传质
空化
气泡
振荡(细胞信号)
机械
微型反应器
传质系数
微通道
超声波传感器
化学
涡流
声化学
下降(电信)
压力降
声学
物理
机械工程
工程类
催化作用
有机化学
生物化学
作者
Zhengya Dong,Chaoqun Yao,Yuchao Zhang,Guangwen Chen,Quan Yuan,Jie Xu
出处
期刊:Aiche Journal
[Wiley]
日期:2015-10-30
卷期号:62 (4): 1294-1307
被引量:77
摘要
Ultrasonic microreactors were used to intensify gas‐liquid mass‐transfer process and study the intensification mechanism. Fierce surface wave oscillation with different modes was excited on the bubble. It was found that for slug bubbles confined in smaller microchannel, surface wave oscillations require more ultrasound energy to excite due to the confinement effect. Cavitation microstreaming with two toroidal vortices was observed near the oscillating bubble by a streak photography experiment. Surface wave oscillation at the gas‐liquid interface increases the specific surface area, while cavitation microstreaming accelerates the interface renewal and thus improves the individual mass‐transfer coefficient. With these two reasons, the overall mass‐transfer coefficient was enhanced by 3–20 times under ultrasonication. As for gas‐liquid flow hydrodynamics, ultrasound oscillation disturbs the bubble formation process and changes the initial bubble length and pressure drop. © 2015 American Institute of Chemical Engineers AIChE J , 62: 1294–1307, 2016
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