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Mechanical behavior of triaxial woven fabric (TWF) composites.

机译:三轴机织织物(TWF)复合材料的机械性能。

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摘要

This study is to explore the mechanical behavior of TWF composites. It covers following five aspects: (1) Two finite element models (Superelement 1 and Superelement 2) were developed for prediction of mechanical behavior of TWF composites. Superelement 1 is a 15-node superelement constructed of six identical 8-node 3D isoparametric elements and three identical 4-node 2D isoparametric laminate elements. Superelement 2 is similar to the first element except that this element takes into account the geometric and material properties of the twisted yarns. The assembly is done by the pseudo element technique suggested herein and the static condensation procedure. Superelement 1 can be used for the vibration analysis with some economy of computer space and time. Superelement 2 can be used for detailed stress analysis and for strength prediction. Although these two elements are developed for the TWF composites, they can be applicable for analytical models for other materials and structures made of other types of textile composites. (2) A series of experiments were done to obtain the tensile elastic constants of the TWF composites done by another person. Finite element models (Superelement 1 and Superelement 2) developed for the TWF composites were used to provide results for comparison with experiments. The effects of sizes and aspect ratios of TWF panels on their Young's modulus and Poisson's ratio are studied. (3) Thermal deformation behavior of TWF composites is modeled using Superelement 2. Thermal deformation behavior and Thermal Expansion Coefficients (TECs) of the TWF composites are evaluated. Effects of the aspect ratios and size of the panels on the TECs are studied. (4) The mechanical behavior of a sector of the reflector subjected to uniform pressure is studied by modeling several different-scale sectors using Super-finite elements. (5) Progressive failure of TWF composite panels subjected to uni-axial extension is studied numerically and experimentally. TWF panel is discretized respectively using linear and nonlinear Super-Finite-Elements proposed here. Tensor polynomial progressive failure procedure is employed with maximum stress, Hoffman and Tsai-Wu criteria. Two displacement-loading cases were considered. The first and ultimate failure loads, maximum extension displacement, locations and modes of failure are estimated and compared well with experimental data.
机译:这项研究旨在探索TWF复合材料的力学性能。它涵盖以下五个方面:(1)建立了两个有限元模型(超元素1和超元素2)来预测TWF复合材料的力学性能。超级元素1是一个15节点的超级元素,由六个相同的8节点3D等参元素和三个相同的4节点2D等参叠层元素构成。超级元素2与第一个元素相似,不同之处在于该元素考虑了加捻纱的几何和材料特性。通过本文建议的伪元件技术和静态冷凝程序完成组装。超级元素1可以用于振动分析,并且节省了计算机空间和时间。超级元素2可用于详细的应力分析和强度预测。尽管这两个元素是为TWF复合材料开发的,但它们可用于由其他类型的纺织品复合材料制成的其他材料和结构的分析模型。 (2)进行了一系列实验以获得由他人完成的TWF复合材料的拉伸弹性常数。为TWF复合材料开发的有限元模型(超元素1和超元素2)用于提供与实验比较的结果。研究了TWF板的尺寸和长宽比对其杨氏模量和泊松比的影响。 (3)使用Superelement 2对TWF复合材料的热变形行为进行建模。对TWF复合材料的热变形行为和热膨胀系数(TEC)进行了评估。研究了面板的纵横比和尺寸对TEC的影响。 (4)通过使用超有限元对几个不同比例的扇形进行建模,研究了均匀压力下反射镜扇形的机械性能。 (5)数值模拟和实验研究了TWF复合板在单轴拉伸下的渐进破坏。使用此处提出的线性和非线性超有限元分别离散化TWF面板。使用具有最大应力,Hoffman和Tsai-Wu准则的张量多项式渐进破坏程序。考虑了两个位移荷载情况。估算出第一和最终破坏载荷,最大延伸位移,破坏的位置和模式,并与实验数据进行比较。

著录项

  • 作者

    Zhao, Qi.;

  • 作者单位

    Concordia University (Canada).;

  • 授予单位 Concordia University (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 209 p.
  • 总页数 209
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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