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通过臭氧氧化法从模拟废水中去除2-巯基苯并噻唑。

Removal of the 2-mercaptobenotiazole from model wastewater by ozonation.

作者信息

Derco Jan, Kassai Angelika, Melicher Michal, Dudas Jozef

机构信息

Faculty of Chemical and Food Technology, Slovak University of Technology, Radlinského 9, 812 37 Bratislava, Slovakia.

Water Research Institute, Nábr. Arm. Gen. L. Svobodu 5, 812 49 Bratislava, Slovakia.

出版信息

ScientificWorldJournal. 2014 Jan 23;2014:173010. doi: 10.1155/2014/173010. eCollection 2014.

Abstract

The feasibility of ozonation process for 2-mercaptobenzothiazole (2-MBT) removal follows from results of ozonation of the model wastewater. Total removal of 2-MBT was observed after 20 minutes of ozonation. Very good reproducibility of repeated ozonation trials including sampling and analysis was observed. However, the majority of dissolved organic carbon (DOC) and chemical oxygen demand (COD) remained in the reaction mixture. Benzothiazole (BT) and 2-hydroxybenzothiazole (OBT) intermediates were identified during degradation of 2-MBT with ozone. In addition to the above benzothiazole derivatives, the creation of some other organic compounds follows from results of mass balance. The best fits of experimental data were obtained using the first kinetic model for 2-MBT and zero-order kinetic model for COD and DOC. The reaction time of 60 minutes can be considered as effective with regard to controlled oxidation in order to increase a portion of partially oxidized substances. Higher biodegradability and lower toxicity of ozonation products on respiration activity of activated sludge microorganisms was observed at higher ozonation time.

摘要

臭氧化法去除2-巯基苯并噻唑(2-MBT)的可行性可从模拟废水的臭氧化结果得出。臭氧化20分钟后观察到2-MBT被完全去除。包括采样和分析在内的重复臭氧化试验具有很好的可重复性。然而,大部分溶解有机碳(DOC)和化学需氧量(COD)仍留在反应混合物中。在用臭氧降解2-MBT的过程中鉴定出了苯并噻唑(BT)和2-羟基苯并噻唑(OBT)中间体。除上述苯并噻唑衍生物外,质量平衡结果表明还生成了一些其他有机化合物。使用2-MBT的一级动力学模型以及COD和DOC的零级动力学模型能最好地拟合实验数据。为了增加部分氧化物质的比例,60分钟的反应时间对于控制氧化而言可被视为有效。在较高的臭氧化时间下,观察到臭氧化产物对活性污泥微生物呼吸活性具有更高的生物降解性和更低的毒性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78d8/3919111/b3c4e9726e27/TSWJ2014-173010.001.jpg

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