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Modelling the morphological evolution of nanosuspension droplet in constant-rate drying stage

机译:模拟恒速干燥阶段纳米悬浮液滴的形态演变

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摘要

A novel mathematical model of constant-rate stage of nanosuspension droplet drying is proposed. In contrast to previously published literature studies, the developed model considers two morphologically different periods of the constant-rate drying: before the shell formation and after the shell formation; the latter was named "transition period". The point of initial "locking" between nanoparticles on the droplet surface and beginning of the shell formation is associated with theoretical maximum of solid volume fraction. It is postulated that shrinking and thickening shell of nanoparticles occurs fast, and thus the shell virtually remains submerged in the liquid during the overall transition period. Because of the submerged shrinking shell, in the transition period, the evaporation process still takes place from the droplet surface and the drying rate remains unchanged as it was before the shell formation. Correspondingly, the droplet temperature retains at the level of equilibrium evaporation temperature. The developed theory was successfully validated by the published experiment of silica nanosuspension droplet drying. Finally, the developed model proposes a simple morphology criterion based on comparison between the calculated droplet volume at the end of transition period and the corresponding volume of solid final particle with the given porosity.
机译:提出了纳米悬浮液滴恒速阶段干燥的数学模型。与以前发表的文献研究相反,开发的模型考虑了恒定速率干燥的两个形态不同的时期:壳形成之前和壳形成之后;后者被称为“过渡期”。液滴表面上的纳米颗粒之间的初始“锁定”点与壳形成的开始点有关的是固体体积分数的理论最大值。据推测,纳米颗粒的壳的收缩和增稠迅速发生,因此在整个过渡期间,壳实际上浸没在液体中。由于浸没的收缩壳,在过渡阶段,蒸发过程仍然从液滴表面开始,并且干燥速率保持不变,与形成壳之前一样。相应地,液滴温度保持在平衡蒸发温度水平。通过已发表的二氧化硅纳米悬浮液滴干燥实验,成功验证了该理论。最后,基于在过渡期结束时计算出的液滴体积与给定孔隙度下固体最终颗粒的相应体积之间的比较,所开发的模型提出了一种简单的形态学准则。

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