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Original Articles

Improving the Interfacial Microstructure Evolution of Ti/Stainless Steel GTA Welding Joint by Employing Cu Filler Metal

, &
Pages 2165-2173 | Received 26 Aug 2015, Accepted 06 Jan 2016, Published online: 23 Aug 2016

REFERENCES

  • Chen, S.H.; Zhang, M.X.; Huang, J.H.; Cui, C.J.; Zhang, H.; Zhao, X.K. Microstructures and mechanical property of laser butt welding of titanium alloy to stainless steel. Materials & Design 2014, 53, 504–511.
  • Zakipour, S.; Samavatian, M.; Halvaee, A.; Amadeh, A.; Khodabandeh, A. The effect of interlayer thickness on liquid state diffusion bonding behavior of dissimilar stainless steel 316/Ti-6Al-4V system. Materials Letters 2015, 142, 168–171.
  • Wang, T.; Zhang, B.G.; Feng, J.C.; Tang, Q. Effect of a copper filler metal on the microstructure and mechanical properties of electron beam welded titanium-stainless steel joint. Materials Characterization 2012, 73, 104–113.
  • Tsai, C.J.; Wang, L.M. Improved mechanical properties of Ti-6Al-4V alloy by electron beam welding process plus annealing treatments and its microstructural evolution. Materials & Design 2014, 60, 587–598.
  • Bhola, S.M.; Kundu, S.; Bhola, R.; Mishra, B.; Chatterjee, S. Electrochemical study of diffusion bonded joints between micro-duplex stainless steel and Ti6Al4V alloy. Journal of Materials Science & Technology 2014, 30 (2), 163–171.
  • Kundu, S.; Mishra, B.; Olson, D.L.; Chatterjee, S. Interfacial reactions and strength properties of diffusion bonded joints of Ti64 alloy and 17–4PH stainless steel using nickel alloy interlayer. Materials & Design 2013, 51, 714–722.
  • Balasubramanian, M. Application of Box-Behnken design for fabrication of titanium alloy and 304 stainless steel joints with silver interlayer by diffusion bonding. Materials & Design 2015, 27, 161–169.
  • Ghosh, S.K.; Chatterjee, S. On the direct diffusion bonding of titanium alloy to stainless steel. Materials and Manufacturing Processes 2010, 25, 1317–1323.
  • Ghosh, M.; Chatterjee, S.; Mishra, B. The effect of intermetallics on the strength properties of diffusion bonds formed between Ti-5.5Al-2.4V and 304 stainless steel. Materials Science and Engineering: A 2003, 363 (1–2), 268–274.
  • Kundu, S.; Sam, S.; Chatterjee, S. Interfacial reactions and strength properties in dissimilar titanium alloy/Ni alloy/microduplex stainless steel diffusion bonded joints. Materials Science and Engineering: A 2013, 560, 288–295.
  • Tomashchuk, I.; Grevey, D.; Sallamand, P. Dissimilar laser welding of AISI 316L stainless steel to Ti6-Al4–6V alloy via pure vanadium interlayer. Materials Science and Engineering: A 2015, 622, 37–45.
  • Ishida, K.; Gao, Y.; Nagatsuka, K.; Takahashi, M.; Nakata, K. Microstructures and mechanical properties of friction stir welded lap joints of commercially pure titanium and 304 stainless steel. Journal of Alloys and Compounds 2015, 630, 172–177.
  • Fazel-Najafabadi, M.; Kashani-Bozorg, S.F.; Zarei-Hanzaki, A. Dissimilar lap joining of 304 stainless steel to CP-Ti employing friction stir welding. Materials & Design 2011, 32 (4), 1824–1832.
  • Gao, Y.; Nakata, K.; Nagatsuka, K.; Liu, F.C.; Liao, J. Interface microstructural control by probe length adjustment in friction stir welding of titanium and steel lap joint. Materials & Design 2015, 65, 17–23.
  • Habib, M.A.; Keno, H.; Uchida, R.; Mori, A.; Hokamoto, K. Cladding of titanium and magnesium alloy plates using energy-controlled underwater three layer explosive welding. Journal of Materials Processing Technology 2015, 217, 310–316.
  • Akbari Mousavi, S.A.A.; Sartangi, P.F. Effect of post-weld heat treatment on the interface microstructure of explosively welded titanium-stainless steel composite. Materials Science and Engineering: A 2008, 494 (1–2), 329–336.
  • Wang, F.Z.; Wang, Q.Z.; Yu, B.H.; Xiao, B.L.; Ma, Z.Y. Interface structure and mechanical properties of Ti(C,N)-based cermet and 17–4PH stainless steel joint brazed with nickel-base filler metal BNi-2. Journal of Materials Processing Technology 2011, 211 (11), 1804–1809.
  • Yue, X.; He, P.; Feng, J.C.; Zhang, J.H.; Zhu, F.Q. Microstructure and interfacial reactions of vacuum brazing titanium alloy to stainless steel using an AgCuTi filler metal. Materials Characterization 2008, 59 (12), 1721–1727.
  • Shiue, R.K.; Wu, S.K.; Shiue, J.Y. Infrared brazing of Ti-6Al-4V and 17–4 PH stainless steel with (Ni)/Cr barrier layer(s). Materials Science and Engineering: A 2008, 488 (1–2), 186–194.
  • Liu, K.; Li, Y.J.; Wei, S.Z.; Wang, J. Interfacial microstructural characterization of Ti/Al joints by gas tungsten arc welding. Materials and Manufacturing Processes 2014, 29, 969–971.
  • Wei, S.Z.; Li, Y.J.; Wang, J.; Liu, K. Influence of welding heat input on microstructure of Ti/Al joint during pulsed gas metal arc welding. Materials and Manufacturing Processes 2014, 29, 954–960.
  • Wei, S.Z.; Li, Y.J.; Wang, J.; Liu, K. Use of welding-brazing technology on microstructural development of titanium/aluminum dissimilar joints. Materials and Manufacturing Processes 2014, 29, 961–968.
  • Wei, S.Z.; Li, Y.J.; Wang, J.; Liu, K. Improving of interfacial microstructure of Ti/Al joint during GTA welding by adopting pulsed current. The International Journal of Advanced Manufacturing Technology 2014, 73 (9–12), 1307–1312.
  • Ludwig, T.H.; Schonhovd Dæhlen, E.; Schaffer, P.L.; Arnberg, L. The effect of Ca and P interaction on the Al-Si eutectic in a hypoeutectic Al-Si alloy. Journal of Alloys and Compounds 2014, 586, 180–190.
  • Xu, Y.; Lu, Y.; Yan, L.; Yang, Z.; Yang, R. Synthesis and effect of forming Fe2P phase on the physics and electrochemical properties of LiFePO4/C materials. Journal of Power Sources 2006, 160 (1), 570–576.
  • Taranets, N.Y.; Jones, H. Wettability of aluminium nitride based ceramics of different porosity by two active silver based brazing alloys. Materials Science and Engineering: A 2004, 379 (1–2), 251–257.
  • Zaharinie, T.; Huda, Z.; Izuan, M.F.; Hamdi, M. Development of optimum process parameters and a study of the effects of surface roughness on brazing of copper. Applied Surface Science 2015, 331, 127–131.
  • Kundu, S.; Ghosh, M.; Laik, A.; Bhanumurthy, K.; Kale, G.B.; Chatterjee, S. Diffusion bonding of commercially pure titanium to 304 stainless steel using copper interlayer. Materials Science and Engineering: A 2005, 407 (1–2), 154–160.
  • Oliynyk, A.O.; Oryshchyn, S.V.; Lomnytska, Y.F. New compounds and phase equilibria in the Zr-Ti-P system. Journal of Alloys and Compounds 2012, 545, 80–84.
  • Tang, H.; Chen, X.; Luo, X.; Chen, M.; Wang, Z.; Zuo, L. Heterogeneous nucleation effect of in situ nanoparticles on the metal-matrix microstructure. Materials Letters 2014, 137, 455–459.
  • Medina, S.F. From heterogeneous to homogeneous nucleation for precipitation in austenite of microalloyed steels. Acta Materialia 2015, 84, 202–207.
  • Yang, L.; Xia, M.; Li, J.G. Epitaxial growth in heterogeneous nucleation of pure aluminum. Materials Letters 2014, 132, 52–54.
  • Yang, H.; Zhang, J.; Müller-Plathe, F.; Yang, Y. A reverse nonequilibrium molecular dynamics method for calculating the mutual diffusion coefficient for binary fluids. Chemical Engineering Science 2015, 130, 1–7.
  • Martins, L.F.G.; Parreira, M.C.B.; Ramalho, J.P.P.; Morgado, P.; Filipe, E.J.M. Prediction of diffusion coefficients of chlorophenols in water by computer simulation. Fluid Phase Equilibria 2015, 396, 9–19.
  • Hao, M.; Song, Y.; Su, B.; Zhao, Y. Diffusion of CO2 in n-hexadecane determined from NMR relaxometry measurements. Physics Letters A 2015, 379 (18–19), 1197–1201.
  • Barros, M.C.F.; Silva, D.C.; Esteso, M.A.; Cabral, A.M.T.D.P.V.; Veiga, F.J.B.; Ribeiro, A.C.F. Diffusion coefficients of β-cyclodextrin sulfated sodium salt in aqueous solutions. The Journal of Chemical Thermodynamics 2015, 87, 117–121.

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