Research on a Coupled Total-Flow and Single-Flash (TF-SF) System for Power and Freshwater Generation from Geothermal Source
Abstract
:1. Introduction
2. Geothermal Well Analysis
3. System Description
3.1. Total Flow Expansion
3.2. Combined Total Flow and Single Flash (TF-SF) System
4. Modelling Assumptions
5. Modelling
6. Results and Discussions
6.1. System Performance
6.2. Influence of Total-Flow Turbine
7. Conclusions
- (1)
- Under the chosen wellhead conditions, the TF-SF pattern perform better than the traditional single stage system in terms of power generation. Under a wellhead condition in which the pressure, temperature, and mass flowrate are 655.7 kPa/162.3 °C/14.5 kg/s, an optimum system power of 851.1 kW would be reached under this condition even when the TF turbine efficiency is assumed to be as low as 35%.
- (2)
- An effective ηtf of 65% can lead to an optimal power capacity of 933.0 kW, exceeding the traditional SF system by 23.7%, proving a promisingly effective combination of the total flow and single flash (TF-SF) system.
- (3)
- More than one third of total wellhead discharge can be recovered as desalinated freshwater by the naturally equipped condensation process of the power plant. This is an economical way to relieve the water shortage pressure without adding extra desalination equipment and consuming more power.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
TF | Total-flow turbine/expansion |
SF | Single-flash system |
LA | Aluto Langano geothermal field of Ethiopia |
WHP/p | Wellhead pressure (kPa) |
WHT/T | Wellhead temperature (°C) |
WHQ/x | Wellhead vapor quality (-) |
WHM/m | Wellhead mass flowrate (kg/s) |
FW | Freshwater |
P | Power generation (kW) |
h | Enthalpy (kJ/kg) |
S | Entropy (kJ/kg.K) |
H | Turbine efficiency (%) |
References
- DiPippo, R. Geothermal Power Plants, Chapter 1—Geology of Geothermal Regions. In Geothermal Power Plants, 4th ed.; Butterworth-Heinemann: Oxford, UK, 2016; pp. 3–22. [Google Scholar]
- Brandoni, C.; Marchetti, B.; Ciriachi, G.; Polonara, F.; Leporini, M. The impact of renewable energy systems on local sustainability. Int. J. Prod. Qual. Manag. 2016, 18, 385–402. [Google Scholar] [CrossRef]
- Geremew, H. A Study of Thermodynamic Modelling and Gas Extraction System Design for Aluto Langano Geothermal Power Plant in Ethiopia; Geothermal Training Programme: Reykjavik, Iceland, 2012. [Google Scholar]
- DiPippo, R. Chapter 5—Single-Flash Steam Power Plants. In Geothermal Power Plants, 4th ed.; Butterworth-Heinemann: Oxford, UK, 2016; pp. 107–142. [Google Scholar]
- Cerci, Y. Performance evaluation of a single-flash geothermal power plant in Denizli, Turkey. Energy 2003, 28, 27–35. [Google Scholar] [CrossRef]
- DiPippo, R. Geothermal Power Generation: Developments and Innovation; Woodhead Publishing Series in Energy: Number 97; Woodhead Publishing: Sawston, UK, 2016. [Google Scholar]
- Fabris, G. Two phase turbine for cogeneration, geothermal, solar and other applications. FAS Eng. 2006. [Google Scholar]
- Rane, S.; He, L. Two-Phase Flow Analysis and Design of Geothermal Energy Turbine. IOP Conf. Ser. Mater. Sci. Eng. 2019, 604, 012043. [Google Scholar] [CrossRef]
- Akagawa, K.; Fujii, T.; Ohta, J.; Takagi, S. Cycle performance of total flow turbine systems (2nd report, utilization of wet steam). Trans. JSME 1988, 54, 1509–1515. [Google Scholar] [CrossRef]
- Fabris, G. Two-Phase Flow Turbine for Cogeneration, Geothermal, Solar and Other Applications. In Energy Innovations Small Grant (EISG) Program; 2005. [Google Scholar]
- Rubio, J.L.G.; Illescas, F. Test of a total flow helical rotor screw expander at Cerro Prieto, Mexico. Trans. Geotherm. Resour. Counc. 1981, 5, 425–427. [Google Scholar]
- Smith, I.K.; Stosic, N.; Kovacevic, A. An Improved System for Power Recovery from Higher Enthalpy Liquid-Dominated Fields; Geothermal Resources Council: Davis, CA, USA, 2004; Volume 28. [Google Scholar]
- Smith, I.K. Development of the Trilateral Flash Cycle System: Part 1: Fundamental Considerations. Proc. Inst. Mech. Eng. Part A J. Power Energy 1993, 207, 179–194. [Google Scholar] [CrossRef]
- Smith, I.K.; Stosic, N.; Kovacevic, A. Power Recovery from Low Grade Heat by Means of Screw Expanders, 2nd ed.; Chandos Publishing: Oxford, UK, 2014; pp. 127–184. [Google Scholar]
- Grasby, S.E.; Allen, D.M.; Bell, S.; Chen, Z.; Ferguson, G.; Jessop, A.; Raymond, J. Geothermal Energy: An Important Resource; Geological Society of America: Boulder, CO, USA, 2019; Volume 519. [Google Scholar]
- Caldera, U.; Bogdanov, D.; Breyer, C. Renewable Energy Powered Desalination Handbook: Chapter 8—Desalination Costs Using Renewable Energy Technologies. In Renewable Energy Powered Desalination Handbook; Gude, V.G., Ed.; Butterworth-Heinemann: Oxford, UK, 2018; pp. 287–329. [Google Scholar]
- Missimer, T.M.; Choon Ng, K.; Thuw, K.; Wakil Shahzad, M. Geothermal electricity generation and desalination: An integrated process design to conserve latent heat with operational improvements. Desalin. Water Treat. 2016, 57, 23110–23118. [Google Scholar] [CrossRef] [Green Version]
- Lund, J.W.; Boyd, T.L. Direct utilization of geothermal energy 2015 worldwide review. Geothermics 2016, 60, 66–93. [Google Scholar] [CrossRef]
- Date, A.; Date, A.; Akbarzadeh, A. Investigating the potential for using a simple water reaction turbine for power production from low head hydro resources. Energy Convers. Manag. 2013, 66, 257–270. [Google Scholar] [CrossRef]
- Date, A.; Khaghani, A.; Andrews, J.; Akbarzadeh, A. Performance of a rotating two-phase turbine for combined power generation and desalination. Appl. Therm. Eng. 2015, 76, 9–17. [Google Scholar] [CrossRef]
- Zhao, Y.; Akbarzadeh, A.; Andrews, J. Simultaneous desalination and power generation using solar energy. Renew. Energy 2009, 34, 401–408. [Google Scholar] [CrossRef]
- NIST Reference Fluid Thermodynamic and Transport Properties Database, REFPROP Version 9.0. Available online: https://www.nist.gov/srd/refprop (accessed on 12 April 2020).
- Sham, R.; Li, H.; Haiteng, M. CFD modelling and analysis of Two-Phase Geothermal Energy Turbine. In Proceedings of the International Conference on Innovative Applied Energy, IAPE ’19, Oxford, UK, 14–15 March 2019. [Google Scholar]
- Yu, G.; Yu, Z. Investigation of Geothermally Sourced Combined Power and Freshwater Generation Systems. In Proceedings of the Energy Procedia 2018, 10th International Conference on Applied Energy (ICAE2018), Hong Kong, China, 22–25 August 2018. [Google Scholar]
- Alexandre, R.D.; Eylem, K.; Sadiq, J.Z. Reinjection in geothermal fields—A worldwide review update. Renew. Sustain. Energy Rev. 2016, 53, 105–162. [Google Scholar]
- Valgar-đur, S. Geothermal reinjection experience. Geothermics 1997, 26, 99–139. [Google Scholar]
- Eylem, K.; Sadiq, J.Z.; Michael, O. Reinjection in geothermal fields: A review of worldwide experience. Renew. Sustain. Energy Rev. 2011, 15, 47–68. [Google Scholar]
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Yu, G.; Yu, Z. Research on a Coupled Total-Flow and Single-Flash (TF-SF) System for Power and Freshwater Generation from Geothermal Source. Appl. Sci. 2020, 10, 2689. https://doi.org/10.3390/app10082689
Yu G, Yu Z. Research on a Coupled Total-Flow and Single-Flash (TF-SF) System for Power and Freshwater Generation from Geothermal Source. Applied Sciences. 2020; 10(8):2689. https://doi.org/10.3390/app10082689
Chicago/Turabian StyleYu, Guopeng, and Zhibin Yu. 2020. "Research on a Coupled Total-Flow and Single-Flash (TF-SF) System for Power and Freshwater Generation from Geothermal Source" Applied Sciences 10, no. 8: 2689. https://doi.org/10.3390/app10082689
APA StyleYu, G., & Yu, Z. (2020). Research on a Coupled Total-Flow and Single-Flash (TF-SF) System for Power and Freshwater Generation from Geothermal Source. Applied Sciences, 10(8), 2689. https://doi.org/10.3390/app10082689