A Study of Nd:YAG Laser Welding in Cold-reduced Carbon Steel and Stainless Steel Sheet

Nd:YAG 레이저를 이용한 냉연강판과 스테인레스강판의 용접

  • 이철구 (서울산업대학교 기계공학과) ;
  • 이우람 (서울산업대학교 NID 융합기술대학원) ;
  • 백운학 (서울산업대학교 산업대학원)
  • Received : 2009.07.31
  • Accepted : 2010.03.10
  • Published : 2010.04.15

Abstract

We have studied on welding dissimilar materials of cold-reduced carbon steel sheet and stainless steel sheet together by using laser beam. It is well known that stainless steel is so strong againt rust and heat, while cold-reduced carbon steel is widely used in various parts of industry. In this research we have performed some experiments to know the possibility of welding dissimilar materials using laser beam by adjusting the power output of 3kW laser. Other conditions of the experiments were as follows : the welding speed was varied in the range between 2m/min and 7m/min, argon gas and helium gas were used as shield gas, the flow value of shield gas was ranged between $10{\ell}/min$ and $30{\ell}/min$, and the gap of two materials was ranged between 0mm and 0.3mm. In order to ascertain of the welded surface, we have done the tensile strength testing, the hardness testing and the microscope observation. As a result, we have found that tensile strength was the highest at the condition of the welding speed of 4, the flow value of $20{\ell}/min$, the gap of two materials 0, and the use of helium gas. Above testings have also showed that the tensile strength was generally satisfactory since the penetration of welding was almost complete due to the thinness of the materials. In addition, the formation of the welded area was excellent when it had the highest tensile strength.

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References

  1. Garbuny, M., 1965, Optical Physics, Academic Press, USA, pp. 1-10.
  2. Wilson, J. and Hawkes, J., 1987, Lasers Principles and Applications, Prentice-Hall, USA, pp. 1-9.
  3. Hecht, J., 1992, The Laser Guidebook, 2nd ed., McGraw-Hill, USA, pp. 1-12.
  4. Ready, J. F., 1997, Industrial Applications of Lasers, 2nd ed, Elsevier Science, USA, pp. 11.
  5. Juvinall, R. C., 1983, Engineering Considerations of Stress, Strain, and Strength, McGraw-Hill, New York.
  6. Son, S. W., Kim, I. S., Jung, J W., Kim, J. S., and Na, H. H., "Control the welding quality for stainless steel weldment," Korea Society of Machine Tool Engineers Spring Conference 2009, pp. 285-289.
  7. Park, C. E., Li, C. S., and Kim, I. S., 2003, "Mathematical Models for Optimal Bead Geometry for GMA Welding Process," International Journal of Korea Welding Society, Vol. 3, No.1, pp. 8-16
  8. Jang, K. B., Kim J. H., and Cho, S. M., 2002, "Finite Element Analysis and Measurement on the Release of Residual Stress and Non-linear Behavior in Weldment by Mechanical Loading(l) -Finite Element Analysis," International Journal of Korea Welding Society, Vol. 2 No.1, pp. 29-32.