Rolka Paulina, Kwidzinski Roman, Przybylinski Tomasz, Tomaszewski Adam
Institute of Fluid Flow Machinery, Polish Academy of Sciences, 80-231 Gdansk, Poland.
Materials (Basel). 2021 Dec 1;14(23):7371. doi: 10.3390/ma14237371.
To reduce energy consumption and increase energy efficiency in the building sector, thermal energy storage with phase change materials (PCMs) is used. The knowledge of the thermophysical properties and the characteristics of PCMs (like their enthalpy changes and the distribution of stored energy over a specified temperature range) is essential for proper selection of the PCM and optimal design of the latent thermal energy store (LHTES). This paper presents experimental tests of the thermophysical properties of three medium-temperature PCMs: OM65, OM55, RT55, which can be used in domestic hot water installations and heating systems. Self-made test chambers with temperature control using Peltier cells were used to perform measurements according to the T-history method. In this way the temperature range of the phase transition, latent heat, specific heat capacity, enthalpy and the distributions of stored energy of the three PCMs were determined. The paper also presents measurements of the thermal conductivity of these PCMs in liquid and solid state using a self-made pipe Poensgen apparatus. The presented experimental tests results are in good agreement with the manufacturers' data and the results of other researchers obtained with the use of specialized instruments. The presented research results are intended to help designers in the selection of the right PCM for the future LHTES co-working with renewable energy systems, waste heat recovery systems and building heating systems.
为了降低建筑领域的能源消耗并提高能源效率,人们采用了相变材料(PCM)进行热能存储。了解PCM的热物理性质和特性(如它们的焓变以及在特定温度范围内存储能量的分布)对于正确选择PCM和优化潜热储能系统(LHTES)的设计至关重要。本文介绍了三种中温PCM(OM65、OM55、RT55)热物理性质的实验测试,这些PCM可用于家庭热水装置和供暖系统。使用带有珀尔帖电池温度控制的自制测试腔,根据温度历史法进行测量。通过这种方式,确定了三种PCM的相变温度范围、潜热、比热容、焓以及存储能量的分布。本文还使用自制的管状Poensgen装置测量了这些PCM在液态和固态下的热导率。所呈现的实验测试结果与制造商的数据以及其他研究人员使用专业仪器获得的结果吻合良好。所呈现的研究结果旨在帮助设计师为未来与可再生能源系统、废热回收系统和建筑供暖系统协同工作的LHTES选择合适的PCM。