Welding Materials for Superalloys

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Welding Materials for Superalloys

Figen Balo, Lutfu S.Sua

Some of the recent most technological productions are those that make use of superalloys, and welding these together is frequently crucial to both manufacturing and repair/remanufacturing processes. In order to successfully weld superalloys, one must have a thorough awareness of their characteristics and exercise caution while choosing the welding materials and methods to guarantee that performance requirements are satisfied. In this study, firstly, an overview of the welding materials produced for superalloys and the most effective welding material for aviation applications among the current materials were tried to be determined with a hierarchy approach.

Keywords
Welding Materials, Superalloys, Aviation Applications, Mechanical Strength

Published online 9/10/2025, 17 pages

Citation: Figen Balo, Lutfu S.Sua, Welding Materials for Superalloys, Materials Research Foundations, Vol. 178, pp 316-332, 2025

DOI: https://doi.org/10.21741/9781644903698-16

Part of the book on Superalloys

References
[1] M.J. Ceslak, T.J. Headley, A.D. Romig, The welding metallurgy of Hastelloy Alloy C-4, C-22 and C-276, Metall. Mater. Trans. A. 17 (1986) 2035-2047. https://doi.org/10.1007/BF02645001
[2] O.A. Ojo, M.C. Chaturvedi, Liquation Microfissuring in the Weld Heat-Affected Zone of an Overaged Precipitation-Hardened Nickel-Base Superalloy, Metall. Mater. Trans. A 38A (2007) 356-369. https://doi.org/10.1007/s11661-006-9025-1
[3] M.J. Perricone, J.N. Dupont, M.J. Cieslak, Solidification of hastelloy alloys: An alternative interpretation, Metall. Mater. Trans. A 34A (2003) 1127-1132. https://doi.org/10.1007/s11661-003-0132-y
[4] M.H. Sun, X.J. Wang, T.D. Xia, T.Z. Liu, Welding of HP45NbTi superalloy pipe, J. Weld. Join. 8 (2006) 22-26.
[5] S. Petronic, A. Milosavljevic, The heat treatment effect on the multicomponent nickel alloys structure, FME Transaction, FME Trans. 35 (2007) 189-193.
[6] R.B. Leonard, Thermal stability of hastelloy alloy C-27, Corrosion 25 (1969) 222-228. https://doi.org/10.5006/0010-9312-25.5.222
[7] D.S. Duvall, W.A. Owczarski, Further Heat-Affected- Zone Studies in Heat Resistant Nickel Alloys, Weld. J. 46 (1997) 4235-4325.
[8] O.A. Idowu, O.A. Ojo, M.C. Chartuverdi, Effect of heat input on heat affected zone cracking in laser welded ATI Allvac 718Plus superalloy, Mater. Sci. Eng. A A454-A455 (2007) 389-397. https://doi.org/10.1016/j.msea.2006.11.054
[9] Matthews SJ 1976, Superalloys: Metallurgy and Manufacture, Baton Rouge, Claitor’s Publishing Division Proc. 3rd Int. Conference on ‘Superalloys’ 215-226. https://doi.org/10.7449/1976/Superalloys_1976_215_226
[10] S.S. Zhao, H.J. Xu, M. Xie, Y. Zhao, Studies of mechanical properties and microstructures of argon-shielded arc welding joint of gh536 superalloy, Dalian Jioatong Univ. 10 (2010) 47-49.
[11] T. Xu, Z.L. Gong, Y.W. Shen, H. Yang, Study on the welding procedure of heat-resistant alloy, Turbine Technol. 4 (2005) 313-314.
[12] W.F. Savage, B. Krantz, Welding research supplement, 1974 Res. Suppl. 7 292-s-302-s
[13] Saju T, Velu M, Review on welding and fracture of nickel based superalloys, Mater. Today Proc. 46, (2021) 7161-7169. https://doi.org/10.1016/j.matpr.2020.11.334
[14] E.A. Loria, Recent developments in the progress of superalloy 718, JOM 44 (1992) 33-36. https://doi.org/10.1007/BF03222252
[15] E.A. Ezugwu, A.R. Machado, I.R. Pashby, J. Wallbank, Effect of high-pressure coolant supply when machining a heat-resistant nickel-based superalloy, J. Soc. Tribologists Lub. Eng. 47 (1991) 751-757.
[16] A.R. Mashreghi, H. Monajatizadeh, M. Jahazi, S. Yue, High temperature deformation of nickel base superalloy Udimet 520, Mater. Sci. Tech 20 (2004) 161. https://doi.org/10.1179/026708304225010343
[17] H.Q. Zhang, H.Y. Zhao, H. Zhang, L.H. Li, X.A. Zhang, Analysis on the microfissuring behavior in the heat-affected zone of electron-beam welded nickel-based superalloy. J. Mater. Eng. 3 (2005) 22-23.
[18] O. Alniak, B. Fevzi, Hot forging behavior of nickel based superalloys under elevated temperatures, Mater. Des. 31 (2010) 1588-1592. https://doi.org/10.1016/j.matdes.2009.09.020
[19] K.T. Zysk, 1990 AIAA/SAE/ASME/ASEE 26th Joint Propulsion Conference, Orlando, Fla, AIAA 90-2514.
[20] K. Shinozaki, Welding and joining Fe and Ni‐base superalloys, Jpn. Weld. Technol. J. 43 (1995) 60.
[21] W.F. Savage, C.E. Jackson, Factors influencing strain-age cracking in Inconel X-750, Weld. J. 50 (1971) 302s-303s.
[22] H. Zhang, J.K. Li, Z.W. Guan, Y.J. Liu, D.K. Qi, Q.Y. Wang, Electron beam welding of Nimonic 80A: Integrity and microstructure evaluation, Vacuum 151 (2018) 266-274. https://doi.org/10.1016/j.vacuum.2018.01.021
[23] V. Rajkumar, N. Arivazhagan, Role of pulsed current on metallurgical and mechanical properties of dissimilar metal gas tungsten arc welding of maraging steel to low alloy steel, Mater. Des. 63 (2014) 69-82. https://doi.org/10.1016/j.matdes.2014.05.055
[24] K.D. Ramkumar, W.S. Abraham, V. Viyash, N. Arivazhagan, A.M. Rabel, Investigations on the microstructure, tensile strength and high temperature corrosion behaviour of Inconel 625 and Inconel 718 dissimilar joints, J. Manuf. Process. 25 (2017) 306-322, https://doi.org/10.1016/j.jmapro.2016.12.018
[25] P.K. Korrapati, V.K. Avasarala, M. Bhushan, K. Devendranath, Ramkumar, N., Arivazhagan, N.S. Narayanan, Assessment of mechanical properties of PCGTA weldments of inconel 625, Proced. Eng. 75 (2014) 9-13 https://doi.org/10.1016/j.proeng.2013.11.002
[26] E. Farahani, M. Shamanian, F. Ashrafizadeh, A comparative study on direct and pulsed current gas tungsten arc welding of alloy 617, Growth (Lakeland). 02 (2012) 1-6.
[27] J. Graneix, J.D. Beguin, F. Pardheillan, J. Alexis, T. Masri, Optimization of Exit Diameter of Hole on Ti-6Al-4V Superalloy Using Laser Drilling. 2014 MATEC Web of Conferences 14. https://doi.org/10.1051/matecconf/20141413006
[28] M.A. Rezaie, H.N. Moosavy, The effect of pre-cold treatment on microstructure, weldability and mechanical properties in laser welding of superalloys, J. Manuf. Process. 34 (2018) 339-348. https://doi.org/10.1016/j.jmapro.2018.06.018
[29] F. Nematzadeh, M.R. Akbarpour, S. Parvizi, A.H. Kokabi, S.K. Sadrnezhaad, Effect of welding parameters on microstructure, mechanical properties and hot cracking phenomenon in Udimet 520 superalloy, Mater. Des. 36 (2012) 94-99. https://doi.org/10.1016/j.matdes.2011.10.020
[30] K. Shinozaki, H. Kuroki, X. Lou, H. Ariyoshi, M. Shirai, Effect of welding parameters on laser weldability of Inconel 718, Taylor Francis 13 (2010) 945-951. https://doi.org/10.1080/09507119909452078
[31] Q. Wang, D.L. Sun, Y. Na, Y. Zhou, X.L. Han, J. Wang, Effects of TIG welding parameters on morphology and mechanical properties of welded joint of ni-base superalloy, Procedia Eng. 10 (2011) 37-41. https://doi.org/10.1016/j.proeng.2011.04.009
[32] M. Chen, T. Wu, T. Chen, S. Jeng, L. Tsay, The comparison of cracking susceptibility of ın52m and ın52mss overlay welds. Metals 9 (2009) 651. https://doi.org/10.3390/met9060651
[33] F. Hanning, A. Khan, J.S. Nordenström, O. Ojo, J. Andersson, Investigation of the Effect of Short Exposure in the Temperature Range of 750-950 _C on the Ductility of Haynes® 282® by advanced microstructural characterization. Metals. 9 (2019) 1357. https://doi.org/10.3390/met9121357
[34] S. Singh, J. Andersson, Heat-affected-zone liquation cracking in welded cast haynes® 282®. Metals. 10 (2010) 29 https://doi.org/10.3390/met10010029
[35] P. Alvarez, L. Vázquez, N. Ruiz, P. Rodríguez, A. Magaña, A. Niklas, F. Santos, Comparison of hot cracking susceptibility of tıg and laser beamwelded alloy 718 by varestraint testing. Metals 2019, 9, 985. https://doi.org/10.3390/met9090985
[36] T. Raza, J. Andersson, L. Svensson, Varestraint testing of selective laser additive manufactured alloy 718-influence of grain orientation. Metals 2019, 9, 1113. https://doi.org/10.3390/met9101113
[37] T. Raza, K. Hurtig, G. Asala, J. Andersson, L. Svensson, O. Ojo, Influence of heat treatments on heat affected zone cracking of gas tungsten arcwelded additivemanufactured alloy 718. Metals 9 (2019) 881. https://doi.org/10.3390/met9080881
[38] Phanden, R. Kumar, J.C.E. Ferreira. Biogeographical and variable neighborhood search algorithm for optimization of flexible job shop scheduling. Adv. Indust. Prod. Eng. Springer, Singapore, 2019. 489-503. https://doi.org/10.1007/978-981-13-6412-9_48
[39] Phanden, R. Kumar, L. Kumar Saharan, J.A. Erkoyuncu. Simulation based cuckoo search optimization algorithm for flexible job shop scheduling problem. Proc. Int. Conf. Intell. Sci. Technol. 2018. https://doi.org/10.1145/3233740.3233752
[40] R.K. Phanden, H.I. Demir, R.D. Gupta, ”Application of genetic algorithm and variable neighborhood search to solve the facility layout planning problem in job shop production system.” 7th international conference on industrial technology and management (ICITM). IEEE, 2018. https://doi.org/10.1109/ICITM.2018.8333959
[41] R.P. Singh, M. Tyagi, R. Kataria, Investigation of dimensional deviation in wire EDM of M42 HSS using cryogenically treated brass wire. in: Operations Management and Systems Engineering. Lecture Notes on Multidisciplinary Industrial Engineering. Springer, Singapore, 2019. https://doi.org/10.1016/j.matpr.2019.08.028
[42] R. Kataria, R.P. Singh, J. Kumar, Investigation of dimensional deviation in wire EDM of M42 HSS using cryogenically treated brass wire, 2016 AIMS Mater. Sci. 3 (2016): 1391-1409.
[43] H. Bisht, R.P. Singh, V. Sharma, Study of impact strength in TIG welding. in: Optimization Methods in Engineering. Lecture Notes on Multidisciplinary Industrial Engineering. Springer, Singapore, 2021.
[44] M.B. Henderson, D. Arrell, M. Heobel, R. Larsson, Nickel-based superalloy welding practices for ındustrial gas turbine applications m.b. henderson, Sci. Technol. Weld. Join. 9 (2004) 1-14. https://doi.org/10.1179/136217104225017099
[45] S.G.K. Manikandan, D. Sivakumar, M. Kamaraj, Microsegregation and interdendritic Laves phase, Weld. Inconel 718 Superalloy. (2019) 47-52, https://doi.org/10.1016/B978-0-12-818182-9.00003-7
[46] A. Benoit, S. Jobez, P. Paillard, V. Klosek, T. Baudin, Study of inconel 718 weldability using MIG CMT process, Sci. Technol. Weld. Join. 16 (2011) 477-482. https://doi.org/10.1179/1362171811Y.0000000031
[47] M.M.Z. Ahmed, B.P. Wynne, J.P. Martin, Effect of friction stir welding speed on mechanical properties and microstructure of nickel based super alloy Inconel 718, Sci. Technol. Weld. Join. 18 (2013) 680-687. https://doi.org/10.1179/1362171813Y.0000000156
[48] G.V.B. Lemos, S. Hanke, J.F. Dos Santos, L. Bergmann, A. Reguly, T.R. Strohaecker, Progress in friction stir welding of Ni alloys, Sci. Technol. Weld. Join. 22 (2017) 643-657. https://doi.org/10.1080/13621718.2017.1288953
[49] Y. Zhu, Z. Zhu, Z. Xiang, Z. Yin, Z. Wu, W. Yan, Microstructural evolution in 4Cr10Si2Mo at the 4Cr10Si2Mo/Nimonic 80A weld joint by inertia friction welding, J. Alloy. Compds. 476 (2009) 341-347 https://doi.org/10.1016/j.jallcom.2008.08.062
[50] V. Balasubramanian, V. Ravisankar, G.M. Reddy, Effect of pulsed current and post weld aging treatment on tensile properties of argon arc welded high strength aluminium alloy, Mater. Sci. Eng. A 459 (2007) 19-34. https://doi.org/10.1016/j.msea.2006.12.125
[51] S.S. Sandhu, A.S. Shahi, Metallurgical, wear and fatigue performance of Inconel 625 weld claddings, J. Mater. Process. Technol. 233 (2016) 1-8. https://doi.org/10.1016/j.jmatprotec.2016.02.010
[52] S.G.K. Manikandan, D. Sivakumar, M. Kamaraj, Physical metallurgy of alloy 718, Weld. Inconel 718 Superalloy. (2019) 1-19. https://doi.org/10.1016/B978-0-12-818182-9.00001-3
[53] S.G.K. Manikandan, D. Sivakumar, M. Kamaraj, Introduction, Weld. Inconel 718 Superalloy. (2019) xiii-xvi. 9.00014-1. https://doi.org/10.1016/B978-0-12-818182-9.00014-1
[54] H. Hänninen, P. Aaltonen, A. Brederholm, U. Ehrnsten’ , H. Gripenberg, A. Toivonen, J. Pitkan̈en, I. Virkkunen, Dissimilar metal weld joints and their performance in nuclear power plant and oil refinery conditions, VTT Tied. -Valt, Tek. Tutkimusk. (2006) 3-208.
[55] L.A. James, Fatigue-crack growth in Inconel 718 weldments at elevated temperatures. Weld. J. 57 (1978) 17-23.
[56] Welding Handbook, Weld. Handb. (1983). https://doi.org/10.1007/978-1-349-05561-6. https://doi.org/10.1007/978-1-349-05561-6
[57] Junyi Chai, James N.K. Liu, E.W.T. Ngai, Application of decision-making techniques in supplier selection: a systematic review of literature, Expert Syst. Appl. 40 (2013) 3872-3885. https://doi.org/10.1016/j.eswa.2012.12.040
[58] Ashu Gupta, K. Singh, Rajesh Verma, A critical study and comparison of manufacturing simulation softwares using analytic hierarchy process, J. Eng. Sci. Technol. 5 (2010) 108-129.
[59] A. Jadhav, R.M. Sonar, Framework for evaluation and selection of the software packages: A hybrid knowledge based system approach, J. Syst. Softw. 84 (2011) 1394-1407. https://doi.org/10.1016/j.jss.2011.03.034
[60] G. Rajesh, P. Malliga, Supplier selection based on AHP QFD methodology, Procedia Eng. 64 (2013) 1283-1292. https://doi.org/10.1016/j.proeng.2013.09.209
[61] D. Xinyang, H. Yong, D. Yong, M. Sankaran, Supplier selection using AHP methodology extended by D numbers Expert Systems with Applications, Expert Syst. Appl. 41 (2014) 156-167. https://doi.org/10.1016/j.eswa.2013.07.018
[62] M.C.Y. Tam, V.M.R. Tummala, An application of the AHP in vendor selection of a telecommunications system, Omega 29 (2001) 171-182. https://doi.org/10.1016/S0305-0483(00)00039-6
[63] S.A. Byeong, The analytic hierarchy process with interval preference statements, Omega 67 (2017) 177-185. https://doi.org/10.1016/j.omega.2016.05.004
[64] A.M. Guimaraes, J.E. Leal, P. Mendes, Discrete-event simulation software selection for manufacturing based on the maturity model, Comput. Ind. 103 (2018) 14-27. https://doi.org/10.1016/j.compind.2018.09.005
[65] P. Mendes, J.E. Leal, A.M.T. Thomé, A maturity model for demand-driven supply chains in the consumer product goods industry, Int. J. Prod. Econ. 179 (2016) 153-165. https://doi.org/10.1016/j.ijpe.2016.06.004
[66] T.L. Saaty, Theory and Applications of the Analytic Network Process: Decision Making With Benefits, Opportunities, Costs and Risks, RWS Publications, Pittsburg, USA, 2013. https://doi.org/10.1007/978-1-4614-7279-7
[67] V.N. Vieira, J.E. Leal, Performance criteria for Liquid Bulk Storage Terminals (LBST), using AHP, in: A. Leiras, C. González-Calderón, I. de Brito Junior, S. Villa, H. Yoshizaki (Eds.), Operations Management for Social Good. POMS 2018. Springer Proceedings in Business and Economics, Springer, Cham, 2020, pp. 421-429. https://doi.org/10.1007/978-3-030-23816-2_41
[68] G.S. Nunes, J.E. Leal, Decision-making method for facility location for offshore logistic operation based on AHP, in: A. Leiras, C. González-Calderón, I. de Brito Junior, S. Villa, H. Yoshizaki (Eds.), Operations Management for Social Good. POMS 2018. Springer Proceedings in Business and Economics, Springer, Cham, 2020, pp. 721-729. https://doi.org/10.1007/978-3-030-23816-2_71