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Method to Improve Seismic Performance of RC Moment-Resisting Frames Using Geometric Optimization

机译:几何优化改善RC抗弯框架抗震性能的方法

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This article presents an optimization method to determine the column dimensions that maximize the fundamental frequency of a building, which translates into a highly efficient computational algorithm for approximately solving this optimization problem. A thoroughly detailed example is provided for a 10-story building whose elastic behavior is analyzed using a three-dimensional model, employing a two-dimensional fiber model to assess its inelastic performance. The results show that, compared with the classical design, which has columns of uniform depth, the maximum elastic drift is reduced by 10% and that the drift demand decreases on the lower stories of the building. In addition, the overstrength of the structure and its ductility are increased by between 10 and 30%. Similar improvements are also observed in a second example for a five-story building, showing that the method is useful at least for midrise buildings. (C) 2015 American Society of Civil Engineers.
机译:本文提出了一种优化方法,该方法可以确定使建筑物的基本频率最大化的柱尺寸,从而转化为一种高效的计算算法,可以近似解决该优化问题。提供了一个十层建筑的详细示例,该建筑使用三维模型分析弹性行为,并使用二维纤维模型评估其非弹性性能。结果表明,与具有均匀深度的圆柱的经典设计相比,最大弹性漂移减少了10%,并且建筑物较低层的漂移需求降低了。此外,结构的超强度及其延展性提高了10%至30%。在第二示例中,对于五层建筑物也观察到了类似的改进,表明该方法至少对中层建筑物有用。 (C)2015年美国土木工程师学会。

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