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Design optimization of continuously and discretely graded foam materials for efficient energy absorption

机译:连续和离散梯度泡沫材料的设计优化,可有效吸收能量

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Design optimization is proposed for graded foams by investigating the effect of density gradation on the load bearing and energy absorption characteristics. Stress-strain curves obtained experimentally for polyurethane foams with five different nominal densities are first used to generate a data set containing the deformation response of foams over a wide range of densities. Using this data set as the input, an analytical approach is employed to study the local and global constitutive response and energy absorption of continuously graded and discretely layered foams. Results obtained for the discretely layered structures are experimentally verified by conducting uniaxial compression on layered foam structures fabricated in-house. Results indicate that for layered structures, the convex gradation functions yield in an improved energy absorption and load-bearing performance, as well as lower overall structural weight, compared with monolithic foams. The analysis has been extended to study continuously graded foams in order to determine the optimal gradation functions which promote improved strength as well as superior energy absorption, compared with the single phase foam of the same structural weight. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过研究密度梯度对承重和能量吸收特性的影响,提出了对梯度泡沫的设计优化。首先使用通过实验获得的具有五种不同标称密度的聚氨酯泡沫的应力-应变曲线来生成一个数据集,该数据集包含各种密度下泡沫的变形响应。使用该数据集作为输入,采用一种分析方法来研究连续分级和离散层状泡沫的局部和整体本构响应以及能量吸收。通过对内部制造的分层泡沫结构进行单轴压缩,实验验证了离散分层结构的结果。结果表明,与整体泡沫相比,对于分层结构,凸起的渐变函数可改善能量吸收和承载性能,并降低整体结构重量。与相同结构重量的单相泡沫相比,该分析已扩展到研究连续分级的泡沫,以确定最佳的分级功能,从而促进强度的提高以及出色的能量吸收。 (C)2016 Elsevier Ltd.保留所有权利。

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