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高速列车用6008铝合金动态变形本构与损伤模型参数研究
引用本文:高玉龙,孙晓红.高速列车用6008铝合金动态变形本构与损伤模型参数研究[J].爆炸与冲击,2021,41(3):115-126.
作者姓名:高玉龙  孙晓红
作者单位:中车青岛四方机车车辆股份有限公司,山东 青岛 266111
摘    要:高速列车在实际服役过程中会经受复杂的应力状态和环境条件,铝合金型材以其优良的力学和加工性能被广泛应用于新型高速列车的吸能结构,其防撞性能对高速列车的安全运行至关重要。本文针对一种新型轨道车辆用材料6008-T4铝合金型材进行了多种力学性能测试,包括动静态拉压实验、准静态高低温实验、不同应力路径的断裂实验等,提出了一种计算局部断裂应变的新方法,进而标定和获取了Johnson-Cook本构和损伤模型参数。最后利用平板侵彻实验来对所获取的参数进行检验,发现模拟和实验结果吻合良好,说明本文所获取的参数和参数标定方法都是有效的。

关 键 词:车用铝合金    Johnson-Cook本构和损伤模型    力学性能    参数标定    高速列车
收稿时间:2020-04-22

On the parameters of dynamic deformation and damage models of aluminum alloy 6008-T4 used for high-speed railway vehicles
GAO Yulong,SUN Xiaohong.On the parameters of dynamic deformation and damage models of aluminum alloy 6008-T4 used for high-speed railway vehicles[J].Explosion and Shock Waves,2021,41(3):115-126.
Authors:GAO Yulong  SUN Xiaohong
Institution:CRRC Qingdao Sifang Co., Ltd., Qingdao 266111, Shandong, China
Abstract:High-speed railway vehicles are subjected to complex stress and environmental conditions in service. Aluminum alloy extrusions are widely used in energy absorption structures of high-speed trains, due to their excellent mechanical and processing properties. The crashworthiness of the aluminum alloy extrusions is critical to the safe and steady operations of the railway vehicles. In this study, a variety of mechanical tests were conducted on a novel aluminum alloy used for vehicles, i.e., aluminum alloy 6008-T4, including quasi-static and dynamic tension/compression tests, quasi-static tension tests at a wide range of temperatures, fracture tests along different stress paths, etc. The results show that the yield stress of the 6008-T4 aluminum alloy increases by about 15% while the fracture strain increases by about 25% when the strain rate varies from 0.001 s?1 to 2500 s?1. The aluminum alloy 6008-T4 exhibits significant temperature softening in strength: the yield stress decreases by about 60% when the temperature rises from 25 ℃ to 300 ℃. However, the fracture strain at 300 ℃ shows an 80% increase compared to the ambient (25 ℃) result. With the increase of stress triaxiality from 0.1 to 0.6, the fracture strain of the aluminum alloy 6008-T4 decreases by about 40%, and the decreasing trend conforms well to the theoretical prediction by the Johnson-Cook (J-C) model. Then the parameters of the J-C constitutive and damage models were calibrated according to the experimental results. In particular, the local fracture strains are critical for deriving the parameters of the damage model parameters. Therefore, the finite element simulations were combined with the force-displacement curves obtained in the tests to calculate the local fracture strains of the specimens. Compared to the direct measurements, the combined method of the experiments and simulation is more simple and accurate. The experimental curves at different strain rates and temperatures were compared with those predicted by the J-C model. The compariosn shows that they agree well at high temperatures. Finally, the impact penetration test was adopted to verify the acquired parameters. The simulation and experimental results, regarding the projectile positions and the fracture patterns of the target, are consistent, indicating that the parameters and calibration methods presented in this paper are reliable and effective.
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