Graphitization of steels in elevated-temperature service

被引:0
作者
J. R. Foulds
R. Viswanathan
机构
[1] Exponent Failure Analysis Associates,
[2] Inc.,undefined
[3] Electric Power Research Institute,undefined
来源
Journal of Materials Engineering and Performance | 2001年 / 10卷
关键词
Base Metal; Cementite; Ductile Iron; Rupture Life; Iron Carbide;
D O I
暂无
中图分类号
学科分类号
摘要
Prolonged exposure of carbon and low alloy steel components to temperatures exceeding 800 °F (427 °C) can result in several kinds of material microstructural deterioration; for example, creep cavitation, carbide coarsening and/or spheroidization, and, less commonly, graphitization. Graphitization generally results from the decomposition of pearlite (iron + iron carbide) into the equilibrium structure of iron + graphite and can severely embrittle the steel when the graphite particles or nodules form in a planar, continuous manner. Graphitization has resulted in the premature failure of pressure boundary components, including high energy piping and boiler tubes. Failure due to graphitization continues to be of concern in long-term aged carbon and carbon-molybdenum steels, both in weldments and in base metal, where, as recently reported, prior deformation or cold work could accelerate the graphitization process. This paper describes the characteristics and kinetics of graphitization, reviews pertinent laboratory and field experience, and summarizes time-temperature service regimes within which graphitization can be anticipated.
引用
收藏
页码:484 / 492
页数:8
相关论文
共 37 条
[1]  
Emerson R.W.(1944)undefined Trans. ASME 66 5-15
[2]  
Weaver S.H.(1946)undefined Trans. ASME 68 631-631
[3]  
Nuchols J.B.(1959)undefined Mech. Eng. 81 43-45
[4]  
McGuffey J.R.(1980)undefined Microstr. Sci. 8 231-45
[5]  
Pavlichko W.R.(1964)undefined Russ. Castings Prod. 7 317-19
[6]  
Solomon A.(1962)undefined Russ. Castings Prod. 5 235-36
[7]  
Baranov A.A.(1982)undefined Trans. Jpn. Inst. Met. 23 353-59
[8]  
Bumin K.P.(1961)undefined Mem. Sci. Rev. Metall. 58 957-957
[9]  
Tkachenko F.K.(1965)undefined Trans. AIME 233 168-168
[10]  
Okada M.(1988)undefined Therm. Eng. 35 392-94