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使用欧拉-拉格朗日方法预测多孔颗粒在呼吸系统中的传输和沉积

Prediction of Transport and Deposition of Porous Particles in the Respiratory System Using Eulerian-Lagrangian Approach.

作者信息

Eshaghi Sajad, Khaleghi Hassan, Maddahian Reza

机构信息

Faculty of Mechanical Engineering, Tarbiat Modares University, Tehran, Iran.

出版信息

Int J Numer Method Biomed Eng. 2024 Dec;40(12):e3873. doi: 10.1002/cnm.3873. Epub 2024 Oct 23.

DOI:10.1002/cnm.3873
PMID:39440676
Abstract

Deep lung delivery is crucial for respiratory disease treatment. Although nano and submicron particles exhibited a good deposition efficiency in deep regions of the lung, powder nonuniformity and particle agglomeration reduce their efficiency. Inhalation of porous particles (PPs) can overcome the mentioned challenges due to their larger size and low-density. The present study numerically investigates the deposition and penetration efficiency of orally inhaled PPs. A revised drag coefficient was implemented for PP transport. A realistic mouth-throat to the fifth generation of the lung was reconstructed from CT-scan images. A dilute suspension of uniformly distributed particles was considered at three inhalation flow rates (15, 30, and 45 L/min). Governing equations of the flow field and particle transport are solved using an Eulerian-Lagrangian approach. The results demonstrate that inhaling PPs significantly reduces the total and regional deposition of particles. There was also a critical porosity value under moderate and high inhalation flow rates for large PPs. Below this critical value, PP deposition efficiency substantially decreases. Additionally, it was also found that under low inhalation flow rates, the impact of porosity value is negligible. Almost 95% of the PPs penetrate the lower branches. These findings provide particle engineers and pharmaceutics with profound insight into developing novel inhalation techniques and drug delivery methods for deep lung delivery.

摘要

深部肺部给药对于呼吸系统疾病的治疗至关重要。尽管纳米和亚微米颗粒在肺部深部区域表现出良好的沉积效率,但粉末不均匀性和颗粒团聚降低了它们的效率。吸入多孔颗粒(PPs)由于其较大的尺寸和低密度,可以克服上述挑战。本研究对口服吸入PPs的沉积和穿透效率进行了数值研究。对PPs的传输采用了修正的阻力系数。根据CT扫描图像重建了从口腔咽喉到肺部第五代的真实模型。在三种吸入流速(15、30和45升/分钟)下考虑均匀分布颗粒的稀悬浮液。使用欧拉-拉格朗日方法求解流场和颗粒传输的控制方程。结果表明,吸入PPs显著降低了颗粒的总沉积和区域沉积。对于大尺寸PPs,在中等和高吸入流速下也存在一个临界孔隙率值。低于该临界值,PPs的沉积效率会大幅降低。此外,还发现在低吸入流速下,孔隙率值的影响可以忽略不计。几乎95%的PPs穿透下部分支。这些发现为颗粒工程师和药剂师开发用于深部肺部给药的新型吸入技术和药物递送方法提供了深刻的见解。

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