Vapors and Droplets Mixture Deposition of Metallic Coatings by Very Low Pressure Plasma Spraying
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Titre | Vapors and Droplets Mixture Deposition of Metallic Coatings by Very Low Pressure Plasma Spraying |
Type de publication | Journal Article |
Year of Publication | 2014 |
Auteurs | Vautherin B., Planche M.-P, Bolot R., Quet A., Bianchi L., Montavon G. |
Journal | JOURNAL OF THERMAL SPRAY TECHNOLOGY |
Volume | 23 |
Pagination | 596-608 |
Date Published | APR |
Type of Article | Article |
ISSN | 1059-9630 |
Mots-clés | aluminum, coating properties, computational fluid dynamic, feedstock powder size, optical emission spectroscopy, Very low pressure plasma spraying |
Résumé | In recent years, the very low pressure plasma-spraying (VLPPS) process has been intensely developed and implemented to manufacture thin, dense and finely structured ceramic coatings for various applications, such as Y2O3 for diffusion barriers, among other examples. This paper aims at presenting developments carried out on metallic coatings. Aluminum was chosen as a demonstrative material due to its ``moderate'' vaporization enthalpy (i.e., 38.23 KJ cm(-3)) compared to the one of copper (i.e., 55.33 KJ cm(-3)), cobalt (i.e., 75.03 KJ cm(-3)), or even tantalum (i.e., 87.18 KJ cm(-3)). The objective of this work is primarily to better understand the behavior of a solid precursor injected into the plasma jet leading to the formation of vapors and to better control the factors affecting the coating structure. Nearly dense aluminum coatings were successfully deposited by VLPPS at 100 Pa with an intermediate power plasma torch (i.e., Sulzer Metco F4 type gun with maximum power of 45 kW). Optical emission spectroscopy (OES) was implemented to study and analyze the vapor behavior into the plasma jet. Simplified CFD modeling allowed better understanding of some of the thermo-physical mechanisms. The effect of powder-size distribution, substrate temperature and spray distance were studied. The phase composition and microstructural features of the coatings were characterized by XRD and SEM. Moreover, Vickers microhardness measurements were implemented. |
DOI | 10.1007/s11666-014-0059-4 |