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An investigation into the use of the heat pipe technology in thermal energy storage heat exchangers

机译:热管技术在蓄热式换热器中的应用研究

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Finding a solution to store industrial wasted heat for later use in order to reduce energy usage has been on the rise in recent years. This paper investigates the capability of latent heat TES (Thermal Energy Storage) system using PCM (Phase Change Material) to store/release a large amount of energy in a small volume compared to sensible heat TES system. In this work, the issue of the low conductivity of PCMs has been addressed by using an embedded finned water-charged heat pipes into the PCM bulk. Both heat pipes and the PCM tank used in this investigation were made of 316 L stainless steel. The PCM used in this work was PLUSICE S89, which has a melting temperature of 89 degrees C and crystallization point of 77 degrees C. The evaporator section of the heat pipe was heated by condensing a steam flow. The heat that was absorbed in the evaporator section was then discharged to the PCMs by the heat pipe multi-legged finned condenser. Tests were conducted for both charging (melting) and discharging (crystallization) of PLUSICE S89. It was observed that the thermal resistance posed by PCM during the discharging stage was higher compared to that during the charging process. (C) 2016 Elsevier Ltd. All rights reserved.
机译:近年来,寻找一种解决方案来存储工业废热以供以后使用,以减少能源使用量。本文研究了与显热TES系统相比,使用PCM(相变材料)的潜热TES(热能存储)系统在小体积内存储/释放大量能量的能力。在这项工作中,通过在PCM主体中使用嵌入式带鳍片的带水的热管解决了PCM的低电导率问题。本研究中使用的热管和PCM储罐均由316 L不锈钢制成。在这项工作中使用的PCM是PLUSICE S89,其熔点为89摄氏度,结晶点为77摄氏度。热管的蒸发器段通过冷凝蒸汽流而被加热。然后,在蒸发器部分吸收的热量通过热管多支腿翅片冷凝器排放到PCM。对PLUSICE S89的充电(熔融)和放电(结晶)进行了测试。可以看出,与充电过程相比,PCM在放电阶段产生的热阻更高。 (C)2016 Elsevier Ltd.保留所有权利。

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