416
S. Papaefthymiou
References
1. Administration UEI (2020) International Energy Outlook 2019 key takeaway
2. Steffen M, Luxenburger G, Thieme A, Demmerath A (2004) Sour service with a smile—outline
considerations for the production of HIC resistant pressure vessel plates. Dillinger Hütte GTS,
Germany
3. Stalheim DG, Hoh B (2010) Guidelines for production of API pipelines steels suitable for
Hydrogen Induced Cracking (HIC) service applications. Calgary, Alberta, Canada
4. Hejazi D et al (2012) Effect of manganese content and microstructure on the susceptibility of
X70 pipeline steel to hydrogen cracking. Mater Sci Eng 551:40–49
5. Zhang T-Y, Wat I (2003) Characterization of isolated hydrogen traps hydrogen permeation
experiments. J Appl Phys 93(6016)
6. Clay DB, Mccutcheon DB (1976) Development of line pipe steels. Philos Trans R Soc Lond
282(1307):305–318
7. Singh R (2013) Arctic pipeline planning. Elsevier, Gulf Professional Publishing, Houston
8. Koto J (2016) Subsea pipeline design & application. Ocean & Aerospace Research Institute,
Indonesia
9. Tadavi T et al (2017) Microscopic analysis of heat affected zone (HAZ) of submerged arc
welding (SAW) joint for 1018 mild steel sheet. Adv Intel Syst Res 137:194–199
10. Yang Y (n.d.) The effect of submerged arc welding parameters on the properties of pressure
vessel and wind turbine tower steels. Department of Mechanical Engineering, University of
Saskatchewan
11. Kang KB et al (2011) Development of high strength and high performance linepipe and
shipbuilding steels. In: Advanced steels. Springer, Berlin, pp 281–288
12. Runte E (1968) The brown Boveri review 55(3):113–118
13. Ramo S, Whinnery JR, Duzer V (1984) Fields and waves in communication electronics. Wiley,
Hoboken
14. Warren LF (2001) Tube international
15. Scott PF, Smith W (1996) Tube international 147–152
16. Yu C (1996) Tube international. pp 153–155
17. Yu C (1996) Tube international
18. www.twi-global.com
19. Revie RW (2015) Oil and gas pipelines—integrity and safety handbook. Wiley, Canada
20. Easterling K (1992) Introduction to the physical metallurgy of welding. ButterworthHeinemann, Oxford
21. IIS/IIW-382-71 (1971) Guide to the welding and weldability of C-Mn steels and C-Mn
microalloyed. International Institute of Welding, Paris
22. Williams JG et al (1996) High strength ERW linepipe manufacture in Australia. Mater Forum
20:13–28
23. Zhao MC, Yang K, Shan Y (2002) The effects of thermo-mechanical control process on
microstructures. Mater Sci Eng 335:14–20
24. Glandman T (2002) The physical metallurgy of micralloyed steels. Maney, London
25. Honeycomb RWK, Bhadeshia HKDH (1995) Steels, microstructures and properties. Edward
Arnold, London
26. Bailey N (1994) Weldability of ferritic steels. Woodhead Publishing Series in Welding and
Other Joining Technologies, Cambridge
27. Handbook A (1990) Properties and selection: irons steels and high performance alloys. ASM
International, Cleveland
28. Callister WD, Rethwisch DG (2014) Materials science and engineering—an introduction.
Wiley, Hoboken
29. Kou S (2003) Welding metallurgy. Wiley, Hoboken
30. Totten GE (2006) Steel heat treatment handbook. Taylor & Francis Group, Milton Park
31. Zhou X et al (2017) Austenite to polygonal-ferrite transformation and carbide precipitation in
high strength low alloy steel. Int J Mater Res 108(1):12–19
Précédent

- 424/430

Suivant