Research Article
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Year 2024, Volume: 10 Issue: 6, 1423 - 1439, 19.11.2024

Abstract

References

  • [1] Agrawal R, Singh KDP. Experimental investigation and computational modelling of double slope solar still integrated with eutectic phase change material. J Energy Storage 2022;52:104802. [CrossRef]
  • [2] Katekar VP, Deshmukh SS. A review of the use of phase change materials on performance of solar stills. J Energy Storage 2020;30:101398. [CrossRef]
  • [3] Malaiyappan P, Elumalai N. Review of the productivity of various types of solar stills. Desalin Water Treat 2015;54:3236–3247. [CrossRef]
  • [4] Thakur VK, Gaur MK, Sagar MK, Tiwari GN. A study on heat and mass transfer analysis of solar distillation system. J Therm Engineer 2021;7:1184–1205. [CrossRef]
  • [5] Gaur MK, Tiwari GN, Singh P, Kushwah A. Heat transfer analysis of hybrid active solar still with water flowing over glass cover. J Therm Engineer 2021;7:1329–1343. [CrossRef]
  • [6] Muftah AF, Alghoul MA, Fudholi A, Abdul-Majeed MM, Sopian K. Factors affecting basin type solar still productivity: A detailed review. Renew Sustain Energy Rev 2014;32:430–447. [CrossRef]
  • [7] Dsilva Winfred Rufuss D, Iniyan S, Suganthi L, Davies PA. Solar stills: A comprehensive review of designs, performance and material advances. Renew Sustain Energy Rev 2016;63:464–496. [CrossRef]
  • [8] Rani A, Kant R, Suresh S, Kumar A. Experimental investigation on thermal behavior of hybrid single slope solar still. J Therm Engineer 2021;7:677–689. [CrossRef]
  • [9] Al-Qasaab MR, Abed QA, Abd Al-Wahid WA. Enhancement the solar distiller water by using parabolic dish collector with single slope solar still. J Therm Engineer 2021;7:1001–1015. [CrossRef]
  • [10] Javadi Yanbolagh D, Saraei, Mazaheri H, Mehrabadi SJ. Exergoeconomic, environmental, economic, and energy-matrices (4E) analysis of three solar distillation systems equipped with condenser and different heaters. J Therm Engineer 2021;7:1640–1653. [CrossRef]
  • [11] Kalidasa Murugavel K, Sivakumar S, Riaz Ahamed J, Chockalingam KKSK, Srithar K. Single basin double slope solar still with minimum basin depth and energy storing materials. Appl Energy 2010;87:514–523. [CrossRef]
  • [12] Shanmugan S, Janarthanan B, Chandrasekaran J. Performance of single-slope single-basin solar still with sensible heat storage materials. Desalin Water Treat 2012;41:195–203. [CrossRef]
  • [13] Nian YL, Huo YK, Cheng WL. Study on annual performance of the solar still using shape-stabilized phase change materials with economic analysis. Sol Energy Mater Sol Cells 2021;230:111263. [CrossRef]
  • [14] Sharma A, Tyagi VV, Chen CR, Buddhi D. Review on thermal energy storage with phase change materials and applications. Renew Sustain Energy Rev 2009;13:318–345. [CrossRef]
  • [15] Kabeel AE, Abdelaziz GB, El-Said EMS. Experimental investigation of a solar still with composite material heat storage: Energy, exergy and economic analysis. J Clean Prod 2019;231:21–34. [CrossRef]
  • [16] Kateshia J, Lakhera V. A comparative study of various fatty acids as phase change material to enhance the freshwater productivity of solar still. J Energy Storage 2022;48:103947. [CrossRef]
  • [17] Sonker VK, Chakraborty JP, Sarkar A, Singh RK. Solar distillation using three different phase change materials stored in a copper cylinder. Energy Reports 2019;5:1532–1542. [CrossRef]
  • [18] Cheng WL, Huo YK, Nian YL. Performance of solar still using shape-stabilized PCM: Experimental and theoretical investigation. Desalination 2019;455:89–99. [CrossRef]
  • [19] Malik MZ, Musharavati F, Khanmohammadi S, Khanmohammadi S, Nguyen DD. Solar still desalination system equipped with paraffin as phase change material: exergoeconomic analysis and multi-objective optimization. Environ Sci Pollut Res 2021;28:220–234. [CrossRef]
  • [20] Khandagre M, Gupta B, Bhalavi J, Baredar P. Magnesium sulfate heptahydrate as phase change material in double slope solar still. J Therm Engineer 2021;7:196–214. [CrossRef]
  • [21] Ayoobi A, Ramezanizadeh M. A detailed review investigating the mathematical modeling of solar stills. Front Energy Res 2022;10:1–18. [CrossRef]
  • [22] El-Sebaii AA, Al-Ghamdi AA, Al-Hazmi FS, Faidah AS. Thermal performance of a single basin solar still with PCM as a storage medium. Appl Energy 2009;86:1187–1195. [CrossRef]
  • [23] Dashtban M, Tabrizi FF. Thermal analysis of a weir-type cascade solar still integrated with PCM storage. Desalination 2011;279:415–422. [CrossRef]
  • [24] Ansari O, Asbik M, Bah A, Arbaoui A, Khmou A. Desalination of the brackish water using a passive solar still with a heat energy storage system. Desalination 2013;324:10–20. [CrossRef]
  • [25] Torchia-Núñez JC, Porta-Gándara MA, Cervantes-de Gortari JG. Exergy analysis of a passive solar still. Renew Energy 2008;33:608–616. [CrossRef]
  • [26] Asbik M, Ansari O, Bah A, Zari N, Mimet A, El-Ghetany H. Exergy analysis of solar desalination still combined with heat storage system using phase change material (PCM). Desalination 2016;381:26–37. [CrossRef]
  • [27] Hassan H, Abo-Elfadl S. Effect of the condenser type and the medium of the saline water on the performance of the solar still in hot climate conditions. Desalination 2017;417:60–68. [CrossRef]
  • [28] Altarawneh I, Rawadieh S, Batiha M, Al-Makhadmeh L, Alrowwad S, Tarawneh M. Experimental and numerical performance analysis and optimization of single slope, double slope and pyramidal shaped solar stills. Desalination 2017;423:124–134. [CrossRef]
  • [29] Pal P, Yadav P, Dev R, Singh D. Performance analysis of modified basin type double slope multi–wick solar still. Desalination 2017;422:68–82. [CrossRef]
  • [30] Sarhaddi F, Farshchi Tabrizi F, Aghaei Zoori H, Mousavi SAHS. Comparative study of two weir type cascade solar stills with and without PCM storage using energy and exergy analysis. Energy Conver Manage 2017;133:97–109. [CrossRef]
  • [31] Ranjan KR, Kaushik SC. Energy, exergy and thermo-economic analysis of solar distillation systems: A review. Renew Sustain Energy Rev 2013;27:709–723. [CrossRef]
  • [32] Rejeb O, Yousef MS, Ghenai C, Hassan H, Bettayeb M. Investigation of a solar still behaviour using response surface methodology. Case Stud Therm Engineer 2021;24. [CrossRef]
  • [33] Ben Halima H, Frikha N, Ben Slama R. Numerical investigation of a simple solar still coupled to a compression heat pump. Desalination 2014;337:60–66. [CrossRef]
  • [34] Boubekri M, Chaker A, Cheknane A. Modeling and simulation of the continuous production of an improved solar still coupled with a photovoltaic/thermal solar water heater system. Desalination 2013;331:6–15. [CrossRef]
  • [35] Holman JP, Bhattacharya S. Heat Transfer. New York: McGraw-Hill Companies; 2011.
  • [36] Ranjan KR, Kaushik SC, Panwar NL. Energy and exergy analysis of passive solar distillation systems. Int J Low-Carbon Technol 2016;11:211–221. [CrossRef]
  • [37] Aghaei Zoori H, Farshchi Tabrizi F, Sarhaddi F, Heshmatnezhad F. Comparison between energy and exergy efficiencies in a weir type cascade solar still. Desalination 2013;325:113–121. [CrossRef]

Exergetic performance evaluation of a phase change material integrated solar still

Year 2024, Volume: 10 Issue: 6, 1423 - 1439, 19.11.2024

Abstract

Solar desalination has a significant potential for addressing the increasing water scarcity of the world. Solar stills offer a sustainable solution for desalination of brackish water. Integration of Phase Change Material (PCM) in the still is one of the options for enhancing its productivity. Integration of PCM in solar stills has gained attention due to its capability to efficiently store and release thermal energy thereby enhancing its productivity. The present work proposes a modeling framework for the performance assessment of simple double slope solar stills integrated with PCM. The methodology is based on energy and exergy balance of the overall system. The exergy destruction associated with the still has been evaluated for the basic still and is compared with the case of PCM integrated still. The developed mathematical modeling framework is validated based on comparisons with the experimental observations for the south Indian location of Kozhikode. Lauric acid is considered as the representative PCM due to its favorable thermal properties for the application in solar stills. There is a reasonable agreement between the theoretical and experimental observations. With the incorporation of lauric acid as the PCM in the system, daily yield, daily thermal efficiency and exergy efficiency were found to be increased by 8.9%, 10.6%, and 3% respectively. A generic modelling framework for energy and exergy-based performance assessment of a PCM integrated still has been presented, which will be a useful tool for system optimization. Integration of different PCM with enhanced thermal properties are planned as future work for overall system optimisation for maximum energy efficiency.

References

  • [1] Agrawal R, Singh KDP. Experimental investigation and computational modelling of double slope solar still integrated with eutectic phase change material. J Energy Storage 2022;52:104802. [CrossRef]
  • [2] Katekar VP, Deshmukh SS. A review of the use of phase change materials on performance of solar stills. J Energy Storage 2020;30:101398. [CrossRef]
  • [3] Malaiyappan P, Elumalai N. Review of the productivity of various types of solar stills. Desalin Water Treat 2015;54:3236–3247. [CrossRef]
  • [4] Thakur VK, Gaur MK, Sagar MK, Tiwari GN. A study on heat and mass transfer analysis of solar distillation system. J Therm Engineer 2021;7:1184–1205. [CrossRef]
  • [5] Gaur MK, Tiwari GN, Singh P, Kushwah A. Heat transfer analysis of hybrid active solar still with water flowing over glass cover. J Therm Engineer 2021;7:1329–1343. [CrossRef]
  • [6] Muftah AF, Alghoul MA, Fudholi A, Abdul-Majeed MM, Sopian K. Factors affecting basin type solar still productivity: A detailed review. Renew Sustain Energy Rev 2014;32:430–447. [CrossRef]
  • [7] Dsilva Winfred Rufuss D, Iniyan S, Suganthi L, Davies PA. Solar stills: A comprehensive review of designs, performance and material advances. Renew Sustain Energy Rev 2016;63:464–496. [CrossRef]
  • [8] Rani A, Kant R, Suresh S, Kumar A. Experimental investigation on thermal behavior of hybrid single slope solar still. J Therm Engineer 2021;7:677–689. [CrossRef]
  • [9] Al-Qasaab MR, Abed QA, Abd Al-Wahid WA. Enhancement the solar distiller water by using parabolic dish collector with single slope solar still. J Therm Engineer 2021;7:1001–1015. [CrossRef]
  • [10] Javadi Yanbolagh D, Saraei, Mazaheri H, Mehrabadi SJ. Exergoeconomic, environmental, economic, and energy-matrices (4E) analysis of three solar distillation systems equipped with condenser and different heaters. J Therm Engineer 2021;7:1640–1653. [CrossRef]
  • [11] Kalidasa Murugavel K, Sivakumar S, Riaz Ahamed J, Chockalingam KKSK, Srithar K. Single basin double slope solar still with minimum basin depth and energy storing materials. Appl Energy 2010;87:514–523. [CrossRef]
  • [12] Shanmugan S, Janarthanan B, Chandrasekaran J. Performance of single-slope single-basin solar still with sensible heat storage materials. Desalin Water Treat 2012;41:195–203. [CrossRef]
  • [13] Nian YL, Huo YK, Cheng WL. Study on annual performance of the solar still using shape-stabilized phase change materials with economic analysis. Sol Energy Mater Sol Cells 2021;230:111263. [CrossRef]
  • [14] Sharma A, Tyagi VV, Chen CR, Buddhi D. Review on thermal energy storage with phase change materials and applications. Renew Sustain Energy Rev 2009;13:318–345. [CrossRef]
  • [15] Kabeel AE, Abdelaziz GB, El-Said EMS. Experimental investigation of a solar still with composite material heat storage: Energy, exergy and economic analysis. J Clean Prod 2019;231:21–34. [CrossRef]
  • [16] Kateshia J, Lakhera V. A comparative study of various fatty acids as phase change material to enhance the freshwater productivity of solar still. J Energy Storage 2022;48:103947. [CrossRef]
  • [17] Sonker VK, Chakraborty JP, Sarkar A, Singh RK. Solar distillation using three different phase change materials stored in a copper cylinder. Energy Reports 2019;5:1532–1542. [CrossRef]
  • [18] Cheng WL, Huo YK, Nian YL. Performance of solar still using shape-stabilized PCM: Experimental and theoretical investigation. Desalination 2019;455:89–99. [CrossRef]
  • [19] Malik MZ, Musharavati F, Khanmohammadi S, Khanmohammadi S, Nguyen DD. Solar still desalination system equipped with paraffin as phase change material: exergoeconomic analysis and multi-objective optimization. Environ Sci Pollut Res 2021;28:220–234. [CrossRef]
  • [20] Khandagre M, Gupta B, Bhalavi J, Baredar P. Magnesium sulfate heptahydrate as phase change material in double slope solar still. J Therm Engineer 2021;7:196–214. [CrossRef]
  • [21] Ayoobi A, Ramezanizadeh M. A detailed review investigating the mathematical modeling of solar stills. Front Energy Res 2022;10:1–18. [CrossRef]
  • [22] El-Sebaii AA, Al-Ghamdi AA, Al-Hazmi FS, Faidah AS. Thermal performance of a single basin solar still with PCM as a storage medium. Appl Energy 2009;86:1187–1195. [CrossRef]
  • [23] Dashtban M, Tabrizi FF. Thermal analysis of a weir-type cascade solar still integrated with PCM storage. Desalination 2011;279:415–422. [CrossRef]
  • [24] Ansari O, Asbik M, Bah A, Arbaoui A, Khmou A. Desalination of the brackish water using a passive solar still with a heat energy storage system. Desalination 2013;324:10–20. [CrossRef]
  • [25] Torchia-Núñez JC, Porta-Gándara MA, Cervantes-de Gortari JG. Exergy analysis of a passive solar still. Renew Energy 2008;33:608–616. [CrossRef]
  • [26] Asbik M, Ansari O, Bah A, Zari N, Mimet A, El-Ghetany H. Exergy analysis of solar desalination still combined with heat storage system using phase change material (PCM). Desalination 2016;381:26–37. [CrossRef]
  • [27] Hassan H, Abo-Elfadl S. Effect of the condenser type and the medium of the saline water on the performance of the solar still in hot climate conditions. Desalination 2017;417:60–68. [CrossRef]
  • [28] Altarawneh I, Rawadieh S, Batiha M, Al-Makhadmeh L, Alrowwad S, Tarawneh M. Experimental and numerical performance analysis and optimization of single slope, double slope and pyramidal shaped solar stills. Desalination 2017;423:124–134. [CrossRef]
  • [29] Pal P, Yadav P, Dev R, Singh D. Performance analysis of modified basin type double slope multi–wick solar still. Desalination 2017;422:68–82. [CrossRef]
  • [30] Sarhaddi F, Farshchi Tabrizi F, Aghaei Zoori H, Mousavi SAHS. Comparative study of two weir type cascade solar stills with and without PCM storage using energy and exergy analysis. Energy Conver Manage 2017;133:97–109. [CrossRef]
  • [31] Ranjan KR, Kaushik SC. Energy, exergy and thermo-economic analysis of solar distillation systems: A review. Renew Sustain Energy Rev 2013;27:709–723. [CrossRef]
  • [32] Rejeb O, Yousef MS, Ghenai C, Hassan H, Bettayeb M. Investigation of a solar still behaviour using response surface methodology. Case Stud Therm Engineer 2021;24. [CrossRef]
  • [33] Ben Halima H, Frikha N, Ben Slama R. Numerical investigation of a simple solar still coupled to a compression heat pump. Desalination 2014;337:60–66. [CrossRef]
  • [34] Boubekri M, Chaker A, Cheknane A. Modeling and simulation of the continuous production of an improved solar still coupled with a photovoltaic/thermal solar water heater system. Desalination 2013;331:6–15. [CrossRef]
  • [35] Holman JP, Bhattacharya S. Heat Transfer. New York: McGraw-Hill Companies; 2011.
  • [36] Ranjan KR, Kaushik SC, Panwar NL. Energy and exergy analysis of passive solar distillation systems. Int J Low-Carbon Technol 2016;11:211–221. [CrossRef]
  • [37] Aghaei Zoori H, Farshchi Tabrizi F, Sarhaddi F, Heshmatnezhad F. Comparison between energy and exergy efficiencies in a weir type cascade solar still. Desalination 2013;325:113–121. [CrossRef]
There are 37 citations in total.

Details

Primary Language English
Subjects Thermodynamics and Statistical Physics
Journal Section Articles
Authors

Sudeepthi A. This is me 0000-0002-5061-1913

Arun P. This is me 0000-0003-3018-3680

Publication Date November 19, 2024
Submission Date February 28, 2023
Published in Issue Year 2024 Volume: 10 Issue: 6

Cite

APA A., S., & P., A. (2024). Exergetic performance evaluation of a phase change material integrated solar still. Journal of Thermal Engineering, 10(6), 1423-1439.
AMA A. S, P. A. Exergetic performance evaluation of a phase change material integrated solar still. Journal of Thermal Engineering. November 2024;10(6):1423-1439.
Chicago A., Sudeepthi, and Arun P. “Exergetic Performance Evaluation of a Phase Change Material Integrated Solar Still”. Journal of Thermal Engineering 10, no. 6 (November 2024): 1423-39.
EndNote A. S, P. A (November 1, 2024) Exergetic performance evaluation of a phase change material integrated solar still. Journal of Thermal Engineering 10 6 1423–1439.
IEEE S. A. and A. P., “Exergetic performance evaluation of a phase change material integrated solar still”, Journal of Thermal Engineering, vol. 10, no. 6, pp. 1423–1439, 2024.
ISNAD A., Sudeepthi - P., Arun. “Exergetic Performance Evaluation of a Phase Change Material Integrated Solar Still”. Journal of Thermal Engineering 10/6 (November 2024), 1423-1439.
JAMA A. S, P. A. Exergetic performance evaluation of a phase change material integrated solar still. Journal of Thermal Engineering. 2024;10:1423–1439.
MLA A., Sudeepthi and Arun P. “Exergetic Performance Evaluation of a Phase Change Material Integrated Solar Still”. Journal of Thermal Engineering, vol. 10, no. 6, 2024, pp. 1423-39.
Vancouver A. S, P. A. Exergetic performance evaluation of a phase change material integrated solar still. Journal of Thermal Engineering. 2024;10(6):1423-39.

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