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EFFECT OF MICROSTRUCTURAL EVOLUTION ON THE PITTING CORROSION OF COLD DRAWING PEARLITIC STEELS |
Yue HE1,Song XIANG1,2,3( ),Wei SHI1,2,Jianmin LIU1,Yu LIANG1,2,Chaoyi CHEN1 |
1 College of Materials and Metallurgy, Guizhou University, Guiyang 550025, China 2 Guizhou Key Laboratory for Mechanical Behavior and Micro Structure of Materials, Guiyang 550025, China 3 State Key Laboratory for Advanced Metals and Materials, University of Science and Technology Beijing, Beijing 100083, China |
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Cite this article:
Yue HE,Song XIANG,Wei SHI,Jianmin LIU,Yu LIANG,Chaoyi CHEN. EFFECT OF MICROSTRUCTURAL EVOLUTION ON THE PITTING CORROSION OF COLD DRAWING PEARLITIC STEELS. Acta Metall Sin, 2016, 52(12): 1536-1544.
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Abstract Heavily cold drawing pearlitic steel wires are widely used for aerospace, tire cord, suspension bridge cable, and architecture due to the high strength with acceptable level of ductility. For marine steel wires, which are widely applied in the marine and offshore structures enduring the effect of stress and corrosion, the corrosion performance is significant. Corrosion is a primary cause of structural deterioration for marine and offshore structures, which results in structural failure, leakage, product loss, environmental pollution and the loss of life. Numerous studies have been devoted to the microstructure evolution or cementite dissolution induced by cold drawing. With respect to the effect of microstructure evolution on the performance of pearlitic steel, the views were mainly focused on the mechanical performance, and only a little attention was paid to the effect of microstructure evolution on the corrosion behavior of pearlitic steel. Hence, it is still unclear whether and how the cold drawing influences the corrosion resistance of pearlitic steel. In this work, the effect of microstructure evolution on the pitting corrosion of pearlitic steel was investigated. The electrochemical measurements were carried out by electrochemical impedance spectroscopy and potentiodynamic measurement. Meanwhile, the corrosion morphology after immersion for 5 d was observed by standard visual techniques. The results indicate that corrosion resistance of cross section decreases with increasing the strain of cold drawing, while the corrosion resistance of longitudinal section decreases in the first stage of cold drawing (strain ε ≤1.2) but increases in the second step of cold drawing (ε =1.6). By characterizing the distribution of pits in the evolutionary microstructure induced by cold drawing, the grain boundary, the pearlite colony boundary and the phase boundary where the pits are inclined to initiate and propagation, are sensitive to pitting. Thus, the decrease of corrosion resistance of cross section and longitudinal section in the first stage of cold drawing (ε ≤1.2) is due to the multiplication of interface, which increases the pitting sensibility of microstructure. Electron backscattered scattering detection was used to quantify the content of <110> texture of pearlitic steels with different strains. The result showed that the improvement of corrosion resistance of the longitudinal section in the second stage of cold drawing (ε =1.6) is due to the variation of misorientation angle distribution caused by the formation of <110> texture.
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Received: 13 May 2016
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Fund: Supported by National Natural Science Foundation of China (Nos.51361004, 51574095 and 51661006), Program of “One Hundred Talented People” of Guizhou Province (No.20164014), Science and Technology Project of Guizhou Province (Nos.20147-001, 20142003, 20147603 and 20152031) and Talents Foundation of Guizhou University (No.201448) |
[1] | Bhandari J, Khan F, Abbassi R, Garaniya V, Ojeda R.J Loss Prev Process Ind, 2015; 37: 39 | [2] | Bang C W, Seol J B, Yang Y S, Park C G.Scr Mater, 2015; 108: 151 | [3] | Lamontagne A, Massardier V, Kléber X, Sauvage X, Mari D.Mater Sci Eng, 2015; A644: 105 | [4] | Zhang X, Godfrey A, Huang X, Hansen N, Liu Q.Acta Mater, 2011; 59: 3422 | [5] | Zelin M.Acta Mater, 2002; 50: 4431 | [6] | Toribio J, González B, Matos J C, Ayaso F J.Int J Fatigue, 2015; 76: 53 | [7] | Zhao T Z, Zhang S H, Zhang G L, Song H W, Cheng M.Mater Des, 2014; 59: 397 | [8] | Toribio J, González B, Matos J C.Eng Fract Mech, 2010; 77: 2024 | [9] | Elices M.J Mater Sci, 2004; 39: 3889 | [10] | Sánchez J, Fullea J, Andrade C, Gaitero J J, Porro A. Corros Sci, 2008; 50: 1820 | [11] | Rault V, Vignal V, Krawiec H, Tadjoa O.Corros Sci, 2014; 86: 275 | [12] | Guo Y, Sun T, Hu J, Jiang Y, Jiang L, Li J.J Alloys Compd, 2016; 658: 1031 | [13] | Ren Y, Zhao H, Liu W, Yang K.Mater Sci Eng, 2016; C60: 293 | [14] | Feng X, Lu X, Zuo Y, Zhuang N, Chen D.Corros Sci, 2016; 103: 223 | [15] | Cheng Y F, Yang C, Luo J L.Thin Solid Films, 2002; 416: 169 | [16] | Zhang F, Pan J, Lin C. Corros Sci, 2009; 51: 2130 | [17] | Wang H, Xie J, Yan K P, Duan M, Zuo Y.Corros Sci, 2009; 51: 181 | [18] | Guo N.PhD Dissertation, Chongqing University, 2012 | [18] | (郭宁. 重庆大学博士学位论文, 2012) | [19] | Zhang X D, Godfrey A, Hansen N, Huang X.Acta Mater, 2013; 61: 4898 | [20] | Zhang X D.PhD Dissertation, Tsinghua Univerisity, Beijing, 2009 | [20] | (张晓丹. 清华大学博士学位论文, 北京, 2009) | [21] | Zhang X D, Godfrey A, Liu W, Liu Q.Acta Metall Sin, 2010; 46: 141 | [21] | (张晓丹, Godfrey A, 刘伟, 刘庆. 金属学报, 2010; 46: 141) | [22] | Cao C N, Xiao J M.Principles of Material Corrosion. Beijing: Chemical Industry Press, 2004: 48 | [22] | (曹楚南, 肖纪美. 材料腐蚀学原理. 北京: 化学工业出版社, 2004: 48) | [23] | Burstein G T, Pistorius P C, Mattin S P.Corros Sci, 1993; 35: 57 | [24] | Yang D J. Metal Corrosion.Beijing: Metallurgical Industry Press, 1999: 97 | [24] | (杨德钧. 金属腐蚀学. 北京: 冶金工业出版社, 1999: 97) | [25] | Yu Y N.Fundamental of Materials Science. Beijing: Higher Education Press, 2012: 421 | [25] | (余永宁. 材料科学基础. 北京: 高等教育出版社, 2012: 421) | [26] | Rault V, Vignal V, Krawiec H, Dufour F.Corros Sci, 2015; 100: 667 | [27] | Li Y J, Choi P, Borchers C, Chen Y Z, Goto S, Raabe D, Kirchheim R.Ultramicroscopy, 2011; 111: 628 | [28] | Min N, Li W, Li H, Jin X.J Mater Sci Technol, 2010; 26: 776 |
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