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231.
F-V_2 O_5-WO3/Ti02 catalysts were prepared by the impregnation method.As the content of F ions increased from 0.00 to 0.35 wt.%,the NO conversion of F-V_2 O_5-WO_3/TiO_2 catalysts initially increased and then decreased.The 0.2 F-V_2 O_5-WO_3/TiO_2 catalyst(0.2 wt.% F ion)exhibited the best denitration(De-NOx) performance,with more than 95% NO conversion in the temperature range 160-360℃,and 99.0% N2 selectivity between 110 and 280℃.The addition of an appropriate amount of F ions eroded the surface morphology of the catalyst and reduced its grain size,thus enhancing the NO conversion at low temperature as well as the sulfur and water resistance of the V_2 O_5-WO3/Ti02 catalyst.After selective catalytic reduction(SCR) reaction in a gas flow containing SO_2 and H_2 O,the number of NH3 adsorption sites,active component content,specific surface area and pore volume decreased to different degrees.Ammonium sulfate species deposited on the catalyst surface,which blocked part of the active sites and reduced the NO conversion performance of the catalyst.On-line thermal regeneration could not completely recover the catalyst activity,although it prolonged the cumulative life of the catalyst.In addition,a mechanism for the effects of S02 and H_2 O on catalyst NO conversion was proposed. 相似文献
232.
Fe3O4-CoO/Al2O3 catalyst was prepared by incipient wetness impregnation using Fe(NO3) 3·9H2O and Co(NO3) 2·6H2O as the precursors,and its catalytic performance was investigated in ozonation of 2-(2,4-dichlorophenoxy) propionic acid(2,4-DP) ,nitrobenzene and oxalic acid.The experimental results indicated that Fe3O4-CoO/Al2O3 catalyst enabled an interesting improvement of ozonation eciency during the degradation of each organic pollutant,and the Fe3O4-CoO/Al2O3 catalytic ozonation system followed a radical-type mechanism.The kinetics of ozonation alone and Fe3O4-CoO/Al2O3 catalytic ozonation of three organic pollutants in aqueous solution were discussed under the mere consideration of direct ozone reaction and OH radical reaction to well investigate its performance.In the catalytic ozonation of 2,4-DP,the apparent reaction rate constants(k) were determined to be 1.456×10-2 min-1 for ozonation alone and 4.740×10-2 min-1 for O3/Fe3O4-CoO/Al2O3.And O3/Fe3O4-CoO/Al2O3 had a larger Rct(6.614×10-9) calculated by the relative method than O3 did(1.800×10-9) ,showing O3/Fe3O4-CoO/Al2O3 generated more hydroxyl radical.Similar results were also obtained in the catalytic ozonation of nitrobenzene and oxalic acid.The above results demonstrated that the catalytic performance of Fe3O4-CoO/Al2O3 in ozonation of studied organic substance was universal to a certain degree. 相似文献
233.
234.
微波催化燃烧是一项新的VOCs处理技术,提升VOCs处理效率的关键在于开发催化活性更高、性能更稳定的催化剂。将贵金属Pt与铜锰铈金属氧化物复合制备了Pt-CuMnCeOx/堇青石催化剂,SEM、BET和XRD表征基础上测试催化剂对双组分VOCs-甲苯和乙酸乙酯的催化活性与稳定性。研究表明,Pt的复合提高了催化剂表面活性颗粒的分散性,增大了催化剂的比表面积和孔体积,升高了铜锰价态而提高了催化剂的低温催化活性。微波功率40 W时,Pt-CuMnCeOx/堇青石催化剂的甲苯和乙酸乙酯的降解效率高出CuMnCeOx/堇青石16%和11%;微波功率70 W时,Pt-CuMnCeOx/堇青石催化剂可完全去除甲苯和乙酸乙酯,总VOCs去除率达97%左右且活性保持稳定。本研究结果可为微波催化燃烧VOCs技术提供参考。 相似文献
235.
采用化学共沉淀法制备由过渡金属钴、铁、镍组成的磁性三元水滑石CoFeNi-LDH,催化过硫酸氢钾(PMS)产生SO4-·自由基,降解水中偶氮染料刚果红(CR),系统地考察了初始pH、催化剂投加量、PMS投加量对降解CR的影响。实验结果表明:在pH=4.0~10.0范围内,CoFeNi-LDH/PMS催化体系对CR的降解速率均较高;随着CoFeNi-LDH和PMS投加量的增加,CR的降解速率也逐渐加快。3次循环再生实验后,CoFeNi-LDH对CR的降解率在20 min内依然保持在88%左右。实验结果表明,这种新型磁性三元水滑石不仅具有高效的催化效果而且易于从水中分离,在有机染料废水的处理方面,有着良好的前景。 相似文献
236.
SCR反应塔入口段烟气速度场的数值模拟 总被引:2,自引:1,他引:2
使用商业计算软件CFX5.7.1,采用标准k-ε湍流模型,模拟了SCR脱硝反应塔入口段烟气速度场,并分析比较了导流板对烟气速度场的影响及均匀SCR反应塔进口处烟气速度场的作用。 相似文献
237.
一种新型电化学法处理硝态氮废水的初步研究 总被引:2,自引:0,他引:2
通过对Pd-Me双金属催化还原NO 3--N和折点氯化法处理NH 4+-N的相关理论分析,提出了一种基于电化学法的新型NO 3--N废水处理工艺.即利用具有电子空轨的常见金属元素修饰Ti基获得催化阴极,在电场的作用下,将NO 3--N催化还原;通过调整催化元素的配比和电解条件,控制NO 3--N还原产物主要为NH 4+-N;利用阳极氧化Cl-生成高氧化性物质HOCl,将NH 4+-N氧化为无害产物N2-N.结果表明,金属元素Co和Cu修饰Ti基制得阴极可以有效地催化还原模拟废水中的NO 3--N;按前驱物溶液金属元素摩尔比1∶1制得Ti基Co-Cu复合涂层催化阴极,可以将NO 3--N高效催化还原为NH 4+-N;电解体系中引入Cl-后,通过阳极作用可将NO 3--N还原生产的NH 4+-N有效地氧化为N2-N.在100 mg/L NO 3--N模拟废水中添加1 000 mg/L Cl-,设置极板间距6 mm、电流400 mA,电解2.5 h后出水NO 3--N、NO 2--N、NH 4+-N和TN分别为2.9、0.5、1.7和6.0 mg/L. 相似文献
238.
制备出Pd-Fe/石墨烯多功能催化阴极,与Ti/Ir O2/Ru O2阳极、有机涤纶滤布构成隔膜电解体系,将阴极催化加氢脱氯作用和阴阳极氧化作用耦合起来对含4-氯酚的有机废水进行降解,采用TOC仪、紫外扫描、高效液相色谱、离子色谱分析方法研究其降解效果及反应历程.结果表明,在最佳反应条件下,Pd-Fe/石墨烯催化体系阴阳极室中4-氯酚转化率分别为98.1%和95.1%,优于Pd/石墨烯催化体系阴阳极室的93.3%和91.4%.Pd-Fe/石墨烯催化体系脱氯效果高于95%,表明双金属催化剂具有更强的析氢能力.在阴阳极的协同作用下,反应120 min时4-氯酚被完全转化.通过阴极加氢脱氯作用,4-氯酚被还原成苯酚.随后苯酚在阴阳极的共同氧化作用下,被氧化生成对二苯酚、苯醌等中间产物,继而被氧化为小分子有机酸,最后被矿化为CO2和H2O,据此提出了4-氯酚降解的可能历程. 相似文献
239.
以γ-Al2O3作为载体,先后负载CeO2,MnC2O4,Fe(NO3)3,CrO3,Ni(NO3)2,NH4VO3等多种金属组分制备γ-Al2O3负载多金属复合催化剂,并用于模拟烟气的选择性催化还原脱硝。通过SEM和XRD技术对催化剂进行了表征。表征结果显示:Fe,Mn,Cr的添加能增加催化剂的低温催化活性、提高催化剂的N2选择性;γ-Al2O3对活性金属氧化物的负载效果良好。实验结果表明:各金属化合物的最佳加入量为 w(MnC2O4·2H2O)=20%,w(Fe(NO3)3·9H2O)=15%,w(CrO3)=10%,w(Ni(NO3)2·6H2O)=5%,w(NH4VO3)=10%,w(CeO2)=5%,w(γ-Al2O3)=35%;以在最佳正交实验条件下制得的γ-Al2O3负载多金属复合物为催化剂,在脱硝反应温度为205 ℃的条件下,NO转化率为96.7%;γ-Al2O3负载多金属复合催化剂经5次重复使用,NO转化率仍可稳定在94%左右。 相似文献
240.
Tong Li Xiange Du Jieqiong Deng Kai Qi Jiandong Zhang Lili Gao Xiuping Yue 《环境科学学报(英文版)》2021,33(10):188-200
Environment-friendly nano-catalysts capable of activating peroxymonosulfate (PMS) have received increasing attention recently. Nevertheless, traditional nano-catalysts are generally well dispersed and difficult to be separated from reaction system, so it is particularly important to develop nano-catalysts with both good catalytic activity and excellent recycling efficiency. In this work, magnetically recoverable Fe3O4-modified ternary CoFeCu-layered double hydroxides (Fe3O4/CoFeCu-LDHs) was prepared by a simple co-precipitation method and initially applied to activate PMS for the degradation of Rhodamine B (RhB). X-ray diffraction (XRD), fourier transform infrared spectrometer (FT-IR), scanning electron microscope (SEM), transmission electron microscopy (TEM), Brunauer-Emmett-Teller method (BET), and vibrating sample magnetometer (VSM) were applied to characterize morphology, structure, specific surface area and magnetism. In addition, the effects of several key parameters were evaluated. The Fe3O4/CoFeCu-LDHs exhibited high catalytic activity, and RhB degradation efficiency could reach 100% within 20 min by adding 0.2 g/L of catalyst and 1 mmol/L of PMS into 50 mg/L of RhB solution under a wide pH condition (3.0-7.0). Notably, the Fe3O4/CoFeCu-LDHs showed good super-paramagnetism and excellent stability, which could be effectively and quickly recovered under magnetic condition, and the degradation efficiency after ten cycles could still maintain 98.95%. Both radicals quenching tests and electron spin resonance (ESR) identified both HO? and SO4?? were involved and SO4?? played a dominant role on the RhB degradation. Finally, the chemical states of the sample's surface elements were measured by X-ray photoelectron spectroscopy (XPS), and the possible activation mechanism in Fe3O4/CoFeCu-LDHs/PMS system was proposed according to comprehensive analysis. 相似文献