采用具有能量收集功能的基于H桥的电磁干涉阻尼器降低电缆振动

Jin-Yang Li, Songye Zhu
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引用次数: 3

摘要

桥索振动的抑制一直是一个研究热点,并取得了很大的进展。除了振动控制之外,最近的发展趋势是将辅助传感器、本地计算模块和数据传输设备结合起来,建立一个全面的、集成的电缆控制和健康监测系统,这需要外部能量输入。然而,对于这些设备来说,外部电源并不是一个有吸引力的选择,因为电缆振动所蕴含的动能可以被潜在地收集来满足这种电力需求,从而导致建立一个独立的自供电控制和健康监测系统。在这方面,我们通过开发一种新型的基于H桥的电磁干涉阻尼器(HB‐EMID),提出了一种前所未有的电缆振动缓解解决方案,其中HB‐EMID可以模拟干涉阻尼器的控制行为并具有能量收集功能。同时,新提出的HB‐EMID具有很大的灵活性,只需调整相应的编码即可改变其等效力学性能。在介绍了系统拓扑结构和工作机制之后,本研究将HB - EMID应用于电缆结构,系统地研究了平衡控制和能量收集性能,以及其在全尺寸应用的可行性。通过数值验证,确定了控制性能满意,收获功率充足。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cable vibration mitigation by using an H‐bridge‐based electromagnetic inerter damper with energy harvesting function
The mitigation of bridge cable vibration has long been a research hotspot with substantial developments contributed to the field. In addition to vibration control, a recent development trend incorporates auxiliary sensors, local computing modules, and data transmission devices to establish a comprehensive, integrated cable control and health monitoring system, which requires external energy input. However, an external power supply for these devices is not considered an attractive option, considering that the kinetic energy embodied in cable vibrations can be potentially harvested to cover such power demand, leading to the establishment of an independent self‐powered control and health monitoring system. In this regard, we proposed an unprecedented solution for cable vibration mitigation by developing a novel H‐bridge‐based electromagnetic inerter damper (HB‐EMID) in this work, in which HB‐EMID can emulate the control behavior of an inerter damper and possess an energy‐harvesting function. Meanwhile, the newly proposed HB‐EMID is granted with great flexibility that can alter its equivalent mechanical properties by merely adjusting the corresponding coding. Following the introduction of the system topology and working mechanism, this study applies an HB‐EMID to a cable structure and systematically investigates the balanced control and energy‐harvesting performances, as well as its feasibility to full‐scale application. Both satisfactory control performance and sufficient harvested power are confirmed through numerical validation.
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