A finite element method-based potential theory approach for optimal ice routing

Shipping in ice-covered regions has gained high attention within recent years. Analogous to weather routing, the occurrence of ice in a seaway affects the selection of the optimal route with respect to the travel time or fuel consumption. The shorter, direct path between two points—which may lead th...

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Published in:Journal of Offshore Mechanics and Arctic Engineering
Main Authors: Piehl, Henry, Milaković, Aleksandar-Saša, Ehlers, Sören
Format: Article in Journal/Newspaper
Language:English
Published: American Society of Mechanical Engineers (ASME) 2017
Subjects:
Online Access:http://hdl.handle.net/11420/3523
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author Piehl, Henry
Milaković, Aleksandar-Saša
Ehlers, Sören
author_facet Piehl, Henry
Milaković, Aleksandar-Saša
Ehlers, Sören
author_sort Piehl, Henry
collection Unknown
container_issue 6
container_title Journal of Offshore Mechanics and Arctic Engineering
container_volume 139
description Shipping in ice-covered regions has gained high attention within recent years. Analogous to weather routing, the occurrence of ice in a seaway affects the selection of the optimal route with respect to the travel time or fuel consumption. The shorter, direct path between two points—which may lead through an ice-covered area—may require a reduction of speed and an increase in fuel consumption. A longer, indirect route, could be more efficient by avoiding the ice-covered region. Certain regions may have to be avoided completely, if the ice thickness exceeds the ice-capability of the ship. The objective of this study is to develop a computational method that combines coastline maps, route cost information (e.g., ice thickness), transport task, and ship properties to find the optimal route between port of departure, A, and port of destination, B. The development approach for this tool is to formulate the transport task in the form of a potential problem, solve this equation with a finite element method (FEM), and apply line integration and optimization to determine the best route. The functionality of the method is first evaluated with simple test problems and then applied to realistic transport scenarios.
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spelling fttuhamburg:oai:tore.tuhh.de:11420/3523 2025-06-15T14:16:08+00:00 A finite element method-based potential theory approach for optimal ice routing Piehl, Henry Milaković, Aleksandar-Saša Ehlers, Sören 2017-08-08 http://hdl.handle.net/11420/3523 en eng American Society of Mechanical Engineers (ASME) Journal of offshore mechanics and arctic engineering 0892-7219 http://hdl.handle.net/11420/3523 620: Ingenieurwissenschaften 620 Journal Article Other 2017 fttuhamburg 2025-05-16T03:52:30Z Shipping in ice-covered regions has gained high attention within recent years. Analogous to weather routing, the occurrence of ice in a seaway affects the selection of the optimal route with respect to the travel time or fuel consumption. The shorter, direct path between two points—which may lead through an ice-covered area—may require a reduction of speed and an increase in fuel consumption. A longer, indirect route, could be more efficient by avoiding the ice-covered region. Certain regions may have to be avoided completely, if the ice thickness exceeds the ice-capability of the ship. The objective of this study is to develop a computational method that combines coastline maps, route cost information (e.g., ice thickness), transport task, and ship properties to find the optimal route between port of departure, A, and port of destination, B. The development approach for this tool is to formulate the transport task in the form of a potential problem, solve this equation with a finite element method (FEM), and apply line integration and optimization to determine the best route. The functionality of the method is first evaluated with simple test problems and then applied to realistic transport scenarios. Article in Journal/Newspaper Arctic Unknown Journal of Offshore Mechanics and Arctic Engineering 139 6
spellingShingle 620: Ingenieurwissenschaften
620
Piehl, Henry
Milaković, Aleksandar-Saša
Ehlers, Sören
A finite element method-based potential theory approach for optimal ice routing
title A finite element method-based potential theory approach for optimal ice routing
title_full A finite element method-based potential theory approach for optimal ice routing
title_fullStr A finite element method-based potential theory approach for optimal ice routing
title_full_unstemmed A finite element method-based potential theory approach for optimal ice routing
title_short A finite element method-based potential theory approach for optimal ice routing
title_sort finite element method-based potential theory approach for optimal ice routing
topic 620: Ingenieurwissenschaften
620
topic_facet 620: Ingenieurwissenschaften
620
url http://hdl.handle.net/11420/3523