Cyclic Oxidation and Hot Corrosion Behavior of Plasma-Sprayed CoCrAlY + WC-Co Coating on Turbine Alloys
| dc.contributor.author | Nithin, H.S. | |
| dc.contributor.author | Vijay, D. | |
| dc.contributor.author | Ramesh, M.R. | |
| dc.date.accessioned | 2026-02-05T09:31:03Z | |
| dc.date.issued | 2018 | |
| dc.description.abstract | Components in energy-producing systems suffer a variety of degradation processes such as oxidation and molten salt-induced corrosion as a consequence of complex multi-component gaseous environment. Coatings provide a composition that will grow the protective scale at high temperatures having long-term stability. Plasma spraying was used to deposit CoCrAlY + WC-Co composite coatings on turbine alloys of Hastelloy X and AISI 321. The thermocyclic oxidation behavior of coated alloys was investigated in static air and in molten salt (Na<inf>2</inf>SO<inf>4</inf>-60%V<inf>2</inf>O<inf>5</inf>) environment at 700 °C. The thermogravimetric technique was used to approximate the kinetics of oxidation in 50 cycles, each cycle consisting of heating and cooling. X-ray diffraction and SEM/EDAX techniques are used to characterize the oxide scale formed. Coated alloys showed a lower corrosion rate as compared to uncoated alloys. The coatings subjected to oxidation and hot corrosion showed slow scale growth kinetics. Preferential oxidation of Co, Cr, W and its spinel blocks the transport of oxygen and corrosive species into the coating by providing a barrier, thereby making the oxidation rate to reach steady state. As compared to the substrate alloys, coatings show better hot corrosion resistance. © 2018, ASM International. | |
| dc.identifier.citation | Journal of Failure Analysis and Prevention, 2018, 18, 5, pp. 1133-1142 | |
| dc.identifier.issn | 15477029 | |
| dc.identifier.uri | https://doi.org/10.1007/s11668-018-0499-0 | |
| dc.identifier.uri | https://idr.nitk.ac.in/handle/123456789/24998 | |
| dc.publisher | Springer New York LLC barbara.b.bertram@gsk.com | |
| dc.subject | Aluminum alloys | |
| dc.subject | Aluminum corrosion | |
| dc.subject | Chromium alloys | |
| dc.subject | Cobalt alloys | |
| dc.subject | Composite coatings | |
| dc.subject | Corrosion rate | |
| dc.subject | Corrosion resistance | |
| dc.subject | Corrosion resistant alloys | |
| dc.subject | Corrosive effects | |
| dc.subject | Fused salts | |
| dc.subject | Growth kinetics | |
| dc.subject | High temperature corrosion | |
| dc.subject | Kinetics | |
| dc.subject | Oxidation | |
| dc.subject | Plasma jets | |
| dc.subject | Plasma spraying | |
| dc.subject | Scale (deposits) | |
| dc.subject | Sodium sulfate | |
| dc.subject | Superalloys | |
| dc.subject | Turbines | |
| dc.subject | Vanadium pentoxide | |
| dc.subject | Hot corrosion | |
| dc.subject | Hot corrosion resistance | |
| dc.subject | Kinetics of oxidation | |
| dc.subject | Oxidation and hot corrosions | |
| dc.subject | Oxidation kinetics | |
| dc.subject | Plasma spray process | |
| dc.subject | Preferential oxidation | |
| dc.subject | Scale growth kinetics | |
| dc.subject | Corrosion resistant coatings | |
| dc.title | Cyclic Oxidation and Hot Corrosion Behavior of Plasma-Sprayed CoCrAlY + WC-Co Coating on Turbine Alloys |
