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Risk-informed sensitivity analysis and optimization of seismic mitigation strategy using Gaussian process surrogate model

机译:高斯工艺代理模型风险明智的敏感性分析与地震缓解策略优化

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摘要

This work aims to develop a method to derive the optimal parameters of seismic mitigation devices for achieving the minimum system seismic risk, which is derived by accounting for the correlation between each individual components risk. Gaussian process surrogate model (GPSM) is used to illustrate the functional relationship between seismic risk and the variables of the mitigation devices, and then both sensitivity analysis and parameter optimization are carried out. Specifically, global sensitivity analysis (GSA), which is powerful for assessing the relative importance of parameters of the isolation devices, is achieved through the use of GPSM; the parameter optimization can be efficiently conducted to find the minimum seismic risk. A cable-stayed bridge model is established to demonstrate the application of the proposed GPSM-based method of sensitivity analysis and optimization of seismic isolation devices. The fluid viscous damper (FVD) which provides additional damper and stiffness is selected to illustrate the procedure of the multi-object optimization of seismic isolation devices on cable-stayed bridges. The seismic risk is calculated by integrating probabilistic seismic hazard analysis (PSHA), probabilistic seismic demand analysis (PADA), and probabilistic damage states, incorporating important sources of nonlinearity and uncertainties. Component-level objectives and one system-level object are considered, and the optimal parameters (damping coefficient C-d and exponent alpha) are determined. The results demonstrate that the GPSM-based is effective and efficient for sensitivity analysis and optimization of seismic isolation devices.
机译:这项工作旨在开发一种方法来导出地震减缓装置的最佳参数,以实现最小系统地震风险,这是通过算是每个单独的组件之间的相关性的相关性。高斯过程代理模型(GPSM)用于说明地震风险与缓解装置的变量之间的功能关系,然后进行敏感性分析和参数优化。具体地,通过使用GPSM实现了用于评估隔离装置的参数相对重要性的全局敏感性分析(GSA);可以有效地进行参数优化以找到最小的地震风险。建立了斜拉桥模型,以证明所提出的基于GPSM的敏感性分析方法的应用及地震隔离装置的优化。选择提供额外阻尼器和刚度的流体粘性阻尼器(FVD)以说明缆绳座椅上的地震隔离装置的多物体优化的过程。通过整合概率地震危害分析(PSHA),概率地震需求分析(PADA)和概率损伤状态来计算地震风险,并纳入重要的非线性和不确定性的重要来源。考虑组件级目标和一个系统级对象,并确定最佳参数(阻尼系数C-D和指数alpha)。结果表明,基于GPSM的敏感性分析和地震隔离装置的优化是有效且有效的。

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