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A novel method for tailoring elasticity distributions of functionally graded porous materials

机译:一种剪裁功能梯度多孔材料弹性分布的新方法

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摘要

As foams having hierarchical mechanical properties, functionally graded porous materials (FGPMs) can satisfy multifold functional constraints whilst minimizing weight. In this paper, a novel method is proposed for goal driven design and fabrication of open-cell FGPMs with tailored elasticity distributions. To achieve the continuity in both structural geometry and mechanical properties, irregularly smooth porous structures, which have naturally realistic appearance, are designed by combining 3D Voronoi diagrams and skeleton-based implicit surfaces. A procedural modeling method integrating additive manufacturing (AM) is developed for avoiding the FGPM full representations which consume tremendous computational memory. For easily mapping the graded porous structures to yield tailored elasticity distributions, a mapping model from the elasticity distribution to the density field is formulated. The method is experimentally and numerically validated. Additionally, the compression tests showed the superior mechanical performance compared to straight-beam-based foams, and the stiffness and strength of the foam are found to be improved as a result of FGPMs. This research opens up a new route of tailoring the novel foams.
机译:作为具有分层机械性能的泡沫,功能梯度的多孔材料(FGPMS)可以满足多重功能约束,同时最小化重量。本文采用了一种新的方法,用于采用定制弹性分布的露天电池FGPM的目标驱动设计和制造。为了实现结构几何形状和机械性能的连续性,通过组合基于3D Voronoi图和基于骨架的隐式表面来设计具有自然现实外观的不规则平滑多孔结构。开发了一种集成添加剂制造(AM)的程序建模方法,用于避免消耗巨大计算内存的FGPM完整表示。为了容易地映射渐变的多孔结构以产生定制弹性分布,配制了来自密度场的弹性分布的映射模型。该方法是通过实验和数值验证的。另外,与基于直束的泡沫相比,压缩测试显示出优异的机械性能,并且发现泡沫的刚度和强度是由于FGPMS而改善。这项研究开辟了一系列剪裁新型泡沫的新途径。

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