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A combined experimental and simulation study on charging process of Erythritol-HTO direct-blending based energy storage system

机译:赤藓糖醇-HTO直接混合储能系统充电过程的仿真与模拟研究

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摘要

Thermal energy storage (TES) system is essential to recover and use intermittent heat, such as industrial waste/excess heat or solar energy. In this paper, a direct-contact erythritol/heat transfer oil (HTO) energy storage system has been studied experimentally, consisting of a thermal energy storage unit, electrical heaters, heat exchanger and water cycle. In the system, erythritol has been used as an energy storage media (melting point = 118 ℃, heat enthalpy = 330 kJ/kg), and HTO is used as a heat transfer material. Moreover, simulation has been conducted to understand heat transfer enhancement mechanisms of direct-contact heat storage. It is noticed that, at the beginning of heat storage, heat transfer oil has a small flow rate due to the block of solid part. PCM in the middle area of the storage unit melts faster than other parts due to the greater heat transfer on the liquid-solid interface of the both sides, and erythritol attached on the storage unit wall melts slowly since small heat conductivity plays a key role for heat transfer. It is also found that increasing the flow rate of HTO can significantly decrease the melting time by increasing fluid turbulent degree.
机译:热能存储(TES)系统对于回收和使用间歇性热量至关重要,例如工业废料/多余的热量或太阳能。本文研究了一种由热能存储单元,电加热器,热交换器和水循环组成的直接接触赤藓糖醇/传热油(HTO)能量存储系统。在该系统中,赤藓糖醇已被用作能量存储介质(熔点= 118℃,热焓= 330 kJ / kg),而HTO被用作传热材料。此外,已经进行了模拟以了解直接接触式储热的传热增强机理。注意到,在储热开始时,由于固体部分的阻塞,传热油的流量小。由于两侧的液固界面上的传热较大,因此存储单元中间区域的PCM熔化速度比其他部件快,并且附着在存储单元壁上的赤藓糖醇熔化缓慢,这是因为较小的热导率起着关键作用。传播热量。还发现增加HTO的流速可以通过增加流体湍流度来显着减少熔化时间。

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