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    冯擎峰, 姚再起, 叶拓, 朱凌, 王震虎, 郭鹏程, 李落星. 6013-T4铝合金在不同温度和应变速率下的动态力学行为及数值模拟[J]. 机械工程材料, 2017, 41(7): 85-90,97. DOI: 10.11973/jxgccl201707017
    引用本文: 冯擎峰, 姚再起, 叶拓, 朱凌, 王震虎, 郭鹏程, 李落星. 6013-T4铝合金在不同温度和应变速率下的动态力学行为及数值模拟[J]. 机械工程材料, 2017, 41(7): 85-90,97. DOI: 10.11973/jxgccl201707017
    FENG Qingfeng, YAO Zaiqi, YE Tuo, ZHU Ling, WANG Zhenhu, GUO Pengcheng, LI Luoxing. Dynamic Mechanical Behavior and Numerical Simulation of 6013-T4 Aluminum Alloy at Different Temperatures and Strain Rates[J]. Materials and Mechanical Engineering, 2017, 41(7): 85-90,97. DOI: 10.11973/jxgccl201707017
    Citation: FENG Qingfeng, YAO Zaiqi, YE Tuo, ZHU Ling, WANG Zhenhu, GUO Pengcheng, LI Luoxing. Dynamic Mechanical Behavior and Numerical Simulation of 6013-T4 Aluminum Alloy at Different Temperatures and Strain Rates[J]. Materials and Mechanical Engineering, 2017, 41(7): 85-90,97. DOI: 10.11973/jxgccl201707017

    6013-T4铝合金在不同温度和应变速率下的动态力学行为及数值模拟

    Dynamic Mechanical Behavior and Numerical Simulation of 6013-T4 Aluminum Alloy at Different Temperatures and Strain Rates

    • 摘要: 采用分离式霍普金森压杆装置对6013-T4铝合金在不同温度(25,200,300℃)和应变速率(1 000,2 000,3 000,4 000,5 000 s-1)下进行了动态压缩试验,研究了该铝合金在冲击载荷作用下的动态力学行为,并采用试验拟合得到的Johnson-Cook本构方程,对动态冲击试验进行了数值模拟。结果表明:6013-T4铝合金具有明显的应变速率和应变硬化效应,动态流变应力随变形温度的升高而减小;室温下合金的屈服强度对应变速率不敏感,但随变形温度的升高,屈服强度的应变速率敏感性增强;基于室温准静态与不同温度和应变速率下的动态真应力-真应变曲线,确定了铝合金的Johnson-Cook本构方程;不同温度和应变速率下真应力-真应变曲线的数值模拟结果与本构方程拟合和试验结果均吻合的较好。

       

      Abstract: Dynamic compression test of 6013-T4 aluminum alloy was conducted by split Hopkinson pressure bar apparatus at different temperatures (25, 200, 300℃) and strain rates (1 000, 2 000, 3 000, 4 000, 5 000 s-1), and dynamic mechanical behavior under impact load was investigated. Numerical simulation of dynamic impact experiment was carried out by the fitted Johnson-Cook constitutive equation. The results show that 6013-T4 aluminum alloy had significant strain rate and strain hardening effect, and the dynamic flow stress decreased with increase of deformation temperature. The yield strength at room temperature was insensitivity to strain rate. As deformation temperature increased, the strain rate sensitivity of yield strength gradually increased. Based on the quasi-static at room temperature and dynamic true stress-true strain curves at different temperatures and strain rates, Johnson-Cook constitutive equation of the alloy was determined. The simulated results of true stress-true strain curves at different temperatures and strain rates were consistence with the experimental and constitutive results.

       

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