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Microstructure and reactivity of Fe2O3-Li2CO3-ZnO ferrite system ball-milled in a planetary mill

机译:生产线磨机Fe2O3-Li2CO3-ZnO铁氧体系统球磨机的微观结构和反应性

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摘要

In this work, the microstructure of mechanically activated Fe2O3-Li2CO3-ZnO mixture for the lithium-zinc ferrites production was studied using the Shiner, Emmett, Teller and laser diffraction methods as well as X-ray diffraction and scanning electron microscopy analyses. The reactivity of reagent mixture was investigated by thermogravimetric and calorimetric analyses. The ball milling was performed in a AGO-2S high energy planetary ball mill with a vial rotation speed of 2220 rpm using steel grinding balls. The milling times were 0, 5, 15, 30 or 60 min. It was shown that the composition of mixture changes during the ball milling, which consists in decreasing the alpha-Fe3O4 concentration and increasing the Fe3O4 spinel phase, while the Li2CO3 and ZnO concentrations remain unchanged. It was found that the milling leads to decrease in the average particle size of the reagents and simultaneously formation of large size agglomerates with denser structure and well-interlinked particles. It was established that observed changes in microstructure and phase composition lead to an increase in the reactivity of the Fe2O3-Li2CO3-ZnO system and the acceleration of the chemical reaction between reagents.
机译:在这项工作中,使用闪蛋白,emmett,柜员和激光衍射方法以及X射线衍射和扫描电子显微镜分析研究了用于锂 - 铁氧体生产的机械活化的Fe2O3-Li 2 CO 3-ZnO混合物的微观结构。通过热重分析和量热分析研究了试剂混合物的反应性。在前2S-2S高能量行星球磨机中进行球磨,使用钢砂球,小瓶转速为2220rpm。铣削时间为0,5,15,30或60分钟。结果表明,混合物的组成在球磨过程中变化,这在于降低α-Fe3O4浓度并增加Fe3O4尖晶石相,而Li 2 CO 3和ZnO浓度保持不变。发现铣削导致试剂的平均粒度降低,并同时形成具有密度结构和偏相均有的颗粒的大尺寸附聚物。已经确定,观察到的微观结构和相组合物的变化导致Fe 2 O 3-Li 2 CO 3-ZnO系统的反应性的增加和试剂之间的化学反应的加速度。

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