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Modelling the damping response of biomimetic foams based on pomelo fruit

机译:基于柚果的仿生泡沫的阻尼响应建模

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摘要

Some sorts of fruits, like pomelo (Citrus maxima or Citrus grandis), also spelled pummelo, are of special interest for researchers and engineers during the development of impact resistant structures. It is assumed that the interaction of structural features on different length-scales of such fruits enables the dissipation of large amounts of energy during their impact against a hard surface. Accordingly, the aim of this paper is to perform an analysis by using a numerical model at different hierarchical levels by means of Finite Element Methods (FEM) in order to identify different structural features that contribute to the damping performance of the pomelo fruit. The considered numerical model was created on the basis of homogeneous aluminum (AlSi7Mg0.3) foam structure, inspired by the pomelo fruit shell structure. In the present approach, the Si-or Fe-rich intermetallic particles on the struts of AlSi7Mg0.3 foam are considered additionally, this enabled more detailed investigations on the structural behavior of the foam during different loading conditions. Comparison of the results from simulation and experimental compression tests showed promising results with respect to the deformation behavior, which are offering support to the design of biomimetic metallic foams. Understanding the principles of combining the structure and material inspired by biological systems enables constructing new lightweight bio-inspired materials of high impact and puncture resistance with a combination of high-energy dissipation, high damping properties and a significant recovery from large deformations.
机译:像柚(柑橘Maxima或Citrus Grandis)这样的一些水果,也拼写了Pummelo,对研究人员和工程师在抗冲击结构的发展过程中对研究人员和工程师进行了特别兴趣。假设结构特征对这种果实的不同长度尺度的相互作用使得能够在它们的冲击过程中耗尽大量的能量。因此,本文的目的是通过通过有限元方法(FEM)使用不同层次水平的数值模型来执行分析,以识别有助于POMELO果实的阻尼性能的不同结构特征。考虑的数值模型是在均匀的铝(Alsi7mg0.3)泡沫结构的基础上创建的,受到柚果壳结构的启发。在本方法中,另外考虑在Alsi7MG0.3泡沫中的富含Si-或Fe的金属间粒子,这使得这种能够在不同的负载条件下对泡沫的结构行为进行更详细的研究。仿真和实验压缩试验结果的比较显示了关于变形行为的有希望的结果,这些行为是为仿生金属泡沫的设计提供支持。了解组合由生物系统启发的结构和材料的原理使得能够用高能耗散,高阻尼性能和大变形的显着恢复来构建高冲击和穿刺抗性的新的轻质生物启发材料。

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