Effects of Welding Cycles on Microstructural Characteristics and Mechanical Properties of SAF 2507 Super Duplex Stainless Steel
الموضوعات : Journal of Environmental Friendly MaterialsM. A. Beheshty 1 , E. H. Dehkordi 2 , K. Zarrin Naghsh 3 , M. R. B. Marnany 4
1 - Advanced Materials Research Center, Department of Materials Engineering, Najafabad Branch, Islamic Azad University, Najafabad, Iran
2 - Advanced Materials Research Center, Department of Materials Engineering, Najafabad Branch, Islamic Azad University, Najafabad, Iran
3 - Advanced Materials Research Center, Department of Materials Engineering, Najafabad Branch, Islamic Azad University, Najafabad, Iran
4 - Department of Materials Engineering, Tehran University, Tehran, Iran
الکلمات المفتاحية:
ملخص المقالة :
Unique characteristics of SAF 2507 (UNS S32750) super duplex stainless steels alloy such as its high mechanical properties and strong corrosion resistivity behavior led to its widely applications in sea water and other highly corrosive media in oil & gas industries, however, its known that it has also got its own drawbacks particularly the impact and consequences that the number of heating/cooling cycles during its welding or welding repairs may have on its functional characteristics. While international standards/codes are not defining any limitation on weld repairs and/or permitted numbers of weld repairs on duplex stainless steel materials, some owners and clients are limiting the number of permitted repairs to maximum two (just to be in safe side) hence always motivating the question if the number of repairs become more than two, whether and how that could affect the microstructural characteristics and mechanical properties of a welded duplex material. This subject has also never been discussed in any of the earlier investigations. The current proposed article scrutinizing the effect of number of welding repairs on functional characteristics of an SAF 2507 welded plate. 4 samples have been welded by GTAW process using rod ER2594 filler metal with 0 to 3 numbers of repairs on them to evaluate the effect of various numbers of heating/cooling cycles caused by different numbers of repairs on the weldment. Mechanical properties and microstructural characteristics of the samples have been analyzed to observe the excessive presence of any detrimental intermetallic phases and also to see whether any changes in the value of mechanical properties have been occurred or not. It has been concluded that the number of weld repairs (up to 3 times as been examined here and even higher) on welded samples has got no (negligible) negative impacts on the strength of weldments or other mechanical / microstructural characteristics of the weldment, if done properly.
[1] M. I. M. Bassiouni, "Evaluation of the microstructure and localized corrosion behavior of AISI 2507 super duplex stainless steel welds ", Ph.D. thesis, School of civil, environmental & chemical engineering, RMIT University, March 2012.
[2] J.Charles Super duplex stainless steels: Structure and properties. Proc. Duplex Stainless Steels 91. Les Editions de Physique, F-91944 Les Cedex, (1991) 23-48. France,
[3] M. Al-Rabie, "Observation of stress corrosion cracking behavior in super duplex stainless", Ph.D. thesis, School of Materials, University of Manchester, 2011.
[4] U. Obi, "Effect of aging on phase evolution, mechanical and corrosion properties of a high tungsten super duplex stainless steel", Ph.D. thesis, School of Engineering, University of Aberdeen, February 2015.
[5] API Technical Report 938-C. 2005. Use of Duplex Stainless Steels in the Oil Refining Industry:American Petroleum Institute: First Edition. Washington, D.C.
[6] K. D.Ramkumar, G. Thiruvengatam, S. P. Sudharsan, D. Mishra, N. Arivazhagan and R. Sridhar, Mat. Des., 60, 2014, 125.
[7] K.D.Ramkumar, D. Mishra, G. Thiruvengatam, S.P. Sudharsan, T. Harsha Mohan, V. Saxena, R. Pandey and N. Arivazhagan, Bull. Mater. Sci, 38(4), 2015,837.
[8] Hua Huang, Jing-Hui Jin, Zhong-Ping Ding, Springer Int. Publ.Switzerland, 2015,493.
[9] Villalobos, Albiter, Maldonado, RevistaMatéria, 14(3), 2009,1061.
[10] K. D. Ramkumar, D. Mishra, B. Ganesh Raj, M.K. Vignesh, G. Thiruvengatam, SP. Sudharshan, N. Arivazhagan, N. Sivashanmugam and A. M. Rabel, Mater. Des. , 2014.
[11] V. A. Hosseini, M. Asunción Valiente Bermejo, J. Gårdstam, K. Hurtig, L.Karlsson, Int. Inst. Welding, 2016.
[12] K. D.Ramkumar, A. Singh, S. Raghuvanshi, A. Bajpai, T. Solanki, M. Arivarasu, N. Arivazhagan and S. Narayanan, J. Manuf. Processes, 2015.
[13] N.Pettersson, Rachel F.A. Pettersson and S. Wessman, The Minerals, Met. Mater. Society ASM Int., 2014.
[14] M. Rahmani, A. Eghlimi and M.Shamanian, J. of mater. Eng. and perform., 2014.
[15] N.Llorca-Isern, H. López-Luque, I. López-Jiménez andM. V. Biezma, Mater. Character. , (112), 2015,20.
[16] H. Huang, Jing-Hui Jin and Zhong-Ping Ding, Springer int. publ. Switzerland, 2015.
[17] P. Paulraj, R. Garg, Manuf. Rev.,02(29) 2015.
[18] G. C. de Souza, A. L. da Silva, S. S. M. Tavares, J. M. Pardal, M. L. R. Ferreira and I. CardoteFilho, Welding Int., 30(6) 2016, 432.
[19] Standard Specification for Chromium and Chromium-Nickel Stainless Steel Plate, Sheet, and Strip for Pressure Vessels and for General Applications, Designation: A 240/A 240M – 04a, ASTM International.
[20] AWS A5.9/A5.9M, Specification for Bare Stainless Steel Welding Electrodes and Rods.
[21] ASME SEC IX, Welding Procedure and performance qualification, American Society of Mechanical Engineers, 2017.
[22] J.O. Nilsson, L. Karlsson, and J. O. Andersson, Steel Weld Metal, Mater. Sci. Technol., 11(3), 1995, 276.
[23] A. Eghlimi, M. Shamanian, and K. Raeissi, J. Mater. Eng. Perform, 22(12), 2013, 3657.
[24] M. Martins, S.M. Rossitti, M. Ritoni, and L.C. Casteletti, Mater. Charact, 58(10), 2007, 909.
[25] API 582 Ed. 3, Welding Guidelines for the Chemical, Oil, And Gas Industries from SAI Global.
[26] ASTM E3 – 11, Standard Guide for Preparation of Metallographic Specimens
[27] ASTM E562 – 11, Standard Test Method for Determining Volume Fraction by Systematic Manual Point Count.
[28] ANSI/AWS A4. 2M/A4. 2-1997, Standard Procedures for Calibrating Magnetic Instruments to Measure the Delta Ferrite Content of Austenitic andDuplex Ferritic Austenitic Stainless Steel Weld Metal.
[29] API TECHNICAL REPORT 938-C, Use of Duplex Stainless Steels in the Oil Refining Industry, Second Edition, April 2011
[30] ASTM A370 – 17, Standard Test Methods and Definitions for Mechanical Testing of Steel Products.
[31] ASTM E92 – 17, Standard Test Methods for Vickers Hardness and Knoop Hardness of Metallic Materials.
[32] ASTM G30 – 97(2016), Standard Practice for Making and Using U-Bend Stress-Corrosion Test Specimens.
[33] ISO 7539-10:2013, Corrosion of metals and alloys, Stress corrosion testing, Part 10: Reverse U-bend method.
[34] ASTM A923 – 14, Standard Test Methods for Detecting Detrimental Intermetallic Phase in Duplex Austenitic/Ferritic Stainless Steels.
[35] ASME Boiler and Pressure Vessel Code, Section VIII, Rules for Construction of Pressure Vessels, Div. 1, UG-84, American Society of Mechanical Engineers, 2017.
[36] C. S. Wiesner, Duplex Stainless Steels 97, Proceedings of the 5th World Conference, Maastricht, The Netherlands, 21-23 October 1997, Zutphen, KCI Publishing, 1997, Book 2, pp.979-990.
[37] ASME B31.3, Process Piping Code, American Society of Mechanical Engineers, 2016.
[38] NORSOK M-601:2016 Welding and Inspection of piping.