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Parametric Thermo-Economic Analysis of a Power-to-Gas Energy System with Renewable Input, High Temperature Co-Electrolysis and Methanation

Author

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  • Maria Alessandra Ancona

    (Dipartimento di Ingegneria Industriale, Università di Bologna, Viale del Risorgimento 2, 40136 Bologna, Italy)

  • Vincenzo Antonucci

    (Consiglio Nazionale delle Ricerche, Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Salita S. Lucia Sopra Contesse 5, 98126 Messina, Italy)

  • Lisa Branchini

    (Dipartimento di Ingegneria Industriale, Università di Bologna, Viale del Risorgimento 2, 40136 Bologna, Italy)

  • Francesco Catena

    (Dipartimento di Ingegneria Industriale, Università di Bologna, Viale del Risorgimento 2, 40136 Bologna, Italy)

  • Andrea De Pascale

    (Dipartimento di Ingegneria Industriale, Università di Bologna, Viale del Risorgimento 2, 40136 Bologna, Italy)

  • Alessandra Di Blasi

    (Consiglio Nazionale delle Ricerche, Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Salita S. Lucia Sopra Contesse 5, 98126 Messina, Italy)

  • Marco Ferraro

    (Consiglio Nazionale delle Ricerche, Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Viale delle Scienze Edificio 9, 90128 Palermo, Italy)

  • Cristina Italiano

    (Consiglio Nazionale delle Ricerche, Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Salita S. Lucia Sopra Contesse 5, 98126 Messina, Italy)

  • Francesco Melino

    (Dipartimento di Ingegneria Industriale, Università di Bologna, Viale del Risorgimento 2, 40136 Bologna, Italy)

  • Antonio Vita

    (Consiglio Nazionale delle Ricerche, Istituto di Tecnologie Avanzate per l’Energia “Nicola Giordano”, Salita S. Lucia Sopra Contesse 5, 98126 Messina, Italy)

Abstract

A complete thermo-economic analysis on a cutting-edge Power-to-Gas system that comprises innovative technologies (a Solid Oxide Electrolyte Cell co-electrolyzer and an experimental methanator) and coupled with a renewable generator is provided in this study. The conducted economic analysis (which has never been applied to this typology of system) is aimed at the estimation of the synthetic natural gas cost of a product through a cash flow analysis. Various plant configurations—with different operating temperatures and pressure levels of the key components (electrolyzer: 600–850 °C; 1–8 bar)—are compared to identify possible thermal synergies. Parametric investigations are performed, to assess both the effect of the thermodynamic arrangements and of the economic boundary conditions. Results show that the combination of a system at ambient pressure and with a thermal synergy between the co-electrolyzer and the high-temperature methanator presents the best economic performance (up to 8% lower synthetic natural gas value). The production cost of the synthetic natural gas obtained by the Power-to-Gas solutions in study (up to 80% lower than the natural gas price) could become competitive in the natural gas market, if some techno-economic driving factors (proper size ratio of the storage system and the renewable generation, electrolytic cell cost developments and introduction of a carbon tax) are considered.

Suggested Citation

  • Maria Alessandra Ancona & Vincenzo Antonucci & Lisa Branchini & Francesco Catena & Andrea De Pascale & Alessandra Di Blasi & Marco Ferraro & Cristina Italiano & Francesco Melino & Antonio Vita, 2022. "Parametric Thermo-Economic Analysis of a Power-to-Gas Energy System with Renewable Input, High Temperature Co-Electrolysis and Methanation," Energies, MDPI, vol. 15(5), pages 1-25, February.
  • Handle: RePEc:gam:jeners:v:15:y:2022:i:5:p:1791-:d:760981
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    References listed on IDEAS

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    1. Bassano, Claudia & Deiana, Paolo & Vilardi, Giorgio & Verdone, Nicola, 2020. "Modeling and economic evaluation of carbon capture and storage technologies integrated into synthetic natural gas and power-to-gas plants," Applied Energy, Elsevier, vol. 263(C).
    2. Davis, William & Martín, Mariano, 2014. "Optimal year-round operation for methane production from CO2 and water using wind energy," Energy, Elsevier, vol. 69(C), pages 497-505.
    3. World Bank, "undated". "State and Trends of Carbon Pricing 2020 [Situación y tendencias de la fijación del precio al carbono 2020]," World Bank Publications - Reports 33809, The World Bank Group.
    4. Xiong, Bobby & Predel, Johannes & Crespo del Granado, Pedro & Egging-Bratseth, Ruud, 2021. "Spatial flexibility in redispatch: Supporting low carbon energy systems with Power-to-Gas," Applied Energy, Elsevier, vol. 283(C).
    5. Mehran, Muhammad Taqi & Yu, Seong-Bin & Lee, Dong-Young & Hong, Jong-Eun & Lee, Seung-Bok & Park, Seok-Joo & Song, Rak-Hyun & Lim, Tak-Hyoung, 2018. "Production of syngas from H2O/CO2 by high-pressure coelectrolysis in tubular solid oxide cells," Applied Energy, Elsevier, vol. 212(C), pages 759-770.
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