Mathematical Modeling of Mechanochemical Synthesis of Precursor Particles

O. Lapshin, A. Ryabkova
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Abstract

A macroscopic mathematical model has been constructed for the mechanochemical synthesis of precursors in this work. The model comprises the equations of heat balance, which determines the temperature of the activated powder mixture in the volume of the mechanical activator; a chemical reaction, which describes a one-step reaction of the product formation from a mixture of two reagents; changes in the specific surface of mechanocomposite particles and the interface area, which take into account that the probability of its formation is proportional to the volume fractions of the reagents; dynamics of excess energy in the components of the powder mixture and the reaction product. The effect of physical and chemical parameters of the mixture components and the conditions of mechanical activation on the main synthesis characteristics such as the temperature, chemical conversion depth, the particle size of precursors, and their phase composition is studied in the work. The synthesis of precursors is shown to be the most effectively controlled by the following parameters, which vary in the experiment: the amount of inert diluent, mill power, the activation time, and the ambient temperature. The dynamics of synthesis is numerically investigated. In particular, it is shown that an increase in the amount of inert filler in the mixture and in the cooling rate of a high-energy mill as well as a decrease in the ambient temperature allow the mechanically activated system to switch to a controlled mode of mechanochemical synthesis, which contributes to the production of small-sized precursor powders.
前驱体颗粒机械化学合成的数学模型
本文建立了前驱体机械化学合成的宏观数学模型。该模型由热平衡方程组成,该方程决定了活性粉末混合物在机械活化剂体积中的温度;一种化学反应,描述从两种试剂的混合物中一步生成产物的反应;力学复合粒子的比表面和界面面积的变化,其中考虑到其形成的概率与试剂的体积分数成正比;粉末混合物和反应产物组分中多余能量的动力学。研究了混合组分的理化参数和机械活化条件对温度、化学转化深度、前驱体粒度及其相组成等主要合成特性的影响。前驱体的合成被证明是由以下参数控制的最有效的,这些参数在实验中是不同的:惰性稀释剂的量、磨机功率、活化时间和环境温度。对合成动力学进行了数值研究。特别是,研究表明,在混合物中增加惰性填料的量,在高能磨机的冷却速度以及环境温度的降低,使机械激活的系统切换到机械化学合成的受控模式,这有助于生产小尺寸的前驱体粉末。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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