Yayın:
Analysis and optimization of a fuel cell integrated with series two-stage organic Rankine cycle with zeotropic mixtures

dc.contributor.authorAzad, Amirreza
dc.contributor.authorFakhari, Iman
dc.contributor.authorAhmadi, Pouria
dc.contributor.authorJavani, Nader
dc.date.accessioned2026-06-27T14:45:30Z
dc.date.issued2022
dc.description.abstractIn this article, thermodynamic modeling of a cogeneration system consisting of a series two-stage organic Rankine cycle (STORC) and a proton exchange membrane (PEM) fuel cell is conducted. The fuel cell dissipated heat is utilized as STORC plant input. In order to gain a higher efficiency for the proposed cogeneration system, the condenser of the organic Rankin cycle is replaced by a thermoelectric generator (TEG) to minimize heat loss. Moreover, zeotropic mixtures have been employed due to their lower irreversibility compared to single working fluid. Simulation code is developed in MATLAB software linked with the REFPROP software to extract the thermodynamic properties. This simulation code calculates the exergy efficiency and system's total cost rate. Since the performance of the system is affected by the working fluid, three zeotropic mixtures are compared with R123. The parametric study shows that high pressure (HP) and low pressure (LP) evaporator temperature, current density, and PEM operating pressure significantly affect the total cost rate and the second law efficiency. The results indicate that Ipentane-cis Butane has better efficiency among the selected zeotropic mixtures. Furthermore, the genetic algorithm multi-objective optimization is applied to determine the optimal design parameters of the system in a scatter distribution schematic. Finally, the normalized Pareto frontier of Ipentane-cis Butane is given and the related best point of working as a higher exergy efficiency and lower cost rate are specified. Eventually, it is concluded that the integration of STORC with primary PEM fuel cell improves overall exergy efficiency by 1.9%. The total cost rate for optimum point can be in a range of 1.36-14.94 ($/h), depending on the hydrogen production process. (c) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.en
dc.description.urihttps://doi.org/10.1016/j.ijhydene.2021.02.061
dc.identifier.doi10.1016/j.ijhydene.2021.02.061
dc.identifier.eissn1879-3487
dc.identifier.endpage3472
dc.identifier.issn0360-3199
dc.identifier.issue5
dc.identifier.startpage3449
dc.identifier.urihttps://hdl.handle.net/20.500.14981/64390
dc.identifier.volume47
dc.identifier.wos000740437700005
dc.language.isoeng
dc.publisherPERGAMON-ELSEVIER SCIENCE LTD
dc.relation.ispartofINTERNATIONAL JOURNAL OF HYDROGEN ENERGY
dc.subjectSTORC
dc.subjectPEM fuel cell
dc.subjectExergy efficiency
dc.subjectGenetic algorithm
dc.subjectZeotropic mixture
dc.subjectOptimization
dc.subjectMULTIOBJECTIVE OPTIMIZATION
dc.subjectEXERGOECONOMIC ANALYSIS
dc.subjectHYDROGEN-PRODUCTION
dc.subjectHEAT-RECOVERY
dc.subjectWASTE HEAT
dc.subjectTHERMOELECTRIC GENERATOR
dc.subjectTHERMODYNAMIC ANALYSIS
dc.subjectENVIRONMENTAL-ANALYSES
dc.subjectSYSTEM
dc.subjectPERFORMANCE
dc.subjectChemistry
dc.subjectElectrochemistry
dc.subjectEnergy & Fuels
dc.titleAnalysis and optimization of a fuel cell integrated with series two-stage organic Rankine cycle with zeotropic mixtures
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

Dosyalar

Koleksiyonlar