Cite this article as: |
P. Subramani and M. Manikandan, Development of gas tungsten arc welding using current pulsing technique to preclude chromium carbide precipitation in aerospace-grade alloy 80A, Int. J. Miner. Metall. Mater., 26(2019), No. 2, pp. 210-221. https://doi.org/10.1007/s12613-019-1726-8 |
M. Manikandan E-mail: mano.manikandan@gmail.com,rubeshpsm@gmail.com
[1] |
V. Sreenivasulu and M. Manikandan, High-temperature corrosion behaviour of air plasma sprayed Cr3C2-25NiCr and NiCrMoNb powder coating on alloy 80A at 900℃, Surf. Coat. Technol., 337(2018), p. 250.
|
[2] |
N. Swain, P. Kumar, G. Srinivas, S. Ravishankar, and H.C. Barshilia, Mechanical micro-drilling of Nimonic 80A superalloy using uncoated and TiAlN-coated micro-drills, Mater. Manuf. Processes, 32(2017), No. 13, p. 1537.
|
[3] |
A. D. Gianfrancesco, Materials for Ultra-Supercritical and Advanced Ultra-Supercritical Power Plants, Woodhead Publishing, Cambridge, 2017, p. 186.
|
[4] |
W.E. Voice and R.G. Faulkner, Carbide stability in Nimonic 80A alloy, Metall. Trans. A, 16(1985), No. 4, p. 511.
|
[5] |
D. Bombac, M. Brojan, M. Tercelj, and R. Turk, Response to hot deformation conditions and microstructure development of Nimonic 80A superalloy, Mater. Manuf. Processes, 24(2009), p. 644.
|
[6] |
K.H. Keienburg, W. Eßber, and B. Deblon, Refurbishing procedures for blades of large stationary gas turbines, Mater. Sci. Technol., 1(1985), No. 8, p. 620.
|
[7] |
S. Kargarnejad and F. Djavanroodi, Failure assessment of Nimonic 80A gas turbine blade, Eng. Fail. Anal., 26(2012), p. 211.
|
[8] |
M. Gao and R.P. Wei, Precipitation of intragranular M23C6 carbides in a nickel alloy:Morphology and crystallographic features, Scripta Metall., 30(1994), No. 8, p. 1009.
|
[9] |
Y.L. Xu, C.X. Yang, Q.X. Ran, P.F. Hu, X.S. Xiao, X.L. Cao, and G.Q. Jia, Microstructure evolution and stress-rupture properties of Nimonic 80A after various heat treatments, Mater. Des., 47(2014), p. 218.
|
[10] |
VDM® Alloy 80 A, Material data sheet No. 4048, VDM Metals International GmbH, 2017. https://www.vdm-metals.com/fileadmin/user_upload/Downloads/Data_Sheets/Data_Sheet_VDM_Alloy_80_A.pdf
|
[11] |
G.D.J. Ram, A.V. Reddy, K.P. Rao and G.M. Reddy, Control of Laves phase in Inconel 718 GTA welds with current pulsing, Sci. Technol. Weld. Joining, 9(2004). No. 5, p. 390.
|
[12] |
S.G.K. Manikandan, D. Sivakumar, K.P. Rao, and M. Kamaraj, Effect of weld cooling rate on Laves phase formation in Inconel 718 fusion zone, J. Mater. Process. Technol., 214(2014), No. 2, p. 358.
|
[13] |
B. Arulmurugan and M. Manikandan, Development of welding technology for improving the metallurgical and mechanical properties of 21st century nickel based superalloy 686, Mater. Sci. Eng. A, 691(2017), p. 126.
|
[14] |
M. Manikandan, N. Arivazhagan, M.N. Rao, and G.M. Reddy, Microstructure and mechanical properties of alloy C-276 weldments fabricated by continuous and pulsed current gas tungsten arc welding techniques, J. Manuf. Processes, 16(2014), No. 4, p. 563.
|
[15] |
M. Manikandan, N. Arivazhagan, M.N. Rao, and G.M. Reddy, Improvement of microstructure and mechanical behavior of gas tungsten arc weldments of alloy C-276 by current pulsing, Acta Metall Sin Engl. Lett., 28(2015), No. 2, p. 208.
|
[16] |
K.D. Ramkumar, S.R. Krishnan, R. Ramanand, S. Logesh, T. Satyandas, A. Ameer, and N. Arivazhagan, Structure-property relationships of PCGTA welds of Inconel X750 in as-welded and post-weld heat treated conditions-A comparative study, J. Manuf. Processes, 20(2015), p. 1.
|
[17] |
A. Srikanth and M. Manikandan, Development of welding technique to avoid the sensitization in the alloy 600 by conventional Gas Tungsten Arc Welding method, J. Manuf. Processes, 30(2017), p. 452.
|
[18] |
T. Pasang, J.M.S. Amaya, Y. Tao, M.R. Amaya-Vazquez, F.J. Botana, J.C. Sabol, W.Z. Misiolek, and O. Kamiya, Comparison of Ti-5Al-5V-5Mo-3Cr welds performed by laser beam, electron beam and gas tungsten arc welding, Procedia Eng., 63(2013), p. 397.
|
[19] |
K.Y. Benyounis, A.G. Olabi, and M.S.J. Hashmi, Effect of laser welding parameters on the heat input and weld-bead profile, J. Mater. Process. Technol., 164-165(2005), p. 978.
|
[20] |
S.A. David, S.S. Babu, and J.M. Vitek, Welding:Solidification and microstructure, JOM, 55(2003), No. 6, p. 14.
|
[21] |
E. Farahani, M. Shamanian, and F. Ashrafizadeh, A comparative study on direct and pulsed current gas tungsten arc welding of alloy 617, AMAE Int. J. Manuf. Mater. Sci., 2(2012), No. 1, p. 1.
|
[22] |
G.F.V. Voort, ASM Handbook Volume 9:Metallography and Microstructures, ASM International, Materials Park, Ohio, 2004.
|
[23] |
D. Peng, J. Shen, Q. Tang, C.P. Wu, and Y.B. Zhou, Effects of aging treatment and heat input on the microstructures and mechanical properties of TIG-welded 6061-T6 alloy joints, Int. J. Miner. Metall. Mater., 20(2013), No. 3, p. 259.
|
[24] |
H.T. Liu, J.X. Zhou, D.Q. Zhao, Y.T. Liu, J.H. Wu, Y.S. Yang, B.C. Ma, and H.H. Zhuang, Characteristics of AZ31 Mg alloy joint using automatic TIG welding, Int. J. Miner. Metall. Mater., 24(2017), No. 1, p. 102.
|
[25] |
N.J. Dupoint, C.J. Lippold, and D.S. Kiser, Welding Metallurgy and Weldability of Nickel-Base Alloys, John Wiley & Sons, Inc., Hoboken, New Jersey, 2009.
|
[26] |
Y.S. Sato, P. Arkom, H. Kokawa, T.W. Nelson, and R.J. Steel, Effect of microstructure on properties of friction stir welded Inconal Alloy 600, Mater. Sci. Eng. A, 477(2008), No. 1-2, p. 250.
|
[27] |
J.M. Donachie and J.S. Donachie, Superalloys:A Technical Guide, 2nd ed., ASM International, Materials Park, Ohio, 2002.
|
[28] |
K. Tamaki, H. Kawakami, M. Kojima, Y. Akazaki, and K. Nomoto, Influence of metallurgical factors on temper embrittlement in HAZ of Cr-Mo steel, Res. Rep. Fac. Eng. Mie Univ., 22(1997), p. 11.
|
[29] |
K.Y. Feng, P. Liu, H.X. Li, S.Y. Sun, S.B. Xu, and J.N. Li, Microstructure and phase transformation on the surface of Inconel 718 alloys fabricated by SLM under 1050℃ solid solution + double ageing, Vacuum, 145(2017), p. 112.
|
[30] |
W.D. Callister and D.G. Rethwisch, Materials Science and Engineering, 2nd ed., John Wiley and Sons, Inc., Hoboken, New Jersey, 2014.
|
[31] |
H.B. Wang, S.S. Wang, P.Y. Gao, T. Jiang, X.G. Lu, and C.H. Li, Microstructure and mechanical properties of a novel near-α titanium alloy Ti6.0Al4.5Cr1.5Mn, Mater. Sci. Eng. A, 672(2016), p. 170.
|