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Design and Thermodynamic Analysis of a Novel Methanol, Hydrogen, and Power Trigeneration System Based on Renewable Energy and Flue Gas Carbon Dioxide

dc.contributor.author Nazerifard, Reza
dc.contributor.author Khani, Leyla
dc.contributor.author Mohammadpourfard, Mousa
dc.contributor.author Mohammadi-Ivatloo, Behnam
dc.contributor.author Gökçen Akkurt, Gülden
dc.contributor.other 03.06. Department of Energy Systems Engineering
dc.contributor.other 03. Faculty of Engineering
dc.contributor.other 01. Izmir Institute of Technology
dc.date.accessioned 2021-11-06T09:49:32Z
dc.date.available 2021-11-06T09:49:32Z
dc.date.issued 2021
dc.description.abstract In this paper, a new trigeneration system is proposed to decrease atmospheric carbon dioxide emission and produce methanol, hydrogen, and power. The system is composed of an organic Rankine cycle, a direct methanol fuel cell, a carbon capture unit, a proton exchange membrane electrolyzer, and a methanol synthesis unit. A flue gas stream with a defined composition, solar energy, and the atmospheric air are the system?s inlets. In the design step, special attention is paid to heat and mass integration between different components so that its waste can be lowered as much as possible. Then, mass balance law, energy conservation principle, exergy relations, and auxiliary equations are applied for each subsystem to investigate the system's thermodynamic performance. Also, the effect of changing operating parameters on the performance of each subsystem is studied. The obtained results show that the proposed system has the energy and exergy efficiencies of 66.84% and 55.10%, respectively. Furthermore, 94% of the total exergy destruction rate belongs to the water electrolyzer, while the contribution of the organic Rankine cycle is negligible. The performance of the methanol synthesis reactor depends strongly on its inlet temperature. Maximum equilibrium methanol concentration and carbon dioxide conversion are achieved at the inlet temperature of 210 degrees C. The parametric studies reveal that there is an optimum fuel cell current density in which its produced power density is maximized. en_US
dc.identifier.doi 10.1016/j.enconman.2021.113922
dc.identifier.issn 0196-8904
dc.identifier.issn 1879-2227
dc.identifier.scopus 2-s2.0-85101101036
dc.identifier.uri https://doi.org/10.1016/j.enconman.2021.113922
dc.identifier.uri https://hdl.handle.net/11147/11455
dc.language.iso en en_US
dc.publisher Pergamon-Elsevier Science LTD en_US
dc.relation.ispartof Energy Conversion and Management en_US
dc.rights info:eu-repo/semantics/closedAccess en_US
dc.subject Flue gas en_US
dc.subject Carbon dioxide en_US
dc.subject Methanol en_US
dc.subject Electrolysis en_US
dc.subject Direct methanol fuel cell en_US
dc.subject Organic Rankine cycle en_US
dc.title Design and Thermodynamic Analysis of a Novel Methanol, Hydrogen, and Power Trigeneration System Based on Renewable Energy and Flue Gas Carbon Dioxide en_US
dc.type Article en_US
dspace.entity.type Publication
gdc.author.id 0000-0002-3444-9610
gdc.author.institutional Gökçen Akkurt, Gülden
gdc.author.institutional Gökçen Akkurt, Gülden
gdc.author.institutional Mohammadpourfard, Mousa
gdc.coar.access metadata only access
gdc.coar.type text::journal::journal article
gdc.description.department İzmir Institute of Technology. Energy Systems Engineering en_US
gdc.description.publicationcategory Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı en_US
gdc.description.scopusquality Q1
gdc.description.volume 233 en_US
gdc.description.wosquality Q1
gdc.identifier.openalex W3129316879
gdc.identifier.wos WOS:000632522700005
gdc.openalex.fwci 3.312
gdc.openalex.normalizedpercentile 1.0
gdc.openalex.toppercent TOP 1%
gdc.opencitations.count 52
gdc.scopus.citedcount 62
gdc.wos.citedcount 52
local.message.claim 2023-01-26T16:26:55.753+0300 *
local.message.claim |rp04050 *
local.message.claim |submit_approve *
local.message.claim |dc_contributor_author *
local.message.claim |None *
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