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1.
以堇青石和二氧化钛为载体脱硝催化剂性能   总被引:1,自引:0,他引:1  
采用改性堇青石和锐钛型二氧化钛为载体,以偏钨酸氨为WO3(助剂)的前驱体,以偏钒酸铵为V2O5(活性组分)的前驱体,通过混合、挤出、干燥和煅烧等工艺制备出蜂窝式SCR脱硝催化剂,采用N2-吸附仪(BET)、X-射线衍射分析仪(XRD)、模拟烟气活性分析装置和磨损装置,再通过催化剂样品的吸水率和收缩率对比分析。考察催化剂样品的比表面积、晶相结构、耐磨损性能、脱硝活性及其吸水率和收缩率变化。结果表明,以10%堇青石和二氧化钛为载体制备出的催化剂比表面积大,晶相结构以堇青石和锐钛矿型二氧化钛为主,其磨损率低,吸水率和收缩率变化小,脱硝率在80%以上时,与商业催化剂相比,反应温度窗口从300~400℃拓宽为250~460℃。  相似文献   

2.
以活性炭为载体,采用浸渍法制备了一系列Fe掺杂Mn-Ce/AC催化剂,研究了Fe的添加量、焙烧温度对催化剂低温脱硝活性的影响;采用了XRD、SEM和N2吸附-脱附技术对催化剂进行了表征。结果表明,Fe的添加能有效提高Mn-Ce/AC的低温脱硝活性,当Fe的添加量为Fe/Mn(摩尔比)为0.1时,催化剂比表面积大,活性组分的分散程度较高,催化剂低温脱硝性能最优,添加量大于0.1时,更多的Fe沉积在载体表面,催化剂活性降低。焙烧温度影响负载氧化物的价态和晶体的分散度,在400℃温度下焙烧时,催化剂低温脱硝性能最佳,此时催化剂孔隙结构较优,活性组分的分散程度也较高。  相似文献   

3.
采用挤出成型法制备系列Ti-Si-O_x复合氧化物催化剂载体,研究了Ti-Si-O_x催化剂载体组分配比、酸量、比表面积与脱硝性能和抗压强度的关系。采用XRD、Raman spectra、N_2-BET、Py-IR以及XPS等表征技术对催化剂载体进行表征。结果表明:Ti/Si元素摩尔比为9∶1时Ti_(0.9)Si_(0.1)O_x催化剂载体的轴向抗压强度适中且脱硝催化活性最高;在5 000 h~(-1)空速条件下,催化剂载体最高脱硝活性在400℃时达到99.0%且起燃温度降至260℃;另外,Ti_(0.9)Si_(0.1)O_x催化剂载体的比表面积为75.4 m~2·g~(-1),介孔最可几分布为8.1 nm,轴向抗压强度为1.4 MPa,符合工业应用条件,即Ti-Si-O_x载体具有较好的工业应用前景。  相似文献   

4.
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FTIR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,H_2O和SO_2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MnO_2的晶体特征峰最为明显,除此之外没有发现其他Mn或MnO_x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   

5.
采用共混法制备了Ti-Ce-Zr-Ox复合脱硝催化剂TiCe0.1Zr0.1O2.4,运用X射线衍射、氮气物理吸附、扫描电镜等表征手段,分别对该催化剂的晶型、表面积、孔分布及结构形貌进行了分析,同时考察了反应温度、空速、水蒸气和SO2对该催化剂NH3选择性催化还原NO的影响.结果表明,TiCe0.1Zr0.1O2.4催...  相似文献   

6.
多孔TiO2为载体的V2O5-WO3脱硝催化剂制备和表征   总被引:3,自引:0,他引:3  
以硫酸氧钛为钛源,氨水为沉淀剂,制备得到大比表面积(60m2/g)的锐钛矿TiO2载体.TiO2载体具有多孔结构,孔径集中在5~12nm,孔体积达到0.24cm3/g.以多孔TiO2为载体,采用浸渍法制备不同V2O5负载量的V2O5-WO3催化剂,利用拉曼(Raman)光谱、X射线衍射(XRD)对催化剂进行表征,并研究了不同V2O5负载量催化剂的脱硝活性,以及NO浓度和NH3/NO摩尔比对催化剂活性的影响.结果表明,V2O5在TiO2表面高度分散,当V2O5负载量在3%(质量分数)以下时,载体表面钒物种为单体钒,表现出最好的脱硝活性,在280~450℃内NO转化率均能达到90%以上.该催化剂对不同进口NO浓度有较强的适应能力.采用该催化剂的脱硝工艺,NH3/NO摩尔比宜保持在0.8~1.0.  相似文献   

7.
采用溶胶凝胶法制备TiO_2-SiO_2载体,浸渍法制备出V_2O_5-WO_3/TiO_2-SiO_2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NH_3为还原剂,考察反应温度、SiO_2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,V_2O_5-WO_3/TiO_2-SiO_2催化剂最佳反应温度在250~350℃。SiO_2掺杂能提高活性组分V_2O_5和WO_3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。SiO_2掺杂量对催化剂性能影响较大,制备的催化剂中,TiO_2/SiO_2=2显示了最大催化活性,脱硝率均在60%以上,TiO_2/SiO_2=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V_2O_5-WO_3/TiO_2-SiO_2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   

8.
采用等体积浸渍法制备了一系列不同负载量的x%Y_2O_3/AC(x=2、4、6、8和10)同时脱硫脱硝催化剂,以CO为还原气,考察该催化剂同时脱硫脱硝催化活性。采用X射线衍射仪(XRD)、H2-程序升温还原(H2-TPR)、比表面积(BET)对催化剂进行了表征。在不同负载量的催化剂中,6%Y_2O_3/AC表现出较好脱硫脱硝效果,SO_2和NO的T90%分别约为365℃和367℃。经HNO_3预处理过的活性炭载体制备的催化剂脱硝效果明显改善,催化剂预硫化可以显著提高脱硫脱硝活性,在550℃硫化的催化剂效果最好,NO和SO_2的T90%分别约为368和362℃,在380℃时脱硫脱硝率均可达到95%以上。  相似文献   

9.
以煤基活性炭(AC)为载体,在不同温度下分别采用空气热氧化和硝酸浸渍对其进行预氧化表面改性处理,然后将稀土金属Ce3+负载在预氧化改性后的活性炭载体上,经煅烧而制得改性Ce O2/AC低温SCR脱硝剂。并采用N2等温吸附脱附测试、X射线光电子能谱等表征手段考察了2种不同预氧化改性方式对基炭孔结构和表面物化性质的影响。同时研究了不同预氧化方式、稀土负载量、煅烧温度对脱硝剂的低温脱硝性能的影响。结果表明:空气热氧化预处理的AC相对于原炭而言,比表面积没有明显损失,且基炭表面官能团得到了明显丰富;而经硝酸氧化的活性炭,比表面积有明显下降。制备Ce O2/AC低温脱硝剂的最佳工艺为:在350?C下,采用空气热氧化预处理,稀土负载量为5%(质量分数),500?C N2保护煅烧温度下,所得到的Ce O2/AC脱硝剂具有最佳低温脱硝活性。该脱硝剂在脱硝温度为150?C即可达到100%的脱硝率。  相似文献   

10.
采用浸渍法制备了Fe和Co改性的Mn-Ce/TiO_2催化剂,研究了Fe和Co共同掺杂对催化剂脱硝及抗水抗硫性的影响。发现Fe和Co以1∶2摩尔比共同掺杂的催化剂具有最佳的脱硝活性。通过BET、XRD、XPS和FTIR等表征手段对其微观结构和抗毒性机理进行研究,发现Fe和Co的掺杂能明显提高催化剂的比表面积和孔隙率,增强催化剂的氧化还原性能。Fe和Co的引入还能减少硫酸根离子和水分子在催化剂表面的累积,从而增强催化剂的抗水抗硫性能。  相似文献   

11.
活性炭材料的活化与改性   总被引:5,自引:0,他引:5  
活性炭是一种应用广泛的吸附催化剂 ,其性能取决于它的孔隙结构和表面化学性质。根据活性炭的表面特性对不同物质的吸附性能 ,对活性炭进行活化和改性处理 ,能进一步满足各种特殊用途的要求。本文概述了活性炭的各种活化和改性处理技术  相似文献   

12.
Tseng HH  Wey MY 《Chemosphere》2006,62(5):756-766
To enhance the dispersion of active sites, modification of the AC supports with different acid solution might result in various surface oxygen groups which act as anchoring sites for metallic precursor to stay and improve the reactivity between AC supports and copper precursor. In the present work, the AC support is tailored with HCl and HNO(3), respectively. The pore structure, surface oxygen groups of the AC support and catalysts as well as catalyst dispersion before and after acid treatments are systematically studied by BET, pH(slurry), TPD, and XRPD analyses. It is found that the order of activity in DeSO(2) reaction is as follows: Cu/AC-HCl>Cu/AC>Cu/AC-HNO(3). The same sequence is also observed for the pore structure of AC supports, the catalyst dispersion, but not for the amounts of CO(2) evolving during TPD experiments of supports. The key role of acid treatment on carbon surface chemistry and pore structure, which are closely related to catalyst dispersion and adsorption capacity, is examined to rationalize these findings. Furthermore, under the NO/NH(3)=1 the NO could be selective catalytic reduction with NH(3) in the presence of O(2), which catalyzed by fresh and spent AC-supported catalyst.  相似文献   

13.
利用浸渍-碱性微波法制备载磁粉末活性炭,通过等温吸附实验和动力学吸附实验,研究对比了其与原料活性炭、浸渍载铁活性炭对壬基酚的吸附性能。采用氮气吸附仪、FTIR、XRD、国标(GB/T12496.19-1999)邻菲啰啉分光度法及VSM,分别对3种样品进行了物相结构、表面官能团、铁含量及磁性能的分析,并探讨了吸附机理。结果表明,浸渍-碱性微波法载磁活性炭的总孔容及孔隙率均有较大提高;其吸附等温线符合Freundich方程,吸附动力学过程符合准二级动力学方程与孔道内扩散模型,相关系数R2均大于0.900。原活性炭经一定浓度的铁盐溶液浸渍后,铁含量由2%提高到8%。在碱性、N2气氛条件下微波后,铁系物主要存在形式为零价铁和Fe3O4,制得的载磁活性炭饱和磁化强度为1.12 emu/g。  相似文献   

14.
活性炭孔隙结构在其甲苯吸附中的作用   总被引:4,自引:0,他引:4  
选用4种商用活性炭(AC),利用氮气绝热吸附、扫描电子显微镜(SEM)和傅立叶变换红外光谱(FTIR)测试了活性炭的物化性质。以甲苯为吸附质,在温度为298.15 K下进行了静态和动态吸附实验,研究了活性炭孔结构对其吸附性能、吸附行为、表面覆盖率和吸附能的影响。结果表明:活性炭的比表面积和孔容是其吸附性能主要影响因素,孔径在0.8~2.4 nm之间的孔容和甲苯吸附量之间存在较好的线性关系,且线性斜率随甲苯浓度增加而变大。甲苯吸附行为符合Langmuir吸附等温模型和准一阶动力学方程式。活性炭孔结构是甲苯吸附速率的主要制约因素。在甲苯快速吸附阶段,微孔为吸附速率主要制约因素,在甲苯颗粒内扩散阶段,微孔和表面孔为吸附速率的主要制约因素,在吸附末尾阶段,中孔和大孔为吸附速率的主要制约因素。4种活性积炭对甲苯的吸附能随其比表面变大而变大。  相似文献   

15.
To increase U.S. petroleum energy-independence, the University of Texas at Arlington (UT Arlington) has developed a coal liquefaction process that uses a hydrogenated solvent and a proprietary catalyst to convert lignite coal to crude oil. This paper reports on part of the environmental evaluation of the liquefaction process: the evaluation of the solid residual from liquefying the coal, called inertinite, as a potential adsorbent for air and water purification. Inertinite samples derived from Arkansas and Texas lignite coals were used as test samples. In the activated carbon creation process, inertinite samples were heated in a tube furnace (Lindberg, Type 55035, Arlington, UT) at temperatures ranging between 300 and 850 degrees C for time spans of 60, 90, and 120 min, using steam and carbon dioxide as oxidizing gases. Activated inertinite samples were then characterized by ultra-high-purity nitrogen adsorption isotherms at 77 K using a high-speed surface area and pore size analyzer (Quantachrome, Nova 2200e, Kingsville, TX). Surface area and total pore volume were determined using the Brunauer Emmet, and Teller method, for the inertinite samples, as well as for four commercially available activated carbons (gas-phase adsorbents Calgon Fluepac-B and BPL 4 x 6; liquid-phase adsorbents Filtrasorb 200 and Carbsorb 30). In addition, adsorption isotherms were developed for inertinite and the two commercially available gas-phase carbons, using methyl ethyl ketone (MEK) as an example compound. Adsorption capacity was measured gravimetrically with a symmetric vapor sorption analyzer (VTI, Inc., Model SGA-100, Kingsville, TX). Also, liquid-phase adsorption experiments were conducted using methyl orange as an example organic compound. The study showed that using inertinite from coal can be beneficially reused as an adsorbent for air or water pollution control, although its surface area and adsorption capacity are not as high as those for commercially available activated carbons. Implications: The United States currently imports two-thirds of its crude oil, leaving its transportation system especially vulnerable to disruptions in international crude supplies. UT Arlington has developed a liquefaction process that converts coal, abundant in the United States, to crude oil. This work demonstrated that the undissolvable solid coal residual from the liquefaction process, called inertinite, can be converted to an activated carbon adsorbent. Although its surface area and adsorption capacity are not as high as those for commercially available carbons, the inertinite source material would be available at no cost, and its beneficial reuse would avoid the need for disposal.  相似文献   

16.
To increase U.S. petroleum energy-independence, the University of Texas at Arlington (UT Arlington) has developed a coal liquefaction process that uses a hydrogenated solvent and a proprietary catalyst to convert lignite coal to crude oil. This paper reports on part of the environmental evaluation of the liquefaction process: the evaluation of the solid residual from liquefying the coal, called inertinite, as a potential adsorbent for air and water purification. Inertinite samples derived from Arkansas and Texas lignite coals were used as test samples.

In the activated carbon creation process, inertinite samples were heated in a tube furnace (Lindberg, Type 55035, Arlington, UT) at temperatures ranging between 300 and 850 °C for time spans of 60, 90, and 120 min, using steam and carbon dioxide as oxidizing gases. Activated inertinite samples were then characterized by ultra-high-purity nitrogen adsorption isotherms at 77 K using a high-speed surface area and pore size analyzer (Quantachrome, Nova 2200e, Kingsville, TX). Surface area and total pore volume were determined using the Brunauer, Emmet, and Teller method, for the inertinite samples, as well as for four commercially available activated carbons (gas-phase adsorbents Calgon Fluepac-B and BPL 4?×?6; liquid-phase adsorbents Filtrasorb 200 and Carbsorb 30). In addition, adsorption isotherms were developed for inertinite and the two commercially available gas-phase carbons, using methyl ethyl ketone (MEK) as an example compound. Adsorption capacity was measured gravimetrically with a symmetric vapor sorption analyzer (VTI, Inc., Model SGA-100, Kingsville, TX). Also, liquid-phase adsorption experiments were conducted using methyl orange as an example organic compound. The study showed that using inertinite from coal can be beneficially reused as an adsorbent for air or water pollution control, although its surface area and adsorption capacity are not as high as those for commercially available activated carbons.

Implications: The United States currently imports two-thirds of its crude oil, leaving its transportation system especially vulnerable to disruptions in international crude supplies. UT Arlington has developed a liquefaction process that converts coal, abundant in the United States, to crude oil. This work demonstrated that the undissolvable solid coal residual from the liquefaction process, called inertinite, can be converted to an activated carbon adsorbent. Although its surface area and adsorption capacity are not as high as those for commercially available carbons, the inertinite source material would be available at no cost, and its beneficial reuse would avoid the need for disposal.  相似文献   

17.
The retardation of radionuclides and other contaminants in fractured crystalline rock is strongly associated with the diffusive properties of the rock matrix. At present, the scientific community is divided concerning the question of long-range pore connectivity in intrusive igneous rock. This paper presents a fast new method, called the through-electromigration method, of obtaining formation factors and investigating pore connectivity. The method involves the migration of an ionic tracer through a rock sample with an electrical potential gradient as the main driving force. The method is analogous to the through-diffusion method but the experimental time is reduced by orders of magnitude. This enables investigations of pore connectivity, as measurements can be made on longer samples. In a preliminary investigation, the new method is compared to the traditional through-diffusion method as well as to rock resistivity methods. The diffusive properties of nine granitic rock samples from Laxemar in Sweden, ranging from 15 to 121 mm in length, have been investigated and the results are compared.  相似文献   

18.
Overlying water, pore water, and sediment samples were collected from the Dahuofang reservoir in November 2011 and April 2012, respectively. Total arsenic and arsenic species including arsenite, arsenate, monomethylarsonic, and dimethylarsinic were analyzed by ICP-MS and HPLC–ICP-MS. The results indicated that the environments of the Dahuofang reservoir were in reduced conditions, arsenite was the predominant species in pore water and sediments in the reservoir. Arsenic concentrations in overlying water were very low in all the samples but showed different trend during the different time. In November, arsenic concentrations in the reservoir inlet were higher than that in the other sites, whereas arsenic showed accumulation from the upstream to downstream of the reservoir in samples collected in April. In pore water, arsenic concentrations were about 23 and 37 times higher than those in overlying water in November and April, respectively, and relatively high levels of arsenite were also detected in the pore water. In surface sediments, total arsenic and arsenic species content in the reservoir inlet showed the following decreasing order: R1?>?R10?>?R4. The results also showed that moderate ecological risks exist in pore water and sediments in the Dahuofang reservoir.  相似文献   

19.
光催化降解模拟室内挥发性有机污染物研究   总被引:4,自引:1,他引:3  
用浸渍-提拉法制备玻璃弹簧负载型TiO2薄膜催化剂,在自制的反应器中进行光催化降解由丙酮、甲苯、对二甲苯组成的模拟室内挥发性有机污染物VOCs研究.研究发现:催化剂中掺杂金属离子能影响催化剂的降解效果,降解效果依次为掺铈TiO2>纯TiO2>掺银TiO2;气体流量显著影响降解效果,丙酮、甲苯和对二甲苯的最佳降解流量分别为3、5、7 L/min;混合气体中非对称性的极性分子的降解效率高于对称性分子,导致丙酮、对二甲苯组分降解率降低,甲苯降解率增高.  相似文献   

20.
采用水热法合成了掺杂纳米Bi2WO6,以罗丹明B为目标降解物,研究了样品在可见光下的光催化性能。采用XRD测试了合成样品的晶体结构,采用BET法测试了合成样品的比表面积,实验结果表明适当浓度的Pb2+、Sr3+和Zr4+离子对纳米Bi2WO6的掺杂均能提高其催化性能,其中掺杂Pb2+、Zr4+更有效,且Pb2+在1%掺杂时效果最好,Zr4+在0.5%掺杂时效果最好。而且,光催化剂在光催化过程中性能稳定,不产生光腐蚀,并具有一定的吸附性能。  相似文献   

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