Taeño Maria, Adnan Ariba, Luengo Cristina, Serrano Ángel, Dauvergne Jean-Luc, Crocomo Paola, Huerta Ali, Doppiu Stefania, Palomo Del Barrio Elena
Center for Cooperative Research on Alternative Energies (CIC Energigune), Basque Research and Technology Alliance (BRTA), Alava Technology Park, Albert Einstein 48, 01510 Vitoria-Gasteiz, Spain.
Ikerbasque, Basque Foundation for Science, 48013 Bilbao, Spain.
Nanomaterials (Basel). 2023 Dec 27;14(1):78. doi: 10.3390/nano14010078.
Solid-solid phase-change materials have great potential for developing compact and low-cost thermal storage systems. The solid-state nature of these materials enables the design of systems analogous to those based on natural rocks but with an extraordinarily higher energy density. In this scenario, the evaluation and improvement of the mechanical and thermophysical properties of these solid-solid PCMs are key to exploiting their full potential. In this study, LiNaSO-based composites, comprising porous MgO and expanded graphite (EG) as the dispersed phases and LiNaSO as the matrix, have been prepared with the aim of enhancing the thermophysical and mechanical properties of LiNaSO. The characteristic structure of MgO and the high degree of crystallinity of the EG600 confer on the LiNaSO sample mechanical stability, which leads to an increase in the Young's modulus (almost three times higher) compared to the pure LiNaSO sample. These materials are proposed as a suitable candidate for thermal energy storage applications at high temperatures (400-550 °C). The addition of 5 wt.% of MgO or 5% of EG had a minor influence on the solid-solid phase change temperature and enthalpy; however, other thermal properties such as thermal conductivity or specific heat capacity were increased, extending the scope of PCMs use.
固-固相变材料在开发紧凑且低成本的蓄热系统方面具有巨大潜力。这些材料的固态特性使得能够设计出类似于基于天然岩石的系统,但能量密度却极高。在这种情况下,评估和改善这些固-固相变材料的力学和热物理性能是充分发挥其潜力的关键。在本研究中,制备了以多孔氧化镁(MgO)和膨胀石墨(EG)为分散相、LiNaSO为基体的LiNaSO基复合材料,旨在提高LiNaSO的热物理和力学性能。MgO的特征结构和EG600的高结晶度赋予了LiNaSO样品机械稳定性,与纯LiNaSO样品相比,这导致杨氏模量增加(几乎高出三倍)。这些材料被认为是高温(400 - 550°C)热能存储应用的合适候选材料。添加5 wt.%的MgO或5%的EG对固-固相变温度和焓的影响较小;然而,其他热性能如热导率或比热容有所提高,扩大了相变材料的使用范围。