Recent trends in the applications of sonochemical reactors as an advanced oxidation process for the remediation of microbial hazards associated with water and wastewater: A critical review

环境修复 空化 环境科学 声化学 废物管理 废水 高级氧化法 微生物 污水处理 生化工程 过程(计算) 环境友好型 环境化学 化学 环境工程 污染 计算机科学 工程类 细菌 生物 生态学 物理 有机化学 操作系统 机械 遗传学
作者
Mohammad Hadi Dehghani,Rama Rao Karri,Janardhan Reddy Koduru,Sivakumar Manickam,Inderjeet Tyagi,Nabisab Mujawar Mubarak,Suhas Suhas
出处
期刊:Ultrasonics Sonochemistry [Elsevier]
卷期号:94: 106302-106302 被引量:26
标识
DOI:10.1016/j.ultsonch.2023.106302
摘要

Water is one of the major sources that spread human diseases through contamination with bacteria and other pathogenic microorganisms. This review focuses on microbial hazards as they are often present in water and wastewater and cause various human diseases. Among the currently used disinfection methods, sonochemical reactors (SCRs) that produce free radicals combined with advanced oxidation processes (AOPs) have received significant attention from the scientific community. Also, this review discussed various types of cavitation reactors, such as acoustic cavitation reactors (ACRs) utilizing ultrasonic energy (UE), which had been widely employed, involving AOPs for treating contaminated waters. Besides ACRs, hydrodynamic cavitation reactors (HCRs) also effectively destroy and deactivate microorganisms to varying degrees. Cavitation is the fundamental phenomenon responsible for initiating many sonochemical reactions in liquids. Bacterial degradation occurs mainly due to the thinning of microbial membranes, local warming, and the generation of free radicals due to cavitation. Over the years, although extensive investigations have focused on the antimicrobial effects of UE (ultrasonic energy), the primary mechanism underlying the cavitation effects in the disinfection process, inactivation of microbes, and chemical reactions involved are still poorly understood. Therefore, studies under different conditions often lead to inconsistent results. This review investigates and compares other mechanisms and performances from greener and environmentally friendly sonochemical techniques to the remediation of microbial hazards associated with water and wastewater. Finally, the energy aspects, challenges, and recommendations for future perspectives have been provided.
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