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dc.contributor.authorLiang, Z
dc.contributor.authorLiang, Y
dc.contributor.authorLuo, X
dc.contributor.authorWang, H
dc.contributor.authorWu, W
dc.contributor.authorChen, J
dc.contributor.authorChen, Y
dc.date.accessioned2024-05-10T08:39:28Z
dc.date.available2024-05-10T08:39:28Z
dc.date.issued2023
dc.identifier.issn0959-6526
dc.identifier.otherARTN 137342
dc.identifier.otherARTN 137342
dc.identifier.urihttps://qmro.qmul.ac.uk/xmlui/handle/123456789/96770
dc.description.abstractThe methanol-steam-reforming proton exchange membrane fuel cell system is an attractive option for distributed cogeneration due to its low emissions, quiet operation, and low-cost fuel storage. To further increase its energy efficiency, waste heat can be utilized for combined cooling, heating, and power generation. However, the additional equipment, processes, and streams required for cogeneration make the system design complex, with a large number of degrees of freedom. To address this challenge, we propose an equation-based optimization framework for the simultaneous heat integration and flowsheet optimization of the combined cooling, heating, and power system based on the methanol-steam-reforming proton exchange membrane fuel cell. The framework comprises a detailed modelling of methanol steam reforming reaction, fuel cell performance, cooling/heating cogeneration systems, heat integration, heat exchanger network synthesis and energetic-economic performance evaluation. Additionally, the framework incorporates the sizing of the corresponding equipment, including the total length of the reformer, scale of proton exchange membrane fuel cell stack, and absorption cooling apparatus. Furthermore, it takes into account the operating conditions, such as the temperature and pressure of methanol steam reforming reaction, the operating temperatures and pressures of the fuel cell stack and absorption cooling system. We apply the framework to a 1000 kWe combined cooling, heating, and power generation system, and the integrated design achieved an energy efficiency of 88.50% and a levelized cost of electricity of 0.2374 $/kWh. The results show that the simultaneous heat integration and flowsheet optimization can increase the system's energy efficiency by 5.45 percentage points, exergy efficiency by 2.22 percentage points, and decrease the levelized cost of electricity by 4.50% compared to a conventional design.en_US
dc.publisherElsevieren_US
dc.relation.ispartofJOURNAL OF CLEANER PRODUCTION
dc.subjectDistributed generationen_US
dc.subjectMethanol -steam -reformingen_US
dc.subjectProton exchange membrane fuel cellen_US
dc.subjectCombined cooling -heating -power generationen_US
dc.subjectSimultaneous heat integration and flowsheeten_US
dc.subjectoptimizationen_US
dc.titleIntegration and optimization of methanol-reforming proton exchange membrane fuel cell system for distributed generation with combined cooling, heating and poweren_US
dc.typeArticleen_US
dc.rights.holder© 2023 Elsevier Ltd. All rights reserved.
dc.identifier.doi10.1016/j.jclepro.2023.137342
pubs.author-urlhttps://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000998073100001&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=612ae0d773dcbdba3046f6df545e9f6aen_US
pubs.notesNot knownen_US
pubs.publication-statusPublisheden_US
pubs.volume411en_US
rioxxterms.funderDefault funderen_US
rioxxterms.identifier.projectDefault projecten_US


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