Gui Zhenzhen, Zeng Yaohua, Xie Tang, Chen Bochuan, Wang Jialong, Wen Yuxin, Tan Tian, Zou Tao, Zhang Fan, Zhang Jianhui
School of Mechanical and Electrical Engineering, Guangzhou University, Guangzhou Higher Education Mega Center, 230 Wai Huan Xi Road, Guangzhou 510006, China.
Guangdong-Hong Kong-Macao Key Laboratory of Multi-scale Information Fusion and Collaborative Optimization Control of Complex Manufacturing Process, Guangzhou 510006, China.
iScience. 2024 May 22;27(6):110071. doi: 10.1016/j.isci.2024.110071. eCollection 2024 Jun 21.
Piezoelectric atomization is becoming mainstream in the field of inhalation therapy due to its significant advantages. With the rapid development of high-viscosity gene therapy drugs, the demand for piezoelectric atomization devices is increasing. However, conventional piezoelectric atomizers with a single-dimensional energy supply are unable to provide the energy required to atomize high-viscosity liquids. To address this problem, our team has designed a flow tube internal cavitation atomizer (FTICA). This study focuses on dissecting the atomization mechanism of FTICA. In contrast to the widely supported capillary wave hypothesis, our study provides evidence in favor of the cavitation hypothesis, proving that cavitation is the key to atomizing high-viscosity liquids with FTICA. In order to prove that the cavitation is the key to atomizing in the structure of FTICA, the performance of atomization is experimented after changing the cavitation conditions by heating and stirring of the liquids.
由于其显著优势,压电雾化正成为吸入疗法领域的主流。随着高粘度基因治疗药物的迅速发展,对压电雾化装置的需求不断增加。然而,传统的一维能量供应压电雾化器无法提供雾化高粘度液体所需的能量。为了解决这一问题,我们的团队设计了一种流管内部空化雾化器(FTICA)。本研究着重剖析FTICA的雾化机制。与广泛支持的毛细波假说不同,我们的研究提供了支持空化假说的证据,证明空化是FTICA雾化高粘度液体的关键。为了证明空化是FTICA结构中雾化的关键,通过对液体进行加热和搅拌来改变空化条件后,对雾化性能进行了实验。