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首页> 外文期刊>Cement & concrete composites >Experimental and numerical investigation on bond between steel rebar and high-strength Strain-Hardening Cementitious Composite (SHCC) under direct tension
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Experimental and numerical investigation on bond between steel rebar and high-strength Strain-Hardening Cementitious Composite (SHCC) under direct tension

机译:直接张力下钢钢筋和高强度应变硬化水泥复合材料(SHCC)粘合的实验和数值研究

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Sufficient bonding between Strain-Hardening Cementitious Composites (SHCC) and steel rebars is required to guarantee the stress transfer in structural applications. Although the bond between medium-strength SHCC and rebars has been extensively studied, the present understanding of this property for high-strength SHCC is very limited. Moreover, the previous pullout or bending test methods have some limitations. This study investigates the bond between deformed steel rebars and high-strength SHCC with a new direct tension approach, which is able to determine the fundamental interfacial stress versus displacement relation under pure tension. The effects of concrete block material and cover thickness, rebar diameter and embedment length, as well as confinement condition on the bond behavior were experimentally evaluated. The test results showed that high-strength SHCC can bond much better with deformed steel rebars than ordinary concrete and high-strength SHCC matrix (without fibers) due to the well-controlled splitting cracks, and that the geometry has certain influences on the bond strength. A simple but reasonably accurate finite element model for engineering applications was also proposed to analyze the bond behavior in structural components. In this model, all the non-linear behaviors were integrated into rebar/SHCC interfacial elements, so that the complicated steel surface geometry and/or the local splitting of concrete do not need to be explicitly modelled. Through a coupled experimental-numerical approach, the bond stress-displacement relationship was extracted from a small number of test results. The derived relationship was then employed for the prediction of additional test results, with good agreement achieved. With its general applicability demonstrated, the proposed numerical approach can facilitate the design of reinforced SHCC elements and structures.
机译:需要在应变硬化水泥复合材料(SHCC)和钢筋之间的充分粘合来保证结构应用中的应力转移。虽然中等强度SHCC与钢筋之间的债券进行了广泛研究,但对高强度SHCC的这种性质的了解非常有限。此外,先前的拉出或弯曲试验方法具有一些限制。本研究调查了具有新直接张力方法的变形钢钢筋和高强度SHC的纽带,能够在纯张力下确定基本界面压力与位移关系。实验评估混凝土块材料和覆盖厚度,钢筋直径和嵌入长度以及对键合行为上的限制条件的影响。测试结果表明,由于良好控制的分裂裂缝,高强度SHCC比普通混凝土和高强度SHCC基质(无纤维)更好地粘合更好的钢筋,并且由于受良好控制的分裂裂缝,几何形状对粘合强度有一定的影响。还提出了一种简单但合理准确的工程应用有限元模型,用于分析结构部件中的债券行为。在该模型中,所有非线性行为都集成到钢筋/ SHCC界面元件中,使得复杂的钢表面几何形状和/或混凝土的局部分裂不需要明确建模。通过耦合的实验 - 数值方法,从少量测试结果中提取粘合应力 - 位移关系。然后使用衍生的关系来预测额外的测试结果,达成良好的协议。凭借其一般适用性,所提出的数值方法可以促进增强SHCC元件和结构的设计。

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