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首页> 外文期刊>SAE International Journal of Materials and Manufacturing >Impact Testing of a Hot-Formed B-Pillar with Tailored Properties - Experiments and Simulation
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Impact Testing of a Hot-Formed B-Pillar with Tailored Properties - Experiments and Simulation

机译:具有定制特性的热成型B柱的冲击测试-实验和仿真

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This paper presents the numerical validation of the impact response of a hot formed B-pillar component with tailored properties. A laboratory-scale B-pillar tool is considered with integral heating and cooling sections in an effort to locally control the cooling rate of an austenitized blank, thereby producing a part with tailored microstructures to potentially improve the impact response of these components. An instrumented falling-weight drop tower was used to impact the lab-scale B-pillars in a modified 3-point bend configuration to assess the difference between a component in the fully hardened (martensitic) state and a component with a tailored region (consisting of bainite and ferrite). Numerical models were developed using LS-DYNA to simulate the forming and thermal history of the part to estimate the final thickness and strain distributions as well as the predicted microstructures. A strain-rate-sensitive constitutive model is used to model the as-quenched behavior of the hot-formed components with tailored microstructures. With an impact mass of 300 kg and total energy of 1.7 kJ, the measured maximum impactor displacement of the tailored components was approximately 9% (7.6 mm) greater than the fully hardened components. The measured peak impact load of the tailored components was approximately 24% (9.3 kN) lower than the fully hardened components. The numerical impact models are able to capture the force-displacement and deformation trends observed in the experiments.
机译:本文介绍了具有定制特性的热成型B柱部件冲击响应的数值验证。考虑使用实验室规模的B柱工具,该工具具有整体的加热和冷却部分,以局部控制奥氏体坯料的冷却速率,从而生产出具有定制微结构的零件,以潜在地改善这些组件的冲击响应。使用仪器化的落锤式降落塔以改良的三点弯曲构型冲击实验室规模的B柱,以评估处于完全硬化(马氏体)状态的部件与具有定制区域的部件之间的差异(包括贝氏体和铁素体。使用LS-DYNA开发了数值模型,以模拟零件的成形和热历史,以估计最终厚度和应变分布以及预测的微结构。应变率敏感的本构模型用于模拟具有定制微结构的热成型部件的淬火行为。在300 kg的冲击质量和1.7 kJ的总能量下,量身定制的组件的最大冲击器位移比完全硬化的组件大约9%(7.6 mm)。量身定制的组件的峰值冲击载荷比完全硬化的组件低约24%(9.3 kN)。数值冲击模型能够捕获在实验中观察到的力-位移和变形趋势。

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