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摩擦带电:实验和机械建模方法综述,特别关注药物粉末。

Triboelectrification: A review of experimental and mechanistic modeling approaches with a special focus on pharmaceutical powders.

机构信息

Department of Pharmaceutical Sciences, University of Connecticut, Storrs, CT, 06269, USA.

Department of Pharmaceutical Sciences, University of Connecticut, Storrs, CT, 06269, USA; Institute of Material Sciences, University of Connecticut, Storrs, CT, 06269, USA.

出版信息

Int J Pharm. 2016 Aug 20;510(1):375-85. doi: 10.1016/j.ijpharm.2016.06.031. Epub 2016 Jun 25.

Abstract

The continuous relative motion of particles against solid surfaces in pharmaceutical manufacturing triggers multiple physio-chemical alterations generating contact charging or triboelectrification. Charged particles in manufacturing processes can actuate multiple impediments including agglomeration, segregation during flow or adhesion to process equipment. Generation of excess charge might lead to electrostatic discharges inducing severe imperilments of fire and explosions. Despite its prevalence, the electrostatic charging process is not fully understood, owing to the diverse physical, chemical and environmental factors that can affect the phenomenon. In the course of this review, some of the basic concepts involved in charge transfer have been briefly discussed highlighting the different experimental approaches employed in measuring electrostatic charges and summarizing the constituent factors responsible. Pertinent numerical models have been further conferred to analyze the different hypotheses of particle charging.

摘要

在制药生产中,颗粒相对于固体表面的连续相对运动引发了多种物理化学变化,从而产生接触带电或摩擦带电。在制造过程中带电的颗粒会引发多种阻碍,包括团聚、流动过程中的分离或对工艺设备的粘附。过多的电荷产生可能会导致静电放电,从而引发严重的火灾和爆炸危险。尽管静电充电过程很普遍,但由于可能影响该现象的各种物理、化学和环境因素,其过程尚未完全被理解。在本次综述中,简要讨论了涉及电荷转移的一些基本概念,强调了用于测量静电电荷的不同实验方法,并总结了导致电荷产生的组成因素。还进一步提出了相关数值模型来分析颗粒充电的不同假设。

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