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1.
王鉴  赵如松 《催化学报》2001,22(5):484-486
丙烷选择氧化制取丙烯酸(AA)和乙酸(HAc)是氧化深度大、反应过程复杂、包含氧化脱氢和选择性氧种进入分子等多重步骤的多相催化过程. 从催化剂设计的角度看,适用于该反应的催化剂必须在较温和的条件下对烷烃具有氧化脱氢的能力. 钒磷混合氧化物(VPO)是目前少有的这类催化剂. 在影响其催化性能的众多因素中,n(P)/n(V)比是个关键参数;丙烷-氧共进料连续流动氧化反应的适宜n(P)/n(V)比为1.05~1.15[1~4]. 丙烷在VPO催化剂上的选择氧化按晶格氧氧化机制进行,适合于循环流化床提升管(CFBR)反应工艺[5]. CFBR工艺在大幅度提高原料中烃的浓度、抑制深度氧化、降低未反应原料的循环费用等诸多方面具有明显的优势[6],特别适用于丙烷等小分子烷烃的选择氧化. 在CFBR工艺中,与烷烃起反应的氧全部来自催化剂. 因此,为了提高经济效益,要求催化剂有尽可能大的可逆储氧量. 本文用脉冲反应器考察了催化剂P/V比对丙烷氧化反应性能的影响.  相似文献   

2.
通过氧和丙烯在铁锑氧化物催化剂上吸附的研究,认为丙烯在铁锑氧化物催化剂上的氧化是在表面活性晶格氧参与下的还原-再氧化循环过程,弱结合的晶格氧的活性比强结合的高,优先参加反应。通过催化剂表面还原和再氧化速度的研究,并和钼系催化剂相比较,证明铁锑氧化物催化剂不仅易被还原,而且还原表面上的产物较难脱附,故认为在选择氧化反应中铁锑氧化物催化剂上的积炭可能是由表面还原引起的。  相似文献   

3.
VPO催化剂的再生性质及其对晶格氧选择氧化丙烷的影响   总被引:2,自引:0,他引:2  
王鉴  赵如松 《分子催化》2000,14(1):11-14
采用脉冲反应器,研究了VPO催化剂的再生性质及其对晶格氧选择氧化丙烷制丙烯酸和乙酸的影响,结果表明,VPO催化剂与气相分子氧反应的速度要比丙烷与其 和氧反应的速度慢许多,因此以丙烷-O2共进料方式进行反应时,催化剂氧化再生是速度控制步骤,水是影响催化剂选择性的重要因素,但对活性影响不大,在反应温度下,水在VPO催化剂 为可逆吸附,容易脱附流失,催化丙烷反应生成目的的产物的活性中心很稳定,主要是晶格  相似文献   

4.
Mn2O3-Na2WO4/SiO2催化剂中,Mg2O3的引入起到了活化气相氧的作用,由于该催化剂中W,Mn间电子的迅速传递,在甲烷氧化偶联反应过程中,甲烷的选择氧化发生在W位,而气相氧转化为晶格氧发生在Mn位,从而建立了十分有效的氧化-还原循环,这正是该催化剂较Na2WO4/SiO2具有更高甲烷选择氧化的活性的原因。  相似文献   

5.
用自燃烧法制备了钙钛矿型La0.8Sr0.2FeO3催化剂。用H2-TPR考察了催化剂表面的氧消耗过程,用程序升温表面反应(TPSR)研究了甲烷与催化剂表面氧物种的反应,用在线质谱脉冲反应和甲烷/氧切换反应研究了催化剂的晶格氧选择氧化甲烷制合成气。结果表明,催化剂上存在两种氧物种,无气相氧存在时,强氧化性氧物种首先将甲烷氧化为CO2和H2O;而后提供的氧化性较弱的晶格氧具有良好的甲烷部分氧化选择性,可将甲烷氧化为合成气CO和H2(选择性可达95%以上)。在900℃一的CH4/O2切换反应结果表明,甲烷能与La0.8Sr0.2FeO3中的晶格氧反应选择性地生成CO和H2,失去晶格氧的La0.8Sr0.2FeO3能与气相氧反应恢复其晶格氧。在合适的反应条件下,用La0.8Sr0.2FeO3催化剂的晶格氧化替分子氧按Redox模式实现甲烷选择氧化制合成气是可能的。  相似文献   

6.
 用自燃烧法制备了钙钛矿型La0.8Sr0.2FeO3催化剂.用H2-TPR考察了催化剂表面的氧消耗过程,用程序升温表面反应(TPSR)研究了甲烷与催化剂表面氧物种的反应,用在线质谱脉冲反应和甲烷/氧切换反应研究了催化剂的晶格氧选择氧化甲烷制合成气.结果表明,催化剂上存在两种氧物种,无气相氧存在时,强氧化性氧物种首先将甲烷氧化为CO2和H2O;而后提供的氧化性较弱的晶格氧具有良好的甲烷部分氧化选择性,可将甲烷氧化为合成气CO和H2(选择性可达95%以上).在900℃下的CH4/O2切换反应结果表明,甲烷能与La0.8Sr0.2FeO3中的晶格氧反应选择性地生成CO和H2,失去晶格氧的La0.8-Sr0.2FeO3能与气相氧反应恢复其晶格氧.在合适的反应条件下,用La0.8Sr0.2FeO3催化剂的晶格氧代替分子氧按Redox模式实现甲烷选择氧化制合成气是可能的.  相似文献   

7.
 采用在线质谱动态响应技术,研究了钒磷复合氧化物(VPO)催化剂再氧化条件(氧浓度、温度和时间)对正丁烷选择氧化制顺酐反应的影响.结果表明,催化剂再氧化条件对正丁烷选择氧化反应性能有明显的影响,其中再氧化温度是主要影响因素.当正丁烷选择氧化和VPO催化剂再氧化在反应器(循环流化床和固定床)内序贯、交替进行时,可以通过改变再氧化条件使催化剂再氧化反应与正丁烷选择氧化反应恰当地匹配以改善时均反应性能.  相似文献   

8.
丙烷选择氧化用BiCeVMoO复合氧化物催化剂中Ce组分的作用   总被引:3,自引:0,他引:3  
 用X射线衍射(XRD)、激光拉曼光谱(LRS)、程序升温还原(TPR)、催化剂晶格氧反应性和微反测试等手段考察了BiCeVMoO复合氧化物催化剂的组成、结构、氧化-还原性质与催化丙烷选择氧化性能.结果表明,n(Ce)/n(Ce+Bi)≤0.15时,Ce组分可能占据BiVMoO 结构中Bi离子所处的晶格位置.催化剂对丙烷选择氧化的催化性能与Ce组分的含量密切相关,随着Ce含量的增加,丙烯醛选择性显著升高,在n(Ce)/n(Ce+Bi)=0.15时达极大值.随着Ce含量的进一步增加,丙烯醛选择性下降,完全氧化产物COx选择性上升.可以认为,适量Ce组分的引入提高了催化剂晶格氧物种的反应活性,从而改善了催化剂对丙烷选择氧化的催化性能.  相似文献   

9.
董雪  朱艺涵  李晗  陆维敏 《催化学报》2010,31(6):689-694
 研究了在不同温度下 V 掺杂的单斜 TeMo5O16 催化剂上丙烷选择氧化反应性能. 结果发现, 在保持 TeMo5O16 相结构基本不变的条件下, V 的掺杂提高了催化剂的活性以及丙烯和丙烯醛等脱氢与选择氧化产物的收率. 通过程序升温表面反应、拉曼光谱、X 射线光电子能谱、X 射线衍射、程序升温还原和热重分析等手段对其原因进行了探讨. 结果表明, V 的掺杂引起催化剂表面金属–氧键发生变化, 提高了表面氧化还原中心的活性, 增加了酸性中心数目, 从而提高了催化剂活化丙烷能力. 同时, 较高的 V 掺杂量可以提高催化剂体相中晶格氧参与氧化还原的能力.  相似文献   

10.
本文采用循环氧化还原法,脉冲反应及TPD等实验手段对钙钛矿型氧化物掺杂SrTiO_3体系上甲烷氧化偶联反应中的活性氧物种的作用进行了研究.结果表明,催化剂由于掺杂产生的未被充分还原的氧物种(O~(α-)(0<α<2)是活化甲烷并促使其发生偶联反应的主要的活性中心,而表面晶格氧(O_L~(2-))则主要使甲烷深度氧化;消耗掉的未被充分还原的氧或晶格氧可以在高温下氧气氛中氧化复原.对于掺杂的SrTiO_3样品,体相中的氧在惰性气氛或还原气氛中可以向表面扩散.吸附氧可能不直接与甲烷作用而主要通过催化剂表面活性氧物种(O~(α-)或O_L~(2-))而起作用.  相似文献   

11.
晶格氧部分氧化甲烷制合成气   总被引:1,自引:0,他引:1  
用储氧材料中的晶格氧代替分子氧部分氧化甲烷制合成气,并以空气、H2O或CO2为氧源对失去晶格氧的储氧材料进行氧化再生,是一种通过气固反应制取合成气的新工艺。具有较高经济效益和环境效益。本文综述了外该技术在储氧材料和反应体系等方面的研究进展,并从合成气和金属联产工艺以及熔融盐储能的研究思路中得出了一些启示,对该技术今后的研究重点和应用领域进行了展望。  相似文献   

12.
A redox cycle process, in which CH4 and air are periodically brought into contact with a solid oxide packed in a fixed-bed reactor, combined with the water-gas shift (WGS) reaction, is proposed for hydrogen production. The sole oxidant for partial oxidation of methane (POM) is found to be lattice oxygen instead of gaseous oxygen. A perovskite-type LaFeO3 oxide was prepared by a sol-gel method and employed as an oxygen storage material in this process. The results indicate that, under appropriate reaction conditions, methane can be oxidized to CO and H2 by the lattice oxygen of LaFeO3 perovskite oxide with a selectivity higher than 95% and the consumed lattice oxygen can be replenished in a reoxidation procedure by a redox operation. It is suggested that the POM to H2/CO by using the lattice oxygen of the oxygen storage materials instead of gaseous oxygen should be possibly applicable. The LaFeO3 perovskite oxide maintained relatively high catalytic activity and structural stability, while the carbonaceous deposits, which come from the dissociation of CH4 in the pulse reaction, occurred due to the low migration rate of lattice oxygen from the bulk toward the surface. A new dissociation-oxidation mechanism for this POM without gaseous oxygen is proposed based on the transient responses of the products checked at different surface states via both pulse reaction and switch reaction over the LaFeO3 catalyst. In the absence of gaseous-phase oxygen, the rate-determining step of methane conversion is the migration rate of lattice oxygen, but the process can be carried out in optimized cycles. The product distribution for POM over LaFeO3 catalyst in the absence of gaseous oxygen was determined by the concentration of surface oxygen, which is relevant with the migration rate of lattice oxygen from the bulk toward the surface. This process of hydrogen production via selective oxidation of methane by lattice oxygen is better in avoiding the deep oxidation (to CO2) and enhancing the selectivity. Therefore, this new route is superior to general POM in stability (resistance to carbonaceous deposition), safety (effectively avoiding accidental explosion), ease of operation and optimization, and low cost (making use of air not oxygen).  相似文献   

13.
Non‐oxidative methane dehydroaromatization is a promising reaction to directly convert natural gas into aromatic hydrocarbons and hydrogen. Commercialization of this technology is hampered by rapid catalyst deactivation because of coking. A novel approach is presented involving selective oxidation of coke during methane dehydroaromatization at 700 °C. Periodic pulsing of oxygen into the methane feed results in substantially higher cumulative product yield with synthesis gas; a H2/CO ratio close to two is the main side‐product of coke combustion. Using 13C isotope labeling of methane it is demonstrated that oxygen predominantly reacts with molybdenum carbide species. The resulting molybdenum oxides catalyze coke oxidation. Less than one‐fifth of the available oxygen reacts with gaseous methane. Combined with periodic regeneration at 550 °C, this strategy is a significant step forward, towards a process for converting methane into liquid hydrocarbons.  相似文献   

14.
工业固定床Fe-Cu-K催化剂浆态床F-T合成适应性研究   总被引:2,自引:3,他引:2  
采用连续搅拌釜式反应器,在接近F-T合成实际工况下考察了工业固定床Fe-Cu-K催化剂浆态床F-T合成反应性能,研究反应温度、压力、原料气空速和氢碳摩尔比等操作参数对催化剂反应活性、产物选择性和稳定性的影响,实验总运转时间达2 500 h;同时采用扫描电镜技术(SEM)对催化剂的抗磨损性能进行了研究,结果表明,操作参数对催化剂的活性、选择性和目标产物产率有较大的影响,工业固定床Fe-Cu-K催化剂具有一定的抗磨损性能,F-T合成烃产物分布合理;催化剂具有较高的稳定性,在589 h的稳定条件运行内,催化剂的失活速率为0.23%/d(以CO转化率的降低计);在整个运行期间CH4选择性维持在较低的水平。  相似文献   

15.
Selective oxidation of propane by lattice oxygen of vanadium-phosphorus oxide (VPO) catalysts was investigated with a pulse reactor in which the oxidation of propane and the re-oxidation of catalyst were implemented alternately in the presence of water vapor. The principal products are acrylic acid (AA),acetic acid (HAc), and carbon oxides. In addition, small amounts of C1 and C2 hydrocarbons were also found, molar ratio of AA to HAc is 1.4-2.2. The active oxygen species are those adsorbed on catalyst surface firmly and/or bound to catalyst lattice, i.e. lattice oxygen; the selective oxidation of propane on VPO catalysts can be carried out in a circulating fluidized bed (CFB) riser reactor. For propane oxidation over VPO catalysts, the effects of reaction temperature in a pulse reactor were found almost the same as in a steady-state flow reactor. That is, as the reaction temperature increases, propane conversion and the amount of C1 C2 hydrocarbons in the product increase steadily, while selectivity to acrylic acid and to acetic acid increase prior to 350℃ then begin to drop at temperatures higher than 350℃, and yields of acrylic acid and of acetic acid attained maximum at about 400℃. The maximum yields of acrylic acid and of acetic acid for a single-pass are 7.50% and 4.59% respectively, with 38.2% propane conversion. When theamount of propane pulsed decreases or the amount of catalyst loaded increases, the conversion increases but the selectivity decreases. Increasing the flow rate of carrier gases causes the conversion pass through a minimum but selectivity and yields pass through a maximum. In a fixed bed reactor, it is hard to obtainhigh selectivity at a high reaction conversion due to the further degradation of acrylic acid and acetic acid even though propane was oxidized by the lattice oxygen. The catalytic performance can be improved inthe presence of excess propane. Propylene can be oxidized by lattice oxygen of VPO catalyst at 250℃, nevertheless, selectivity to AA and to HAc are even lower, much more acetic acid was produced (molar ratio of AA to HAc is 0.19:1-0.83:1) though the oxidation products are the same as from propane.  相似文献   

16.
本文基于烃类选择氧化领域中的大量实例从起源、实现途径及应用状况几个角度对活性位分离和相间协同作用进行了评述。这两条原则已构成多相选择氧化催化的两大支柱:活性位分离是选择氧化催化剂获得选择性的必要条件,并在其他一些重要反应中起着重要的作用;相间协同则是不同晶相间发挥作用的一种方式,主要通过界面内聚和遥控机理发生作用。  相似文献   

17.
多相选择氧化/氨氧化催化中活性位分离和相间协同作用   总被引:6,自引:0,他引:6  
本文基于烃类选择氧化领域中的大量实例从起源、实现途径及应用状况几个角度对活性位分离和相间协同作用进行了评述。这两条原则已构成多相选择氧化催化的两大支柱:活性位分离是选择氧化催化剂获得选择性的必要条件,并在其他一些重要反应中起着重要的作用;相间协同则是不同晶相间发挥作用的一种方式,主要通过界面内聚和遥控机理发生作用。  相似文献   

18.
以MgO为载体,采用球磨法制备了Ce-Fe-Zr-O/MgO粉末状氧载体,进而采用挤压成型法制备了整体型氧载体。研究了两种氧载体化学链部分氧化甲烷制合成气的性能,并通过XRD、H2-TPR对氧载体进行表征。结果表明,粉末状氧载体中的储氧组分以Ce-Fe-Zr-O固溶体形式存在,而整体型氧载体的制备过程会导致Zr、Fe游离氧化物的形成。粉末状氧载体和整体型氧载体上均存在表面晶格氧和体相晶格氧,其中,体相晶格氧具有高选择性氧化甲烷的性能,可以将甲烷转化成CO和H2。粉末状氧载体与甲烷反应活性较高,但其存在高含量的表面氧,易导致甲烷的完全氧化。整体型氧载体上体相晶格氧占据优势,可将甲烷选择性氧化为CO和H2。氧化还原循环实验表明,粉末状氧载体在还原反应发生短时间内容易引起甲烷裂解导致产物气中的H2/CO物质的量比显著大于2.0,同时产生大量积炭,制约了其循环性能。而整体型氧载体经10次循环实验后,全程反应过程中合成气H2/CO物质的量比一直维持在2.0附近,显示了较高的循环稳定性能。  相似文献   

19.
Direct partial oxidation of methane to synthesis gas on AFeO(3) (A = La, Nd, Eu) oxides by a novel sequential redox cyclic reaction in the absence of gaseous oxygen was investigated over a fixed-bed reactor. These oxides were prepared by the sol-gel method and characterized by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS) techniques. XRD analysis showed that all AFeO(3) (A = La, Nd, Eu) oxides, calcined at 1173 K, are single-phase perovskites. The CH(4)-TPSR/MS and continuous reaction experiments indicated that the AFeO(3) (A = La, Nd, Eu) oxides provide mostly oxygen species, as the sole oxidant originated from lattice oxygen instead of gaseous oxygen, which can oxidize CH(4) to synthesis gas with high selectivity in the absence of gaseous oxygen. In terms of material economics and the amount of oxygen species for synthesis gas formation, the LaFeO(3) sample exhibits the best performance among these tested AFeO(3) oxides for synthesis gas production. The pulse experiments at different temperatures showed that the rate of oxygen migration during the CH(4) reaction with LaFeO(3) is strongly affected by the reaction temperature, and increases with rising temperature, which is favorable to much more CH(4) selective oxidation at high temperature. The two types of oxygen species are identified by experiments of continuous reactions and pulses, and confirmed by XPS. Methane can be converted selectively to synthesis gas by consumption of lattice oxygen, and general carbonaceous deposits on the catalyst surface do not occur under the appropriate reaction conditions by sequential redox cycles. The performance of selective oxidation of CH(4) to synthesis gas can be recovered by reoxidation using gaseous molecular oxygen; the LaFeO(3) oxide maintains relatively high catalytic activity and structural stability in redox atmospheres.  相似文献   

20.
铈基复合氧化物中晶格氧用于甲烷部分氧化制合成气   总被引:2,自引:0,他引:2  
采用共沉淀法制备了Ce-M-O氧载体(M=Fe、Mn、Cu),并进行了XRD表征。研究了Ce-M-O中晶格氧部分氧化甲烷制合成气的反应。考察了再生时间、再生温度对氧载体部分氧化甲烷性能的影响。研究结果表明, Ce-Fe-O固溶体中的晶格氧适于部分氧化甲烷制合成气。在新鲜的Ce Fe O氧载体上存在少量的强氧化物种,导致开始阶段大部分甲烷被完全氧化,然后该氧载体能均匀地释放出具有高选择性的体相晶格氧将甲烷氧化为CO和H2。通过对氧载体再生条件的控制,可以有效提高目标产物的选择性,当再生温度为850℃,再生时间为7min时, 获得了最大的CO(96.68%)和H2(97.56%)选择性,同时H2与CO摩尔比达到2.02。在无气相氧存在下,用Ce-Fe-O中晶格氧实现甲烷部分氧化制合成气的方法是可行的。  相似文献   

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