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Modified-modal-pushover-based seismic optimum design for steel structures considering life-cycle cost

机译:考虑生命周期成本的基于改进模态推覆的钢结构抗震优化设计

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摘要

A modified-modal-pushover-based optimization technique is presented to design steel moment resisting frame buildings for minimizing the life-cycle cost based on the framework of performance based earthquake engineering. Modified modal pushover analysis (MMPA) procedure capturing the higher mode effect well is utilized to analyze the inelastic seismic demands of the structures subjected to the considered design earthquakes in terms of the Chinese seismic code for buildings, especially for the medium- to high-rise buildings. Furthermore, the life-cycle cost is formulated as the summation of the initial material cost and the future expected damage loss, which can be stated as a function of seismic performance levels and their corresponding failure probability by means of a statistical model. Meanwhile, the damage loss is explicitly and continuously expressed by the defined interstory drift index using the fuzzy-decision theory. Moreover, the powerful adaptive simulated annealing algorithm is applied to solve the discrete optimization problem due to the discreteness of standard steel sections. Finally, a 9-story planar steel frame is provided to illustrate the effectiveness of the proposed optimization design technique, which achieves not only more cost-effective design but greatly improves the robustness of the optimum design as well.
机译:提出了一种基于改进模态推力的优化技术,以基于性能的地震工程为基础,设计了抗弯矩框架结构,以最小化生命周期成本。改进的模态推覆分析(MMPA)程序很好地捕获了较高模态效应,用于根据中国建筑抗震规范,尤其是中高层建筑,分析考虑设计地震的结构的非弹性地震需求建筑物。此外,生命周期成本被公式化为初始材料成本和未来预期损失的总和,可以通过统计模型将其表示为地震性能水平及其对应的失效概率的函数。同时,使用模糊决策理论通过定义的层间漂移指数来连续明确地表示破坏损失。此外,由于标准钢截面的离散性,强大的自适应模拟退火算法被用于解决离散优化问题。最后,提供了一个9层的平面钢框架来说明所提出的优化设计技术的有效性,该技术不仅实现了更具成本效益的设计,而且还大大提高了优化设计的鲁棒性。

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