Abengoa Energía, c/Energía Solar 1, 41012 Sevilla, Spain.
Department of Energy Engineering, University of Seville, Camino de los Descubrimientos s/n, 41092 Sevilla, Spain.
Molecules. 2021 Feb 26;26(5):1260. doi: 10.3390/molecules26051260.
The high intermittency of solar energy is still a challenge yet to be overcome. The use of thermal storage has proven to be a good option, with phase change materials (PCM) as very promising candidates. Nevertheless, PCM compounds have typically poor thermal conductivity, reducing their attractiveness for commercial uses. This paper demonstrates the viability of increasing the PCM effective thermal conductivity to industrial required values (around 4 W/m·K) by using metal wool infiltrated into the resin under vacuum conditions. To achieve this result, the authors used an inert resin, decoupling the specific PCM material selection from the enhancement effect of the metal wools. To ensure proper behavior of the metal wool under standard industrial environments at a broad range of temperatures, a set of analyses were performed at high temperatures and an inert atmosphere, presenting a thorough analysis of the obtained results.
太阳能的间歇性高仍然是一个有待克服的挑战。热存储已被证明是一个很好的选择,而相变材料(PCM)则是非常有前途的候选材料。然而,PCM 化合物通常具有较差的导热性,这降低了它们在商业应用中的吸引力。本文通过在真空条件下将金属羊毛渗透到树脂中来证明可以将 PCM 的有效导热系数提高到工业所需的值(约 4 W/m·K)。为了实现这一结果,作者使用了一种惰性树脂,将特定 PCM 材料的选择与金属羊毛的增强效果分离。为了确保金属羊毛在标准工业环境下在广泛的温度范围内的正常运行,在高温和惰性气氛下进行了一系列分析,对获得的结果进行了全面的分析。