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Magnetically Actuated Piezoelectric-Based Rotational Energy Harvester With Enhanced Output in Wide Range of Rotating Speeds

机译:基于磁致压电的旋转式能量收集器,在较大的转速范围内具有增强的输出

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This paper reports the design, fabrication, and performance of a novel rotational energy harvester, utilizing multiple magnetic actuators and piezoelectric beams for the maximum performance in a wide range of rotational speeds. The harvester can be used in different rotational applications with low or high rotational speed and produce high output. Thin lead-zirconium-titanate (PZT) piezoelectric beams were fixed on the axis of a nonmoving wheel. One end of the beams was fixed to the center axis of the stationary wheel, while the other end hung free. Small magnets were bonded on each of the piezoelectric beams' free ends and on a concentric wheel, fixed to a working shaft. As the working shaft drove the dynamic wheel, the magnets on the moving surface attracted the magnets on the piezoelectric beams, causing the beams to be plucked into vibration as the magnets passed by one another. The device was tested at six different rotational speeds from 180 to 500 r/min, with two different layouts, single and double plucking magnets. There will be potentials to increase up to six plucking magnets and four piezoelectric beams in this design for an increased performance. Voltage output versus time graphs were analyzed for each speed and setup. It was determined that increasing the number of plucking magnets and rotational speed was the most effective ways to increase the beam vibration and maximize the energy harvester's performance. This is the most effective approach to increase the performance of the energy harvester in the applications that require lower speeds. The least effective case was the low speed, single magnet design, where the beam vibrated little and approximately half of the energy harvester's time was idle time, minimizing the power harvested.
机译:本文报告了一种新型旋转能量采集器的设计,制造和性能,该技术利用多个磁致动器和压电梁在较大的转速范围内实现了最佳性能。该收割机可用于低转速或高转速的不同旋转应用,并产生高输出。钛酸锆锆细(PZT)压电梁固定在固定车轮的轴线上。横梁的一端固定在固定轮的中心轴线上,而另一端则悬空。在压电梁的每个自由端和固定在工作轴上的同心轮上粘结了小磁铁。当工作轴驱动动轮时,运动表面上的磁体吸引了压电梁上的磁体,从而使磁体在彼此通过时被振动。该设备在180至500 r / min的六种不同转速下进行了测试,具有两种不同的布局,即单和双拔除磁铁。此设计中可能会增加多达六个拔除磁体和四个压电梁,以提高性能。针对每种速度和设置分析了电压输出与时间的关系图。可以确定,增加拔除磁铁的数量和转速是增加光束振动和最大化能量收集器性能的最有效方法。这是在需要较低速度的应用中提高能量收集器性能的最有效方法。最不有效的情况是低速单磁体设计,其中光束振动很小,能量收集器时间的大约一半是空闲时间,从而最大程度地减少了能量收集。

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