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Micromechanics-based strength and lifetime prediction of polymer composites.

机译:基于微力学的聚合物复合材料强度和寿命预测。

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摘要

With the increasing use of composite materials for diverse applications ranging from civil infrastructure to offshore oil exploration, the durability of these materials is an important issue. Practical and accurate models for lifetime will enable engineers to push the boundaries of design and make the most efficient use of composite materials, while at the same time maintaining the utmost standards of safety. The work described in this dissertation is an effort to predict the strength and rupture lifetime of a unidirectional carbon fiber/polymer matrix composite using micromechanical techniques. Sources of material variability are incorporated into these models to predict probabilistic distributions for strength and lifetime. This approach is best suited to calculate material reliability for a desired lifetime under a given set of external conditions.; A systematic procedure, with experimental verification at each important step, is followed to develop the predictive models in this dissertation. The work begins with an experimental and theoretical understanding of micromechanical stress redistribution due to fiber fractures in unidirectional composite materials. In-situ measurements of fiber stress redistribution are made in macromodel composites where the fibers are large enough that strain gauges can be mounted directly onto the fibers. The measurements are used to justify and develop a new form of load sharing where the load of the broken fiber is redistributed only onto the nearest adjacent neighbors. The experimentally verified quasi-static load sharing is incorporated into a Monte Carlo simulation for tensile strength modeling. Very good agreement is shown between the predicted and experimental strength distribution of a unidirectional composite.; For the stress-rupture models a time and temperature dependent load-sharing analysis is developed to compute stresses due to an arbitrary sequence of fiber fractures. The load sharing is incorporated into a simulation for stress rupture lifetime. The model can be used to help understand and predict the role of temperature in accelerated measurement of stress-rupture lifetimes. It is suggested that damage in the gripped section of purely unidirectional specimens often leads to inaccurate measurements of rupture lifetime. Hence, rupture lifetimes are measured for [90/03]s carbon fiber/polymer matrix specimens where surface 90° plies protect the 0° plies from damage. Encouraging comparisons are made between the experimental and predicted lifetimes of the [90/03]s laminate. Finally, it is shown that the strength-life equal rank assumption is erroneous because of fundamental differences between quasi-static and stress-rupture failure behaviors in unidirectional polymer composites.
机译:随着复合材料在从民用基础设施到海上石油勘探的各种应用中的使用日益广泛,这些材料的耐用性成为一个重要问题。实用,准确的寿命模型可以使工程师突破设计的界限,最有效地使用复合材料,同时又保持最高的安全标准。本文的工作是利用微机械技术来预测单向碳纤维/聚合物基复合材料的强度和断裂寿命。材料变异性的来源被合并到这些模型中,以预测强度和寿命的概率分布。这种方法最适合在给定的一组外部条件下计算所需寿命的材料可靠性。本文采用了系统的程序,并在每个重要步骤进行了实验验证,从而建立了预测模型。这项工作从对单向复合材料中的纤维断裂引起的微机械应力重新分布的实验和理论理解开始。纤维应力再分布的现场测量是在宏观模型复合材料中进行的,其中纤维足够大,可以将应变仪直接安装到纤维上。这些测量值用于证明并开发一种新的负载分担形式,其中,折断的光纤的负载仅重新分配到最近的相邻邻居上。经过实验验证的准静态负载分配已纳入到蒙特卡洛模拟中,用于抗拉强度建模。在单向复合材料的预测强度和实验强度分布之间显示出非常好的一致性。对于应力断裂模型,开发了时间和温度相关的负载分担分析,以计算由于任意顺序的纤维断裂引起的应力。负载分担被合并到应力断裂寿命的仿真中。该模型可用于帮助理解和预测温度在加速应力断裂寿命测量中的作用。建议在纯单向试样的夹持部分中损坏通常会导致断裂寿命的测量不准确。因此,测量了[90/0 3 ] s 碳纤维/聚合物基体样品的断裂寿命,这些样品的表面90°层可保护0°层免受损坏。在[90/0 3 ] s 层压板的实验寿命和预测寿命之间进行了令人鼓舞的比较。最后,由于单向聚合物复合材料的准静态和应力断裂破坏行为之间存在根本差异,因此表明强度-寿命相等等级假设是错误的。

著录项

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Materials Science.; Applied Mechanics.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;应用力学;
  • 关键词

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