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Calorimetric investigation of magnesium nitrate hexahydrate and sodium thiosulphate pentahydrate as salt mixture encapsulated materials for thermal energy storage

机译:硝酸镁六水合物和硫代硫酸钠五水合物作为盐混合物的热量调查包封材料热能储存材料

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The use of magnesium nitrate hexahydrate and sodium thiosulphate pentahydrate salt composite as an encapsulated phase change material in solar water heater storage unit for thermal energy storage was experimentally tested and investigated in this research study. A differential scanning calorimetry is performed to determine the properties such as melting temperature, specific heat capacity, and latent heat of the selected mixtures for the proportion 70:30 and 80:20 by weight. For the experimentation, these two samples are stored separately in the aluminum canisters and filled in storage tank to avoid the heat loss directly. The thermal performance of the solar water heater at different zones on collector with and without using encapsulated phase change material in storage tank was tested experimentally. Maximum temperature achieved in solar water collector was 50°C at midpoint and 46°C at outlet of the tank. It is found that even after late evenings 18.00 IST, the average storage tank temperature with phase change material was found to be nearly 2.6 to 3.2 times greater than conventional solar water heater and the average temperature of phase change material is 42°C. The test results shows that sample B 80:20 will produces higher amount of hot water and stores the maximum heat compared to sample A 70:30. The results demonstrate that this encapsulated phase change material cylinder stores higher latent heat of fusion and, it can also be used for indirect solar cooking and other low temperature application even at late evenings.
机译:在本研究研究中经过实验测试和研究了在太阳能热水器储存单元中使用硝酸镁六水合物和硫代硫酸钠五水合物盐复合物作为热能储存单元的封装相变材料。进行差分扫描量热法以确定所选混合物的熔化温度,比热容,比例的比例为70:30和80:20重量的性质。对于实验,这两个样品在铝罐中分开储存并填充在储罐中以避免直接热损失。实验测试了在收集器上的不同区域的太阳能热水器的热性能,并在不使用储存罐中使用封装的相变材料进行测试。在太阳能电池收集器中实现的最高温度在罐的中点和46℃下为50℃。发现即使在晚间晚上18.00 ist之后,发现具有相变材料的平均储罐温度比传统的太阳能热水器的平均储罐温度差约为2.6到3.2倍,相变材料的平均温度为42°C。测试结果表明,样品B 80:20将产生较高量的热水并与样品70:30相比储存最大热量。结果表明,这种封装的相变材料汽缸储存了更高的融合热量,也可以用于即使在晚间晚上也可用于间接太阳能烹饪和其他低温施加。

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