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首页> 外文期刊>Journal of the Franklin Institute >Novel fluid inerter based tuned mass dampers for optimised structural control of base-isolated buildings
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Novel fluid inerter based tuned mass dampers for optimised structural control of base-isolated buildings

机译:新型基于流体惰性的调谐质量阻尼器,用于基础隔离建筑物的优化结构控制

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This work studies the advantageous features of the fluid inerter device for optimised structural control of buildings. Experimental data are first presented to characterise the fluid inerter dynamics, and validate the simplified analytical formulations. Building on these observations, the device is modelled as an inerter in parallel with a nonlinear dashpot representing a power law damping term. The latter dissipative effects are mainly induced by the pressure drops occurring in helical channels due to the fluid viscosity and density. Then, novel passive vibration control schemes are implemented for the earthquake protection of base-isolated buildings by combining the fluid inerter with a tuned mass damper system. To account for the uncertain nature of the earthquake input, the base acceleration is modelled as a Kanai-Tajimi filtered stationary random process. The optimal fluid inerter parameters, namely inertance and damping, are identified numerically by minimising stochastic performance indices relevant to displacement, acceleration, and energy-based measures of the structural response. The nonlinear damping behaviour of the fluid inerter is fully incorporated in the optimal design procedure via the statistical linearisation technique. Nonlinear response history analysis under an ensemble of 44 natural earthquake ground motions is carried out to assess the seismic performance of the system. Since inertance and damping are coupled characteristics in a real fluid inerter, design guidelines are finally outlined to determine the actual geometrical and mechanical properties of the device to achieve targeted parameters resulting from the optimisation procedure. (C) 2018 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:这项工作研究了用于优化建筑物结构控制的流体惰化装置的有利功能。首先提供实验数据来表征流体惯性动力学,并验证简化的分析公式。基于这些观察结果,将该设备建模为与表示功率定律阻尼项的非线性阻尼器并联的惰轮。后者的耗散效应主要是由于流体粘度和密度而在螺旋通道中产生的压降引起的。然后,通过将流体惰化器与调谐质量阻尼器系统相结合,实现了新颖的被动振动控制方案,用于基础隔离建筑物的地震防护。为了考虑地震输入的不确定性,将基本加速度建模为Kanai-Tajimi滤波的平稳随机过程。通过最小化与位移,加速度和结构响应的基于能量的度量有关的随机性能指标,可以从数值上确定最佳的流体惰性参数,即惯性和阻尼。通过统计线性化技术,将流体惰管的非线性阻尼行为完全纳入了最佳设计过程。在44个自然地震地震动的整体下进行了非线性响应历史分析,以评估系统的抗震性能。由于惯性和阻尼是真实流体惰化器中的耦合特性,因此最后概述了设计准则,以确定设备的实际几何和机械性能,以实现优化过程中产生的目标参数。 (C)2018富兰克林研究所。由Elsevier Ltd.出版。保留所有权利。

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