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2018 | OriginalPaper | Chapter

6. Configurations of Solar Gas Turbines

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Abstract

Components of a gas turbine can be assembled together in many ways, thereby yielding a wide variety of system configurations. It is possible to use multiple units of each type of component (such as compressor, combustor, turbine and shaft). The configuration of a gas turbine, which is also influenced by the intended application, affects the optimal performance of the system. This flexibility in gas turbine configuration provides a good opportunity for the development of the solar gas turbine (SGT) technology. Major configurations of SGTs can be generally classified into solar-only or hybrid categories. Recovery of heat from the exhaust helps to augment the efficiency of the power plant. In this vein, a review of the literature shows that both recuperative and regenerative types of heat exchangers were used on the exit side of the turbine in previous work. Based on the theory of heat exchangers, it is shown in this chapter that recuperative exchangers are most suitable for heat recovery downstream of the turbine. Hybridization and inclusion of a thermal storage unit enhance the performance of SGTs.

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Literature
go back to reference Al-Sulaiman FA, Atif M (2015) Performance comparison of different supercritical carbon dioxide Brayton cycles integrated with a solar power tower. Energy 82:61–71CrossRef Al-Sulaiman FA, Atif M (2015) Performance comparison of different supercritical carbon dioxide Brayton cycles integrated with a solar power tower. Energy 82:61–71CrossRef
go back to reference Bassily A (2004) Performance improvements of the intercooled reheat recuperated gas-turbine cycle using absorption inlet-cooling and evaporative after-cooling. Appl Energy 77:249–272CrossRef Bassily A (2004) Performance improvements of the intercooled reheat recuperated gas-turbine cycle using absorption inlet-cooling and evaporative after-cooling. Appl Energy 77:249–272CrossRef
go back to reference Behar O (2018) A novel hybrid solar preheating gas turbine. Energy Convers Manage 158:120–132CrossRef Behar O (2018) A novel hybrid solar preheating gas turbine. Energy Convers Manage 158:120–132CrossRef
go back to reference Blanco MJ, Santigosa LR (2017) Advances in concentrating solar thermal research and technology. Elsevier, Amsterdam Blanco MJ, Santigosa LR (2017) Advances in concentrating solar thermal research and technology. Elsevier, Amsterdam
go back to reference Campo P, Benitez T, Lee U, Chung J (2015) Modeling of a biomass high temperature steam gasifier integrated with assisted solar energy and a micro gas turbine. Energy Convers Manag 93:72–83CrossRef Campo P, Benitez T, Lee U, Chung J (2015) Modeling of a biomass high temperature steam gasifier integrated with assisted solar energy and a micro gas turbine. Energy Convers Manag 93:72–83CrossRef
go back to reference Çengel YA, Boles M (2007) Thermodynamics: an engineering approach, 6th edn. McGraw-Hill, Boston Çengel YA, Boles M (2007) Thermodynamics: an engineering approach, 6th edn. McGraw-Hill, Boston
go back to reference Chacartegui R, De Escalona JM, Sánchez D, Monje B, Sánchez T (2011) Alternative cycles based on carbon dioxide for central receiver solar power plants. Appl Therm Eng 31:872–879CrossRef Chacartegui R, De Escalona JM, Sánchez D, Monje B, Sánchez T (2011) Alternative cycles based on carbon dioxide for central receiver solar power plants. Appl Therm Eng 31:872–879CrossRef
go back to reference Chen L, Li Y, Sun F, Wu C (2004) Power optimization of open-cycle regenerator gas-turbine power-plants. Appl Energy 78:199–218CrossRef Chen L, Li Y, Sun F, Wu C (2004) Power optimization of open-cycle regenerator gas-turbine power-plants. Appl Energy 78:199–218CrossRef
go back to reference Clemente S, Micheli D, Reini M, Taccani R (2013) Bottoming organic Rankine cycle for a small scale gas turbine: a comparison of different solutions. Appl Energy 106:355–364CrossRef Clemente S, Micheli D, Reini M, Taccani R (2013) Bottoming organic Rankine cycle for a small scale gas turbine: a comparison of different solutions. Appl Energy 106:355–364CrossRef
go back to reference Cohen H, Rogers GF, Saravanamuttoo HI (1996) Gas turbine theory, 4th edn. Longman Group Limited, Essex Cohen H, Rogers GF, Saravanamuttoo HI (1996) Gas turbine theory, 4th edn. Longman Group Limited, Essex
go back to reference Daabo A, Al-Jubori A, Mahmoud S, Al-Dadah R (2017) Development of three-dimensional optimization of a small-scale radial turbine for solar powered Brayton cycle application. Appl Therm Eng 111:718–733CrossRef Daabo A, Al-Jubori A, Mahmoud S, Al-Dadah R (2017) Development of three-dimensional optimization of a small-scale radial turbine for solar powered Brayton cycle application. Appl Therm Eng 111:718–733CrossRef
go back to reference Erbay L, Yavuz H (1999) Analysis of an irreversible Ericsson engine with a realistic regenerator. Appl Energy 62:155–167CrossRef Erbay L, Yavuz H (1999) Analysis of an irreversible Ericsson engine with a realistic regenerator. Appl Energy 62:155–167CrossRef
go back to reference Erbay L, Göktun S, Yavuz H (2001) Optimal design of the regenerative gas turbine engine with isothermal heat addition. Appl Energy 68(3):249–264CrossRef Erbay L, Göktun S, Yavuz H (2001) Optimal design of the regenerative gas turbine engine with isothermal heat addition. Appl Energy 68(3):249–264CrossRef
go back to reference Fernández P, Miller F (2014) Assessment of the overall efficiency of gas turbine-driven CSP plants using small particle solar receivers. Energy Procedia 49:334–343CrossRef Fernández P, Miller F (2014) Assessment of the overall efficiency of gas turbine-driven CSP plants using small particle solar receivers. Energy Procedia 49:334–343CrossRef
go back to reference Garg P, Kumar P, Srinivasan K (2013) Supercritical carbon dioxide Brayton cycle for concentrated solar power. J Supercrit Fluids 76:54–60CrossRef Garg P, Kumar P, Srinivasan K (2013) Supercritical carbon dioxide Brayton cycle for concentrated solar power. J Supercrit Fluids 76:54–60CrossRef
go back to reference Göktun S, Yavuz H (1999) Thermal efficiency of a regenerative Brayton cycle with isothermal heat addition. Energy Convers Manag 40(12):1259–1266CrossRef Göktun S, Yavuz H (1999) Thermal efficiency of a regenerative Brayton cycle with isothermal heat addition. Energy Convers Manag 40(12):1259–1266CrossRef
go back to reference Kang D, Kim T, Hur K, Park J (2012) The effect of firing biogas on the performance and operating characteristics of simple and recuperative cycle gas turbine combined heat and power systems. Appl Energy 93:215–228CrossRef Kang D, Kim T, Hur K, Park J (2012) The effect of firing biogas on the performance and operating characteristics of simple and recuperative cycle gas turbine combined heat and power systems. Appl Energy 93:215–228CrossRef
go back to reference Kaushik S, Tyagi S, Singhal M (2003) Parametric study of an irreversible regenerative Brayton cycle with isothermal heat addition. Energy Convers Manag 44(12):2013–2025CrossRef Kaushik S, Tyagi S, Singhal M (2003) Parametric study of an irreversible regenerative Brayton cycle with isothermal heat addition. Energy Convers Manag 44(12):2013–2025CrossRef
go back to reference Kim K, Perez-Blanco H (2007) Potential of regenerative gas-turbine systems with high fogging compression. Appl Energy 84:16–28CrossRef Kim K, Perez-Blanco H (2007) Potential of regenerative gas-turbine systems with high fogging compression. Appl Energy 84:16–28CrossRef
go back to reference Klein P, Roos TH, Sheer TJ (2014) Experimental investigation into a packed bed thermal storage solution for solar gas turbine systems. Energy Procedia 49:840–849CrossRef Klein P, Roos TH, Sheer TJ (2014) Experimental investigation into a packed bed thermal storage solution for solar gas turbine systems. Energy Procedia 49:840–849CrossRef
go back to reference Klein P, Roos TH, Sheer TJ (2015) Parametric analysis of a high temperature packed bed thermal storage design for a solar gas turbine. Sol Energy 118:59–73CrossRef Klein P, Roos TH, Sheer TJ (2015) Parametric analysis of a high temperature packed bed thermal storage design for a solar gas turbine. Sol Energy 118:59–73CrossRef
go back to reference Madhlopa A, Okoroigwe E (2017) Solar gas turbine systems. In: Abraham M (ed) Encyclopedia of sustainable technologies. Elsevier, Amsterdam, pp 377–388CrossRef Madhlopa A, Okoroigwe E (2017) Solar gas turbine systems. In: Abraham M (ed) Encyclopedia of sustainable technologies. Elsevier, Amsterdam, pp 377–388CrossRef
go back to reference McDonald C, Rodgers C (2008) Small recuperated ceramic microturbine demonstrator concept. Appl Therm Eng 28(1):60–74CrossRef McDonald C, Rodgers C (2008) Small recuperated ceramic microturbine demonstrator concept. Appl Therm Eng 28(1):60–74CrossRef
go back to reference Merchán RP, Santos MJ, Reyes-Ramírez I, Medina A, Hernández AC (2017) Modeling hybrid solar gas-turbine power plants: thermodynamic projection of annual performance and emissions. Energy Convers Manag 134:314–326CrossRef Merchán RP, Santos MJ, Reyes-Ramírez I, Medina A, Hernández AC (2017) Modeling hybrid solar gas-turbine power plants: thermodynamic projection of annual performance and emissions. Energy Convers Manag 134:314–326CrossRef
go back to reference Modi A, Kærn M, Andreasen J, Haglind F (2016) Thermoeconomic optimization of a Kalina cycle for a central receiver concentrating solar power plant. Energy Convers Manag 115:276–287CrossRef Modi A, Kærn M, Andreasen J, Haglind F (2016) Thermoeconomic optimization of a Kalina cycle for a central receiver concentrating solar power plant. Energy Convers Manag 115:276–287CrossRef
go back to reference Nada T (2014) Performance characterization of different configurations of gas turbine engines. Propul Pow Res 3(3):121–132CrossRef Nada T (2014) Performance characterization of different configurations of gas turbine engines. Propul Pow Res 3(3):121–132CrossRef
go back to reference Najjar YS, Zaamout MS (1992) Comparison of single and twin-shaft solar gas turbine systems. Int J Ambient Energy 13:103–111CrossRef Najjar YS, Zaamout MS (1992) Comparison of single and twin-shaft solar gas turbine systems. Int J Ambient Energy 13:103–111CrossRef
go back to reference Nikpey H, Assadi M, Breuhaus P (2013) Development of an optimized artificial neural network model for combined heat and power micro gas turbines. Appl Energy 108:137–148CrossRef Nikpey H, Assadi M, Breuhaus P (2013) Development of an optimized artificial neural network model for combined heat and power micro gas turbines. Appl Energy 108:137–148CrossRef
go back to reference Nishida K, Takagi T, Kinoshita S (2005) Regenerative steam-injection gas-turbine systems. Appl Energy 81(3):231–246CrossRef Nishida K, Takagi T, Kinoshita S (2005) Regenerative steam-injection gas-turbine systems. Appl Energy 81(3):231–246CrossRef
go back to reference Okoroigwe E, Madhlopa A (2016) An integrated combined cycle system driven by a solar tower: a review. Renew Sustain Energy Rev 57:337–350CrossRef Okoroigwe E, Madhlopa A (2016) An integrated combined cycle system driven by a solar tower: a review. Renew Sustain Energy Rev 57:337–350CrossRef
go back to reference Olivenza-León D, Medina A, Hernández A (2015) Thermodynamic modeling of a hybrid solar gas-turbine power plant. Energy Convers Manag 93:435–447CrossRef Olivenza-León D, Medina A, Hernández A (2015) Thermodynamic modeling of a hybrid solar gas-turbine power plant. Energy Convers Manag 93:435–447CrossRef
go back to reference Rogers G, Mahew Y (1992) Engineering thermodynamics: work and heat transfer, 4th edn. Longman, Essex Rogers G, Mahew Y (1992) Engineering thermodynamics: work and heat transfer, 4th edn. Longman, Essex
go back to reference Salpingidou C, Vlahostergios Z, Misirlis D, Donnerhack S, Flouros M, Goulas A, Yakinthos K (2017) Thermodynamic analysis of recuperative gas turbines and aero engines. Appl Therm Eng 124:250–260CrossRef Salpingidou C, Vlahostergios Z, Misirlis D, Donnerhack S, Flouros M, Goulas A, Yakinthos K (2017) Thermodynamic analysis of recuperative gas turbines and aero engines. Appl Therm Eng 124:250–260CrossRef
go back to reference Sánchez-Orgaz S, Medina A, Hernández A (2013) Recuperative solar-driven multi-step gas turbine power plants. Energy Convers Manag 67:171–178CrossRef Sánchez-Orgaz S, Medina A, Hernández A (2013) Recuperative solar-driven multi-step gas turbine power plants. Energy Convers Manag 67:171–178CrossRef
go back to reference Santos MJ, Merchán RP, Medina A, Hernández AC (2016) Seasonal thermodynamic prediction of the performance of a hybrid solar gas-turbine power plant. Energy Convers Manag 115:89–102CrossRef Santos MJ, Merchán RP, Medina A, Hernández AC (2016) Seasonal thermodynamic prediction of the performance of a hybrid solar gas-turbine power plant. Energy Convers Manag 115:89–102CrossRef
go back to reference Sayyaadi H, Mehrabipour R (2012) Efficiency enhancement of a gas turbine cycle using an optimized tubular recuperative heat exchanger. Energy 38:362–375CrossRef Sayyaadi H, Mehrabipour R (2012) Efficiency enhancement of a gas turbine cycle using an optimized tubular recuperative heat exchanger. Energy 38:362–375CrossRef
go back to reference Schwarzbözl P, Buck R, Sugarmen C, Ring A, Crespo MJ, Altwegg P, Enrile J (2006) Solar gas turbine systems: design, cost and perspectives. Sol Energy 80:1231–1240CrossRef Schwarzbözl P, Buck R, Sugarmen C, Ring A, Crespo MJ, Altwegg P, Enrile J (2006) Solar gas turbine systems: design, cost and perspectives. Sol Energy 80:1231–1240CrossRef
go back to reference Semprini S, Sánchez D, Pascale A (2016) Performance analysis of a micro gas turbine and solar dish integrated system under different solar-only and hybrid operating conditions. Sol Energy 132:279–293CrossRef Semprini S, Sánchez D, Pascale A (2016) Performance analysis of a micro gas turbine and solar dish integrated system under different solar-only and hybrid operating conditions. Sol Energy 132:279–293CrossRef
go back to reference Singh D, Pedersen E (2016) A review of waste heat recovery technologies for maritime applications. Energy Convers Manag 111:315–328CrossRef Singh D, Pedersen E (2016) A review of waste heat recovery technologies for maritime applications. Energy Convers Manag 111:315–328CrossRef
go back to reference Wang H, Li XS, Ren X, Gu C, Ji XX (2017) A thermodynamic-cycle performance analysis method and application on a three-shaft gas turbine. Appl Therm Eng 127:465–472CrossRef Wang H, Li XS, Ren X, Gu C, Ji XX (2017) A thermodynamic-cycle performance analysis method and application on a three-shaft gas turbine. Appl Therm Eng 127:465–472CrossRef
go back to reference Xiao G, Yang T, Liu H, Ni D, Ferrari ML, Li M, Luo Z, Cen K, Ni M (2017) Recuperators for micro gas turbines: a review. Appl Energy 197:83–99CrossRef Xiao G, Yang T, Liu H, Ni D, Ferrari ML, Li M, Luo Z, Cen K, Ni M (2017) Recuperators for micro gas turbines: a review. Appl Energy 197:83–99CrossRef
go back to reference Xu Y, Yu P, Zhu Z, Yuan C, Zhang T (2017) Over-reading modeling of the ultrasonic flow meter in wet gas measurement. Meas 98:17–24CrossRef Xu Y, Yu P, Zhu Z, Yuan C, Zhang T (2017) Over-reading modeling of the ultrasonic flow meter in wet gas measurement. Meas 98:17–24CrossRef
go back to reference Zornek T, Monz T, Aigner M (2015) Performance analysis of the micro gas turbine Turbec T100 with a new FLOX-combustion system for low calorific fuels. Appl Energy 159:276–284CrossRef Zornek T, Monz T, Aigner M (2015) Performance analysis of the micro gas turbine Turbec T100 with a new FLOX-combustion system for low calorific fuels. Appl Energy 159:276–284CrossRef
Metadata
Title
Configurations of Solar Gas Turbines
Author
Amos Madhlopa
Copyright Year
2018
DOI
https://doi.org/10.1007/978-3-319-68388-1_6