首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 156 毫秒
1.
为探讨固体氧化物燃料电池(solid oxide fuel cell, SOFC)中干甲烷浓度对反应的影响,采用色谱在线测量阳极尾气,总结阳极尾气的变化规律。在此基础上,分析干甲烷在固体氧化物燃料电池Ni-YSZ阳极上的反应,寻找干甲烷浓度与电流对电池阳极反应影响的数学关系。结果表明,随着电流密度的增加,低浓度甲烷按顺序发生CH4+O2- → CO+2H2+2e-、CH4+2O2- → CO+H2O+H2 +4e-、CH4+3O2- → CO+2H2O + 6e-、CH4+4O2- → CO2+2H2O+8e-反应,高浓度甲烷只发生甲烷的第一个氧化反应,中浓度甲烷发生前两个或前三个反应。依据法拉第第一定律及反应物之间的关系,确定甲烷的低、中、高浓度的判定依据分别为:qv(CH4)≤I/(4F)、I/(4F)≤qv(CH4)≤I/(2F)、qv(CH4)≥I/(2F)。  相似文献   

2.
以水热合成法制备了K原位改性的Fe-Mn催化剂,考察了其CO加氢合成低碳烯烃催化活性。采用SEM、TEM、XRD、H2-TPR和FT-IR等手段对催化剂进行了表征。结果表明,制备的催化剂前驱体呈50~70 nm的球形颗粒,表面富含羰基和羟基,物相组成以Fe3O4为主,用于反应后有Fe5C2和MnCO3相生成。与共沉淀法制备催化剂相比,在设定的反应条件下,不同K含量改性的催化剂均具有较高的活性,以原料配比Fe:Mn:C6:K=3:1:5:0.10的催化剂性能最佳,CO转化率达95.02%,总低碳烯烃收率为62.86 g/m3(H2+CO),CH4和CO2选择性分别为13.88%和13.98%。  相似文献   

3.
考察了热等离子体与催化剂协同作用于重整反应过程。实验采用三种不同的模式进行:等离子体单独作用、等离子体与催化剂协同作用、等离子体与催化剂协同作用且部分原料气引入等离子体放电区。结果表明,在模式三下,当原料气的总流量为5 m3/h、CH4/CO2物质的量比为4/6、等离子体的输入功率为14.4 kW时,CH4-CO2重整过程可获得最佳结果,CH4转化率为77.00%、CO2转化率为62.40%、H2选择性为96.70%、CO选择性为88.60%、反应比能为193 kJ/mol、过程的能量转化率为66.4%,该结果已十分接近CH4-H2O(g)重整的技术指标。最佳结果主要得益于模式三下的三种不同的反应路径,放电反应、热化学反应与催化反应。  相似文献   

4.
助剂MgO、CaO对甲烷水蒸气重整Ni/γ-Al2O3催化性能的影响   总被引:3,自引:1,他引:2  
采用固定床装置,考察了以共浸方式引入的助剂MgO、CaO对Ni/γ-Al2O3催化剂在甲烷水蒸气催化重整中的催化反应性能的影响。结果表明,在H2O/CH4/N2的摩尔比为2.86/1/3.28,GHSV为1800h-1,反应温度为700℃下,催化剂Ni-CaO/Al2O3催化性能最好;反应初期甲烷转化率可达到96.95%、CO选择性可达68.93%、H2收率可达73.58%。XRD和H2-TPR结果表明,CaO的存在使催化剂中的活性NiO组分增多,还原性和分散性能较好。利用热分析技术对积炭进行考察发现反应10h后的Ni-CaO/Al2O3催化剂上并未出现导致催化剂失活的炭物种。  相似文献   

5.
甲烷无氧脱氢芳构化双促进W/MCM-22基催化剂研究   总被引:3,自引:0,他引:3  
以MCM-22分子筛为载体,H2SO4酸化的(NH4)2WO4为W组分前驱物,以Zn和/或Ca,Co,Mo为促进剂,研制两系列促进型W/MCM-22基催化剂.在常压固定床连续流动反应器-GC测试系统评价其对CH4无氧脱氢芳构化的催化性能,结果显示,在双促进的W-Co-Mo(或W-Ga-Zn)/MCM-22催化剂上,常压、1073 K、原料气空速GHSV=1500 mL(STP)·h-1·(g-cat.)-1的反应条件下,苯选择性最高达到70%~72%,相应甲烷转化率为~15%;反应450 min后,甲烷转化率降低到~5%水平;7.5 h平均积炭选择性~20%.H2-TPR和NH3-TPD表征研究显示,在W/MCM-22基质催化剂中适当添加少量Co3+/2+/Mon+或Ga3+/Zn2+,一方面导致Wn+物种还原活化温度下降及可还原W6+物种数量增加,另一方面消去最强的一些B酸位同时诱生相当数量的中强酸位,这两方面的促进效应都对催化剂活性、选择性提高及结炭减缓作出贡献.  相似文献   

6.
在理想平推流反应器中进行了模拟热解气对模拟烟气中NO、N2O的还原实验研究,考察了反应温度、过剩空气系数λ、热解气中CH4、CO、H2、NH3浓度、烟气中NO、N2O浓度变化对NO、N2O出口浓度的影响。实验结果表明,当模拟热解气仅含其中一种气体时,在反应温度973~1 223 K时热解气中CH4、CO、H2基本不与NO发生反应,当λ小于或等于1.0时可降低N2O浓度0%~30%;热解气中NH3可降低NO 10%~60%,但NH3不与N2O发生反应。  相似文献   

7.
以ZrO(NO32·2H2O和Fe(NO33·9H2O为原料,采用微波水热法制备了不同Fe2O3/ZrO2物质的量比的Fe-Zr催化剂,并经K改性,研究了其催化CO加氢一步法合成低碳烯烃性能。采用XRD、SEM、TEM和N2吸附-脱附等手段对其物相、形貌和比表面积等进行了表征。结果表明,与共沉淀法相比,微波水热制备的Fe-Zr催化剂颗粒粒径均一,具有相对较小的比表面积和较大的孔径;在CO加氢反应中,Zr助剂的添加显著改善了产物分布,Fe、Zr间适宜的相互作用和相对较大的孔径,有利于抑制CH4的生成,提高烯烃选择性。随着Fe2O3/ZrO2物质的量比的降低,Fe、Zr间相互作用逐渐增强,烯烃选择性和收率先增加后降低。当Fe2O3/ZrO2物质的量比为75:25时,在340 ℃、1.5 MPa、1 000 h-1和H2/CO物质的量比为2的条件下,烯烷比(O/P)达4.86,总烯烃收率达62.57 g/m3。  相似文献   

8.
用离子交换法制备Ga改性ZSM-5双功能催化剂,并结合XRD、SEM、BET、NH3-TPD、Py-IR及ICP、XPS等多种技术进行表征,考察分子筛硅铝比(Si/Al)和催化剂氧化还原预处理条件对分子筛的酸性质、Ga物种的存在状态及其丙烷芳构化催化性能的影响。研究表明,硅铝比不仅可以改变分子筛的酸性,也会影响分子筛中非骨架Ga物种与分子筛表面的相互作用程度,进而影响含Ga分子筛的丙烷芳构化性能。在质量空速1.0 h-1、反应温度550℃ 下,Si/Al比为30的Ga-HZSM-5分子筛丙烷转化率和芳烃收率最高。Ga物种的引入可以提高丙烷的转化率和芳烃的选择性,并抑制烷烃、烯烃的裂解。H2还原处理,将分子筛表面Ga2O3还原为低价的Ga+和GaH+2物种,促进了Ga物种向分子筛微孔迁移;还原-氧化处理后,Ga+和GaH+2物种氧化成GaO+,占据分子筛孔道离子交换位,显著提高了催化剂的芳构化活性。  相似文献   

9.
甲烷和二氧化碳在煤焦上反应制备合成气实验研究   总被引:3,自引:1,他引:2  
以煤与甲烷共转化制备合成气的研究为背景,通过考察固定床反应器上甲烷和二氧化碳分别在石英砂、煤灰和煤焦上的反应过程,证实了煤焦中的碳结构在共转化过程中对甲烷转化具有催化作用。同时考察了反应温度(1073K~1223K)、CH4/CO2比(0.33~3.00)和气固接触时间等工艺条件对甲烷转化率、气相产物中H2/CO比的影响。结果表明,甲烷的转化率随着反应温度和气固接触时间的增加而增大,随CH4/CO2比的增加而减小。在考察范围内甲烷的转化率最高达到了86%。反应物中CH4/CO2比的改变可以起到调节产品气中H2/CO比的作用,0.4~2.0调节。  相似文献   

10.
以Al2O3为惰性载体,利用共沉淀法制备了CeO2-Fe2O3-Al2O3复合载氧体,并对载氧体进行了XRD、SEM表征。在固定床反应器中,考察了程序升温、恒温、多循环等操作条件下,载氧体对甲烷部分氧化重整的反应性能。程序升温实验结果表明,在相同温度下,CeO2含量为30%的载氧体与不含CeO2的载氧体对比,CH4转化率、H2和CO选择性均提高。在恒温实验中,含有CeO2的两种载氧体,CH4转化率、H2和CO选择性上也都明显高于不含CeO2的载氧体,当反应时间小于1 200 s时,无积炭发生。三种载氧体经过15次循环后,CeO2含量为30%的载氧体表现出最佳的循环特性。多循环实验中,当反应温度850 ℃、反应时间945 s时,CH4最大转化率达到91.53%、H2的最大选择性达到86.36%、CO的最大选择性达到85.12%、H2与CO的最佳平均物质的量比为2.03。XRD谱图显示,经过多次循环后,三种载氧体的物相没有发生变化,载氧体表现出了很好的稳定性能。  相似文献   

11.
Reaction rate coefficients and product ion distributions have been measured for the reaction of Ne+ with H2, N2, CO, CO2, N2O, CH4, O2, NO, NH3, SO2, CH3Cl, COS, H2O and C2H4 at 300 K using a selected ion flow tube (SIFT) apparatus. In most cases the major reaction channel involves dissociative ionization while for N2, CO+, H2O, CH4 and CH3Cl these reactions proceed mainly or exclusively by simple charge transfer. For H2 the process is exclusively hydrogen atom abstraction. The measured rate coefficients are compared with the values given by the Langevin and average-dipole orientation theories of ion—molecule collisions. In general the reaction probability (ratio of measured rate to the Langevin or ADO rate) is greater for the dissociative ionizaton reactions, although H2O is an exception with quite fast simple charge transfer.  相似文献   

12.
PSRK: A Group Contribution Equation of State Based on UNIFAC   总被引:8,自引:0,他引:8  
A group contribution equation of state called PSRK (Predictive Soave-Redlich-Kwong) which is based on the Soave-Redlich-Kwong equation (Soave, 1972) has been developed. It uses the UNIFAC method to calculate the mixture parameter a and includes all already existing UNIFAC parameters. This concept makes use of recent developments by Michelsen (1990b) and has the main advantage, that vapor-uquid-equilibria (VLB) can be predicted for a large number of systems without introducing new model parameters that must be fitted to experimental VLB-data. The PSRK equation of state can be used for VLB-predictions over a much larger temperature and pressure range than the UNIFAC γ--approach and is easily extended to mixtures containing supercritical compounds. Additional PSRK parameters, which allow the calculation of gas/gas and gas/alkane phase equilibria, are given in this paper. In addition to those mixtures covered by UNIFAC, phase equilibrium calculations may also include gases like CH4 C2H6, C3H6, c4H10, CO2, N2, H2 and CO.  相似文献   

13.
在理想平推流反应器中进行了模拟热解气对模拟烟气中NO、N2O的还原实验研究,考察了反应温度、过剩空气系数,模拟热解气中CH4、CO、H2、NH3入口浓度与模拟烟气中NO、N2O入口浓度对NO、N2O与总氮转化率的影响。结果表明,向NH3添加可燃气体CO、H2、CH4可使NO还原窗口向低温方向移动150~200 K,该温度窗口为1 073~1 223 K;但NH3-CO-H2-CH4-O2体系对NO、N2O的还原分解作用依赖于体系的O2浓度,仅在富燃料情形(过剩空气系数λ为0.6)下可分别达60.6%、100%的NO、N2O脱除率;在反应温度1 073~1 223 K及过剩空气系数λ为0.6条件下,较高的热解气CH4、CO、H2浓度可增加NO排放,但有利于还原N2O;增加NH3入口浓度可增加NO分解率。  相似文献   

14.
Oil shale from the Kark region of Pakistan has been pyrolysed in a fixed bed batch reactor and the properties of the derived shale oil determined. The reactor system was then modified to incorporate a second reactor where the derived vapours from oil shale pyrolysis were passed directly to the second reactor containing zeolite ZSM-5 catalyst. The influence of the process parameters of vapour residence time (VRT) over the catalyst and the regeneration of the catalyst were examined. The yield and composition of the derived gases before and after catalysis were determined. In addition, the yield and composition of the derived oil in terms of total nitrogen and sulphur content and the content of aromatic hydrocarbons in the oils was investigated. The results showed that the yield of oil after catalysis was reduced with a consequent higher yield of gases and formation of coke on the catalyst. The main gases from the pyrolysis of oil shales were CO2, CO, H2, CH4, C2H4, C2H6 and C3H6, C3H8 and minor concentrations of other hydrocarbon gases. The main role of catalysis was to convert the long chain alkanes and alkenes in the oil to lower molecular weight, short chain, alkyl substituted and iso species and high concentrations of aromatic hydrocarbons. Total nitrogen and sulphur contents in the oils were markedly reduced after catalysis. This reduction was reflected in the reduced concentration of nitrogen and sulphur containing aromatic hydrocarbons. The influence of longer VRTs was to increase the formation of aromatic hydrocarbons, reduce the nitrogen, and sulphur compounds in the oils. The influence of catalyst regeneration, involving five regenerations was not significant on the yield and composition of the derived catalytically upgraded oils.  相似文献   

15.
A new gas chromatograph column and a transformation oven for analysis of transformer oil are described in the present paper. The transformation oven is made using a metallic capillary with the length of 3cm. The analysis of seven compounds, including H2, CO, CH4, CO2, C2H4, C2H6 and C2H2, in the transformer oil be completed with only one column and by only one injection using this method. Figure 1 is the GC chromatogram of seven compounds in the transformer oil. Table 1 shows the transformation rates of CO and CO2 in different transformation temperatures and column temperatures, respectively. The transformation oven designed has high transformation rate, long life and thus can reduce the cost of the instrument.  相似文献   

16.
A Co-based two-dimensional (2D) microporous metal-organic frameworks (UPC-32) with narrow distance between layers and layers (3.8 Å) exhibits high selectivity of C3H6/CH4 (31.46) and C3H8/CH4 (28.04) at 298 K and 1 bar. It is the first 2D Co-MOF that showed selective separation of C3 hydrocarbon from CH4.  相似文献   

17.
The ruthenium(II) complex Ru(CO)2(NH2(NH2CH2C6H5)2(Si(C6H5)(CH3)2)I has been prepared by the reaction of Ru(CO)4(Si(C6H5)(CH3)2)I with benzylamine. Two-dimensional homonuclear 1H NMR experiments examine the scalar coupling of the enantiotopic amino and methylene protons of the benzylamine ligand. X-ray analysis of Ru(CO)2(NH2CH2C6H5)2(Si(C6H5)(CH3)2)I·1/3C5H12 (triclinic; P ; a = 14.266(4), b = 15.748(5), c = 20.082(6) Å; = 94.38(3), β = 96.30(2), γ = 101.52(2)°) indicates three crystallographically unique complexes form a clathrate with a pentane guest.  相似文献   

18.
研究了钠、钾助剂对FeMn合成低碳烯烃催化剂结构及性能的影响.低温N2吸附、X射线光电子能谱(XPS)、X射线衍射(XRD)、H2程序升温还原(H2-TPR)、CO/CO2程序升温脱附(CO/CO2-TPD)、M?ssbauer谱和CO+H2反应的研究结果表明,增加Mn助剂含量促进了活性相的分散和低碳烯烃的生成,而过多锰助剂在催化剂表面的富集则降低了费托合成反应的CO转化率;钾助剂和钠助剂的加入均抑制了催化剂的还原并且促进了CO2和CO的吸附.比较还原后(H2/CO摩尔比为20)和反应后(H2/CO摩尔比为3.5)催化剂的体相结构可以发现,在FeMn、FeMnNa和FeMnK催化剂中,由于钾助剂的碱性和CO吸附能力较强,因此体相中FeCx的含量相对较高;而活性测试结果表明,FeMnNa催化剂拥有最好的CO转化率(96.2%)和低碳烯烃选择性(30.5%,摩尔分数).  相似文献   

19.
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   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号