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Ultra high temperature latent heat energy storage and thermophotovoltaic energy conversion

机译:超高温潜热能量存储和热光电能量转换

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摘要

A conceptual energy storage system design that utilizes ultra high temperature phase change materials is presented. In this system, the energy is stored in the form of latent heat and converted to electricity upon demand by TPV (thermophotovoltaic) cells. Silicon is considered in this study as PCM (phase change material) due to its extremely high latent heat (1800 J/g or 500 Wh/kg), melting point (1410 degrees C), thermal conductivity (similar to 25 W/mK), low cost (less than $2/kg or $4/kWh) and abundance on earth. The proposed system enables an enormous thermal energy storage density of 1 MWh/m(3), which is 10-20 times higher than that of lead-acid batteries, 2-6 times than that of Li-ion batteries and 5-10 times than that of the current state of the art LHTES systems utilized in CSP (concentrated solar power) applications. The discharge efficiency of the system is ultimately determined by the TPV converter, which theoretically can exceed 50%. However, realistic discharge efficiencies utilizing single junction TPV cells are in the range of 20-45%, depending on the semiconductor bandgap and quality, and the photon recycling efficiency. This concept has the potential to achieve output electric energy densities in the range of 200-450 kWh(e)/m(3), which is comparable to the best performing state of the art Lithium-ion batteries. (C) 2016 Elsevier Ltd. All rights reserved.
机译:提出了利用超高温相变材料的概念性储能系统设计。在该系统中,能量以潜热形式存储,并根据需要由TPV(热电)电池转换为电能。在本研究中,硅因其极高的潜热(1800 J / g或500 Wh / kg),熔点(1410摄氏度),热导率(约25 W / mK)而被视为PCM(相变材料)。 ,低成本(不到$ 2 / kg或$ 4 / kWh)和地球上的丰富资源。拟议的系统可实现1 MWh / m(3)的巨大储热密度,比铅酸电池高10-20倍,比锂离子电池2-6倍和5-10倍与目前在CSP(集中式太阳能)应用中使用的最新LHTES系统相比。系统的放电效率最终由TPV转换器确定,理论上可以超过50%。然而,取决于半导体带隙和质量以及光子回收效率,利用单结TPV电池的实际放电效率在20-45%的范围内。该概念具有实现200-450 kWh(e)/ m(3)范围内的输出电能密度的潜力,这与性能最佳的现有锂离子电池相当。 (C)2016 Elsevier Ltd.保留所有权利。

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