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JOURNALS // Fizika Goreniya i Vzryva // Archive

Fizika Goreniya i Vzryva, 2019 Volume 55, Issue 1, Pages 109–119 (Mi fgv561)

This article is cited in 1 paper

Effect of high-energy milling on magnesiothermic self-propagating high-temperature synthesis in a mixture of $\mathrm{SiO}_2$, $\mathrm{C}$, and $\mathrm{Mg}$ reactant powders

T. Chanadeeab, S. Singsarothaic

a Prince of Songkla University, Hat Yai, Songkhla, 90110, Thailand
b Center of Excellence in Materials Engineering (CEME), Prince of Songkla University, Hat Yai, Songkhla, 90110, Thailand
c Thaksin University, Papayom, Pattalung, 93210, Thailand

Abstract: A mixture of $\mathrm{SiO}_2$, $\mathrm{C}$, and $\mathrm{Mg}$ powders is mechanically milled in a planetary ball mill during different milling times of $60$, $90$, $120$, and $150$ min. The milled powders are then used in a self-propagating high-temperature synthesis (SHS) reaction to produce the $\mathrm{Si}$$\mathrm{SiC}$ composite. The thermal properties of the milled powders are determined by using differential scanning calorimetry and thermogravimetry. The chemical composition and microstructure of both as-synthesized products and as-leached powders are characterized by the x-ray diffraction analysis and scanning electron microscopy, respectively. The results show that an increase in the milling times of the mixture of the reactant powders has a significant effect on the thermal properties, diffusion processes, and SHS reaction mechanisms, as well as on the phase conversion and the final yield of the products.

Keywords: magnesiothermic reduction, self-propagating high-temperature synthesis, $\mathrm{Si}$$\mathrm{SiC}$ composite, high-energy milling.

UDC: 542.913+546.562-31+546.831

Received: 23.10.2017

DOI: 10.15372/FGV20190111


 English version:
Combustion, Explosion and Shock Waves, 2019, 55:1, 97–106

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