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Application of Hydrodynamic Cavitation Reactors for Treatment of Wastewater Containing Organic Pollutants: Intensification Using Hybrid Approaches

机译:流体动力空化反应器在含有有机污染物废水处理中的应用:使用杂交方法进行强化

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摘要

The concentration of hazardous pollutants in the wastewater streams has to keep below a certain level in order to comply with the stringent environmental laws. The conventional technologies for wastewater treatment have drawbacks in terms of limited applicability and efficiency. Utilization of hydrodynamic cavitation (HC) reactors for the degradation of pollutants at large scale has shown considerable promise over last few years, due to higher energy efficiencies and low cost operation based on lower consumption of chemicals for the treatment. The present work overviews the degradation of different pollutants, such as pharmaceuticals, pesticide, phenolic derivatives and dyes, as well as the treatment of real industrial effluents using hybrid methods based on HC viz. HC/H2O2, HC/Ozone, HC/Fenton, HC/Ultraviolet irradiations (UV), and HC coupled with biological oxidation. Furthermore, based on the literature reports, recommendations for the selection of optimum operating parameters, such as inlet pressure, solution temperature, initial pH and initial pollutant concentration have been discussed in order to maximize the process intensification benefits. Moreover, hybrid methods based on HC has been demonstrated to show good synergism as compared to individual treatment approach. Overall, high energy efficient wastewater treatment can be achieved using a combined treatment approach based on HC under optimized conditions.
机译:有害污染物的废水流的浓度必须保持低于一定的水平,以符合严格的环保法规。用于废水处理的传统技术具有缺点在有限的适用性和效率方面。水力空化(HC)反应器的污染物在大规模退化的利用已经显示出在过去的几年中相当大的希望,由于基于对处理化学品的消耗降低较高的能量效率和低成本运作。目前的工作概述不同的污染物,如药品,农药,苯酚衍生物和染料的降解,以及使用基于HC即混合方法实际工业废水的处理。 HC / H2O2,HC /臭氧,HC /芬顿,HC /紫外线照射(UV),和HC加上生物氧化。此外,根据文献报道,为的最佳操作参数,如入口压力,溶液温度,初始pH值和初始污染物浓度的选择建议已经为了最大化过程强化的好处的讨论。此外,基于HC混合方法已被证明是比个体化治疗方法表现出良好的协同作用。总体而言,可使用优化的条件下基于HC的组合治疗方法可以实现高能量有效的废水处理。

著录项

  • 作者

    Pooja Thanekar; Parag Gogate;

  • 作者单位
  • 年度 2018
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  • 原文格式 PDF
  • 正文语种 eng
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