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Optimizing the seismic response of base-isolated liquid storage tanks using swarm intelligence algorithms

机译:使用群智能算法优化碱隔离液体储罐的地震响应

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摘要

Large-scale liquid storage tanks are used worldwide for storing water, chemicals and fuels, such as liquefied natural gas (LNG) and oil. Any major damage due to man-made or natural hazards, such as earthquakes, to these critical infrastructures would cause serious socio-economical losses and devastating environmental consequences. Moreover, they should remain functional even after a severe earthquake to support restoration actions, thus, their robust and optimal seismic design is deemed necessary. For this reason, base isolation is generally considered as a highly efficient technique for their seismic protection. Elastomeric bearings, such as lead-rubber bearings (LRB), high damping rubber bearings (HDRB) and friction bearings: single friction pendulum bearings (SFPB), double friction pendulum bearings (DFPB) and triple friction pendulum bearings (TFPB) have been used. In this work, the focus is given on the sizing optimization of the main parameters of SFPB and TFPB isolators. For this reason, efficient swarm intelligence optimization algorithms are used to derive optimal friction coefficient and radius of curvature values that enhance the dynamic performance of a base-isolated liquid storage tank. The main objective of the proposed formulation is to minimize the accelerations transmitted to the superstructure, while constraints related to damping and vibration period of the system are imposed. (C) 2020 Elsevier Ltd. All rights reserved.
机译:全球使用大型液体储罐,用于储存水,化学品和燃料,如液化天然气(LNG)和油。由于人造或地震等人造或自然灾害而导致的任何重大损失会导致严重的社会经济损失和毁灭性的环境后果。此外,即使在严重的地震以支持恢复行动之后,它们也应该保持功能,因此,必要地认为它们的稳健和最佳的地震设计。因此,基本隔离通常被认为是对其地震保护的高效技术。弹性轴承,如铅橡胶轴承(LRB),高阻尼橡胶轴承(HDRB)和摩擦轴承:单摩擦摆轴承(SFPB),双摩擦摆轴承(DFPB)和三重摩擦摆轴承(TFPB)已经使用过。在这项工作中,对SFPB和TFPB隔离器的主要参数的尺寸优化给出了重点。因此,高效的群体智能优化算法用于导出最佳摩擦系数和曲率半径,其增强了基座隔离液体储罐的动态性能。所提出的制剂的主要目的是最小化传递给上部结构的加速度,而施加与系统的阻尼和振动周期相关的约束。 (c)2020 elestvier有限公司保留所有权利。

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