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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Research on the hot deformation behavior of Al-6.2Zn-0.70Mg-0.3Mn-0.17Zr alloy using processing map
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Research on the hot deformation behavior of Al-6.2Zn-0.70Mg-0.3Mn-0.17Zr alloy using processing map

机译:利用加工图研究Al-6.2Zn-0.70Mg-0.3Mn-0.17Zr合金的热变形行为

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The hot deformation behavior of Al-6.2Zn-0.70Mg-0.3Mn-0.17Zr alloy was studied using hot compression tests over deformation temperature range of 623-773 K and strain rate of 0.01-20 s(-1). The flow stress behavior and microstructural evolution were observed during the hot deformation process. The results show the flow stresses and microstructure evolution are sensitive to deformation parameters. The peak stress level decreases with increasing deformation temperature and decreasing strain rate, which can be represented by the Zener-Hollomon parameter Z in the hyperbolic sine equation with the hot deformation activation energy of 178.85 KJ/mol. The dynamic flow softening for the alloy is accounted for dynamic recovery and dynamic recrystallization. Under conditions of high lnZ values, only dynamic recovery occurred, and the main soften mechanism transformed from dynamic recovery to dynamic recrystallization at low lnZ values. With decreasing the value of lnZ parameter, the size of recrystallization grain becomes larger. According to the TEM evolution, it can easily observed that high densities of the fine and nano-scaled Al3Zr particles have precipitate in the aluminum matrix and grain boundary, which can effectively inhibit the dynamic recrystallization of experiment alloy. Based on dynamic material model and Prasad' instability criterion, the processing maps for the alloy are built at true strains of 0.3 and 0.5. The processing map at the strain of 0.5 exhibits the optimum processing conditions are in deformation temperature range from 703 K to 773 K and strain rate range from 0.03 s (1) to 0.32 s (1) with the maximum efficiency of 33%. (C) 2015 Elsevier B.V. All rights reserved.
机译:在623-773 K的变形温度范围和0.01-20 s(-1)的应变速率下,通过热压缩试验研究了Al-6.2Zn-0.70Mg-0.3Mn-0.17Zr合金的热变形行为。在热变形过程中观察到流动应力行为和微观结构演变。结果表明,流变应力和微观组织演变对变形参数敏感。峰值应力水平随着变形温度的升高和应变速率的降低而降低,这可以由双曲正弦方程中的齐纳-所洛门参数Z表示,热变形激活能为178.85 KJ / mol。合金的动态流动软化是动态恢复和动态再结晶的原因。在高lnZ值的条件下,仅发生动态恢复,而主要的软化机制从低lnZ值的动态恢复转变为动态重结晶。随着lnZ参数值的减小,重结晶晶粒的尺寸变大。根据TEM的演变,可以很容易地观察到高密度的纳米Al3Zr细颗粒在铝基体和晶界中析出,可以有效地抑制实验合金的动态再结晶。基于动态材料模型和Prasad的不稳定性准则,在真实应变为0.3和0.5的情况下建立了合金的加工图。应变为0.5时的加工图显示最佳加工条件为变形温度范围为703 K至773 K,应变速率范围为0.03 s(1)至0.32 s(1),最大效率为33%。 (C)2015 Elsevier B.V.保留所有权利。

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