RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING

This study aims to model, by using a finite element method, the relationship between the hardness and the period Λ of metal/nitride multilayer coatings (Ti0.54Al0.46/Ti0.54Al0.46N)n in order to understand the increase of the hardness at the low periods [1] and then optimise the multilayer coating ar...

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Main Authors: Mehdi Zaoui, Alexandre Bourceret, Yves Gaillard, Sylvain Giljean, Christophe Rousselot, Marie-José Pac, Fabrice Richard
Format: Article
Language:English
Published: CTU Central Library 2020-06-01
Series:Acta Polytechnica CTU Proceedings
Subjects:
Online Access:https://ojs.cvut.cz/ojs/index.php/APP/article/view/6680
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spelling doaj-618ff670270742e7a5c531757d6783a82020-11-25T03:53:24ZengCTU Central LibraryActa Polytechnica CTU Proceedings2336-53822020-06-01270798310.14311/APP.2020.27.00795210RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKINGMehdi Zaoui0Alexandre Bourceret1Yves Gaillard2Sylvain Giljean3Christophe Rousselot4Marie-José Pac5Fabrice Richard6Université Bourgogne Franche-Comté, Institut FEMTO-ST, CNRS/UFC/ENSMM/UTBM, 32 avenue de l’Observatoire, 25000 Besançon, France Institut de recherche technologique, Matériaux, Métallurgie, Procédés, 4 Rue Augustin Fresnel, 57070 METZ, FranceUniversité Bourgogne Franche-Comté, Institut FEMTO-ST, CNRS/UFC/ENSMM/UTBM, 32 avenue de l’Observatoire, 25000 Besançon, FranceUniversité Bourgogne Franche-Comté, Institut FEMTO-ST, CNRS/UFC/ENSMM/UTBM, 32 avenue de l’Observatoire, 25000 Besançon, FranceUniversité de Haute Alsace, LPMT, 2 Rue des Frères Lumière, 68093 Mulhouse, FranceUniversité Bourgogne Franche-Comté, Institut FEMTO-ST, CNRS/UFC/ENSMM/UTBM, 32 avenue de l’Observatoire, 25000 Besançon, FranceUniversité de Haute Alsace, LPMT, 2 Rue des Frères Lumière, 68093 Mulhouse, FranceUniversité Bourgogne Franche-Comté, Institut FEMTO-ST, CNRS/UFC/ENSMM/UTBM, 32 avenue de l’Observatoire, 25000 Besançon, FranceThis study aims to model, by using a finite element method, the relationship between the hardness and the period Λ of metal/nitride multilayer coatings (Ti0.54Al0.46/Ti0.54Al0.46N)n in order to understand the increase of the hardness at the low periods [1] and then optimise the multilayer coating architecture to obtain the best mechanical properties. A 2D axisymmetric finite element model of the Berkovich nanoindentation test was developed. The coating was designed as a stacking of Ti0.54Al0.46 and Ti0.54Al0.46N nanolayers with, in the first hypothesis, equal thickness and perfect interface. The elastoplastic behaviours of the metal and nitride layers were identified by Berkovich nanoindentation experiments and inverse analysis on thick monolayer samples. The indentation curves (P-h) obtained by this model depend on the period Λ of the stacking. Simulated (P-h) curves were compared with experimental data on 2 μm thick films with different periods Λ ranging from 10 to 50 nm deposited by RF magnetron sputtering using reactive gas pulsing process (RGPP). The model forecasts are very consistent with the experience for the largest period but the model does not reproduce the hardness increase at the lowest periods. The Λ = 10 nm coating was analysed by electron energy loss spectroscopy (EELS) on a transmission electron microscope. Results show intermixing of the layers with the presence of nitrogen atoms in the metal layer over a few nanometers [1]. It was concluded that the metal/ceramic interface plays an important role at low periods. The addition in the model of a transition layer in the metal/nitride stacking, with an elastoplastic metal/ceramic medium behaviour, allows to reproduce the nanoindentation experimental curves. The thickness of this transition layer deduced from model updating method is in very good agreement with EELS observations.https://ojs.cvut.cz/ojs/index.php/APP/article/view/6680finite element method, hardness, indentation modulus, nanoindentation, tial/tialn multilayer films
collection DOAJ
language English
format Article
sources DOAJ
author Mehdi Zaoui
Alexandre Bourceret
Yves Gaillard
Sylvain Giljean
Christophe Rousselot
Marie-José Pac
Fabrice Richard
spellingShingle Mehdi Zaoui
Alexandre Bourceret
Yves Gaillard
Sylvain Giljean
Christophe Rousselot
Marie-José Pac
Fabrice Richard
RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING
Acta Polytechnica CTU Proceedings
finite element method, hardness, indentation modulus, nanoindentation, tial/tialn multilayer films
author_facet Mehdi Zaoui
Alexandre Bourceret
Yves Gaillard
Sylvain Giljean
Christophe Rousselot
Marie-José Pac
Fabrice Richard
author_sort Mehdi Zaoui
title RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING
title_short RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING
title_full RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING
title_fullStr RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING
title_full_unstemmed RELATION BETWEEN HARDNESS OF (Ti, Al)N BASED MULTILAYERED COATINGS AND PERIODS OF THEIR STACKING
title_sort relation between hardness of (ti, al)n based multilayered coatings and periods of their stacking
publisher CTU Central Library
series Acta Polytechnica CTU Proceedings
issn 2336-5382
publishDate 2020-06-01
description This study aims to model, by using a finite element method, the relationship between the hardness and the period Λ of metal/nitride multilayer coatings (Ti0.54Al0.46/Ti0.54Al0.46N)n in order to understand the increase of the hardness at the low periods [1] and then optimise the multilayer coating architecture to obtain the best mechanical properties. A 2D axisymmetric finite element model of the Berkovich nanoindentation test was developed. The coating was designed as a stacking of Ti0.54Al0.46 and Ti0.54Al0.46N nanolayers with, in the first hypothesis, equal thickness and perfect interface. The elastoplastic behaviours of the metal and nitride layers were identified by Berkovich nanoindentation experiments and inverse analysis on thick monolayer samples. The indentation curves (P-h) obtained by this model depend on the period Λ of the stacking. Simulated (P-h) curves were compared with experimental data on 2 μm thick films with different periods Λ ranging from 10 to 50 nm deposited by RF magnetron sputtering using reactive gas pulsing process (RGPP). The model forecasts are very consistent with the experience for the largest period but the model does not reproduce the hardness increase at the lowest periods. The Λ = 10 nm coating was analysed by electron energy loss spectroscopy (EELS) on a transmission electron microscope. Results show intermixing of the layers with the presence of nitrogen atoms in the metal layer over a few nanometers [1]. It was concluded that the metal/ceramic interface plays an important role at low periods. The addition in the model of a transition layer in the metal/nitride stacking, with an elastoplastic metal/ceramic medium behaviour, allows to reproduce the nanoindentation experimental curves. The thickness of this transition layer deduced from model updating method is in very good agreement with EELS observations.
topic finite element method, hardness, indentation modulus, nanoindentation, tial/tialn multilayer films
url https://ojs.cvut.cz/ojs/index.php/APP/article/view/6680
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