College of Urban Construction, Nanjing Tech University, Nanjing, China.
Key laboratory of the Three Gorges Reservoir Region's Eco-Environment, State Ministry of Education, Chongqing University, Chongqing, China.
Water Environ Res. 2020 Sep;92(9):1283-1292. doi: 10.1002/wer.1323. Epub 2020 Mar 29.
A Ti-Co@γ-Al O composite catalyst was prepared using impregnation and sol-gel methods to degrade biochemical tailwater from the coal chemical industry, and its preparation conditions (active component doping ratio, load times, and calcination temperature) were optimized through single-factor experiments. The surface properties of the Ti-Co@γ-Al O composite catalyst and the crystal structure characteristics of the catalytically active components were characterized via scanning electron microscopy-energy dispersive spectrometry, X-ray diffraction, and X-ray fluorescence. The effects of reaction time, initial pH, ozone aeration, and catalyst dosage on degradation performance were investigated through an experiment on the catalytic ozonation degradation of biochemical tail water. Results showed that the optimal conditions were as follows: reaction time of 30 min, pH of 8.2, ozone aeration of 30 mg/min, and catalyst dosage of 20 g/L. The total phenol and total organic carbon removal rates for biochemical tailwater were 66.1% and 57.6%, respectively, in the catalytic system. The mechanism of degradation of organic pollutants by catalytic ozonation was investigated by adding tert-butanol to the catalytic ozone oxidation system. The degradation of chemical oxygen demand in biochemical tailwater was caused primarily by the synergy between the Ti-Co@γ-Al O catalyst and ozone. PRACTITIONER POINTS: Ti-Co/γ-Al O catalyst was prepared for the catalytic oxidation of biochemical tail water. The optimal removal rates of total phenol and TOC were 67.7% and 58.8%, respectively. The organic matter was degraded rapidly and efficiently after 5 min of ozone catalytic oxidation reaction. It provides theoretical guidance for the practical application of ozone catalytic oxidation.
采用浸渍-溶胶凝胶法制备了 Ti-Co@γ-Al O 复合催化剂,用于降解煤化工生化尾水,并通过单因素实验优化了其制备条件(活性组分掺杂比、负载次数和煅烧温度)。采用扫描电子显微镜-能谱仪、X 射线衍射和 X 射线荧光对 Ti-Co@γ-Al O 复合催化剂的表面性质和催化活性组分的晶体结构特征进行了表征。通过催化臭氧化降解生化尾水实验,考察了反应时间、初始 pH 值、臭氧曝气和催化剂用量对降解性能的影响。结果表明,最佳条件为:反应时间 30 min、pH 值 8.2、臭氧曝气 30 mg/min、催化剂用量 20 g/L。在催化体系中,生化尾水的总酚和总有机碳去除率分别达到 66.1%和 57.6%。通过向催化臭氧化体系中添加叔丁醇,研究了有机污染物在催化臭氧化降解过程中的降解机制。生化尾水中化学需氧量的降解主要是由于 Ti-Co@γ-Al O 催化剂和臭氧之间的协同作用。
制备 Ti-Co/γ-Al O 催化剂用于催化氧化生化尾水。总酚和 TOC 的最佳去除率分别达到 67.7%和 58.8%。经过 5 min 的臭氧催化氧化反应,有机物被快速高效地降解。为臭氧催化氧化的实际应用提供了理论指导。