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Optimal Seismic Design Method for Base-Isolated Pool Structure by Minimizing Life Cycle Cost

机译:通过最小化生命周期成本,最佳地震设计方法

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An optimal seismic design method for base-isolated and fluid-filled pool structures subjected to random ground excitation is studied. The criterion selected for the optimization is minimum life-cycle cost. The damage cost is estimated based on the structural failure probability calculated by the stochastic response analysis. Prescribed values of the isolator displacement and the wall base shear force are predectermined to constitute the limit-state levels. Added mass matrix derived by FEM modeling is able to consider fluid-structure interaction effects between the flexible walls and contained fluid. Design variables for optimization are the wall thickness and isolator stiffness. Flexible isolator allows us to choose relatively thinner lateral wall with similar failure probability. The more flexible isolator is, the smaller failure probability and total life-cycle cost are. This optimal design case is insensitive to assumed damage cost scale.
机译:研究了经受随机地激发的基部隔离和流体填充池结构的最佳地震设计方法。为优化选择的标准是最低生命周期成本。根据随机响应分析计算的结构失败概率估计损伤成本。分离器位移的规定值和壁基剪切力被预测以构成极限状态电平。由FEM建模导出的添加质量矩阵能够考虑柔性壁和包含的流体之间的流体结构相互作用效应。优化的设计变量是壁厚和隔离刚度。柔性隔离器允许我们选择具有类似故障概率的相对较薄的侧壁。更灵活的隔离器是,较小的故障概率和总生命周期成本是。这种最佳设计案例对假设损坏成本规模不敏感。

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