Open Access

A Comparative Energy and Exergy Analysis Between Organic Rankine Cycle and Kalina Cycle System 11 for the Waste Heat Recovery of a PEM Fuel Cell Power Station


Cite

Alaswad A., Omran A., Sodre J.R., Wilberforce T., Pignatelli G., Dassisti M., Baroutaji A., Olabi A.G., Technical and commercial challenges of proton-exchange membrane (PEM) fuel cells, Energies, 14(1), 144 (2020). Search in Google Scholar

Arshad A., Ali H.M., Habib A., Bashir M.A., Jabbal M., Yan Y., Energy and exergy analysis of fuel cells: A review, Thermal Science and Engineering Progress, 9, 308-321 (2019). Search in Google Scholar

Cigolotti V., Genovese M., Fragiacomo P., Comprehensive Review on Fuel Cell Technology for Stationary Applications as Sustainable and Efficient Poly-Generation Energy Systems, Energies, 14(16), 4963 (2021). https://www.mdpi.com/1996-1073/14/16/4963. Search in Google Scholar

Corrêa J.M., Farret F.A., Canha L.N., Simoes M.G., An electrochemical-based fuel-cell model suitable for electrical engineering automation approach, IEEE Transactions on industrial electronics, 51(5), 1103-1112 (2004). Search in Google Scholar

Fan L., Tu Z., Chan S.H., Recent development of hydrogen and fuel cell technologies: A review. Energy Reports, 7, 8421-8446 (2021). Search in Google Scholar

He J., Liu C., Xu X., Li Y., Wu S., Xu J., Performance research on modified KCS (Kalina cycle system) 11 without throttle valve, Energy, 64, 389-397 (2014). Search in Google Scholar

Kanoglu M., Bolatturk A., Performance and parametric investigation of a binary geothermal power plant by exergy, Renewable Energy, 33(11), 2366-2374 (2008). Search in Google Scholar

Kazim A., Exergy analysis of a PEM fuel cell at variable operating conditions, Energy conversion and management, 45(11), 1949-1961 (2004). Search in Google Scholar

Larminie J., Dicks A., McDonald M.S., Fuel cell systems explained (Vol. 2), Wiley New York (2003). Search in Google Scholar

Leo T., Durango J., Navarro E., Exergy analysis of PEM fuel cells for marine applications, Energy, 35(2), 1164-1171 (2010). Search in Google Scholar

Mahian O., Mirzaie M.R., Kasaeian A., Mousavi S.H., Exergy analysis in combined heat and power systems: A review, Energy Conversion and Management, 226, 113467 (2020). Search in Google Scholar

Mann R.F., Amphlett J.C., Hooper M.A., Jensen H.M., Peppley B.A., Roberge P.R., Development and application of a generalised steady-state electrochemical model for a PEM fuel cell, Journal of power sources, 86(1-2), 173-180 (2000). Search in Google Scholar

Marandi S., Sarabchi N., Yari M., Exergy and exergoeconomic comparison between multiple novel combined systems based on proton exchange membrane fuel cells integrated with organic Rankine cycles, and hydrogen boil-off gas subsystem, Energy Conversion and Management, 244, 114532 (2021). Search in Google Scholar

Nami H., Mohammadkhani F., Ranjbar F., Utilization of waste heat from GTMHR for hydrogen generation via combination of organic Rankine cycles and PEM electrolysis, Energy Conversion and Management, 127, 589-598 (2016a). Search in Google Scholar

Nami H., Nemati A., Fard F.J., Conventional and advanced exergy analyses of a geothermal driven dual fluid organic Rankine cycle (ORC), Applied thermal engineering, 122, 59-70 (2017). Search in Google Scholar

Nami H., Ranjbar F., Yari M., Saeidi S., Thermodynamic analysis of a modified oxy-fuel cycle, high steam content Graz cycle with a dual-pressure heat recovery steam generator, International Journal of Exergy, 21(3), 331-346 (2016b). Search in Google Scholar

Özgür T., Yakaryılmaz A.C., A review: Exergy analysis of PEM and PEM fuel cell based CHP systems, International Journal of Hydrogen Energy, 43(38), 17993-18000 (2018). Search in Google Scholar

Rezaee V., Houshmand A., Energy and exergy analysis of a combined power generation system using PEM fuel cell and Kalina Cycle System 11, Periodica Polytechnica Chemical Engineering, 60(2), 98-105 (2016). Search in Google Scholar

Sazali N., Wan Salleh W.N., Jamaludin A.S., Mhd Razali M.N., New perspectives on fuel cell technology: A brief review, Membranes, 10(5), 99 (2020). Search in Google Scholar

Taner T., Energy and exergy analyze of PEM fuel cell: A case study of modeling and simulations, Energy, 143, 284-294 (2018). Search in Google Scholar

Verma J., Verma A., Ghoshal A., Performance analysis of solid oxide fuel cell using reformed fuel, International Journal of Hydrogen Energy, 38(22), 9511-9518 (2013). Search in Google Scholar

Victor R.A., Kim J.-K., Smith R., Composition optimisation of working fluids for Organic Rankine Cycles and Kalina cycles, Energy, 55, 114-126 (2013). Search in Google Scholar

Wang Q., Xue M., Lin B.-L., Lei Z., Zhang Z., Well-to-wheel analysis of energy consumption, greenhouse gas and air pollutants emissions of hydrogen fuel cell vehicle in China, Journal of Cleaner Production, 275, 123061 (2020). Search in Google Scholar

Yilanci A., Dincer I., Ozturk H., Performance analysis of a PEM fuel cell unit in a solar–hydrogen system, International Journal of Hydrogen Energy, 33(24), 7538-7552 (2008). Search in Google Scholar

Zhao P., Wang J., Gao L., Dai Y., Parametric analysis of a hybrid power system using organic Rankine cycle to recover waste heat from proton exchange membrane fuel cell, International Journal of Hydrogen Energy, 37(4), 3382-3391 (2012). Search in Google Scholar

eISSN:
2537-2726
Language:
English