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  4. Full-scale fem simulations of single ice floe impacts on a non ice-strengthened ship structure using the MCNS model
 
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Full-scale fem simulations of single ice floe impacts on a non ice-strengthened ship structure using the MCNS model

Publikationstyp
Conference Paper
Date Issued
2025-06
Sprache
English
Author(s)
Müller, Franciska 
Konstruktion und Festigkeit von Schiffen M-10  
van Bergen, Jan Willem
Rodriguez, Mark
Dragt, Sander  
von Bock und Polach, Rüdiger Ulrich Franz  orcid-logo
Konstruktion und Festigkeit von Schiffen M-10  
Ehlers, Sören  
Konstruktion und Festigkeit von Schiffen M-10  
TORE-URI
https://hdl.handle.net/11420/57534
First published in
Proceedings of the International Conference on Offshore Mechanics and Arctic Engineering - OMAE  
Number in series
3
Article Number
v003t07a010
Citation
ASME 2025 44th International Conference on Ocean, Offshore and Arctic Engineering, OMAE 2025
Contribution to Conference
ASME 2025 44th International Conference on Ocean, Offshore and Arctic Engineering, OMAE 2025  
Publisher DOI
10.1115/OMAE2025-154586
Scopus ID
2-s2.0-105015302678
Publisher
ASME
ISBN
978-0-7918-8892-6
In this study ice floe impacts on a non-ice strengthened ship structure are investigated using the finite element method (FEM) with the Mohr-Coulomb Nodal Split (MCNS) as ice material model. With this analysis, we address three questions: How does the shape of the ice affect the impact? Is the location where the impact occurs significant? How does the direction of impact influence the loads experienced by the ship? The ice shapes used for this study are modeled based on previous experimental analyses and include round (dome), flat-parallel (truncated cone), and sharp (cone) geometries. Impact locations considered are the plate field, bulkhead, and longitudinal stiffener, with impact directions of 0° (glancing impact), 30°, 60°, and 90° (perpendicular impact). The study compares load magnitude, plastic deformation, and strain energies across these scenarios to pinpoint significant influencing factors. Findings are validated against existing experimental and literature data, highlighting the critical impact parameters and identifying the worst-case scenario. The study indicates that all three parameters significantly affect the impact. Round and flat-parallel ice shapes result in higher loads compared to the sharp shape. The greatest deformations occur in the plate field and in the bulkhead impact locations. Additionally, the loads increase as the impact becomes more perpendicular.
Subjects
FEM simulation
ice loads
ship-ice interaction
DDC Class
600: Technology
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