Startseite Corrosion behavior of the heat affected zone in a 316 L pipeline weld
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Corrosion behavior of the heat affected zone in a 316 L pipeline weld

  • Wucheng Li

    Wucheng Li, born in 1996, studyies for a Master’s degree at Tianjin University, Tianjin, China. His research is focused on corrosion properties of metal material.

    , Jianli Zhang

    Jianli Zhang, born in 1984, graduated with a Master’s degree. Currently, he is a senior engineer and an international welding engineer working for Offshore Oil Engineering (Qingdao) Co., Ltd. He is mainly engaged in welding process design and development of offshore engineering.

    , Ping Xin

    Ping Xin, born in 1984, graduated with a Bachelor’s degree. Currently, she is a senior engineer and an international welding engineer working for Offshore Oil Engineering (Qingdao) Co., Ltd. She is mainly engaged in welding technology of ocean engineering.

    , Zhigang Wen

    Zhigang Wen, born in 1977, graduated with a Master’s degree. Currently, he is a senior engineer and an international welding engineer working for Offshore Oil Engineering (Qingdao) Co., Ltd. He is mainly engaged in welding process design and development of offshore engineering.

    , Hongyang Jing

    Prof. Dr. Hongyang Jing, born in 1966, is a Professor at Tianjin University, Tianjin, China. His research is focused on welding structure and electronic packaging.

    , Lei Zhao

    Assoc. Prof. Dr. Lei Zhao, born in 1985, is an Associate Professor at Tianjin University, Tianjin, China. His research is focused on creep properties of metal material and welding simulation.

    , Lianyong Xu

    Prof. Dr. Lianyong Xu, born in 1975, is a Professor at Tianjin University, Tianjin, China. His research is focused on welding mechanics and creep mechanics.

    und Yongdian Han

    Assoc. Prof. Dr. Yongdian Han, born in 1983, is an Associate Professor at Tianjin University, Tianjin, China. His research is focused on electronic packaging, welding structure and corrosion.

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Veröffentlicht/Copyright: 29. Juli 2021
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Abstract

On-site investigation, scanning electron microscope, energy dispersive X-ray spectroscopy, and cyclic potentiodynamic polarization test were carried out for failure analysis of the 316 L pipeline in this paper. The visual inspection revealed that the inner wall was covered with severe rust, and obvious misalignment and poor appearance were found in the weld. The energy dispersive X-ray spectroscopy result identified the presence of Cl in the inner wall of the pipeline. Some carbides of Cr and Mo precipitated in the heat affected zone, which partially deteriorated the corrosion resistance. The cyclic potentiodynamic polarization curve proved that the heat affected zone is not only sensitive to pitting corrosion, but also has inferior repassivation ability. Finally, the pitting preferentially occurred in the heat affected zone and gradually developed to leakage.


Yongdian Han School of Materials Science and Engineering Tianjin University Tianjin 300350, China

About the authors

Wucheng Li

Wucheng Li, born in 1996, studyies for a Master’s degree at Tianjin University, Tianjin, China. His research is focused on corrosion properties of metal material.

Jianli Zhang

Jianli Zhang, born in 1984, graduated with a Master’s degree. Currently, he is a senior engineer and an international welding engineer working for Offshore Oil Engineering (Qingdao) Co., Ltd. He is mainly engaged in welding process design and development of offshore engineering.

Ping Xin

Ping Xin, born in 1984, graduated with a Bachelor’s degree. Currently, she is a senior engineer and an international welding engineer working for Offshore Oil Engineering (Qingdao) Co., Ltd. She is mainly engaged in welding technology of ocean engineering.

Zhigang Wen

Zhigang Wen, born in 1977, graduated with a Master’s degree. Currently, he is a senior engineer and an international welding engineer working for Offshore Oil Engineering (Qingdao) Co., Ltd. He is mainly engaged in welding process design and development of offshore engineering.

Prof. Dr. Hongyang Jing

Prof. Dr. Hongyang Jing, born in 1966, is a Professor at Tianjin University, Tianjin, China. His research is focused on welding structure and electronic packaging.

Assoc. Prof. Dr. Lei Zhao

Assoc. Prof. Dr. Lei Zhao, born in 1985, is an Associate Professor at Tianjin University, Tianjin, China. His research is focused on creep properties of metal material and welding simulation.

Prof. Dr. Lianyong Xu

Prof. Dr. Lianyong Xu, born in 1975, is a Professor at Tianjin University, Tianjin, China. His research is focused on welding mechanics and creep mechanics.

Assoc. Prof. Dr. Yongdian Han

Assoc. Prof. Dr. Yongdian Han, born in 1983, is an Associate Professor at Tianjin University, Tianjin, China. His research is focused on electronic packaging, welding structure and corrosion.

Acknowledgement

The authors acknowledge the research funding provided by the Demonstration Project of National Marine Economic Innovation (BHSF2017-22).

References

1 B. R. Sanford, K. M. Venkatesh, M. Arivarasu, M. Manikandan, K. T. Hari, K. G. Mithun,P. R. Surya, N. Arivazhagan: Studies on hot corrosion behaviour of A-TIG welded AISI 316 weldments, Materials Today: Proceedings 5 (2018), pp. 13334-13339 DOI:10.1016/j.matpr.2018.02.32510.1016/j.matpr.2018.02.325Suche in Google Scholar

2 R. H. Cao, L. N. Xu, B. L. Jiang, M. J. Gao, D. R. Qu, G. B. Shan, S. J. Xu, L. J. Qiao: Coupling effect of microstructure and hydrogen absorbed during service on pitting corrosion of 321 austenitic stainless steel weld joints, Corrosion Science 164 (2020), pp. 108339-108345 DOI:10.1016/j.corsci.2019.10833910.1016/j.corsci.2019.108339Suche in Google Scholar

3 Y. H. Shi, Y. Yu, P. Liang, F. Liu, X. L. Guan: Corrosion behavior of 316 L stainless steel in chloride ion environment, Materials Protection 48 (2015), pp. 29-32 DOI:10.16577/j.cnki.42-1215/tb.2015.08.008Suche in Google Scholar

4 C.-O.A Olsson, D Landolt: Passive films on stainless steels – chemistry, structure and growth, Electrochimica Acta 48 (2003), pp. 1093-1104 DOI:10.1016/S0013-4686(02)00841-110.1016/S0013-4686(02)00841-1Suche in Google Scholar

5 Z. Ahmadian, I. Danaee, M. A. Golozar: Effects of surface treatment on corrosion resistance of 316 stainless steel implants in tyrode solution, Materials Testing 55 (2013), pp. 294-299 DOI:10.3139/120.11043810.3139/120.110438Suche in Google Scholar

6 E. Taban, E. Kaluc: Plasma arc welding of AISI316Ti (EN 1.4571) stainless steel: Mechanical, microstructural, corrosion aspects, Materials Testing 56 (2014), pp. 294-299 DOI:10.3139/120.11056010.3139/120.110560Suche in Google Scholar

7 Y. X. Lu, H. Y. Jing, Y. D. Han, Z. C. Feng, L. Y. Xu: Recommend design of filler metal to minimize carbon steel weld metal preferential corrosion in CO2-saturated oilfield produced water, Applied Surface Science 389 (2016), pp. 609-622 DOI:10.1016/j.apsusc.2016.07.15110.1016/j.apsusc.2016.07.151Suche in Google Scholar

8 Y. X. Lu, H. Y. Jing, Y. D. Han, L. Y. Xu: Corrosion behavior of pipeline steel welds in simulated produced water with different CO2 partial pressures under high temperature, Materials Testing 59 (2017), pp. 348-354 DOI:10.3139/120.11101310.3139/120.111013Suche in Google Scholar

9 E. Taban, E. Kaluc, O. O. Ojo: Properties, weldability and corrosion behavior of supermartensitic stainless steels for on- and offshore applications, Materials Testing 58 (2016), pp. 501-518 DOI:10.3139/120.11088410.3139/120.110884Suche in Google Scholar

10 X. K. Han, M. Qin, J. R. Li, W. Wang, Y. T. Li, B. R. Hou: Corrosion behavior of stainless steel in seawater, Materials Protection 50 (2017), pp. 75-81 DOI:10.16577/j.cnki.42-1215/tb.2017.09.01910.16577/j.cnki.42-1215/tb.2017.09.019Suche in Google Scholar

11 K. Lakkam, S. M. Kerur, A. Shirahatti: Effect of pitting corrosion on the mechanical properties of 316 grade stainless steel, Materials Today: Proceedings 27 (2020), pp. 497-502 DOI:10.1016/j.matpr.2019.11.29310.1016/j.matpr.2019.11.293Suche in Google Scholar

12 M. Uernura, T. Yamamoto, K. Fushimi, Y. Aoki, K. Shimizu, H. Habazaki: Depth profile analysis of thin passive films on stainless steel by glow discharge optical emission spectroscopy, Corrosion Science 51 (2009), pp. 1554-1559 DOI:10.1016/j.corsci.2008.11.01710.1016/j.corsci.2008.11.017Suche in Google Scholar

13 M. Javidi, M. R. Nematollahi, M. M. Lalehparvar, A. Ghassemi: Failure analysis of AISI 321 austenitic stainless steel water piping in a power plant, Journal of Failure Analysis and Prevention 16 (2016), pp. 209-215 DOI:10.1007/s11668-016-0070-910.1007/s11668-016-0070-9Suche in Google Scholar

14 C. Guo, M. Li, Q. F. Shen, B. Tian, S. Gao: Failure analysis of type 1.4301 stainless steel in a cooling water system, Journal of Failure Analysis and Prevention 15 (2015), pp. 401-406 DOI:10.1007/s11668-015-9939-210.1007/s11668-015-9939-2Suche in Google Scholar

15 S. Schultze, K. Schilling, J. Göllner, G. Posch: Procedures for corrosion testing and corrosion failure analysis, Materials Testing 52 (2010), pp. 615-620 DOI:10.3139/120.11016910.3139/120.110169Suche in Google Scholar

16 D. F. He, Z. J. Zhou, J. Y. Wang: From the chemical composition setting of 00Cr17Ni14Mo2 and AISI 316 L steel to see the international standard of stainless steel pipe in China, Welded Pipe and Tube 12 (2011), pp. 62-68, DOI:10.19291/j.cnki.1001-3938.2011.12.01710.19291/j.cnki.1001-3938.2011.12.017Suche in Google Scholar

17 H. X. Yu, X. L. Xu, Z. W. Yu: Pitting-corrosion on internal wall of tee-pipe joined with mainpipe for seawater tank-washing system of a tanker, Engineering Failure Analysis 104 (2019), pp. 439-447 DOI:10.1016/j.engfailanal.2019.06.01310.1016/j.engfailanal.2019.06.013Suche in Google Scholar

18 H. Berns, R. Ehrhardt: Carbon or nitrogen alloyed quenched and tempered stainless steels: a comparative study, Steel Research International 67 (1996), pp. 343-349 DOI:10.1002/srin.19960549910.1002/srin.199605499Suche in Google Scholar

19 Y. X. Lu, H. Y. Jing, Y. D. Han, Z. C. Feng, L. Y. Xu: Recommend design of filler metal to minimize carbon steel weld metal preferential corrosion in CO2-saturated oilfield produced water, Applied Surface Science 15 (2016), pp. 609-622 DOI:10.1016/j.apsusc.2016.07.15110.1016/j.apsusc.2016.07.151Suche in Google Scholar

20 Y. X. Lu, L. Y. Xu: Early corrosion stage of welded carbon steel joints in CO2-saturated oilfield water, Materials Testing 62 (2020), pp. 129-137 DOI:10.3139/120.11146010.3139/120.111460Suche in Google Scholar

21 Q. Wei, M. C. Li, J. N. Shen: Galvanic corrosion behavior of two kinds of stainless steel in simulated muffler environment, Journal of Chinese Society for Corrosion and Protection 35 (2015), pp. 233-238 DOI: CNKI:SUN:ZGFF.0.2015-03-007Suche in Google Scholar

22 D. Y. Liu, M. M. Wang, L. Zhang, D. P. Li, W. Chang, X. Y. Wang, R. Wang, L. Zhang: Local corrosion law of 316 L stainless steel in marine deep water environment, Equipment Environmental Engineering 16 (2019), pp. 102-106 DOI: CNKI:SUN:JSCX.0.2019-01-022Suche in Google Scholar

23 B. Liu, J. Z. Duan, B. R. Hou: Study on corrosion behavior of 316 L stainless steel by biofilm in natural seawater, Journal of Chinese Society for Corrosion and Protection 32 (2012), pp. 48-53 DOI: CNKI:SUN:ZGFF.0.2012-01-012Suche in Google Scholar

24 W. H. Peter, R. A. Buchanan, C. T. Liu, P. K. Liaw, M. L. Morrison, J. A. Horton, C. A. Carmichael, J. L. Wright: Localized corrosion behavior of a zirconium-based bulk metallic glass relative to its crystalline state, Intermetallics 10 (2002), pp. 1157-1162 DOI:10.1016/S0966-9795(02)00130-910.1016/S0966-9795(02)00130-9Suche in Google Scholar

25 B. Jegdić, B. Bobić, B. Radojković, B. Alić, L. Radovanović: Corrosion resistance of welded joints of X5CrNi18-10 stainless steel, Journal of Materials Processing Technology 266 (2019), pp. 579-587 DOI:10.1016/j.jmatprotec.2018.11.02910.1016/j.jmatprotec.2018.11.029Suche in Google Scholar

26 J. Galvele: Transport processes in passivity breakdown-II. Full hydrolysis of the metal ions, Corrosion Science 21 (1981), pp. 551-579 DOI:10.1016/0010-938X(81)90009-310.1016/0010-938X(81)90009-3Suche in Google Scholar

27 S. R. F. Batista, S. E. Kuri: Aspects of selective and pitting corrosion in cast duplex stainless steels, Anti-Corrosion Methods and Materials 51 (2004), pp. 205-208 DOI:10.1108/0003559041053315610.1108/00035590410533156Suche in Google Scholar

28 K. R. Tarantseva: Models and methods of forecasting pitting corrosion, Protection of Metals and Physical Chemistry of Surfaces 46 (2010), pp. 139-147 DOI:10.1134/S207020511001021110.1134/S2070205110010211Suche in Google Scholar

29 W. W. Wu, Y. M. Jiang, J. X. Liao, C. Zhong, J. Li: Influence of Cl ion on critical pitting temperature of 304 and 316 stainless steel, Corrosion Science and Protection Technology 19 (2007), pp. 16-19 DOI:10.3969/j.issn.1002-6495.2007.01.00510.3969/j.issn.1002-6495.2007.01.005Suche in Google Scholar

30 W. K. Zhang, Q. Huang, B. Yao: Corrosion behavior of TP304 stainless steel condenser tubes in different operation conditions, Corrosion Science and Protection Technology 36 (2015), pp. 91-94 DOI:JournalArticle/5b3b7227c095d70f0075a97dSuche in Google Scholar

31 Z. Zhang, Y. S. Zheng, J. Li, W. Y. Liu, M. Q. Liu, W. X. Gao, T. H. Shi: Localized Corrosion Resistance of Super 13Cr Stainless Steel in Formate Completion Fluid Containing CO2 Materials Protection 51 (2018), pp. 26-31Suche in Google Scholar

Published Online: 2021-07-29
Published in Print: 2021-07-30

© 2021 Walter de Gruyter GmbH, Berlin/Boston, Germany

Artikel in diesem Heft

  1. Frontmatter
  2. Materials testing for joining and additive manufacturing applications
  3. Bending strength of ceramic compounds bonded with silicate-based glass solder
  4. Effect of Y addition on the structural transformation and thermal stability of Ti-22Al-25Nb alloy produced by mechanical alloying
  5. Materialography
  6. Grain evolution during hot ring rolling of as-cast 42CrMo ring billets
  7. Mechanical testing
  8. DCPD and strain gauge based calibration procedure for evaluation of low temperature creep behavior
  9. Corrosion testing
  10. Corrosion behavior of the heat affected zone in a 316 L pipeline weld
  11. Non-destructive testing/Radiography
  12. Neutron darkfield imaging of fiber composites
  13. Materials testing for welding and additive manufacturing applications
  14. Investigation of in situ synthesized TiB2 particles in iron-based composite coatings processed by hybrid submerged arc welding
  15. Mechanical testing/Numerical simulations
  16. Mechanical behavior of butt curved adhesive joints subjected to bending
  17. Wear testing/Numerical simulations
  18. Finite element modeling of glass particle reinforced epoxy composites under uniaxial compression and sliding wear
  19. Mechanical testing
  20. Effect of the cooling process on the mechanical properties and microstructural behavior of extruded AZ31 and AM50 Mg alloys
  21. Materials testing for welding and additive manufacturing applications
  22. Weldability of austempered rail steel using the flash-butt process
  23. Effect of tool diameter ratio on the microstructural characteristics of a solid-state processed aluminum based metal matrix composite
  24. Analysis of physical and chemical properties
  25. A density measurement device for solid objects with uneven geometry
  26. Numerical simulations
  27. Experimental and numerical study of an overlay composite absorber plate material for a solar air heater
Heruntergeladen am 25.10.2025 von https://www.degruyterbrill.com/document/doi/10.1515/mt-2020-0102/pdf
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