Low Thermal Stress and Instant Efficient Atomization of Narrow Viscous Microfluid Film Using a Paper Strip Located at the Edge of a Surface Acoustic Wave Atomizer.

IF 3 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL
Micromachines Pub Date : 2025-05-27 DOI:10.3390/mi16060628
Yulin Lei, Yusong Li, Jia Ning, Yu Gu, Chenhui Gai, Qinghe Ma, Yizhan Ding, Benzheng Wang, Hong Hu
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引用次数: 0

Abstract

A traditional SAW (surface acoustic wave) atomizer directly supplies liquid to the surface of the atomized chip through a paper strip located in the path of the acoustic beam, resulting in irregular distribution of the liquid film, which generates an aerosol with an uneven particle size distribution and poor directional controllability, and a high heating phenomenon that can easily break the chip in the atomization process. This paper presents a novel atomization method: a paper strip located at the edge of the atomizer (PSLEA), which forms a micron-sized narrow liquid film at the junction of the atomization chip edge and the paper strip under the effect of acoustic wetting. By using this method, physical separation of the atomized aerosol and jetting droplets can be achieved at the initial stage of atomizer startup, and an ideal aerosol plume with no jetting of large droplets, a uniform particle size distribution, a vertical and stable atomization direction, and good convergence of the aerosol beam can be quickly formed. Furthermore, the effects of the input power, and different paper strips and liquid supply methods on the atomization performance, as well as the heating generation capacity of the liquid in the atomization zone during the atomization process were explored through a large number of experiments, which highlighted the advantages of PSLEA atomization. The experiments demonstrated that the maximum atomization rate under the PSLEA atomization mode reached 2.6 mL/min initially, and the maximum thermal stress was 45% lower compared with that in the traditional mode. Additionally, a portable handheld atomizer with stable atomization performance and a median aerosol particle size of 3.95 μm was designed based on the proposed PSLEA atomization method, showing the great potential of SAW atomizers in treating respiratory diseases.

利用位于表面声波雾化器边缘的纸条实现窄粘性微流体膜的低热应力和即时高效雾化。
传统的SAW(表面声波)雾化器是通过位于声束路径上的纸条将液体直接供给雾化芯片表面,导致液膜分布不规则,从而产生粒径分布不均匀、方向性可控性差的气溶胶,并且在雾化过程中加热现象高,容易使芯片破碎。本文提出了一种新的雾化方法:在雾化片边缘放置纸条(PSLEA),在声润湿作用下,在雾化片边缘与纸条交界处形成微米大小的窄液膜。采用该方法,可以在雾化器启动初期实现雾化气溶胶与喷射液滴的物理分离,快速形成无大液滴喷射、粒径分布均匀、雾化方向垂直稳定、气溶胶束辐合良好的理想气溶胶羽流。此外,通过大量实验探索了输入功率、不同送纸方式和供液方式对雾化性能的影响,以及雾化过程中雾化区液体的产热能力,凸显了PSLEA雾化的优势。实验表明,在PSLEA雾化模式下,初始最大雾化速率可达2.6 mL/min,最大热应力比传统模式降低45%。此外,基于所提出的PSLEA雾化方法,设计了雾化性能稳定,气溶胶中位粒径为3.95 μm的便携式手持雾化器,显示了SAW雾化器在治疗呼吸系统疾病方面的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Micromachines
Micromachines NANOSCIENCE & NANOTECHNOLOGY-INSTRUMENTS & INSTRUMENTATION
CiteScore
5.20
自引率
14.70%
发文量
1862
审稿时长
16.31 days
期刊介绍: Micromachines (ISSN 2072-666X) is an international, peer-reviewed open access journal which provides an advanced forum for studies related to micro-scaled machines and micromachinery. It publishes reviews, regular research papers and short communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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