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首页> 外文期刊>International Journal of Solids and Structures >Numerical analysis of damage evolution and formability of DP600 sheet with an extended Rousselier damage model
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Numerical analysis of damage evolution and formability of DP600 sheet with an extended Rousselier damage model

机译:扩展ROUSSELIER损伤模型DP600纸张损伤演化与成形性的数值分析

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摘要

Dual phase (DP) steel sheets are increasingly being used for automotive applications due to relatively high strength and formability. In the current work, Marciniak formability tests were carried out to determine the forming limit curve (FLC) of DP600 steel sheet, and an extended version of Rousselier's ductile damage model, which accounts for void nucleation, growth and coalescence was used to simulate the tests and predict strain localization and failure for three different strain paths: uniaxial tension, plane strain and biaxial tension. In addition, a combination of flat rolling and uniaxial tension tests were used to generate the extended flow curve of the material. Damage evolution in terms of Rousselier scalar damage variable and void volume fraction was assessed for each simulation condition. The FLC as well as neck and fracture morphologies and geometries were obtained from finite element simulations of the Marciniak tests and compared to experimental results. The sensitivity and dependency of the predicted necking limits, damage distribution and geometry predicted by the Rousselier damage model to the type of hardening model, strain path, void nucleation function and void coalescence criterion are discussed. The modified Rousselier model was shown to successfully predict the FLC, damage distribution and the final damage geometry of DP600 sheets. (C) 2017 Elsevier Ltd. All rights reserved.
机译:由于相对高的强度和可成形性,双相(DP)钢板越来越多地用于汽车应用。在当前的工作中,进行Marciniak可成型性测试以确定DP600钢板的成形限曲线(FLC),以及延长版的ROUSSELIER的韧性损伤模型,用于模拟试验的空隙成核,生长和聚结。并预测三种不同应变路径的应变定位和失效:单轴张力,平面应变和双轴张力。另外,扁平轧制和单轴张力试验的组合用于产生材料的延伸流动曲线。对每个模拟条件评估ROUSSELIER标量损伤变量和空隙体积分数的损伤演变。 FLC以及颈部和骨折形态和几何形状从Marciniak测试的有限元模拟获得并与实验结果相比。讨论了Rousselier损伤模型预测到硬化模型,应变路径,空隙成核函数和空隙聚结标准的预测颈缩限度,损伤分布和几何形状的敏感性和依赖性。已显示修改的ROUSSELIER模型成功预测了FLC,损伤分布和DP600纸的最终损伤几何形状。 (c)2017 Elsevier Ltd.保留所有权利。

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