Dular Matevž, Griessler-Bulc Tjaša, Gutierrez-Aguirre Ion, Heath Ester, Kosjek Tina, Krivograd Klemenčič Aleksandra, Oder Martina, Petkovšek Martin, Rački Nejc, Ravnikar Maja, Šarc Andrej, Širok Brane, Zupanc Mojca, Žitnik Miha, Kompare Boris
Faculty of Mechanical Engineering, University of Ljubljana, Aškerčeva 6, 1000 Ljubljana, Slovenia.
Faculty of Health Sciences, University of Ljubljana, Zdravstvena pot 5, 1000 Ljubljana, Slovenia; Faculty of Civil and Geodetic Engineering, University of Ljubljana, Hajdrihova 28, 1000 Ljubljana, Slovenia.
Ultrason Sonochem. 2016 Mar;29:577-88. doi: 10.1016/j.ultsonch.2015.10.010. Epub 2015 Oct 19.
The use of acoustic cavitation for water and wastewater treatment (cleaning) is a well known procedure. Yet, the use of hydrodynamic cavitation as a sole technique or in combination with other techniques such as ultrasound has only recently been suggested and employed. In the first part of this paper a general overview of techniques that employ hydrodynamic cavitation for cleaning of water and wastewater is presented. In the second part of the paper the focus is on our own most recent work using hydrodynamic cavitation for removal of pharmaceuticals (clofibric acid, ibuprofen, ketoprofen, naproxen, diclofenac, carbamazepine), toxic cyanobacteria (Microcystis aeruginosa), green microalgae (Chlorella vulgaris), bacteria (Legionella pneumophila) and viruses (Rotavirus) from water and wastewater. As will be shown, hydrodynamic cavitation, like acoustic, can manifest itself in many different forms each having its own distinctive properties and mechanisms. This was until now neglected, which eventually led to poor performance of the technique. We will show that a different type of hydrodynamic cavitation (different removal mechanism) is required for successful removal of different pollutants. The path to use hydrodynamic cavitation as a routine water cleaning method is still long, but recent results have already shown great potential for optimisation, which could lead to a low energy tool for water and wastewater cleaning.
利用声空化作用处理水和废水(净化)是一种广为人知的方法。然而,将水力空化作为一种单独的技术或与超声等其他技术结合使用,只是最近才被提出和应用。本文第一部分概述了利用水力空化净化水和废水的技术。本文第二部分重点介绍了我们自己最近利用水力空化从水和废水中去除药物(氯贝酸、布洛芬、酮洛芬、萘普生、双氯芬酸、卡马西平)、有毒蓝藻(铜绿微囊藻)、绿色微藻(普通小球藻)、细菌(嗜肺军团菌)和病毒(轮状病毒)的工作。如下所示,水力空化与声空化一样,可以以许多不同的形式表现出来,每种形式都有其独特的特性和机制。到目前为止,这一点一直被忽视,最终导致该技术性能不佳。我们将表明,成功去除不同污染物需要不同类型的水力空化(不同的去除机制)。将水力空化用作常规水净化方法的道路仍然漫长,但最近的结果已经显示出巨大的优化潜力,这可能会产生一种用于水和废水净化的低能耗工具。