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Dynamic behavior of cellular materials and cellular structures: Experiments and modeling.

机译:细胞材料和细胞结构的动态行为:实验和建模。

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摘要

Cellular solids, including cellular materials and cellular structures (CMS), have attracted people's great interests because of their low densities and novel physical, mechanical, thermal, electrical and acoustic properties. They offer potential for lightweight structures, energy absorption, thermal management, etc. Therefore, the studies of cellular solids have become one of the hottest research fields nowadays.; From energy absorption point of view, any plastically deformed structures can be divided into two types (called type I and type II), and the basic cells of the CMS may take the configurations of these two types of structures. Accordingly, separated discussions are presented in this thesis. First, a modified 1-D model is proposed and numerically solved for a typical type II structure. Good agreement is achieved with the previous experimental data, hence is used to simulate the dynamic behavior of a type II chain. Resulted from different load speeds, interesting collapse modes are observed, and the parameters which govern the cell's post-collapse behavior are identified through a comprehensive non-dimensional analysis on general cellular chains. Secondly, the MHS specimens are chosen as an example of type I foam materials because of their good uniformity of the cell geometry. An extensive experimental study was carried out, where more attention was paid to their responses to dynamic loadings. Great enhancement of the stress-strain curve was observed in dynamic cases, and the energy absorption capacity is found to be several times higher than that of the commercial metal foams. Based on the experimental study, finite elemental simulations and theoretical modeling are also conducted, achieving good agreements and demonstrating the validities of those models.; It is believed that the experimental, numerical and analytical results obtained in the present study will certainly deepen the understanding of the unsolved fundamental issues on the mechanical behavior of cellular solids and make substantial contributions to the theoretical advance of impact dynamics.
机译:包括细胞材料和细胞结构(CMS)在内的细胞固体由于其低密度以及新颖的物理,机械,热,电和声学特性而引起人们的极大兴趣。它们为轻质结构,能量吸收,热管理等提供了潜力。因此,对细胞固体的研究已成为当今最热门的研究领域之一。从能量吸收的角度来看,任何塑性变形的结构都可以分为两种类型(称为I型和II型),而CMS的基本单元可以采用这两种类型的结构。因此,本文提出了单独的讨论。首先,提出了一种改进的一维模型,并对典型的II型结构进行了数值求解。与先前的实验数据取得了很好的一致性,因此可用于模拟II型链的动态行为。由于不同的加载速度,观察到了有趣的崩溃模式,并且通过对一般细胞链进行全面的无量纲分析,确定了控制细胞崩溃后行为的参数。其次,由于MHS样品具有良好的泡孔几何形状均匀性,因此将其作为I型泡沫材料的示例。进行了广泛的实验研究,其中更多地关注了它们对动态载荷的反应。在动态情况下观察到应力-应变曲线大大增强,并且发现能量吸收能力比市售金属泡沫高几倍。在实验研究的基础上,还进行了有限元模拟和理论建模,达成了良好的协议并证明了这些模型的有效性。可以相信,本研究中获得的实验,数值和分析结果必将加深对多孔固体力学行为尚未解决的基本问题的理解,并为冲击动力学的理论发展做出重大贡献。

著录项

  • 作者

    Gao, Ziyang.;

  • 作者单位

    Hong Kong University of Science and Technology (People's Republic of China).;

  • 授予单位 Hong Kong University of Science and Technology (People's Republic of China).;
  • 学科 Applied Mechanics.; Engineering Mechanical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 234 p.
  • 总页数 234
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用力学;机械、仪表工业;工程材料学;
  • 关键词

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