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Deformation behavior of reinforced ECC flexural members under reversed cyclic loading conditions.

机译:在反向循环载荷条件下,增强型ECC挠性构件的变形行为。

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摘要

In this dissertation, the use of engineered cementitious composites (ECC) in reinforced members and model seismic resistant frames is investigated. The development from composite material to structural system behavior is presented, bridging the dimensional scales associated with microstructures, composite materials and composite structures.; The fundamental cause of damage in reinforced concrete (R/C) structures is the brittle deformation behavior of concrete in tension. Engineered cementitious composites (ECC) are fiber reinforced cementitious composites designed to achieve a deformation behavior analogous to that of metals, specifically strain hardening and multiple cracking behavior.; The combination of such a ductile ECC with ductile reinforcing steel in direct tension results in deformation compatibility of these R/ECC components, leading to a reduction of interfacial bond stresses and bond splitting cracks while maintaining composite integrity.; Test results show that the performance of R/ECC structural composites in reversed cyclic flexure benefits from this deformation compatibility, resulting in a decrease of peak curvature at a given flexural deformation. It is further observed that beyond localization of cracking in ECC, enhanced confinement, shear strength and buckling resistance in R/ECC members make transverse steel reinforcement redundant and lead to stable energy dissipation by yielding of longitudinal steel reinforcement. Furthermore, R/ECC members with longitudinal FRP reinforcement show reduced residual displacements after unloading.; On the structural system scale, the particular interaction of R/ECC members reinforced with steel and FRP reinforcement in a moment resisting frame is found to result in a structural system with considerable energy dissipation capacity and reduced residual displacement. This composite structural system shows a bi-linear elastic load-deformation behavior and intrinsic stiffness modification capabilities, which are expected to reduce the base shear forces on this system in case of a seismic event.; The work presented in this dissertation may serve as a basis for development and design of seismic resistant structures using reinforced ECC members and subsystems for improved structural performance in terms of seismic response, reinforcement detailing requirements, damage tolerance, and repair needs.
机译:本文研究了工程水泥基复合材料(ECC)在增强构件和模型抗震框架中的应用。提出了从复合材料到结构系统行为的发展,桥接了与微观结构,复合材料和复合结构相关的尺寸尺度。钢筋混凝土(R / C)结构损坏的根本原因是混凝土在拉伸状态下的脆性变形行为。工程水泥复合材料(ECC)是纤维增强的水泥复合材料,旨在实现类似于金属的变形行为,特别是应变硬化和多次开裂行为。这种可延展的ECC与可延展的钢筋在直接拉伸下的组合导致这些R / ECC组件的变形相容性,从而在保持复合材料完整性的同时,降低了界面粘结应力和粘结裂痕。测试结果表明,R / ECC结构复合材料在反向循环挠曲中的性能得益于这种变形相容性,从而在给定挠曲变形下导致峰值曲率降低。进一步观察到,除了ECC中裂纹的局限性之外,R / ECC构件中的封闭性,抗剪强度和抗屈曲性的增强使横向钢筋变得多余,并通过产生纵向钢筋而导致稳定的能量耗散。此外,具有纵向FRP加固的R / ECC构件在卸载后显示出减少的残余位移。在结构系统规模上,发现在抗弯框架中用钢加固的R / ECC构件与FRP加固的特殊相互作用会导致结构系统具有相当大的耗能能力并减少了残余位移。该复合结构系统显示出双线性弹性载荷-变形行为和固有刚度修改能力,在地震事件中,有望减少该系统上的基础剪力。本文的工作可作为使用增强型ECC构件和子系统开发和设计抗震结构的基础,以提高结构在地震响应,加固细节要求,破坏容限和维修需求方面的性能。

著录项

  • 作者

    Fischer, Gregor D.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Civil.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 285 p.
  • 总页数 285
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;工程材料学;
  • 关键词

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