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Optimized shear design equation for slender concrete beams reinforced with FRP bars and stirrups using Genetic Algorithm and reliability analysis

机译:基于遗传算法和可靠性分析的FRP筋和箍筋钢筋混凝土长梁优化剪力设计方程。

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A lack of confidence in the shear design of concrete beams reinforced with Fiber Reinforced Polymer (FRP) bars may lead to excessive reinforcement and thus increase the overall cost of construction. In order to improve the accuracy of the current guidelines, two databases of slender (shear span to depth ratio >2.5) FRP reinforced concrete (RC) beams were developed from literature. The first set of data contains slender beams of 116 tests with only FRP rebar as longitudinal reinforcements whereas the second set contains 46 test beams reinforced with FRP as both longitudinal reinforcements and stirrups. The second database was used to evaluate the confinement effect of FRP rebar as stirrups. Thereafter a Genetic Algorithm was implemented to optimize the shear equations proposed in FRP design guidelines of ACI 440.1R-06, CSA S806-02, CSA S6-09, and Reineck's tooth model. The optimized shear equations showed less scatter than the original equations as they could achieve an average V-test/V-caic close to 1.0 with a significant improvement in coefficient of variation (Coy) with the validation database compared to the original equations. It was observed that the concrete shear equation prediction could be improved if the concrete strength could be taken to a power value less than what is currently recommended in the guidelines. In the case of transverse shear equations, the inclusion of concrete strength improved the results of the optimized equations. The optimized shear equations were further calibrated by performing reliability analysis in order to use them for design purposes. The resistance factors for the shear design equations were calculated at a target reliability index, beta(r) of 3.5 in order to achieve an acceptable level of structural safety. Crown Copyright (C) 2015 Published by Elsevier Ltd. All rights reserved.
机译:对用纤维增强聚合物(FRP)增强的混凝土梁的抗剪设计缺乏信心可能会导致过度的增强,从而增加了总体施工成本。为了提高当前指南的准确性,从文献中开发了两个细长(剪切跨度与深度之比> 2.5)FRP钢筋混凝土(RC)梁的数据库。第一组数据包含只有FRP钢筋作为纵向钢筋的116个测试的细长梁,而第二组数据包含作为纵向钢筋和箍筋的FRP钢筋的46个测试梁。第二个数据库用于评估FRP钢筋作为箍筋的约束效果。此后,实施了遗传算法来优化ACI 440.1R-06,CSA S806-02,CSA S6-09和Reineck牙齿模型的FRP设计指南中提出的剪切方程。与原始方程相比,优化的剪切方程与原始方程相比散布较少,因为它们可以实现平均V-test / V-caic接近1.0,并且验证数据库的变异系数(Coy)显着提高。据观察,如果可以将混凝土强度的功率值降低到指南中当前建议的值以下,则可以改善混凝土剪切方程的预测。对于横向剪切方程,混凝土强度的加入改善了优化方程的结果。通过执行可靠性分析,可以进一步校准优化的剪切方程,以便将其用于设计目的。为了达到可接受的结构安全水平,在目标可靠性指标beta(r)为3.5的情况下计算了剪切设计方程的阻力系数。 Crown版权所有(C)2015,由Elsevier Ltd.发行。保留所有权利。

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