Zacytuj

Li J.G., Wang S.Q.: Distortion caused by residual stresses in machining aeronautical aluminumalloy parts: recent advances. Int J Adv Manuf Technol 89 (2017), 997–1012. Search in Google Scholar

Yang Y., Li M., Li K.R.: Comparison and analysis of main effect elements of machining distortion for aluminum alloy and titanium alloy aircraft monolithic component. Int J Adv Manuf Technol 70 (2014), 1803–1811. Search in Google Scholar

Zhang ZH, Dong S.Y., Wang Y.J., Xu B.S., Fang J.X., He P.: Study on microstructures and mechanical properties of super narrow gap joints of thick and high strength aluminum alloy plates welded by fiber laser. Int J Adv Manuf Technol 82 (2016), 99–109. Search in Google Scholar

Hakem M., Lebaili S., Mathieu S., Miroud D., Lebaili A., Cheniti B.: Effect of microstructure and precipitation phenomena on the mechanical behavior of AA6061-T6 aluminum alloy weld. Int J Adv Manuf Technol 102 (2019), 2907–2918. Search in Google Scholar

Zhang, H.; Chen, Y.; Luo, A. A.: A novel aluminum surface treatment for improved bonding in magnesium/aluminum bimetallic castings. Scr. Mater. 86 (2014), 52-55. Search in Google Scholar

Wang X.H., Lu H., Xing L.H., Zhang H.L.: Discussion on process design of aluminum alloy arc welding joints. Welding & Joining 10 (2017), 25–30. Search in Google Scholar

Li Y., Zou W., Lee B., Babkin A., Chang Y.: Research progress of aluminum alloy welding technology. Int J Adv Manuf Technol 109 (2020), 1207–1218. Search in Google Scholar

Olabode M., Kah P., Martikainen J.: Aluminium alloys welding processes: Challenges, joint types and process selection. J. Eng. Manuf 227 (2013), 1129-1137. Search in Google Scholar

Mathers G: The welding of aluminium and its alloys. Woodhead Publishing (2002), Cambridge, England. Search in Google Scholar

Torres M. R., McClure, J. C., Nunes, A. C., Gurevitch, A. C.: Gas contamination effects in variable polarity plasma arc welded aluminum. Weld. J. 71 (1992), 123-131. Search in Google Scholar

Modenesi P. J., Apolinário E. R., Pereira I. M.: TIG welding with single-component fluxes. J Mater Proc Technol 99 (2000), 260-265. Search in Google Scholar

Lucas W., Howse D.: Activating flux - increasing the performance and productivity of the TIG and plasma processes, Weld Met Fab 64 (1996), 11-17. Search in Google Scholar

Shchitsyn Y. D., Belinin D. S., Shchitsyn V. Y., Neulybin S. D.: Plasma welding of aluminum alloys with the use of two direct arcs on reverse-polarity current. Metallurgist 59 (2015), 1234-1237. Search in Google Scholar

Han Y.Q., Du M.H., Yao Q.H., Hong H.T., Wu Y.J.: The signal examination in variable polarity plasma arc welding of aluminum alloy. IEEE Third International Conference on Measuring Technology & Mechatronics Automation (2011), 941-944. Search in Google Scholar

Han Y.Q., Pang S.G., Yao Q.H., Shi Z.J.: Heat source characteristics of aluminum alloy LBVPPA composite welding. Hanjie Xuebao/Trans China Weld Inst 36 (2015), 23–26. Search in Google Scholar

Moeller F., Thomy C.: Interaction effects between laser beam and plasma arc in hybrid welding of aluminum. Phys Procedia 41 (2013), 81-89. Search in Google Scholar

Chun L., Han Y., Chen F., Honh H.: Pulse variable polarity plasma arc welding technology of aluminum alloy. Hanjie Xuebao/Trans China Weld Inst (2016), 29-32. Search in Google Scholar

Kim J. D., Kim Y. H., Oh J. S.: Diagnostics of laser-induced plasma in welding of aluminum alloy. Key Eng Mater (2004), 1671-1676.10.4028/www.scientific.net/KEM.261-263.1671 Search in Google Scholar

Dreher M., Schuster H., Manig N., Gebhardt C., Schnick M.: Alles eine Frage der Polung - Fokussiertes WIG-Schweißen von Aluminium und säure- und rostbeständigen Stählen. DVS Berichte 382 (2022), 483-489. Search in Google Scholar

Pang Q., Pang T., McClure J. C., Nunes A. C.: Workpiece Cleaning During Variable Polarity Plasma Arc Welding of Aluminum. J Eng Ind 116 (1994), 463-466. Search in Google Scholar

ISO 3529-1:2019-07 Vacuum technology - Vocabulary - Part 1: General terms (2019). Search in Google Scholar

Bach F. W., Möhwald K., Holländer U.: Physico-chemical aspects of surface activation during fluxless brazing in Shielding-Gas Furnaces. Key Eng Mater 438 (2010), 73–80. Search in Google Scholar

Klett J., Bongartz B., Viebranz V. B., Kramer D., Hao C., Maier H. J., Hassel T.: Investigations into flux-free plasma brazing of aluminum in a local XHV-atmosphere. Materials 15 (2022), 8292.10.3390/ma15238292973967736499789 Search in Google Scholar

Rodriguez Diaz M., Szafarska M., Gustus R., Möhwald, K., Maier, H. J.: Oxide Free Wire Arc Sprayed Coatings - An Avenue to Enhanced Adhesive Tensile Strength. Metals 12 (2022), 684.10.3390/met12040684 Search in Google Scholar

Aman W., Nothdurft S., Hermsdorf J., Kaierle S., Szafarska M., Gustus R., Overmeyer L.: Laser beam brazing of aluminum alloys in XHV-adequate atmosphere with surface deoxidation by ns-pulsed laser radiation. J. Laser Appl 34 (2022), 022005.10.2351/7.0000574 Search in Google Scholar

Jeurgens L. P. H., Sloof W. G., Tichelaar F. D., Mittemeijer E. J.: Growth kinetics and mechanisms of aluminum-oxide films formed by thermal oxidation of aluminum. J Appl Phys 92 (2002), 1649–1656. Search in Google Scholar

Jittavisuttiwong, P., Poopat, B.: Effect of Helium Addition in Argon Shielding Gas on Metal Transfer Behavior in Gas Metal Arc Welding of Aluminum. Key Eng Mater 545 (2013), 219-22410.4028/www.scientific.net/KEM.545.219 Search in Google Scholar

Geng, S., Jiang, P., Shao, X., Guo, L. Mi, G., Wu, H., Wang, C., Han, C., Gao, S.: Identification of nucleation mechanism in laser welds of aluminum alloy. Appl Phys A 125 (2019), 396.10.1007/s00339-019-2693-7 Search in Google Scholar

Orłowska, M., Pixner, F., Majchrowicz, K., Enzinger, N., Olejnik, L., Lewandowska, M.: Application of Electron Beam Welding Technique for Joining Ultrafine-Grained Aluminum Plates. Metall Mater Trans A 53 (2022), 18–24. Search in Google Scholar

eISSN:
2083-4799
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Materials Sciences, Functional and Smart Materials