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基于微胶囊的干粉吸入器评估:CFD-DEM 模拟与下一代撞击器数据。

Capsule-Based dry powder inhaler evaluation using CFD-DEM simulations and next generation impactor data.

机构信息

Engineering Simulation and Scientific Software, ESSS, Rua Orlando Phillipi, 100, Florianopolis, SC 88032-700, Brazil.

Device Development, Genentech Inc., 1 DNA Way, South San Francisco, California 94080, USA.

出版信息

Eur J Pharm Sci. 2022 Aug 1;175:106226. doi: 10.1016/j.ejps.2022.106226. Epub 2022 May 25.

Abstract

Capsule-based, single-dose dry powder inhalers (DPIs) are commonly-used devices to deliver medications to the lungs. This work evaluates the effect of the drug/excipient adhesive bonding and the DPI resistances on the aerosol performance using a combination of empirical multi-stage impactor data and a fully-coupled computational fluid dynamics (CFD) and discrete element method (DEM) model. Model-predicted quantities show that the primary modes of powder dispersion are a function of the device resistance. Lowering the device resistance increases its capacity to transport a wider range of particle size classes toward the outlet and generate more intense turbulence upstream therein. On the other hand, a higher device resistance increases the velocity of the tangential airflow along the device walls, which in turn increases the intensity of particle/device impaction. Correlating model data and experimental results shows that these differing powder dispersion mechanisms affect different formulations differently, with finer aerosols tending to result when pairing a lower resistance device with formulations that exhibit low API/excipient adhesion, or when pairing a high resistance device with more cohesive formulations.

摘要

基于胶囊的单剂量干粉吸入器(DPI)是常用于将药物输送到肺部的设备。这项工作使用经验多阶段撞击器数据和完全耦合计算流体动力学(CFD)和离散元法(DEM)模型的组合,评估了药物/赋形剂粘合和 DPI 阻力对气溶胶性能的影响。模型预测的数量表明,粉末分散的主要模式是设备阻力的函数。降低设备阻力会增加其向出口输送更广泛粒径范围的能力,并在其中产生更强烈的湍流。另一方面,较高的设备阻力会增加沿设备壁的切向气流速度,从而增加颗粒/设备碰撞的强度。将模型数据和实验结果相关联表明,这些不同的粉末分散机制对不同的配方有不同的影响,当将低阻力设备与表现出低 API/赋形剂粘附力的配方配对时,或者当将高阻力设备与更具内聚性的配方配对时,往往会产生更细的气溶胶。

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