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Oxidation behaviour of platinum modified aluminide coatings deposited by CVD method on nickel-based superalloys under air atmosphere

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: In this paper the oxidation resistance of platinum modified aluminide coating deposited by CVD method on nickel-based superalloy was evaluated. Design/methodology/approach: Platinum coatings 3 and 7 ^m thick by the electroplating process were deposited. The heat treatment of electroplating coatings at the temperature 1050°C for 2 h under argon atmosphere was performed. Low activity CVD aluminizing process of platinum heat treated coatings (3 and 7^m thick) at the 1050°C for 8 h using IonBond equipment was performed. Oxidation resistance at 1100°C for 1000 h in air atmosphere using furnace of Czylok company was evaluated. The microstructure investigations of platinum and palladium modified aluminide coatings were conducted by the use of optical microscope (Nikon Epiphot 300) and a scanning electron microscope (Hitachi S-3400N) equipped with an Energy Dispersive Spectroscope EDS (VOYAGER of NORAN INSTRUMENTS). The phase composition was identified by X-ray (ARL X’TRAX) diffractometer. The surface roughness parameter -Ra of modified aluminide coatings was evaluated by Perthometer S2 MAHR equipment. Findings: The microstructure of platinum modificated aluminide coatings (3 and 7 m thick) consists of (Ni,Pt)Al phase and two zones: outer and internal one. Low activity CVD aluminizing at 1050°C for 8 h causes the increase of surface roughness parameter of modified coatings. The increase of platinum thickness from 3 to 7 μm lets to get a greater surface roughness parameter of aluminide coatings. On the ground of the obtained results, it was found that platinum modification of aluminide coatings provides to increase of oxidation resistance Ni-based substrates. Practical implications: The platinum modified aluminide coatings are widely used as coatings for turbine blades of aircraft engines. Originality/value: It was proved that platinum modification of aluminide coatings has a positive effect on the oxidation resistance of substrate.
Rocznik
Strony
204--210
Opis fizyczny
Bibliogr. 15 poz., rys., tab.
Twórcy
autor
  • R&D Laboratory for Aerospace Materials, Rzeszow University of Technology, ul. W. Pola 2, 35-959 Rzeszów, Poland
  • R&D Laboratory for Aerospace Materials, Rzeszow University of Technology, ul. W. Pola 2, 35-959 Rzeszów, Poland
Bibliografia
  • [1] J. Sieniawski, Nickel and titanium alloys in aircraft turbine engines, Advances in Manufacturing Science and Technology 27/3 (2003) 23-24.
  • [2] Y. Tamarin, Protective coatings for turbine blades, ASM International, 2002.
  • [3] L. Swadźba, M. Hetmańczyk, B. Mendala, Corrosion protection issues of some aircraft engine parts against high temperature degradation, Corrosion Protection 4 (2006) 148-152.
  • [4] J. Angenete, K. Stiller, A comparative study of two inward grown Pt modified Al diffusion coatings on a single crystal Ni base superalloy, Materials Science and Engineering A 316 (2001) 182-194.
  • [5] A.L. Purvis, B.M. Warnes, The effects of platinum concentration on the oxidation resistance of superalloys coated with single-phase platinum aluminide, Surface and Coatings Technology 146-147 (2001) 1-6.
  • [6] V. Tolpygo, D. Clarke, Surface rumpling of a (Ni,Pt)Al bond coat induced by cyclic oxidation, Acta Materialia 48 (2000) 3283-3293.
  • [7] D. Das, V. Singh, Effect of Al content on microstructure and cyclic oxidation performance of Pt-aluminide coatings, Oxidation of Metals 57 (2002) 245-266.
  • [8] D. Das, M. Roy, V. Singh, S. Joshi, Microstructural degradation of plain and platinum aluminide coatings on superalloy CM247 during isothermal oxidation, Materials Science and Technology 15 (1999) 1199-1208.
  • [9] G. Krishna, D. Das, V. Singh, S. Joshi, Role of Pt content in the microstructural development and oxidation performance of Pt-aluminide coatings produced using a high-activity aluminizing process, Materials Science and Engineering A 251 (1998) 40-47.
  • [10] Y. Wang, G. Sayre, Factors affecting the microstructure of platinum-modified aluminide coatings during a vapor phase aluminizing process, Surface and Coatings Technology 203 (2009) 1264-1272.
  • [11] M. Yavorska, J. Sieniawski, Effect of diffusion on platinum coatings deposited on the surface of nickel based superalloy by the electroplating process, Archives of Materials Science and Engineering 44/2 (2010) 5-9.
  • [12] M. Yavorska, J. Sieniawski, T. Gancarczyk, Microstructure investigation of aluminide coatings after platinum modification deposited by CVD method on Inconel 713 LC Ni-base superalloy (in review).
  • [13] F. Pedraza, A. Kennedy, J. Kopecek, P. Moretto, Investigation of the microstructure of platinum-modified aluminide coatings, Surface and Coatings Technology 200 (2006) 4032-4039.
  • [14] Y. Niu, W. Wu, D. Boone, J. Smith, J. Zhang, C. Zhen, Oxidation behavior of simple and Pt-modified aluminide coatings on IN738 at 1100°C, Journal de Physique IV 3 (1993) 511-519.
  • [15] M. Zielińska, J. Sieniawski, M. Yavorska, M. Motyka, Influence of chemical composition of nickel based superalloys on the formation of aluminide coatings, Archives of Metallurgy and Materials 56/1 (2011) 185-189.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ebe636a7-5c99-4cc2-9545-9f7f247da2a7
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