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Measuring and modeling the anisotropic, nonlinear and hysteretic behavior of woven fabrics.

机译:测量和建模机织织物的各向异性,非线性和滞后行为。

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摘要

The computational modeling of clothing has received increasing attention since the late 1980's with the desire to study and animate clothing-wearer interactions. Within a clothing modeling framework, it is necessary to model the mechanical behavior of woven fabrics. An important aspect of modeling the mechanics of woven fabrics is capturing realistic stress-strain behaviors which are invariably anisotropic, nonlinear, and hysteretic in that they feature irrecoverable deformation when loadings are removed from the fabric. The objective of this research is to develop a fabric constitutive model that captures the primary features of anisotropy, nonlinearity, and hysteresis, and that can be easily implemented in a nonlinear, large deformation shell finite element framework for general clothing-wearer interaction modeling.;To achieve the objective, biaxial responses of four different woven fabrics were experimentally measured under a battery of load-unload uniaxial stress tests performed in the fabrics' warp, weft, and bias 45° directions. Axial deformations were measured precisely using LVDTs, and transverse deformations were measured less precisely using photogrammetric methods. Such measurements yielded insight on the different fabrics' membrane properties such as nonlinear Young's moduli in the warp and weft directions, shear moduli, and Poisson's ratios. These membrane behaviors were captured in an incremental constitutive model that uses polynomial fitting of a fabric's loading warp and weft Young's moduli, and polynomial fitting of the membrane shear modulus. Measured membrane Poisson's ratios of the different fabrics were found to be asymmetrical and highly variable between fabric types. All of these effects were integrated in a nonsymmetrical incremental constitutive model that relates Piola-Kirchhoff stress to Green-Lagrangian strain.;For numerical implementation in a shell finite element framework, the woven fabric's warp and weft directions relative to an individual element's lamina coordinate system are specified in the undeformed configuration of the fabric and are denoted as the local material coordinate system. As the fabric undergoes arbitrary deformations, the local Piola-Kirchoff stress, the Green-Lagrange strain, and its increment at a point in the fabric are transformed to the material coordinate system in which the stress is updated. The updated state of Piola-Kirchoff stress in the material coordinate system is then rotated back into the local lamina coordinate system for usage in finite element force and stiffness calculations.;This new realistic material model for woven fabrics is successfully implemented and tested in a variety of computations such as simulation of quasi-static material tests, and dynamic fabric "drape" and "poke" tests.
机译:自1980年代末以来,服装的计算模型越来越受到关注,因为它希望研究服装与服装之间的互动并为其设置动画。在服装建模框架内,必须对机织织物的机械性能进行建模。机织织物力学建模的一个重要方面是捕获现实的应力应变行为,这些行为始终是各向异性的,非线性的和滞后的,因为当从织物上移开载荷时,它们具有不可恢复的变形。这项研究的目的是开发一种织物本构模型,该模型能够捕获各向异性,非线性和滞后性的主要特征,并且可以轻松地在非线性,大变形壳有限元框架中实现,以进行一般的服装-服装与服装交互作用建模。为了达到该目的,在一系列的织物经,纬,偏45°方向上进行的加载/卸载单轴应力测试下,通过实验测量了四种不同机织物的双轴响应。轴向变形使用LVDT精确测量,而横向变形使用摄影测量法测量不那么精确。这样的测量可以洞悉不同织物的膜特性,例如经向和纬向的非线性杨氏模量,剪切模量和泊松比。这些膜行为是在增量本构模型中捕获的,该模型使用织物的载荷经纱和纬纱杨氏模量的多项式拟合以及膜的剪切模量的多项式拟合。发现不同织物的测得的膜泊松比是不对称的,并且在不同织物类型之间变化很大。所有这些影响都被整合到一个非对称增量本构模型中,该模型将Piola-Kirchhoff应力与Green-Lagrangian应变相关联。为了在壳有限元框架中进行数值实现,机织织物的经纱和纬纱方向相对于单个元素的层板坐标系在织物的未变形配置中指定,并表示为局部材料坐标系。当织物经历任意变形时,局部Piola-Kirchoff应力,Green-Lagrange应变及其在织物中某个点的增量将转换为更新应力的材料坐标系。然后将材料坐标系中Piola-Kirchoff应力的更新状态旋转回局部层坐标系中,以用于有限元力和刚度计算。;这种新型的机织织物逼真的材料模型已成功实现并在各种环境中进行了测试模拟准静态材料测试,动态织物“悬垂”和“戳”测试等计算。

著录项

  • 作者

    Williams, Robert W.;

  • 作者单位

    The University of Iowa.;

  • 授予单位 The University of Iowa.;
  • 学科 Engineering Civil.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 209 p.
  • 总页数 209
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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