力之间的线性关系是从Kocks-Mecking位错关系得出的。加工硬化效应显示出两个明显的应变阶段:稳定波动和线性下降。在较低的温度和较高的应变速率下可以显示出明显的加工硬化效果。随温度升高和速率降低,线性降低状态下的加工硬化降低变得更强,与齐纳-所罗门参数成反比。从JMAK重结晶动力学将热变形的应变率敏感性系数分解为三个部分。应变速率对DRX演化的影响被称为决定应变速率灵敏度的主要因素。 Ti–5Al–5Mo–5V–1Cr–1Fe合金稳态变形的应变率敏感性系数(ɛ= 0.7)已被表征为变形参数的函数,并且随着温度升高,应变率敏感性变得更加明显率降低了。

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