SHS-LHS组合系统的性能评估

Khan Habeeb Ur Rahman, M. M. Rahman
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摘要

本文以石灰石属文石为显热储热材料,氢氧化钾为潜热储热材料,对显热-潜热组合式储热系统进行了评价。通过对传热液出口温度、蓄热系统平均温度、充放电过程中蓄能量和回能量等关键参数的评价,分析了显潜热联合蓄热系统的性能,并与单纯显潜热系统进行了比较。研究发现,显潜热组合蓄热系统在放电周期内将HTF出口温度稳定在相变材料(PCM)温度附近。其他研究人员在实验工作中也证实了这一点。对于两种系统(敏感和组合),球团直径越大,储热系统(TESS)达到最高工作温度所需的时间越长。对于这两种系统,在较低HTF流量下,温度保持在最高工作温度的时间更长。这有助于在较长时间内保持TESS温度的稳定性,这反过来又在有限程度上抵消了由于敏感TESS出口温度迅速降低而造成的损失。从联合系统中获取的能量比从一个敏感的单独的TESS中获取的能量要大。所有这些发现都表明,与仅使用感隐TESS相比,使用联合感隐TESS具有很高的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluating the Performance of a Combined SHS-LHS System
In the present work, a combined sensible heat storage-latent heat storage (SHS-LHS) system has been evaluated with Aragonite, which belongs to the category of Limestone, as the sensible heat storage material and Potassium Hydroxide (KOH) as the latent heat storage material. The performance of the combined sensible-latent heat storage system is analyzed and compared with a sensible only heat storage system by evaluating key parameters such as Heat Transfer Fluid (HTF) exit temperature, average temperature of the heat storage system and the amount of energy stored and retrieved during charging and discharging respectively. It was found that a combined sensible-latent heat storage system stabilizes the HTF exit temperature to around the temperature of the phase change material (PCM) during the discharge cycle. This has also been corroborated by other researchers in their experimental work. It was also found for both the systems (sensible and combined) that the larger the pellet diameter, the longer is the time taken by the Thermal Energy Storage System (TESS) to reach the maximum operating temperature. For both the systems, the temperatures remain at the maximum operating temperature for a longer duration at lower HTF flow rates. This helps in maintaining the stability of the temperatures in a TESS for a longer duration, which in turn, to a limited extent, offsets the losses caused due to a rapid reduction in the outlet temperature in a sensible TESS. The amount of energy retrieved from the combined system is larger than the energy that is retrieved from a sensible only TESS. All these findings point to the fact that using a combined sensible-latent TESS is highly advantageous as compared to a sensible only TESS.
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