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Faculté des Sciences appliquées
Faculté des Sciences appliquées
MASTER THESIS

Study and Development of Dimensioning Methods for Fastening Elements Using Finite Element Method in an Industrial Context Integration internship

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Detheux, Justine ULiège
Promotor(s) : Duchene, Laurent ULiège
Date of defense : 8-Sep-2025/9-Sep-2025 • Permalink : http://hdl.handle.net/2268.2/24803
Details
Title : Study and Development of Dimensioning Methods for Fastening Elements Using Finite Element Method in an Industrial Context Integration internship
Translated title : [fr] Étude et développement de méthodes de dimensionnement pour les éléments de fixation à l'aide de la méthode des éléments finis dans un contexte industriel
Author : Detheux, Justine ULiège
Date of defense  : 8-Sep-2025/9-Sep-2025
Advisor(s) : Duchene, Laurent ULiège
Committee's member(s) : Béchet, Eric ULiège
Chauveheid, Maxime 
Language : English
Number of pages : 159
Keywords : [en] Threaded joints, preload, static strength, fatigue strength, analytical modeling, finite element analysis, VDI guideline, flexural beam model
Discipline(s) : Engineering, computing & technology > Aerospace & aeronautics engineering
Engineering, computing & technology > Mechanical engineering
Engineering, computing & technology > Materials science & engineering
Funders : GDTech Engineering
Target public : Researchers
Professionals of domain
Student
Institution(s) : Université de Liège, Liège, Belgique
Degree: Master en ingénieur civil en aérospatiale, à finalité spécialisée en "aerospace engineering"
Faculty: Master thesis of the Faculté des Sciences appliquées

Abstract

[en] This thesis, carried out in collaboration with GDTech, focuses on the ana-
lytical and numerical evaluation of bolted and screwed joints, with the aim of assessing
the accuracy and limitations of simplified models compared to finite element simulations.
Bolted and screwed joints are widely used in mechanical and aeronautical engineering,
where their reliability is essential to ensure the overall performance and safety of struc-
tures. Despite their apparent simplicity, their behaviour is complex, as it depends on
numerous phenomena such as preload, load transfer, bending effects, thread contact and
fatigue.
An analytical model was developed in Python to calculate the preload, the stiffness dis-
tribution, the von Mises stresses, as well as the different potential modes of failure of
threaded assemblies. Several approaches from the literature were integrated, allowing the
analysis to be adapted to different cases. In addition, finite element simulations were car-
ried out using Siemens NX, including the modelling of contacts and boundary conditions,
the introduction of preload and the application of external loads up to failure.
The comparison between the two approaches shows a good overall consistency, particularly
in the prediction of stresses induced by preload and in the general trend of stress evolution
under external loading. However, some differences appear. At low loads, the analytical
model predicts higher stresses due to the explicit consideration of the tightening torque.
At higher loads, NX highlights local stress concentrations near geometric transition zones,
potentially overestimating stresses since the fillet radius is not modeled. The analytical
model was then applied to industrial cases studied at GDTech, confirming its relevance
for stress analysis and for the assessment of thread stripping.
Overall, this work shows that the analytical model developed provides reliable estimates
and allows the detection of potential failures. Nevertheless, it is important to remain criti-
cal of the simplifying assumptions that affect its accuracy and to complement the analysis
with numerical simulations.


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Author

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

Promotor(s)

Committee's member(s)

  • Béchet, Eric ULiège Université de Liège - ULiège > Département d'aérospatiale et mécanique > Conception géométrique assistée par ordinateur
    ORBi View his publications on ORBi
  • Chauveheid, Maxime








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