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Reliability-based performance optimization of TMD for vibration control of structures with uncertainty in parameters and excitation

机译:TMD基于可靠性的性能优化,用于参数和激励不确定的结构的振动控制

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摘要

Recent development of system identification using Bayesian models or stochastic filtering provides probabilistic descriptions (i.e., probability density function or statistical parameters like mean and variance) of the identified model parameters (e.g., mass, stiffness, and damping). Optimal design of passive controllers for these systems whose parameters are uncertain has remained an open problem. With this in view, the present study aims to develop numerical solution scheme for the optimal design of tuned mass damper (TMD) operating in uncertain environment. Deterministic design of TMD in these cases suffers detuning as the system parameters are random. Thus, a reliability-based design optimization (RBDO) scheme is presented in this paper for better performance of the TMD when exposed to uncertainties. To solve the RBDO problem, response surface methodology is used along with the moving least squares technique. Dual response surfaces are used for separate handling of optimization and reliability analysis. First response surface performs optimization of the design variables of TMD, while the second response surfaces are used for the estimation of the statistical properties like mean and variance to satisfy the constrained conditions. Numerical analysis is presented to show the effectiveness of the proposed algorithm for RBDO of single degree of freedom-TMD system as a proof of concept. The proposed meta-model-based algorithm can be applied for the optimal design of controller for large structures where conventional technique may face difficulty to handle both optimization and uncertainty quantification simultaneously. Copyright (C) 2016 John Wiley & Sons, Ltd.
机译:使用贝叶斯模型或随机滤波的系统识别的最新发展提供了所识别的模型参数(例如质量,刚度和阻尼)的概率描述(即概率密度函数或统计参数,例如均值和方差)。这些参数不确定的系统的无源控制器的优化设计仍然是一个悬而未决的问题。有鉴于此,本研究旨在为在不确定环境下运行的调谐质量阻尼器(TMD)的最佳设计开发数值解决方案。由于系统参数是随机的,因此在这些情况下,TMD的确定性设计会失谐。因此,本文提出了一种基于可靠性的设计优化(RBDO)方案,以在遇到不确定性时提高TMD的性能。为了解决RBDO问题,将响应面方法与移动最小二乘法一起使用。双响应面用于分别处理优化和可靠性分析。第一个响应面对TMD的设计变量进行优化,而第二个响应面则用于估算均值和方差之类的统计属性,以满足约束条件。数值分析表明,该算法对单自由度-TMD系统的RBDO算法是有效的。所提出的基于元模型的算法可用于大型结构控制器的优化设计,其中传统技术可能难以同时处理优化和不确定性量化。版权所有(C)2016 John Wiley&Sons,Ltd.

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