Crystallization kinetics study of melt-spun Zr66.7Ni33.3 amorphous alloy by electrical resistivity measurements

In this paper, the electronic transport properties of as-spun Zr 66.7 Ni 33.3 alloys were studied in detail by a combination of electrical resistivity and absolute thermoelectric power measurements over a temperature range from 25 up to 400 °C. Moreover, the isochronal and isothermal crystallization...

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Veröffentlicht in:Journal of thermal analysis and calorimetry 2019-01, Vol.136 (3), p.1053-1067
Hauptverfasser: Smili, B., Abadlia, L., Bouchelaghem, W., Fazel, N., Kaban, I., Gasser, F., Gasser, J. G.
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Sprache:eng
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Zusammenfassung:In this paper, the electronic transport properties of as-spun Zr 66.7 Ni 33.3 alloys were studied in detail by a combination of electrical resistivity and absolute thermoelectric power measurements over a temperature range from 25 up to 400 °C. Moreover, the isochronal and isothermal crystallization kinetics of Zr 66.7 Ni 33.3 glassy alloy has been investigated based on the electrical resistivity measurements. The comparative study of the crystallization kinetics of these binary amorphous alloys was carried out, for the first time to our knowledge, using an accurate method for electrical resistivity measurements. In the isochronal heating process, the apparent activation energy for crystallization was determined to be, respectively, 371.4 kJ mol −1 and 382.2 kJ mol −1 , by means of Kissinger and Ozawa methods. The Johnson–Mehl–Avrami model was used to describe the isothermal transformation kinetics, and the local Avrami exponent has been determined in the range from 2.97 to 3.23 with an average value of 3.1, implying a mainly diffusion-controlled three-dimensional growth with an increasing nucleation rate. Based on an Arrhenius relationship, the local activation energy was analyzed, which yields an average value  E x  = 376.2 kJ mol −1 .
ISSN:1388-6150
1588-2926
DOI:10.1007/s10973-018-7737-2