首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Thermal deformation behavior and processing maps of 7075 aluminum alloy sheet based on isothermal uniaxial tensile tests
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Thermal deformation behavior and processing maps of 7075 aluminum alloy sheet based on isothermal uniaxial tensile tests

机译:基于等温单轴拉伸试验的7075铝合金板的热变形行为及处理贴图

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Process parameters and their effects on thermal-mechanical properties of aluminum alloys are vitally important for the successful manufacture of aluminum alloy panel components under hot forming condition. In this study, firstly, thermal-mechanical properties of 7075 aluminum alloy sheets under hot forming conditions were comprehensively investigated using a series of isothermal uniaxial tensile tests at different temperatures and strain rates on a Gleeble 3500 thermal mechanical simulator. Based on the experimental results, the temperature rise Delta T generated from plastic deformation was further calculated considering the fraction of plastic work converted into heat, beta, and the fraction of deformation heat appearing as a temperature rise, delta. Delta T increases with an increase in strain rate and a decrease in deformation temperature, with a maximum temperature rise Delta T-max reaching 33.5 K. Furthermore, taking Delta T into consideration, the relationship model between the work hardening rate, temperature and strain rate was constructed according to the Zener-Hollmon parameter. The variation of the work hardening rate with strain rate and temperature can be interpreted using this model. Finally, to determine the optimal processing parameters, the processing maps of 7075 aluminum alloy were established subsequently under the experimental conditions. The optimal processing parameters for 7075 aluminum alloy are located within the windows: (1) temperature, 573-680 K and strain rate, 0.368-8.1 s(-1); (2) temperature, 695-723 K and strain rate, 0.05-1 s(-1). According to the microstructure observations, it can be concluded that the main softening mechanism of "safe" domains is dynamic recovery (DRV) and the continuous dynamic recrystallization (DRX) can be effectively retarded due to the presence of precipitated particles. The work performed in this research, for the first time, provides quantitative evaluations of process parameters on the hot deformation of aluminum alloy sheet forming using processing maps considering corresponding microstructural evolutions, which enables to provide useful guides for process designers of sheet metal forming. (C) 2018 Elsevier B.V. All rights reserved.
机译:工艺参数及其对铝合金的热 - 机械性能的影响是对铝合金板的组件的热成型条件下成功制造极其重要的。在这项研究中,首先,热成形的条件下7075个铝合金片的热 - 机械性能进行了综合使用一系列上的GLEEBLE 3500热模拟在不同的温度和应变速率等温单轴拉伸试验,研究。基于该实验结果,从塑性变形所产生的温度上升ΔT的进一步计算考虑塑料工作的分数转换成热,β和热变形的出现作为温度上升,增量的比例。的ΔT与增加应变速率和变形温度的降低而增加,具有最大温升的ΔT-MAX达到33.5 K.此外,考虑的ΔT的考虑,工作之间的关系模型硬化速率,温度和应变速率根据齐纳Hollmon参数构建。与应变率和温度的加工硬化率的变化可以利用该模型来解释。最后,为了确定最佳的处理参数,7075铝合金的加工图中的实验条件下随后建立。对7075铝合金的最佳处理参数位于该窗内:(1)温度,573-680 K和应变率,0.368-8.1秒(-1); (2)温度,695-723 K和应变率,0.05-1秒(-1)。根据显微组织的观察,可以得出结论,“安全”的结构域的主要软化机制是动态的恢复(DRV)和连续动态再结晶(DRX)可以由于析出粒子的存在被有效地延迟。在本研究进行的,在第一次的工作,提供铝合金片材使用考虑相应的显微结构演变,这使得能够对金属片成形的过程设计者提供有用的指导处理地图形成的热变形的过程参数的定量评价。 (c)2018年elestvier b.v.保留所有权利。

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