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Micromechanical tailoring of PVA-ECC for structural applications.

机译:针对结构应用的PVA-ECC的微机械剪裁。

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摘要

This dissertation details the development of a low cost polyvinyl alcohol (PVA) fiber reinforced composite to display enhanced strain capacity employing micromechanics-based tailoring of the microstructure as prescribed by the Performance Driven Design Approach (PDDA).; Central to the research is the use of the micromechanical model to guide the selection of the microstructure since it can associate the combined confluence of fiber, matrix and interfacial parameters to composite deformation. With the assistance of constraints as defined by the manufacturing of the fiber, economy and composite workability, the final selection of the microstructural parameters is completed. The micromechanics-based design approach attempts to transform the PVA fiber composite possessing quasi-brittle tensile behavior to that of a strain-hardening material.; The research can be divided into tasks conducted at the microstructural and composite levels. At the microstructural level, investigation into bond properties for the aligned PVA fiber is conducted. The influence of fiber surface treatment on the fiber/matrix interface properties is quantified through single fiber pullout tests. A result of a systematic study of increasing oiling agent content is the selection of the optimal content that satisfies the targeted bond properties as designated by the micromechanical model. To facilitate accurate modeling of realistic composite behavior with random fiber dispersion, a study of the pullout behavior of inclined PVA fibers is also conducted, utilizing a single fiber pullout model derived specifically for slip-hardening fibers.; To ascertain the achievement of the targeted composite performance, experimental studies of the uniaxial tensile behavior of the PVA fiber composites are conducted. Successful translation of the tailored microstructure to increased composite deformation is examined through quantification of the effects of fiber selection, oiling agent content and fine sand content. It will be demonstrated that with adjustment of the oiling agent content to satisfy the designated bond properties, the impact of sufficient fiber/matrix interface on realization of the targeted composite property is significant. Thus, the approach of deliberate selection of the material constituents and the resulting composite tensile performance is justified by the development of another type of Engineered Cementitious Composite (ECC), a high performance PVA-ECC.; Theoretical construction of the tensile stress-strain relation is undertaken to provide a constitutive relation necessary for structural element modeling. Fiber/matrix interface characteristics unique to the PVA fiber are incorporated, along with statistical variation of flaw size to predict unsaturated cracking behavior.
机译:本论文详细介绍了一种低成本聚乙烯醇(PVA)纤维增强复合材料的开发,该复合材料通过使用性能驱动设计方法(PDDA)规定的基于微力学的微结构剪裁来显示增强的应变能力。该研究的核心是使用微力学模型来指导微观结构的选择,因为它可以将纤维,基体和界面参数的组合汇合与复合变形相关联。借助纤维制造,经济性和复合材料可加工性所定义的约束条件,完成了微观结构参数的最终选择。基于微力学的设计方法试图将具有准脆性拉伸性能的PVA纤维复合材料转变为应变硬化材料。研究可以分为微观结构和复合材料层面的任务。在微观结构水平上,对对齐的PVA纤维的粘结性能进行了研究。纤维表面处理对纤维/基质界面性能的影响可通过单根纤维拉出试验量化。对增加上油剂含量进行系统研究的结果是,选择满足微机械模型指定目标粘结性能的最佳含量。为了促进对具有随机纤维色散的实际复合材料行为的准确建模,还对倾斜的PVA纤维的拉拔行为进行了研究,利用专门为滑动硬化纤维推导的单纤维拉拔模型。为了确定目标复合材料性能的实现,对PVA纤维复合材料的单轴拉伸行为进行了实验研究。通过量化纤维选择,上油剂含量和细砂含量的影响,检验了定制的微观结构向复合材料变形增加的成功转化。将证明,通过调节上油剂的含量以满足指定的粘结性能,足够的纤维/基质界面对实现目标复合性能的影响是显着的。因此,通过选择另一种类型的高性能水泥基复合材料(ECC),一种高性能的PVA-ECC,可以合理地选择材料成分和所得复合材料的拉伸性能。进行了拉伸应力-应变关系的理论构建,以提供结构元素建模所需的本构关系。结合了PVA纤维特有的纤维/基体界面特性,以及缺陷尺寸的统计变化,以预测不饱和裂纹行为。

著录项

  • 作者

    Wu, Cynthia.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 238 p.
  • 总页数 238
  • 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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