Microstructural Characterization and Hot Corrosion Behavior of Plasma-Sprayed Fe17Cr2Ni0.18C/Fly Ash Cenosphere-Based Composite Coating

dc.contributor.authorHanumanthlal, S.
dc.contributor.authorSiddaraju, C.
dc.contributor.authorRamesh, M.R.
dc.contributor.authorThirtha Prasada, H.P.
dc.contributor.authorSomasunder, B.
dc.contributor.authorVirupakshappa, L.
dc.date.accessioned2026-02-05T09:27:18Z
dc.date.issued2021
dc.description.abstractThe current investigation studies the microstructure and high-temperature hot corrosion behavior of plasma-sprayed coatings. The composition of Fe17Cr2Ni0.18C and fly ash cenosphere powder is maintained in the 0%, 5%, 10%, and 15% ratio by weight percent, respectively. Both powder mixtures were thoroughly blended correspondingly and coated on T22 boiler steel tubings. Thermocyclic hot corrosion studies were examined in a liquid salt condition of Na2SO4 - 60% V2O5 for 17 cycles of 51 h at 600°C on bare and coated steels. Thermogravimetric practice was used to establish the kinetics of hot corrosion of uncoated and coated steels. As-coated samples are studied for microstructure and microhardness. X-ray diffraction (XRD), scanning electron microscopy (SEM)/energy-dispersive spectroscopy, and X-ray mapping characterization techniques have been utilized for structural analysis of the as-coated and hot-corroded samples. It was observed that FeCrNiC/cenosphere-coated steels showed better hot corrosion resistance than the uncoated steels. The coated steels follow the parabolic rate law of oxidation, and parabolic rate constant values are lower in comparison to the uncoated steels. Better resistance is provided by the high-temperature permanence of mullite, alumina, and defensive oxide layer of silicon that is formed at elevated temperatures. ©
dc.identifier.citationSAE International Journal of Materials and Manufacturing, 2021, 14, 3, pp. 259-274
dc.identifier.issn19463979
dc.identifier.urihttps://doi.org/10.4271/05-14-03-0017
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/23298
dc.publisherSAE International
dc.subjectAlumina
dc.subjectAluminum oxide
dc.subjectComposite coatings
dc.subjectCorrosion resistance
dc.subjectCorrosive effects
dc.subjectFly ash
dc.subjectHigh temperature corrosion
dc.subjectMicrostructure
dc.subjectMullite
dc.subjectPlasma jets
dc.subjectRate constants
dc.subjectScanning electron microscopy
dc.subjectSilicate minerals
dc.subjectSodium sulfate
dc.subjectSprayed coatings
dc.subjectSteel corrosion
dc.subjectVanadium pentoxide
dc.subjectCharacterization techniques
dc.subjectElevated temperature
dc.subjectHigh temperature hot corrosions
dc.subjectHot corrosion resistance
dc.subjectMicro-structural characterization
dc.subjectParabolic rate constants
dc.subjectParabolic rate law
dc.subjectPlasma-sprayed coatings
dc.subjectPlasma spraying
dc.titleMicrostructural Characterization and Hot Corrosion Behavior of Plasma-Sprayed Fe17Cr2Ni0.18C/Fly Ash Cenosphere-Based Composite Coating

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