A Numerical Study to Improve the Efficiency of Solar Collector used for water heating using Phase Change Material

Authors

  • Hazim A. Al-Zurfi Department of Technical Power Mechanics, Al-Najaf Technical Institute, Al-Furat Al-Awsat Technical University (ATU), Najaf, Iraq
  • Muna Ali Talib Department of Technical Power Mechanics, Technical Engineering College/ Najaf, Al-Furat Al-Awsat Technical University (ATU), Najaf, Iraq
  • Qasim H. Hassan Department of Technical Power Mechanics, Al-Najaf Technical Institute, Al-Furat Al-Awsat Technical University (ATU), Najaf, Iraq
  • Ghaith J. Aljabri Department of Technical Power Mechanics, Technical Engineering College/ Najaf, Al-Furat Al-Awsat Technical University (ATU), Najaf, Iraq

DOI:

https://doi.org/10.37934/arnht.17.1.113

Keywords:

Solar water heater, PCM, Latent heat storage, Thermal energy storage, Flat plate collector

Abstract

Solar water heaters are an effective technology for harnessing renewable solar energy to provide hot water for households and businesses. However, their efficiency can be impacted by factors like intermittent sunshine, heat losses, and low radiation intensity. The aim of this study is to increase the efficiency of solar water heaters through the use of phase change materials (PCMs). PCMs have the ability to store latent heat during phase change, releasing it later when needed. This study uses numerical simulations to analyze the effect of integrating different PCMs into a flat plate solar collector design. The findings could then be validated experimentally and applied to improve the real-world performance of solar water heating systems. The PCMs are placed inside the collector to absorb heat during the day and release it after sunset to continue heating the water. The research seeks to determine the optimal PCM properties, structure, and placement within the collector to maximize heat storage and transfer. The efficiency and performance of the solar collector system with different PCM configurations have been compared to those of a conventional collector without PCM. The outcomes uncover that the use of suitable PCMs can significantly improve the efficiency and heat output of the solar collector, especially during periods of low radiation and after sunset. The optimal PCM configuration maintains higher water temperatures for longer, allowing solar water heating to continue into the evening. The results may provide valuable insights for using PCMs to boost the efficiency of solar thermal technologies

Author Biography

Muna Ali Talib , Department of Technical Power Mechanics, Technical Engineering College/ Najaf, Al-Furat Al-Awsat Technical University (ATU), Najaf, Iraq

w_huajun@yahoo.com

References

Jamar, A. M. Z. A. A., Z. A. A. Majid, W. H. Azmi, M. Norhafana, and A. A. Razak. "A review of water heating system for solar energy applications." International Communications in Heat and Mass Transfer 76 (2016): 178-187. https://doi.org/10.1016/j.icheatmasstransfer.2016.05.028

Beausoleil-Morrison, Ian, Briana Kemery, Adam D. Wills, and Curtis Meister. "Design and simulated performance of a solar-thermal system employing seasonal storage for providing the majority of space heating and domestic hot water heating needs to a single-family house in a cold climate." Solar Energy 191 (2019): 57-69. https://doi.org/10.1016/j.solener.2019.08.034

Pathak, Sudhir Kumar, V. V. Tyagi, K. Chopra, R. Rejikumar, and A. K. Pandey. "Integration of emerging PCMs and nano-enhanced PCMs with different solar water heating systems for sustainable energy future: A systematic review." Solar Energy Materials and Solar Cells 254 (2023): 112237. https://doi.org/10.1016/j.solmat.2023.112237

Ahmed, Shams Forruque, Nazifa Rafa, Tabassum Mehnaz, Bushra Ahmed, Nafisa Islam, M. Mofijur, Anh Tuan Hoang, and G. M. Shafiullah. "Integration of phase change materials in improving the performance of heating, cooling, and clean energy storage systems: An overview." Journal of Cleaner Production 364 (2022): 132639. https://doi.org/10.1016/j.jclepro.2022.132639

Zalba, Belen, José Ma Marı́n, Luisa F. Cabeza, and Harald Mehling. "Review on thermal energy storage with phase change: materials, heat transfer analysis and applications." Applied thermal engineering 23, no. 3 (2003): 251-283. https://doi.org/10.1016/S1359-4311(02)00192-8

Hasnain, S. M. "Review on sustainable thermal energy storage technologies, Part II: cool thermal storage." Energy conversion and management 39, no. 11 (1998): 1139-1153. https://doi.org/10.1016/S0196-8904(98)00024-7

Elias, Charalambos N., and Vassilis N. Stathopoulos. "A comprehensive review of recent advances in materials aspects of phase change materials in thermal energy storage." Energy Procedia 161 (2019): 385-394. https://doi.org/10.1016/j.egypro.2019.02.101

Salunkhe, Pramod B., and Prashant S. Shembekar. "A review on effect of phase change material encapsulation on the thermal performance of a system." Renewable and sustainable energy reviews 16, no. 8 (2012): 5603-5616. https://doi.org/10.1016/j.rser.2012.05.037

Alam, Tanvir E., Jaspreet S. Dhau, D. Yogi Goswami, and Elias Stefanakos. "Macroencapsulation and characterization of phase change materials for latent heat thermal energy storage systems." Applied Energy 154 (2015): 92-101. https://doi.org/10.1016/j.apenergy.2015.04.086

Silva, Tiago, Romeu Vicente, and Fernanda Rodrigues. "Literature review on the use of phase change materials in glazing and shading solutions." Renewable and Sustainable Energy Reviews 53 (2016): 515-535. https://doi.org/10.1016/j.rser.2015.07.201

Yang, Li Wei, Rong Ji Xu, Wen Bin Zhou, Yan Li, Tong Yang, and Hua Sheng Wang. "Investigation of solar assisted air source heat pump heating system integrating compound parabolic concentrator-capillary tube solar collectors." Energy Conversion and Management 277 (2023): 116607. https://doi.org/10.1016/j.enconman.2022.116607

Yang, Li, Nan Zhang, Yanping Yuan, Fariborz Haghighat, Mohamed Dardir, Karthik Panchabikesan, and Qinrong Sun. "A double-glazed solar air-phase change material collector for nocturnal heating: Model development and sensitivity analysis." Energy and Buildings 289 (2023): 113070. https://doi.org/10.1016/j.enbuild.2023.113070

Araújo, António, Ana C. Ferreira, Carlos Oliveira, Rui Silva, and Vítor Pereira. "Optimization of collector area and storage volume in domestic solar water heating systems with on–off control—A thermal energy analysis based on a pre-specified system performance." Applied Thermal Engineering 219 (2023): 119630. https://doi.org/10.1016/j.applthermaleng.2022.119630

Yehualashet, Kalkidan Nigussie, O. Fatoba, and Salamlak Mulu Asfaw. "Experimental study and numerical analysis of thermal performance of corrugated plate solar collector." Materials Today: Proceedings 62 (2022): 2849-2856. https://doi.org/10.1016/j.matpr.2022.02.414

Oudaoui, K., and M. Faraji. "Numerical Study of Latent Heat Discharge of a Phase Change Material Shell-and-Tube Thermal Energy Storage System." In International Moroccan Congress of Mechanics, pp. 151-159. Cham: Springer Nature Switzerland, 2022. https://doi.org/10.1007/978-3-031-46973-2_14

Elmnefi, Mohamed, and Waqas Al-Khazraji. "Numerical and experimental studies of thermal performance enhancement for parabolic trough solar collector using none-circulated CuO/synthetic oil nanofluid." International Journal of Numerical Methods for Heat & Fluid Flow (2023). https://doi.org/10.1108/HFF-11-2022-0659

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Published

2024-03-03

How to Cite

Hazim A. Al-Zurfi, Muna Ali Talib, Qasim H. Hassan, & Ghaith J. Aljabri. (2024). A Numerical Study to Improve the Efficiency of Solar Collector used for water heating using Phase Change Material. Journal of Advanced Research in Numerical Heat Transfer, 17(1), 1–13. https://doi.org/10.37934/arnht.17.1.113

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