Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system

This contribution outlines the capabilities of an enhanced GPU-accelerated Lattice Boltzmann method (LBM) for the simulation of ice-going Voith Schneider propelled (VSP) ships. Reported results cover a collaboration between an academic and an industrial partner, i.e. TUHH and Voith, within a joint r...

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Main Authors: Gehrke, Martin, Mierke, Dennis, Rung, Thomas, Hauer, Philipp
Format: Conference Object
Language:English
Published: 2019
Subjects:
Online Access:http://hdl.handle.net/11420/9181
https://doi.org/10.15480/882.3406
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spelling fttuhamburg:oai:tore.tuhh.de:11420/9181 2023-10-01T03:54:18+02:00 Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system Gehrke, Martin Mierke, Dennis Rung, Thomas Hauer, Philipp 2019-05-13 application/pdf http://hdl.handle.net/11420/9181 https://doi.org/10.15480/882.3406 en eng 8th International Conference on Computational Methods in Marine Engineering, (MARINE 2019) Einfluss der Formgebung von Schiffen auf die Propulsionseffizienz und Propeller-Eis-Belastung; Modellierung der Umströmung von Schiffen in eisbedeckten Gewässern http://hdl.handle.net/11420/9181 doi:10.15480/882.3406 CC BY 4.0 https://creativecommons.org/licenses/by/4.0/ false Lattice Boltzmann Method Grid Refinement Scheme Arctic Engineering Voith Schneider Propulsion GPU Computing with Nvidia CUDA 600: Technik 620: Ingenieurwissenschaften Conference Presentation Other 2019 fttuhamburg https://doi.org/10.15480/882.3406 2023-09-03T22:14:15Z This contribution outlines the capabilities of an enhanced GPU-accelerated Lattice Boltzmann method (LBM) for the simulation of ice-going Voith Schneider propelled (VSP) ships. Reported results cover a collaboration between an academic and an industrial partner, i.e. TUHH and Voith, within a joint research project to assess the ice-induced loads for cycloidal propellers. The goal is to establish a simulation framework which supports extensive parameter studies in a competitive computational time. Simulation objectives are an insight into the ice clearing capabilities of a hull, the ice’s influence on the propulsion efficiency as well as the additional ice-induced blade loads. Investigated influences refer to the ice thickness, the ice floe geometry, the ship speed and/or the VSP’s parameters. The experimental and numerical ice tanks are restricted to pre-broken ice floes and ice-breaking is not considered. The simulated dynamics of the multiple rigid bodies system, i.e. the. ice floes, the hull and the VSP, are obtained from a monolithic coupling of the flow solver and a contact-dynamics Physics Engine (Open Dynamics Engine; ODE). For the coupling of the explicit LBM and the motion solver, a bidirectional and explicit coupling approach is used. Computations were performed on moderate LBM grids featuring about 20 million nodes using local grid refinement. Prior to the assessment of ice loads, hydrodynamic validation in open-water conditions of the LBM against established FV-simulations will be reported. Subsequently, the comparison of simulated and measured ice loads experienced by a 5-bladed VSP attached to a generic hull geometry will be analyzed. A comparison of the ice floe dynamics displays reasonable agreement and force assessments confirm that the simulation is able to capture all important effects. Final applications are concerned with a tug geometry - propelled by 2 5-bladed VSPs - in pack ice conditions. Conference Object Arctic TUHH Open Research (TORE - Technische Universität Hamburg) Arctic
institution Open Polar
collection TUHH Open Research (TORE - Technische Universität Hamburg)
op_collection_id fttuhamburg
language English
topic Lattice Boltzmann Method
Grid Refinement Scheme
Arctic Engineering
Voith Schneider Propulsion
GPU Computing with Nvidia CUDA
600: Technik
620: Ingenieurwissenschaften
spellingShingle Lattice Boltzmann Method
Grid Refinement Scheme
Arctic Engineering
Voith Schneider Propulsion
GPU Computing with Nvidia CUDA
600: Technik
620: Ingenieurwissenschaften
Gehrke, Martin
Mierke, Dennis
Rung, Thomas
Hauer, Philipp
Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system
topic_facet Lattice Boltzmann Method
Grid Refinement Scheme
Arctic Engineering
Voith Schneider Propulsion
GPU Computing with Nvidia CUDA
600: Technik
620: Ingenieurwissenschaften
description This contribution outlines the capabilities of an enhanced GPU-accelerated Lattice Boltzmann method (LBM) for the simulation of ice-going Voith Schneider propelled (VSP) ships. Reported results cover a collaboration between an academic and an industrial partner, i.e. TUHH and Voith, within a joint research project to assess the ice-induced loads for cycloidal propellers. The goal is to establish a simulation framework which supports extensive parameter studies in a competitive computational time. Simulation objectives are an insight into the ice clearing capabilities of a hull, the ice’s influence on the propulsion efficiency as well as the additional ice-induced blade loads. Investigated influences refer to the ice thickness, the ice floe geometry, the ship speed and/or the VSP’s parameters. The experimental and numerical ice tanks are restricted to pre-broken ice floes and ice-breaking is not considered. The simulated dynamics of the multiple rigid bodies system, i.e. the. ice floes, the hull and the VSP, are obtained from a monolithic coupling of the flow solver and a contact-dynamics Physics Engine (Open Dynamics Engine; ODE). For the coupling of the explicit LBM and the motion solver, a bidirectional and explicit coupling approach is used. Computations were performed on moderate LBM grids featuring about 20 million nodes using local grid refinement. Prior to the assessment of ice loads, hydrodynamic validation in open-water conditions of the LBM against established FV-simulations will be reported. Subsequently, the comparison of simulated and measured ice loads experienced by a 5-bladed VSP attached to a generic hull geometry will be analyzed. A comparison of the ice floe dynamics displays reasonable agreement and force assessments confirm that the simulation is able to capture all important effects. Final applications are concerned with a tug geometry - propelled by 2 5-bladed VSPs - in pack ice conditions.
format Conference Object
author Gehrke, Martin
Mierke, Dennis
Rung, Thomas
Hauer, Philipp
author_facet Gehrke, Martin
Mierke, Dennis
Rung, Thomas
Hauer, Philipp
author_sort Gehrke, Martin
title Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system
title_short Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system
title_full Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system
title_fullStr Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system
title_full_unstemmed Validation of a GPU-accelerated LBM based numerical ice tank for a Voith Schneider propulsion system
title_sort validation of a gpu-accelerated lbm based numerical ice tank for a voith schneider propulsion system
publishDate 2019
url http://hdl.handle.net/11420/9181
https://doi.org/10.15480/882.3406
geographic Arctic
geographic_facet Arctic
genre Arctic
genre_facet Arctic
op_relation 8th International Conference on Computational Methods in Marine Engineering, (MARINE 2019)
Einfluss der Formgebung von Schiffen auf die Propulsionseffizienz und Propeller-Eis-Belastung; Modellierung der Umströmung von Schiffen in eisbedeckten Gewässern
http://hdl.handle.net/11420/9181
doi:10.15480/882.3406
op_rights CC BY 4.0
https://creativecommons.org/licenses/by/4.0/
false
op_doi https://doi.org/10.15480/882.3406
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