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易吴钰等:C和Si元素对奥氏体不锈钢组织构成及凝固路线的影响 185 [4]Barbier F,Benamati G,Fazio C,et al.Compatibility tests of steels primary austenite solidified stainless steel welds.Metall Trans A, in flowing liquid lead-bismuth.J Nuc/Mater,2001,295(2-3):149 1983,141):23 [5]Lambrinou K,Charalampopoulou E,Van der Donck T,et al. [15]Fu J W,Sun J J,Cen X,et al.Growth behavior and orientation Dissolution corrosion of 316L austenitic stainless steels in contact relationships in AISI 304 stainless steel during directional with static liquid lead-bismuth eutectic (LBE)at 500 C.J Nuc/ solidification.Mater Charact,2018,139:241 Mater,2017,490:9 [16]Song Y,Baker T N,McPherson N A.A study of precipitation in [6]Johnson A L,Parsons D,Manzerova J,et al.Spectroscopic and as-welded 316LN plate using 316L/317L weld metal.Mater Sci microscopic investigation of the corrosion of 316/316L stainless EgA,1996,212(2):228 steel by lead-bismuth eutectic (LBE)at elevated temperatures: [17]Padilha A F,Escriba D M,Matera-Morris E,et al.Precipitation in importance of surface preparation.J Nuc/Mater,2004,328(2-3): AISI 316L(N)during creep tests at 550 and 600 C up to 10 years.J Nucl Mater,.2007,362(1):132 [7]Kurata Y,Futakawa M.Excellent corrosion resistance of [18]Gill T PS,Shankar V,Pujar M G,et al.Effect of composition on 18Cr-20Ni-5Si steel in liquid Pb-Bi.J Nucl Mater,2004,325: the transformation of 8-ferrite to a in type 316 stainless steel weld 217 metals.Scripta Metall Mater,1995,32(10):1595 [8]Kondo M,Takahashi M.Corrosion resistance of Si-and Al-rich [19]Sun H Y,Zhou Z J,Wang M,et al.Microstructures and steels in flowing lead-bismuth.J/Nuc/Mater,2006,356(1-3):203 mechanical properties of a new 310 austenitic stainless steel during [9] Wang Q C.Ren Y B.Yao C F,et al.Residual ferrite and long term aging.Chin J Eng,2015,37(5):600 relationship between composition and microstructure in high- (孙红英,周张健,王曼,等.改进310奥氏体不锈钢长期时效后 nitrogen austenitic stainless steels.Metall Mater Trans A,2015, 的组织与性能.工程科学学报,2015,37(5):600) 46(12):5537 [20]Mataya M C,Nilsson E R,Brown E L,et al.Hot working and [10]Shu W,Li J,Lian X J,et al.Effect of heat treatment on the high recrystallization of as-cast 317L.Metall Mater Trans A,2003, temperature ductility of 00Cr24Nil3 austenitic stainless steel 34(12):3021 casting billets.Chin J Eng,2015,37(2):190 [21]Di Schino A,Mecozzi M G,Barteri M,et al.Solidification mode (舒玮,李俊,廉晓洁,等.热处理对奥氏体不绣钢00C24N13铸 and residual ferrite in low-Ni austenitic stainless steels.J Mater 坯高温热塑性的影响.工程科学学报,2015,37(2):190) Sci,2000,35(2):375 [11]Bai G S,Lu S P,Li D Z,et al.Intergranular corrosion behavior [22]Fu J W,Yang Y S,Guo J J,et al.Formation of a two-phase associated with delta-ferrite transformation of Ti-modified microstructure in Fe-Cr-Ni alloy during directional solidification. Super304H austenitic stainless steel.Corros Sci,2015,90:347 J Cryst Growth,2008.311(1):132 [12]Okane T,Umeda T.Eutectic growth of unidirectionally solidified [23]Hammer O,Svensson U.Solidification and Casting of Metals Fe-Cr-Ni alloy.ISI/Int,1998,38(5):454 London:The Metals Society,1979:401 [13]Ferrandini PL,Rios C T,Dutra A T,et al.Solute segregation and [24]Rajasekhar K,Harendranath C S,Raman R,et al.Microstructural microstructure of directionally solidified austenitic stainless steel. evolution during solidification of austenitic stainless steel weld Ma1 er Sci Eng4,2006,435-436:139 metals:A color metallographic and electron microprobe analysis [14]Brooks J A,Williams J C,Thompson A W.STEM analysis of study.Mater Charact,1997,38(2):53Barbier F, Benamati G, Fazio C, et al. Compatibility tests of steels in flowing liquid lead-bismuth. J Nucl Mater, 2001, 295(2-3): 149 [4] Lambrinou  K,  Charalampopoulou  E,  Van  der  Donck  T,  et  al. Dissolution corrosion of 316L austenitic stainless steels in contact with static  liquid  lead-bismuth  eutectic  (LBE)  at  500  ℃. J Nucl Mater, 2017, 490: 9 [5] Johnson  A  L,  Parsons  D,  Manzerova  J,  et  al.  Spectroscopic  and microscopic  investigation  of  the  corrosion  of  316/316L  stainless steel  by  lead-bismuth  eutectic  (LBE)  at  elevated  temperatures: importance of surface preparation. J Nucl Mater, 2004, 328(2-3): 88 [6] Kurata  Y,  Futakawa  M.  Excellent  corrosion  resistance  of 18Cr –20Ni –5Si  steel  in  liquid  Pb –Bi. J Nucl Mater,  2004,  325: 217 [7] Kondo  M,  Takahashi  M.  Corrosion  resistance  of  Si-  and  Al-rich steels in flowing lead–bismuth. J Nucl Mater, 2006, 356(1-3): 203 [8] Wang  Q  C,  Ren  Y  B,  Yao  C  F,  et  al.  Residual  ferrite  and relationship  between  composition  and  microstructure  in  high￾nitrogen  austenitic  stainless  steels. Metall Mater Trans A,  2015, 46(12): 5537 [9] Shu W, Li J, Lian X J, et al. Effect of heat treatment on the high temperature  ductility  of  00Cr24Ni13  austenitic  stainless  steel casting billets. Chin J Eng, 2015, 37(2): 190 (舒玮, 李俊, 廉晓洁, 等. 热处理对奥氏体不锈钢00Cr24Ni13铸 坯高温热塑性的影响. 工程科学学报, 2015, 37(2):190 ) [10] Bai  G  S,  Lu  S  P,  Li  D  Z,  et  al.  Intergranular  corrosion  behavior associated  with  delta-ferrite  transformation  of  Ti-modified Super304H austenitic stainless steel. Corros Sci, 2015, 90: 347 [11] Okane T, Umeda T. Eutectic growth of unidirectionally solidified Fe-Cr-Ni alloy. ISIJ Int, 1998, 38(5): 454 [12] Ferrandini P L, Rios C T, Dutra A T, et al. Solute segregation and microstructure of directionally solidified austenitic stainless steel. Mater Sci Eng A, 2006, 435-436: 139 [13] [14] Brooks  J  A,  Williams  J  C,  Thompson  A  W.  STEM  analysis  of primary austenite solidified stainless steel welds. Metall Trans A, 1983, 14(1): 23 Fu  J  W,  Sun  J  J,  Cen  X,  et  al.  Growth  behavior  and  orientation relationships  in  AISI  304  stainless  steel  during  directional solidification. Mater Charact, 2018, 139: 241 [15] Song Y, Baker T N, McPherson N A. A study of precipitation in as-welded  316LN  plate  using  316L/317L  weld  metal. Mater Sci Eng A, 1996, 212(2): 228 [16] Padilha A F, Escriba D M, Materna-Morris E, et al. Precipitation in AISI 316L(N) during creep tests at 550 and 600 C up to 10 years. J Nucl Mater, 2007, 362(1): 132 [17] Gill T P S, Shankar V, Pujar M G, et al. Effect of composition on the transformation of δ-ferrite to σ in type 316 stainless steel weld metals. Scripta Metall Mater, 1995, 32(10): 1595 [18] Sun  H  Y,  Zhou  Z  J,  Wang  M,  et  al.  Microstructures  and mechanical properties of a new 310 austenitic stainless steel during long term aging. Chin J Eng, 2015, 37(5): 600 (孙红英, 周张健, 王曼, 等. 改进310奥氏体不锈钢长期时效后 的组织与性能. 工程科学学报, 2015, 37(5):600 ) [19] Mataya  M  C,  Nilsson  E  R,  Brown  E  L,  et  al.  Hot  working  and recrystallization  of  as-cast  317L. Metall Mater Trans A,  2003, 34(12): 3021 [20] Di Schino A, Mecozzi M G, Barteri M, et al. Solidification mode and  residual  ferrite  in  low-Ni  austenitic  stainless  steels. J Mater Sci, 2000, 35(2): 375 [21] Fu  J  W,  Yang  Y  S,  Guo  J  J,  et  al.  Formation  of  a  two-phase microstructure in Fe–Cr–Ni alloy during directional solidification. J Cryst Growth, 2008, 311(1): 132 [22] Hammer  O,  Svensson  U. Solidification and Casting of Metals. London: The Metals Society, 1979: 401 [23] Rajasekhar K, Harendranath C S, Raman R, et al. Microstructural evolution  during  solidification  of  austenitic  stainless  steel  weld metals:  A  color  metallographic  and  electron  microprobe  analysis study. Mater Charact, 1997, 38(2): 53 [24] 易昊钰等: Cr 和 Si 元素对奥氏体不锈钢组织构成及凝固路线的影响 · 185 ·
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