利用脉冲电场的热释电体能量收集方案的改进。

Buddhika Amila Kumara Sodige, Hideto Furuno, Nguyen Chi Trung Ngo, Hironari Sugiyama, Masaaki Baba, K. Niihara, T. Nakayama
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引用次数: 0

摘要

本研究将热释电纳米发电机与外部脉冲电场相结合,利用余热作为可持续能源来提高热释电功率输出。当热释电体的表面温度发生变化时,施加不同的外电脉冲会产生最大的功率积累。为了测量和计算热释电发电,设计了一种新型的发电实验装置。使用标准的富士陶瓷C-9样品在120 ~ 140℃的20℃温度范围内产生热释电能量。连续变温频率为0.05 Hz,温度升高时施加脉冲电场。将10、50、100、200 ms的电场脉冲以不同的脉冲幅值作用于样品,每个脉冲幅值分别为250、500、1000、1500 V/mm。计算了在上述条件下外加脉冲电场产生的最大功率。该系统的最高功率密度为0.204 mJ cm-2°C-1 kV-1。此外,在输入功率最低的情况下,在外加电场中脉冲宽度为10 ms,幅值为250 V mm-1时,最大发电条件为脉冲宽度为10 ms。这种状态可能会为智能传感器模块、物联网设备、汽车和其他废热能源应用提供动力。纳米脉冲电场的应用可以将输入功率降低到最低水平,这取决于净生产功率。因此,新的研究人员可以使用净发电效率来创建使用多个热释电阵列的大规模电源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancement of a pyroelectric body energy harvesting scheme employing pulsed electric fields.
This research utilizes waste heat energy as a sustainable energy source to enhance pyroelectric power output by combining pyroelectric nanogenerators with an external pulsed electric field. When the surface temperature of the pyroelectric body varies, applying different pulses of the external electric field results in maximum power accumulation. A novel power-generating experimental setup was developed to measure and compute pyroelectric power generation. A standard Fuji ceramic C-9 sample was used to generate pyroelectric energy in a 20 °C temperature range from 120 to 140 °C. The continuous temperature variation frequency was 0.05 Hz, and the pulsed electric field was applied when the temperature rose. Pulses of the electric field with widths of 10, 50, 100, and 200 ms were applied to the sample under different pulse amplitudes, and the amplitude of each pulse was 250, 500, 1000, or 1500 V/mm. The maximum power generated through the application of an external pulsed electric field under the above-mentioned conditions was evaluated. This system had the highest power density of 0.204 mJ cm-2 °C-1 kV-1. In addition, for the lowest input power, the maximum power generation condition was a 10 ms pulse width and an amplitude of 250 V mm-1 in the applied electric field. This state might power smart sensor modules, IoT devices, automobiles, and other waste heat energy applications. Nano-pulse electric field applications may reduce input power to its lowest level, dependent on net-producing power. Therefore, new researchers can use net-generation power efficiency to create a large-scale power source using multiple pyroelectric arrays.
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