Fuzzy Orthogonal Optimization for Determining the Optimal Resistance Spot Welding Parameters

Article Preview

Abstract:

Resistance spot welding (RSW) is one of the most commonly used form of manufacturing process. To efficiently search for the optimal RSW parameters in a new welding power control scheme to obtain the maximum tensile strength of welded joints, a design of experiments (DoE) using orthogonal arrays has been conducted. However the lack of success of conventional DoE is attributed to two facts that the weld quality is quantitatively measured and level-based evaluated, and the welding expulsion compromises the continuity of response surface, which is an underlying hypothesis of normal DoE analysis. Hereby a fuzzy analysis methodology for the experimentation design, referred as fuzzy orthogonal experiments (FOE) in this paper, has been proposed. With the fuzzification of factor levels and experimental objectives, the proposed method is able to explore the results of arbitrarily given factors without additional experiments, and identifies the varying tendency under condition of discontinuity experimental responses. The FOE application for a specifically planned RSW process presents a detailed FOE analyzing procedures, and yields the optimal parameter settings. The case study shows that FOE outperforms the traditional orthogonal DoE for its minimized experiment numbers and robust response tendency analysis.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

1046-1051

Citation:

Online since:

January 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Ramasamy SR, Gould J, Workman D. Design-of-experiments study to examine the effect of polarity on stud welding [J]. Welding Jounral (Supplement). 2002, 2: 19-26.

Google Scholar

[2] Rowlands Hefin, Antony Jiju, Knowles Graeme. An application of experimental design for process optimization [J]. The TQM Magazine. 2000, 12(2): 78-84.

DOI: 10.1108/09544780010318325

Google Scholar

[3] Rowlands Hefin, Antony Jiju. Application of design of experiments to a spot welding process [J]. Assembly Automation. 2003, 23(3): 273-279.

DOI: 10.1108/01445150310486549

Google Scholar

[4] Darwish S. M. Al-Dekhial S. D. Statistical models for spot welding of commercial aluminum sheets [J]. International Journal of Machine Tools and Manufacture. 1999, 39(10): 1589-1610.

DOI: 10.1016/s0890-6955(99)00010-3

Google Scholar

[5] T. Chai, C. Chou. Mechanical properties of laser-welded cast titanium joints under different conditions [J]. The Journal of Prosthetic Dentistry. 1998, 79(4): 477-483.

DOI: 10.1016/s0022-3913(98)70165-9

Google Scholar

[6] T. Kim, H. Park, S. Rhee. Optimization of welding parameters for resistance spot welding of TRIP steel with response surface methodology [J]. International Journal of Production Research. 2005, 43(21): 4643 – 4657.

DOI: 10.1080/00207540500137365

Google Scholar

[7] Resistance Welder Manufacturing Manual. Resistance Welding Manual, Revised 4th Edition, Nov 1, 2003 RWMA press(2003).

Google Scholar