SPRINGBACK EFFECT OF AUTOMOTIVE LOWER ARM COMPONENT PREPARED VIA BURRING PROCESSING

Authors

  • Muhamad Sani Buang Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor
  • Shahrul Azam Abdullah Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor
  • Juri Saedon Faculty of Mechanical Engineering, Universiti Teknologi MARA, 40450 Shah Alam, Selangor
  • Hashim Abdullah Oriental Summit Industries Sdn. Bhd. Seksyen 28, 40400 Shah Alam, Selangor

DOI:

https://doi.org/10.11113/jt.v75.5205

Keywords:

Burring process, cool stamping process, springback, part lower arm, experimental

Abstract

Complex components of the sheet metal forming process need to be designed with high precision and accuracy in order to prevent defects and misalignment of the end products. One of the sheet metal cool stamping process for these complex automotive components is burring which is the forming of a flange around a hole made in a piece of sheet metal. Springback is a common defect during the burring process. The aims of this paper are to investigate the springback effect and improve shape accuracy of hole burring by inner burring process of lower arm part for automotive lower arm part. The springback defects at hole burring usually happened on the inner burring process. Experimental stretch flanging for cold stamping process of inner burring process was used to investigate the reasons of springback effect around the burred hole for a lower arm part of high strength steel (HSS) sheets SPFH590. From the two designs of burring punch dies, the result shows the values of springback effect for clearance -0.15 which have a big gap at hole burring A arm and B arm diameters, are larger than clearance -0.34 which have small gap for inner burring process of lower arm part. The experimental analysis shows that springback is proportionally related to the punch-die clearance parameter of the tool profile where the springback increase as the clearance increases.

 

References

Takahashi, M. 2003. Development of High Strength Steels for Automobiles.

Song, J.-H., Huh, H. and Kim, S.-H. 2007. Stress-based springback reduction of a channel shaped auto-body part with high-strength steel using response surface methodology. Journal of Engineering Materials and Technology. 129: 397-406.

Firat, M. 2007. U-channel forming analysis with an emphasis on springback deformation. Materials & Design. 28: 147-154.

Buang, M. S., Abdullah, S. A. and Saedon, J. 2014. Effect of Die Gap and Punch Travel on Springback in Air V-Bending Process Using Taguchi Method. Applied Mechanics and Materials. 660: 317-321.

Qudeiri, J. A., Khadra, F. A., Al-Ahmari, A. and Umar, U. 2013. Effect of Material and Geometrical Parameters on the Springback of Metallic Sheets. Life Science Journal. 10.

Zhang, X.-K., Zheng, G., Hu, J.-N., Li, C. and Hu, P. Compensation factor method for modeling springback of auto parts constructed with high-strength steel. International Journal of Automotive Technology. 11: 721-727.

Ahn, K., Yoo, D., Seo, M. H., Park, S.-H. and Chung, K. 2009. Springback prediction of TWIP automotive sheets. Metals and Materials International. 15: 637-64.

Downloads

Published

2015-08-20

Issue

Section

Science and Engineering

How to Cite

SPRINGBACK EFFECT OF AUTOMOTIVE LOWER ARM COMPONENT PREPARED VIA BURRING PROCESSING. (2015). Jurnal Teknologi (Sciences & Engineering), 75(8). https://doi.org/10.11113/jt.v75.5205