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Micromechanics of ITZ-Aggregate Interaction in Concrete Part Ⅰ: Stress Concentration

机译:混凝土中ITZ-骨料相互作用的微力学第一部分:应力集中

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摘要

At the macroscopic scale, concrete appears as a composite made of a cement paste matrix with embedded aggregates. The latter are covered by interfacial transition zones (ITZs) of reduced stiffness and strength. Cracking in the ITZs is probably the key to the nonlinear stress-strain behavior in the prepeak regime. For a deeper understanding of this effect triggered by tensile microstress peaks, we here employ and extend the framework of continuum micromechanics, as to develop analytical solutions relating the macroscopic stresses acting on a piece of concrete, to microtractions at the aggregates' surfaces and to three-dimensional stress states within the ITZs. In the latter context, a new aggregate-to-ITZ stress concentration tensor is derived based on the separation-of-scale principle, which implies that ITZs may be modeled as two-dimensional interfaces at the concrete scale, but as three-dimensional bulk phases at the scale of a few micrometers. Microtensile peaks occur both under uniaxial macroscopic tension and compression. To describe the respective microtraction and microstress fields, it is suitable to define aggregate's "poles" and "equator" by an "axis" through the aggregate center, directed in the uniaxial macroscopic loading direction. Accordingly, tensile microtraction peaks, induced by macro-tension and macro-compression, respectively, occur at the "poles" and at the "equator", respectively. The largest tensile ITZ-microstresses occur at an offset of about π/8 from the "poles" and the "equator", respectively. These fields of microtractions and ITZ micro-stresses are prerequisites for upscaling ITZ-related strength to the macroscopic concrete level, as presented in the companion paper (Part Ⅱ).
机译:在宏观上,混凝土表现为由水泥浆基质与嵌入式骨料组成的复合材料。后者由刚度和强度降低的界面过渡区(ITZ)覆盖。 ITZ中的裂纹可能是峰前状态中非线性应力-应变行为的关键。为了更深入地了解拉伸微应力峰值触发的这种效应,我们在这里采用并扩展了连续微力学的框架,以开发将作用在混凝土上的宏观应力与骨料表面的微观牵引力以及三个方面相关的解析解。 ITZ内部的三维应力状态。在后一种情况下,基于比例分离原理推导了新的骨料-ITZ应力集中张量,这意味着ITZ可以在混凝土规模上建模为二维界面,而在三维模型中建模相在几微米的尺度上。在单轴宏观张力和压缩下均出现微拉伸峰。为了描述各自的微牵引力和微应力场,适合通过指向单轴宏观载荷方向的,穿过骨料中心的“轴”来定义骨料的“极”和“赤道”。因此,分别在“极点”和“赤道”处分别出现由宏观张力和宏观压缩引起的拉伸微牵引峰。最大的拉伸ITZ微应力分别出现在距“极”和“赤道”约π/ 8处。这些微牵引力和ITZ微应力领域是将ITZ相关强度提升到宏观混凝土水平的前提条件,如随附论文(第二部分)所述。

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  • 来源
    《Journal of the American Ceramic Society》 |2014年第2期|535-542|共8页
  • 作者单位

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Karlsplatz 13/202, Vienna A-1040, Austria;

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Karlsplatz 13/202, Vienna A-1040, Austria;

    Institute for Mechanics of Materials and Structures, Vienna University of Technology (TU Wien), Karlsplatz 13/202, Vienna A-1040, Austria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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