ISSN: 1003-6326
CN: 43-1239/TG
CODEN: TNMCEW

Vol. 28    No. 6    June 2018

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Glass formation, thermal and mechanical properties of ZrCuAlNi bulk metallic glasses
C. E. BORJA1, I. A. FIGUEROA2, O. LOZADA-FLORES2, M. ESTRADA2, G. A. LARA-RODRíGUEZ2, J. A. VERDUZCO1
(1. Instituto de Investigación en Metalurgia y Materiales, Universidad Michoacana de San Nicolás de Hidalgo (UMSNH), Fco. J. Mújica S/N, Col. Felícitas del Río, C.P. 58030, Morelia, Mich., México;
2. Instituto de Investigaciones en Materiales, Universidad Nacional Autónoma de México (UNAM), Circuito Exterior S/N, Cd. Universitaria, C.P. 04510, Cd. Mx., México
)
Abstract: The glass forming ability, thermal and mechanical properties of some ZrCuAlNi bulk metallic glasses were analyzed. The compositions of the alloys were theoretically determined with the dense packing and kinetic fragility index models. Cylindrical and conical ingots were produced by copper mould suction-casting under Ar atmosphere. The conical ingots were characterized by means of X-ray diffraction in order to determine the glassy structure. It was found that both alloys have a critical glassy diameter, Dc, of 3 mm. Thermal behaviours were investigated by differential scanning calorimetry at heating rates of 0.5, 0.67 and 0.83 K/s. The gamma parameter γ, supercooled liquid region ?Tx, and reduced glass transition temperature Trg, of the experimentally obtained glasses indicated high glass forming ability. The glassy compositions showed a fragility index of ~40 GPa. The compression test of the investigated alloys was carried out at a strain rate of 0.016 s-1, obtaining a elastic modulus of ~83 GPa, total deformation of ~5%, yield strength of 1.6 GPa and hardness of 4 GPa. It was concluded that the use of the dense packing and kinetic fragility index models helped to predict glass-forming compositions in the family alloy investigated.
Key words: bulk metallic glass; glass formation ability; fragility index; packing efficiency; suction casting
Superintended by The China Association for Science and Technology (CAST)
Sponsored by The Nonferrous Metals Society of China (NFSOC)
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