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Operation of a low-temperature differential heat engine for power generation via hybrid nanogenerators

机译:通过杂交纳米液发电的低温差动热发动机的操作

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This work aims for the exploitation of low-grade thermal energy (100 degrees C) in conjunction with the operation of nanogenerators run by a highly responsive low-temperature differential (LTD) heat engine. Two different types of nanogenerators were fabricated and tested in four different schemes: triboelectric in non-contact sliding mode (TENG), piezoelectric in contact-separation mode (PENG), triboelectric in contact-separation mode (TENG-2), and coupled triboelectric and piezoelectric in contact-separation mode (TENG-PENG). A series of tests were performed in generating power from the coupled action of triboelectric and piezoelectric nanogenerators with the operation of a LTD Stirling engine to harness low-grade thermal energy. This stands out as compared to previous studies from the perspective of operating two different types of nanogenerators in two different modes at the same time and the exploitation of low-grade thermal energy rather than the ambient mechanical energy, which is witnessed in most accomplishments in the relevant area. Running the triboelectric nanogenerator (non-contact sliding mode) with a small LTD heat engine (MM-7 Stirling engine) delivered a maximum output voltage of 35 V for a temperature difference of 73.2 degrees C. Meanwhile, the piezoelectric, triboelectric, and hybridized triboelectric-piezoelectric (contact-separation mode) nanogenerator produced output voltages of 4 V, 20.1 V, and 40 V, respectively. A maximum combined voltage of 74 V was also measured when the output of the triboelectric generator in non-contact sliding mode was combined with the hybrid (triboelectric-piezoelectric) nanogenerator operating in contact-separation mode. Operating the nanogenerators in conjunction with an electromagnetic generator (EMG) was also tested as appropriate, which clearly demonstrates the potential of their application in a hybrid manner if needed.
机译:这项工作旨在结合纳米电磁器的操作,利用低级热能(<100摄氏度),该纳米电磁器通过高响应的低温差分(LTD)热发动机运行。在四种不同的方案中制造和测试两种不同类型的纳米液:非接触式滑动模式(腾)摩擦,接触分离模式(韧性),接触分离模式(Teng-2)的摩擦电解,并耦合摩擦电接触分离模式(Teng-Peng)中的压电。在从摩擦电和压电纳米电磁器的耦合作用中发电,在LTD斯特林发动机的操作中进行了一系列测试,以利用低级热能。与以前的研究相比,从两种不同模式操作两种不同类型的纳米能器的角度相比,同时利用低级热能而不是环境机械能,这在最重要的成就中相关区域。使用小型LTD发动机(MM-7斯特林发动机)运行摩擦电纳米料(非接触式滑动模式),输出最大输出电压为35V,温度差为73.2℃。同时,压电,摩擦和杂交摩擦电压电(接触分离模式)纳米料分别产生4V,20.1V和40V的输出电压。当在非接触式滑动模式中的摩擦电发电机的输出与在接触分离模式下操作的杂种(摩擦电压电)纳米电磁器组合时,还测量了74V的最大组合电压。根据需要,还测试了与电磁发生器(EMG)一起操作纳米汞,如果需要,清楚地证明了它们以混合方式施用的潜力。

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