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Reliability-based assessment/design of floor isolation systems

机译:基于可靠性的地板隔离系统评估/设计

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Floor isolation systems have been becoming increasingly popular as a protective measure for critical structural contents such as computer servers or museum artifacts. Supplemental dampers, working in tandem with the isolation system, are also frequently considered in this context for reducing the isolated floor displacement or enhancing vibration suppression. This paper discusses a reliability-based optimization approach for this kind of applications that adequately addresses at the design stage the variability related to the earthquake hazard as well as the nonlinear dynamics of the coupled structure/isolation system. The floor isolation system is optimized based on reliability criteria, where the reliability of the system is quantified by the plausibility that the acceleration of the protected contents will not exceed an acceptable performance bound, and is calculated using stochastic simulation. The latter facilitates the adoption of complex numerical models for the coupled system. A stochastic ground motion model is utilized to characterize the seismic hazard, and an efficient stochastic optimization approach, called non-parametric stochastic subset optimization, is adopted for performing the associated design optimization. Near-fault directivity pulses are explicitly addressed within this modeling context and their effect on the optimal design is investigated in detail. Also, a global sensitivity analysis is integrated within the framework to investigate the importance of the different uncertain model parameters (risk factors) towards the system failure probability. For demonstrating the proposed framework, the protection of a computer server placed at different floors within a four-story structure is considered.
机译:地板隔离系统已成为越来越受欢迎的保护措施,用于保护关键结构内容,例如计算机服务器或博物馆文物。在这种情况下,还经常考虑与隔离系统协同工作的辅助减震器,以减少隔离地板的位移或增强振动抑制效果。本文讨论了一种针对此类应用的基于可靠性的优化方法,该方法可在设计阶段充分解决与地震灾害有关的可变性以及耦合结构/隔离系统的非线性动力学问题。地板隔离系统基于可靠性标准进行了优化,其中系统的可靠性通过可信度(受保护内容的加速度不会超过可接受的性能范围)来量化,并使用随机模拟进行计算。后者有助于为耦合系统采用复杂的数值模型。利用随机地震动模型来表征地震危险,并采用一种有效的随机优化方法,即非参数随机子集优化,来进行相关的设计优化。在此建模环境中明确指出了近故障方向性脉冲,并详细研究了它们对最佳设计的影响。而且,在框架内集成了全局敏感性分析,以研究不同不确定模型参数(风险因素)对系统故障概率的重要性。为了演示所提出的框架,考虑了对位于四层结构内不同楼层的计算机服务器的保护。

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