UQAM logo
Page d'accueil de l'UQAM Étudier à l'UQAM Bottin du personnel Carte du campus Bibliothèques Pour nous joindre

Service des bibliothèques

Veille bibliographique sur les inondations
UQAM logo
Veille bibliographique sur les inondations
  • Bibliography
  1. Vitrine des bibliographies
  2. Veille bibliographique sur les inondations
  3. Evaluation of a Coupled CFD and Multi-Body Motion Model for Ice-Structure Interaction Simulation
Veille bibliographique sur les inondationsVeille bibliographique sur les inondations
  • Bibliography

Evaluation of a Coupled CFD and Multi-Body Motion Model for Ice-Structure Interaction Simulation

RIS

Format recommandé pour la plupart des logiciels de gestion de références bibliographiques

BibTeX

Format recommandé pour les logiciels spécialement conçus pour BibTeX

Type de ressource
Article de revue
Auteurs/contributeurs
  • Pourshahbaz, Hanif (Auteur)
  • Ghobrial, Tadros (Auteur)
  • Shakibaeinia, Ahmad (Auteur)
Titre
Evaluation of a Coupled CFD and Multi-Body Motion Model for Ice-Structure Interaction Simulation
Résumé
The interaction of water flow, ice, and structures is common in fluvial ice processes, particularly around Ice Control Structures (ICSs) that are used to manage and prevent ice jam floods. To evaluate the effectiveness of ICSs, it is essential to understand the complex interaction between water flow, ice and the structure. Numerical modeling is a valuable tool that can facilitate such understanding. Until now, classical Eulerian mesh-based methods have not been evaluated for the simulation of ice interaction with ICS. In this paper we evaluate the capability, accuracy, and efficiency of a coupled Computational Fluid Dynamic (CFD) and multi-body motion numerical model, based on the mesh-based FLOW-3D V.2023 R1 software for simulation of ice-structure interactions in several benchmark cases. The model’s performance was compared with results from meshless-based models (performed by others) for the same laboratory test cases that were used as a reference for the comparison. To this end, simulation results from a range of dam break laboratory experiments were analyzed, encompassing varying numbers of floating objects with distinct characteristics, both in the presence and absence of ICS, and under different downstream water levels. The results show that the overall accuracy of the FLOW-3D model under various experimental conditions resulted in a RMSE of 0.0534 as opposed to an overall RMSE of 0.0599 for the meshless methods. Instabilities were observed in the FLOW-3D model for more complex phenomena that involve open boundaries and a larger number of blocks. Although the FLOW-3D model exhibited a similar computational time to the GPU-accelerated meshless-based models, constraints on the processors speed and the number of cores available for use by the processors could limit the computational time.
Publication
Water
Volume
16
Numéro
17
Pages
2454
Date
2024-08-29
Abrév. de revue
Water
Langue
en
DOI
10.3390/w16172454
ISSN
2073-4441
URL
https://www.mdpi.com/2073-4441/16/17/2454
Consulté le
2025-01-13 01 h 05
Catalogue de bibl.
DOI.org (Crossref)
Autorisations
https://creativecommons.org/licenses/by/4.0/
Référence
Pourshahbaz, H., Ghobrial, T., & Shakibaeinia, A. (2024). Evaluation of a Coupled CFD and Multi-Body Motion Model for Ice-Structure Interaction Simulation. Water, 16(17), 2454. https://doi.org/10.3390/w16172454
Lien vers cette notice
https://bibliographies.uqam.ca/riisq/bibliographie/46E774TP

UQAM - Université du Québec à Montréal

  • Veille bibliographique sur les inondations
  • bibliotheques@uqam.ca

Accessibilité Web