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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.
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   

3.
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   

4.
考察了经10% H2-90% Ar(体积分数)还原的钒硅催化剂在固定床石英玻璃反应器中的脱硫脱硝活性,研究了反应温度、SO2/NO摩尔比及O2浓度对SO2和NO脱除率的影响.结果表明,还原后的钒硅催化剂的平均NO脱除率提高了15%左右;反应温度对脱硫脱硝影响较大,当温度为400℃以上时SO2和NO脱除率基本保持稳定;SO2/NO摩尔比为2和5时,钒硅催化剂的NO脱除率较高;模拟烟气中有O2条件下的脱硫脱硝活性明显高于无O2条件,O2体积分数为6.00%时SO2和NO脱除率达到最大.  相似文献   

5.
以活性炭为载体,采用等体积浸渍法制备了负载型磷钨酸催化剂,并将其应用于NH3-SCR法低温脱硝。研究了磷钨酸(HPW)负载量和焙烧温度对脱硝性能的影响,通过BET、XRD和FT-IR等方法对催化剂进行了表征和机理研究。研究结果表明,HPW与载体活性炭之间存在着键合作用,且其在活性炭上存在的物相状态与负载量有关;研究焙烧温度时发现,负载在活性炭上的HPW随着焙烧温度的升高而逐渐发生分解;在NH3-SCR法脱硝反应中,催化剂的焙烧温度和HPW负载量对催化剂的脱硝性能有很大影响,通过XRD和FT-IR表征发现,活性炭上HPW晶相的出现和HPW的分解均不利于反应的进行。实验得到炭基HPW制备的最佳焙烧温度为400℃,负载量为30%,用于NH3-SCR法脱硝在反应温度为200℃时,NO转化率可达80.8%。  相似文献   

6.
采用浸渍法制备了不同负载量的Ni(x)Fe(y)/γ-AL2O3催化剂,通过XRD、H2-TPR、BET和SEM对催化剂进行表征,使用微型催化反应装置考察催化剂在以CO作为还原气时,同时脱硫脱硝的催化活性。结果表明,Ni O和Fe2O3做为活性组分可以很好地分散在γ-Al2O3载体上,并且不破坏其结构;Ni(8)Fe(2)/γ-Al2O3催化剂有最佳的脱硫脱硝活性,脱硫率达到96.55%,脱硝率达到97.92%。  相似文献   

7.
以酸改性凹凸棒土(ATP)为载体,活性炭为添加剂,制备负载铜、锰过渡金属氧化物的凹凸棒土-活性炭催化剂。以印染废水生化处理后出水的COD和色度为处理对象,考察了不同的催化氧化条件,即凹凸棒土与活性炭的比例、pH、H_2O_2和催化剂的投加量对印染废水深度处理效果,并利用SEM、XRD对催化剂进行表征。结果表明:在室温25℃时,催化剂载体中凹凸棒土与活性炭的比例为2∶1,H_2O_2加入量为理论加入量的2倍,即2.4 mL·L~(-1),pH值为4,催化剂的使用量为15 g·L~(-1)时,COD和色度的去除率最佳,分别达到93%和90%。扫描电镜结果表明铜、锰以颗粒的形式负载在催化剂的表面,XRD结果表明在催化剂载体表面,活性组分的存在形式为CuO、MnO_2。  相似文献   

8.
以溶胶凝胶法制备的30Al_2O_3/β-40为载体,采用浸渍法制备出负载不同金属氧化物的催化剂。采用XRD、H_2-TPR、BET对催化剂结构和性质进行表征,以CO为还原剂考察催化剂的脱硫脱硝活性。结果显示12%Ni0/30%Al_2O_3/β-40脱硫脱硝活性最佳,500℃时NO、SO_2转化率均可达到90%以上。  相似文献   

9.
Ce-Fe/ACF催化剂低温选择性催化还原NO的研究   总被引:7,自引:4,他引:3  
以ACF作为载体制备了一系列不同质量分数的CeO2和Fe2O3混合负载型催化剂,研究了它们催化净化NO的低温活性和活性的稳定性。同时,对比研究了CeO2/ACF和Ce-Fe/ACF净化NO的能力。活性实验结果表明,催化剂中加入Fe2O3作为助催化,能使催化剂活性、稳定性等得到明显改善。反应温度为80~120℃时,比相同质量分数CeO2/ACF催化剂的NO脱除效率提高幅度最大达到18.11%,增幅度较大;随着反应温度的升高,催化剂的脱硝效率提高幅度趋小,反应温度为200℃时,两者相比,NO脱除效率仅提高1.98%;而后随着温度的攀升,催化剂的脱硝效率提高幅度又慢慢趋大,且其效率平稳。  相似文献   

10.
针对目前低温脱硝催化剂抗硫抗水性较差的不足,以TiO_2为载体负载活性组分V_2O_5,利用磷酸调控表面酸性,制备了磷酸氧钒催化剂VPO/TiO_2,并实验研究了SO_2和水蒸气对其脱硝活性的影响。结果表明:控制P与V的摩尔比为1/5,活性组分(VPO)负载量为10%,焙烧温度为400℃时,催化剂脱硝性能最好,180~400℃温度范围内脱硝率高于98%;反应温度为200℃,烟气中SO_2体积分数为200×10~(-6)~800×10~(-6)和水蒸气体积分数为4%时,催化剂的活性无明显下降。添加磷酸能够促使催化剂表面生成VOPO_4、(VO)_2P_2O_7及V~(4+)/V~(5+)氧化还原电对,提高了催化剂的低温脱硝活性。磷酸可增强催化剂的表面酸性,减少了SO_2的表面吸附及其与活性组分的反应。另外,催化剂表面以介孔为主,可提高未被水分子占据的活性位点量,FT-IR图谱显示抗硫抗水测试后的VPO/TiO_2表面未发现有硫酸根生成,VPO/TiO_2表现出较强的抗SO_2和水蒸气毒化的性能。负载型磷酸氧钒催化剂具有较高的脱硝活性和较强的抗硫抗水性能。  相似文献   

11.

The Mn/Co mixed powders with various Mn/Co molar ratios were prepared by the coprecipitation method and used in low-temperature CO oxidation. The physicochemical characteristics of these powders were characterized using the Brunauer-Emmett-Teller (BET), X-ray diffraction (XRD), temperature-programmed reduction (TPR), and scanning electron microscopy (SEM) analyses. The results demonstrated that the Mn/Co molar ratio significantly affected both the textural and catalytic properties and the sample with a Mn/Co = 1:1 possessed a BET area of 123.7 m2g−1 with a small mean pore size of 6.44 nm. The catalytic results revealed that the pure cobalt and manganese catalysts possessed the low catalytic activity and the pure Co catalyst is not active at temperatures lower than 140 °C. The highest catalytic activity was observed for the catalyst with a Mn/Co = 1. The obtained results showed that the incorporation of Pd into the Mn/Co catalyst significantly enhanced the catalytic activity for oxidation of carbon monoxide and the highest CO conversion was observed for the catalyst with 1 wt.% Pd and this catalyst exhibited a CO conversion of 100% at 80 °C.

  相似文献   

12.
Abstract

This paper concerns the incineration of isopropyl alcohol (IPA) using the ferrospinel catalyst MnFe2O4. It covers the preparation of the ferrospinel catalyst, the screening of catalytic activity, catalytic incineration testing, and 72-hr decay testing of the catalyst. The experimental results of catalyst screening reveal that the Mn/Fe catalyst is the best of five prepared catalysts (chromium/iron [Cr/Fe], manganese/iron [Mn/Fe], zinc/iron [Zn/Fe], nickel/iron [Ni/Fe], and pure magnetite [Fe3O4]). In tests of the catalytic incineration system used to convert IPA, 98% conversion was obtained at a space velocity of 24,000 hr?1, an oxygen (O2) content of 21%, 1700 ppm of IPA, and a reaction temperature of 200 °C.  相似文献   

13.
A series of manganese-cerium oxide (MnOx-CeO2) catalysts supported by Ti-bearing blast furnace slag were prepared by wet impregnation and used for low-temperature selective catalytic reduction (SCR) of NO with NH3. The slag-based catalyst exhibited high nitrogen oxide removal (deNOx) activity and wide effective temperature range. Under the condition of NO = 500 ppm, NH3 = 500 ppm, O2 = 7–8 vol%, and total flow rate = 1600 mL/min, the Mn-Ce/Slag catalyst exhibited a NO conversion higher than 95% in the range of 180–260 °C. The activity of Mn/Slag catalysts was greatly enhanced with the addition of CeO2. The results indicated that Ti-bearing blast furnace slag had suitable phase composition as good support of SCR catalyst.

Implications: Ti-bearing blast furnace slag is a kind of industrial waste in China. Much slag was underused and piling up, which could cause many environmental issues, such as enormous waste of titanium and groundwater and soil contamination by heavy metals in leachates. The utilization of slag as the support of SCR catalyst will not only make use of solid waste but also cut down the NOx emitted from power plant.  相似文献   


14.
In this study, the authors investigated the influence of the valence state of Mn on the efficacy of selective catalytic reduction using a Mn-based catalyst. The nitrogen oxides (NOx) conversion rate of the catalyst was found to be dependent on the type of TiO2 support employed and on the temperature, as the catalyst showed an excellent conversion of > 80% at a space velocity of 60,000 hr?1 when the temperature was above 200 °C. Brunauer-Emmett-Teller, X-ray diffraction, and X-ray photoelectron spectroscopy analyses confirmed that catalyst displaying the highest activity contained the Mn4+ species and that its valence state was highly dependent on the pH during the catalyst preparation.
Implications Recently, various Mn catalysts have been evaluated as selective catalyst reduction (SCR) catalysts. However, in these previous studies, only the reaction characteristics and catalytic activity on the NH3 SCR over Mn catalysts were evaluated. There have been no studies on the effect of pH during catalyst preparation. Therefore, in this study, the effect of pH during the catalyst preparation process was examined and a new application of the Mn catalysts was proposed based on the current findings.  相似文献   

15.
A series of iron–manganese oxide catalysts supported on TiO2 and titanium nanotubes (TNTs) were studied for low temperature selective catalytic reduction (SCR) of NO with NH3 in the presence of SO2. The results showed that the specific surface area and the amount of Brønsted acid sites were highly correlated. The results also demonstrated that higher Mn4+/Mn3+ ratios and larger specific surface areas might be the main reasons for the excellent performance of MnFe-TNTs catalyst after SO2 poisoning. The SO2 poisoning effect could be minimized by reducing the GHSV, increasing the reaction temperature, or increasing the [NH3]/[NO] molar ratio. The results also indicated that the formation of ammonium sulfate had a stronger effect on the NO conversion efficiency as compared to the formation of metal sulfate. Thus operating the low temperature SCR at above 230 oC to avoid the formation of ammonium sulfate would be the priority choice when SO2 poisoning is a concerned issue.?Implications: Low-temperature selective catalytic reduction (SCR) has attracted increasing attention due to that it can reduce the energy consumption for the SCR process employed in industries such as steel plants and glass manufacturing plants. However, it also suffers from the sulfur dioxide (SO2) poisoning problem. This study investigates the possibility of using titania nanotubes (TNTs) as the support of Mn/Fe bimetal oxide catalysts for low-temperature SCR to reduce the SO2 poisoning. The results indicated that the MnFe-TNT catalyst can tolerate SO2 for a longer time as compared with the MnFe-TiO2 catalyst.  相似文献   

16.
A hybrid selective noncatalytic reduction/selective catalytic reduction (SNCR/SCR) system that uses two types of technology, low-temperature SCR process and SNCR process, was designed to develop nitrogen oxide (NOx) reduction technology. SCR was conducted with space velocity (SV) = 2400 hr?1 and hybrid SNCR/SCR with SV = 6000 hr?1, since the study focused on reducing the amount of catalyst and both achieved 98% NOx reduction efficiency. Characteristics of NOx reduction by NH3 were studied for low-temperature SCR system at 150 °C using Mn-V2O5/TiO2 catalyst. Mn-added V2O5/TiO2 catalyst was produced, and selective catalyst reduction of NOx by NH3 was experimented. NOx reduction rate according to added Mn content in Mn-V2O5/TiO2 catalyst was studied with varying conditions of reaction temperature, normalized stoichiometric ratio (NSR), SV, and O2 concentration. In the catalyst experiment according to V2O5 concentration, 1 wt.% V2O5 catalyst showed the highest NOx reduction rate: 98% reduction at temperature window of 200~250 °C. As a promoter of the V2O5 catalyst, 5 wt.% Mn was added, and the catalyst showed 47~90% higher efficiency even with low temperatures, 100~200 °C. Mn-V2O5/TiO2 catalyst, prepared by adding 5 wt.% Mn in V2O5/TiO2 catalyst, showed increments of catalyst activation at 150 °C as well as NOx reduction. Mn-V2O5/TiO2 catalyst showed 8% higher rate for NOx reduction compared with V2O5/TiO2 catalyst in 150 °C SCR. Thus, (5 wt.%)Mn-(1 wt.%)V2O5/TiO2 catalyst was applied in SCR of hybrid SNCR/SCR system of low temperature at 150 °C. Low-temperature SCR hybrid SNCR/SCR (150 °C) system and hybrid SNCR/SCR (350 °C) showed 91~95% total reduction rate with conditions of SV = 2400~6000 hr?1 SCR and 850~1050 °C SNCR, NSR = 1.5~2.0, and 5% O2. Hybrid SNCR/SCR (150 °C) system proved to be more effective than the hybrid SNCR/SCR (350 °C) system at low temperature.

Implications:?NOx control is very important, since they are the part of greenhouse gases as well as the cause of acid rain and ozone hole. A technology, so-called hybrid SNCR/SCR process, was tested using Mn-V2O5/TiO2 monolithic catalyst for NOx reduction, and the method is promising. The results of this study would provide some ideas to parties such as policy makers, environmental engineers, and so on.  相似文献   

17.
用于气态零价汞转化的催化剂研究   总被引:4,自引:0,他引:4  
零价汞的高效去除是燃煤烟气汞污染控制过程中的关键环节。为了促进烟气中的零价汞转化为易于去除的氧化态汞,分别考察了在有HCl存在时,几种过渡金属氧化物(Cu、Fe、Mn、Co和Zr)对零价汞氧化的催化作用,以筛选出性能较好的催化组分;为提高催化剂的抗SO2性能,分别尝试了利用几种金属元素(Sr、Ce、W和Mo)对催化剂进行掺杂改性的方法。结果表明,锰氧化物的催化作用最好,其最佳使用温度在573 K左右;SO2对零价汞的催化氧化有明显抑制作用,在无SO2及1 400 mg/m3SO2时锰催化剂对零价汞催化氧化效率分别为93%和78%。而Mo改性的锰氧化物催化剂的抗硫性能大幅提高,在1 400 mg/m3SO2存在的情况下其对零价汞的催化氧化效率可达到90%以上,较其他改性元素高。  相似文献   

18.
通过正交实验,研究pH值、反应时间、锰砂投加量和锰砂改性时间等因素对Mn2+吸附效果的影响。结果表明,在25℃,吸附反应体系pH=9,锰砂投加量为15 g/L,吸附时间为30 min,锰砂的高锰酸钾改性时间为36 h时,改性锰砂对锰的吸附去除率最高,达到了99.99%。四因素的影响顺序为:pH>反应时间>锰砂投加量>锰砂改性时间。在单因素实验中,当pH=7,吸附剂投加量为25 g/L时,经60 min可达吸附平衡,锰的去除率为60.04%,其等温吸附符合Freundlich和Langmuir模型,并且与Langmuir模型的拟合程度更高。本研究还对改性锰砂吸附除锰的机理做了初步探讨。  相似文献   

19.
ABSTRACT

This study investigated the effect of adding vanadium (V) to natural manganese oxide (NMO) in ammonia (NH3) selective catalytic reduction (SCR). The addition of V to NMO decreased the catalytic activity at low temperatures by blocking the active site. However, the enhancement of catalytic activity was achieved by controlling NH3 oxidation at high temperatures. From the NH3 temperature programmed desorption and oxygen on/off test, it was confirmed that the amount of Lewis acid site and active lattice oxygen of the catalyst affects the catalytic performance at low temperature

IMPLICATIONS Recently, NMO and manganese oxide have been reported as SCR catalysts. They usually have only reported the reaction characteristics and catalytic activity on the NH3 SCR over NMO or manganese/metal oxide catalysts. There are no studies about the effect of addition of V to NMO. Therefore, this study investigates the catalytic activity and reaction characteristics on the NH3 SCR over NMO and V/NMO, and a new application is proposed based on the conclusions of this study.  相似文献   

20.
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   

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