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Numerical evaluation of lightweight ultra high strength steel sandwich for energy absorption

机译:轻量级超高强度钢三明治用于能量吸收的数值评价

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Legislation regarding greenhouse gas emissions forces automotive manufacturers to bring forth new and innovative materials and structures for weight reduction of the body-in-white. The present work evaluates a lightweight ultra high strength steel sandwich concept, with perforated cores, for energy absorption applications. Hat-profile geometries, subjected to crushing, are studied numerically to evaluate specific energy absorption for the sandwich concept and solid hat-profiles of equivalent weight. Precise discretization of the perforated core requires large computational power. In the present work, this is addressed by homogenization, replacing the perforated core with a homogeneous material with equivalent mechanical properties. Input data for the equivalent material is obtained by analyzing a representative volume element, subjected to in-plane loading and out-of-plane bending/twisting using periodic boundary conditions. The homogenized sandwich reduces the number of finite elements and thereby computational time with approximately 95%, while maintaining accuracy with respect to force–displacement response and energy absorption. It is found that specific energy absorption is increased with 8–17%, when comparing solid and sandwich hat profiles of equivalent weight, and that a weight saving of at least 6% is possible for equivalent performance.
机译:关于温室气体排放的立法迫使汽车制造商带来新的和创新的材料和结构,以减轻身体白色的重量。目前的工作评估了一种轻质超高强度钢三明治概念,采用穿孔核心,用于能量吸收应用。在数值上进行帽子型材几何形状,用于评估夹层概念和实心帽子型的特殊能量吸收等效的重量。穿孔核心的精确离散化需要大的计算能力。在本工作中,通过均匀化解决,用具有等同机械性能的均匀材料代替穿孔芯。通过分析代表体积元件来获得等效材料的输入数据,使用周期性边界条件进行面内负载和面内弯曲/扭曲。均质三明治减少了有限元数,从而减少了大约95%的计算时间,同时保持了相对于力 - 位移响应和能量吸收的精度。发现当比较当量重量的固体和夹层帽子型材时,在8-17%的情况下增加了特定的能量吸收,并且在等效性能可能为至少6%的重量节省至少6%。

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