Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships

Despite being stored at 113 K and at atmospheric pressure, LNG cold potential is not exploited to reduce green ships’ energy needs. An innovative system based on three organic Rankine cycles integrated into the regasification equipment is proposed to produce additional power and recover cooling ener...

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Published in:Clean Technologies
Main Authors: Roberto Bruno, Vittorio Ferraro, Piofrancesco Barone, Piero Bevilacqua
Format: Article
Language:English
Published: MDPI AG 2024-07-01
Subjects:
Online Access:https://www.mdpi.com/2571-8797/6/3/43
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author Roberto Bruno
Vittorio Ferraro
Piofrancesco Barone
Piero Bevilacqua
author_facet Roberto Bruno
Vittorio Ferraro
Piofrancesco Barone
Piero Bevilacqua
author_sort Roberto Bruno
collection DOAJ
container_title Clean Technologies
description Despite being stored at 113 K and at atmospheric pressure, LNG cold potential is not exploited to reduce green ships’ energy needs. An innovative system based on three organic Rankine cycles integrated into the regasification equipment is proposed to produce additional power and recover cooling energy from condensers. A first-law analysis identified ethylene and ethane as suitable working fluids for the first and the second ORC, making freshwater and ice available. Propane, ammonia and propylene could be arbitrarily employed in the third ORC for air conditioning. An environmental analysis that combines exergy efficiency, ecological indices and hazard aspects for the marine environment and ship passengers indicated propylene as safer and more environmentally friendly. Exergy analysis confirmed that more than 20% of the LNG potential can be recovered from every cycle to produce a net clean power of 76 kW, whereas 270 kW can be saved by recovering condensers’ cooling power to satisfy some ship needs. Assuming the sailing mode, a limitation of 162 kg in LNG consumptions was determined, avoiding the emission of 1584 kg of CO<sub>2</sub> per day. Marine thermal pollution is reduced by 3.5 times by recovering the working fluids’ condensation heat for the LNG pre-heating.
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spelling doaj-art-57765609af2e4d3581f1594fdfd65fc12025-08-19T23:26:55ZengMDPI AGClean Technologies2571-87972024-07-016382685110.3390/cleantechnol6030043Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green ShipsRoberto Bruno0Vittorio Ferraro1Piofrancesco Barone2Piero Bevilacqua3Mechanical, Energy and Management Engineering Department, University of Calabria, 87036 Rende, ItalyDepartment of Computer Engineering, Modelling, Electronics and Systems, University of Calabria, 87036 Rende, ItalyMechanical, Energy and Management Engineering Department, University of Calabria, 87036 Rende, ItalyMechanical, Energy and Management Engineering Department, University of Calabria, 87036 Rende, ItalyDespite being stored at 113 K and at atmospheric pressure, LNG cold potential is not exploited to reduce green ships’ energy needs. An innovative system based on three organic Rankine cycles integrated into the regasification equipment is proposed to produce additional power and recover cooling energy from condensers. A first-law analysis identified ethylene and ethane as suitable working fluids for the first and the second ORC, making freshwater and ice available. Propane, ammonia and propylene could be arbitrarily employed in the third ORC for air conditioning. An environmental analysis that combines exergy efficiency, ecological indices and hazard aspects for the marine environment and ship passengers indicated propylene as safer and more environmentally friendly. Exergy analysis confirmed that more than 20% of the LNG potential can be recovered from every cycle to produce a net clean power of 76 kW, whereas 270 kW can be saved by recovering condensers’ cooling power to satisfy some ship needs. Assuming the sailing mode, a limitation of 162 kg in LNG consumptions was determined, avoiding the emission of 1584 kg of CO<sub>2</sub> per day. Marine thermal pollution is reduced by 3.5 times by recovering the working fluids’ condensation heat for the LNG pre-heating.https://www.mdpi.com/2571-8797/6/3/43LNGexergy potentialseawater freezingice productionair conditioningsecond-law analysis
spellingShingle Roberto Bruno
Vittorio Ferraro
Piofrancesco Barone
Piero Bevilacqua
Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships
LNG
exergy potential
seawater freezing
ice production
air conditioning
second-law analysis
title Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships
title_full Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships
title_fullStr Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships
title_full_unstemmed Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships
title_short Energy and Exergy Analyses of an Innovative Heat Recovery System from the LNG Regasification Process in Green Ships
title_sort energy and exergy analyses of an innovative heat recovery system from the lng regasification process in green ships
topic LNG
exergy potential
seawater freezing
ice production
air conditioning
second-law analysis
url https://www.mdpi.com/2571-8797/6/3/43
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AT piofrancescobarone energyandexergyanalysesofaninnovativeheatrecoverysystemfromthelngregasificationprocessingreenships
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