Master thesis and internship[BR]- Master's thesis : Towards a new constitutive model for gelatin impacts modelling[BR]- Integration Internship
Radermecker, Arnaud
Promoteur(s) : Ponthot, Jean-Philippe
Date de soutenance : 27-jui-2022/28-jui-2022 • URL permanente : http://hdl.handle.net/2268.2/14558
Détails
Titre : | Master thesis and internship[BR]- Master's thesis : Towards a new constitutive model for gelatin impacts modelling[BR]- Integration Internship |
Titre traduit : | [fr] Vers un nouveau modèle constitutif de la gélatine pour modéliser des impacts multiples |
Auteur : | Radermecker, Arnaud |
Date de soutenance : | 27-jui-2022/28-jui-2022 |
Promoteur(s) : | Ponthot, Jean-Philippe |
Membre(s) du jury : | Boman, Romain
Ruess, Jean-Sébastien |
Langue : | Anglais |
Nombre de pages : | 109 |
Mots-clés : | [fr] bird ingestion [fr] gelatin modelling [fr] constitutive model [fr] smoothed-particule hydrodynamics [fr] LS-DYNA [fr] Safran Aero Boosters |
Discipline(s) : | Ingénierie, informatique & technologie > Ingénierie aérospatiale |
Institution(s) : | Université de Liège, Liège, Belgique |
Diplôme : | Master en ingénieur civil en aérospatiale, à finalité spécialisée en "aerospace engineering" |
Faculté : | Mémoires de la Faculté des Sciences appliquées |
Résumé
[en] A new constitutive model is proposed for ballistic gelatin, considered as a bird surrogate,
to simulate bird ingestion in new generation aircraft engines using LS–DYNA. The stress–
strain relation is an isotropic hyperelastic model with a Mooney–Rivlin strain energy
function and an uncoupled volumetric/deviatoric response. Gelatin quasi–incompressibility
is actually treated with a multiplicative decomposition of the deformation gradient. The
latter aims at to remove the hypothesis and limitations of the current hydrodynamics
model used. It considers gelatin as an actual solid instead of a fluid. Since this material
model does not exist natively in LS–DYNA, it is programmed in a user–material Fortran
subroutine as part of the software’s user–defined–features. The implementation is validated
by comparing simulation results with their analytical solutions. An influence study is
conducted on the material constants and on the parameters of the numerical method used:
the smoothed–particle hydrodynamics. The goal being to identify their effects on the
responses, stability, robustness, computation time, etc. A correlation with a real test is
performed, and the results are compared with the previous material model. This new
constitutive model presents interesting results, and offers a more physical response of the
gelatin on certain points compared to the hydrodynamics. Indeed, this material model
adds more cohesion in the material, which may enable a better representation of multiple
impacts simulations. However, a proper calibration and identification of its parameters are
still required
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