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Three-Parameter Kinematic Theory for Shear-Dominated Reinforced Concrete Walls

机译:剪力支配钢筋混凝土墙的三参数运动学理论

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摘要

This paper is aimed at addressing the need for physically accurate and computationally effective models for predicting the response of shear-dominated reinforced concrete walls. The presented theory is based on a three-degree-of-freedom kinematic model for the deformation patterns in walls with aspect ratios smaller than approximately 3. In the kinematic model, the wall is divided into two parts-a rigid block and a fan of struts-by a diagonal crack. The mechanisms of shear resistance across this crack are modeled with nonlinear springs to capture the prepeak and postpeak shear behavior of the member. The base section of the wall is also modeled to account for yielding of the reinforcement and crushing of the concrete. It is shown that this approach captures well the global and local deformations measured in a test specimen with detailed instrumentation. A more comprehensive validation of the theory is performed with 34 wall tests from the literature. The obtained peak load experimental-to-predicted ratios have an average of 1.03 with a coefficient of variation of 11.6%, while these values for the drift capacity are 0.99 and 16.4%. (c) 2016 American Society of Civil Engineers.
机译:本文旨在满足对物理上准确且计算有效的模型进行预测的需求,这些模型可用于预测剪力支配的钢筋混凝土墙的响应。提出的理论基于三自由度运动学模型,用于墙体的纵横比小于约3的变形模式。在运动学模型中,墙壁分为两个部分-刚性块和扇形扇斜向裂缝支撑。使用非线性弹簧对横跨该裂纹的剪切阻力机制进行建模,以捕获构件的峰前和峰后剪切行为。墙的基础部分也被建模以考虑钢筋的屈服和混凝土的压碎。结果表明,这种方法可以很好地捕获在具有详细仪器的测试样本中测得的整体和局部变形。对该理论进行了更为全面的验证,其中包括来自文献的34项墙面测试。所获得的峰值负载实验预测比率的平均值为1.03,变异系数为11.6%,而这些漂移容量的值分别为0.99和16.4%。 (c)2016年美国土木工程师学会。

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