R. D. Filippo, G. Abbiati, O. Sayginer, P. Covi, O. Bursi, F. Paolacci
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引用次数: 1

摘要

工业厂房耦合系统的地震风险评估往往需要考虑其多组分特性,实现复杂的有限元模型。这些模型通常依赖于大量的计算资源。此外,地震作用、系统反应和相关损伤水平之间的关系往往具有高度非线性的特征,因此需要坚实的实验数据背景。此外,脆弱性分析依赖于大量地震波形的采用,这些波形在特定地点的分析中通常是不可用的。为了提出一种能够管理这些问题的方法,我们提出了一种耦合储罐-管道系统的地震可靠性分析的可能方法。该方法的新颖之处在于采用人工加速度、有限元模型和实验混合模拟来评估我们系统的代理元模型。首先,为了获得能够产生合成地面运动的随机地面运动模型所需的输入,对地震危险性进行了分解分析。在此基础上,通过对系统地震反应的全局敏感性分析,减小了随机地震动模型参数的空间。因此,我们生成了大量的合成地面运动,并从中选择了一些信号进行实验混合模拟。该混合仿真器由预测钢罐滑动响应的数值子结构和由现实管网构成的物理子结构组成。此外,我们使用这些实验结果来校准一个改进的ANSYS有限元程序。更准确地说,我们关注弯头管中的拉伸环应变,这是导致泄漏的主要原因,并使用应变仪对其进行监测。因此,我们提出了基于实验和有限元模型结果来评估耦合系统数值Kriging元模型的程序。该模型将在未来的开发中用于进行地震易损性分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Surrogate Model of a Coupled Tank-Piping System for Seismic Fragility Analysis With Synthetic Ground Motions
Seismic risk evaluation of coupled systems of industrial plants often needs the implementation of complex finite element models to consider their multicomponent nature. These models typically rely on significant computational resources. Moreover, the relationships between seismic action, system response and relevant damage levels are often characterized by a high level of nonlinearity, thus requiring a solid background of experimental data. Furthermore, fragility analyses depend on the adoption of a significant number of seismic waveforms generally not available when the analysis is site-specific. To propose a methodology able to manage these issues, we present a possible approach for a seismic reliability analysis of a coupled tank-piping system. The novelty of this approach lies in the adoption of artificial accelerograms, FE models and experimental hybrid simulations to evaluate a surrogate meta-model of our system. First, to obtain the necessary input for a stochastic ground motion model able to generate synthetic ground motions, a disaggregation analysis of the seismic hazard is performed. Hereafter, we reduce the space of parameters of the stochastic ground motion model by means of a global sensitivity analysis upon the seismic response of our system. Hence, we generate a large set of synthetic ground motions and select, among them, a few signals for experimental hybrid simulations. In detail, the hybrid simulator is composed by a numerical substructure to predict the sliding response of a steel tank, and a physical substructure made of a realistic piping network. Furthermore, we use these experimental results to calibrate a refined ANSYS FEM. More precisely, we focus on tensile hoop strains in elbow pipes as a leading cause for leakage, monitoring them with strain gauges. Thus, we present the procedure to evaluate a numerical Kriging meta-model of the coupled system based on both experimental and finite element model results. This model will be adopted in a future development to carry out a seismic fragility analysis.
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