Numerical and Experimental Investigation of Thermal Barrier Effects of CNT-Reinforced Fly Ash/Alumina Coatings in Diesel Engine Pistons

dc.contributor.authorChavana, N.
dc.contributor.authorSarkar, B.
dc.contributor.authorJambagi, S.C.
dc.date.accessioned2026-02-03T13:19:39Z
dc.date.issued2025
dc.description.abstractFly ash (FA), an industrial byproduct from coal combustion, presents significant disposal challenges, especially in developing nations. Given its mineralogical properties, FA shows potential in thermal spray coatings. This study evaluates FA-based coatings for pistons to improve thermal management in internal combustion engines through numerical simulations, analyzing their effects on the temperature distribution, thermal stress, and combustion efficiency. FA coatings were also applied to marine-grade steel with additives (50 wt % Al<inf>2</inf>O<inf>3</inf> and 0-2 wt % CNT) to assess high-temperature performance. Microstructural analysis revealed that 2 wt % CNT-reinforced (2CAF) coatings showed agglomeration, reducing microhardness by ?9.27% compared to 1 wt % CNT-reinforced (1CAF) coatings. The XRD analysis of 1CAF indicated ?56.51% transformation of corundum to ?-alumina, lowering thermal conductivity by ?15.40% compared to alumina/FA (AF) coatings, while 2CAF coatings showed increased conductivity due to CNT inhomogeneity. For piston applications, simulations showed an ?24.59% rise in maximum surface temperature, from 241.39 to 300.76 °C, and an ?62.06% reduction in heat flux, indicating enhanced durability and reduced cold-start emissions. Thermal cycling demonstrated that 1CAF coatings outlasted AF and 2CAF, suggesting FA-based TBCs as sustainable and economical options for enhanced engine performance and waste valorization. © 2025 American Chemical Society.
dc.identifier.citationACS Applied Materials and Interfaces, 2025, 17, 26, pp. 38411-38426
dc.identifier.issn19448244
dc.identifier.urihttps://doi.org/10.1021/acsami.5c03384
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/20188
dc.publisherAmerican Chemical Society
dc.subjectAdditives
dc.subjectAlumina
dc.subjectAluminum alloys
dc.subjectAluminum oxide
dc.subjectCoal ash
dc.subjectCoal combustion
dc.subjectDiesel engines
dc.subjectEngine pistons
dc.subjectHeat flux
dc.subjectMarine engines
dc.subjectReinforcement
dc.subjectThermal barrier coatings
dc.subjectThermal conductivity
dc.subjectWaste incineration
dc.subjectAlumina coating
dc.subjectBarrier coatings
dc.subjectBarrier effects
dc.subjectExperimental investigations
dc.subjectIndustrial by-products
dc.subjectNumerical investigations
dc.subjectSimulation
dc.subjectThermal
dc.subjectThermal barrier
dc.subjectThermal-cycling
dc.subjectFly ash
dc.subjectThermal cycling
dc.subjectaluminum oxide
dc.subjectcarbon nanotube
dc.subjectsteel
dc.subjectarticle
dc.subjectcoal
dc.subjectcold
dc.subjectcombustion
dc.subjectconductance
dc.subjectcontrolled study
dc.subjectdiesel engine
dc.subjectfly ash
dc.subjecthigh temperature
dc.subjectinternal combustion engine
dc.subjectmicrohardness
dc.subjectnormal human
dc.subjectpharmaceutics
dc.subjectsimulation
dc.subjecttemperature
dc.subjecttemperature stress
dc.subjectthermal conductivity
dc.subjectthermal spraying
dc.subjectwaste valorization
dc.titleNumerical and Experimental Investigation of Thermal Barrier Effects of CNT-Reinforced Fly Ash/Alumina Coatings in Diesel Engine Pistons

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