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Turbulent flow energy for aerosolization of powder particles

机译:湍流能雾化粉末颗粒

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The process of re-entrainment and re-dispersion of powder particles is studied both theoretically and experimentally in order to discuss the possibilities of improvement of the quality of aerosol emitted from dry powder inhalers (DPI). The eddy fluid particle model (EFPM) is employed to solve turbulent flow structure in the microscale in a channel with various types of turbulence promoters. The resuspension process caused by the gas shearing forces is modeled with the Verlet algorithm taking into account the inter-particle cohesive interactions. Nondimensional numbers are introduced to define the domains of powder aerosolization. Computational results indicate the importance of the geometry of turbulence promoters for powder re-entrainment (fluidization) and de-aggregation of particle clusters. The theoretical findings, are supported by experimental results obtained in a model resuspension chamber with a pharmaceutical powder (disodium cromoglycate). A noticeable increase of emission and re-dispersion was obtained at low airflow rates due to the use of turbulence promoters mounted in the vicinity of the powder layer. The corresponding increase of flow resistance is acceptable in respect to the practical application in DPIs.
机译:从理论上和实验上都研究了粉末颗粒的重新夹带和重新分散的过程,以讨论改善干粉吸入器(DPI)排放的气雾剂质量的可能性。涡流粒子模型(EFPM)用于解决具有各种类型的湍流促进剂的通道中微观尺度的湍流结构。考虑到颗粒间的内聚相互作用,采用Verlet算法对由气体剪切力引起的重悬过程进行建模。引入无量纲数字以定义粉末雾化的区域。计算结果表明,湍流促进剂的几何形状对于粉末团簇的重新夹带(流化)和解聚很重要。理论上的发现得到了在带有药物粉末(色甘酸二钠)的模型重悬室中获得的实验结果的支持。由于使用了安装在粉末层附近的湍流促进剂,在低气流速率下获得了明显的发射和再分散。就DPI中的实际应用而言,相应增加的流阻是可以接受的。

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