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1.
采用浸渍法制备了Ni、Mg双金属负载在堇青石表面形成的蜂窝状催化剂,研究了焙烧温度对催化剂结构和生物质粗燃气重整反应性能的影响.结果表明,在不同焙烧温度下主要有NiO和NiMgO2固溶体物相生成.相比于其他焙烧温度,催化剂在650 ℃焙烧温度下更有利于镍活性金属位的分散和活性位数量的增加.在干重整反应条件下,CH4、CO2的转化率以及H2、CO产率随焙烧温度的升高呈现先增加后降低的变化趋势,在650 ℃焙烧温度下达到最高.在水蒸气重整反应条件下主要发生烃类产物与H2O和CO2的重整反应以及水煤气变换反应,焙烧温度的升高有利于水煤气反应的进行.此外,焙烧温度对于干重整反应条件下的H2/CO体积比调节影响较小,而对于水蒸气重整反应条件下的H2/CO体积比可进行选择性调节.  相似文献   

2.
以生物油为原料,在常压和空气氛围下进行非催化部分氧化气化实验制备合成气,考察了气化温度、氧油比对合成气形成特性及合成气品质的影响,并对生物油非催化部分氧化气化制备合成气的主要反应过程进行了讨论。结果表明,升高温度可以促进生物油经非催化部分氧化气化制合成气过程中相关转化反应的进行,合适的氧油比有利于合成气的增加。当温度为1 050℃,空气量为0.2 L/min,进料量为72 g/h时,生物油经部分氧化产生的气体中H2含量最高,CH4、CO和CO2很少;H2/CO和H2/(CO+CO2)均达到最大值,分别为4.3和3.2。  相似文献   

3.
采用浸渍法制备了Ni基整体式催化剂,考察了不同条件(温度、时间、空速、水蒸气添加等)对催化剂上生物质粗燃气重整反应性能的影响。结果表明,催化剂在较低温度下(≤500 ℃)只具有CO加氢反应活性,随着反应温度的升高粗燃气重整反应逐渐进行,在800 ℃以上,CH4和C2转化率均高达95 %以上,CO2转化率达到92%,但随着反应空速和水蒸气添加量的增加,CH4和CO2等转化率呈现缓慢降低的趋势。此外,通过改变水蒸气添加量可对合成气中H2/CO体积比在0.85~4.00进行较好调节。结合XRD表征发现,Ni基整体式催化剂中Ni°的生成可较好地促进重整反应的进行。  相似文献   

4.
Ni-Mg-ZrO2催化剂上煤层甲烷三重整制合成气   总被引:2,自引:0,他引:2  
采用共沉淀法制备Ni-ZrO2和Ni-Mg-ZrO2催化剂,用BET、XRD、H2-TPR、CO2-TPD等技术对催化剂进行了表征。采用固定床流动反应装置,研究了催化剂在煤层甲烷三重整制合成气反应中的催化性能;考察了反应温度和原料气体组成对反应的影响。实验结果表明,Ni-Mg-ZrO2催化剂在反应温度800℃、常压、空速为30 000 mL/(g·h)、CH4/CO2/H2O/O2/N2=1.0/0.45/0.45/0.1/0.4的条件下,CH4转化率为99%,CO2转化率为65%左右,生成合成气H2/CO体积比为1.5,并在58 h的实验中催化剂活性和稳定性良好。这主要归因于催化剂中金属和载体之间的强相互作用、催化剂的高热稳定性和强碱性。此外,较高的反应温度有利于甲烷三重整反应的进行;通过调节原料气组成,可以获得不同H2/CO体积比的合成气。  相似文献   

5.
对甲烷自热重整进行了系统的热力学分析,并采用预混合层流模型结合甲烷氧化、蒸汽重整、干重整机理对反应过程进行了动力学分析。结果表明,甲烷自热重整的平衡产物及其浓度主要受温度、O2/CH4、H2O/CH4的影响;压力影响不是十分明显,主要影响达到平衡的速度。在715℃~730℃、压力0.7MPa~1.0MPa,控制O2/CH4在0.60~0.70、H2O/CH4在3.15~3.25,可以得到H2>68%、CO<10%的产物气,积炭率接近于0。动力学分析表明,自热重整过程分为两个主要阶段进行,在起始阶段主要发生甲烷氧化反应,产物主要为H2O和CO2;第二阶段以甲烷蒸汽重整反应为主,伴随水气变换反应(WGS)和微弱的干重整,H2CO和CO2为主要产物。调节初始水浓度可以控制快速氧化阶段反应速率,避免“热点”出现,抑制CO的生成。  相似文献   

6.
以葡萄糖酸钙与葡萄糖酸镁及L-乳酸铝为前驱物,湿法制得了四种CaO/MgO和CaO/Ca9Al6O18吸收剂,并进行了同时捕集CO2/SO2的实验。考察了吸收剂种类、质量配比、SO2浓度及煅烧温度等对吸收剂吸收性能的影响。结果表明,CaO/MgO(质量比为75%/25%)吸收剂和CaO/Ca9Al6O18(质量比为75%/25%)吸收剂分别保持了最好的吸收CO2能力和最好的循环稳定性。SO2严重阻碍了吸收剂对CO2的捕集。SO2浓度越高,吸收剂吸收CO2能力下降的越快,但同时吸收SO2的转化率也越高。数次循环后,总的Ca利用率开始上升,且SO2浓度越高,上升趋势越明显。煅烧温度对CaO/MgO吸收剂和CaO/Ca9Al6O18吸收剂循环吸收特性的影响略有不同。  相似文献   

7.
共沉淀法制备CeZrYLa+LaAl 复合氧化物载体, 等体积浸渍法制备了Pt 催化剂, 用于研究理论空燃比天然气汽车(NGVs)尾气净化反应中CH4与NO的反应规律. 并考察了10% (体积分数, φ)H2O和计量比O2对CO2存在时的CH4+NO反应的影响. 结果表明: 对于不同条件下的NO+CH4反应, 主要生成N2和CO2, 高温区有CO生成. 低温区无O2时可以生成N2O, 有O2时可以生成NO2; 添加10% (φ)的H2O后, CH4 转化活性降低, NO转化活性基本不变, 这是由于H2O减弱了CH4与CO2的重整反应, 但是对CH4与NO的反应基本没有影响; 添加计量比的O2后, CH4转化活性提高, 而NO转化活性降低, 这是由于O2和NO之间存在竞争吸附, CH4被O2氧化为主要反应, 从而减弱了NO的转化; 同时添加计量比的O2和10% (φ) H2O, CH4与CO2的重整反应受到抑制,CH4与NO的反应、甲烷蒸汽重整反应和甲烷被O2氧化反应同时发生, CH4和NO的转化活性均提高.  相似文献   

8.
利用共沉淀法,制备一系列在凹凸棒土上负载不同含量的NiO-Fe2O3催化剂。以乙酸、乙醇和苯酚的水溶性溶液为生物油模型物,在自制的三段式固定床反应器中,考察了NiO-Fe2O3的负载量、反应温度、水碳比(S/C)对生物油模型物重整制氢的影响。结果表明,所获得的氢气产率最高的工艺条件为,在650℃条件下,以水碳比8~10的生物油模型为实验原料,使用自制的50%NiO-50%Fe2O3/PG型催化剂,可使气体产物中H2的相对含量达到最大66.15%。  相似文献   

9.
采用共沉淀法制备了一系列具有类水滑石结构前驱体的Ni/CaO-Al2O3复合催化剂,考察了制备过程中焙烧温度对复合催化剂结构及性能的影响。结果表明,焙烧温度可调控活性组分Ni与载体之间的相互作用力,进而调变复合催化剂的比表面积、活性组分Ni的颗粒粒径。当焙烧温度为700 ℃时,Ni与载体之间相互作用力适宜,复合催化剂具有最大的比表面积(21.42 m2/g)和最小的Ni颗粒粒径(19.51 nm);该复合催化剂在CO2吸附强化CH4/H2O重整制氢过程中可得到98.31%的H2浓度和94.87%的CH4转化率,循环10次后,H2浓度仍能保持在97.35%以上。这是因为大的比表面积为反应提供了更多的活性位点,利于CO2吸附过程的强化,而小的Ni颗粒粒径提高了复合催化剂的抗烧结能力。  相似文献   

10.
刘瑞  敬方梨  罗仕忠 《合成化学》2017,25(11):898-903
以硝酸盐作为前驱体,Al2O3为载体,采用等体积浸渍法制备了系列不同助剂(Mn, Co, Ce)及不同助剂含量(1%, 3%, 5%, 7%, 10%)掺杂的铬基催化剂,其结构经X-射线粉末衍射(XRD)、 H2程序升温还原(H2-TPR)和CO2程序升温脱附(CO2-TPD)表征。并考察了催化剂对乙烷氧化脱氢反应的催化性能。结果表明:添加Co助剂有利于活性组分铬的分散,10Cr3Co/γ-Al2O3催化剂表现出最佳催化性能,在反应温度为650 ℃, V(CO2) :V(C2H6)=3 :1,空速(GHSV)为3 600 mL·(g·h)-1条件下,在该催化剂上乙烯产率为36.5%。  相似文献   

11.
The bio-oil derived from pyrolysis of straw can be selectively converted into high-purity hydrogen by coupling three steps:(i)steam refonning(SR)of di tierent bio-oils,(ii)water-gas shift(WGS),and(iii)the removal of CO2.the catalytic SR reaction over the NiLaTiAl catalyst,coupled with a low-temperature WGS reaction with the CuZnAl catalyst,promoted the conversion of various oxygen-contaming organic compounds in the bio-oil into hydrogen and carbon dioxide.Under the optimized condition,light bio-oil achieved the highest conversion(99.8%,molar fraction),with a high hydrogen yield of 16.4%(mass traction)and a H2 purity of 99.94%(volume fraction).The carbon deposition on the NiLaTiAl catalyst was the main factor caused catalyst deactivation.Production of hydrogen from different bio-oil model compounds was also investigated in detail.  相似文献   

12.
Autothermal steam reforming (ATR) of bio-oil, which couples the endothermic steam reform-ing reaction with the exothermic partial oxidation, offers many advantages from a technical and economic point of view. Effective production of hydrogen through ATR of bio-oil was performed at lower temperature with NiCuZnAl catalyst. The highest hydrogen yield from bio-oil reached 64.3% with a nearly complete bio-oil conversion at 600 oC, the ratio of steam to carbon fed (S/C) of 3 and the oxygen to carbon ratio (O/C) of 0.34. The reaction con-ditions in ATR including temperature, O/C, S/C and weight hourly space velocity can be used to control both hydrogen yield and products distribution. The comparison between the ATR and common steam reforming of bio-oil was studied. The mechanism of the ATR of bio-oil was also discussed.  相似文献   

13.
制备了Ni/Al2O3、Ni-Cu/Al2O3、Ni-Co/Al2O3和Ni-Co-Cu/Al2O3催化剂,研究了Co和Cu对生物油水蒸气催化重整的影响。实验表明,Co 能促进水汽变换(WGS)反应,提高氢气的产率,Cu能抑制反应中焦炭的形成,提高催化剂的稳定性。对催化剂Ni-Co-Cu/Al2O3进行工艺条件考察,当900 ℃、水油比为6 g/g、质量空速(WHSV)为1 h-1时,碳选择性达到87.5%,氢气产率达到84.2%,潜在氢气产率达到92.4%。  相似文献   

14.
氢气作为一种高热值的清洁能源广泛地应用于工业中. 研究证明: 生物质通过化学过程可以转化为多种气体燃料(氢气), 液体燃料以及高附加值的化学品. 生物质作为一种环境友好型再生洁净能源, 其研究越来越受到关注. 本文旨在探讨利用生物油为原料, 通过水蒸汽重整方法制备富氢合成气的过程. 利用均匀浸渍的方法制备了一种高分散的碳纳米纤维促进的镍(Ni/CNFs)催化剂, 并将普通的Al2O3作为载体的Ni/Al2O3催化剂和Ni/CNFs作对比. 研究了重整温度以及水蒸汽和碳摩尔比(nS/nC)对生物油水蒸汽重整制氢的影响. 结果表明: 碳纳米纤维作为载体用于生物油水蒸汽重整制氢的效果要远优于普通的Al2O3载体, 利用22% Ni/CNFs 催化剂时, 在实验温度范围内(350-550℃), 最高生物油转化率和氢气产率分别达到了94.7%和92.1%, 通过研究重整条件以及对催化剂进行表征探讨了生物油在水蒸汽重整过程中催化剂的构效关系.  相似文献   

15.
We investigated high catalytic activity of Ni/HZSM-5 catalysts synthesized by the impregna-tion method, which was successfully applied for low-temperature steam reforming of bio-oil. The influences of the catalyst composition, reforming temperature and the molar ratio of steam to carbon fed on the stream reforming process of bio-oil over the Ni/HZSM-5 catalysts were investigated in the reforming reactor. The promoting effects of current passing through the catalyst on the bio-oil reforming were also studied using the electrochemical catalytic re-forming approach. By comparing Ni/HZSM-5 with commonly used Ni/Al2O3 catalysts, the Ni20/ZSM catalyst with Ni-loading content of about 20% on the HZSM-5 support showed the highest catalytic activity. Even at 450 oC, the hydrogen yield of about 90% with a near complete conversion of bio-oil was obtained using the Ni20/ZSM catalyst. It was found that the performance of the bio-oil reforming was remarkably enhanced by the HZSM-5 supporter and the current through the catalyst. The features of the Ni/HZSM-5 catalysts were also investigated via X-ray diffraction, inductively coupled plasma and atomic emission spectroscopy, hydrogen temperature-programmed reduction, and Brunauer-Emmett-Teller methods.  相似文献   

16.
Hydrogen production by catalytic steam reforming of the bio-oil, naphtha, and CH4 was investigated over anovel metal-doped catalyst of (Ca24Al28O64)4+¢4O-/Mg (C12A7-Mg). The catalytic steam reforming wasinvestigated from 250 to 850 ±C in the ˉxed-bed continuous °ow reactor. For the reforming of bio-oil, theyield of hydrogen of 80% was obtained at 750 ±C, and the maximum carbon conversion is nearly close to95% under the optimum steam reforming condition. For the reforming of naphtha and CH4, the hydrogenyield and carbon conversion are lower than that of bio-oil at the same temperature. The characteristics ofcatalyst were also investigated by XPS. The catalyst deactivation was mainly caused by the deposition ofcarbon in the catalytic steam reforming process.  相似文献   

17.
泥炭在超临界水中热解的研究   总被引:2,自引:2,他引:0  
以氧化钙做为催化剂和CO2化学固定剂,详细考察了Ca/C摩尔比、反应温度﹑停留时间、压力等条件对泥炭在超临界水中转化的影响。在723K,Ca/C摩尔比为0.46时,CO2被完全固定,在气相产物中只有氢气、甲烷和低碳烃,碳转化率由未添加CaO时的68.73%提高到85.36%。CaO能够促进泥炭的裂解,并对烃类的重整反应和水煤气变换反应起到催化作用。液相产物的收率在723K达到极大值,在36.5MPa,液相产物的收率是热解条件下的3倍,随着停留时间的延长,液相产物中的极性组分发生分解。  相似文献   

18.
Hydrogen production from the aqueous phase derived from fast pyrolysis of biomass was carried out by catalytic steam reforming in a fluidized bed reactor. The effects of reaction conditions such as reaction temperature, steam-to-carbon ratio (S/C) and weight hourly space velocity of the aqueous phase (WHSV) on the results of hydrogen yield, potential hydrogen yield and carbon selectivity of product gases were investigated. The effect of reaction temperature on the carbon deposition on catalyst was also studied. The hydrogen yield of 64.6%, potential hydrogen yield of 77.6% and the carbon selectivity for product gases of 84.3% can be obtained at the optimized conditions of reaction temperature 800 °C, S/C 10 and WHSV 1.0 h−1.  相似文献   

19.
A new kind of multiple metal (Cu, Mg, Ce) doped Ni based mixed oxide catalyst, synthesized by the co-precipitation method, was used for efficient production of hydrogen from bio-oil reforming at 250-500 oC. Two reforming processes, the conventional steam reforming (CSR) and the electrochemical catalytic reforming (ECR), were performed for the bio-oil reforming. The catalyst with an atomic mole ratio of Ni:Cu:Mg:Ce:Al=5.6:1.1:1.9:1.0:9.9 exhibited very high reforming activity both in CSR and ECR processes, reaching 82.8% hydrogen yield at 500 oC in the CSR, yield of 91.1% at 400 oC and 3.1 A in the ECR, respectively. The influences of reforming temperature and the current through the catalyst in the ECR were investigated. It was observed that the reforming and decomposition of the bio-oil were significantly enhanced by the current. The promoting effects of current on the decomposition and reforming processes of bio-oil were further studied by using the model compounds of bio-oil (acetic acid and ethanol) under 101 kPa or low pressure (0.1 Pa) through the time of flight analysis. The catalyst also shows high water gas shift activity in the range of 300-600 oC. The catalyst features and alterations in the bio-oil reforming were characterized by the ICP, XRD, XPS and BET measurements. The mechanism of bio-oil reforming was discussed based on the study of the elemental reactions and catalyst characterizations. The research catalyst, potentially, may be a practical catalyst for high efficient production of hydrogen from reforming of bio-oil at mild-temperature.  相似文献   

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