Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization
Ship hybridization has received some interests recently in order to achieve the emission target by 2050. However, designing and optimizing a hybrid propulsion system is a complicated problem. Sizing components and optimizing energy management control are coupled with each other. This paper applies a...
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doaj-f95dd9d4f31f4f56b341766457b40c512021-05-27T23:02:06ZengIEEEIEEE Access2169-35362021-01-019725877260110.1109/ACCESS.2021.30801959430530Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer OptimizationXuezhou Wang0https://orcid.org/0000-0003-4423-3386Udai Shipurkar1Ali Haseltalab2Henk Polinder3https://orcid.org/0000-0003-2212-0954Frans Claeys4Rudy R. Negenborn5https://orcid.org/0000-0001-9784-1225Department of Maritime and Transportation Technology, Delft University of Technology, Delft, The NetherlandsMaritime Research Institute Netherlands (MARIN), Wageningen, The NetherlandsDepartment of Maritime and Transportation Technology, Delft University of Technology, Delft, The NetherlandsDepartment of Maritime and Transportation Technology, Delft University of Technology, Delft, The NetherlandsGEOxyz, Zwevegem, BelgiumDepartment of Maritime and Transportation Technology, Delft University of Technology, Delft, The NetherlandsShip hybridization has received some interests recently in order to achieve the emission target by 2050. However, designing and optimizing a hybrid propulsion system is a complicated problem. Sizing components and optimizing energy management control are coupled with each other. This paper applies a nested double-layer optimization architecture to optimize the sizing and energy management of a hybrid offshore support vessel. Three different power sources, namely diesel engines, batteries and fuel cells, are considered which increases the complexity of the optimization problem. The optimal sizing of the components and their corresponding energy management strategies are illustrated. The effects of the operational profiles and the emission reduction targets on the hybridization design are studied for this particular type of vessel. The results prove that a small emission reduction target of about 10% can be achieved by improving the diesel engine efficiency using the batteries only while the achievement of a larger emission reduction target mainly depends on the amount of the hydrogen and/or on-shore charging electricity consumed. Some design guidelines for hybridization are derived for this particular ship which could be also valid for other vessels with similar operational profiles.https://ieeexplore.ieee.org/document/9430530/Hybridoffshore support vesselsizingcontrolenergy management |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xuezhou Wang Udai Shipurkar Ali Haseltalab Henk Polinder Frans Claeys Rudy R. Negenborn |
spellingShingle |
Xuezhou Wang Udai Shipurkar Ali Haseltalab Henk Polinder Frans Claeys Rudy R. Negenborn Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization IEEE Access Hybrid offshore support vessel sizing control energy management |
author_facet |
Xuezhou Wang Udai Shipurkar Ali Haseltalab Henk Polinder Frans Claeys Rudy R. Negenborn |
author_sort |
Xuezhou Wang |
title |
Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization |
title_short |
Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization |
title_full |
Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization |
title_fullStr |
Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization |
title_full_unstemmed |
Sizing and Control of a Hybrid Ship Propulsion System Using Multi-Objective Double-Layer Optimization |
title_sort |
sizing and control of a hybrid ship propulsion system using multi-objective double-layer optimization |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2021-01-01 |
description |
Ship hybridization has received some interests recently in order to achieve the emission target by 2050. However, designing and optimizing a hybrid propulsion system is a complicated problem. Sizing components and optimizing energy management control are coupled with each other. This paper applies a nested double-layer optimization architecture to optimize the sizing and energy management of a hybrid offshore support vessel. Three different power sources, namely diesel engines, batteries and fuel cells, are considered which increases the complexity of the optimization problem. The optimal sizing of the components and their corresponding energy management strategies are illustrated. The effects of the operational profiles and the emission reduction targets on the hybridization design are studied for this particular type of vessel. The results prove that a small emission reduction target of about 10% can be achieved by improving the diesel engine efficiency using the batteries only while the achievement of a larger emission reduction target mainly depends on the amount of the hydrogen and/or on-shore charging electricity consumed. Some design guidelines for hybridization are derived for this particular ship which could be also valid for other vessels with similar operational profiles. |
topic |
Hybrid offshore support vessel sizing control energy management |
url |
https://ieeexplore.ieee.org/document/9430530/ |
work_keys_str_mv |
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