화학공학소재연구정보센터
Korean Journal of Materials Research, Vol.31, No.5, 296-300, May, 2021
단일 롤 방법으로 제작한 3원계 Al-Cr-Si 급냉리본의 구조 및 열 특성
Structure and Thermal Properties of a Ternary Al-Cr-Si Quenching Ribbon Manufactured by Single Roll Method
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Al-Cr-Si ternary quench ribbons are fabricated using a single roll method and investigated for their structural and thermal properties. In particular, the sinterability is examined by pulse current sintering to obtain the following results. The Al74Cr20Si6 composition becomes a quasicrystalline single phase; by reducing the amount of Cr, it becomes a twophase mixed structure of Al phase and quasicrystalline phase. As a result of sintering of Al74Cr20Si6, Al77Cr13Si10 and Al90Cr6Si4 compositions, the sintering density is increased with the large amount of Al phase; the sintering density is the highest in Al90Cr6Si4 composition. In addition, as a result of investigating the effects of sintering temperature and pressurization on the sintered density of Al90Cr6Si4, a sintered compact of 99% or more at 513 K and 500 MPa is produced. In particular, since the Al-Cr-Si ternary crystal is more thermally stable than the Al-Cr binary quaternary crystal, it is possible to increase the sintering temperature by about 100 K. Therefore, using an alloy of Al90Cr6Si4 composition, a sintered compact having a sintered density of 99 % or more at 613 K and 250 MPa can be manufactured. It is possible to increase the sintering temperature by using the alloy system as a ternary system. As a result, it is possible to produce a sintered body with higher density than that possible using the binary system, and at half the pressure compared with the conventional Al-Cr binary system.
  1. Inoue A, Kimura HM, Sasamori K, Masumoto T, Inter. J. Rapid Solidification, 9, 103 (1996)
  2. Mula S, Ghosh S, Pabi SK, Mater. Sci. Eng. A-Struct. Mater. Prop. Microstruct. Process., 472, 208 (2008)
  3. Ping DH, Hono K, Inoue A, Mater. Sci. Eng. A-Struct. Mater. Prop. Microstruct. Process., 31, 607 (2000)
  4. Babakhani EG, Towfighi J, Shirazi L, Nakhaeipour A, Zamaniyan A, Shafiei Z, J. Mater. Sci. Technol., 28, 177 (2012)
  5. Ahmad M, Akhter JI, Iqbal M, Akhtar M, Ahmed E, Akhtar S, Chaudhary MA, J. Nucl. Mater., 341, 164 (2005)
  6. Saporiti F, Boudard M, Audebert F, J. Alloy. Compd., 495, 309 (2010)
  7. Zhang C, Wu Y, Cai X, Zhao F, Zheng S, Zhou G, Wu S, Mater. Sci. Eng. A-Struct. Mater. Prop. Microstruct. Process., 323, 226 (2002)
  8. Tashlykova-Bushkevich II, Itoh G, Mater. Sci. Forum, 706-709, 301 (2012)
  9. Chen C, Feng X, Shen Y, J. Alloy. Compd., 708, 639 (2017)
  10. Zhang H, He ZB, Oleynikov P, Zou XD, Hovmoller S, Kuo KH, Acta Crystallogr. Sect. B-Struct. Sci., 62, 16 (2006)
  11. Vander GF. Voort, Asensio-Lozano J, Microsc. Microanal., 15, 60 (2009)
  12. Tocci M, Losio M, Suwanpinij P, Pola A, J. Alloy. Compd., 742, 555 (2018)
  13. Yamamoto A, J. Japan Inst. Light Metals, 60, 68 (2010)