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通过插入聚(偏氟乙烯)膜实现热电化学电池中的高热梯度。

High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane.

机构信息

Department of Electrical Engineering, Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia.

Department of Mechanical Engineering, Faculty of Engineering, University of Malaya, 50603 Kuala Lumpur, Malaysia.

出版信息

Sci Rep. 2016 Jul 6;6:29328. doi: 10.1038/srep29328.

Abstract

Thermo-Electrochemical cells (Thermocells/TECs) transform thermal energy into electricity by means of electrochemical potential disequilibrium between electrodes induced by a temperature gradient (ΔT). Heat conduction across the terminals of the cell is one of the primary reasons for device inefficiency. Herein, we embed Poly(Vinylidene Fluoride) (PVDF) membrane in thermocells to mitigate the heat transfer effects - we refer to these membrane-thermocells as MTECs. At a ΔT of 12 K, an improvement in the open circuit voltage (Voc) of the TEC from 1.3 mV to 2.8 mV is obtained by employment of the membrane. The PVDF membrane is employed at three different locations between the electrodes i.e. x = 2 mm, 5 mm, and 8 mm where 'x' defines the distance between the cathode and PVDF membrane. We found that the membrane position at x = 5 mm achieves the closest internal ∆T (i.e. 8.8 K) to the externally applied ΔT of 10 K and corresponding power density is 254 nWcm(-2); 78% higher than the conventional TEC. Finally, a thermal resistivity model based on infrared thermography explains mass and heat transfer within the thermocells.

摘要

热电化学电池(Thermocells/TECs)通过由温度梯度(ΔT)引起的电极之间电化学势的不平衡将热能转化为电能。穿过电池终端的热传导是设备效率低下的主要原因之一。在此,我们将聚偏二氟乙烯(PVDF)膜嵌入热电池中以减轻热传递效应-我们将这些膜热电池称为 MTECs。在ΔT 为 12 K 的情况下,通过使用膜,TEC 的开路电压(Voc)从 1.3 mV 提高到 2.8 mV。PVDF 膜在电极之间的三个不同位置(即 x=2 mm、5 mm 和 8 mm)使用,其中“x”定义了阴极和 PVDF 膜之间的距离。我们发现,膜位于 x=5 mm 处可实现最接近外部施加的 10 K ΔT 的内部ΔT(即 8.8 K),相应的功率密度为 254 nWcm(-2);比传统的 TEC 高 78%。最后,基于红外热成像的热阻率模型解释了热电池内部的质量和热传递。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/42a7/4933890/9fe7826605bd/srep29328-f1.jpg

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