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Analysis of knitted fabric reinforced flexible composites and applications in thermoforming.

机译:针织物增强的柔性复合材料的分析及其在热成型中的应用。

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摘要

In this study, large deformation behavior of knitted fabric reinforced composites is investigated. In order to fully utilize the unique stretchability of knitted fabric reinforcements, elastomeric materials are used as the matrix material, resulting in "flexible composites" capable of reaching several hundred percent stretch before failing. These non-traditional composites are ideal candidates for many engineering applications where large deformation is desired, including energy/impact absorption and novel forming processes.;A multi-level nonlinear finite element (FE) procedure is developed to analyze the deformation behavior of plain weft-knitted fabrics and the composites derived from these materials. The hierarchy of the model is composed of a 3D unit cell analysis (micro/meso-scale) and a 2D global analysis (macro scale). Using results from different numerical experiments performed in the micro/meso scale, a mechanical behavior database of knit fabric geometries is constructed, both for the uniaxial and biaxial stretch cases. Through an optimization procedure, these results are used to determine the mechanical properties of nonlinear truss elements needed for modeling in the macro scale. A hexagonal honeycomb structure, which closely resembles the knit fabric architecture, is formed using these nonlinear trusses. This truss structure is then used to efficiently model a large number of loops generally found in a fabric. Results from uniaxial experimental measurements are presented for knitted fabrics to validate the FE model. Appropriate hyperelastic material models are determined for the elastomeric matrix, using a curve fit to experimental data. Examples of raw fabric and composite deformation simulations in the global scale are presented in this study.;Two types of composites are studied experimentally and numerically: (1) knitted fabric embedded in an elastomeric medium, and (2) the sandwich type composites with elastomeric skins and fabric core. The strain energy dissipation is found to be superior in the latter case, since yarns are not restricted by the elastomer. In addition, yarns used in this type of composite move to effectively align along the load direction, yielding a better utilization of the fibers' high axial stiffness. Fabrication methods, including novel techniques involving twin-sheet thermoforming, for both types of composites are discussed. Tensile test results for glassfiber reinforced, TPE/polyurea based specimens are also presented.;Innovative concepts related to the thermoforming process are also investigated using the developed numerical model. It is shown that some of the most critical problems in this forming process, such as non-uniform thickness distribution in the final part and the sensitivity of part quality to minor thermal variations, can be beneficially addressed using carefully "tailored" knit fabrics. Common thermoformed part geometries, such as a 3D box corner and a long U-shaped channel, are studied in numerical simulations to illustrate the effects of knitted fabric reinforcements on the stabilization of the forming process.
机译:在这项研究中,研究了针织物增强复合材料的大变形行为。为了充分利用针织物增强材料的独特拉伸性,将弹性体材料用作基质材料,从而使“柔性复合材料”能够在断裂前达到数百%的拉伸度。这些非传统复合材料是需要大变形的许多工程应用的理想选择,包括能量/冲击吸收和新颖的成型工艺。;开发了一种多级非线性有限元(FE)程序来分析平纬的变形行为针织物以及由这些材料制成的复合材料。模型的层次结构由3D晶胞分析(微观/中尺度)和2D全局分析(宏观尺度)组成。使用在微观/介观尺度上进行的不同数值实验的结果,构建了针对单轴和双轴拉伸情况的针织物几何形状的机械行为数据库。通过优化程序,这些结果可用于确定在宏观尺度上建模所需的非线性桁架单元的机械性能。使用这些非线性桁架形成了非常类似于针织面料结构的六边形蜂窝结构。然后,该桁架结构用于有效地建模通常在织物中发现的大量环。给出了针织物单轴实验测量结果以验证有限元模型。使用适合实验数据的曲线,确定弹性体基质的适当超弹性材料模型。本研究提供了全球范围内的原始织物和复合材料变形模拟的示例。;通过实验和数值研究了两种类型的复合材料:(1)嵌入弹性体介质中的针织物,以及(2)具有弹性体的夹心型复合材料皮肤和面料的核心。在后一种情况下,发现应变能耗散性更高,因为纱线不受弹性体的限制。此外,用于此类复合材料的纱线会移动以有效地沿载荷方向对齐,从而更好地利用了纤维的高轴向刚度。讨论了两种类型的复合材料的制造方法,包括涉及双板热成型的新技术。还介绍了玻璃纤维增​​强的,基于TPE /聚脲的试样的拉伸试验结果。;还使用已开发的数值模型研究了与热成型工艺相关的创新概念。结果表明,使用精心设计的“量身定做”的针织面料可以很好地解决该成型过程中一些最关键的问题,例如最终零件的厚度分布不均匀以及零件质量对微小热变化的敏感性。在数值模拟中研究了常见的热成型零件的几何形状,例如3D箱角和长的U形通道,以说明针织物增强材料对成型过程稳定性的影响。

著录项

  • 作者

    Bekisli, Burak.;

  • 作者单位

    Lehigh University.;

  • 授予单位 Lehigh University.;
  • 学科 Engineering Automotive.;Engineering Mechanical.;Engineering Materials Science.;Textile Technology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 229 p.
  • 总页数 229
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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