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郑建超等:M对2205双相不锈钢耐点蚀性能的影响 ·253· [16]An L C.Cao J,Wu LC,et al.Effects of Mo and Mn on pitting stainless steel 303 and the role of copper.J Electrochem Soc, hehavior of duplex stainless steel.J fron Steel Res Int,2016,23 2016,163(8):C440 (12):1333 [24]Ha H Y,Park CJ,Kwon H S.Effects of misch metal on the for- [17]Toor I,Hyun P J,Kwon H S.Development of high Mn-N duplex mation of non-metallic inclusions and the associated resistance to stainless steel for automobile structural components.Corros Sci, pitting corrosion in 25%Cr duplex stainless steels.Scripta Ma- 2008,50(2):404 ter,2006,55(11):991 [18]Li J,Xu Y L,Xiao X S,et al.A new resource-saving,high [25]Williams D E,Zhu Y Y.Explanation for initiation of pitting cor manganese and nitrogen super duplex stainless steel 25Cr-2Ni- rosion of stainless steels at sulfide inclusions.I Electrochem Soc, 3Mo-xMn-N.Mater Sci Eng A,2009,527(1-2)245 2000,147(5):1763 [19]Diederichs R.Bleck W.Modelling of manganese sulphide forma- [26]Williams D E,MohiuddinT F,Zhu YY.Elucidation of a trigger tion during solidification,part I:description of Mns formation mechanism for pitting corrosion of stainless steels using submicron parameters.Steel Res Int,2006,77(3):202 resolution scanning electrochemical and photoelectrochemical mi- [20]Oikawa K,Ishida K,NishizawaT.Effect of titanium addition on croscopy.J Electrochem Soc,1998,145(8):2664 the formation and distribution of MnS inclusions in steel during [27]Ohta H.Suito H.Activities in Cao-SiO2-Al2O3 slags and deox- solidification.ISIJ Int,1997,37(4):332 idation equilibria of Si and Al.Metall Mater Trans B,1996,27 [21]Shao X J,Wang X H,Wang W J,et al.In-situ observation of (6):943 manganese sulfide inclusions in YF45MnV steel.J Unie Sci Tech- [28]Zheng JC,Hu X J,Pan C,et al.Effects of inclusions on the re- nol Beijing,2010,32(5):570 sistance to pitting corrosion of $32205 duplex stainless steel.Ma- (邵肖静,王新华,王万军,等.疏化锰夹杂物在YF45MnV ter Corros,2018,69(5):572 钢中行为的原位观察.北京科技大学学报,2010,32(5): [29]Amadou T,Sidhom H,Braham C.Double loop electrochemical 570) potentiokinetic reactivation test optimization in checking of duplex [22]Webb E G,Suter T,Alkire R C.Microelectrochemical measure- stainless steel intergranular corrosion susceptibility.Metall Mater ments of the dissolution of single MnS inclusions,and the predic- Trans A,2004,35(11):3499 tion of the critical conditions for pit initiation on stainless steel.J [30]Deng B.Jiang Y M,Xu J L,et al.Application of the modified Electrochem Soc,2001,148(5):B186 electrochemical potentiodynamic reactivation method to detect [23]Lillard R S,Kashfipour M A,Niu W.Pit propagation at the susceptibility to intergranular corrosion of a newly developed lean boundary between manganese sulfide inclusions and austenitic duplex stainless steel LDX2101.Corras Sci,2010,52(3):969郑建超等: Mn 对 2205 双相不锈钢耐点蚀性能的影响 [16] An L C, Cao J, Wu L C, et al. Effects of Mo and Mn on pitting behavior of duplex stainless steel. J Iron Steel Res Int, 2016, 23 (12): 1333 [17] Toor I, Hyun P J, Kwon H S. Development of high Mn鄄N duplex stainless steel for automobile structural components. Corros Sci, 2008, 50(2): 404 [18] Li J, Xu Y L, Xiao X S, et al. A new resource鄄saving, high manganese and nitrogen super duplex stainless steel 25Cr鄄鄄 2Ni鄄鄄 3Mo鄄鄄 xMn鄄鄄N. Mater Sci Eng A, 2009, 527(1鄄2): 245 [19] Diederichs R, Bleck W. Modelling of manganese sulphide forma鄄 tion during solidification, part I: description of MnS formation parameters. Steel Res Int, 2006, 77(3): 202 [20] Oikawa K, Ishida K, Nishizawa T. Effect of titanium addition on the formation and distribution of MnS inclusions in steel during solidification. ISIJ Int, 1997, 37(4): 332 [21] Shao X J, Wang X H, Wang W J, et al. In鄄situ observation of manganese sulfide inclusions in YF45MnV steel. J Univ Sci Tech鄄 nol Beijing, 2010, 32(5): 570 (邵肖静, 王新华, 王万军, 等. 硫化锰夹杂物在 YF45MnV 钢中行为的原位观察. 北京科技大学学报, 2010, 32 (5): 570) [22] Webb E G, Suter T, Alkire R C. Microelectrochemical measure鄄 ments of the dissolution of single MnS inclusions, and the predic鄄 tion of the critical conditions for pit initiation on stainless steel. J Electrochem Soc, 2001, 148(5): B186 [23] Lillard R S, Kashfipour M A, Niu W. Pit propagation at the boundary between manganese sulfide inclusions and austenitic stainless steel 303 and the role of copper. J Electrochem Soc, 2016, 163(8): C440 [24] Ha H Y, Park C J, Kwon H S. Effects of misch metal on the for鄄 mation of non鄄metallic inclusions and the associated resistance to pitting corrosion in 25% Cr duplex stainless steels. Scripta Ma鄄 ter, 2006, 55(11): 991 [25] Williams D E, Zhu Y Y. Explanation for initiation of pitting cor鄄 rosion of stainless steels at sulfide inclusions. J Electrochem Soc, 2000, 147(5): 1763 [26] Williams D E, Mohiuddin T F, Zhu Y Y. Elucidation of a trigger mechanism for pitting corrosion of stainless steels using submicron resolution scanning electrochemical and photoelectrochemical mi鄄 croscopy. J Electrochem Soc, 1998, 145(8): 2664 [27] Ohta H, Suito H. Activities in CaO鄄鄄SiO2 鄄鄄Al2O3 slags and deox鄄 idation equilibria of Si and Al. Metall Mater Trans B, 1996, 27 (6): 943 [28] Zheng J C, Hu X J, Pan C, et al. Effects of inclusions on the re鄄 sistance to pitting corrosion of S32205 duplex stainless steel. Ma鄄 ter Corros, 2018, 69(5): 572 [29] Amadou T, Sidhom H, Braham C. Double loop electrochemical potentiokinetic reactivation test optimization in checking of duplex stainless steel intergranular corrosion susceptibility. Metall Mater Trans A, 2004, 35(11): 3499 [30] Deng B, Jiang Y M, Xu J L, et al. Application of the modified electrochemical potentiodynamic reactivation method to detect susceptibility to intergranular corrosion of a newly developed lean duplex stainless steel LDX2101. Corros Sci, 2010, 52(3): 969 ·253·
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