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Multi-aspect evaluation and optimization of a tri-generation scheme integrating a geothermal power plant with a salinity-gradient solar pond

Author

Listed:
  • Yu, Siming
  • Chen, Rui
  • Zhao, Zhilong
  • Wei, Fang

Abstract

The present study deals with the investigation of a tri-generation layout driven by geothermal and solar energy to produce electricity, cooling, and freshwater. The geothermal plant is composed of a steam flash cycle (SFC), a modified Kalina cycle (MKC), and a subsystem based on liquefied natural gas (LNG). In the configuration, the heat from a salinity-gradient solar pond (SGSP) is utilized to generate power in a trilateral cycle (TLC). The waste heat of the SFC, MKC, and TLC is recuperated by three thermoelectric generators (TEGs). The sum of electricity produced by the SFC and TLC is employed to desalinate seawater by a reverse osmosis system. Moreover, the output power of the Kalina-LNG cycle is considered the electricity production of the configuration. The favorable cooling is produced through the evaporator of the MKC. The system evaluation contains thermodynamic and exergy-economic analyses and three-objective optimization of the configuration utilizing two scenarios. The outcomes of the first optimization scenario reveal an exergy efficiency (ηex) of 27.92 %, a total cost rate (C˙tot) of 267.5 $h−1, a payback period of 0.358 years, and a specific cost of tri-generation (ctri) of 21.09 $GJ−1 for the system. However, these values were calculated as 31.6 %, 278.4 $h−1, 0.408 years, and 19.46 $GJ−1, respectively, for the second optimization scenario. These values suggest a proper thermodynamic performance with regard to the type of heat sources and a suitable economic performance since one of the system products is freshwater. ηex and specific cost of products improve compared to the SGSP-based systems thanks to the combination of the SGSP system and the geothermal plant.

Suggested Citation

  • Yu, Siming & Chen, Rui & Zhao, Zhilong & Wei, Fang, 2025. "Multi-aspect evaluation and optimization of a tri-generation scheme integrating a geothermal power plant with a salinity-gradient solar pond," Energy, Elsevier, vol. 320(C).
  • Handle: RePEc:eee:energy:v:320:y:2025:i:c:s036054422500876x
    DOI: 10.1016/j.energy.2025.135234
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    References listed on IDEAS

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    1. Zhu, Jialing & Hu, Kaiyong & Zhang, Wei & Lu, Xinli, 2017. "A study on generating a map for selection of optimum power generation cycles used for Enhanced Geothermal Systems," Energy, Elsevier, vol. 133(C), pages 502-512.
    2. Ghaebi, Hadi & Rostamzadeh, Hadi, 2020. "Performance comparison of two new cogeneration systems for freshwater and power production based on organic Rankine and Kalina cycles driven by salinity-gradient solar pond," Renewable Energy, Elsevier, vol. 156(C), pages 748-767.
    3. Zhou, Jincheng & Hai, Tao & Ali, Masood Ashraf & Shamseldin, Mohamed A. & Almojil, Sattam Fahad & Almohana, Abdulaziz Ibrahim & Alali, Abdulrhman Fahmi, 2023. "Waste heat recovery of a wind turbine for poly-generation purpose: Feasibility analysis, environmental impact assessment, and parametric optimization," Energy, Elsevier, vol. 263(PD).
    4. Habibi, Hamed & Chitsaz, Ata & Javaherdeh, Koroush & Zoghi, Mohammad & Ayazpour, Mojtaba, 2018. "Thermo-economic analysis and optimization of a solar-driven ammonia-water regenerative Rankine cycle and LNG cold energy," Energy, Elsevier, vol. 149(C), pages 147-160.
    5. Ziapour, Behrooz M. & Shokrnia, Mehdi & Naseri, Mohammad, 2016. "Comparatively study between single-phase and two-phase modes of energy extraction in a salinity-gradient solar pond power plant," Energy, Elsevier, vol. 111(C), pages 126-136.
    6. Zhou, Yuhong & Li, Shanshan & Sun, Lei & Zhao, Shupeng & Ashraf Talesh, Seyed Saman, 2020. "Optimization and thermodynamic performance analysis of a power generation system based on geothermal flash and dual-pressure evaporation organic Rankine cycles using zeotropic mixtures," Energy, Elsevier, vol. 194(C).
    7. Ghaebi, Hadi & Parikhani, Towhid & Rostamzadeh, Hadi & Farhang, Behzad, 2017. "Thermodynamic and thermoeconomic analysis and optimization of a novel combined cooling and power (CCP) cycle by integrating of ejector refrigeration and Kalina cycles," Energy, Elsevier, vol. 139(C), pages 262-276.
    8. Rostamzadeh, Hadi & Nourani, Pejman, 2019. "Investigating potential benefits of a salinity gradient solar pond for ejector refrigeration cycle coupled with a thermoelectric generator," Energy, Elsevier, vol. 172(C), pages 675-690.
    9. Zare, V. & Mahmoudi, S.M.S. & Yari, M., 2013. "An exergoeconomic investigation of waste heat recovery from the Gas Turbine-Modular Helium Reactor (GT-MHR) employing an ammonia–water power/cooling cycle," Energy, Elsevier, vol. 61(C), pages 397-409.
    10. Mahmoudan, Alireza & Samadof, Parviz & Hosseinzadeh, Siamak & Garcia, Davide Astiaso, 2021. "A multigeneration cascade system using ground-source energy with cold recovery: 3E analyses and multi-objective optimization," Energy, Elsevier, vol. 233(C).
    11. Abdolalipouradl, Mehran & Mohammadkhani, Farzad & Khalilarya, Shahram, 2020. "A comparative analysis of novel combined flash-binary cycles for Sabalan geothermal wells: Thermodynamic and exergoeconomic viewpoints," Energy, Elsevier, vol. 209(C).
    12. Mokarram, N. Hassani & Mosaffa, A.H., 2018. "A comparative study and optimization of enhanced integrated geothermal flash and Kalina cycles: A thermoeconomic assessment," Energy, Elsevier, vol. 162(C), pages 111-125.
    13. Nafey, A.S. & Sharaf, M.A., 2010. "Combined solar organic Rankine cycle with reverse osmosis desalination process: Energy, exergy, and cost evaluations," Renewable Energy, Elsevier, vol. 35(11), pages 2571-2580.
    14. Li, Jiaojiao & Zoghi, Mohammad & Zhao, Linfeng, 2022. "Thermo-economic assessment and optimization of a geothermal-driven tri-generation system for power, cooling, and hydrogen production," Energy, Elsevier, vol. 244(PB).
    15. M. A. Ehyaei & Simin Baloochzadeh & A. Ahmadi & Stéphane Abanades, 2021. "Energy, exergy, economic, exergoenvironmental, and environmental analyses of a multigeneration system to produce electricity, cooling, potable water, hydrogen and sodium-hypochlorite," Post-Print hal-03221045, HAL.
    16. Zhou, Zongming & Cao, Yan & Anqi, Ali E. & Zoghi, Mohammad & Habibi, Hamed & Rajhi, Ali A. & Alamri, Sagr, 2022. "Converting a geothermal-driven steam flash cycle into a high-performance polygeneration system by waste heat recovery: 3E analysis and Genetic-Fgoalattain optimization," Renewable Energy, Elsevier, vol. 186(C), pages 609-627.
    17. V. Srinivasan & Allan Shocker, 1973. "Linear programming techniques for multidimensional analysis of preferences," Psychometrika, Springer;The Psychometric Society, vol. 38(3), pages 337-369, September.
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    1. Rami, Yassine & Allouhi, Amine & Allouhi, Hamza, 2025. "Multi-objective optimization of a novel polygeneration concept integrating geothermal-solar hybrid thermodynamic cycle with PV-powered CO2 refrigeration for cleaner electricity, heat and cold production," Energy, Elsevier, vol. 340(C).
    2. Ahmed, Omer K. & Algburi, Sameer & Daoud, Raid W. & Khaoula, Hidouri & Hamada, Khalaf I. & Shubat, Hawazen N., 2026. "Hybrid salinity gradient solar ponds: A short review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 226(PD).

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