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131.
Ag/Al2O3催化剂用于碳氢化合物选择性还原NO 总被引:6,自引:1,他引:6
比较了富氧条件下CH4、C3H8、C3H6和C2H5OH分别用作还原剂时,NO在Ag/Al2O3催化剂上的还原活性.结果表明, CH4和C3H8还原NO的活性很低,而C3H6和C2H5OH能有效地还原NO.在此基础上,研究了H2O和SO2对C3H6和C2H5OH在Ag/Al2O3催化剂上还原NO活性的影响.结果表明,H2O的存在会降低低温区的NO还原活性,而且这种影响是可逆的.将H2O 和SO2同时加入反应混合气,引起NO还原活性较大幅度降低,结合程序升温脱附实验结果,认为可能是由于存在SO2时,Ag/Al2O3催化剂吸附NO的能力降低. 相似文献
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用酸碱指示剂滴定法测定废水的中的OH-,CO3^2-,HCO3^-碱度时,S^2-对测定有干扰,此干扰可用H2O2掩蔽。 相似文献
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《环境科学学报(英文版)》2023,35(4):396-407
Based on the experimental and theoretical methods, the NO selective catalytic oxidation process was proposed. The experimental results indicated that lattice oxygen was the active site for NO oxide over the -MnO2(110) surface. In the theoretical study, DFT (density functional theory) and periodic slab modeling were performed on an -MnO2(110) surface, and two possible NO oxidation mechanisms over the surface were proposed. The non-defect -MnO2(110) surface showed the highest stability, and the surface Os (the second layer oxygen atoms) position was the most active and stable site. O2 molecule enhanced the joint adsorption process of two NO molecules. The reaction process, including O2 dissociation and O=N-O-O-N=O formation, was calculated to carry out the NO catalytic oxidation mechanism over -MnO2(110). The results showed that NO oxidation over the -MnO2(110) surface exhibited the greatest possibility following the route of O=N-O-O-N=O formation. Meanwhile, the formation of O=N-O-O-N=O was the rate-determining step. 相似文献
137.
通过湿化学法从废旧锂离子电池中回收得到Li+、Co2+的硝酸溶液,以此为钴源,与Ni(NO3)2.6H2O、Mn(NO3)2按化学计量比混合,用草酸盐共沉淀法制备草酸盐前驱体,然后按Li过量5%加入Li2CO3混合,在空气中于800~950°C煅烧15 h得LiCo1/3Mn1/3Ni1/3O2,研究了煅烧温度对材料结构、形貌以及电化学性能的影响。结果表明,900℃保温15 h制备的LiCo1/3Mn1/3Ni1/3O2正极材料,为理想的(α-NaFeO2层状结构,颗粒为大小均匀的球形,在2.5~4.3 V的电压范围内,以0.1 C的恒定电流进行充放电,其首次充放电比容量分别为194.3和150.9 mAh/g,10次循环之后的容量保持率为89.9%,放电比容量为135.0 mAh/g。 相似文献
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Experimental data are presented to test and validate a kinetic model for the oxidation of 2-chlorophenol wastewater by photo-assisted Fenton process. The data showed that this process had produced good effects under acidic conductions. Up to 90% 2-chlorophenol was removed after 90-minute reaction time with H2O2 of 25% CODCr. in, while in UV/H2O2 system ordy 16.8% 2-chlorophenol was removed after one hour treatment. The optimal pH in this reaction occurred between pH 3.0 and pH 4.0. The reaction kinetics for photo-assisted Fenton process experimented in this research was investigated. Kinetic models were proposed for the treatment of 2-chlorophenol wastewater. The reaction was found to follow the 2nd order. The equations of reaction kinetics are as follows:-d[RH]/dt=KRH[RH][H2O2]0exp(-KH2o2t);-d[CODCr]/dt=KCODCr[CODCr][H2O2]0exp(-K′t).The prediction of the models was found to be in a good agreement with experimental results, thus confimfing the proposed reaction mechanism. 相似文献
140.
The preparation of immobilizing-catalysts for decomposing ozone by using dipping method was studied. XRD, XPS and TEM were used to characterize the catalysts. The three kinds of catalysts were selected preferentially, and their catalytic activities were investigated. The results showed that the catalyst with activated carbon dipping acetate( active components are Mn:Cu = 3:2, active component proportion in catalyst is 15%, calcination temperature is 200℃ ) has the best catalytic activity for ozone decomposing. One gram of catalyst can decompose 17.6g ozone at initial ozone concentration of 2.5g/m^3 and the residence time in reactor of 0.1s. The experimental results also indicated that humidity of reaction system had negative effect on catalytic activity. 相似文献