4.7 Article

Towards the optimisation and adaptation of dry powder inhalers

期刊

INTERNATIONAL JOURNAL OF PHARMACEUTICS
卷 470, 期 1-2, 页码 120-132

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.ijpharm.2014.04.065

关键词

Dry powder inhaler; Carrier glass beads; Surface modification; Computational fluid dynamics; Fluid stresses on carrier; Prediction of drug detachment

资金

  1. Deutsche Forschungsgemeinschaft (DFG), Germany [SPP 1486 (PiKo), SO 204/38-1, SO 204/38-2]
  2. [UR 214/3-2]

向作者/读者索取更多资源

Pulmonary drug delivery by dry powder inhalers is becoming more and more popular. Such an inhalation device must insure that during the inhalation process the drug powder is detached from the carrier due to fluid flow stresses. The goal of the project is the development of a drug powder detachment model to be used in numerical computations (CFD, computational fluid dynamics) of fluid flow and carrier particle motion through the inhaler and the resulting efficiency of drug delivery. This programme will be the basis for the optimisation of inhaler geometry and dry powder inhaler formulation. For this purpose a multi-scale approach is adopted. First the flow field through the inhaler is numerically calculated with OpenFOAM (R) and the flow stresses experienced by the carrier particles are recorded. This information is used for micro-scale simulations using the Lattice Boltzmann method where only one carrier particle covered with drug powder is placed in cubic flow domain and exposed to the relevant flow situations, e.g. plug and shear flow with different Reynolds numbers. Therefrom the fluid forces on the drug particles are obtained. In order to allow the determination of the drug particle detachment possibility by lift-off, sliding or rolling, also measurements by AFM (atomic force microscope) were conducted for different carrier particle surface structures. The contact properties, such as van der Waals force, friction coefficient and adhesion surface energy were used to determine, from a force or moment balance (fluid forces versus contact forces), the detachment probability by the three mechanisms as a function of carrier particle Reynolds number. These results will be used for deriving the drug powder detachment model. (C) 2014 Elsevier B.V. All rights reserved.

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