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Wind-driven pyroelectric energy harvesting device

机译:风力热电发电装置

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Pyroelectric materials have recently received attention for harvesting waste heat owing to their potential to convert temperature fluctuations into useful electrical energy. One of the main challenges in designing pyroelectric energy harvesters is to provide a means to induce a temporal heat variation in a pyroelectric material autonomously from a steady heat source. To address this issue, we propose a new form of wind-driven pyroelectric energy harvester, in which a propeller is set in rotational motion by an incoming wind stream. The speed of the propeller's shaft is reduced by a gearbox to drive a slider-crank mechanism, in which a pyroelectric material is placed on the slider. Thermal cycling is obtained as the reciprocating slider moves the pyroelectric material across alternative hot and cold zones created by a stationary heat lamp and ambient temperature, respectively. The open-circuit voltage and closed-circuit current are investigated in the time domain at various wind speeds. The device was experimentally tested under wind speeds ranging from 1.1 to 1.6 m s(-1) and charged an external 100 nF capacitor through a signal conditioning circuit to demonstrate its effectiveness for energy harvesting. Unlike conventional wind turbines, the energy harvested by the pyroelectric material is decoupled from the wind flow and no mechanical power is drawn from the transmission; hence the system can operate at low wind speeds (<2 m s(-1)).
机译:由于热电材料具有将温度波动转换成有用电能的潜力,因此热电材料最近已受到关注以收集废热。设计热电能量收集器的主要挑战之一是提供一种从稳定的热源自动引发热电材料中的瞬时热变化的方法。为了解决这个问题,我们提出了一种新型的风力热释电能量收集器,其中,螺旋桨通过传入的风流进行旋转运动。螺旋桨轴的速度由齿轮箱降低,以驱动滑块曲柄机构,其中将热电材料置于滑块上。当往复式滑块将热电材料移动到分别由固定的加热灯和环境温度产生的交替的热区和冷区时,获得热循环。在不同风速下的时域中研究开路电压和闭路电流。该设备在1.1至1.6 m s(-1)的风速下进行了实验测试,并通过信号调理电路为外部100 nF电容器充电,以证明其对能量收集的有效性。与传统的风力涡轮机不同,热释电材料收集的能量与风流分离,并且没有从变速箱中汲取机械动力。因此系统可以在低风速(<2 m s(-1))下运行。

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