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首页> 外文期刊>Sensors and Actuators, A. Physical >Modeling and experiment of a handy motion driven, frequency up-converting electromagnetic energy harvester using transverse impact by spherical ball
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Modeling and experiment of a handy motion driven, frequency up-converting electromagnetic energy harvester using transverse impact by spherical ball

机译:球形球横向冲击的便捷运动驱动的频率上变频电磁能量采集器的建模与实验

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Power generation from human-body-induced vibration faces the challenges of low frequency and high amplitude with random excitation. In such cases, employing spring-mass structure as the low frequency oscillator is unrealizable and also unreliable. Impact based frequency up-conversion mechanisms have extensively been using to overcome the challenges. Random and direct impacts on the power generating element raise the questions on reliability, as well as efficiency of the energy harvesters. In order to meet these shortcomings, we have presented a handy motion driven electromagnetic energy harvester that also uses impact based frequency up-conversion mechanism; but instead of direct impact, it utilizes transverse impact by a freely movable spherical ball. Upon handy motion excitation, the ball vibrates along a fixed-fixed cantilever beam and pushes (by transverse impact) it at right angles while comes in contact with the parabolic top surface of a proof-mass attached to the beam, allowing it to vibrate at its higher resonant frequency. Relative motion between a magnet attached to the cantilever and a coil (placed below) induces voltage. A prototype energy harvester has been fabricated and characterized. At a periodic handy motion excitation of similar to 2 g peak amplitude and frequency 5.8 Hz, it is capable of delivering maximum 103.55 mu W average power (5.4 mu W cm(-3) power density) to 85 Omega matched load resistance. Experimental results reveal feasibility and reliable operation of the proposed frequency up-converting energy harvester in harvesting power from handy motion vibration. Further optimized design would be able to offer higher power density to be used efficiently for portable and wearable smart devices applications. (C) 2015 Elsevier B.V. All rights reserved.
机译:人体振动引起的发电面临着随机激励下低频和高振幅的挑战。在这种情况下,采用弹簧质量结构作为低频振荡器是无法实现的,并且也不可靠。基于影响的频率上变频机制已被广泛用于克服挑战。对发电元件的随机和直接影响引发了关于能量收集器的可靠性以及效率的问题。为了克服这些缺点,我们提出了一种方便运动的电磁能量采集器,该采集器也使用基于冲击的频率上变频机制。但它不是直接冲击,而是利用可自由移动的球形球产生的横向冲击。在进行手部运动激励时,球沿着固定的悬臂梁振动,并以直角推动(通过横向冲击)它,同时与附着在梁上的质量块的抛物线形顶面接触,从而使其在以下位置振动其较高的谐振频率。附着在悬臂上的磁体和线圈(置于下方)之间的相对运动会产生电压。原型能量采集器已经制造并表征。在类似于2 g峰值幅度和5.8 Hz频率的周期性手持运动激励下,它能够提供最大103.55μW的平均功率(5.4μW cm(-3)功率密度)至85Ω匹配负载电阻。实验结果表明,所提出的频率上变频能量采集器在从手运动振动中采集功率的可行性和可靠操作。进一步优化的设计将能够提供更高的功率密度,以有效地用于便携式和可穿戴智能设备应用。 (C)2015 Elsevier B.V.保留所有权利。

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