The stress corrosion cracking (SCC) behaviour of X-70 pipeline steel in near-neutral pH solutions was studied via slow strain rate testing (SSRT). The results showed that the cracking mode of X-70 pipeline steel in near-neutral pH solutions was transgranular at different temperatures and applied potentials with the feature of quasi-cleavage. The pH value of the solution decreased with increasing the addition of CO2, which increased the susceptibility to SCC.SCC susceptibility increased as the applied potential moved towards the cathodic direction, suggesting that hydrogen induced cracking (HIC) dominated the cracking process at cathodic potentials. The slight decrease of pH values with decreasing temperature of the solution increased the susceptibility to SCC, which attributed to the change of solubility of CO2 in the solution at different temperatures. The propagating directions of SCC cracks were different at different potentials. At rather negative cathodic potentials, the cracks were almost perpendicular to the tensile axis, while at free corrosion potential and near anodic potentials, cracks were nearly at 45 degree, and in the range of moderate cathodic potentials both propagating directions could be observed.
参考文献
[1] | NationalEnergyoard .Public Inquiry Concerning Stress Corrosion Cracking on Canadian Oil Gas Pipelines[Z].MH-2-95Canada,1996. |
[2] | M. Yunovich;Z. Xia;Z. Szklarska-Smialowska .Factors influencing stress corrosion cracking of carbon steel in diluted bicarbonate environments[J].Corrosion: The Journal of Science and Engineering,1998(2):155-161. |
[3] | J.G. Gonzalez-Rodriguez;M. Casales;V.M. Salinas-Bravo .Effect of Microstructure on the Stress Corrosion Cracking of X-80 Pipeline Steel in Diluted Sodium Bicarbonate Solutions[J].Corrosion: The Journal of Science and Engineering,2002(7):584-590. |
[4] | W. Chen;F. King;E. Vokes .Characteristics of Near-Neutral-pH Stress Corrosion Cracks in an X-65 Pipeline[J].Corrosion: The Journal of Science and Engineering,2002(3):267-275. |
[5] | AHarle,JAeavers .[J].Corrosion,1993,49(10):861. |
[6] | Delanty;J O'Beirne.[J].Oil & Gas Journal,1992:39. |
[7] | RNParkins;WKBlanchard Jr;BSDelanty .[J].Corrosion,1994,50(05):394. |
[8] | RReak;ZXia;Rsafruddin;ZSzklarskaSmialowska .[J].Corrosion,1996,52(05):396. |
[9] | B.Zhang;J.Fan;Y.Gogotsi;A.Chudnovsky and A.Teitsma.[A].ASME,2000:1013. |
[10] | M.J.Wilmott;R.L.Sutherby.[A].ASME,1998:409. |
[11] | MPuiggali .[J].SRousserie MTouzet Corrosion,2002,58(11):961. |
[12] | SLamert;JABeavers;BDelanty;RLSutherby ,APlumtree.2000 International Pipeline ConferenceVolume 2[C].,2000:961. |
[13] | GGaetta .SDLiberto ABennardo: CORROSION/2000 NACE International[Z].Houston,Texas,2000. |
[14] | X. -Y. Zhang;S. B. Lambert;R. Sutherby;A. Plumtree .Transgranular stress corrosion cracking of X-60 pipeline steel in simulated ground water[J].Corrosion: The Journal of Science and Engineering,1999(3):297-305. |
[15] | RNParkins JAeavers .[J].Corrosion,2003,59(03):258. |
[16] | JAeavers;CLDurr;BSDelanty;DMOwen , RLSutherby .[R].CORROSION/2001 NACE InternationalHouston TXaper No01217,2001. |
[17] | FKing;TJack;WXChen .[R].DPhil CORROSION/2001NACE International Houston TX,2001. |
[18] | MPHrongers;JABeavers;CEJaske .[R].BSDelantyCORROSION/2000 NACE International Houston TXaper No00355,2000. |
[19] | SLamert;APlumtree .[R].RSutherby CORROSION/2000 NACE International Houston TX,2000. |
[20] | W.X.Chen;S.H.Wang;F.King;T.R.Jack and M.J.Wilmott.[A].ASME,2000:953. |
[21] | J.Bulger;J.L.Luo.[A].ASME,2000:947. |
[22] | B Gu;WZYu;JLLuo .[J].XMao:Corrosion,1999,55(03):312. |
[23] | Gu;JLLuo;XMao .[J].Corrosion,1999,55(01):96. |
[24] | L. J. Qiao;J. L. Luo;X. Mao .Hydrogen evolution and enrichment around stress corrosion crack tips of pipeline steels in dilute bicarbonate solution[J].Corrosion: The Journal of Science and Engineering,1998(2):115-120. |
[25] | ZhenjunGU;Guopei WU.Brief Chemistry Hbook1st edn Chemical Industry Press[M].北京,1960:313. |
- 下载量()
- 访问量()
- 您的评分:
-
10%
-
20%
-
30%
-
40%
-
50%