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Improved risk-targeted performance-based seismic design of reinforced concrete frame structures

机译:改进的基于风险目标性能的钢筋混凝土框架结构抗震设计

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This paper presents a procedure for seismic design of reinforced concrete structures, in which performance objectives are formulated in terms of maximum accepted mean annual frequency (MAF) of exceedance, for multiple limit states. The procedure is explicitly probabilistic and uses Cornell's like closed-form equations for the MAFs. A gradient-based constrained optimization technique is used for obtaining values of structural design variables (members' section size and reinforcement) satisfying multiple objectives in terms of risk levels. The method is practically feasible even for real-sized structures thanks to the adoption of adaptive equivalent linear models where element-by-element stiffness reduction is performed (2 linear analyses per intensity level). General geometric and capacity design constraints are duly accounted for. The procedure is applied to a 15-storey plane frame building, and validation is conducted against results in terms of drift profiles and MAF of exceedance, obtained by multiple-stripe analysis with records selected to match conditional spectra. Results show that the method is suitable for performance-based seismic design of RC structures with explicit targets in terms of desired risk levels.
机译:本文提出了一种钢筋混凝土结构抗震设计的程序,其中针对多个极限状态,以超过的最大可接受平均年频率(MAF)来制定性能目标。该过程显然是概率性的,并且对MAF使用了Cornell的闭式方程式。基于梯度的约束优化技术用于获得结构设计变量(构件的截面尺寸和钢筋)的值,这些变量满足风险级别上的多个目标。由于采用了自适应等效线性模型,其中逐个元素的刚度降低了(每个强度水平进行2次线性分析),因此该方法甚至对于实际尺寸的结构也是可行的。适当考虑了一般的几何和容量设计约束。该程序应用于一幢15层的平面框架建筑,并根据漂移分布图和超出MAF的结果对结果进行验证,该结果是通过多条带分析和选择以匹配条件光谱的记录获得的。结果表明,该方法适用于具有期望风险水平的明确目标的钢筋混凝土结构基于性能的抗震设计。

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