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高流量鼻导管与药物气溶胶联合装置的研制。

Development of a High-Flow Nasal Cannula and Pharmaceutical Aerosol Combination Device.

机构信息

1Department of Mechanical and Nuclear Engineering, Virginia Commonwealth University, Richmond, Virginia.

2Department of Pharmaceutics, Virginia Commonwealth University, Richmond, Virginia.

出版信息

J Aerosol Med Pulm Drug Deliv. 2019 Aug;32(4):224-241. doi: 10.1089/jamp.2018.1488. Epub 2019 Mar 11.

Abstract

Aerosol drug delivery to the lungs is known to be very inefficient during all forms of noninvasive ventilation, especially when the aerosol is administered simultaneously with high-flow nasal cannula (HFNC) therapy. The objective of this study was to develop a new combination device based on vibrating mesh nebulizers that can provide continuously heated and humidified HFNC therapy as well as on-demand pharmaceutical aerosols with high efficiency. The combination device implemented separate mesh nebulizers for generating humidity (humidity nebulizer) and delivering the medical aerosol (drug nebulizer). Nebulizers were actuated in an alternating manner with the drug nebulizer delivering the medication during a portion of an adult inhalation cycle. Aerosol entered a small-volume mixing region where it was combined with ventilation gas flow and then entered a heating channel to produce small particles that are desirable for nose-to-lung administration and potentially excipient enhanced growth delivery. Three assessment methods (analytical calculations, computational fluid dynamics [CFD] simulations, and experiments in three-dimensional [3D] printed devices) were used to improve the mixer-heater design to minimize depositional drug losses, maintain a small device volume, ensure sufficient droplet evaporation, and control the outlet thermodynamic conditions. For an initial configuration (Design 1), good agreement in performance metrics was found using the three assessment methods. Based on insights gained from the CFD simulations of Design 1, two new designs were developed and produced with 3D printing. Experimental analysis indicated that the new designs both achieved <5% depositional loss in the mixer-heater even with cyclic operation and sufficiently dried the aerosol from an initial size of 5.3 μm to an outlet size of ∼1.0 μm. A combination of the applied methods indicated that the desired thermodynamic conditions of HFNC therapy were also met. Multiple methodological approaches were used concurrently to develop a new combination device for administering HFNC therapy and simultaneous on-demand pharmaceutical aerosols to the lungs with high efficiency. The use of a small-volume mixer-heater (<100 mL), synchronization of the drug nebulizer with inhalation, and small outlet particle size should enable high efficiency lung delivery of the aerosol.

摘要

向肺部输送气溶胶药物已知在所有形式的无创通气中效率都非常低,尤其是当气溶胶与高流量鼻插管(HFNC)治疗同时给药时。本研究的目的是开发一种新的组合装置,该装置基于振动网孔式雾化器,可提供持续加热和加湿的 HFNC 治疗以及高效按需药物雾化。该组合装置为生成湿气(湿气雾化器)和输送药物气溶胶(药物雾化器)分别实施了单独的网孔雾化器。雾化器以交替的方式工作,药物雾化器在成人吸气周期的一部分时间内输送药物。气溶胶进入一个小容积混合区,在那里与通气气流混合,然后进入加热通道,产生适合鼻到肺给药的小颗粒,并且可能增强赋形剂的生长传递。使用三种评估方法(分析计算、计算流体动力学 [CFD] 模拟和 3D 打印设备中的实验)来改进混合器-加热器设计,以最大限度地减少沉积药物损失、保持小设备体积、确保足够的液滴蒸发,并控制出口热力学条件。对于初始配置(设计 1),使用三种评估方法发现性能指标的良好一致性。基于从设计 1 的 CFD 模拟中获得的见解,开发并使用 3D 打印制作了两个新设计。实验分析表明,即使在循环操作下,新设计在混合器-加热器中都实现了<5%的沉积损失,并且足够干燥了初始尺寸为 5.3μm 的气溶胶,使其出口尺寸达到约 1.0μm。应用方法的组合表明,HFNC 治疗所需的热力学条件也得到了满足。同时使用多种方法来开发一种新的组合装置,以高效率向肺部输送 HFNC 治疗和同时按需药物气溶胶。小容积混合器-加热器(<100mL)的使用、药物雾化器与吸气的同步以及小的出口颗粒尺寸应能够实现气溶胶的高效肺部输送。

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