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Uncertainty reduction of seismic fragility of intake tower using Bayesian Inference and Markov Chain Monte Carlo simulation

机译:贝叶斯推断和马尔可夫链蒙特卡洛模拟降低进气塔抗震性的不确定性

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摘要

The fundamental goal of this study is to minimize the uncertainty of the median fragility curve and to assess the structural vulnerability under earthquake excitation. Bayesian Inference with Markov Chain Monte Carlo (MCMC) simulation has been presented for efficient collapse response assessment of the independent intake water tower. The intake tower is significantly used as a diversion type of the hydropower station for maintaining power plant, reservoir and spillway tunnel. Therefore, the seismic fragility assessment of the intake tower is a pivotal component for estimating total system risk of the reservoir. In this investigation, an asymmetrical independent slender reinforced concrete structure is considered. The Bayesian Inference method provides the flexibility to integrate the prior information of collapse response data with the numerical analysis results. The preliminary information of risk data can be obtained from various sources like experiments, existing studies, and simplified linear dynamic analysis or nonlinear static analysis. The conventional lognormal model is used for plotting the fragility curve using the data from time history simulation and nonlinear static pushover analysis respectively. The Bayesian Inference approach is applied for integrating the data from both analyses with the help of MCMC simulation. The method achieves meaningful improvement of uncertainty associated with the fragility curve, and provides significant statistical and computational efficiency.
机译:这项研究的基本目标是使中值脆性曲线的不确定性最小化,并评估地震激发下的结构脆弱性。提出了具有马尔可夫链蒙特卡罗(MCMC)模拟的贝叶斯推理方法,可以对独立进水塔进行有效的倒塌响应评估。进水塔被大量用作水力发电站的分流类型,用于维护电厂,水库和溢洪道。因此,进水塔的地震易损性评估是估算储层总系统风险的关键组成部分。在这项研究中,考虑了不对称的独立细长钢筋混凝土结构。贝叶斯推理方法提供了将坍塌响应数据的先验信息与数值分析结果进行集成的灵活性。可以从各种来源获得风险数据的初步信息,例如实验,现有研究以及简化的线性动态分析或非线性静态分析。传统的对数正态模型分别使用时间历史仿真和非线性静态推覆分析中的数据绘制易碎曲线。使用贝叶斯推断方法,借助MCMC模拟将来自两个分析的数据进行整合。该方法实现了与脆性曲线相关的不确定性的有意义的改善,并且提供了显着的统计和计算效率。

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