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Experimental investigation and hierarchical modeling of FRP materials for automobile application.

机译:汽车用玻璃钢材料的实验研究和层次建模。

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摘要

High performance FRP composites have been widely used in aerospace industry due to their outstanding performance and high strength-to-weight ratio. Recently, there is an increasing interest in these materials for their potential applications in other transportation, such as automotive, industry. However, the behaviors of the materials are not fully understood, and modeling of the materials is difficult due to the complicated mesostructure. In this dissertation, combined experimental and numerical investigation is presented to capture and predict their special behaviors. Automatic modeling tools are established to help to predict and optimize the performances of FRP materials.; In the part of experimental investigation, comprehensive tests have been conducted for the textile composites and structures. Due to existence of microstructures, the behaviors of textile composites are mechanism-dominant, especially after damage occurs. Special attentions are devoted to identify these mechanisms for braided composite material and structures through large number of tube crash tests.; Woven and braided composites are two of the most widely used textile composites. The microscale reinforcements of textile composites contribute to the outstanding performance of textile composites and provide tailorability for the material properties, but at the same time, they become obstacles for numerical analysis. In this research, a novel model for fiber yarns is presented based on the understanding of special behaviors of fiber bundles. An iterative predictor-multicorrector algorithm is provided to predict the mechanical equilibrium between contacting yarns. A meshing scheme is developed, and homogenization method is utilized to make multi-scale analysis. As a result of these efforts, a system of automatic modeling methods is established for woven composites. Similarly, another system of automatic modeling tools for braided composites is developed. These methods will be meaningful to aid in the design of textile composites.; Homogenization method is the basis of the hierarchical model in this research. The theory is comprehended from the view point of general global-local analytical methodology. This general understanding will enable us to extend the theory to wider range of problems. An initial attempt is introduced to develop global-local model for composite shell structures.; Another advantage of FRP textile composites is the improved damage performance. A damage modeling method is derived based on the general framework of nonlinear homogenization method.; In addition, numerical results are presented for each part to demonstrate the performance of proposed models and algorithms.
机译:高性能FRP复合材料由于其出色的性能和高的强度重量比而被广泛用于航空航天工业。近年来,对于这些材料在其他运输业(例如汽车,工业)中的潜在应用越来越感兴趣。但是,材料的行为尚不完全清楚,并且由于复杂的介观结构,材料的建模非常困难。本文通过实验和数值研究相结合的方法来捕获和预测它们的特殊行为。建立了自动建模工具,以帮助预测和优化FRP材料的性能。在实验研究的一部分中,已经对纺织品复合材料和结构进行了综合测试。由于存在微观结构,纺织品复合材料的行为以机理为主导,尤其是在发生损坏之后。通过大量的管子碰撞试验,特别注意确定这些编织复合材料和结构的机制。机织和编织复合材料是最广泛使用的两种纺织复合材料。纺织品复合材料的微型增强材料有助于纺织品复合材料的出色性能,并为材料性能提供可定制性,但同时,它们也成为数值分析的障碍。在这项研究中,基于对纤维束特殊行为的理解,提出了一种新型的纤维纱线模型。提供了一种迭代的预测器-多重校正器算法来预测接触纱线之间的机械平衡。开发了网格划分方案,并利用均质化方法进行多尺度分析。由于这些努力,建立了用于机织复合材料的自动建模方法系统。同样,开发了另一种用于编织复合材料的自动建模工具系统。这些方法将有助于设计纺织品复合材料。均质化方法是本研究分层模型的基础。从一般的全局局部分析方法学的角度理解该理论。这种一般理解将使我们能够将理论扩展到更广泛的问题。进行了初步尝试,以开发复合材料壳体结构的全局局部模型。 FRP纺织复合材料的另一个优点是改进的损伤性能。基于非线性均质化方法的一般框架,提出了一种损伤建模方法。此外,每个部分的数值结果都可以证明所提出的模型和算法的性能。

著录项

  • 作者

    Wang, Hui.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 172 p.
  • 总页数 172
  • 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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