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Experimental study on thermal performance of a mobilized thermal energy storage system: A case study of hydrated salt latent heat storage

机译:机动储热系统热性能的实验研究:以水合盐潜热储能为例

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A mobilized thermal energy storage (M-TES) system was proposed to utilize the renewable energy or recover the industrial waste heat in this paper. The M-TES system with 215 kg sodium acetate trihydrate as phase change material (PCM) filled into a tube-in-tank heat exchanger was designed and experimental tests were conducted to evaluate its thermal performance. The charging-discharging behavior of M-TES system was observed and temperature evolutions of PCM and heat transfer fluid (HTF) were monitored. The charging process of the M-TES system could be accomplished in 1200 s; while for energy discharging process, it took a little longer (1400 s) due to the prevention of natural convection. It also revealed that the non-uniform temperature distribution of PCM would result in asynchrony of melting/solidification. The PCM in the middle part of the tubes would melt at first, whereas the temperature of the PCM close to the end of the tubes increased much slower. The temperature difference was much more significant during the discharging process. Super cooling could be found easily for the PCM in the ends of tubes. The released heat in the discharging process was applied to heat the cooling water to mimic the domestic consumption of hot water to investigate the thermal performance of energy discharging. With perfect performance of our indirect contact heat exchanger, the thermal efficiency was estimated of 79.4%. Our tests would provide an experimental basis for the application of the low-temperature mobilized LHTES system. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文提出了一种动员的热能存储(M-TES)系统来利用可再生能源或回收工业废热。设计了将215千克三水合乙酸钠作为相变材料(PCM)填充到罐中管式热交换器中的M-TES系统,并进行了实验测试以评估其热性能。观察了M-TES系统的充放电行为,并监测了PCM和传热流体(HTF)的温度变化。 M-TES系统的充电过程可以在1200秒内完成;能量释放过程由于防止自然对流而花费了更长的时间(1400 s)。这也表明,PCM的温度分布不均匀会导致熔融/凝固异步。管中部的PCM首先会融化,而靠近管末端的PCM的温度升高得慢得多。在放电过程中,温差要大得多。管端的PCM很容易发现过热现象。利用排放过程中释放出的热量来加热冷却水,以模拟居民生活用水,从而研究能量排放的热性能。凭借我们间接接触式热交换器的完美性能,估计热效率为79.4%。我们的测试将为低温移动式LHTES系统的应用提供实验基础。 (C)2019 Elsevier B.V.保留所有权利。

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