Coupling multibody system and granular dynamics application to a 2D benchmark

We present a benchmark to experimentally validate the method we have developed to simulate mechanical devices interacting with granular media. Consequently the method we develop is able to solve problems involving bilateral and unilateral constraints. The mechanical device is modelled with the multi...

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Main Authors: Lantsoght Olivier, Fisette Paul, Dubois Frédéric, Brüls Olivier, Docquier Nicolas
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201714016007
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spelling doaj-dd72a4bc15544bb79c48b6316b28c27a2021-08-02T03:11:23ZengEDP SciencesEPJ Web of Conferences2100-014X2017-01-011401600710.1051/epjconf/201714016007epjconf162375Coupling multibody system and granular dynamics application to a 2D benchmarkLantsoght Olivier0Fisette Paul1Dubois Frédéric2Brüls Olivier3Docquier Nicolas4Université Catholique de LouvainUniversité Catholique de LouvainUniversité de MontpellierUniversité de LiègeUniversité Catholique de LouvainWe present a benchmark to experimentally validate the method we have developed to simulate mechanical devices interacting with granular media. Consequently the method we develop is able to solve problems involving bilateral and unilateral constraints. The mechanical device is modelled with the multibody system approach and is described by the use of relative coordinates. With these coordinates, the bilateral constraints are mainly due to loop-closure conditions (or specific bilateral constraints such as imposed screw-joint motion). The bilateral constraints are solved thanks to the coordinate partitioning method. The problem of contact dynamics, which introduces the unilateral constraints, is solved by a non-linear Gauss-Seidel procedure applied in the contacts coordinates. The procedure accounts for the constrained motion of the mechanism because the coordinate partitioning is also applied to the mapping between the contacts coordinates and the generalized coordinates. Consequently the solution of the unilateral constraints problem is locally compatible with the set of bilateral constraints coming from the mechanical system. The proposed planar benchmark consists of a modified four-bar mechanism blending a set of disks contained in a vibrating box. The numerical results reveals the influence of the vibration frequency on the granular compactness and thus the mechanism motion.https://doi.org/10.1051/epjconf/201714016007
collection DOAJ
language English
format Article
sources DOAJ
author Lantsoght Olivier
Fisette Paul
Dubois Frédéric
Brüls Olivier
Docquier Nicolas
spellingShingle Lantsoght Olivier
Fisette Paul
Dubois Frédéric
Brüls Olivier
Docquier Nicolas
Coupling multibody system and granular dynamics application to a 2D benchmark
EPJ Web of Conferences
author_facet Lantsoght Olivier
Fisette Paul
Dubois Frédéric
Brüls Olivier
Docquier Nicolas
author_sort Lantsoght Olivier
title Coupling multibody system and granular dynamics application to a 2D benchmark
title_short Coupling multibody system and granular dynamics application to a 2D benchmark
title_full Coupling multibody system and granular dynamics application to a 2D benchmark
title_fullStr Coupling multibody system and granular dynamics application to a 2D benchmark
title_full_unstemmed Coupling multibody system and granular dynamics application to a 2D benchmark
title_sort coupling multibody system and granular dynamics application to a 2d benchmark
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2017-01-01
description We present a benchmark to experimentally validate the method we have developed to simulate mechanical devices interacting with granular media. Consequently the method we develop is able to solve problems involving bilateral and unilateral constraints. The mechanical device is modelled with the multibody system approach and is described by the use of relative coordinates. With these coordinates, the bilateral constraints are mainly due to loop-closure conditions (or specific bilateral constraints such as imposed screw-joint motion). The bilateral constraints are solved thanks to the coordinate partitioning method. The problem of contact dynamics, which introduces the unilateral constraints, is solved by a non-linear Gauss-Seidel procedure applied in the contacts coordinates. The procedure accounts for the constrained motion of the mechanism because the coordinate partitioning is also applied to the mapping between the contacts coordinates and the generalized coordinates. Consequently the solution of the unilateral constraints problem is locally compatible with the set of bilateral constraints coming from the mechanical system. The proposed planar benchmark consists of a modified four-bar mechanism blending a set of disks contained in a vibrating box. The numerical results reveals the influence of the vibration frequency on the granular compactness and thus the mechanism motion.
url https://doi.org/10.1051/epjconf/201714016007
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