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Modeling of Stresses and Strains in Bonded Concrete Overlays Subject to Differential Volume Changes

机译:体积变化引起的粘结混凝土覆层中应力和应变的建模

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摘要

Most materials used in concrete overlays undergo volume changes due to thermal and moisture movements, while the dimension of substrate concrete is relatively stable. As a result, normal and shear stresses are induced. These stresses can lead to cracking in repair material and interface delamination. Then harmful substances can penetrate into concrete through these cracks and accelerate further deterioration of concrete and reinforcement. Finally the concrete overlay fails. Various analytical models have been developed to calculate stresses and strains in bonded concrete overlays subject to differential volume changes. Most of these models are based on the linear elasticity and the Bernoulli’s hypothesis of plane remaining plane. However, it have been argued that the linear elasticity and the Bernoulli’s hypothesis do not apply for the case of bonded concrete overlay subject to differential shrinkage, and the restraint of the shrinkage of repair material is localized at interface. In this paper, new an analytical model is developed based on the classical plate theory and the assumption of the linear relation between shear stress and slip at the interface. With this model, the influence of the shear stiffness of the interface, the dimension of concrete overlays, and the elastic moduli of two materials on the stresses will be discussed. The high shear stiffness increases the potential of cracking in the repair material. Both too large and too small shear stiffness have a negative effect on the performance of the interface. In the concrete overlay with a long and thin repair material, the repair material is more likely to crack. The long and thick repair material results in high normal and shear stresses at the interface. The repair material with higher elastic modulus has a better resistance to cracking. The elastic modulus has a small effect on the interface delamination.u0000u0000u0000c
机译:由于热和湿气的移动,大多数用于混凝土外墙的材料都会发生体积变化,而基材混凝土的尺寸则相对稳定。结果,引起了法向应力和剪切应力。这些应力可能导致修补材料破裂和界面分层。然后有害物质会通过这些裂缝渗透到混凝土中,并加速混凝土和钢筋的进一步劣化。最终,混凝土覆盖层失效。已开发出各种分析模型来计算受体积差异影响的粘结混凝土外墙的应力和应变。这些模型大多数基于线性弹性和伯努利关于剩余平面的假设。但是,有人认为线弹性和伯努利的假设不适用于粘结混凝土表层受到不同收缩率的情况,修复材料收缩的约束作用局限于界面。在本文中,基于经典板理论并假设界面处剪应力与滑移之间的线性关系,建立了新的分析模型。使用该模型,将讨论界面的剪切刚度,混凝土覆盖层的尺寸以及两种材料的弹性模量对应力的影响。高剪切刚度增加了修补材料中破裂的可能性。剪切刚度太大和太小都会对界面性能产生负面影响。在长而薄的修补材料覆盖的混凝土中,修补材料更容易开裂。长而厚的修补材料会在界面处产生较高的法向应力和剪切应力。具有较高弹性模量的修补材料具有较好的抗裂性。弹性模量对界面分层的影响很小。u0000u0000u0000c

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  • 来源
    《Computational Mechanics》|2007年|1-1|共1页
  • 会议地点 Beijing(CN)
  • 作者

    Wha-Jung Kim; rnle-Sung Kim;

  • 作者单位

    Jian Zhou@Microlab,Faculty of Civil Engineering and Geosciences,Delft University of Technology,the Netherlands--Guang Ye@Microlab,Faculty of Civil Engineering and Geosciences,Delft University of Technology,the Netherlands--Erik Schlangen@Microlab,Faculty of Civil Engineering and Geosciences,Delft University of Technology,the Netherlands--Klaas van Breugel@Microlab,Faculty of Civil Engineering and Geosciences,Delft University of Technology,the Netherlands--;

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  • 正文语种
  • 中图分类 应用力学;
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