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1.
分别考察不同沉淀剂、溶液pH、煅烧温度和煅烧时间对制备MnOx催化剂及其低温SCR脱除NO性能的影响,并借助XRD和BET等表征手段分析各催化剂的物相和孔隙特性。结果表明,不同沉淀剂制备的MnOx催化剂的低温活性依次为:MnOx(Na2CO3) > MnOx((NH4)2CO3) > MnOx(NaOH) > MnOx(NH4OH)。表征结果表明,MnOx(Na2CO3)和MnOx((NH4)2CO3)催化剂之所以表现出突出的低温SCR活性,归因于混合氧化态的无定型结构和较大的比表面积。优选Na2CO3沉淀剂制备MnOx催化剂,最佳的煅烧温度和时间分别为350℃和6 h,而溶液pH对制备的MnOx催化剂的催化还原NO活性影响不明显。  相似文献   

2.
用原位红外分别进行了MnOx/Al-SBA-15催化剂上NH3和NO+O2的吸附态和瞬态实验以及NH3+NO+02反应的稳态实验。结果表明,催化剂上存在着L酸位和B酸位,NH3吸附在催化剂上形成配位态的NH3和NH4+,配位态的NH3能脱氢形成-NH2活性中间态。NO+O2在催化剂上吸附形成硝酸盐类、硝基类和亚硝酸盐类。将NO+O2通入预吸附NH3的催化剂中时,表面的配位态的NH3、NH4+和-NH2都会减少直至消失,SCR反应显著。而将NH3通人预吸附NO+O2的催化剂中时,只有硝基类和亚硝酸盐类减少,硝酸盐类基本不发生变化,SCR反应微弱。NH3+NO+O2稳态反应中,催化剂表面稳定存在着NH4+和硝酸盐类,SCR反应显著。  相似文献   

3.
以用不同浓度的HNO3预处理后的椰壳活性炭为载体,负载铈制备SCR催化剂。利用比表面积分析仪(BET)、X射线衍射(XRD)、扫描电镜(SEM)和催化剂活性实验,探讨了不同变量如金属离子的分布、焙烧温度和载体属性对催化活性的影响。结果表明,HNO3处理后,经500℃焙烧金属铈负载量为7%的催化剂表现出优良的催化性能。在90℃时,NO转化率在90%以上,随温度升高,达到接近100%的NO转化率。  相似文献   

4.
采用柠檬酸法制备了不同Fe和Mn含量的Fe-Mn/HBeta催化剂,采用BET、XRD、SEM和XPS等方法对不同催化剂的特征参数进行表征,以氨气为还原剂,在空速为5 000 h-1的条件下,考察了活性成分负载量和焙烧温度对其活性的影响;探讨了催化剂的抗水抗硫性能.研究结果表明,焙烧温度为550℃、6%Fe-6%Mn/HBeta催化剂具有相对较优的催化活性,反应温度为90~230℃时,NO转化率为63.9%~96.99%,比表面积、孔体积和平均孔径分别为356.19 m2/g、0.61 cm3/g和16.83 nm,活性成分在催化剂表面高度分散,催化剂表面Mn主要以Mn3+和Mn4+存在,且以Mn4+居多;反应温度为180℃条件下,6%Fe-6%Mn/HBeta催化剂具有较好的抗水能力和同时抗水抗SO2能力,但单独抗SO2能力较差.  相似文献   

5.
以柠檬酸酸法制备了不同铁铈比例的脱硝催化剂并将其用于NOx的低温NH3选择性催化还原,通过N2吸附、XRD和TPD手段对催化剂进行表征,并考察了H2O和SO2对催化剂性能的影响。结果表明:Ce的掺杂显著提高铁基催化剂的低温SCR性能,0.10CeFeOx催化剂在200~300 ℃,60 000 h-1空速下能达到85%以上的效率;Ce的掺杂能够提高催化剂比表面积和改善催化剂孔结构,有助于反应气体吸附以及提供更多的活性位点;铁铈之间有较强的相互作用,掺杂Ce后,Fe、Ce以无定型态存在,形成良好固溶体,并且大幅提高了催化剂表面酸性强度;在250 ℃,由于5%(vol)H2O竞争吸附导致0.10CeFeOx催化剂反应效率有所下降,但仍保持在90%左右;对于模拟烟气中SO2的毒化作用,250 ℃时0.10CeFeOx催化剂反应效率下降明显。  相似文献   

6.
试验就碱金属钾对两种催化剂V2O5/TiO2(VT)和V2O5/TiO2-SiO2(VTS)选择性催化还原(SCR)氮氧化物的性能影响作了相关研究.运用BET比表面积、X射线衍射(XRD)谱图、傅立叶变换透射红外光谱(FT-IR)谱图对催化剂进行表征.结果表明,试验制备的TiO2-SiO2比表面积达360 m2/g,催化剂表面活性组分高度分散;NH3吸附红外谱图显示催化剂VTS具有丰富的表面酸;催化剂抗钾毒害试验发现,钾易与B酸位结合从而降低对NH3的吸附量和吸附活性,催化刺VTS具有明显优于VT的抗钾毒害性能.归因于部分钾优先与VTS表面酸结合,从而降低对钒活性物种的毒害.此外,失活程度跟钾/钒(K/V)的摩尔比密切相关.催化活性随反应进行不断降低,且24 h内难以恢复到原有水平.  相似文献   

7.
Catalyst supports composed of titanate nanotubes were prepared from hydrothermal treatment on TiO2 nanoparticles in NaOH followed by HCl washing. The nanotubes exhibited well-defined TiO2 anatase phase after calcination at 400 degrees C. The nanotube aggregates and other commercially available TiO2 nanoparticles, all with surface areas >300 m(2)/g, were impregnated with Cu and examined in selective catalytic reduction of NO with NH3. In catalyst preparation, the nanotubes were found to be more thermally stable than nanoparticles, withstanding agglomeration at elevated temperatures. The Cu species supported on the nanotubes showed a higher catalytic activity than those supported on the nanoparticles. Analysis with temperature programmed reduction, X-ray photoelectron spectroscopy, and NO adsorption reflected that the layered-titanate feature of the tube wall was advantageous for even distribution of the Cu species, thus leading to the high-catalytic activity of the tubular Cu/TiO2 catalyst.  相似文献   

8.
以USY分子筛为载体,采用等体积浸渍法制备了不同Mn负载量的Mn/USY催化剂。借助BET、XRD、SEM和FT-IR等手段,考察了催化剂的物相结构及脱硝活性。在90~210 ℃温度范围内,随着反应温度的升高,NO转化率逐渐提高,脱硝效率在210 ℃达到50%以上,其中10 Mn/USY的NO转化率高于其他几组催化剂。通过SEM和BET结果可以看出,Mn/USY分子筛催化剂的比表面积随着Mn负载量的增加而减少。新鲜的催化剂颗粒分散均匀,呈松散的堆叠状态,H2O和SO2实验后催化剂分散程度降低,比表面积、孔径和孔体积都有所下降。XRD结果表明,10 Mn/USY催化剂中MnO2的晶体特征峰最为明显,除此之外没有发现其他Mn或MnOx衍射峰。FT-IR分析结果表明金属Mn的负载并未对USY分子筛的内部结构造成破坏。  相似文献   

9.
以用不同浓度的HNO3预处理后的椰壳活性炭为载体,负载铈制备SCR催化剂。利用比表面积分析仪(BET)、X射线衍射(XRD)、扫描电镜(SEM)和催化剂活性实验,探讨了不同变量如金属离子的分布、焙烧温度和载体属性对催化活性的影响。结果表明,HNO3处理后,经500℃焙烧金属铈负载量为7%的催化剂表现出优良的催化性能。在90℃时,NO转化率在90%以上,随温度升高,达到接近100%的NO转化率。  相似文献   

10.
Manganese acetate (MnAc) and manganese nitrate (MnN) were employed as precursors for the preparation of MnAc)/TiO2, Mn (N)/TiO2, Mn(Ac)-Ce/TiO2, and Mn(N)-Ce/TiO2 by impregnation. These complexes were used as catalysts in the low-temperature selective catalytic reduction of NO with NH3. The influence of manganese precursors on catalyst characteristics, the reduction activity, and the stability of the catalysts to poisoning by H2O and SO2 were studied. Experiments showed that Mn(N) produced MnO2 with large grain sizes in Mn(N)/TiO2 catalyst. On the contrary, Mn(Ac) led to highly dispersed and amorphous Mn2O3 in Mn (Ac)/TiO2 catalyst, which had better catalytic activity and stability to SO2 at low temperatures. The doping of cerium reduced the differences in catalytic performance between the catalysts derived from different Mn precursors.  相似文献   

11.
Environmental Science and Pollution Research - A composite catalyst for the selective catalytic reduction (SCR) of NOx with NH3 is investigated, in which the rare earth (RE, including La, Ce, Pr,...  相似文献   

12.
采用溶胶凝胶法制备TiO2-SiO2载体,浸渍法制备出V2O5-WO3/TiO2-SiO2催化剂,利用BET、FESEM、XRD、TGA和激光拉曼对催化剂进行表征,研究催化剂的理化性质。以NH3为还原剂,考察反应温度、SiO2掺杂量、焙烧温度、空速和使用时间对SCR催化还原NO的性能影响。结果表明,V2O5-WO3/TiO2-SiO2催化剂最佳反应温度在250~350℃。SiO2掺杂能提高活性组分V2O5和WO3在载体表面的分散性,制备出的催化剂具有更大的比表面积和更宽的温度区间,提高脱硝活性及稳定性。SiO2掺杂量对催化剂性能影响较大,制备的催化剂中,TiO2/SiO2=2显示了最大催化活性,脱硝率均在60%以上,TiO2/SiO2=0.5制备的催化剂稳定性最差。焙烧温度对催化剂性能也有影响,焙烧温度在500和600℃时,最低脱硝率为58%和23%,最佳焙烧温度为400℃,脱硝率均在80%以上,具有优越的脱硝性能。实验结果还表明,空速对V2O5-WO3/TiO2-SiO2催化剂的影响不大,在20 000 h-1空速下催化剂的使用时间对脱硝率的影响也不大,48 h内能保持在99%左右,非常稳定。  相似文献   

13.
采用聚合羟基铝交联剂对蒙脱土进行撑柱,合成铝交联黏土(Al-PILC),并以其为载体,制备了应用于C3H6选择还原NO的催化剂Cu/Al-PLIC.考察了制备工艺条件及La2O3助剂对催化剂性能的影响,并采用DTA、IR技术对Al-PILC进行表征.研究结果表明,Al-PILC热稳定性随Al/clay比增加逐步提高,SO2-4改性Al-PILC上SO2-4与铝氧化柱形成了具有超强酸性的结构,催化活性得到显著提高;当Al/clay比为10 mmol/g,浸渍SO2-4量为20%(wt),Cu担载量为3%(wt),空速20 000 h-1时,Cu/Al-PILC在350℃NO转化率达到最大值52.02%;浸渍0.5%La2O3提高了Cu/Al-PILC催化剂的活性和热稳定性.  相似文献   

14.
在Ru/Al2O3催化剂上用H2对SO2选择性催化还原的研究   总被引:2,自引:0,他引:2  
本文对用H2来使SO2选择性催化还原为单质硫在Ru/Al2O3催化剂上的行为进行研究.当物料比经过优化确定为SO2/H2=12.8时,在500℃下,SO2的转化率为90%以上,单质硫的产率为70%左右.比较于其他的催化还原SO2的催化剂,本催化剂采用金属而不是金属硫化物,这样既省去了催化剂预硫化的过程,同时也使在有氧条件下的选择性催化还原成为可能.实验考察了O2及水蒸气存在对过程的影响.在实验过程中发现,H2S作为中间产物生成,可推论该过程在催化剂上分两步进行SO2首先在催化剂金属上被H2深度还原为H2S,然后在Al2O3载体的酸性中心上SO2与H2S发生Claus反应产生单质硫.  相似文献   

15.
TiO2-supported manganese oxide catalysts formed using different calcination temperatures were prepared by using the wet-impregnation method and were investigated for their activity in the low-temperature selective catalytic reduction (SCR) of NO by NH3 with respect to the Mn valence and lattice oxygen behavior. The surface and bulk properties of these catalysts were examined using Brunauer-Emmett-Teller (BET) surface area, X-ray diffraction (XRD), temperature-programmed reduction (TPR), and temperature-programmed desorption (TPD). Catalysts prepared using lower calcination temperatures, which contained Mn4+, displayed high SCR activity at low temperatures and possessed several acid sites and active oxygen. The TPD analysis determined that the Brönsted and Lewis acid sites in the Mn/TiO2 catalysts were important for the low-temperature SCR at 80~160 and 200~350 °C, respectively. In addition, the available lattice oxygen was important for attaining high NO to NO2 oxidation at low temperatures.

Implications: Recently, various Mn catalysts have been evaluated as SCR catalysts. However, there have been no studies on the relationship of adsorption and desorption properties and behavior of lattice oxygen according to the valence state for manganese oxides (MnOx). Therefore, in this study, the catalysts were prepared by the wet-impregnation method at different calcination temperatures in order to show the difference of manganese oxidation state. These catalysts were then characterized using various physicochemical techniques, including BET, XRD, TPR, and TPD, to understand the structure, oxidation state, redox properties, and adsorption and desorption properties of the Mn/TiO2 catalysts.  相似文献   

16.
以甲烷为还原剂的选择性催化脱硝技术(SCR-CH_4)是一种很有潜力的新的脱硝方法,但催化剂的催化活性比较低。为了提高催化剂的活性以及抗水能力,可使用Fe对Al_2O_3负载的Ga_2O_3催化剂进行改性。采用共沉淀法,制备了xFe/Ga_2O_3-Al_2O_3催化剂,在固定床反应器中测试其选择性催化CH_4还原NO的性能。使用XRD、N_2吸附脱附、XPS、H_2-TPR、Py-IR等方法进行表征。结果表明:经过Fe改性后的催化剂提高了中高温的催化活性,提高了催化剂的N_2选择性,并改善了催化剂的抗水特性;5Fe/Ga_2O_3-Al_2O_3催化剂在500℃、富氧条件下,达到76%的NO转化率和100%的N_2选择性;在5%水蒸气条件下,5Fe/Ga_2O_3-Al_2O_3在500℃仍保持60%以上的NO转化率。N_2吸附脱附结果显示,引入Fe后,催化剂保持了原有比表面积,并且大大增加了催化剂孔径,可提高催化剂抗水能力。XPS与UV-vis显示,5Fe/Ga_2O_3-Al_2O_3具有高含量的游离态Fe~(3+),可提高催化剂的中高温活性。H2-TPR结果显示,Fe的引入提高了催化剂氧化还原能力,增强了原有Ga_2O_3-Al_2O_3中高温的还原活性。Py-FT-IR结果显示,催化剂表面同时存在Lewis酸和Br?nsted酸,铁的引入增加了催化剂表面的Lewis酸量。因此,Fe修饰Ga_2O_3-Al_2O_3是提高Ga_2O_3-Al_2O_3催化剂的SCR-CH_4脱硝性能的有效方法。  相似文献   

17.
The aerosol equilibrium formulation of Stelson and Seinfeld (1982a, b, Atmospheric Environment16, 983–992, 993–1000) is incorporated into the STEM-II transport/chemistry model and is evaluated against NH3, HNO3 and aerosol NH4+ and NO3 measured at Nagano Prefecture, Japan on 29 and 30 July 1983. These results indicate that this modeling approach is useful in analyzing field data.  相似文献   

18.
Goo JH  Irfan MF  Kim SD  Hong SC 《Chemosphere》2007,67(4):718-723
The selective catalytic reduction (SCR) characteristics of NO and NO(2) over V(2)O(5)-WO(3)-MnO(2)/TiO(2) catalyst using ammonia as a reducing agent have been determined in a fixed-bed reactor at 200-400 degrees C. The presence of NO(2) enhances the SCR activity at lower temperatures and the optimum ratio of NO(2)/NO(x) is found to be 0.5. During the SCR reactions, there are some side reactions occurred such as ammonia oxidation and N(2)O formation. At higher temperatures, the selective catalytic oxidation of ammonia and the nitrous oxide formation compete with the SCR reactions. The denitrification (DeNO(x)) conversion decreases at lower temperatures but it increases at higher temperatures with increasing SO(2) concentration. The presence of SO(2) in the feeds inhibits N(2)O formation.  相似文献   

19.
Environmental Science and Pollution Research - Different types of manganese ore raw materials were prepared for use as catalysts, and the effects of different manganese ore raw materials and...  相似文献   

20.
制备了不同CeO_x负载量的(CeO_x)_n-(FeO_x)_(0.1)-(MnO_x)_(0.4)/TiO_2催化剂(n、0.1、0.4分别为CeO_x、FeO_x、MnO_x与载体TiO_2的摩尔比),用于低温选择性催化还原(SCR)脱硝,并对其进行结构和性能的表征。结果表明,适量负载CeO_x能够显著提高催化剂的低温SCR脱硝催化活性。当n=0.07时,催化剂在160~180℃时的催化活性最高,脱硝效率可以达到99%以上。同时,水蒸气、SO_2体积分数分别小于等于10%、0.02%时,该催化剂有较好的抗水性和抗硫性。表征结果显示,(CeO_x)_(0.07)-(FeO_x)_(0.1)-(MnO_x)_(0.4)/TiO_2催化剂锐钛矿TiO_2的相对结晶度低,耗氢还原峰温度低,并且面积大,表面Lewis酸位上的NH_3稳定。因此,(CeO_x)_(0.07)-(FeO_x)_(0.1)-(MnO_x)_(0.4)/TiO_2催化剂具有良好的低温SCR脱硝活性,并且稳定。  相似文献   

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