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Mechanics-based closed-form solutions for moment redistribution in RC beams

机译:基于力学的RC梁矩重分布的封闭形式解决方案

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When it comes to the efficient design of reinforced concrete beams and frames, moment redistribution is used to: reduce the absolute maximum magnitude of the moment in the critical region, equalize the critical moments on either side of interior columns and fully utilize the capacity of the non-critical regions of a member. Although important, historically, moment redistribution has proved to be difficult to quantify due to the complexity of quantifying hinge rotations. Although numerous empirical expressions exist for plastic hinge lengths, i.e. the length over which the ultimate curvature can be integrated in order to give hinge rotations, a comparison with a global dataset yields poor results. Using a recently developed mechanics-based moment-rotation approach, it is possible to quantify the moment-rotation characteristics of reinforced concrete hinges. In the tension region, the approach applies partial interaction theory directly to simulate the mechanisms associated with slip of the reinforcement relative to the surrounding concrete as cracks widen, whereas in the compression region, partial interaction shear-friction theory is used to describe the formation and failure of concrete softening wedges. It is shown how the moment-rotation approach explicitly allows for the size dependency. Furthermore, mechanics-based solutions for moment redistribution are then derived and it is shown how these can be simplified at the ultimate limit state for use in the design office.
机译:对于钢筋混凝土梁和框架的高效设计,弯矩重新分配用于:减小关键区域的弯矩的绝对最大幅度,均衡内柱两侧的关键弯矩,并充分利用钢筋混凝土的能力。成员的非关键区域。尽管很重要,但从历史上看,由于量化铰链旋转的复杂性,矩重分布已证明难以量化。尽管存在许多关于塑料铰链长度的经验表达式,即可以整合最终曲率以给出铰链旋转的长度,但与全局数据集进行比较会得出较差的结果。使用最近开发的基于力学的力矩旋转方法,可以量化钢筋混凝土铰链的力矩旋转特性。在裂缝区域,该方法直接应用局部相互作用理论来模拟与钢筋相对于周围混凝土的滑移有关的机制,裂缝扩展;而在受压区域,则采用局部相互作用剪摩理论来描述地层和结构。混凝土软化楔的破坏。它显示了力矩旋转方法是如何显式考虑到尺寸依赖性的。此外,然后推导了基于机械的力矩重新分配解决方案,并说明了如何在最终极限状态下简化这些解决方案,以供设计部门使用。

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