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Comparative study of the prediction of microstructure and mechanical properties for a hot-stamped B-pillar reinforcing part

机译:热压B柱增强部件的组织和力学性能预测的比较研究

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摘要

Automobile manufacturers have been increasingly adopting hot-stamped parts for use in newly designed vehicles to improve crash worthiness and fuel efficiency. However, the hot-stamped parts require extreme mechanical properties with ultimate tensile strengths as high as 1500 MPa (~450 Vickers hardness) while still maintaining adequate formability during the stamping operation. The ultra high strength of hot-stamped components is attributed to the martensitic phase transformation that occurs after the part has been formed at temperatures corresponding to the austenite phase field where formability is enhanced. In the present study, a computer-aided design method incorporating Kirkaldy and Venugopalan type phase transformation models has been implemented following a thermo-mechanical coupled finite element analysis to predict the mechanical properties of hot-stamped parts made with a boron-modified steel. Three empirical models which are typically used for hot stamping analysis are employed and the prediction capability of the models is compared using continuous cooling dilatometry and forming experiments of a modified B-pillar part.
机译:汽车制造商越来越多地将热冲压零件用于新设计的车辆中,以提高耐撞性和燃油效率。但是,热冲压零件需要极高的机械性能,其最高抗拉强度高达1500 MPa(约450维氏硬度),同时在冲压过程中仍保持足够的可成型性。热冲压组件的超高强度归因于马氏体相变,该相变是在零件已在与可成形性得到增强的奥氏体相场相对应的温度下形成之后发生的。在本研究中,在热机械耦合有限元分析之后,采用了结合了Kirkaldy和Venugopalan型相变模型的计算机辅助设计方法,以预测由硼改性钢制成的热冲压零件的机械性能。使用三个通常用于热冲压分析的经验模型,并使用连续冷却膨胀法和改进的B柱零件的成形实验比较模型的预测能力。

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