Research on the Effect of Welding Parameters on Tensile Properties Of Dissimilar Base Materials (Low Carbon Steel Aisi 1020 And Stainless Steel Aisi 304) Rotary Friction Welding Joint Using Taguchi Method
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ngondt@hcmute.edu.vnKeywords:
Tensile strength, rotary friction welding, low carbon steel AISI 1020, stainless steel AISI 304, friction time, welding force, rotary (friction) speedAbstract
The following study objective is an investigation in order to determine welding parameter effect on dissimilar base materials (low carbon steel AISI 1020 and stainless steel AISI 304) rotary friction welding joint. In rotary friction welding process, the tensile strength is tested as welding joint quality. Friction time t1, friction force F2, rotary speed N which greatly affect the tensile strength is investigated by the Taguchi method. With the parameter setting: t1 = 6s, F2 = 100 MPa, N = 1450 rpm, upsetting length l =3 mm (selected) and workpiece diameter D = 20 mm. The results show that tensile strength can be from 86.89% to 93.68% AISI 1020 tensile strength. Within the experimental parameter range, welding force F2 and rotary (friction) speed N mainly impact on the tensile strength weld joint (78% and 28% respectively), and the effect of welding time t1 is not significant.
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References
Manufacturing Technology, Inc., Friction Welding, MTI, 1999.
Ramadhan H Gardi, Salm Aziz Kako. Efficiency of Dissimilar Friction Welded (Super Duplex Stainless Steel SAF 2507 - Mild Steel) Joints, Al-Rafidain Engineering, Vol. 21, No. 1, February 2013, pp. 56-65.
Hakan Ates, N. Kaya, Mechanical and Microstructural Properties of Friction Welded AISI 304 Stainless Steel to AISI 1060 Steel AISI 1060, Archives of metallurgy and materials, Volume 59, Issue 3, 2014, pp. 841-846.
Serdar Mercan, Sinan Aydin, Niyazi Özdemir, Effect of welding parameters on the fatigue properties of dissimilar AISI 2205–AISI 1020 joined by friction welding, International Journal of Fatigue, Volume 81, December 2015, pp. 78-90.
American Welding Society, Welding Handbook, Volume 3: Welding Processes, Part 2, 9th Edition, AWS, 2007.
Andrzej Sluzalec, Theory of Thermomechanical Processes in Welding, 1st Edition, Springer, 2005.
ISO 15620:2000 - Welding -- Friction welding of metallic materials, International Organization for Standardization, September 2000.
William D. Callister Jr., David G. Rethwisch, Materials Science and Engineering: An Introduction, 8th Edition, John Wiley & Sons, Inc., 2009, 992 Pages.
Лебедев В. К., Черненко И. А., Вилль В. И., Сварка трением, Издательство: Л.: Машиностроение, 1987 г., 240 страниц.
A. Chennakesava Reddy, Fatigue Life Evaluation of Joint Designs for Friction. Welding of Mild Steel and Austenite Stainless Steel, International Journal of Science and Research (IJSR), Volume 4 Issue 2, February 2015, pp. 1714-1719..
Mohammed Shihab Patel, Arif Upletawala, Mohammed Shihab Patel, Arif Upletawala, Parametric Optimization of Energy Loss of a Spillway using Taguchi Method, International Journal of Engineering Technology Science and Research (IJETSR), Volume 4, Issue 2, February 2017, pp. 48-53.
Phillip J. Ross, Taguchi Techniques for Quality Engineering, 2nd Edition, Tata McGraw Hill Education, 2005, 352 pages.
N. S. Kumar, Sameera Simha T. P., Experimental Investigation on Seismic Resistance of Recycled Concrete in Filled Steel Columns - Taguchi’s Approach, Proceedings of the 15th World Conference on Earthquake Engineering (15 WCEE), Lisbon (PT), 2012.
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