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An efficient unit cell based numerical model for continuum representation of fabric systems.

机译:一个有效的基于单元格的数值模型,用于织物系统的连续表示。

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摘要

Flexible personal armour systems are used everyday by police forces, military personnel, paramedics, and others in their line of duty. The introduction of high-performance polymer-based fibres and yarns has paved the way for the design of lightweight, yet strong body armours that can defeat a wide range of threats. However, despite the relatively high cost of materials used in bullet resistant vests, their design is completely based on experiments. Addition of simulation capability to the design process of bullet resistant vests should introduce significant savings in the time and cost associated with this activity and lead to more optimized armour systems.; A novel numerical approach is introduced in this thesis that is comprised of two distinct numerical models developed in parallel and verified against each other. Experimental data are used to characterize the behaviour of fabrics and to validate the predictions of the numerical models. This combination of the numerical and experimental efforts has resulted in a unique modelling technique to capture the deformational response of fabric panels. A detailed 3D model of the fabric unit cell is created to investigate the interaction of the crossing yarns under extensional in-plane displacements. This continuum-based model explicitly considers the geometry of the yarns as an assembly of solid and bar elements and upon successful calibration, predicts the response of the fabric unit cell under the applied displacements.; An efficient 2D shell crossover model is also developed that implicitly incorporates the extensional and shearing response of the crossing yarns. The governing constitutive equations for this shell element are derived considering sinusoidal compressible yarns subjected to symmetric displacements in the fabric's plane. The efficient shell elements are used to create finite element models of fabric under static and dynamic loading scenarios.; Simulations of single and multi-ply fabric targets subjected to impact are carried out and the model predictions are compared against the data from instrumented ballistic experiments. The model is found to be successful in capturing the deformational behaviour of fabric targets. Parametric analysis is performed on various geometric and mechanical properties of the fabric to investigate the sensitivity of its response to such values. Recommendations are made for setting up models of fabric to be used in industrial design process, in order to make the approach available to armour designers.
机译:警察,军事人员,医护人员和其他执行职责的人员每天都使用灵活的个人装甲系统。高性能聚合物基纤维和纱线的引入为轻巧而坚固的防弹衣的设计铺平了道路,这种防弹衣可以克服各种威胁。然而,尽管用于防弹背心的材料成本较高,但其设计完全基于实验。在防弹背心的设计过程中增加仿真功能应可显着节省与此活动相关的时间和成本,并导致更优化的装甲系统。本文介绍了一种新颖的数值方法,该方法由并行开发并相互验证的两个不同的数值模型组成。实验数据用于表征织物的行为并验证数值模型的预测。数值和实验工作的结合产生了一种独特的建模技术,可以捕获织物面板的变形响应。创建了织物单位单元格的详细3D模型,以研究交叉纱线在延伸平面内位移下的相互作用。这种基于连续体的模型明确地将纱线的几何形状视为实心和棒状元素的组合,并在成功校准后预测了织物单元在所施加位移下的响应。还开发了有效的2D壳交叉模型,该模型隐含了交叉纱线的拉伸和剪切响应。考虑到在织物平面内对称位移的正弦可压缩纱线,得出了该壳单元的控制性本构方程。有效的壳单元用于在静态和动态加载情况下创建织物的有限元模型。进行了单层和多层织物目标物受到冲击的模拟,并将模型预测与仪器化弹道实验的数据进行了比较。发现该模型可以成功捕获织物目标的变形行为。对织物的各种几何和机械性能进行参数分析,以研究其对这些值的响应的敏感性。建议建立用于工业设计过程的织物模型,以使装甲设计人员可以使用该方法。

著录项

  • 作者

    Shahkarami Noori, Ali.;

  • 作者单位

    The University of British Columbia (Canada).;

  • 授予单位 The University of British Columbia (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 270 p.
  • 总页数 270
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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