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首页> 外文期刊>Physica status solidi, B. Basic research >Computational Simulation and Optimization of Functionally Graded Auxetic Structures Made From Inverted Tetrapods
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Computational Simulation and Optimization of Functionally Graded Auxetic Structures Made From Inverted Tetrapods

机译:用倒四脚叠制造的功能梯度辅助结构的计算模拟与优化

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摘要

>Auxetic cellular materials show great potential for improved properties in case of impact loading. Due to this potential, auxetic structures made from inverted tetrapods are extensively analyzed experimentally and computationally. The built samples are compressed in two orthogonal directions to determine their base mechanical properties and deformation mechanisms. The lattice computational model is developed and validated using the experimental results. A new shape optimization procedure to develop new auxetic structures with functionally graded geometry is proposed and tested in a case study. With introduction of the functionally graded geometry the response of the auxetic structure can be tailored to a particular loading condition, which is especially important in impact or ballistic performance of modern composite materials.
机译:

辅助细胞材料在冲击载荷时显示出改善性能的巨大潜力。由于这种潜力,通过实验和计算,广泛地分析了由倒置的四面孔制成的辅助结构。内置的样品在两个正交方向上被压缩以确定它们的基础机械性能和变形机制。使用实验结果开发和验证格子计算模型。在案例研究中提出并测试了一种新的形状优化程序,以开发具有功能分级几何形状的新型辅助结构。通过引入功能梯度几何形状,可以根据现代复合材料的冲击或弹道性能造成扶手结构的响应。

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