Experimental and numerical analysis of ice crushing tests with different shaped ice specimens

Ships operating in ice covered waters are exposed to the risk of colliding with an iceberg or ice floe. Predicting the loads in ice-structure interaction is crucial for the safety of existing ships and the optimization of the ship structures in the future. The ice geometry and the interaction veloci...

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Main Authors: Müller, Franciska, Böhm, Angelo, Herrnring, Hauke, von Bock und Polach, Rüdiger Ulrich Franz, Ehlers, Sören
Format: Conference Object
Language:English
Published: 2023
Subjects:
Online Access:https://hdl.handle.net/11420/43883
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spelling fttuhamburg:oai:tore.tuhh.de:11420/43883 2023-11-12T04:09:26+01:00 Experimental and numerical analysis of ice crushing tests with different shaped ice specimens Müller, Franciska Böhm, Angelo Herrnring, Hauke von Bock und Polach, Rüdiger Ulrich Franz Ehlers, Sören 2023 https://hdl.handle.net/11420/43883 en eng 42nd International Conference on Ocean, Offshore and Arctic Engineering, OMAE 2023 International Conference on Ocean, Offshore and Arctic Engineering (OMAE 2023) 9780791886885 https://hdl.handle.net/11420/43883 2-s2.0-85174039558 false 620: Engineering and Applied Operations Conference Paper Other 2023 fttuhamburg 2023-10-29T23:13:21Z Ships operating in ice covered waters are exposed to the risk of colliding with an iceberg or ice floe. Predicting the loads in ice-structure interaction is crucial for the safety of existing ships and the optimization of the ship structures in the future. The ice geometry and the interaction velocity are two parameters, among others, that have a high influence on the acting forces and pressures. There has not been much research on the influence of the ice geometry in ice-structure interaction tests in the past. This paper analyzes the failure mode, peak forces, and energy of different ice specimen geometries at different interaction velocities in small-scale crushing tests and identifies shapedependent effects. Furthermore, a first attempt is made to numerically simulate these experiments with the Mohr-Coulomb Nodal Split (MCNS) ice model in order to extend the applicability of the model to more general ice-structure interaction problems. Overall 21 different ice shapes were tested in crushing experiments with a hydraulic piston and drop tower experiments and were simulated with the MCNS model. In addition, the influence of the interaction velocity was analyzed for 13 shapes at interaction velocities of 10, 100 and 2000 mm/s. The specimen shapes included among others a cylinder, cones, truncated cones, elliptical, dome-shaped and wedge-shaped. In the experiments, the load, the displacement, and the failure behavior were recorded. Especially the peak force, energy, and failure mode were used for the analysis and comparison with the simulation results. The results show a high dependency of the failure mode and peak forces on the specimen shape, initial contact area, and interaction velocity. The MCNS model is capable to predict trends of the peak load depending on the initial contact area and generated different failure behaviors depending on the ice geometry to some extent. However, there is potentially room for improvement, especially considering the triaxiality and the influence of the interaction velocity. Conference Object Arctic ice covered waters TORE TUHH Open Research (Hamburg University of Technology)
institution Open Polar
collection TORE TUHH Open Research (Hamburg University of Technology)
op_collection_id fttuhamburg
language English
topic 620: Engineering and Applied Operations
spellingShingle 620: Engineering and Applied Operations
Müller, Franciska
Böhm, Angelo
Herrnring, Hauke
von Bock und Polach, Rüdiger Ulrich Franz
Ehlers, Sören
Experimental and numerical analysis of ice crushing tests with different shaped ice specimens
topic_facet 620: Engineering and Applied Operations
description Ships operating in ice covered waters are exposed to the risk of colliding with an iceberg or ice floe. Predicting the loads in ice-structure interaction is crucial for the safety of existing ships and the optimization of the ship structures in the future. The ice geometry and the interaction velocity are two parameters, among others, that have a high influence on the acting forces and pressures. There has not been much research on the influence of the ice geometry in ice-structure interaction tests in the past. This paper analyzes the failure mode, peak forces, and energy of different ice specimen geometries at different interaction velocities in small-scale crushing tests and identifies shapedependent effects. Furthermore, a first attempt is made to numerically simulate these experiments with the Mohr-Coulomb Nodal Split (MCNS) ice model in order to extend the applicability of the model to more general ice-structure interaction problems. Overall 21 different ice shapes were tested in crushing experiments with a hydraulic piston and drop tower experiments and were simulated with the MCNS model. In addition, the influence of the interaction velocity was analyzed for 13 shapes at interaction velocities of 10, 100 and 2000 mm/s. The specimen shapes included among others a cylinder, cones, truncated cones, elliptical, dome-shaped and wedge-shaped. In the experiments, the load, the displacement, and the failure behavior were recorded. Especially the peak force, energy, and failure mode were used for the analysis and comparison with the simulation results. The results show a high dependency of the failure mode and peak forces on the specimen shape, initial contact area, and interaction velocity. The MCNS model is capable to predict trends of the peak load depending on the initial contact area and generated different failure behaviors depending on the ice geometry to some extent. However, there is potentially room for improvement, especially considering the triaxiality and the influence of the interaction velocity.
format Conference Object
author Müller, Franciska
Böhm, Angelo
Herrnring, Hauke
von Bock und Polach, Rüdiger Ulrich Franz
Ehlers, Sören
author_facet Müller, Franciska
Böhm, Angelo
Herrnring, Hauke
von Bock und Polach, Rüdiger Ulrich Franz
Ehlers, Sören
author_sort Müller, Franciska
title Experimental and numerical analysis of ice crushing tests with different shaped ice specimens
title_short Experimental and numerical analysis of ice crushing tests with different shaped ice specimens
title_full Experimental and numerical analysis of ice crushing tests with different shaped ice specimens
title_fullStr Experimental and numerical analysis of ice crushing tests with different shaped ice specimens
title_full_unstemmed Experimental and numerical analysis of ice crushing tests with different shaped ice specimens
title_sort experimental and numerical analysis of ice crushing tests with different shaped ice specimens
publishDate 2023
url https://hdl.handle.net/11420/43883
genre Arctic
ice covered waters
genre_facet Arctic
ice covered waters
op_relation 42nd International Conference on Ocean, Offshore and Arctic Engineering, OMAE 2023
International Conference on Ocean, Offshore and Arctic Engineering (OMAE 2023)
9780791886885
https://hdl.handle.net/11420/43883
2-s2.0-85174039558
op_rights false
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