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Aluminide coating formation on nickel-base superalloys by pack cementation process

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TLDR
In this paper, a detailed study was carried out to investigate the effects of pack powder compositions, coating temperature and time on the aluminide coating formation process on a superalloy CMSX-4 by pack cementation.
Abstract
A detailed study was carried out to investigate the effects of pack powder compositions, coating temperature and time on the aluminide coating formation process on a superalloy CMSX-4 by pack cementation. With the aid of recently developed thermodynamic analytical tools, powder mixtures that are activated by a series of fluoride and chloride salts were analysed and the effectiveness of these activators in transferring and depositing Al was evaluated at a range of coating temperatures. The Al chloride vapours formed at coating temperatures from 900°C to 1100°C were also analysed thermodynamically as a function of Al concentration in the original pack for the powder mixtures activated by 4 wt% CrCl3·6H2O. Based on the thermochemical calculations, a series of coating experiments was carried out. Aluminide coatings were formed at temperatures from 850°C to 1100°C for periods varying from 4 hours to 8 hours using powder mixtures activated by NH4Cl, NaCl and CrCl3·6H2O and AlF3. The effects of changing Al concentration as well as adding small quantities of Cr in the powder mixtures on the coating formation process were also investigated. The aluminide coatings were analysed using a range of techniques including SEM, EDX and XRD. The relationships between the mass gain and coating thickness and structure were investigated. The experimental results were compared with the predictions from thermochemical calculations. Based on the understandings established, an effective approach to control the aluminide coating parameters and structures was identified, which made it possible to optimise powder mixture compositions and coating conditions for different coating requirements.

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Journal ArticleDOI

Relationship between pack chemistry and aluminide coating formation for low-temperature aluminisation of alloy steels

TL;DR: In this paper, a theoretical analysis is provided to relate the coating layer growth kinetics to the pack chemical composition and processing conditions under a set of defined thermodynamic and kinetic conditions for aluminising alloy steels at temperatures below 700°C in an effort to increase their high-temperature oxidation resistance whilst maintaining their microstructure.
Journal ArticleDOI

Synthesis and characterisation of pack cemented aluminide coatings on metals

TL;DR: In this article, an elaboration of iron, nickel and molybdenum aluminides by modification of the surface of the base materials by a pack cementation process is presented.
Journal ArticleDOI

Pack aluminisation of low alloy steels at temperatures below 700 °C

TL;DR: In this article, the feasibility of aluminizing low alloy steels at temperatures below 700 °C by pack cementation process to increase their high temperature durability in oxidative and corrosive environments without adversely affecting their mechanical strength and creep resistance at elevated temperatures was investigated.
Journal ArticleDOI

High-temperature oxidation and hot-corrosion behavior of a sputtered NiCrAlY coating with and without aluminizing

TL;DR: In this paper, a nanocrystalline Ni-30Cr-8Al-0.5Y coating was deposited on a Ni-base superalloy by magnetron sputtering.
Journal ArticleDOI

Codeposition of Al and Si to form oxidation-resistant coatings on γ-TiAl by the pack cementation process

TL;DR: In this article, the conditions for codepositing Al and Si from the vapour phase to form silicide and aluminide diffusion coatings on γ-TiAl with a coherent structure was discussed.
References
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Journal ArticleDOI

The effect on the kinetics of pack aluminization of varying the activator

TL;DR: In this paper, the effect on the kinetics of pack aluminization of nickel of varying the activator type was investigated using AlF3, NaF, NaCl and NaI as activators.
Journal ArticleDOI

Rare-earth modified chromium-aluminide coatings applied by pack cementation method on low-alloy steels

TL;DR: In this paper, the nature, morphology and properties of protective coatings containing Cr, Al and minor amounts of a rare earth element, applied on 2.25 Cr-1 Mo low-alloy steel were presented.
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