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741.
742.
采用静电纺丝法制备了Co_3O_4/BiVO_4复合薄膜电极,并以之为光阳极,在过一硫酸盐(PMS)辅助作用下开展了光电催化降解双酚A研究.结果表明,PMS在可见光下可显著强化Co_3O_4/BiVO_4复合阳极光电催化降解双酚A,在0.25 V外加偏压以及可见光照射下,当加入2 mmol·L-1PMS时,双酚A在2 h内的降解效率为96%.降解动力学常数为0.471 4 min-1.系统研究了PMS初始浓度、外加偏压对双酚A降解性能的影响.结果发现,双酚A在较低的PMS投加量和较低的外加偏压(0.25 V)下即可有效降解.采用电子自旋共振波谱仪鉴定体系的主要活性自由基为SO·-4和·OH.并进一步通过淬灭实验结果证明空穴、SO·-4和·OH起主要氧化作用.光电反应后的体系中未检测到金属离子溶出,可避免二次污染. 相似文献
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744.
Shanzhi Xin Wei Gao Dandan Cao Kun Lv Yaquan Liu Chunyan Zhao Yawei Wang Guibin Jiang 《环境科学学报(英文版)》2019,31(1):378-387
The increasing production and usage of chlorinated paraffins(CPs) correspondently increase the amount of CPs that experience thermal processes. Our previous study revealed that a significant amount of medium-chain chlorinated paraffins(MCCPs), short-chain chlorinated paraffins(SCCPs) as well as aromatic and chlorinated polycyclic aromatic hydrocarbons(Cl-PAHs) were formed synergistically during the thermal decomposition of CP-52(a class of CP products).However, the transformation mechanisms of CP-52 to these compounds are still not very clear.This article presents a mechanistic analysis on the decomposition of CP-52 experimentally and theoretically. It was found that CP-52 initially undergoes dehydrochlorination and carbon chain cleavage and it transformed into chlorinated and unsaturated hydrocarbons. Cyclization and aromatization were the most accessible pathways at low temperatures(200–400°C), both of which produce mostly aromatic hydrocarbons. As the temperature exceeds 400°C, the hydrocarbons could decompose into small molecules, and the subsequent radical-induced reactions become the predominant pathways, leading to the formation of Cl-PAHs. The decomposition of CP-52 was investigated by using density functional theory and calculations demonstrating the feasibility and rationality of PCB and PCN formation from chlorobenzene. The results improve the understanding of the transformation processes from CP-52 to SCCPs and Cl-PAHs as well as provide data for reducing their emissions during thermal-related processes. 相似文献
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748.
研究了模拟配水中硫酸铝和氯化铝2种传统铝凝聚剂和2种聚合氯化铝(PAC)絮凝剂在混凝过程中的形态转化规律以及原水浊度和溶解性有机碳(DOC)对残余铝形态分布的影响.结果表明,在低浊体系中,投加铝系混凝剂是导致出水余铝升高的主要原因;但在高浊体系中,铝系混凝剂,尤其是聚合铝具有一定的除铝功能;混凝沉淀过程中传统铝凝聚剂的残余铝总量明显高于聚合铝混凝剂的残余铝总量;聚合铝混凝剂的残余铝全部为悬浮态铝,传统铝混凝剂的残余铝中还存在着胶体态铝和溶解态铝.原水浊度和DOC浓度增加,会提高残余铝中胶体态铝和溶解态铝的含量. 相似文献
749.
以现场7次降雨14组径流污染监测数据为基础,探讨了下凹式绿地对城市降雨径流污染的削减效应,分析了径流污染负荷、绿地土壤与覆被植物、降雨历时等因素对污染削减率的影响.结果表明,当COD,NH4+-N和TP的浓度分别为56.0~216.0,0.27~2.97,0.20~0.95mg/L时,下凹式绿地对COD,NH4+-N和TP的平均削减率为52.21%,48.98%和47.35%.下凹式绿地对径流污染的削减过程可分为2个阶段:初期1h的径流污染削减率符合一级动力学模式,后期径流污染削减规律可用二级动力学模式表示.降雨历时增加可提高污染物削减率,当降雨历时约从3h增加到20h时,径流污染的综合削减率可从40%上升到65%. 相似文献
750.
Comparison of quartz sand, anthracite, shale and biological ceramsite for adsorptive removal of phosphorus from aqueous solution 总被引:1,自引:0,他引:1
The choice of substrates with high phosphorus adsorption capacity is vital for sustainable phosphorus removal from waste water in constructed wetlands. In this study, four substrates were used: quartz sand, anthracite, shale and biological ceramsite. These substrate samples were characterized by X- ray diffractometry and scanning electron microscopy studies for their mineral components (chemical components) and surface characteristics. The dynamic experimental results revealed the following ranking order for total phosphorus (TP) removal efficiency: anthracite 〉 biological ceramsite 〉 shale 〉 quartz sand. The adsorptive removal capacities for TP using anthracite, biological ceramsite, shale and quartz sand were 85.87, 81.44, 59.65, and 55.98 mg/kg, respectively. Phosphorus desorption was also studied to analyze the substrates' adsorption efficiency in wastewater treatment as well as the substrates' ability to be reused for treatment. It was noted that the removal performance for the different forms of phosphorus was dependent on the nature of the substrate and the adsorption mechanism. A comparative analysis showed that the removal of particulate phosphorus was much easier using shale. Whereas anthracite had the highest soluble reactive phosphorus (SRP) adsorptive capacity, biological ceramsite had the highest dissolved organic phosphorus (DOP) removal capacity. Phosphorus removal by shale and biological ceramsite was mainly through chemical adsorption, precipitation or biological adsorption. On the other hand, phosphorus removal through physical adsorption (electrostatic attraction or ion exchange) was dominant in anthracite and quartz sand. 相似文献