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In situ synthesis procedures were used to process coatings.
In order to improve the deposition efficiency of the cold spray process, coatings were co-deposited with powdered AA5083 using a twin powder feed system that resulted in thick (>300 μm) composite coatings.
A versatile alternative, e.g. to long rectangular magnetrons, are linear arrays of circular planar magnetrons to process coatings over wide path lengths.
In order to understand the formation of vertical crack in SPPS process, coatings of various thicknesses were deposited on a variety of substrates with vastly different thermal properties.
Using a Triplex II plasma gun and an optimized spraying process, coatings with segmentation crack densities up to 8.9 cracks mm− 1, and porosity values lower than 6% were obtained.
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A bimodal microstructure with TiC and TiB2 particles dispersed in fine α-Fe matrix was evolved in the laser processed coatings.
Laser processed coatings showed the formation of a metallurgically sound and diffused substrate coating interface, which significantly increased the coating hardness to 922 ± 183 Hv from that of the base metal hardness of 189 ± 22 Hv.
To decrease the amount of contaminant particles generated during semiconductor manufacturing processes, coatings that can prevent erosion on the inner surfaces and parts of the chamber are required.
To this end, dispersing agents, together with wetting agents, are added to coating fluids during a pigment-dispersion process in coatings manufacture.
However, due to the implantation process, these coatings can be detached from the metal surface.
After a series of deacetylation process, chitosan coatings with increasing DD exhibited significantly decreased surface roughness and increased surface stiffness.
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