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1.
杨霞  秦绍东  李加波  孙守理 《化工进展》2016,35(Z2):179-182
采用共沉淀法制备了ZrO2-Al2O3复合载体,并进一步制备了MoO3/ZrO2-Al2O3催化剂,考察了不同ZrO2质量分数对催化剂结构及其耐硫甲烷化性能的影响。利用N2物理吸附、X射线衍射、H2程序升温还原和透射电子显微镜等手段对催化剂的结构进行了表征。结果表明,MoO3/ZrO2-Al2O3中ZrO2的添加可以明显削弱MoO3与载体间的相互作用,促进Mo物种的还原,适量ZrO2的存在还有助于提高催化剂的比表面积,改善Mo活性相的分散性,使催化剂表现出优异的耐硫甲烷化活性。  相似文献   

2.
通过浸渍沉淀法分别制备Ni/Al2O3、Ni/CeO2和Ni/CeO2-Al2O3催化剂,并对其分别进行不同CO/CO2比例下COx共甲烷化性能评价。发现Ni/Al2O3催化剂催化CO转化为CH4的能力明显高于Ni/CeO2,而催化CO2甲烷化的性能则相反。采用Ni/CeO2-Al2O3催化剂,可以在提高CO转化率的同时而不降低CO2转化率。结合BET、XRD、TPR、TPD和原位红外等各种表征手段,发现CeO2掺杂虽然降低了催化剂的比表面积和金属Ni的分散度,但却可明显提高其吸附活化CO2的能力,这主要是由于具有较高含量氧空位的CeO2的掺杂可以提高载体表面碱性位,促使共甲烷过程中CO...  相似文献   

3.
杨霞  田大勇  孙守理  孙琦 《工业催化》2014,22(2):137-143
甲烷化工艺是煤制天然气的关键技术,甲烷化催化剂则是甲烷化技术的核心。Ni基催化剂具有活性高、选择性好和价格低廉等优点,但易积炭,积炭堵塞催化剂孔道,覆盖表面金属活性位,导致催化剂失活。稀土类金属氧化物(如CeO2、La2O3等)对Ni基催化剂的活性、稳定性、抗积炭性能以及活性组分的分散有明显的促进作用。采用共沉淀法制备了CeO2-La2O3复合氧化物载体,负载Ni后用于CO甲烷化反应,利用N2物理吸附、XRD、H2-TPR、XPS和TG等对催化剂结构进行表征。结果表明,Ni/CeO2-La2O3中CeO2的添加主要发挥了电子助剂的作用,CeO2的存在提高了催化剂表面Ni0周围的电子密度,促进Ni物种的还原,同时还能提高催化剂的抗积炭能力,使催化剂表现出更好的甲烷化活性与稳定性。在V(H2)∶V(CO)=1、反应温度450 ℃、空速24 000 h-1和常压下,Ni/CeO2-La2O3催化剂的CO转化率达82.7%。  相似文献   

4.
采用沉淀法制备了ZrO2载体,进一步采用浸渍法制备了不同Ni负载量的Ni/ZrO2催化剂。通过XRD、N2物理吸附、H2-TPR和H2-TPD等表征手段对Ni/ZrO2催化剂的物理结构和化学特性进行了研究,探讨了活性金属Ni物种的状态,并计算了Ni粒子的大小。随着Ni负载量的增加,Ni/ZrO2催化剂的比表面积逐渐减小,金属Ni的分散度逐渐减小,Ni粒子尺寸逐渐增大,低温H2脱附峰所占比例逐渐增大。当Ni负载量为10.2%(质量分数)时,Ni/ZrO2催化剂上ZrO2晶粒的平均尺寸和Ni粒子的尺寸大小均接近30nm。进一步考察了Ni/ZrO2催化剂在甲烷分步水蒸气重整反应中的催化性能。结果表明,Ni负载量在一定范围内的Ni/ZrO2催化剂对于甲烷分步水蒸气重整反应具有良好的催化性能,Ni负载量过高或过低均不利于甲烷的转化。当Ni负载量为10.2%时,载体ZrO2粒子和金属Ni粒子尺寸匹配,Ni/ZrO2催化剂表现出最佳的甲烷转化活性和稳定性。  相似文献   

5.
江罗  陈标华  张吉瑞 《化工学报》2012,63(11):3519-3524
用浸渍法制备了以Al2O3为载体、Ni为活性组分的Ni/Al2O3二氧化碳甲烷化催化剂,在等温固定床反应器中研究了在Ni/Al2O3催化剂作用下,高纯氯化氢中微量CO2甲烷化反应效果,并考察了温度、压力、氯化氢体积空速以及H2/CO2摩尔比对CO2转化率的影响,同时研究了催化剂活性、稳定性及其再生性能。结果表明,在温度为250℃、压力为4.0 MPa、氯化氢空速为100 h-1、H2/CO2摩尔比为500:1条件下,CO2甲烷化反应效果最好,其转化率可达到90%左右,对于高纯氯化氢中微量CO2的脱除起到很好的效果;催化剂在温度高于300℃时,反应不久后会迅速失活;催化剂再生性能只能部分恢复到新鲜水平。  相似文献   

6.
为了获得高水热稳定的负载Ni催化剂,延长催化剂在含水液相体系中的使用寿命,以不同温度焙烧的SiO2-Al2O3为载体,采用浸渍法制备Ni/SiO2-Al2O3催化剂,通过吡啶-原位傅立叶变换红外光谱、X射线衍射、NH3-程序升温脱附和H2-程序升温还原等方法进行表征,以水相1,4-丁炔二醇加氢为探针反应,研究载体焙烧温度对Ni/SiO2-Al2O3催化剂催化加氢性能及含水体系中稳定性的影响。结果表明,在(400~800) ℃,随着载体焙烧温度升高,活性组分Ni存在状态及催化剂加氢活性变化较小,但催化剂的水热稳定性下降,造成这一现象的原因是随着载体焙烧温度升高,载体表面SiO2聚集,暴露的Al3+增加,载体水合程度增大。载体焙烧温度400 ℃时,Ni/SiO2-Al2O3催化剂表现出最佳的水热稳定性。  相似文献   

7.
研究γ-Al2O3、CeO2和ZrO2负载的Mo基催化剂性质及其甲烷化性能。采用N2物理吸附、H2程序升温还原、X射线衍射和透射电镜对催化剂进行表征,使用固定床,在550 ℃、3 MPa、5 000 h-1、V(H2)∶V(CO)=1.0且含有H2S的合成气中对催化剂甲烷化性能进行测试。结果表明,3种载体中,Mo在ZrO2载体上分散度最高,甲烷化反应中Mo/ZrO2催化剂活性最高; CeO2负载的Mo相抗烧结能力最强,甲烷化反应中Mo/CeO2催化剂稳定性最好。  相似文献   

8.
孟凡会  常慧蓉  李忠 《化工学报》2014,65(8):2997-3003
采用共浸渍法制备了Ni-Mn/Al2O3催化剂,考察了助剂Mn的含量对催化剂结构及浆态床CO甲烷化性能的影响。采用XRD、H2-TPR、BET、TEM、H2-化学吸附等表征对催化剂进行了测试分析,结果表明,Mn助剂的引入能够促进Ni物种在载体表面的分散,减弱Ni物种与载体的相互作用,降低催化剂的还原温度,提高催化剂的比表面积,减小活性金属Ni的晶粒尺寸。随着Mn含量的增加,Ni-Mn/Al2O3催化剂的甲烷化性能先升后降,其中以Mn含量为4%(质量分数)时的催化甲烷化性能最佳,添加过量的Mn导致活性组分Ni被部分覆盖,催化甲烷化性能下降。通过对16Ni4Mn/Al2O3催化剂样品的浆态床反应温度及反应压力的研究发现,当反应温度为280℃、反应压力为1.5 MPa时,催化剂样品16Ni4Mn/Al2O3的CO转化率及CH4选择性分别达到96.2%和88.8%。  相似文献   

9.
耐硫甲烷化反应的研究进展   总被引:1,自引:1,他引:0       下载免费PDF全文
耐硫甲烷化工艺对含硫气氛和低H2/CO比均有良好的适应性,是甲烷化技术发展的重要方向。其中Mo基催化剂是研究最为广泛的耐硫甲烷化催化剂。重点介绍了Al2O3、ZrO2、CeO2和CeO2-Al2O3载体以及CoO、NiO助剂对Mo基催化剂耐硫甲烷化性能的影响;分析了催化剂的硫化机理以及CoO、NiO助剂和CeO2载体在硫化过程中的作用,指出硫化温度是影响催化剂的物种分布和催化性能的重要因素;阐述了耐硫甲烷化反应的机理;对甲烷化催化剂的研究方向进行展望。  相似文献   

10.
利用等体积浸渍法制备了不同金属改性载体的Ni/MxOy-Al2O3(M:Mg、La、Ce)催化剂,以四氢呋喃(THF)为模型化合物,对Ni/MxOy-Al2O3催化剂催化降解THF制氢活性进行评价。结果表明,添加助剂Ce、La、Mg后,THF转化率分别提高了12.7%、32.8%和31.0%。利用N2物理吸附、X射线衍射(XRD)和氢气程序升温还原(H2-TPR)等方法对不同载体的Ni/MxOy-Al2O3催化剂进行表征。结果表明,La、Ce、Mg的添加减弱了NiO与载体的相互作用,使得催化剂还原温度降低;La、Mg的氧化物高度分散于催化剂表面,但CeO2-Al2O3复合载体在2θ为28.6°和56.3°处出现了CeO...  相似文献   

11.
二氧化碳甲烷化催化剂的研究进展   总被引:1,自引:0,他引:1  
崔凯凯  周桂林  谢红梅 《化工进展》2015,34(3):724-730,737
CO2催化加氢甲烷化反应是温室气体CO2资源化利用的有效途径之一。本文回顾了CO2催化加氢甲烷化催化剂的研究现状, 其中Ni基催化剂是研究最为广泛的CO2甲烷化催化剂。重点介绍了Al2O3、SiO2和La2O3载体及CeO2和La2O3助剂等对Ni基催化剂CO2甲烷化性能的影响, 阐述了载体的结构、电子性能、化学性能和助剂等对Ni基催化剂CO2甲烷化性能的影响。结合几种非Ni基CO2甲烷化催化剂的对比研究发现, 具有有序介孔结构的Co基催化剂也表现出了优越的CO2甲烷化性能。由此表明, 催化剂新颖的结构也是影响CO2甲烷化性能的重要因素, 通过催化剂结构、组成等的调变, 能实现CO2低温高效甲烷化, 为CO2甲烷化工业化进程奠定基础。  相似文献   

12.
Large surface areas nano-scale zirconia was prepared by the self-assembly route and was employed as support in nickel catalysts for the CO selective methanation. The effects of Ni loading and the catalyst calcination temperature on the performance of the catalyst for CO selective methanation reaction were investigated. The cata- lysts were characterized by Brunauer-Emmett-Teller (BET), transmission electron microscope (TEM), X-ray dif- fraction (XRD) and temperature-programmed reduction (TPR). The results showed that the as-synthesized Ni/nano-ZrO2 catalysts presented high activity for CO methanation due to the interaction between Ni active particle and nano zir- conia support. The selectivity for the CO methanation influenced significantly by the particle size of the active Ni species. The exorbitant calcination resulted in the conglomeration of dispersive Ni particles and led to the decrease of CO methanation selectivity. Among the catalysts studied, the 7.5% (by mass) Ni/ZrO2 catalyst calcinated at 500℃ was the most effective for the CO selective methanation. It can preferentially catalyze the CO methanation with a higher 99% conversion in the CO/CO2 competitive methanation system over the temperature range of 260-280℃, while keeping the CO2 conversion relatively low.  相似文献   

13.
采用分步浸渍法制备了碱/碱土金属修饰Ni基催化剂Ni-M/Al2O3 (M=K2CO3, Na2CO3, MgO, CaO)。探究了碱/碱土金属的添加对改性Ni基催化剂CO2吸附和甲烷化性能的影响。研究发现,碱/碱土金属的添加提高了Ni/Al2O3催化剂表面的碱性活性位点密度,强化了其CO2吸附性能。碱/碱土金属类型影响Ni-M/Al2O3催化剂碱性活性位点的分布、NiO物相的转化及Ni的分散度,进而影响其甲烷化性能。MgO添加使NiO物相转化为与载体呈强相互作用的β型和γ型NiO,降低了催化剂表面的强碱性活性位点比例,有利于CO2吸附活化。Ni-MgO/Al2O3的CO2吸附容量最高为0.68mmolCO2/g,其CO2转化率和CH4选择性分别高达58.4%和95.4%,其在烟气CO2捕集与原位甲烷化中极具应用前景。  相似文献   

14.
王燕霞  胡修德  郝健  郭庆杰 《化工学报》2020,71(5):2333-2343
以商业煤基活性炭为原料,经低浓度氧气焙烧、H2O2氧化改性,并以四乙烯五胺(TEPA)浸渍,得到胺负载复合氧化活性炭,用于模拟烟道气[(15%(体积)CO2+85%(体积)N2)+10%(体积)H2O]中CO2吸附。低浓度氧气焙烧后,活性炭的最大比表面积和孔体积分别为1421.82 m2/g、0.83 cm3/g。经复合氧化改性后,活性炭的介孔体积增大,表面含氧官能团增加,使得TEPA负载复合氧化活性炭的CO2吸附性能提高。焙烧时间为4 h,H2O2氧化、负载40%TEPA的样品COAC-4-40TEPA,在60℃时CO2饱和吸附量最高为2.45 mmol/g,是TEPA负载未改性活性炭AC-40TEPA的2.02倍。经过十次吸附循环后,COAC-4-40TEPA的 CO2饱和吸附量可维持在92.24%,而TEPA的浸出量仅有0.67%。失活模型研究表明,COAC-4-40TEPA的初始吸附速率常数是AC-40TEPA的1.64倍,且失活速率常数低于AC-40TEPA。  相似文献   

15.
MgO-promoted Ni/Al2O3 catalysts have been investigated with respect to catalytic activity and coke formation in combined steam and carbon dioxide reforming of methane (CSCRM) to develop a highly active and stable catalyst for gas to liquid (GTL) processes. Ni/Al2O3 catalysts were promoted through varying the MgO content by the incipient wetness method. X-ray diffraction (XRD), BET surface area, H2-temperature programmed reduction (TPR), H2-chemisorption and CO2-temperature programmed desorption (TPD) were used to observe the characteristics of the prepared catalysts. The coke formation and amount in used catalysts were examined by SEM and TGA, respectively. H2/CO ratio of 2 was achieved in CSCRM by controlling the feed H2O/CO2 ratio. The catalysts prepared with 20 wt.% MgO exhibit the highest catalytic performance and have high coke resistance in CSCRM. MgO promotion forms MgAl2O4 spinel phase, which is stable at high temperatures and effectively prevents coke formation by increasing the CO2 adsorption due to the increase in base strength on the surface of catalyst.  相似文献   

16.
The catalytic activity of Pt on alumina catalysts, with and without MnOx incorporated to the catalyst formulation, for CO oxidation in H2-free as well as in H2-rich stream (PROX) has been studied in the temperature range of 25–250 °C. The effect of catalyst preparation (by successive impregnation or by co-impregnation of Mn and Pt) and Mn content in the catalyst performance has been studied. A low Mn content (2 wt.%) has been found not to improve the catalyst activity compared to the base catalyst. However, catalysts prepared by successive impregnation with 8 and 15 wt.% Mn have shown a lower operation temperature for maximum CO conversion than the base catalyst with an enhanced catalyst activity at low temperatures with respect to Pt/Al2O3. A maximum CO conversion of 89.8%, with selectivity of 44.9% and CO yield of 40.3% could be reached over a catalyst with 15 wt.% Mn operating at 139 °C and λ = 2. The effect of the presence of 5 vol.% CO2 and 5 vol.% H2O in the feedstream on catalysts performance has also been studied and discussed. The presence of CO2 in the feedstream enhances the catalytic performance of all the studied catalysts at high temperature, whereas the presence of steam inhibits catalysts with higher MnOx content.  相似文献   

17.
考察B2O3负载量对于MoO3/CeO2-Al2O3催化剂对耐硫甲烷化活性的影响,利用BET、XRD、TEM、NH3-TPD等手段对催化剂进行了表征。结果表明,催化剂的耐硫甲烷化活性随B2O3负载量增加呈现先升高后降低的变化规律;当B2O3负载量为0.5%时,催化剂的耐硫甲烷化活性最高,CO转化率达到55%。结合表征分析,发现添加B2O3会影响催化剂载体的结构和表面酸度,从而影响活性组分的分散程度,进而影响MoO3/CeO2-Al2O3催化剂的耐硫甲烷化性能。催化剂的晶化程度太高或单位面积上的强酸量太多均不利于甲烷化反应;较好的活性组分分散度有利于催化剂甲烷化活性的提高。  相似文献   

18.
The performance characteristics of isothermal fluidized bed syngas methanation for substitute natural gas are investigated over a self-made Ni–Mg/Al2O3 catalyst. Via atmospheric methanation in a laboratory fluidized bed reactor it was clarified that the CO conversion varied in 5% when changing the space velocity in 40–120 L·g?1·h?1 but the conversion increased obviously by raising the superficial gas velocity from 4 to 12.4 cm·s?1. The temperature at 823 K is suitable for syngas methanation while obvious deposition of uneasy-oxidizing Cγoccurs on the catalyst at temperatures around 873 K. From a kinetic aspect, the lowest reaction temperature is suggested to be 750 K when the space velocity is 60 L·g?1·h?1. Raising the H2/CO ratio of the syngas increased proportionally the CO conversion and CH4 selectivity, showing that at enough high H2/CO ratios the active sites on the catalyst are sufficient for CO adsorption and in turn the reaction with H2 for forming CH4. Introducing CO2 into the syngas feed suppresses the water gas shift and Boudouard reactions and thus increased H2 consumption. The ratio of CO2/CO in syngas should be better below 0.52 because varying the ratio from 0.52 to 0.92 resulted in negligible increases in the H2 conversion and CH4 selectivity but decreased the CH4 yield. Introducing steam into the feed gas affected little the CO conversion but decreased the selectivity to CH4. The tested Ni–Mg/Al2O3 catalyst manifested good stability in structure and activity even in syngas containing water vapor.  相似文献   

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