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Hot deformation behaviour and flow stress prediction of 7075 aluminium alloy powder compacts during compression at elevated temperatures

机译:7075铝合金粉末压坯在高温压缩过程中的热变形行为和流变应力预测

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摘要

In the present study, the hot deformation behaviour of 7075 aluminium alloy powder compacts was studied by performing hot compression tests on a Gleeble 3800 machine. The main objectives were to evaluate the effect of the relative green density on the hot deformation behaviour and to model and predict the hot deformation flow stress of powder compacts using constitutive equations. For this purpose, powder compacts with relative green densities ranging from 83 to 95%, which were prepared by uniaxial cold pressing a commercial pre-mixed powder, were hot compressed at temperatures ranging from 350 °C to 450 °C and at true strain rates ranging from 0.01 s⁻¹ to 10 s⁻¹. The true stress–true strain curves of the powder compacts exhibited a peak stress at a critical strain after which the flow stress remained nearly constant. As the deformation temperature increased or the strain rate and green density decreased, a decrease in the peak stress level was observed. The relationship between deformation temperature, strain rate, and the peak flow stress of powder compacts was described by the Zene–Hollomon parameter in an exponential equation containing relative green density compensated material constants and the deformation activation energy. The peak flow stresses calculated from the proposed formula were in good agreement with the experimental results, which confirms the applicability of the employed method for the prediction of the hot deformation flow stress of porous materials with different relative green densities.
机译:在本研究中,通过在Gleeble 3800机器上进行热压缩测试,研究了7075铝合金粉末压块的热变形行为。主要目的是评估相对生坯密度对热变形行为的影响,并使用本构方程对粉末压坯的热变形流应力进行建模和预测。为此,通过单轴冷压市售预混粉末制备的相对生坯密度为83%至95%的粉末压块在350°C至450°C的温度和真实应变率下热压0.01 s -1至10 s -1的范围。粉末压块的真实应力-真实应变曲线在临界应变处显示峰值应力,此后流动应力几乎保持恒定。当变形温度升高或应变速率和生坯密度降低时,观察到峰值应力水平降低。 Zene-Hollomon参数在包含相对生坯密度补偿材料常数和形变活化能的指数方程中,描述了粉体的形变温度,应变率和峰值流动应力之间的关系。由所提出的公式计算出的峰值流应力与实验结果吻合得很好,这证实了所采用的方法可用于预测具有不同相对生坯密度的多孔材料的热变形流应力。

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