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Powder Injection Molding Technology

분말 사출 성형 기술

  • 하태권 (포항산업과학연구원 부품신소재연구센터) ;
  • 성환진 (포항산업과학연구원 부품신소재연구센터) ;
  • 안상호 (포항산업과학연구원 부품신소재연구센터) ;
  • 장영원 (포항공과대학교 신소재공학과)
  • Published : 2003.10.01

Abstract

Powder injection molding (PIM) uses the shaping advantage of injection molding but is applicable to metals and ceramics. This process combines a small quantity of polymer with an inorganic powder to form a feedstock that can be molded. After shaping, the polymeric binder is extracted and the powder is sintered, often to near-theoretical densities. According1y, PIM delivers structural materials in a shaping technology previously restricted to polymers. The process overcomes the shape limitations of traditional powder compaction, the costs of machining, the productivity limits of isostatic pressing and slip casting, and the defect and tolerance limitations of conventional casting. Since 1980s when major attention was given to PIM process, it has been widening the application area from small parts with complex shape and tailored properties to structural parts requiring strength and ductility as in automotive, military and medical industries.

Keywords

References

  1. R. Cornwall, PIM Continues Its March to Maturity, MPR, 1998, 53(7/8),pp.32-33.
  2. R. M. Gerrnan and A. Bose, Injection Molding of Metals and Ceramics, MPIF, 1997.
  3. A. Bose, The Technology and Commercial Satstus of Powder-Injection Molding, JOM, 1995, 47(8), pp. 24-30.
  4. A. Bose, J.J. Valencia, J. Spirko and R. Schmees, Powder Injection Molding of Inconel 718 Alloy, Adv. in powder Metall. and Particulate Mater., 1997, vol. 3, MPIF, pp. 18.99-18.112.
  5. J.J. Valencia, T.J. McCabe and H. Dong, Microstructure and Mechanical Properties of Powder Injection Molded 17-4Ph Stainless Steel for Application in Aircraft Engine Components,Adv. in Powder Metall. and Particulate Mater., 1995, vol. 2, MPIF,pp.6.205-6.214.
  6. R.M. Schmees and J.J. Valencia, Mechanical Properties of Powder Injection Molded Inconel 718, 1998 Int. Conf. on Powder Metall. And Particulate Mater., Las Vegas, in Press.
  7. R.M. German, Technological Barriers and Opportunities in Powder Injection Molding, Powder Metall. Int, 1993, 25(4), pp. 165-169.
  8. R. Haynes, The Mechanical Bchaviour of Sintered of Sintered Metals, 1981, Freund Publ., London, UK.
  9. G.F. Bocchini, The Influences of Porosity on the Characterstics of Sintered Materials, Int.J. Powder Metall., 1986, vol. 22(3), pp. 185-202.
  10. M.J.Balshin, Poroshkovoye metallovegyeniye. Metallurgizdat. Moscow(1948).
  11. B.Ya. Pines, A.F.Sirenko, I.N.Suchinin, Issiedouaniya po zharo proischnym splavam. Izdat.Ak Nauk Udssr(1958) Vol.3.
  12. M. Eudier, "The mechanical properties of sintered low-alloy steel," Powder Metallurgy (1962)278.
  13. M. Eudier, Second European Symposium on Powder Metallurgy. Stutt(1968) Vol. 1.
  14. E. Ryshkevitch, J.Amer. Cer.,36 (1953)65. https://doi.org/10.1111/j.1151-2916.1953.tb12837.x
  15. W.Duckworth, J. Amer.Cer.Soc., 36(1953)68. https://doi.org/10.1111/j.1151-2916.1953.tb12838.x
  16. V. Gallina, G. Mannone, Powder Metallurgy (1968)73.
  17. K. K. Schiller, In Mechanical Properties of Non Metallic Brittle Materials. Edited by W. H. walton, Butterworths Sci. Publ. London (1956) 34.
  18. J.Krasovskiy, Poroshkovaya Metallurgiya (1964) No. 4, 1.
  19. R.Haynes, Powder Metallurgy (1971) 64.
  20. R.Haynes, Powder Metallurgy (1971) 71.
  21. E. Dudroua, J.Kubelik, Third Int. Powder Metallurgy Conf., Karlouy Vary (1970).
  22. E.Dudrova: Podroky prashkove metalurgiye VUPM (1971), No. 3, 25.
  23. F. P. Knudsen, J.Amer.Cer. Soc. 42 (1959) 376. https://doi.org/10.1111/j.1151-2916.1959.tb13596.x
  24. D. P. H. Hasselmann, R.M. Fulrath, J.Amer. Cer. Soc., 50 (1967) 399. https://doi.org/10.1111/j.1151-2916.1967.tb15143.x
  25. D. J. Millard, Discussion of Schiller's paper. Ref. (8) 45.
  26. N. I. Shtscherban, Poroshkocaya Metallurgiya (1973) No. 10, 70.
  27. G. H. Gessinger, H. Metzler, F. Esper, H. E. Exner, Powder Metallurgy (1971) 289.
  28. M.F. Aksit and D. Lee, A Lumped Parameter Analysis Powder Injection Molding, Int. J. Power Metall., 1995, vol. 31, pp. 351-363.
  29. C. I. Chung, B. O. Rhee, M. Y. Cao and C. X. Liu, Requirements for Binder for Powder Injection Molding, in Compendium on Metal Injection Molding II, MPIF, 1989, pp. 67-78.
  30. T.H. Kwon and S. Ahn, Finite Element Analysis of PIM Filling Process with Slip Characterisation of Poweder-Binder Mixtures, Powder Metall., 1998, 40(3), pp. 174-176.
  31. B.O. Rhee and Y.C. Jung, Bagleys Correction in Rheological Characterizaation of PIM Feedstocks, Adv. in Powder Metall. and Particulate Mater., 1997, vol. 3, MPIF, pp. 18.23-18.28.
  32. S. T. Lin and R. M. German, Extraction Debinding of Injection Molded Parts by Condensed Solvents, Powder Metall. Int. 1989, vol.21(5), pp. 19-24.
  33. R. M. German, Theory of Thermal Debinding, Int. J. Power Metall., 1987, vol.23(4), pp. 237-245.
  34. D. I. Bloemacher, MPR, vol.45(2), 1990, p. 117.
  35. A. Kimura, K. Nakabayashi and T.Shimura, MPR, vol. 45(2), 1990, p. 106.
  36. C. P. Ashdoun and R. J. Holland, Compendium on Metal Injection Molding II, MPIF, 1989, p. 35.
  37. F. V. Lenel, Powder Metallurgy-Principles and Applications, MPIF, 1980.
  38. R. Billet, Net-Shape Full Density P/M Parts by Injection Molding, New Perspective in Powder Metallurgy, Vol.8, MPIF, 1987, pp. 497-510.
  39. R. M. German and K. F .Hens, Identification of The Effects of Key Powder Characteristics on Powder Injection Molding, Powder Injection Molding Symposium-1992, MPIF,pp. 1-16.
  40. C. Lall, Fundamentals of High Temperature Sintering: Application to Stainless Steels and Soft Magnetic Alloys, Int.J. Powder Metall., 1991, vol.27(4),pp. 315-329.

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  1. Material Properties Evaluation of 1-3 type Piezo-composite Fabricated with Ceramic Injection Molding Technology vol.48, pp.6, 2011, https://doi.org/10.4191/kcers.2011.48.6.648