A multiscale DEM–FEM coupled approach for the investigation of granules as crash-absorber in ship building

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  • Technische Universität Hamburg (TUHH)
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OriginalspracheEnglisch
Seiten (von - bis)179-197
Seitenumfang19
FachzeitschriftComputational Particle Mechanics
Jahrgang9
Ausgabenummer1
Frühes Online-Datum5 Apr. 2021
PublikationsstatusVeröffentlicht - Feb. 2022

Abstract

This paper covers a numerical analysis of a novel approach to increasing the crashworthiness of double hull ships. As proposed in Schöttelndreyer (Füllstoffe in der Konstruktion: ein Konzept zur Verstärkung vonSchiffsseitenhüllen, Technische Uni-versitt Hamburg, Hamburg, 2015), it involves the usage of granular materials in the cavity of the double hull ship. For the modeling of this problem, the discrete element method (DEM) is used for the granules while the finite element method is used for the ship’s structure. In order to account for the structural damage caused by collision, a gradient-enhanced ductile damage model is implemented. In addition to avoid locking, an enhanced strain-based formulation is used. For large-scale problems such as the one in the current study, modeling of all granules with realistic size can be computationally expensive. A two-scale model based on the work of Wellmann and Wriggers (Comput Methods Appl Mech Eng 205:46–58, 2012) is applied—and the region of significant localization is modeled with the DEM, while a continuum model is used for the other regions. The coupling of both discretization schemes is based on the Arlequin method. Numerical homogenization is used to estimate the material parameters of the continuum region with the granules. This involves the usage of meshless interpolation functions for the projection of particle displacement and stress onto a background mesh. Later, the volume-averaged stress and strain within the representative volume element is used to estimate the material parameters. At the end, the results from the combined numerical model are compared with the results from the experiments given in Woitzik and Düster (Ships Offshore Struct 1–12, 2020). This validates both the accuracy of the numerical model and the proposed idea of increasing the crashworthiness of double hull vessels with the granular materials.

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A multiscale DEM–FEM coupled approach for the investigation of granules as crash-absorber in ship building. / Chaudry, Mohsin Ali; Woitzik, Christian; Düster, Alexander et al.
in: Computational Particle Mechanics, Jahrgang 9, Nr. 1, 02.2022, S. 179-197.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Chaudry MA, Woitzik C, Düster A, Wriggers P. A multiscale DEM–FEM coupled approach for the investigation of granules as crash-absorber in ship building. Computational Particle Mechanics. 2022 Feb;9(1):179-197. Epub 2021 Apr 5. doi: 10.1007/s40571-021-00401-5
Chaudry, Mohsin Ali ; Woitzik, Christian ; Düster, Alexander et al. / A multiscale DEM–FEM coupled approach for the investigation of granules as crash-absorber in ship building. in: Computational Particle Mechanics. 2022 ; Jahrgang 9, Nr. 1. S. 179-197.
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title = "A multiscale DEM–FEM coupled approach for the investigation of granules as crash-absorber in ship building",
abstract = "This paper covers a numerical analysis of a novel approach to increasing the crashworthiness of double hull ships. As proposed in Sch{\"o}ttelndreyer (F{\"u}llstoffe in der Konstruktion: ein Konzept zur Verst{\"a}rkung vonSchiffsseitenh{\"u}llen, Technische Uni-versitt Hamburg, Hamburg, 2015), it involves the usage of granular materials in the cavity of the double hull ship. For the modeling of this problem, the discrete element method (DEM) is used for the granules while the finite element method is used for the ship{\textquoteright}s structure. In order to account for the structural damage caused by collision, a gradient-enhanced ductile damage model is implemented. In addition to avoid locking, an enhanced strain-based formulation is used. For large-scale problems such as the one in the current study, modeling of all granules with realistic size can be computationally expensive. A two-scale model based on the work of Wellmann and Wriggers (Comput Methods Appl Mech Eng 205:46–58, 2012) is applied—and the region of significant localization is modeled with the DEM, while a continuum model is used for the other regions. The coupling of both discretization schemes is based on the Arlequin method. Numerical homogenization is used to estimate the material parameters of the continuum region with the granules. This involves the usage of meshless interpolation functions for the projection of particle displacement and stress onto a background mesh. Later, the volume-averaged stress and strain within the representative volume element is used to estimate the material parameters. At the end, the results from the combined numerical model are compared with the results from the experiments given in Woitzik and D{\"u}ster (Ships Offshore Struct 1–12, 2020). This validates both the accuracy of the numerical model and the proposed idea of increasing the crashworthiness of double hull vessels with the granular materials.",
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author = "Chaudry, {Mohsin Ali} and Christian Woitzik and Alexander D{\"u}ster and Peter Wriggers",
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AU - Chaudry, Mohsin Ali

AU - Woitzik, Christian

AU - Düster, Alexander

AU - Wriggers, Peter

N1 - Funding Information: The support of the DFG (Deutsche Forschungsgemeinschaft) under grant number WR 19/55 and DU 405/9 is gratefully acknowledged.

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N2 - This paper covers a numerical analysis of a novel approach to increasing the crashworthiness of double hull ships. As proposed in Schöttelndreyer (Füllstoffe in der Konstruktion: ein Konzept zur Verstärkung vonSchiffsseitenhüllen, Technische Uni-versitt Hamburg, Hamburg, 2015), it involves the usage of granular materials in the cavity of the double hull ship. For the modeling of this problem, the discrete element method (DEM) is used for the granules while the finite element method is used for the ship’s structure. In order to account for the structural damage caused by collision, a gradient-enhanced ductile damage model is implemented. In addition to avoid locking, an enhanced strain-based formulation is used. For large-scale problems such as the one in the current study, modeling of all granules with realistic size can be computationally expensive. A two-scale model based on the work of Wellmann and Wriggers (Comput Methods Appl Mech Eng 205:46–58, 2012) is applied—and the region of significant localization is modeled with the DEM, while a continuum model is used for the other regions. The coupling of both discretization schemes is based on the Arlequin method. Numerical homogenization is used to estimate the material parameters of the continuum region with the granules. This involves the usage of meshless interpolation functions for the projection of particle displacement and stress onto a background mesh. Later, the volume-averaged stress and strain within the representative volume element is used to estimate the material parameters. At the end, the results from the combined numerical model are compared with the results from the experiments given in Woitzik and Düster (Ships Offshore Struct 1–12, 2020). This validates both the accuracy of the numerical model and the proposed idea of increasing the crashworthiness of double hull vessels with the granular materials.

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JO - Computational Particle Mechanics

JF - Computational Particle Mechanics

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