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A Techno-economic comparison of micro-cogeneration systems based on polymer electrolyte membrane fuel cell for residential applications

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  • Di Marcoberardino, G.
  • Chiarabaglio, L.
  • Manzolini, G.
  • Campanari, S.

Abstract

This work, developed within the Italian project MICROGEN 30, aims at investigating the benefits of 10kWel Proton Exchange Membrane fuel cell based system with an innovative membrane reformer when applied to a residential application. Results are compared to solutions where a steam reformer is coupled with low temperature or high temperature Proton Exchange Membrane fuel cell stacks. The three cogenerator systems are integrated in a distributed generation scenario, working as suppliers of electricity and heat to two or more residential users. Micro-cogenerators energy and economic balance is evaluated using an in-house software, based on an heuristic algorithm that explores and defines the optimal system operating strategy versus defined load and tariff profiles. The innovative configuration achieves the highest micro-cogeneration economic saving on an yearly basis. The economic analysis also sets the maximum investment cost of the innovative cogenerator system being economically competitive with respect to centralized power generation and conventional boilers.

Suggested Citation

  • Di Marcoberardino, G. & Chiarabaglio, L. & Manzolini, G. & Campanari, S., 2019. "A Techno-economic comparison of micro-cogeneration systems based on polymer electrolyte membrane fuel cell for residential applications," Applied Energy, Elsevier, vol. 239(C), pages 692-705.
  • Handle: RePEc:eee:appene:v:239:y:2019:i:c:p:692-705
    DOI: 10.1016/j.apenergy.2019.01.171
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    1. Lai, Li-Hua, 2015. "Statistical premium in correlated losses of insurance," Economic Modelling, Elsevier, vol. 49(C), pages 248-253.
    2. Facci, Andrea L. & Ubertini, Stefano, 2018. "Analysis of a fuel cell combined heat and power plant under realistic smart management scenarios," Applied Energy, Elsevier, vol. 216(C), pages 60-72.
    3. Zuliani, Nicola & Taccani, Rodolfo, 2012. "Microcogeneration system based on HTPEM fuel cell fueled with natural gas: Performance analysis," Applied Energy, Elsevier, vol. 97(C), pages 802-808.
    4. Wei, Max & Smith, Sarah J. & Sohn, Michael D., 2017. "Experience curve development and cost reduction disaggregation for fuel cell markets in Japan and the US," Applied Energy, Elsevier, vol. 191(C), pages 346-357.
    5. Wakui, Tetsuya & Kawayoshi, Hiroki & Yokoyama, Ryohei, 2016. "Optimal structural design of residential power and heat supply devices in consideration of operational and capital recovery constraints," Applied Energy, Elsevier, vol. 163(C), pages 118-133.
    6. Alanne, Kari & Saari, Arto, 2004. "Sustainable small-scale CHP technologies for buildings: the basis for multi-perspective decision-making," Renewable and Sustainable Energy Reviews, Elsevier, vol. 8(5), pages 401-431, October.
    7. -, 2015. "Statistical report of the Brazilian economy, June 2015," Informe Estadístico – Oficina de la CEPAL en Brasilia 40223, Naciones Unidas Comisión Económica para América Latina y el Caribe (CEPAL).
    8. João P. da Cruz & Nuno A. M. Araújo & Frank Raischel & Pedro G. Lind, 2015. "A thermostatistical approach to scale-free networks," International Journal of Modern Physics C (IJMPC), World Scientific Publishing Co. Pte. Ltd., vol. 26(06), pages 1-12.
    9. Samsun, Remzi Can & Pasel, Joachim & Janßen, Holger & Lehnert, Werner & Peters, Ralf & Stolten, Detlef, 2014. "Design and test of a 5kWe high-temperature polymer electrolyte fuel cell system operated with diesel and kerosene," Applied Energy, Elsevier, vol. 114(C), pages 238-249.
    10. Bianchi, M. & De Pascale, A. & Melino, F., 2013. "Performance analysis of an integrated CHP system with thermal and Electric Energy Storage for residential application," Applied Energy, Elsevier, vol. 112(C), pages 928-938.
    11. Gabrielli, Paolo & Gazzani, Matteo & Mazzotti, Marco, 2018. "Electrochemical conversion technologies for optimal design of decentralized multi-energy systems: Modeling framework and technology assessment," Applied Energy, Elsevier, vol. 221(C), pages 557-575.
    12. Barelli, L. & Bidini, G. & Gallorini, F. & Ottaviano, A., 2011. "An energetic–exergetic analysis of a residential CHP system based on PEM fuel cell," Applied Energy, Elsevier, vol. 88(12), pages 4334-4342.
    13. Oh, Si-Doek & Kim, Ki-Young & Oh, Shuk-Bum & Kwak, Ho-Young, 2012. "Optimal operation of a 1-kW PEMFC-based CHP system for residential applications," Applied Energy, Elsevier, vol. 95(C), pages 93-101.
    14. Kopanos, Georgios M. & Georgiadis, Michael C. & Pistikopoulos, Efstratios N., 2013. "Energy production planning of a network of micro combined heat and power generators," Applied Energy, Elsevier, vol. 102(C), pages 1522-1534.
    15. Jannelli, Elio & Minutillo, Mariagiovanna & Perna, Alessandra, 2013. "Analyzing microcogeneration systems based on LT-PEMFC and HT-PEMFC by energy balances," Applied Energy, Elsevier, vol. 108(C), pages 82-91.
    16. Constantin Anghelache & Mario G.R. Pagliacci & Constantin Mitrut, 2015. "Statistical-Econometric Models used in Economic Analysis," Romanian Statistical Review Supplement, Romanian Statistical Review, vol. 63(4), pages 9-15, April.
    17. -, 2015. "Statistical report of the Brazilian economy, July 2015," Informe Estadístico – Oficina de la CEPAL en Brasilia 40224, Naciones Unidas Comisión Económica para América Latina y el Caribe (CEPAL).
    18. Elmer, Theo & Worall, Mark & Wu, Shenyi & Riffat, Saffa B., 2015. "Fuel cell technology for domestic built environment applications: State of-the-art review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 42(C), pages 913-931.
    19. Adam, Alexandros & Fraga, Eric S. & Brett, Dan J.L., 2018. "A modelling study for the integration of a PEMFC micro-CHP in domestic building services design," Applied Energy, Elsevier, vol. 225(C), pages 85-97.
    20. Adam, Alexandros & Fraga, Eric S. & Brett, Dan J.L., 2015. "Options for residential building services design using fuel cell based micro-CHP and the potential for heat integration," Applied Energy, Elsevier, vol. 138(C), pages 685-694.
    21. Fubara, Tekena Craig & Cecelja, Franjo & Yang, Aidong, 2014. "Modelling and selection of micro-CHP systems for domestic energy supply: The dimension of network-wide primary energy consumption," Applied Energy, Elsevier, vol. 114(C), pages 327-334.
    22. Hankin, Robin K. S., 2015. "Circular Statistics in R," Journal of Statistical Software, Foundation for Open Access Statistics, vol. 66(b05).
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