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The removal of bisphenols and other contaminants of emerging concern by hydrodynamic cavitation: From lab-scale to pilot-scale

机译:除去双酚和其他污染物的流体动力空化:从实验室规模到导频规模

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摘要

The rapid growth in the variety and quantity of contaminants of emerging concern (CEC) in wastewater indicates the necessity for developing efficient and environmentally friendly methods for their removal. This study investigates the removal efficiency of 46 CEC, including 12 bisphenols, from wastewater using a lab and pilot-scale hy-drodynamic cavitation generator alone and in combination with UV illumination (pilot-scale). During lab-scale cavitation, the highest removal efficiencies of bisphenols (15-63%) for this specific design of cavitator were obtained at a rotational frequency (v_(cav)) = 9500 rpm and time(t_(cav)) = 10min. Temperature and the physicochem-ical properties (e.g. K_(ow)) of the studied compounds also had a significant effect on removal efficiency. At the pilot-scale, 11 CECs were quantifiable in the wastewater influent, and the generator operated at v_(cav) = 2290 and 2700 rpm. The highest removal efficiencies (15-90%) were obtained at a lower v_(cav) = 2290 rpm while neither an increase in v_(cav), t_(cav) or the presence of UV-C light increased the removal efficiency. A lower v_(cav) also reduced the hydrodynamic power of the cavitator from 477 W to 377 W, resulting in reduced energy consumption. Overall, the results show the potential of hydrodynamic cavitation for a large-scale application as a pre-treatment technology and pave the way for future improvements in the design of cavitation reactors.
机译:废水中新兴担忧(CEC)污染物品种和数量的快速增长表明了为其去除而开发有效和环保方法的必要性。本研究通过单独使用实验室和试验规模的Hy-Drocody空化发生器并与UV照明(导尺)结合使用,研究了46 CEC的去除效率,其中包括12个CEC,包括12个双酚,来自废水。在实验室测量期间,在旋转频率(V_(腔))= 9500rpm和时间(t_(cav))= 10min,获得了对空穴特定设计的最高去除效率(15-63%)。所研究化合物的温度和物理化学性质(例如K_(OW))也对去除效率产生显着影响。在飞行员范围内,在废水进水中可测量11个CEC,并且发电机在V_(CAV)= 2290和2700rpm处运行。在较低的V_(CAV)= 2290rpm处获得最高的去除效率(15-90%),而V_(CAV),T_(CAV)或UV-C光的存在既没有增加,则增加了去除效率。较低的V_(cav)也将空体动力学从477 W降低到377W,导致能量消耗降低。总体而言,结果表明,对于预处理技术,流体动力空化的潜力为大规模应用,并为未来改进空化反应器的改进而铺平道路。

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  • 来源
    《The Science of the Total Environment》 |2020年第15期|140724.1-140724.7|共7页
  • 作者单位

    Jozef Stefan Institute Jamova cesta 39 1000 Ljubljana Slovenia International Postgraduate School jozef Stefan Jamova cesta 39 1000 Ljubljana Slovenia;

    Jozef Stefan Institute Jamova cesta 39 1000 Ljubljana Slovenia International Postgraduate School jozef Stefan Jamova cesta 39 1000 Ljubljana Slovenia;

    University of Ljubljana Faculty of Mechanical Engineering Askerceva 6 1000 Ljubljana Slovenia;

    University of Ljubljana Faculty of Mechanical Engineering Askerceva 6 1000 Ljubljana Slovenia;

    University of Ljubljana Faculty of Mechanical Engineering Askerceva 6 1000 Ljubljana Slovenia;

    University of Ljubljana Faculty of Pharmacy Department of Pharmaceutical Chemistry Askerceva cesta 7 1000 Ljubljana Slovenia;

    University of Ljubljana Faculty of Pharmacy Department of Pharmaceutical Chemistry Askerceva cesta 7 1000 Ljubljana Slovenia;

    Jozef Stefan Institute Jamova cesta 39 1000 Ljubljana Slovenia International Postgraduate School jozef Stefan Jamova cesta 39 1000 Ljubljana Slovenia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Contaminants of emerging concern; Bisphenol; Hydrodynamic cavitation; UV Lab-scale; Pilot-scale;

    机译:出现的污染物;双酚;流体动力空化;UV Lab-Scale;飞行员规模;

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