Coating of Refractory Surfaces with Fine TiO2 Particles via Gas-Dynamic Cold Spraying

Author:

Aleksieieva Olha1,Bozoglu Mustafa1,Tretiakov Pavlo2ORCID,Toporov Andrii2,Antonyuk Sergiy1ORCID

Affiliation:

1. Department of Mechanical and Process Engineering, Institute of Particle Process Engineering, University of Kaiserslautern-Landau, 67653 Kaiserslautern, Germany

2. Department of Chemical Technology and Chemical Engineering, Faculty of Mechanical Engineering, Electrical Engineering and Chemical Technologies, Donetsk National Technical University, 85300 Lutsk, Ukraine

Abstract

Refractory materials are used worldwide in process equipment. However, gaseous and liquid process products penetrate the surface layer and deep into the volume of refractories, destroying rather expensive constructions that are complicated to repair. To address this challenge, there is a need to develop protective coatings for refractory materials that can limit the penetration of working media and extend their operational lifespan. In this work, the application of gas-dynamic cold spraying (CGDS) to produce a coating on the refractory materials using fine titanium dioxide (TiO2) particles is explored. These particles are accelerated within a nitrogen flow, passing through a Laval nozzle, and then sprayed onto a fireclay surface. The mechanisms of particle deposition and layer formation on porous surfaces through experiments and numerical simulations were investigated. The geometry of a typical refractory pore was determined, which was then incorporated into computational fluid dynamics (CFD) simulations to model the cold spraying process of porous substrates. As a result, the influence of the particle size on its velocity and angle of penetration into pores was established. Experimental findings demonstrate the effective closure of pores and the formation of a particle layer on the refractory surface. Furthermore, the nanoindentation tests for the refractory samples showcase capabilities for checking coating thickness for porous materials.

Funder

Philipp Schwartz Initiative of the Alexander von Humboldt Foundation

Publisher

MDPI AG

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