比例(比率)
超声波传感器
工艺工程
背景(考古学)
生化工程
化学
持续性
空化
纳米技术
系统工程
工程类
机械
生态学
材料科学
量子力学
生物
物理
古生物学
声学
作者
D. Meroni,Bo Yang,Muthupandian Ashokkumar,Claudia L. Bianchi,Daria C. Boffito
出处
期刊:Chemical Reviews
[American Chemical Society]
日期:2021-11-24
卷期号:122 (3): 3219-3258
被引量:48
标识
DOI:10.1021/acs.chemrev.1c00438
摘要
Intensification of ultrasonic processes for diversified applications, including environmental remediation, extractions, food processes, and synthesis of materials, has received attention from the scientific community and industry. The mechanistic pathways involved in intensification of ultrasonic processes that include the ultrasonic generation of cavitation bubbles, radical formation upon their collapse, and the possibility of fine-tuning operating parameters for specific applications are all well documented in the literature. However, the scale-up of ultrasonic processes with large-scale sonochemical reactors for industrial applications remains a challenge. In this context, this review provides a complete overview of the current understanding of the role of operating parameters and reactor configuration on the sonochemical processes. Experimental and theoretical techniques to characterize the intensity and distribution of cavitation activity within sonoreactors are compared. Classes of laboratory and large-scale sonoreactors are reviewed, highlighting recent advances in batch and flow-through reactors. Finally, examples of large-scale sonoprocessing applications have been reviewed, discussing the major scale-up and sustainability challenges.
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