Social Determinants of Health Research Center (SDHRC), Department of Environmental Health Engineering, School of Public Health, Hamadan University of Medical Science, Hamadan, Iran; Department of Environmental Health Engineering, School of Public Health, Hamadan University of Medical Sciences, Hamadan, Iran.
Department of Environmental Health Engineering, School of Public Health, Hamadan University of Medical Sciences, Hamadan, Iran.
Chemosphere. 2021 Mar;266:129179. doi: 10.1016/j.chemosphere.2020.129179. Epub 2020 Dec 3.
The present study investigates the efficiency of a three-dimensional electro-peroxone (3D/E-peroxone) reactor filled with TiO-GAC in removing diuron from aqueous solution and in the remediation of real pesticide wastewater. The behavior of the system in terms of the effect of independent variables on diuron was investigated and optimized by RSM-CCD and ANN-GA methods. Both approaches proved to have a very good performance in the modeling of the process and determined the optimum condition of the independent variables as follows: initial pH = 10, applied current = 500 mA, supporting electrolyte = 0.07 M, ozone concentration = 10 mg L, and reaction time = 10 min. The 3D/E-peroxone process achieved a synergistic effect in diuron abatement and reduced significantly energy consumption, as compared to its individual components. HO concentration generated in the electrolysis system was notably increased in the presence of TiO-GAC microparticles. The BOD/COD ratio of the real pesticide wastewater increased from 0.049 to 0.571 within 90 min treatment. Giving to the considerable enhancement of the biodegradability of the wastewater, this study strongly suggests that the 3D/E-peroxone process can be considered as a promising pretreatment step before a biological treatment process to produce intermediates which are more easily degradable by microorganisms.
本研究考察了填充 TiO-GAC 的三维电过氧单(3D/E-peroxone)反应器从水溶液中去除敌草隆和修复实际农药废水中的效率。通过 RSM-CCD 和 ANN-GA 方法研究了系统在独立变量对敌草隆影响方面的行为,并进行了优化。这两种方法都在该过程的建模中表现出了非常出色的性能,并确定了独立变量的最佳条件如下:初始 pH=10、施加电流=500 mA、支持电解质=0.07 M、臭氧浓度=10 mg/L 和反应时间=10 分钟。与单独组件相比,3D/E-peroxone 工艺在去除敌草隆方面具有协同作用,并且显著降低了能耗。在 TiO-GAC 微球存在下,电解系统中生成的 HO 浓度明显增加。实际农药废水中的 BOD/COD 比值在 90 分钟处理后从 0.049 增加到 0.571。鉴于废水可生物降解性的显著提高,本研究强烈表明,3D/E-peroxone 工艺可作为生物处理工艺之前的一种有前途的预处理步骤,以产生更易于微生物降解的中间体。