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Faculté des Sciences appliquées
Faculté des Sciences appliquées
Mémoire

Isogeometric Analysis for Shell Structures: Capabilities, Limitations and Industrial Applications for Numerical Simulations with LS-DYNA Software GDTech

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Vanhaverbeke, Irina ULiège
Promoteur(s) : Boman, Romain ULiège
Date de soutenance : 29-jui-2026/30-jui-2026 • URL permanente : http://hdl.handle.net/2268.2/26134
Détails
Titre : Isogeometric Analysis for Shell Structures: Capabilities, Limitations and Industrial Applications for Numerical Simulations with LS-DYNA Software GDTech
Auteur : Vanhaverbeke, Irina ULiège
Date de soutenance  : 29-jui-2026/30-jui-2026
Promoteur(s) : Boman, Romain ULiège
Membre(s) du jury : Duchene, Laurent ULiège
Massaux, Nicolas 
Langue : Anglais
Mots-clés : [en] IGA
[en] Isogeometric analysis
[en] LS-DYNA
[en] Crash
Discipline(s) : Ingénierie, informatique & technologie > Ingénierie mécanique
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] Automotive crash simulations are a core activity in the engineering industry, where accuracy and
workflow efficiency are critical. In the classical finite element analysis, the mesh generation process is
time-consuming and introduces geometric approximation errors, which motivates the investigation of
isogeometric analysis as an alternative. IGA uses the same NURBS basis functions that describe the
CAD geometry to approximate the solution fields, eliminating the meshing step and preserving the
exact geometry throughout the analysis.
This thesis represents a first step toward the adoption of IGA in industrial crash simulations at
GDTech, using LS-DYNA as the simulation environment. Since most parts in crash simulations
are modelled as thin-walled structures, this study focuses on shell elements. The study follows a
progressive approach, starting from simple elastic benchmarks and increasing the complexity toward
dynamic crash scenarios, comparing IGA with classical FEM at each stage.
The results demonstrate that IGA correctly reproduces the mechanical behaviour in elastic, plastic,
and dynamic crash cases. For equivalent mesh sizes, IGA provides smoother and more accurate stress
fields, and can achieve similar accuracy with coarser meshes and fewer degrees of freedom. However,
the computational cost is significantly higher, driven by denser system matrices, contact treatment
through an interpolation mesh, and the critical time step limitation imposed by the patch boundary
elements.
IGA is a promising method for industrial crash simulations, but its adoption should be carefully
considered. It is most beneficial when geometric accuracy and smooth results are required, and when
meshing time savings justify the increased simulation cost.


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Auteur

  • Vanhaverbeke, Irina ULiège Université de Liège > Master ing. civ. aéro., fin. spéc. aer. eng.

Promoteur(s)

Membre(s) du jury

  • Duchene, Laurent ULiège Université de Liège - ULiège > Département ArGEnCo > Analyse multi-échelles des matériaux et struct. du gén. civ.
    ORBi Voir ses publications sur ORBi
  • Massaux, Nicolas








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