Thermal analysis of phase change materials storage in solar concenter

被引:0
作者
Al-Hashmi S. [1 ,2 ]
Chen M. [3 ]
机构
[1] Sultan Qaboos University, Center for Environmental Studies and Research, Muscat
[2] University of Leeds, Energy Research Institute, Leeds
[3] Sultan Qaboos University, Water Research Center, Muscat
来源
Journal of Energy Systems | 2023年 / 7卷 / 03期
关键词
Heat analysis; Phase change materials; Thermal storage;
D O I
10.30521/jes.1082104
中图分类号
学科分类号
摘要
Thermal analysis of high-temperature phase change materials (PCM) is conducted with the consideration of a 20% void and buoyancy-driven convection in a stainless-steel capsule. The effects of the thermal expansion and the volume expansion due to phase change on the energy storage and retrieval process are explored. The used water to fill the void between two different wax paraffin and stearic acid spheres is considered as a potential PCM for concentrated solar power. The charging/discharging process into and from the capsule wall is simulated under different boundary conditions for laminar and turbulent flows. Computational models are conducted by applying an enthalpy-porosity method and volume of fluid method to calculate the transport phenomena within the PCM capsule, including an internal air void. A simplified two-dimensional model of the PCM contained within the spheres is constructed and thermal analyses are performed for the transition from solid to liquid states. Simulated charging process modes are compared with the theory. According to experiments, the temperature distributions from 40-60 mm without and with 60 mm with copper fin have different behavior. The paraffin takes less time than stearic acid for total transformation at a rate of 0.5. The size of the sphere increases over the amount of time and the phase of the sphere to complete changes as stearic acid expands more than paraffin during the transition. Inserting a rectangular fin, that is made from copper into the ball reduces the cycle time and increases output. © 2023 The Journal of Rheumatology.
引用
收藏
页码:302 / 314
页数:12
相关论文
共 24 条
[1]  
Kalbande VP, Fating G, Mohan M, Rambhad K, Sinha AK., Experimental and theoretical study for suitability of hybrid nano-enhanced phase change material for thermal energy storage applications, Journal of Energy Storage, 51, (2022)
[2]  
Sharma A, Chen CR, Murty VVS, Shukla A., A review of thermal energy storage designs, heat storage materials, and cooking performance of solar cookers with heat storage, Renewable and Sustainable Energy Reviews, 13, 6-7, pp. 1599-1605, (2009)
[3]  
Lentswe K, Mawire A, Owusu P, Shobo A., A review of parabolic solar cookers with thermal energy storage, Heliyon, 7, 10, (2021)
[4]  
Cruickshank CA, Baldwin C., Sensible Thermal Energy Storage: Diurnal and Seasonal, Storing Energy, pp. 291-311, (2016)
[5]  
Tendulkar R, Doupis D, Clark M, Joshi A, Wang C., Transient Simulation of High-Temperature High-Pressure Solar Tower Receiver, Energy Procedia, 69, pp. 1451-1460, (2015)
[6]  
Olsthoorn D, Haghighat F, Moreau A, Joybari MM, Robichaud M., Integration of electrically activated concrete slab for peak shifting in a light-weight residential building-Determining key parameters, Journal of Energy Storage, 23, pp. 329-343, (2019)
[7]  
Nallusamy N, Sampath S, Velraj R., Study on the performance of a packed bed latent heat thermal energy storage unit integrated with solar water heating system, Journal of Zhejiang University: Science, 7, 8, pp. 1422-1430, (2006)
[8]  
Merchan RP, Santos MJ, Medina A, Calvo Hernandez A., High temperature central tower plants for concentrated solar power: 2021 overview, Renewable and Sustainable Energy Reviews, 155, (2022)
[9]  
Onokwai AO, Okonkwo UC, Osueke CO, Okafor CE, Olayanju TMA, Dahunsi SO., Design, modelling, energy and exergy analysis of a parabolic cooker, Renewable Energy, 142, pp. 497-510, (2019)
[10]  
Beemkumar N, Karthikeyan A., Experimental Investigation on Enhancement of Heat Transfer in Thermal Energy Storage System Using Paraffin Wax as PCM, Applied Mechanics and Materials, 766-767, pp. 457-462, (2015)