The Influence of Burnishing Process on the Hardness and Surface Roughness of Aluminium Welded Joints
DOI:
https://doi.org/10.26408/128.02Keywords:
aluminum alloys, aluminum welding, treatment by burnishing, surface roughness, strengthening of the surface layerAbstract
The article presents the effect of burnishing on the surface roughness and hardness of the EN AW-6060 aluminum alloy after welding. The samples prepared were welded using the 141-TIG method, and then the surfaces to be burnished were prepared in the turning process to remove the weld face and run-out of the workpiece. After the turning process, the process of surface plastic treatment by roller burnishing began. Then, measurements of surface hardness and selected surface roughness parameters were performed. The analysis of the test results showed an increase in the hardness of the surface layer and an improvement in the surface roughness parameters Ra and Rt.
References
Charchalis, A., Starosta, R., Labuda, W., 2010, Multi-Criteria Optimalization of Steel Burnishing Parameters Applied to Marine Pumps Shaft pins, Journal of KONES Powertrain and Transport, vol. 17, no. 3, pp. 55–62.
Ferenc, K., 2013, Spawalnictwo, WNT, Warszawa.
Haagensen, P.J., Maddox, S.J., 2013, IIW Recommendations on Post Weld Improvement of Steel and Aluminium Structures, no. 79, Woodhead Publishing Ltd, Cambridge.
Juijerm, P., Altenberger, I., Scholtes, B., 2007, Influence of Ageing on Cyclic Deformation Behavior and Residual Stress Relaxation of Deep Rolled As-Quenched Aluminium Alloy AA6110, International Journal of Fatigue, vol. 29(7), pp. 1374–1382.
Juijerm, P., Noster, U., Altenberger, I., Scholtes, B., 2004, Fatigue of Deep Rolled AlMg4.5Mn (AA5083) in the Temperature Range 20–300 °C, Materials Science and Engineering A, vol. 379(1–2), pp. 286–292.
Labuda, W., Khudoley, A., 2016, The Influence of Burnishing Process on Surface Roughness of Stainless Steel Researched by Optical Profiler METAL, 25th Anniversary International Conference on Metallurgy and Materials, TANGER, Ostrava, pp. 765–770.
Marquis, G.B., Barsoum, Z., 2016, IIW Recommendation for the HFMI Treatment for Improving the Fatigue Strength of Welded Joints, Springer, Singapore.
Pilarczyk, J., 2014, Poradnik inżyniera. Spawalnictwo, WNT, Warszawa.
Przybylski, W., 1987, Technologia obróbki nagniataniem, WNT, Warszawa.
Schulze, V., Bleicher, F., Groche, P., Guo, Y.B., Pyun, Y.S., 2016, Surface Modification by Machine Hammer Peening and Burnishing, CIRP Ann, vol. 65(2), pp. 809–832.
Sidhom, N., Laamouri, A., Fathallah, R., Braham, C., Lieurade, H.P., 2005, Fatigue Strength Improvement of 5083 H11 Al-alloy T-Welded Joints by Shot Peening: Experimental Characterization and Predictive Approach, International Journal of Fatigue, vol. 27(7), pp. 729–745.
Wohlfahrt, H., Nitschke-Pagel, T., Zinn, W., 1996, Improvement of the Fatigue Strength of Welded Joints by Post-Weld Treatment Methods – A Comparison of the Results of High Strength Structural Steels and High Strength Aluminium Alloys, Weld. World, Le Soudage Dans
Le Monde, vol. 38, pp. 307–316.
Wohlfahrt, H., Nitschke-Pagel, T., Zinn, W., 1996, Optimization of the Fatigue Behaviour of Welded Joints by Means of Shot Peening – A Comparison of Results on Steel and Aluminium Joints, ICSP-6, pp. 243–250.
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