首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 109 毫秒
1.
等离子体协同CuO/TiO2-γ-Al2O3催化CH4脱除NO   总被引:3,自引:0,他引:3  
对合成的12%CuO/15%TiO2/γ-Al2O3催化剂进行了BET和XRD表征, 并结合等离子体与催化协同脱除NO的反应装置, 考察了单一等离子体、单一催化剂以及等离子体与催化协同脱除NO+CH4+O2的反应结果, 研究了上述三种条件下NO和CH4的转化率. BET表征结果表明, 15%TiO2/γ-Al2O3的孔径分布在微孔和介孔之间; XRD结果表明, 催化剂表面有CuO晶相; 反应活性数据表明, 单一等离子体存在时, NO和CH4的转化率随着等离子体的输入功率增大而逐渐增加, 反应体系引入体积分数为2.5%的O2气促进了NO和CH4的转化; 使用单一催化剂时, NO和CH4的转化率随温度升高而分别增大至30%和20%. 同时NO转化率随O2气浓度的增加先增加后降低, CH4随O2气浓度的增加转化率逐渐增大; 等离子体与催化剂协同作用NO+CH4+O2反应中, NO和CH4的转化率随O2气浓度的增加与只有催化剂存在条件下的变化趋势一致, 但是增大了NO的低温转化率, 同时CH4的转化率提高到了90%.  相似文献   

2.
大气压等离子体射流重整CH_4-CO_2制合成气   总被引:1,自引:0,他引:1  
采用大气压等离子体射流,以CH4和CO2直接作为放电气体进行常压下重整制合成气的实验研究,考察了等离子体射流的放电特征及放电距离、放电功率、原料气配比和流量对反应的影响。结果表明,该等离子体具有放电稳定、均匀的特征。重整反应的主要产物为合成气,只有少量的H2O和积炭生成。优化的反应条件为放电距离为9 mm,CH4和CO2的摩尔比为4/6。当原料气流量为1 000 mL/min,放电功率为88.4 W时,CH4和CO2的最高转化率为分别为94.99%和87.23%。甲烷和二氧化碳的转化率随放电功率的增加而增加,随流量的增加而减少。  相似文献   

3.
在介质阻挡等离子体放电(DBD)辅助催化剂(6%CuO/15%TiO2/γ-Al2O3,6%CuO/5%CeO2/15%TiO2/γ-Al2O3)反应装置上,研究了4种不同反应条件下(NO+CH4,NO+CH4+O2,NO+CH4+NTP,NO+CH4+O2+NTP)NO和CH4反应,采用BET、XRD、H2-TPR和XPS等手段对催化剂进行了表征.结果表明在上述4种反应条件下,对于NO+CH4的反应,O2的存在有利于NO脱除,在等离子体条件下,O2的加入对NO的转化有所抑制;而等离子体的活化极大增强了NO的低温脱除活性.在等离子体存在条件下,6%CuO/5%CeO2/15%TiO2/γ-Al2O3(6Cu5Ce15TA)对NO的转化率都优于6%CuO/15%TiO2/γ-Al2O3(6Cu15TA).BET结果显示添加TiO2和CeO2于γ-Al2O3表面后,比表面积都有少量降低;而各载体负载6%CuO后比表面积也有所下降.XRD结果表明6Cu15TA和6Cu5Ce15TA催化剂由锐钛矿相TiO2组成,CuO在各催化剂表面呈现高度分散.H2-TPR数据和XPS实验结果显示负载CuO后,催化剂表面的铜物种由高度分散的CuO和嵌入到CeO2或TiO2晶格中Cu2+所组成.6Cu5Ce15TA表面含有较6Cu15TA多的Cu+,从而增强了NO的脱除活性.  相似文献   

4.
介质阻挡放电和CuZSM-5结合体系中等离子体对C2H4的作用   总被引:2,自引:0,他引:2  
孙琪  杨佳  石雷  牛金海  宋志民 《化学学报》2009,67(15):1779-1783
采用吸附、程序升温脱附及氧化和发射光谱等技术研究了介质阻挡放电对气相和催化剂表面吸附乙烯的作用. 实验表明, 介质阻挡放电等离子体能脱附催化剂表面吸附物种(如CO2和H2O等), 并引发表面化学反应生成新物种(如在等离子体作用下C2H4和O2生成CO2和H2O); 改变催化剂表面积碳化合物结构, 并降低其起燃点; 引发气相中乙烯发生反应生成中间物种或碎片(如CN和CH等). 在富氧体系NO/O2/N2中加入C2H4, 能使介质阻挡放电等离子体和CuZSM-5“一段法”结合体系产生协同效应, 提高NOx转化率. 该协同效应的产生与等离子体在气相及催化剂表面引发化学反应, 产生参与NOx还原反应的新稳态物种和短寿命高能活性物种有关.  相似文献   

5.
利用脉冲微波强化、扩展丝光等离子体反应装置,在常压和正压条件下,对低温脉冲微波等离子体裂解甲烷和氢气混合气制C2烃的反应进行了研究。考察了压力、微波功率、脉冲通/断时间以及氢气/甲烷比例、流量等参数对反应的影响。结果表明,在脉冲微波的作用下,常规高压放电形成的在空间呈非连续分布的丝状等离子体被强化和扩展成为连续分布的伞状等离子体,等离子体利用率和活性均得以大幅度提高;利用这种低温等离子体可以获得高的甲烷转化率,而且产物纯净,只有乙烯和乙炔;通过改变压力,还可能调节产物中C2H2/C2H4的物质的量比值,当气体总流量为300mL/min、物质的量比n(H2)/n(CH4)=2:1、压力为0.13MPa、微波峰值功率为120W、脉冲通/断比=400/400ms时,甲烷转化率可达59.2%,C2烃单程收率可达52%,其中乙炔单程收率达42.7%。  相似文献   

6.
CH4和CO2合成乙酸中CO2与·H及·CH3相互作用的理论计算   总被引:1,自引:0,他引:1  
章日光  黄伟  王宝俊 《催化学报》2007,28(7):641-645
采用量子化学密度泛函方法,对CO2与H及CH3自由基反应进行了理论计算,给出了CO2与H及CH3自由基相互作用的反应机理,提出了CO2与H及CH3自由基作用的4条反应路径.其中以H和CH3自由基进攻CO2的C原子反应为优先路径,主要产物为乙酸,而甲酸甲酯为动力学禁阻产物.计算结果与实验结果相当吻合.为CH4和CO2两步反应合成含氧化合物提供了理论解释和指导.  相似文献   

7.
采用等离子体技术强化制备了Ni/γ-Al2O3催化剂, 以CO2重整CH4为模型反应考察了等离子体引入方式对催化剂性能的影响, 并采用H2-TPR, BET, CO2-TPD, XRD, CO2-TPSR, TGA及XPS技术对催化剂进行了表征. 研究结果表明, 与常规焙烧的催化剂相比, 在氢气还原过程前引入氮气等离子体处理能有效提高催化剂的低温反应活性. N2气等离子体处理使前驱体中的硝酸盐能在温和条件下分解, 并使催化剂具有较强的还原能力和较大的比表面积. 先进行N2气等离子体处理再进行H2气还原的催化剂, 其活性组分的分散度显著提高, 对CO2的吸附量也明显增加, 并且反应后催化剂上的积炭量比常规催化剂上的显著降低, 形成比较单一的碳物种.  相似文献   

8.
采用原位Raman光谱技术,在原料气中的O2未完全耗尽的条件下,对CH4部分氧化制合成气反应的Rh/SiO2催化剂床层前部贵金属物种的化学态以及由CH4解离所生成的碳物种进行了表征.在此基础上采用脉冲反应和同位素示踪技术,比较了CH4的部分氧化及其与H2O和CO2的重整等反应对催化剂床层氧化区内CO和H2生成的相对贡献,并将实验结果与Ra-man光谱表征结果进行了关联.结果表明,在600°C下将还原后的4%Rh/SiO2催化剂切入CH4:O2:Ar=2:1:45原料气,催化剂床层前部未检测到铑氧化物的Raman谱峰,但可清晰检测到源于CH4解离的碳物种;在700°C和接触时间小于1ms的条件下,催化剂床层的氧化区内已有大量CO和H2生成,在相同的实验条件下,CH4与H2O或CO2重整反应对氧化区内合成气生成的贡献则很小;以CH4:16O2:H218O:He=2:1:2:95为原料气的同位素示踪实验结果表明,在原料气中16O2未完全耗尽的情况下,反应产物中C16O的含量占CO生成总量的92.3%,表明CO主要来自CH4的部分氧化反应.上述结果均表明,在O2存在下Rh/SiO2催化剂上CO和H2可以通过CH4直接解离和部分氧化机理生成.  相似文献   

9.
郭建忠  侯昭胤  郑小明 《催化学报》2010,31(9):1115-1121
 在流化床反应器中, 考察了 Ni/SiO2 催化剂上 CH4 或 CH4-C3H8 临氧 CO2 重整 (自热重整) 制合成气反应性能. 结果表明, 在 CH4-C3H8 混合气自热重整反应中, Ni 粒径较小催化剂的活性和抗积炭性能较高, CH4 和 CO2 转化率分别达 75.5% 和 72.6%. C3H8 比 CH4 更易解离及被氧化, 部分 C3H8 解离出来的中间产物 CHx 物种可与吸附 H 结合为 CH4, 因而降低了 CH4 的表观转化率; CHx 也可与吸附的 CO2 物种反应生成 H2 与 CO, 从而促进了 CO2 的转化.  相似文献   

10.
李春林  伏义路  屠兢 《催化学报》2004,25(6):450-454
 采用水热合成-负载法制备了Ni/Ce-Zr-Al-Ox催化剂,测试了该催化剂上CO2重整CH4反应的活性和稳定性,并考察了添加少量水蒸气对CO2重整CH4反应的影响. 结果表明,在不含水蒸气的反应气中反应198 h后CH4和CO2的转化率分别为89%和98%,H2/CO摩尔比约为1.00,且没有任何失活. 添加3.2%的水蒸气后,CH4转化率提高到94%,CO2转化率不变,H2/CO摩尔比约提高0.06,同时稳定性也很好. 计算结果表明,添加少量水蒸气后,CO2重整CH4被促进,逆水煤气反应被抑制,而水蒸气重整CH4没有明显变化.  相似文献   

11.
Methane conversion in the presence of oxygen under low-temperature radio frequency (RF) plasma was investigated. The experiment results indicated that the following four factors, i.e., discharge voltage, discharge area, O2/CH4 molar ratio and total gas flowrate, affected remarkably the reaction performance. The optimum reaction conditions of methane conversion in the presence of O2 under RF plasma are as follows: discharge voltage 1050 V, discharge area 989.1mm2, O2/CH4 molar ratio 1/10 and total gas flowrate 200 ml/min. A methane conversion of 91% could be reached under the optimum conditions. Oxygen is good for the breaking of C--H bonds and also acts as a sort of thinner. According to the low-temperature plasma characteristics, the macroscopic kinetics model of methane conversion in the presence of O2 under radio frequency plasma was studied.  相似文献   

12.
通过优化设计矩形波导谐振腔微波化学反应器,可以大幅提高微波等离子体下甲烷转化率(最高为93.7%)、C2烃收率(最高为91.0%)和乙炔收率(最高为88.6%).且优化后,在实验的压强范围内,甲烷转化率和C2烃收率较为稳定,C2烃主要是乙炔,其选择性都在90%以上.生成乙炔的能量产率和时空产率也都比较高.利用发射光谱法对微波等离子体下甲烷偶联制乙炔的反应进行了诊断研究,在300nm~750nm波长范围内激发态物种有:CH,C2,H2,Hα-根据反应产物和激发态物种从化学反应热力学和动力学上对反应机理进行了初步探索.  相似文献   

13.
电场增强催化甲烷合成碳二烃催化剂影响研究   总被引:1,自引:0,他引:1  
本研究提出了在常温、常压电场增强等离子体条件下甲烷直接转化合成碳二烃的洁净工艺 ,在不同的放电电压、放电功率、甲烷进料流量和不同的催化剂作用下 ,甲烷能够以不同的转化率和选择性转变为碳二烃。对影响甲烷转化率和碳二烃选择性的因素 :放电电压、放电功率、甲烷进料流量和催化剂进行了研究 ,对催化剂性能进行了比较 ,并探讨了反应机理。结果表明 ,适宜的工艺条件 :放电电压 2 0kV~ 4 0kV ;输入功率 :2 0W~ 4 0W ;合适的甲烷进料流量 :30mL/min~ 70mL/min。在该条件下 ,碳二烃的选择性可以达到 95 % ;催化剂对甲烷转化率的影响顺序为MnO2 /Al2 O3 >Ni/Al2 O3 >MoO3 /Al2 O3 >Ni/NaY >Pd/ZSM 5 >Ni/H4Mg2 Si3 O4>Ni/ZSM 5 >Co/ZSM 5 >无催化剂。  相似文献   

14.
In the reaction of methane and carbon dioxide to C2 hydrocabons under non-equilibrium plasma, methane conversion was decreased,but selectivity of C2 hydroxarbons was increased when using La2O3/γ-Al2O3 as catalyst. So the yield of C2 hydrocarbons was higher than using plasma alone. The synergism of La2O3/γ-Al2O3 and plasma gave methane conversion of 24.9% and C2 yield of 18.1%. The distribution of C2 hydrocarbons changed when Pd-La2O3/γ-Al2O3 was used as catalyst,the major C2 product was ethylene.  相似文献   

15.
The oxidative coupling of methane (OCM) to C2 hydrocarbons using carbon dioxide as oxidant is an attractive process from environmental point of view. Only a few research papers reported for it1-3. In general, the yield of C2 hydrocarbons was about 6%. This indicated that the method of catalytic activation was unfavorable to the reaction. It is necessary for us to find a new method in order to activate reaction and improve C2 hydrocarbon yield. Non-equilibrium plasma is a cold plasma in…  相似文献   

16.
The plasma technology served as a tool in unconventional catalysis has been used in natural gas conversion, because the traditional catalytic methane oxidative coupling reaction must be performed at high temperature on account of the stability of methane molecule. The focus of this research is to develop a process of converting methane to C2 hydrocarbons with non-equilibrium plasma technology at room temperature and atmospheric pressure. It was found that methane conversion increased and the selectivity of C2 hydrocarbons decreased with the voltage. The optimum input voltage range was 40-80 V corresponding to high yield of C2 hydrocarbons. Methane conversion decreased and the selectivity of C2 hydrocarbons increased with the inlet flow rate of methane. The proper methane flow rate was 20-40 ml/min (corresponding residence time 10-20 s). The experimental results show that methane conversion was 47% and the selectivity of C2 hydrocarbons was 40% under the proper condition using atmospheric DBD cold plasma technology. It was found that the breakdown voltage of methane VB was determined by the type of electrode and the discharge gap width in this glow discharge reactor. The breakdown voltage of methane VB,min derived from the Paschen law equation was established.  相似文献   

17.
The plasma technology served as a tool in unconventional catalysis has been used in natural gas conversion,because the traditional catalytic methane oxidative coupling reaction must be performed at high temperature on account of the stability of methane molecule.The focus of this research is to develop a process of converting methane to C2 hydrocarbons with non-equilibrium plasma technology at room temperature and atmospheric pressure.It was found that methane conversion increased and the selectivity of C2 hydrocarbons decreased with the voltage.The optimum input voltage range was 40-80 V corresponding to high yield of C2 hydrocarbons.Methane conversion decreased and the selectivity of C2 hydrocarbons increased with the inlet flow rate of methane.The proper methane flow rate was 20-40 ml/min (corresponding residence time 10-20 s).The experimental results show that methane conversion was 47% and the selectivity of C2 hydrocarbons was 40% under the proper condition using atmospheric DBD cold plasma technology.It was found that the breakdown voltage of methane VB was determined by the type of electrode and the discharge gap width in this glow discharge reactor.The breakdown voltage of methane VB,min derived from the Paschen law equation was established.  相似文献   

18.
在常温常压下,利用脉冲电晕等离子体研究了甲烷和二氧化碳的转化。在等离子体一催化反应装置上,测试了Pd/γ-Al2O3对甲烷偶联的催化活性。实验发现,在脉冲电晕等离子体作用下,甲烷和二氧化碳被转化为C2烃、CO、H2、O2、少量积碳和高碳烃;在等离子体条件下引入Pd/γ-Al2O3催化剂,能够有效地改善甲烷偶联产物C2烃的分布,有利于生成更高附加值的乙烯。  相似文献   

19.
微波诱导甲烷在活性炭/碳化硅上直接转化制C2烃   总被引:18,自引:0,他引:18  
 在高功率脉冲微波辐照下甲烷可在常压条件下在活性炭/碳化硅和活性炭碳化硅等 三种催化剂上直接转化为C2烃。研究结果表明,当使用合适的微波作用条件时,微波加热与微波 等离子协同作用可使甲烷在多孔碳化硅担载的活性炭催化剂上以很高的转化率和选择性直接转化为乙炔,除单独的微波加热诱导作用和微波等离子催化作用外,转移反应机制可能是微波加热与微波等离子交互作用的具体表现形式,对促进甲烷向乙炔直接转化起了重要作用。  相似文献   

20.
Methane pyrolysis via thermal plasma was investigated experimentally on a 2 kW DC arc plasma setup in argon atmosphere. Two widely applied methane pyrolysis profiles, i.e., pre-mixing methane and argon before fed into plasma torch, and injecting methane into pure argon plasma jet at torch outlet, were compared. Performances of methane pyrolysis regarding to methane conversion, acetylene selectivity, acetylene specific energy requirement (SER), and plasma stability were concluded. Results showed that pre-mixing methane and argon before fed into plasma torch would be efficient in converting methane and acetylene production, with higher conversion of methane and lower SER to acetylene at a given specific energy. Also, methane in arc zone would cause periodic fluctuations of plasma voltage and power, which could be reduced by controlling methane fraction in feed. On the other hand, when methane was injected into argon plasma jet at torch outlet, the energy efficiency in converting methane and producing acetylene would be lower. And the plasma would barely participate in the reaction other than providing heat, but the erosion of electrode was much slower and slighter. It was also validated that the SER of acetylene was limited by the thermal loss of the setup due to size-effect of reactor.  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