共查询到18条相似文献,搜索用时 281 毫秒
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采用浸涂-烧结法制备的纳米TiO2光催化剂负载量约为6mg/g载体,催化剂经5次重复使用其催化效果稳定,表明催化剂表面TiO2粉体负载牢固;以高压汞灯为光源,对水中微量间二甲苯的负载型纳米TiO2光催化氧化过程的研究表明:初始浓度在6.68~17.36mg/L的范围内,间二甲苯的光催化反应遵循表现一级反应动力学规律,反应的表现速率常数随溶液初始浓度的增大而减小,半衰期则随初始浓度的增大而增加。 相似文献
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本文以牛皮纸作载体,用浸渍法制备了具有光催化作用的纳米P-TiO2光催化剂,对室内一定浓度的甲醛气体进行了降解实验研究。通过实验探讨了甲醛的初始浓度、催化剂的用量、湿度条件、溶胶pH值和金属离子的掺杂5个影响甲醛降解率的因素,结果采用美国interscan公司生产的4160型甲醛分析仪进行表征。实验结果表明,当甲醛的初始浓度约为1.53mg/m3,P-TiO2用量为11.94g,湿度约为52%,溶胶pH=5.01,掺杂6.00mL 0.20 mol/L Cu2+离子时,甲醛的降解效果最好,最高可达93.50%,甲醛浓度降至0.0994mg/m3,达到了GB/T 18883—2002标准中规定的0.10 mg/m3。 相似文献
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以SiO2为载体,采用浸渍法负载MnO2和CeO2制备Ce-Mn/SiO2臭氧催化剂,以塔里木油田钻井 废水COD去除率为评价指标,考察催化剂的制备工艺条件(焙烧温度、焙烧时间、MnO2负载量、CeO2负载量)。 结果表明:在焙烧温度为480℃,焙烧时间为4h,MnO2负载量为15%、CeO2负载量为13.22%( n( Ce)与 n(Mn)之比为3:7)的条件下制备的Ce-Mn/SiO2臭氧催化剂对COD的去除率达到78.20%,5次重复使用后COD去除率仍在72%以上,具有一定的稳定性。通过表征发现,Ce-Mn/SiO2臭氧催化剂载体SiO2以α -石英晶 相的形式存在,MnO2和CeO2成功地负载到SiO2表面,并均匀分布在载体表面。 相似文献
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选取聚丙烯工业吸油棉为固定化生物载体材料,通过开展材料改性及固定化工艺优化研究,制备出适用于溢油污染海岸线环境的固定化高效石油降解生物制剂。结果表明:优选0.2mol/L NaOH溶液作为固定化载体材料改性液,改性前后比表面积由33.120m~2/g增至189.621m~2/g,平均孔径由16.997nm增至36.810nm;明确最优固定化参数:固定化初始pH值7~8、固定化初始温度28~32℃、载体投加量2.00~2.50g/L;固定化高效石油降解生物制剂TPHs降解率均高于游离菌群和未改性载体材料,环境耐受性及原油降解效率显著提升。 相似文献
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负载型TiO2薄膜光催化剂降解亚甲基蓝 总被引:2,自引:0,他引:2
采用溶胶-凝胶法制备了玻璃负载的TiO2薄膜光催化剂,研究了该催化剂对亚甲基蓝溶液的光催化降解,考察了反应时间、水样的初始浓度、溶液的pH等对光催化降解效果的影响。 相似文献
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对微电解后废水初始pH、外加Fe2+、H2O2浓度、处理时间对色度及CODCr去除率的影响进行研究。实验结果表明随着pH的增加,色度和CODCr的去除率均呈现先增加后降低的趋势,在pH值等于4时,处理效果最好。外加Fe2+,H2O2和反应时间对废水CODCr和色度去除率的影响类似于pH的影响,获得的H2O2最佳投加量4 mL/L,FeSO4.7H2O为1.5g/L,最佳处理时间60min。在优化实验条件下,CODCr和色度的去除率稳定在80%和84%附近。 相似文献
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UV-H_2O_2联用工艺去除水中阿特拉津的研究 总被引:2,自引:0,他引:2
采用间歇式反应器考察了UV-H2O2高级氧化技术去除水中阿特拉津的效果及其影响因素,并进行了相关的反应动力学研究。结果表明,在pH值6.9,阿特拉津初始浓度500μg/L,紫外辐照强度172μW/cm2时,H2O2投加量50mg/L,反应10min后,阿特拉津的去除率90%。UV-H2O2联用工艺对阿特拉津的降解符合一级反应动力学。H2O2在该联用工艺降解阿特拉津中具有双重作用,一方面,当H2O2投加量较小时,一级反应速率常数随H2O2投加量的增加基本呈现线性增加的趋势;另一方面,当H2O2浓度增加到一定程度(90mg/L)后,阿特拉津的降解速率随H2O2浓度的变化已不明显,而H2O2浓度为102mg/L时,则出现了抑制作用。 相似文献
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Heterogeneous photocatalysed degradation of two selected pesticide derivatives, triclopyr (1) and daminozid (2), has been investigated in aqueous suspensions of titanium dioxide by monitoring the change in substrate concentration employing the UV Spectroscopic analysis technique and depletion of Total Organic Carbon (TOC) content as a function of irradiation time. The degradation kinetics were studied under different conditions such as reaction pH, substrate and catalyst concentration, different types of TiO2 and in the presence of electron acceptors such as hydrogen peroxide (H2O2), potassium bromate (KBrO3) and ammonium persulphate (NH4)2S2O8 in addition to molecular oxygen. The degradation rates were found to be strongly influenced by all the above parameters. The photocatalyst Degussa P25 was found to be more efficient as compared with other photocatalysts. The pesticide derivative triclopyr (1) was found to degrade faster as compared to daminozid (2). An attempt was also made to identify the intermediate products formed during the photooxidation process using GC/MS analysis. Probable pathways for the formation of products have been proposed. 相似文献
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Heterogeneous photocatalysed degradation of a herbicide derivative, N-(4-isopropylphenyl)-N',N'-dimethylurea (Isoproturon, 1) was investigated in aqueous suspensions of titanium dioxide by monitoring the change in absorption intensity and depletion in Total Organic Carbon content as a function of irradiation time. The degradation kinetics was studied under different conditions such as pH, catalyst concentration, substrate concentration, different types of TiO(2) and in the presence of electron acceptors such as hydrogen peroxide (H(2)O(2)), potassium bromate (KBrO(3)) and potassium persulphate (K(2)S(2)O(8)) besides molecular oxygen. The degradation rates were found to be strongly influenced by all the above parameters. The photocatalyst Degussa P25 was found to be more efficient as compared with other photocatalysts. An attempt was made to identify the degradation product through GC-MS analysis technique. 相似文献
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为了研究车载巡回处理装置对小城镇垃圾渗滤液的处理效果,采用自制的UV-Fenton试验装置研究了pH值、FeSO_4剂量、反应时间等因素对处理效果的影响,结果表明:最佳pH值为4.0,进水中COD为825 mg/L时,FeSO_4和H_2O_2的投加量分别为0.008 mol/L和0.08 mol/L,此时COD去除率72.22%,出水COD为216 mg/L;随着FeSO_4投加量缓慢增加到一定程度后转而下降,FeSO_4最佳投加量为0.008 mol/L;不同H_2O_2和Fe~(2+)配比对COD去除效果具有影响,(10:1)时为最佳配比。经过氨吹脱和混凝沉淀预处理的渗滤液采用UV/Fenton处理工艺,出水中COD可以达到《生活垃圾填埋场污染控制标准》(GB 16889-1997)中二级标准。 相似文献