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首页> 外文期刊>International Journal of Pharmaceutics >A combined experimental and numerical approach to explore tribocharging of pharmaceutical excipients in a hopper chute assembly
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A combined experimental and numerical approach to explore tribocharging of pharmaceutical excipients in a hopper chute assembly

机译:结合实验和数值方法探索料斗溜槽组件中药物赋形剂的摩擦充电

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摘要

Electrostatic charging via contact electrification or tribocharging refers to the process of charge transfer between two solid surfaces when they are brought into contact with each other and separated. Charging of continuous particulate flows on solid surfaces is poorly understood and has often been empirical. This study aims toward understanding the tribocharging of pharmaceutical excipients using a simplified geometry of unidirectional flow in a hopper-chute assembly. Assuming electron transfer to be the dominant mechanism of electrification, a triboelectric series was generated using work functions estimated from quantum chemical calculations. A 3D-DEM model has been developed employing charge transfer and electrostatic forces. Using numerical simulations, the charge accumulation for an assemblage of particles during flow was determined under different conditions. To theoretically analyze the process of charging, parametric studies affecting powder flow have been investigated. A higher specific charge was observed at larger friction coefficients and lower restitution coefficients. The results obtained from the simulation model reinforce the collisional nature of triboelectrification. The simulation results revealed similar trends to experimental observations. However, to enable a priori prediction the model needs to be tested for additional materials or extended to other process operations. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过接触带电或摩擦带电进行的静电充电是指两个固体表面相互接触并分开时在它们之间进行电荷转移的过程。对固体表面上连续颗粒流的充电了解甚少,并且通常是凭经验进行的。这项研究旨在通过在料斗-滑道组件中使用简化的单向流动几何形状来理解药物赋形剂的摩擦填充。假设电子转移是带电的主要机制,则使用从量子化学计算中估计的功函数来生成摩擦电系列。已经开发出一种利用电荷转移和静电力的3D-DEM模型。使用数值模拟,在不同条件下确定了流动过程中粒子聚集的电荷积累。为了从理论上分析充电过程,已经研究了影响粉末流动的参数研究。在较大的摩擦系数和较低的恢复系数下观察到较高的比电荷。从仿真模型获得的结果增强了摩擦带电的碰撞性质。仿真结果显示出与实验观察结果相似的趋势。但是,为了能够进行先验预测,需要对模型进行其他材料测试或扩展到其他过程操作。 (C)2015 Elsevier B.V.保留所有权利。

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