Microstructure, phase morphology, eutectic coupled zone and hardness of Al-Co alloys

被引:10
|
作者
Silva, Cassio A. P. [1 ]
Kakitani, Rafael [1 ]
Cante, Manuel V. [2 ]
Brito, Crystopher [3 ]
Garcia, Amauri [1 ]
Spinelli, Jose E. [4 ]
Cheung, Noe [1 ]
机构
[1] Univ Campinas UNICAMP, Dept Mfg & Mat Engn, BR-13083860 Campinas, SP, Brazil
[2] Sao Paulo State Fac Technol FATEC, Campus Zona Leste, BR-03694000 Sao Paulo, SP, Brazil
[3] Sao Paulo State Univ UNESP, Campus Sao Joao Boa Vista, BR-13876750 Sao Joao Da Boa Vista, SP, Brazil
[4] Fed Univ Sao Carlos UFSCar, Dept Mat Engn, BR-13565905 Sao Carlos, SP, Brazil
关键词
Al-Co alloys; Al-composite; Solidification; Microstructure; Microhardness; MECHANICAL-PROPERTIES; COOLING RATE; SOLIDIFICATION; NI; PARAMETERS; COMPOSITE;
D O I
10.1016/j.matchar.2020.110617
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study examines the roles played by crystal growth rates (V) and cooling rates (T) on the microstructural evolutions of hypoeutectic (0.7 wt% Co), eutectic (1.0 wt% Co) and hypereutectic (1.5 wt% Co) Al-Co alloys. For this, these alloys have been directionally solidified by using a transient heat flow setup. It is shown that the microstructures of the 0.7 and 1.0 Co alloys are formed by alpha-Al matrices. In these alloys, a morphological reverse transition from alpha-Al matrix dendrites to cells is observed while a alpha-Al/ Al9Co2 eutectic mixture is also contained. In the Al1.5 wt% Co alloy, the prevalence of eutectic features occurs. Experimental growth laws relating cellular, dendritic and eutectic spacings to V and T are determined. Plots relating V and T to the alloys Co contents are proposed. The latter allow the range of coupled growth during transient solidification of Al-Co alloys to be examined. The hypereutectic alloy (1.5 wt% Co) demonstrates increase of about 41% in hardness as compared to the other examined alloys.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Viscosity of liquid Al-Co alloys with a cobalt content up to 15 at %
    Bel'tyukov, A. L.
    Men'shikova, S. G.
    Lad'yanov, V. I.
    Korepanov, A. Yu.
    HIGH TEMPERATURE, 2016, 54 (05) : 667 - 674
  • [42] STRUCTURAL, ELECTRICAL AND MAGNETIC-PROPERTIES OF ICOSAHEDRAL AL-CO ALLOYS
    DUNLAP, RA
    STROINK, G
    DINI, K
    JONES, DF
    JOURNAL OF PHYSICS F-METAL PHYSICS, 1986, 16 (09): : 1247 - 1254
  • [43] Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
    Kaygisiz, Yusuf
    CHINA FOUNDRY, 2018, 15 (05) : 390 - 396
  • [44] SURFACE TEXTURE OF THE MIXED AL-CO OXIDE SPINEL PHASE
    ELSALAAM, KMA
    GIRGIS, MM
    FAHIM, RB
    SURFACE TECHNOLOGY, 1982, 17 (04): : 281 - 290
  • [45] Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
    Yusuf Kaygısız
    China Foundry, 2018, 15 : 390 - 396
  • [46] Microstructure characterization and hardness of Al-Cu-Mn eutectic alloy
    Yusuf Kayg?s?z
    China Foundry, 2018, 15 (05) : 390 - 396
  • [47] Peculiarities of Diffusion Controlled Phase Formation in the Al-Co System
    Bokstein, Boris
    Klimov, Mikhail
    International Journal of Materials Research, 2001, 92 (10) : 1186 - 1188
  • [48] Peculiarities of diffusion controlled phase formation in the Al-Co system
    Bokstein, B
    Klimov, M
    ZEITSCHRIFT FUR METALLKUNDE, 2001, 92 (10): : 1186 - 1188
  • [49] Microstructure and phase equilibria in Ni-Al-Cr-Co alloys
    Bursik, Jiri
    Broz, Pavel
    Popovi, Jiri
    INTERMETALLICS, 2006, 14 (10-11) : 1257 - 1261
  • [50] EFFECT OF COLD-WORKING ON MECHANICAL DAMPING CAPACITY OF AL-CO ALLOYS
    HINAI, M
    SAWAYA, S
    MASUMOTO, H
    MATERIALS TRANSACTIONS JIM, 1993, 34 (04): : 359 - 363