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An adequate theory for the shear strength of reinforced concrete structures

机译:钢筋混凝土结构抗剪强度的充分理论

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Traditional shear design procedures for concrete structures rely on empirical equations derived from laboratory experiments and lack the type of adequate theory that forms the basis of flexural design. As shear resistance depends on so many variables and because laboratory tests do not cover the full practical range of parameters, empirical shear design equations can result in structures with inadequate shear strength. Recent failures of such structures have highlighted the need for shear design provisions solidly based on an adequate theory. This paper introduces such a theory and explains the simple design models derived from the theory, which include a strut-and-tie model for disturbed regions and a sectional model for flexural regions. These models form the basis of the shear provisions on the 2004 Canadian standard for the design of concrete structures. In the current paper, results from nine major experimental series are compared with predictions from the new shear provisions and with predictions from the shear provisions of the Eurocode and the American Concrete Institute code. It is demonstrated that the new shear design provisions are capable of predicting the shear strength of reinforced concrete members and prestressed concrete members with considerably greater reliability.
机译:混凝土结构的传统剪力设计程序依赖于实验室实验得出的经验公式,缺乏构成抗弯设计基础的适当理论类型。由于抗剪强度取决于许多变量,并且由于实验室测试并未涵盖所有实际参数范围,因此经验抗剪设计方程式可能会导致结构的抗剪强度不足。此类结构的近期故障突出表明,有必要在充分的理论基础上扎实地进行剪切设计。本文介绍了这种理论,并解释了从该理论推导出的简单设计模型,其中包括受扰区域的拉杆-拉杆模型和挠曲区域的截面模型。这些模型构成了2004年加拿大混凝土结构设计标准的抗剪规定的基础。在当前的论文中,将来自9个主要实验系列的结果与新的抗剪规定的预测以及欧洲法规和美国混凝土协会法规的抗剪规定的预测进行了比较。事实证明,新的抗剪设计规定能够以更高的可靠性预测钢筋混凝土构件和预应力混凝土构件的抗剪强度。

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