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contributor authorK. S. Chan
contributor authorD. W. Gandy
contributor authorW. Liang
contributor authorN. S. Cheruvu
date accessioned2017-05-09T00:37:43Z
date available2017-05-09T00:37:43Z
date copyrightMay, 2010
date issued2010
identifier issn1528-8919
identifier otherJETPEZ-27112#052101_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/143203
description abstractA computational approach has been undertaken to design and assess potential Fe–Cr–Ni–Al systems to produce stable nanostructured corrosion-resistant coatings that form a protective, continuous scale of alumina or chromia at elevated temperatures. The phase diagram computation was modeled using the THERMO-CALC ® software and database (Thermo-Calc® Software, 2007, THERMO-CALC for Windows Version 4, Thermo-Calc Software AB, Stockholm, Sweden; Thermo-Calc® Software, 2007, TCFE5, Version 5, Thermo-Calc Software AB, Stockholm, Sweden) to generate pseudoternary Fe–Cr–Ni–Al phase diagrams to help identify compositional ranges without the undesirable brittle phases. The computational modeling of the grain growth process, sintering of voids and interface toughness determination by indentation, assessed microstructural stability, and durability of the nanocoatings fabricated by a magnetron-sputtering process. Interdiffusion of Al, Cr, and Ni was performed using the DICTRA ® diffusion code (Thermo-Calc Software® , DICTRA , Version 24, 2007, Version 25, 2008, Thermo-Calc Software AB, Stockholm, Sweden) to maximize the long-term stability of the nanocoatings. The computational results identified a new series of Fe–Cr–Ni–Al coatings that maintain long-term stability and a fine-grained microstructure at elevated temperatures. The formation of brittle σ-phase in Fe–Cr–Ni–Al alloys is suppressed for Al contents in excess of 4 wt %. The grain growth modeling indicated that the columnar-grained structure with a high percentage of low-angle grain boundaries is resistant to grain growth. Sintering modeling indicated that the initial relative density of as-processed magnetron-sputtered coatings could achieve full density after a short thermal exposure or heat-treatment. The interface toughness computation indicated that the Fe–Cr–Ni–Al nanocoatings exhibit high interface toughness in the range of 52–366J/m2. The interdiffusion modeling using the DICTRA software package indicated that inward diffusion could result in substantial to moderate Al and Cr losses from the nanocoating to the substrate during long-term thermal exposures.
publisherThe American Society of Mechanical Engineers (ASME)
titleComputational Design of Corrosion-Resistant Fe–Cr–Ni–Al Nanocoatings for Power Generation
typeJournal Paper
journal volume132
journal issue5
journal titleJournal of Engineering for Gas Turbines and Power
identifier doi10.1115/1.3204651
journal fristpage52101
identifier eissn0742-4795
keywordsTemperature
keywordsDiffusion (Physics)
keywordsCoating processes
keywordsCoatings
keywordsSintering
keywordsAluminum coatings
keywordsGrain boundaries
keywordsPhase diagrams
keywordsCorrosion
keywordsDesign
keywordsModeling
keywordsComputation
keywordsToughness
keywordsDensity
keywordsElectric power generation
keywordsEnergy generation
keywordsoxidation
keywordsStability
keywordsAluminum alloys
keywordsComputer software
keywordsDatabases AND Sputtering (Irradiation)
treeJournal of Engineering for Gas Turbines and Power:;2010:;volume( 132 ):;issue: 005
contenttypeFulltext


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