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Thermodynamic and economic analysis of a gas turbine set coupled with a turboexpander in a hierarchical gas-gas system

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  • Bartnik, Ryszard
  • Hnydiuk-Stefan, Anna
  • Buryn, Zbigniew

Abstract

Investment per specific electric capacity of power plants and combined heat and power plants operating exclusively according to the Joule cycle (Simple Cycle Power Plants) is more than two times lower compared to combined gas-steam systems. This paper discusses a system comprising a turboexpander with a compressor and an air heater installed instead of a steam turbine. The results of thermodynamic calculations carried out for many alternatives gas turbine designs, including ones with and without heat regeneration and for hierarchical gas-gas system are analyzed. Using energy balances, the energy efficiency of various configurations of systems was calculated. In the presented economic calculations, aspects related to the ratio of the annual electricity production to the annual heat production play the role of important factors, as technology applied in combined heat and electricity generation, system energy efficiency, specific investment and sales price of the generated electricity determine the results. From the calculations we can see that the gas-gas system is more economically feasible than the gas-steam system in terms of heat production. With regard to electricity production, the gas-steam system is slightly more profitable than the gas-gas system. This advantage decreases along with the decrease in the gas price.

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  • Bartnik, Ryszard & Hnydiuk-Stefan, Anna & Buryn, Zbigniew, 2020. "Thermodynamic and economic analysis of a gas turbine set coupled with a turboexpander in a hierarchical gas-gas system," Energy, Elsevier, vol. 190(C).
  • Handle: RePEc:eee:energy:v:190:y:2020:i:c:s0360544219320894
    DOI: 10.1016/j.energy.2019.116394
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    References listed on IDEAS

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    1. Amiri Rad, Ehsan & Kazemiani-Najafabadi, Parisa, 2017. "Thermo-environmental and economic analyses of an integrated heat recovery steam-injected gas turbine," Energy, Elsevier, vol. 141(C), pages 1940-1954.
    2. Vera, David & Jurado, Francisco & Carpio, José & Kamel, Salah, 2018. "Biomass gasification coupled to an EFGT-ORC combined system to maximize the electrical energy generation: A case applied to the olive oil industry," Energy, Elsevier, vol. 144(C), pages 41-53.
    3. Kotowicz, Janusz & Brzęczek, Mateusz & Job, Marcin, 2018. "The thermodynamic and economic characteristics of the modern combined cycle power plant with gas turbine steam cooling," Energy, Elsevier, vol. 164(C), pages 359-376.
    4. Carcasci, Carlo & Cosi, Lorenzo & Ferraro, Riccardo & Pacifici, Beniamino, 2017. "Effect of a real steam turbine on thermoeconomic analysis of combined cycle power plants," Energy, Elsevier, vol. 138(C), pages 32-47.
    5. Al-attab, K.A. & Zainal, Z.A., 2015. "Externally fired gas turbine technology: A review," Applied Energy, Elsevier, vol. 138(C), pages 474-487.
    6. Ahmadi, Gholam Reza & Toghraie, Davood, 2016. "Energy and exergy analysis of Montazeri Steam Power Plant in Iran," Renewable and Sustainable Energy Reviews, Elsevier, vol. 56(C), pages 454-463.
    7. Orozco, Dimas José Rúa & Venturini, Osvaldo José & Escobar Palacio, José Carlos & del Olmo, Oscar Almazán, 2017. "A new methodology of thermodynamic diagnosis, using the thermoeconomic method together with an artificial neural network (ANN): A case study of an externally fired gas turbine (EFGT)," Energy, Elsevier, vol. 123(C), pages 20-35.
    8. Plis, Marcin & Rusinowski, Henryk, 2018. "A mathematical model of an existing gas-steam combined heat and power plant for thermal diagnostic systems," Energy, Elsevier, vol. 156(C), pages 606-619.
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    Cited by:

    1. Bartnik, Ryszard & Buryn, Zbigniew & Hnydiuk-Stefan, Anna & Kowalczyk, Tomasz, 2022. "Thermodynamic and economic comparative analyses of a hierarchic gas-gas combined heat and power (CHP) plant coupled with a compressor heat pump," Energy, Elsevier, vol. 244(PB).
    2. Ryszard Bartnik & Zbigniew Buryn & Anna Hnydiuk-Stefan & Waldemar Skomudek & Aleksandra Otawa, 2020. "Thermodynamic and Economic Analysis of Trigeneration System Comprising a Hierarchical Gas-Gas Engine for Production of Electricity, Heat and Cold," Energies, MDPI, vol. 13(4), pages 1-33, February.

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