首页> 外文期刊>Earthquake and structures: An International journal of earthquake engineering & earthquake effects on structures >Metamodeling of nonlinear structural systems with parametric uncertainty subject to stochastic dynamic excitation
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Metamodeling of nonlinear structural systems with parametric uncertainty subject to stochastic dynamic excitation

机译:具有随机动态激励的参数不确定性非线性结构系统的元建模

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摘要

Within the context of Structural Health Monitoring (SHM), it is often the case that structural systems are described by uncertainty, both with respect to their parameters and the characteristics of the input loads. For the purposes of system identification, efficient modeling procedures are of the essence for a fast and reliable computation of structural response while taking these uncertainties into account. In this work, a reduced order metamodeling framework is introduced for the challenging case of nonlinear structural systems subjected to earthquake excitation. The introduced metamodeling method is based on Nonlinear AutoRegressive models with eXogenous input (NARX), able to describe nonlinear dynamics, which are moreover characterized by random parameters utilized for the description of the uncertainty propagation. These random parameters, which include characteristics of the input excitation, are expanded onto a suitably defined finite-dimensional Polynomial Chaos (PC) basis and thus the resulting representation is fully described through a small number of deterministic coefficients of projection. The effectiveness of the proposed PC-NARX method is illustrated through its implementation on the metamodeling of a five-storey shear frame model paradigm for response in the region of plasticity, i.e., outside the commonly addressed linear elastic region. The added contribution of the introduced scheme is the ability of the proposed methodology to incorporate uncertainty into the simulation. The results demonstrate the efficiency of the proposed methodology for accurate prediction and simulation of the numerical model dynamics with a vast reduction of the required computational toll.
机译:在结构健康监测(SHM)的背景下,结构系统通常在不确定性方面进行描述,无论是关于其参数还是输入负载的特性。为了进行系统识别,有效的建模程序对于快速可靠地计算结构响应至关重要,同时还要考虑这些不确定性。在这项工作中,针对非线性结构系统受地震激发的具有挑战性的情况,引入了降阶元建模框架。引入的元建模方法基于带有外源输入(NARX)的非线性自回归模型,能够描述非线性动力学,此外,非线性动力学还具有用于描述不确定性传播的随机参数。这些包含输入激励特性的随机参数被扩展到适当定义的有限维多项式混沌(PC)基础上,因此,通过少量的确定性投影系数就可以完全描述所得的表示形式。通过在五层剪切框架模型范式的元建模中对可塑性区域(即通常寻址的线性弹性区域之外)的响应进行实施,可以说明所提出的PC-NARX方法的有效性。引入的方案的额外贡献是所提出的方法将不确定性纳入仿真的能力。结果证明了所提出方法的有效性,该方法可精确预测和模拟数值模型动力学,同时大大减少了所需的计算量。

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