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

被引:86
作者
Xiang, ZD [1 ]
Datta, PK [1 ]
机构
[1] Northumbria Univ, Sch Engn & Technol, Adv Mat Res Inst, Newcastle Upon Tyne NE1 8ST, Tyne & Wear, England
关键词
pack aluminising process; alloy steels; oxidation resistance;
D O I
10.1016/j.surfcoat.2003.10.046
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This study aims to investigate the feasibility of aluminising low alloy steels at temperatures below 700 T 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. Packs activated by AICl(3), AIF(3), NaCl and NaF were used to carry out coating deposition experiments at 650 T in an attempt to identify the most suitable activator for the intended pack aluminising process. Once this was achieved, a series of further experiments were undertaken to investigate the effects of pack composition, deposition temperature and time on the kinetics of coating growth process. The pack Al content was varied from I to 6 wt.%, deposition temperature from 600 to 750 degreesC and deposition time from I to 16 h. Within the ranges of these parameters, it was observed that these parameters only affected the coating thickness, but not the surface Al concentration and with the packs activated by AlCl3, the coatings formed via an inward reactive Al diffusion mechanism, which led to the formation of a surface Fe14Al86 layer and an inner FeAl3 layer. Thermochemical calculations were also undertaken to analyse the equilibrium vapour pressures of depositing halide species (AlF or AlCl) generated at deposition temperatures in packs activated by different halide salts. The results obtained were discussed in relation to the observed deposition tendencies of these packs and their influence on the kinetics of coating growth. (C) 2003 Elsevier B.V. All rights reserved.
引用
收藏
页码:108 / 115
页数:8
相关论文
共 12 条
[1]   Microstructural stability and creep rupture strength of the martensitic steel P92 for advanced power plant [J].
Ennis, PJ ;
Zielinska-Lipiec, A ;
Wachter, O ;
CzyrskaFilemonowicz, A .
ACTA MATERIALIA, 1997, 45 (12) :4901-4907
[2]   THE EFFECT ON THE KINETICS OF PACK ALUMINIZATION OF VARYING THE ACTIVATOR [J].
GUPTA, BK ;
SEIGLE, LL .
THIN SOLID FILMS, 1980, 73 (02) :365-371
[3]   KINETIC-STUDY OF ALUMINIZATION OF IRON BY USING THE PACK CEMENTATION TECHNIQUE [J].
KUNG, SC ;
RAPP, RA .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1988, 135 (03) :731-741
[4]  
LAND CE, 1985, JPN J APPL PHYS, V24, P134
[5]   Comparison of the high-temperature oxidation of uncoated and CVD-FBR aluminized AISI-304 stainless steel [J].
Pérez, FJ ;
Pedraza, F ;
Hierro, MP ;
Balmain, J ;
Bonnet, G .
OXIDATION OF METALS, 2002, 58 (5-6) :563-588
[6]  
Voudouris N, 1998, HIGH TEMP MATER P-US, V2, P165
[7]   Deposition of silicon modified aluminide coatings on nickel base superalloys by pack cementation process [J].
Xiang, ZD ;
Datta, PK .
MATERIALS SCIENCE AND TECHNOLOGY, 2003, 19 (07) :935-942
[8]   Pack codeposition of Al and Cr to form diffusion coatings resistant to high temperature oxidation and corrosion for γ-TiAl [J].
Xiang, ZD ;
Rose, SR ;
Datta, PK .
MATERIALS SCIENCE AND TECHNOLOGY, 2002, 18 (12) :1479-1484
[9]   Conditions for formation of coherent aluminide coatings on γ-TiAl by pack cementation process [J].
Xiang, ZD ;
Rose, SR ;
Datta, PK .
SURFACE ENGINEERING, 2002, 18 (05) :373-380
[10]   Co-deposition of aluminide and silicide coatings on γ-TiAl by pack cementation process [J].
Xiang, ZD ;
Rose, SR ;
Burnell-Gray, JS ;
Datta, PK .
JOURNAL OF MATERIALS SCIENCE, 2003, 38 (01) :19-28