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Microstructure Evolution in 9Cr Martensitic Steel During Long-Term Creep at 650℃ 被引量:2

Microstructure Evolution in 9Cr Martensitic Steel During Long-Term Creep at 650℃
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摘要 Standardarized creep and rupture strength tests were conducted for commercial T91 martensitic heat-resistant steel at 650℃and corresponding microstructure was characterized by BSED, TEM and EDS. The martensitic microstructure degenerated seriously during creep exposure, including martensitic substructure recovering, carbides coarsening, dissolving and precipitating. EDS analysis shows that the M23C6 carbides in different morphologies have dissimilar compositions. The rod/sheet like M23 C6 particles within the matrix contain more additions, which might precipitate in situ while fine MX particles were re-solving. The high content of silicon in these rod/sheet like M2aC6 carbides is probably related to self diffusion coefficient increasing for the exposed condition at 650 ~C close to Curie temperature To. For those reasons, martensite substructure becomes unstable, and microstructure evolution is accelerated and leads to creep strength deteriorating severely. Standardarized creep and rupture strength tests were conducted for commercial T91 martensitic heat-resistant steel at 650℃and corresponding microstructure was characterized by BSED, TEM and EDS. The martensitic microstructure degenerated seriously during creep exposure, including martensitic substructure recovering, carbides coarsening, dissolving and precipitating. EDS analysis shows that the M23C6 carbides in different morphologies have dissimilar compositions. The rod/sheet like M23 C6 particles within the matrix contain more additions, which might precipitate in situ while fine MX particles were re-solving. The high content of silicon in these rod/sheet like M2aC6 carbides is probably related to self diffusion coefficient increasing for the exposed condition at 650 ~C close to Curie temperature To. For those reasons, martensite substructure becomes unstable, and microstructure evolution is accelerated and leads to creep strength deteriorating severely.
出处 《Journal of Iron and Steel Research International》 SCIE EI CAS CSCD 2012年第7期55-59,共5页
基金 Item Sponsored by National Natural Science Foundation of China(50871076)
关键词 T91 steel creep strength microstructure CARBIDE COARSENING SELF-DIFFUSION T91 steel creep strength microstructure carbide coarsening self-diffusion
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参考文献12

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同被引文献14

  • 1Masuyama,F.History of power plants and progress in heat resistant steels. ISIJ International . 2001 被引量:4
  • 2O. Prat,J. Garcia,D. Rojas,G. Sauthoff,G. Inden.The role of Laves phase on microstructure evolution and creep strength of novel 9%Cr heat resistant steels[J]. Intermetallics . 2013 被引量:1
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  • 4Evolution of dislocation density, size of subgrains and MX-type precipitates in a P91 steel during creep and during thermal ageing at 600<ce:hsp sp="0.25"/> ° C for more than 100,000<ce:hsp sp="0.25"/>h[J]. Materials Science & Engineering A . 2010 (16) 被引量:1
  • 5A. Aghajani,F. Richter,C. Somsen,S.G. Fries,I. Steinbach,G. Eggeler.On the formation and growth of Mo-rich Laves phase particles during long-term creep of a 12% chromium tempered martensite ferritic steel[J]. Scripta Materialia . 2009 (11) 被引量:1
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  • 7K. Sawada,M. Takeda,K. Maruyama,R. Ishii,M. Yamada,Y. Nagae,R. Komine.Effect of W on recovery of lath structure during creep of high chromium martensitic steels[J]. Materials Science & Engineering A . 1999 (1) 被引量:1
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  • 10Suzuki, Kenta,Kumai, Shinji,Toda, Yoshiaki,Kushima, Hideaki,Kimura, Kazuhiro.Two-phase separation of primary MX carbonitride during tempering in creep resistant 9Cr1MoVNb steel. ISIJ International . 2003 被引量:1

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