An Experimental Study to Improve Solar Heating Water Using PCM and Integrated with Helical Heat Exchanger

Fahad Fahad, I. Koc
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Abstract

Solar energy can only be used when it's sunny outside. Therefore, solar heating is only efficient during the day and decreases at night or on overcast days. Consumer energy needs have a distinct seasonal structure, and solar energy cannot completely meet those needs. In order to satisfy customer demand, energy storage is essential. In order to maximize the use of solar energy and to increase the energy and efficiency of the solar absorption system, superior thermal properties of sophisticated materials, such as phase change materials, are important [1]. In the current study, 20 kg of phase change material (PCM) is integrated with solar water heating and fed into a storage tank to enhance the solar water heating efficiency. Helical coil heat exchangers were added to the storage tank as an external load. The trials were conducted in four separate months (September 2021, April, May, and June 2022) that were chosen on the first day. The effectiveness, heat gain, and significance of the phase change material in increasing heating efficiency throughout the day were studied using a range of variables, including water volume flow rate (2, 3, 4, 6, and 8 L/min) and inlet water temperature (25, 30, and 35 °C). The results showed that, given an initial temperature of 25 °C, the daily efficiency range, was 0.58 to 0.65, and that the daily final outlet temperature was enhanced outlet temperature over 65 °C. Additionally, on all test days, the heat released by the phase change material was audible in the evening and increased the utilization time.
利用PCM与螺旋换热器集成改善太阳能热水的实验研究
太阳能只能在外面阳光明媚的时候使用。因此,太阳能加热只在白天有效,而在夜间或阴天则会下降。消费者的能源需求具有明显的季节性结构,太阳能不能完全满足这些需求。为了满足客户需求,储能是必不可少的。为了最大限度地利用太阳能,提高太阳能吸收系统的能量和效率,相变材料等复杂材料的优越热性能非常重要[1]。在本研究中,将20kg相变材料(PCM)与太阳能热水集成,并送入储罐,以提高太阳能热水效率。将螺旋盘管式热交换器作为外部负载添加到储罐中。试验在第一天选定的四个月(2021年9月、2022年4月、5月和6月)进行。通过一系列变量,包括水体积流量(2、3、4、6和8升/分钟)和进水温度(25、30和35°C),研究了相变材料在提高全天加热效率方面的有效性、热增益和重要性。结果表明,在初始温度为25℃时,日效率范围为0.58 ~ 0.65,日最终出口温度在65℃以上得到增强。此外,在所有的测试日,相变材料释放的热量在晚上都可以听到,增加了利用时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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