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Faculté des Sciences appliquées
Faculté des Sciences appliquées
MASTER THESIS
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Nonlinearities of an aircraft Piccolo tube: experimental identification and finite element modelling

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Trillet, Pierre ULiège
Promotor(s) : Kerschen, Gaëtan ULiège
Date of defense : 26-Jun-2017/27-Jun-2017 • Permalink : http://hdl.handle.net/2268.2/2627
Details
Title : Nonlinearities of an aircraft Piccolo tube: experimental identification and finite element modelling
Translated title : [fr] Les nonlinéarités du tube Piccolo : identification expérimentale et modélisation par la méthode des éléments finis
Author : Trillet, Pierre ULiège
Date of defense  : 26-Jun-2017/27-Jun-2017
Advisor(s) : Kerschen, Gaëtan ULiège
Committee's member(s) : Ponthot, Jean-Philippe ULiège
Bruls, Olivier ULiège
Bernay, Bruno 
Language : English
Number of pages : 82
Keywords : [en] Nonlinear system identification
[en] Nonlinear vibrations
[en] Piccolo tube
[en] Finite element modelling
[en] Impacts
[en] Acceleration Surface Method
[en] Wavelet transform
[en] Linear model updating
[en] Nonlinear model updating
Discipline(s) : Engineering, computing & technology > Aerospace & aeronautics 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] Nonlinear behaviour can be found in all physical systems, especially in aerospace structures. The aim of this master thesis consists in the improvement of an existing method for nonlinearity identification, the Acceleration Surface Method (ASM) and its application to the Piccolo tube, a widespread wings anti-icing system. The difference between the thermal expansion coefficient of the tube and the one of its support causes the apparition of clearances and thus impacts between these two devices. This method is based on the comparison between results coming from experimental measurements and those coming from numerical simulations performed on an updated nonlinear finite element model. The validation of the method is achieved by testing it on a full-scale F-16 aircraft whose wing-to-payload connections show nonlinear behaviour. Once validated, the method is applied to the first bending mode of the Piccolo tube highlighting the piecewise linear nature of both stiffness and damping nonlinearites. This latter also allows the accurate estimation of the parameters of both nonlinearities. The validation of the nonlinear finite element model is then carried out by comparing experimental measurements from qualification tests, imposed by the aeronautical norm DO160, namely the windmilling and the fan blade-off tests, with simulations results. This yields encouraging results showing that the numerical model is able to accurately represent the nonlinear dynamics of the first bending mode of the tube. This thesis shows that the improved version of the ASM could be used for nonlinear identification of many other industrial cases.


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Access THESIS_TRILLET.pdf
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Access ABSTRACT_TRILLET.pdf
Description: Abstract
Size: 156.33 kB
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Access nl_setup.jpg
Description: Piccolo tube
Size: 240.63 kB
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Access ASM.pdf
Description: ASM
Size: 412.19 kB
Format: Adobe PDF
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Access FRF.pdf
Description: FRF
Size: 18.88 kB
Format: Adobe PDF

Author

  • Trillet, Pierre ULiège Université de Liège > Master ingé. civ. aérospat., à fin.

Promotor(s)

Committee's member(s)

  • Ponthot, Jean-Philippe ULiège Université de Liège - ULg > Département d'aérospatiale et mécanique > LTAS-Mécanique numérique non linéaire
    ORBi View his publications on ORBi
  • Bruls, Olivier ULiège Université de Liège - ULg > Département d'aérospatiale et mécanique > Laboratoire des Systèmes Multicorps et Mécatroniques
    ORBi View his publications on ORBi
  • Bernay, Bruno Sonaca
  • Total number of views 111
  • Total number of downloads 28










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