Sancheti Sonam V, Gogate Parag R
Chemical Engineering Department, Institute of Chemical Technology, Matunga, Mumbai 400 019, India.
Chemical Engineering Department, Institute of Chemical Technology, Matunga, Mumbai 400 019, India.
Ultrason Sonochem. 2017 May;36:527-543. doi: 10.1016/j.ultsonch.2016.08.009. Epub 2016 Aug 8.
Cavitation generated using ultrasound can enhance the rates of several chemical reactions giving better selectivity based on the physical and chemical effects. The present review focuses on overview of the different reactions that can be intensified using ultrasound followed by the discussion on the chemical kinetics for ultrasound assisted reactions, engineering aspects related to reactor designs and effect of operating parameters on the degree of intensification obtained for chemical synthesis. The cavitational effects in terms of magnitudes of collapse temperatures and collapse pressure, number of free radicals generated and extent of turbulence are strongly dependent on the operating parameters such as ultrasonic power, frequency, duty cycle, temperature as well as physicochemical parameters of liquid medium which controls the inception of cavitation. Guidelines have been presented for the optimum selection based on the critical analysis of the existing literature so that maximum process intensification benefits can be obtained. Different reactor designs have also been analyzed with guidelines for efficient scale up of the sonochemical reactor, which would be dependent on the type of reaction, controlling mechanism of reaction, catalyst and activation energy requirements. Overall, it has been established that sonochemistry offers considerable potential for green and sustainable processing and efficient scale up procedures are required so as to harness the effects at actual commercial level.
利用超声产生的空化作用可提高若干化学反应的速率,并基于物理和化学效应实现更好的选择性。本综述重点概述了可通过超声强化的不同反应,随后讨论了超声辅助反应的化学动力学、与反应器设计相关的工程方面以及操作参数对化学合成强化程度的影响。空化效应在崩溃温度和崩溃压力的大小、产生的自由基数量以及湍流程度方面,强烈依赖于诸如超声功率、频率、占空比、温度等操作参数,以及控制空化起始的液体介质的物理化学参数。基于对现有文献的批判性分析,已给出了最佳选择的指导方针,以便能获得最大的过程强化效益。还分析了不同的反应器设计,并给出了声化学反应器高效放大的指导方针,这将取决于反应类型、反应控制机制、催化剂和活化能要求。总体而言,已证实声化学在绿色和可持续加工方面具有巨大潜力,并且需要有效的放大程序以便在实际商业层面利用这些效应。