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Concept study of a novel energy harvesting-enabled tuned mass-damper-inerter (EH-TMDI) device for vibration control of harmonically-excited structures

机译:新型能量收集使能的调谐质量阻尼器-Inerter(EH-TMDI)装置的概念研究,用于谐波激励结构的振动控制

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摘要

A novel dynamic vibration absorber (DVA) configuration is introduced for simultaneous vibration suppression and energy harvesting from oscillations typically exhibited by large-scale low-frequency engineering structures and structural components. The proposed configuration, termed energy harvesting-enabled tuned mass-damper-inerter (EH-TMDI) comprises a mass grounded via an in-series electromagnetic motor (energy harvester)-inerter layout, and attached to the primary structure through linear spring and damper in parallel connection. The governing equations of motion are derived and solved in the frequency domain, for the case of harmonically-excited primary structures, here modelled as damped single-degree- of-freedom (SDOF) systems. Comprehensive parametric analyses proved that by varying the mass amplification property of the grounded inerter, and by adjusting the stiffness and the damping coefficients using simple optimum tuning formulae, enhanced vibration suppression (in terms of primary structure peak displacement) and energy harvesting (in terms of relative velocity at the terminals of the energy harvester) may be achieved concurrently and at nearresonance frequencies, for a fixed attached mass. Hence, the proposed EH-TMDI allows for relaxing the trade-off between vibration control and energy harvesting purposes, and renders a dual-objective optimisation a practically-feasible, reliable task.
机译:引入了一种新颖的动态吸振器(DVA)配置,用于同时抑制振动和从大型低频工程结构和结构部件通常表现出的振动中收集能量。提议的配置,称为启用能量收集的调谐质量阻尼器-惰轮(EH-TMDI),包括通过串联电磁电机(能量收集器)-惰轮布局接地的物体,并通过线性弹簧和阻尼器连接到主结构并联连接。对于谐波激励的主结构,这里将其建模为阻尼单自由度(SDOF)系统,在频域中导出并求解运动的控制方程。全面的参数分析证明,通过改变接地惯性的质量放大特性,并通过使用简单的最佳调整公式来调整刚度和阻尼系数,可以增强振动抑制能力(就主要结构的峰值位移而言)和能量收集(就动力而言)。对于固定的附着质量,可以同时并以接近共振的频率获得能量收集器终端的相对速度。因此,提出的EH-TMDI允许放松振动控制和能量收集目的之间的权衡,并使双重目标优化成为切实可行,可靠的任务。

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    Salvi J.; Giaralis A.;

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  • 年度 2016
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  • 正文语种 en
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