Li Min, Mu Boyuan
Jiangsu Key Laboratory for Construction Materials, Southeast University, Nanjing 211189, People's Republic of China.
R Soc Open Sci. 2019 Jan 23;6(1):181664. doi: 10.1098/rsos.181664. eCollection 2019 Jan.
In this paper, diatomite-based composite phase change materials (DI-based CPCMs) were fabricated by the vacuum impregnation of capric acid (CA) into reduced graphene oxide decorated diatomite (rGO-DI). In the DI-based CPCMs, DI was used as the supporting material, which was first purified by thermal treatment and alkali treatment, to improve the adsorption capacity of the PCM, rGO was used to decorate the DI to improve the thermal conductivity of CPCMs. The rGO-DI could retain CA at the weight fraction of 60% without leakage. The maximum melting and freezing enthalpy of CA/rGO-DI-2 reached 106.2 J g and 108.6 J g, respectively, and its thermal conductivity was up to 0.5226 W m · K, 260.4% and 81.3% higher than pure CA and CA/DI, respectively. The CPCMs have good thermal reliability and thermal stability, and there was no chemical reaction between CA and rGO-DI. The CPCMs maintained thermal properties after 200 melting-freezing cycles. Finally, the CPCMs have potential for application in solar energy storage systems.
在本文中,通过将癸酸(CA)真空浸渍到还原氧化石墨烯修饰的硅藻土(rGO-DI)中制备了硅藻土基复合相变材料(DI基CPCM)。在DI基CPCM中,硅藻土用作支撑材料,首先通过热处理和碱处理进行纯化,以提高相变材料的吸附容量,还原氧化石墨烯用于修饰硅藻土以提高CPCM的热导率。rGO-DI能够在60%的重量分数下保留癸酸而不泄漏。CA/rGO-DI-2的最大熔化焓和凝固焓分别达到106.2 J/g和108.6 J/g,其热导率高达0.5226 W/(m·K),分别比纯CA和CA/DI高260.4%和81.3%。该CPCM具有良好的热可靠性和热稳定性,并且CA与rGO-DI之间没有化学反应。经过200次熔化-凝固循环后,CPCM仍保持热性能。最后,该CPCM在太阳能存储系统中具有应用潜力。