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Seismic risk assessment of liquid storage tanks via a nonlinear surrogate model

机译:通过非线性替代模型评估储液罐的地震风险

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A performance-based earthquake engineering approach is developed for the seismic risk assessment of fixed-roof atmospheric steel liquid storage tanks. The proposed method is based on a surrogate single-mass model that consists of elastic beam-column elements and nonlinear springs. Appropriate component and system-level damage states are defined, following the identification of commonly observed modes of failure that may occur during an earthquake. Incremental dynamic analysis and simplified cloud are offered as potential approaches to derive the distribution of response parameters given the seismic intensity. A parametric investigation that engages the aforementioned analysis methods is conducted on 3 tanks of varying geometry, considering both anchored and unanchored support conditions. Special attention is paid to the elephant's foot buckling formation, by offering extensive information on its capacity and demand representation within the seismic risk assessment process. Seismic fragility curves are initially extracted for the component-level damage states, to compare the effect of each analysis approach on the estimated performance. The subsequent generation of system-level fragility curves reveals the issue of nonsequential damage states, whereby significant damage may abruptly appear without precursory lighter damage states.
机译:开发了一种基于性能的地震工程方法,用于评估固定顶盖大气钢制液体储罐的地震风险。所提出的方法基于由弹性梁柱单元和非线性弹簧组成的替代单质量模型。在确定了地震期间可能会发生的常见故障模式之后,定义了适当的组件和系统级别的损坏状态。提供增量动态分析和简化的云作为潜在方法,可以在给定地震烈度的情况下得出响应参数的分布。考虑了锚固和非锚固的支撑条件,在3个几何形状各异的坦克上进行了采用上述分析方法的参数研究。通过提供有关大象在地震风险评估过程中的能力和需求表示的大量信息,可以特别注意大象的脚屈。首先提取出针对组件级损坏状态的地震脆性曲线,以比较每种分析方法对估计性能的影响。随后生成的系统级脆弱性曲线揭示了非顺序损坏状态的问题,因此,如果没有先验的较轻损坏状态,可能会突然出现重大损坏。

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