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Cellular textile composites: Large deformation mechanisms and energy absorption behavior.

机译:蜂窝织物复合材料:较大的变形机制和能量吸收性能。

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摘要

For many engineering applications, the energy-absorption capacity has become one of the major concerns in the selection of materials and the design of structures. It is of particular importance for materials and structures subjected to collision or impact loads during service. In this thesis, based on an extensive literature review on the large deformation and energy-absorption capacity of composite materials, a new class of cellular textile composites with high energy-absorption capacity is developed and studied experimentally and theoretically.; Fabrication and formability of thermoset and thermoplastic textile composites, including corresponding 3D grid-domed cellular structures, have been studied. The processing parameters have been optimized in terms of the energy absorption capacity of the material. For thermoplastic textile composites, two impregnation methods (by PET/PP co-knitted and PET/PP sandwiched structures, respectively) have been implemented and compared.; The mechanical properties and the large deformation mesoscopic mechanisms of the textile composites with thermoset and thermoplastic matrix have been investigated and compared. It is shown that nylon/polyester thermoset textile composites display an ideal bilinear stress-strain relationship, whilst the PET/PP co-knitted thermoplastic textile composites display strong non-linear and anisotropic characteristics. The effects of the fabric structure, fiber content, the fiber surface treatment and the thickness of the composite panel on the mechanical properties have been investigated. By in-situ observations of large deformation mechanisms, it is identified that the nonlinear property mainly comes from the change in the configuration of the fabric architecture during elongation for the nylon/polyester textile composite samples. For the PET/PP co-knitted textile composite samples, however, the inelastic property is attributed to the damage evolution in the matrix, the relative displacement between wales and/or courses and the sliding between wales, as well as the change in the configuration of the fabric architecture during loading. The correlation between the change in fabric architecture, the matrix damage and the material properties has also been described.; The energy-absorption behavior and mechanisms of grid-domed textile composites with two cell-configurations have been studied. (Abstract shortened by UMI.)
机译:对于许多工程应用而言,能量吸收能力已经成为材料选择和结构设计中的主要问题之一。对于在使用过程中承受碰撞或冲击载荷的材料和结构特别重要。本文在广泛研究复合材料的大变形和能量吸收能力的基础上,开发了一种新型的具有高能量吸收能力的蜂窝织物复合材料,并进行了实验和理论研究。已经研究了热固性和热塑性纺织品复合材料(包括相应的3D网格球状蜂窝结构)的制造和可成型性。就材料的能量吸收能力而言,已优化了加工参数。对于热塑性织物复合材料,已经实施和比较了两种浸渍方法(分别通过PET / PP共编织和PET / PP夹心结构进行)。研究并比较了具有热固性和热塑性基体的纺织品复合材料的力学性能和大变形介观机理。结果表明,尼龙/聚酯热固性纺织品复合材料显示出理想的双线性应力-应变关系,而PET / PP共编织的热塑性纺织品复合材料显示出强的非线性和各向异性特性。研究了织物结构,纤维含量,纤维表面处理和复合板厚度对机械性能的影响。通过对大变形机制的现场观察,可以确定非线性特性主要来自于尼龙/聚酯纺织复合材料样品在拉伸过程中织物结构形态的变化。但是,对于PET / PP共编织的纺织品复合材料样品,其非弹性性质归因于基体中的损伤演变,纵行和/或横列之间的相对位移以及纵行之间的滑动以及构型的变化。加载期间的织物体系结构。还描述了织物结构变化,基体损伤和材料性能之间的关系。研究了具有两种胞格构型的网格状纺织品复合材料的能量吸收行为和机理。 (摘要由UMI缩短。)

著录项

  • 作者

    Xue, Pu.;

  • 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 Engineering Mechanical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 222 p.
  • 总页数 222
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;工程材料学;
  • 关键词

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