DOI QR코드

DOI QR Code

The Wetting and Interfacial Reaction of Vacuum Brazed Joint between Diamond Grit(graphite) and Cu-13Sn-12Ti Filler Alloy

다이아몬드 grit(흑연) / Cu-13Sn-12Ti 삽입금속 진공 브레이징 접합체의 젖음성 및 계면반응

  • Ham, Jong-Oh (Metallic Materials Team, Korea Testing and Research Institute) ;
  • Lee, Chi-Hwan (School of Materials Science & Engineering, Inha University)
  • 함종오 (한국화학시험연구원 금속재료팀) ;
  • 이지환 (인하대학교 신소재공학부)
  • Received : 2009.11.11
  • Accepted : 2010.04.19
  • Published : 2010.06.30

Abstract

Various alloy system, such as Cu-Sn-Ti, Cu-Ag-Ti, and Ni-B-Cr-based alloy are used for the brazing of diamond grits. However, the problem of the adhesion strength between the diamond grits and the brazed alloy is presented. The adhesion strength between the diamond grits and the melting filler alloy is predicted by the contact angle, thereby, instead of diamond grit, the study on the wettability between the graphite and the brazing alloy has been indirectly executed. In this study, Cu-13Sn-12Ti filler alloy was manufactured, and the contact angles, the shear strengths and the interfacial area between the graphites (diamond grits) and braze matrix were investigated. The contact angle was decreased on increasing holding time and temperature. The results of shear strength of the graphite joints brazed filler alloys were observed that the joints applied Cu-13Sn-12Ti alloy at brazing temperature $940^{\circ}C$ was very sound condition indicating the shear tensile value of 23.8 MPa because of existing the widest carbide(TiC) reaction layers. The micrograph of wettability of the diamond grit brazed filler alloys were observed that the brazement applied Cu-13Sn-12Ti alloy at brazing temperature $990^{\circ}C$ was very sound condition because of existing a few TiC grains in the vicinity of the TiC layers.

Keywords

References

  1. E.D. Kizikov : Ind. Diamond Rev. 51 (1991) 20
  2. J. Konstanty : Ind. Diamond Rev. 51 (1991) 271
  3. C.-M. Sung : Diamond and Related Materials 8 (1999) 1540 https://doi.org/10.1016/S0925-9635(99)00086-2
  4. T. YAMAZAKI, A. Suzumuza : J. Mater. Sci. 3 (1998), 1379
  5. S.M Chen, S.T. Lin : J. Mater. Eng. Per. 5 (1996), 761 https://doi.org/10.1007/BF02646911
  6. Field JE. The properties of natural and synthetic diamond. London, Academic Press, 1992
  7. Wang CY, Clausen R. : INT. J Mach Tools Manuf. 42 (2002), 1045 https://doi.org/10.1016/S0890-6955(02)00032-9
  8. Herbert S. IDR 47 (1987), 100
  9. Tomlinson PN, Pipkin NJ, Lammer A : Bunand RP. IDR 45 (1985), 299
  10. A.K. Chattopadhyay, L. Chollet, H.E. Hintermann : CIRP Annals 40 (1991), 347 https://doi.org/10.1016/S0007-8506(07)62003-4
  11. P.M. Scott and M.N Nicholas, B. Dewar : J. Mater. Sci. 10 (1975), 1833 https://doi.org/10.1007/BF00754470
  12. A. Suzumura, T. Yamazaki, K. Takahashi, T. Onzawa : Q.J. Jpn. Weld. Soc. 12 (1994), 509. https://doi.org/10.2207/qjjws.12.509
  13. C. P. Bushmer, E. A. Heintz : J. Mat., Sci., 4 (1969), 592 https://doi.org/10.1007/BF00550115
  14. Harris J. W., Vance E. R : Induced graphitization around crystalline inclusions in diamond, Conr. Miner. and Perol. 1972, 227-234
  15. J. O. Ham, C. H. Lee : Materials Transactions, 48-4 (2007)
  16. W. C. Li, and S. T. Lin : Metallugical and Materials Trans. A, 33A (2002), 2163-2172
  17. C. Tsai, J.C. Nelson, W.W. Gerveich, D.Z. Liu and E. Pfender : Thin Solid Films, 237 (1994), 181-86 https://doi.org/10.1016/0040-6090(94)90258-5
  18. P.F. Gummeson and D.A. Gutafson : Metal Powder Industries Federation, Princeton, NJ, 20 (1988), 443-449
  19. P. George, m. William, J. Edward, D. Gerald, E. Charles, and Aharon : Diamond Coated Tools and Wear Parts, US Patent 5585176, 1996
  20. A.K. Chattopadhyay, L. Chollet, H.E. Hintermann : J, Mater. Sci. 26 (1991), 5094
  21. Yu. V. Naidich and G. A. Kolesnichenko : translated from Poroshcovaya Metallurgiya, 1-13 (1963), 49-53