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首页> 外文期刊>Journal of advanced concrete technology >Influence of Fatigue Loading in Shear Failures of Reinforced Concrete Members without Transverse Reinforcement
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Influence of Fatigue Loading in Shear Failures of Reinforced Concrete Members without Transverse Reinforcement

机译:疲劳载荷对无横向钢筋的钢筋混凝土构件剪切破坏的影响

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Shear fatigue of reinforced concrete members without transverse reinforcement has been observed to be potentially governing for the strength of some structural members subjected to large live loads of repetitive nature (as traffic, wind or wave actions). Although extensive experimental programmes have been performed in the past and a rational ap-proach to the problem can be performed on the basis of Fracture Mechanics, most design codes still ground shear fa-tigue design on empirical equations fitted on the basis of existing data. These empirical formulas show inconsistency amongst them and some neglect potentially relevant parameters as the ratio of maximum and minimum fatigue load levels. In this paper, a consistent design approach is presented, by using the principles of Fracture Mechanics applied to quasi-brittle materials in combination with the Critical Shear Crack Theory. This approach leads to a simple, yet sound and rational, design equation incorporating the different influences of fatigue actions (minimum and maximum load levels) and shear strength (size and strain effects, material and geometrical properties). The accuracy of the design expression is checked against available test data in terms of W?hler (S-N) and Goodman diagrams, showing consistent agreement to experimental evidence. In addition, the estimate of the number of cycles until failure is shown to be significantly more accurate and with lower scatter than current empirical shear fatigue formulations of Eurocode 2 or fib -Model Code 2010.
机译:已经观察到,没有横向加固的钢筋混凝土构件的剪切疲劳可能会影响某些承受重复性大活荷载(如交通,风或波浪作用)的结构构件的强度。尽管过去已经进行了广泛的实验程序,并且可以在断裂力学的基础上对该问题进行合理的解决,但大多数设计规范仍基于根据现有数据拟合的经验方程式来进行剪切疲劳设计。这些经验公式显示出它们之间的不一致,并且有些忽略了潜在的相关参数,即最大和最小疲劳载荷水平之比。本文结合准脆性裂纹理论,结合准脆性材料的断裂力学原理,提出了一种一致的设计方法。这种方法导致了一个简单而合理的合理设计方程,其中包括疲劳作用(最小和最大载荷水平)和剪切强度(尺寸和应变效应,材料和几何特性)的不同影响。根据沃勒(S-N)和古德曼(Goodman)图,对照可用的测试数据检查设计表达式的准确性,表明与实验证据一致。另外,与目前欧洲规范2或fib -Model Code 2010的经验剪切疲劳公式相比,直到失效为止的循环次数估计值明显更准确,散度更低。

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