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Tailoring of fiber-reinforced cementitious composites (FRCC) for flexural strength and reliability.

机译:量身定制纤维增强水泥复合材料(FRCC),以提高抗弯强度和可靠性。

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摘要

Bending is the most common form of loading for many construction elements. The bending strength or Modulus of Rupture (MOR) and flexural ductility are therefore critical properties particularly for those elements which are not reinforced by rebars. Such elements include highway barriers, certain wall panels, thin sheet elements and small diameter pipes. The tensile and bending strengths of concrete are very low. In addition, as a brittle material, concrete also demonstrates a large variability in bending strength. A large variability in MOR leads to inefficient use of the material since the design strength has to be close to the lower bound of the material's strength distribution. The potential of fiber in improving MOR is well recognized in fiber reinforced concrete. The use of fiber to enhance material reliability is much less studied. This thesis addresses both aspects employing a combination of theoretical and experimental treatments. Research findings are reported as Part I and Part II of this thesis.; Carbon fibers are increasingly attractive for reinforcing cementitious composites. They can be manufactured to yield a wide range in modulus and strength. Carbon fibers are non-corrosive, and fire and alkali. In addition, the price of pitch based carbon fibers are dropping rapidly to make them economically viable for the building and construction industries. In Part I of the thesis, a study on the optimization of the bending strength of carbon FRCC using a fracture based flexural model that links the fiber, interface, and matrix micro-parameters to composite bending strength is presented. Carbon fiber, interface and matrix parameters were tailored to yield optimal properties such as high MOR and ductility. Four point bend tests were conducted on CFRCCs to confirm the findings. Some problems specially affecting carbon FRCCs such as fiber breakage during mixing were also studied and its effects on composite uniaxial tensile properties analyzed by developing new models.; In Part II of the thesis an investigation on the use of fibers for reduction of MOR variability of cementitious materials is reported. Specifically, the concept of lowering the sensitivity of MOR to flaw size based on fiber bridging is confirmed with experimental studies of flexural strength of mesh reinforced mortar beams. Variability of composite properties due to variability introduced by fiber itself was identified, and techniques in controlling such variability were introduced. In this connection, the influence of viscosity of the fresh mix on fiber dispersion uniformity was investigated.
机译:弯曲是许多建筑元素最常见的荷载形式。因此,弯曲强度或断裂模量(MOR)和挠性延展性是至关重要的特性,特别是对于那些没有用钢筋加固的元件而言。这些元素包括高速公路护栏,某些墙板,薄板元素和小直径管道。混凝土的拉伸强度和弯曲强度非常低。另外,作为脆性材料,混凝土的弯曲强度也表现出较大的变化性。 MOR的较大差异会导致材料使用效率低下,因为设计强度必须接近材料强度分布的下限。在纤维增强混凝土中,纤维改善MOR的潜力已得到广泛认可。很少使用纤维来增强材料的可靠性。本文采用理论和实验相结合的方法解决了这两个方面。研究成果报道于本论文的第一部分和第二部分。碳纤维对于增强水泥基复合材料越来越有吸引力。它们可以制造成产生很大范围的模量和强度。碳纤维是非腐蚀性的,不会起火和碱。另外,基于沥青的碳纤维的价格正在迅速下降,以使其在建筑和建筑行业中经济可行。在论文的第一部分中,提出了使用基于断裂的挠曲模型优化碳FRCC弯曲强度的研究,该模型将纤维,界面和基体微观参数链接到复合材料的抗弯强度。调整碳纤维,界面和基体参数以产生最佳性能,例如高MOR和延展性。在CFRCC上进行了四点弯曲测试,以确认发现。还研究了一些特别影响碳FRCC的问题,例如混合过程中的纤维断裂,并通过开发新模型分析了其对复合材料单轴拉伸性能的影响。在论文的第二部分中,对使用纤维降低水泥质材料的MOR变异性进行了研究。具体而言,通过网状增强砂浆梁抗弯强度的实验研究证实了降低基于纤维桥接的MOR对缺陷尺寸敏感性的概念。鉴定了由于纤维本身引入的可变性而引起的复合性能的可变性,并介绍了控制这种可变性的技术。关于这一点,研究了新鲜混合物的粘度对纤维分散均匀性的影响。

著录项

  • 作者

    Obla, Karthikeyan Hariya.;

  • 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 1997
  • 页码 258 p.
  • 总页数 258
  • 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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