|
|
Stress Corrosion Cracking Behavior of 2205 Duplex Stainless Steel in 3.5%NaCl Solution with Sulfate Reducing Bacteria |
WANG Xintong, CHEN Xu( ), HAN Zhenze, LI Chengyuan, WANG Qishan |
College of Petroleum Engineering, Liaoning Shihua University, Fushun 113001, China |
|
|
Abstract Materials served in marine environments are not only subjected to the Cl- and ocean currents, but also suffered from biological fouling. The effect of sulfate reduction bacteria (SRB) metabolism on the stress corrosion cracking (SCC) behavior of 2205 duplex stainless steel (DSS) in 3.5% (mass fraction) NaCl solution were investigated by means of potentiondynamic polarization technology, slow strain rate test (SSRT) and scanning electron microscopy (SEM). The results showed that compared with the sterile solution, the presence of SRB promoted the anodic dissolution process of 2205 DSS in the bacterial solution and induced pitting, which facilitated cracks initiation. The SCC sensitivity of 2205 DSS was positively correlated with the concentration of SRB activity. The SRB activity concentration was the highest during their stable growth period, and the resulted metabolite H2S could induce the increase of brittleness of the steel. In this case, SCC sensitivity of 2205DSS was the highest. The SCC mechanism of 2205DSS in 3.5%NaCl solution containing SRB was the mutual control of anodic dissolution and hydrogen damage. In the presence of SRB, the ferritic phase in 2205DSS exhibited transgranular cleavage, while the austenitic phase exhibited ductile tearing, and the ferritic phase had higher SCC sensitivity.
|
Received: 19 December 2019
|
|
Fund: Key Project of Education Department of Liaoning Province of China(L2017LZD004);Chunhui;Program of the Ministry of Education of China |
Corresponding Authors:
CHEN Xu
E-mail: cx0402@sina.com
|
1 |
Yassar R S, Scudiero L, Alamr A S, et al. Microstructure-mechanical and chemical behavior relationships in passive thin films [J]. Thin Solid Films, 2010, 518: 2757
|
2 |
Vignesh K, Perumal A E, Velmurugan P. Resistance spot welding of AISI-316L SS and 2205 DSS for predicting parametric influences on weld strength-Experimental and FEM approach [J]. Arch. Civ. Mech. Eng., 2019, 19: 1029
|
3 |
Sozańska M, Kłyk-Spyra K. Investigation of hydrogen induced cracking in 2205 duplex stainless steel in wet H2S environments after isothermal treatment at 675, 750 and 900 ℃ [J]. Mater. Charact., 2006, 56: 399
|
4 |
Naghizadeh M, Moayed M H. Investigation of the effect of solution annealing temperature on critical pitting temperature of 2205 duplex stainless steel by measuring pit solution chemistry [J]. Corros. Sci., 2015, 94: 179
|
5 |
Sieurin H, Sandström R. Austenite reformation in the heat-affected zone of duplex stainless steel 2205 [J]. Mater. Sci. Eng., 2006, A418: 250
|
6 |
Lin H X, Fan Y G, Xiong H, et al. Comparision of stress corrosion resistance of 22Cr duplex stainless steel, 304L and 316L common austenitic stainless steels in chloride solutions [J]. Corros. Prot., 2009, 30: 386
|
|
林红先, 樊玉光, 熊惠等. 22Cr双相不锈钢与304L、316L钢在氯化物溶液中耐应力腐蚀性能的比较 [J]. 腐蚀与防护, 2009, 30: 386
|
7 |
Tsai W T, Chen M S. Stress corrosion cracking behavior of 2205 duplex stainless steel in concentrated NaCl solution [J]. Corros. Sci., 2000, 42: 545
|
8 |
Wu W, Liu Z Y, Hu S S, et al. Effect of pH and hydrogen on the stress corrosion cracking behavior of duplex stainless steel in marine atmosphere environment [J]. Ocean. Eng., 2017, 146: 311
|
9 |
Song Z L, Yang L J, Moradi M, et al. Study on failure behavior of duplex stainless steel in Marine environment [A]. Marine Materials Corrosion and Protection Conference [C]. Beijing: 2014
|
|
宋振纶, 杨丽景, Moradi M等. 双相不锈钢在海洋环境中的失效行为研究 [A]. 2014海洋材料腐蚀与防护大会论文集 [C]. 北京: 2014
|
10 |
Yan T, Song Z L, Yang L J, et al. Effect of Vibrio neocaledonicus sp. on corrosion behavior of copper in artificial sea Water [J]. J. Chin. Soc. Corros. Prot., 2016, 36: 157
|
|
闫涛, 宋振纶, 杨丽景等. 新喀里多尼亚弧菌对Cu在人工海水中腐蚀行为的影响 [J]. 中国腐蚀与防护报, 2016, 36: 157
|
11 |
Wu T Q, Yang P, Zhang M D, et al. Microbiologically induced corrosion of X80 pipeline steel in an acid soil solution: (II) corrosion morphology and corrosion product analysis [J]. J. Chin. Soc. Corros. Prot., 2014, 34: 353
|
|
吴堂清, 杨圃, 张明德等. 酸性土壤浸出液中X80钢微生物腐蚀研究: (Ⅱ) 腐蚀形貌和产物分析 [J]. 中国腐蚀与防护学报, 2014, 34: 353
|
12 |
Liu B, Duan J Z, Hou B R. Microbiologically influenced corrosion of 316l ss by marine biofilms in seawater [J]. J. Chin. Soc. Corros. Prot., 2012, 32: 48
|
|
刘彬, 段继周, 侯保荣. 天然海水中微生物膜对316L不锈钢腐蚀行为研究 [J]. 中国腐蚀与防护学报, 2012, 32: 48
|
13 |
Xu C M, Zhang Y H, Cheng G X, et al. Localized corrosion behavior of 316L stainless steel in the presence of sulfate-reducing and iron-oxidizing bacteria [J]. Mater. Sci. Eng., 2007, A443: 235
|
14 |
Rao T S, Nair K V K. Microbiologically influenced stress corrosion cracking failure of admiralty brass condenser tubes in a nuclear power plant cooled by freshwater [J]. Corros. Sci., 1998, 40: 1821
|
15 |
Abedi S S, Abdolmaleki A, Adibi N. Failure analysis of SCC and SRB induced cracking of a transmission oil products pipeline [J]. Eng. Fail. Anal., 2007, 14: 250
|
16 |
Kholodenko V P, Jigletsova S K, Chugunov V A, et al. Chemicomicrobiological diagnostics of stress corrosion cracking of trunk pipelines [J]. Appl. Biochem. Microbiol., 2000, 36: 594
|
17 |
Stipaničev M, Rosas O, Basseguy R, et al. Electrochemical and fractographic analysis of microbiologically assisted stress corrosion cracking of carbon steel [J]. Corros. Sci., 2014, 80: 60
|
18 |
Javaherdashti R, Raman R K S, Panter C, et al. Microbiologically assisted stress corrosion cracking of carbon steel in mixed and pure cultures of sulfate reducing bacteria [J]. Int. Biodeterior. Biodegrad., 2006, 58: 27
|
19 |
Domżalicki P, Lunarska E, Birn J. Effect of cathodic polarization and sulfate reducing bacteria on mechanical properties of different steels in synthetic sea water [J]. Mater. Corros., 2007, 58: 413
|
20 |
Raman R K S, Javaherdashti R, Panter C, et al. Hydrogen embrittlement of a low carbon steel during slow strain testing in chloride solutions containing sulphate reducing bacteria [J]. Mater. Sci. Technol., 2005, 21: 1094
|
21 |
Wu T Q, Yan M C, Zeng D C, et al. Hydrogen permeation of X80 steel with superficial stress in the presence of sulfate-reducing bacteria [J]. Corros. Sci., 2015, 91: 86
|
22 |
Wu T Q, Yan M C, Yu L B, et al. Stress corrosion of pipeline steel under disbonded coating in a SRB-containing environment [J]. Corros. Sci., 2019, 157: 518
|
23 |
Wu T Q, Xu J, Yan M C, et al. Synergistic effect of sulfate-reducing bacteria and elastic stress on corrosion of X80 steel in soil solution [J]. Corros. Sci., 2014, 83: 38
|
24 |
Huang Y L. Corrosion failure of marine steel in sea-mud containing sulfate reducing bacteria [J]. Mater. Corros., 2004, 55: 124
|
25 |
Wang J, Li Q F, Fu Y D, et al. MIC behavior of the low alloy steel with different zn-epoxy coating in SRB solution [J]. Key Eng. Mater., 2011, 488/489: 262
|
26 |
Mcgenity T J, Timmis K N, Nogales B. Hydrocarbon and Lipid Microbiology Protocols [M]. Berlin: Springer Protocols Handbooks, 2016
|
27 |
Łabanowski J, Rzychoń T, Simka W, et al. Sulfate-reducing bacteria-assisted hydrogen-induced stress cracking of 2205 duplex stainless steels [J]. Mater. Corros., 2019, 70: 1667
|
28 |
Chou S L, Tsai W T. Hydrogen embrittlement of duplex stainless steel in concentrated sodium chloride solution [J]. Mater. Chem. Phys., 1999, 60: 137
|
29 |
Craidy P, Briottet L, Santos D. Hydrogen-microstructure-mechanical properties interactions in super duplex stainless steel components [J]. Int. J. Hydrog. Energ., 2015, 40: 17084
|
30 |
Silverstein R, Eliezer D. Hydrogen trapping mechanism of different duplex stainless steels alloys [J]. J. Alloy. Compd., 2015, 644: 280
|
31 |
Huang Y L, Cao C N, Lin H C, et al. Effects of hydrogen on the scc of austeniticstainless steel in acidic chloride solution [J]. Studia Marina Sin., 1998, (40): 109
|
|
黄彦良, 曹楚南, 林海潮等. 氢对奥氏体不锈钢在酸性氯离子溶液中SCC作用初探 [J]. 海洋科学集刊, 1998, (40): 109
|
32 |
Sowards J W, Williamson C H D, Weeks T S, et al. The effect of Acetobacter sp. and a sulfate-reducing bacterial consortium from ethanol fuel environments on fatigue crack propagation in pipeline and storage tank steels [J]. Corros. Sci., 2014, 79: 128
|
33 |
Liu J H, Liang X, Li S M. Study of microbiologically induced corrosion action on Al-6Mg-Zr and Al-6Mg-Zr-Sc [J]. J. Rare Earth., 2007, 25: 609
|
34 |
Yang Z, Huo C Y, Zhu Y Y, et al. Stress corrosion cracking of X70 grade line pipe steel in H2S aqueous solutions [J]. Mar. Sci., 2005, 29(10): 23
|
|
杨洲, 霍春勇, 朱永艳等. 硫化氢对管线钢在氯化钠溶液中应力腐蚀开裂的影响 [J]. 海洋科学, 2005, 29(10): 23
|
35 |
Zucchi F, Grassi V, Monticelli C, et al. Hydrogen embrittlement of duplex stainless steel under cathodic protection in acidic artificial sea water in the presence of sulphide ions [J]. Corros. Sci., 2006, 48: 522
|
36 |
Wu T Q, Sun C, Yan M C, et al. Sulfate-reducing bacteria-assisted cracking [J]. Corros. Rev., 2019, 37: 231
|
37 |
Dec W, Mosiałek M, Socha R P, et al. Characterization of Desulfovibrio desulfuricans biofilm on high-alloyed stainless steel: XPS and electrochemical studies [J]. Mater. Chem. Phys., 2017, 195: 28
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|