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Predicting Workability of a Low-Cost Powder Metallurgical Ti–5Al–2Fe–3Mo Alloy Using Constitutive Modeling and Processing Map

机译:使用本构型建模和加工地图预测低成本粉末冶金Ti-5AL-2FE-3MO合金的可加工性

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摘要

A low-cost titanium alloy (Ti–5Al–2Fe–3Mo wt.%) was designed and fabricated by blended elemental powder metallurgy (BEPM) process. The high-temperature deformation behavior of the powder metallurgical Ti–5Al–2Fe–3Mo wt.% (PM-TiAlFeMo) alloy was investigated by hot compression tests at temperatures ranging from 700 to 1000 °C and strain rates ranging from 0.001 to 10 s−1. The flow curves were employed to develop the Arrhenius-type constitutive model in consideration of effects of deformation temperature, strain rate, and flow stress. The value of activation energy (Q) was determined as 413.25 kJ/mol. In order to describe the workability and predict the optimum hot processing parameters of the PM-TiAlFeMo alloy, the processing map has been established based on the true stress–true strain curves and power dissipation efficiency map. Moreover, microstructure observations match well with the analyses about deformation mechanisms, revealing that dynamic recovery and dynamic recrystallization are dominant softening mechanisms at relatively high temperatures. However, the kinking and breaking of microstructure prefer to occur at relatively low temperatures.
机译:由混纺元素粉末冶金(BEPM)工艺设计和制造了低成本的钛合金(Ti-5Al-2Fe-3MOwt.%)。粉末冶金Ti-5Al-2Fe-3MOwt.%(PM-Tialfemo)合金的高温变形行为通过700至1000℃的温度测量,率为0.001至10秒的温度测量-1。考虑到变形温度,应变率和流量应力的影响,采用流动曲线来开发Arhenius型本构型模型。激活能量(Q)的值确定为413.25kJ / mol。为了描述可加工性并预测PM-TialFemo合金的最佳热处理参数,基于真正的应力真实应变曲线和功耗效率图建立了处理地图。此外,微观结构观察与关于变形机制的分析相匹配,揭示动态回收和动态重结晶在相对高的温度下是显性的软化机制。然而,微观结构的扭结和断裂优选在相对低的温度下发生。

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