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1.
Hao Liu 《Fuel》2003,82(11):1427-1436
Coal combustion with O2/CO2 is promising because of its easy CO2 recovery, extremely low NOx emission and high desulfurization efficiency. Based on our own fundamental experimental data combined with a sophisticated data analysis, its characteristics were investigated. It was revealed that the conversion ratio from fuel-N to exhausted NO in O2/CO2 pulverized coal combustion was only about one fourth of conventional pulverized coal combustion. To decrease exhausted NO further and realize simultaneous easy CO2 recovery and drastic reduction of SOx and NOx, a new scheme, i.e. O2/CO2 coal combustion with heat recirculation, was proposed. It was clarified that in O2/CO2 coal combustion, with about 40% of heat recirculation, the same coal combustion intensity as that of coal combustion in air could be realized even at an O2 concentration of as low as 15%. Thus exhausted NO could be decreased further into only one seventh of conventional coal combustion. Simultaneous easy CO2 recovery and drastic reduction of SOx and NOx could be realized with this new scheme.  相似文献   

2.
Hao Liu  Ramlan Zailani 《Fuel》2005,84(16):2109-2115
This paper presents experimental results of a 20 kW vertical combustor equipped with a single pf-burner on pulverised coal combustion in air and O2/CO2 mixtures with NOx recycle. Experimental results on combustion performance and NOx emissions of seven international bituminous coals in air and in O2/CO2 mixtures confirm the previous findings of the authors that the O2 concentration in the O2/CO2 mixture has to be 30% or higher to produce matching temperature profiles to those of coal-air combustion while coal combustion in 30% O2/70% CO2 leads to better coal burnout and less NOx emissions than coal combustion in air. Experimental results with NOx recycle reveal that the reduction of the recycled NO depends on the combustion media, combustion mode (staging or non-staging) and recycling location. Generally, more NO is reduced with coal combustion in 30% O2/70% CO2 than with coal combustion in air. Up to 88 and 92% reductions of the recycled NO can be achieved with coal combustion in air and in 30% O2/70% CO2 respectively. More NO is reduced with oxidant staging than without oxidant staging when NO is recycled through the burner. Much more NO is reduced when NO recycled through the burner (from 65 to 92%) than when NO is recycled through the staging tertiary oxidant ports (from 33 to 54%). The concentration of the recycled NO has little influence on the reduction efficiency of the recycled NO with both combustion media—air and 30% O2/70% CO2.  相似文献   

3.
Pulverized coal combustion in O2/N2 and O2/CO2 environments was investigated with a drop tube furnace. Results present that the reaction rate and burn-out degree of O2/CO2 chars (obtained in O2/CO2 environments) are lower than that of O2/N2 chars (obtained in O2/N2 environments) under the same experimental condition. It indicates that a higher O2 concentration in O2/CO2 environment is needed to achieve the similar combustion characteristic to that in O2/N2 environment. The main differences between O2/N2 and O2/CO2 chars rely on the pore structure determined by N2 adsorption and chemical structure measured by FT-IR. For O2/CO2 char, the surface is thick and the pores are compact which contribute to the fragmentation reduction of particles burning in O2/CO2 environment. The organic functional group elimination rate from the surface of O2/CO2 chars is slower or delayed. The present research results might have important implications for further understanding the intrinsic kinetics of pulverized coal combustion in O2/CO2 environment.  相似文献   

4.
J.C. van Dyk  F.B. Waanders  K. Hack 《Fuel》2008,87(12):2388-2393
Mineral matter transformation and the behavior of mineral matter in the coal during gasification, provide more information on the suitability of a specific coal source for combustion or gasification purposes. Therefore, the chemistry and mineral interactions have to be understood in order to determine the suitability for fixed bed gasification purposes with regards to mineral matter transformations and slagging properties.Although a suite of minerals important for the gasification process were identified [Van Dyk JC, Melzer S, Sobiecki A. Mineral matter transformations during Sasol-Lurgi fixed bed dry bottom gasification - utilization of HT-XRD and FactSage modelling. Minerals Engineering 2006; 19: 1126-35], some of the minerals, i.e. anorthite and calcite, with a specific behavior at different concentrations in the mineral structure and the transformation thereof was not studied and highlighted in detail. A number of other researchers [Reifenstein AP, Kahraman H, Coin CDA, Calos NJ, Miller G, Uwins P. Behavior of selected minerals in an improved ash fusion test: quartz, potassium feldspar, sodium feldspar, kaolinite, illite, calcite, dolomite, siderite, pyrite and apatite. Fuel 1999; 78: 1449-61], [Kondratiev A, Jaks E. Predicting coal ash slag flow characteristics (viscosity model for the Al2O3-CaO-‘FeO’-SiO2 system). Fuel 2001; 80: 1989-2000] and [Kondratiev A, Jak E. Applications of the coal ash slag viscosity model for the slagging gasification technologies (viscosity model in the Al2O3-CaO-‘FeO’-SiO2 system), 18th Pittsburgh Coal Conference, Newcastle, Australia, December 2001]) also did not investigate these gasification changes and mineralogical deformation during specific gasification conditions in detail.The principle aim of this paper is to identify the role of Ca-containing mineral species towards the in situ capture of CO2 during gasification, as well as understanding the chemistry and interpret the mechanism of CO2 capture by means of high temperature X-ray diffraction (HT-XRD), in combination with FactSage modeling. The CaO content of a South African and another coal source investigated in the present study, were 6 mass% and 30 mass% respectively. The basic components present in the coal, or specifically CaO, only act as a fluxing component up to a specific percentage, where after the ash fusion temperature starts to increase again. At this turning point the (Si+Al):Ca molar mass ratio is 2.75, which implies that after the turning point, the formation of anorthite is maximized and can thereafter only remain at the same level.The anorthite formation, when the Ca content increases, follows the inverse trend of the ash flow temperature prediction curve with the coal containing 6% CaO. The decrease in anorthite formation, with increasing Ca content, after the turning point in the graph, can be explained by the fact that more of the crystalline phase becomes a liquid (slag), and thus also the increase in the amount CaO in the slag will be observed. At the turning point, it is also interesting to note the stabilisation of the amount of other Ca-containing species. These are the minerals that are responsible and available for the mechanism where CO2 can be captured on Ca to form CaCO3. The formation of CaCO3 can also be observed from the turning point where the (Si+Al):Ca molar mass ratio is <2.75, which corresponds with the formation of other Ca-containing species.Thermodynamic modeling with FactSage results indicated that anorthite can only form to the point where the (Si+Al):Ca molar mass ratio is >2.75. Anorthite (CaSi2Al2O8) forms within the gasification zone and all non-reacted Ca react with CO2 to form CaCO3 further down in the combustion zone.  相似文献   

5.
Hua Fei  Jun Xiang  Lushi Sun  Peng Fu  Gang Chen 《Fuel》2011,90(2):441-448
When predicting the variation of pore structure during O2/CO2 combustion of coal chars using the random pore model (RPM), it is impossible to calculate exactly the structure parameter ψ from the pore characteristics. The values of structure parameter ψ, which were calculated based on its fractal feature at various carbon conversions, should be almost constant. However, this investigation exhibited a drastic increase of ψ at the end of combustion reaction. In this work, structure parameter ψ of the RPM was modified according to the experimental analysis and a new model, fractal random pore model (FRPM), was constructed. Compared with other models such as RPM, discrete random pore model (DRPM), the Struis model (Model I) and the Liu model (Model II), it was found that fractal random pore model was more accurate to describe coal chars combustion, especially at higher conversions. Using the FRPM, O2/CO2 isotherm combustion of coal chars were analyzed at different temperatures.  相似文献   

6.
在水平管式炉上研究了O2浓度、CO2浓度、温度及石灰石添加等各参数对O2/CO2气氛下徐州烟煤和龙岩无烟煤燃烧过程中SO2/NO排放特性的影响。结果发现,O2/CO2气氛下,烟煤和无烟煤燃烧SO2/NO的析出规律与空气气氛下不同,同等O2浓度下析出量比空气气氛下小。O2/CO2气氛下,随着O2浓度的提高,烟煤和无烟煤SO2/NO排放量均增大;随着CO2浓度的升高, SO2/NO排放量均减小。O2/CO2气氛下,石灰石添加对SO2排放的抑制作用低于空气气氛下;石灰石添加对NO的排放有一定减排作用。对煤灰的元素分析显示O2/CO2燃烧对SO2的抑制主要是由于煤灰的自固硫能力增强,而对NO的减排作用则是促进燃料N向其他含N气体的转换。  相似文献   

7.
The O2/CO2 coal combustion technology is an innovative combustion technology that can control CO2, SO2 and NOx emissions simultaneously. Calcination and sintering characteristics of limestone under O2/CO2 atmosphere were investigated in this paper. The pore size, the specific pore volume and the specific surface area of CaO calcined were measured by N2 adsorption method. The grain size of CaO calcined was determined by XRD analysis. The specific pore volume and the specific surface area of CaO calcined in O2/CO2 atmosphere are less than that of CaO calcined in air at the same temperature. And the pore diameter of CaO calcined in O2/CO2 atmosphere is larger than that in air. The specific pore volume and the specific surface area of CaO calcined in O2/CO2 atmosphere increase initially with temperature, and then decline as temperature exceeds 1000 °C. The peaks of the specific pore volume and the specific surface area appear at 1000 °C. The specific surface area decreases with increase in the grain size of CaO calcined. The correlations of the grain size with the specific surface area and the specific pore volume can be expressed as L = 744.67 + 464.64 lg(1 / S) and L = − 608.5 + 1342.42 lg(1 / ε), respectively. Sintering has influence on the pore structure of CaO calcined by means of influencing the grain size of CaO.  相似文献   

8.
Formation of H2O2 from H2 and O2 and decomposition/hydrogenation of H2O2 have been studied in aqueous acidic medium over Pd/SiO2 catalyst in presence of different halide ions (viz. F, Cl and Br). The halide ions were introduced in the catalytic system via incorporating them in the catalyst or by adding into the reaction medium. The nature of the halide ions present in the catalytic system showed profound influence on the H2O2 formation selectivity in the H2 to H2O2 oxidation over the catalyst. The H2O2 destruction via catalytic decomposition and by hydrogenation (in presence of hydrogen) was also found to be strongly dependent upon the nature of the halide ions present in the catalytic system. Among the different halides, Br was found to selectivity promote the conversion of H2 to H2O2 by significantly reducing the H2O2 decomposition and hydrogenation over the catalyst. The other halides, on the other hand, showed a negative influence on the H2O2 formation by promoting the H2 combustion to water and/or by increasing the rate of decomposition/hydrogenation of H2O2 over the catalyst. An optimum concentration of Br ions in the reaction medium or in the catalyst was found to be crucial for obtaining the higher H2O2 yield in the direct synthesis.  相似文献   

9.
The effect of O2 and N2O on alkane reactivity and olefin selectivity in the oxidative dehydrogenation of ethane, propane, n-butane, and iso-butane over highly dispersed VOx species (0.79 V/nm2) supported on MCM-41 has been systematically investigated. For all the reactions studied, olefin selectivity was significantly improved upon replacing O2 with N2O. This is due to suppressing COx formation in the presence of N2O. The most significant improving effect of N2O was observed for iso-butane dehydrogenation: S(iso-butene) was ca. 67% at X(iso-butane) of 25%.Possible origins of the superior performance of N2O were derived from transient experiments using 18O2 traces. 18O16O species were detected in 18O2 and 18O2–C3H8 transient experiments indicating reversible oxygen chemisorption. In the presence of alkanes, the isotopic heteroexchange of O2 strongly increased. Based on the distribution of labeled oxygen in COx and in O2 as well as on the increased COx formation in sequential O2–C3H8 experiments, it is suggested that non-lattice oxygen species (possibly of a bi-atomic nature) originating from O2 are non-selective ones and responsible for COx formation. These species are not formed from N2O.  相似文献   

10.
Lian Zhang  Eleanor Binner  Chun-Zhu Li 《Fuel》2010,89(10):2703-6646
Experimental investigation of the combustion of an air-dried Victorian brown coal in O2/N2 and O2/CO2 mixtures was conducted in a lab-scale drop-tube furnace (DTF). In situ diagnostics of coal burning transient phenomena were carried out with the use of high-speed camera and two-colour pyrometer for photographic observation and particle temperature measurement, respectively. The results indicate that the use of CO2 in place of N2 affected brown coal combustion behaviour through both its physical influence and chemical interaction with char. Distinct changes in coal pyrolysis behaviour, ignition extent, and the temperatures of volatile flame and burning char particles were observed. The large specific heat capacity of CO2 relative to N2 is the principal factor affecting brown coal combustion, which greatly quenched the ignition of individual coal particles. As a result, a high O2 fraction of at least 30% in CO2 is required to match air. Moreover, due to the accumulation of unburnt volatiles in the coal particle vicinity, coal ignition in O2/CO2 occurred as a form of volatile cloud rather than individual particles that occurred in air. The temperatures of volatile flame and char particles were reduced by CO2 quenching throughout coal oxidation. Nevertheless, this negative factor was greatly offset by char-CO2 gasification reaction which even occurred rapidly during coal pyrolysis. Up to 25% of the nascent char may undergo gasification to yield extra CO to improve the reactivity of local fuel/O2 mixture. The subsequent homogeneous oxidation of CO released extra heat for the oxidation of both volatiles and char. As a result, the optical intensity of volatile flame in ∼27% O2 in CO2 was raised to a level twice that in air at the furnace temperature of 1273 K. Similar temperatures were achieved for burning char particles in 27% O2/73% CO2 and air. As this O2/CO2 ratio is lower than that for bituminous coal, 30-35%, a low consumption of O2 is desirable for the oxy-firing of Victorian brown coal. Nevertheless, the distinct emission of volatile cloud and formation of strong reducing gas environment on char surface may affect radiative heat transfer and ash formation, which should be cautioned during the oxy-fuel combustion of Victorian brown coal.  相似文献   

11.
Columbite MgNb2O6 (MN) and ZnNb2O6 (ZN) ceramics produced by the reaction-sintering process were investigated. Secondary phases Mg0.652Nb0.598O2.25 and Mg0.66Nb11.33O29 were found in MgNb2O6 pellets. After 1250 °C sintering for 2 h, a density 4.85 g/cm3 (97.1% of the theoretical value) was obtained in MgNb2O6 pellets. In ZnNb2O6 pellets, no secondary phase formed. The maximum density 5.55 g/cm3 (98.7% of the theoretical value) occurs at 1200 and 1180 °C sintering for 2 and 4 h, respectively.  相似文献   

12.
Jyh-Cherng Chen  Jian-Sheng Huang 《Fuel》2007,86(17-18):2824-2832
For mitigating the emission of greenhouse gas CO2 from general air combustion systems, a clean combustion technology O2/RFG is in development. The O2/RFG combustion technology can significantly enhance the CO2 concentration in the flue gas; however, using almost pure oxygen or pure CO2 as feed gas is uneconomic and impractical. As a result, this study proposes a modified O2/RFG combustion technology in which the minimum pure oxygen is mixed with the recycled flue gas and air to serve as the feed gas. The effects of different feed gas compositions and ratios of recycled flue gas on the emission characteristics of CO2, CO and NOx during the plastics incineration are investigated by theoretical and experimental approaches.Theoretical calculations were carried out by a thermodynamic equilibrium program and the results indicated that the emissions of CO2 were increased with the O2 concentrations in the feed gas and the ratios of recycled flue gas increased. Experimental results did not have the same trends with theoretical calculations. The best feed gas composition of the modified O2/RFG combustion was 40% O2 + 60% N2 and the best ratio of recycled flue gas was 15%. As the O2 concentration in feed gas and the ratio of recycled flue gas increased, the total flow rates and pressures of feed gas reduced. The mixing of solid waste and feed gas was incomplete and the formation of CO2 decreased. Moreover, the emission of CO was decreased as the O2 concentration in feed gas and the ratio of recycled flue gas increased. The emission of NOx gradually increased with rising the ratio of recycled flue gas at lower O2 concentration (<40%) but decreased at higher O2 concentration (>60%).  相似文献   

13.
W. Nimmo  S.S. Daood  B.M. Gibbs 《Fuel》2010,89(10):2945-2861
Oxygen enrichment of the combustion air in pulverised coal combustion for power plant is seen as a possible retrofit measure to improve CO2 scrubbing and capture. This technique produces a reduced volume of flue gas with higher CO2 concentration than normal air combustion that will contributes to the enhancement of amine scrubbing plant efficiencies. We report in this article the results of a study at the small pilot scale into the effect of these combustion modifications on the formation of NOx and associated carbon burnout changes. Experiments were performed using a Russian coal, typical of that used in some UK power stations with shea meal and Pakistani cotton stalk as biomass fuels co-fired at a fraction of 15%th. The down-fired pulverised coal combustor was operated at 20 kWth under air-staged conditions for NOx control and the secondary and over-fire air flows were both enriched by up to 79% (100% O2) for a range of splits giving a 35% overall O2 concentration for full enrichment. When the same enrichment process was applied to biomass/coal combustion different behaviour was observed with respect to NOx formation. We have shown that oxygen enrichment can achieve benefits of improved carbon burnout with a positive impact on NOx emissions over and above the primary aim of increasing CO2 concentration in the flue gas for enhanced capture efficiencies. With all other conditions of overall stoichiometry, OFA levels and O2 enrichment levels remaining the same, NOx levels at 22% OFA initially increased over the range of secondary air enrichment, particularly for shea meal/coal co-firing. At 31% OFA the trends were to lower NOx at high enrichment levels. However, co-firing with shea meal initially showed an increase in NOx emission at lower levels of enrichment (up to 40% O2) followed by overall lower NOx emissions at 100% O2 in the secondary air. The results show that NOx emissions can either increase or decrease depending on the operating conditions. The differences in behaviour are attributed, not only to the effects of enrichment on the stoichiometry of the near-burner zone, but also on the flame dynamics and intensity of combustion related to the associated reductions in gas velocity and swirl intensity by the transition from air to pure O2 in the secondary oxidant stream.  相似文献   

14.
Combustion of a Chinese bituminous coal was carried out in a laboratory-scale drop tube furnace (DTF) to clarify the variation of ash properties with bulk gas composition. The combustion conditions tested include three bulk gases, air, 21% O2/79% CO2 and 27% O2/73% CO2, two furnace/gas temperatures close to the fluidized bed reactor temperature range, 1073 K and 1273 K, and three particle residence times. Apart from bulk properties analysis, individual ash particles and the original mineral species in coal were characterized using Computer - Controlled Scanning Electron Microscopy (CCSEM). The results indicate that, under the given experimental conditions, shifting bulk gas from air to O2/CO2 mixtures is insignificant in terms of the elemental composition of bulk ash, in agreement with the literature. However, changes in the properties of individual species/metals are noticeable, including the extent of the vaporization of volatile elements, ash particle-size distribution (PSD), crystallization extent of K alumino-silicate associate, pyrite decomposition and oxidation rate and formation propensity of liquidus in ash. These changes were mostly considered to be caused by the evolution of included mineral grains in the distinct char particles in the O2/CO2 environment. Reduction in char particle temperature with bulk gas shifting from air to O2/CO2 mixtures was primarily crucial, which, however, could be overweighed by the existence of a fairly strong local reducing condition on the char surface in O2/CO2. Consequently, vaporization of the volatile elements such as Na and P was promoted; formation of the crystalline leucite in air was in contrast inhibited. Furthermore, the extent of coalescence of included minerals and oxidation rate of pyrite (or its derivative, pyrrhotite) were also influenced by char consumption rate, i.e. the receding extent of char surface. These parameters exerted a combined effect on ash formation, requiring detailed mathematical modeling to describe the dynamics of the formation of oxy-fuel ash. This study also indicated that the differences of ash properties formed between air and O2/CO2 mixtures can be greatly reduced and eventually eliminated by increasing furnace temperature. Increase in the turbulence of gas flow should also benefit the elimination of the side effects of local reducing gases on char surface.  相似文献   

15.
Ni-based oxygen carriers (OC) with different NiO content were prepared by incipient wet impregnation, at ambient (AI), and hot conditions (HI) and by deposition-precipitation (DP) methods using γ-Al2O3 and α-Al2O3 as supports. The OC were characterized by BET, Hg porosimetry, mechanical strength, TPR, XRD and SEM/EDX techniques. Reactivity of the OC was measured in a thermogravimetric analyzer and methane combustion selectivity towards CO2 and H2O, attrition rate, and agglomeration behavior were analyzed in a batch fluidized bed reactor during multicycle reduction-oxidation tests.XRD and TPR analysis showed the presence of both free NiO and NiAl2O4 phases in most of the OC. The interaction of the NiO with the alumina during OC preparation formed NiAl2O4 that affected negatively to the OC reactivity and methane combustion selectivity towards CO2 and H2O during the reduction reaction. The NiO-alumina interaction was more affected by the support type than by the preparation method used. The NiO-alumina interaction was stronger in the OC prepared on γ-Al2O3.The OC were evaluated in the fluidized bed reactor with respect to the agglomeration process. OC prepared by the AI and HI methods with NiO contents up to 25 wt%, OC prepared by the DP method on γ-Al2O3 with NiO content lower than 30 wt%, and OC prepared by the DP method on α-Al2O3 with a NiO content lower than 26 wt% did not agglomerated. OC that agglomerated showed an external layer of NiO over the particles. It seems that the most important factor affecting to the formation of the external NiO layer on the OC, and so to the agglomeration process, was the metal content of the OC. The attrition rates of the OC prepared using γ-Al2O3 as support were higher than the ones prepared using α-Al2O3 as support, and in general the attrition rates of all the OC were low.The OC prepared by AI, HI or DP methods on α-Al2O3 as support had appropriated characteristics to be used in the chemical-looping combustion process.  相似文献   

16.
The decomposition behavior and mechanism of calcium sulfate in O2/CO2 pulverized coal combustion were studied in an entrained flow reactor. A reaction rate expression correlating the influence of various factors was proposed for CaS04 decomposition and it is able to predict CaS04 decomposition satisfactorily. Under the conditions investigated, the decomposition of CaS04 was found to be a regime of chemically controlled shrinking core reaction. A CO2-rich atmosphere enhances CaSO4 decomposition in absence of oxygen. CaSO4 particles have catalytic effect on formation of CO from CO2. A high SO2 concentration inhibits CaSO4 decomposition. The kinetics of CaSO4decomposition has obvious dependence on experimental facilities and conditions, whereas the activation energy has much lower dependence. The kinetics derived in this work is more appropriate for investigating desulfurization in O2/CO2 pulverized coal combustion because an entrained flow reactor has a much closer condition to that in O2/CO2 pulverized coal combustion than a TGA.  相似文献   

17.
Based on experiments on desulfurization, CaSO4 decomposition, and a system approach using theoretical analysis, efficient in-furnace desulfurization in O2/CO2 combustion was investigated. The influence of combustion conditions and sorbent properties on system desulfurization efficiency was clarified. The global desulfurization efficiency was found to increase with O2 purity. The global desulfurization efficiency in a dry recycle was higher than that in a wet recycle. The global efficiency of in-furnace desulfurization decreased with initial O2 concentration. As the temperature increased, the global desulfurization efficiency increased first and then decreased due to the decomposition of CaSO4. In the temperature range investigated, the global desulfurization efficiency in O2/CO2 coal combustion was much higher than that of conventional coal combustion in air. The global desulfurization efficiency decreased with sorbent size. When the particle radius decreased to one quarter, the global desulfurization efficiency doubled, becoming as high as 80%. The global desulfurization efficiency was very different among the three sorbents investigated, whether in O2/CO2 combustion or in conventional air combustion. The global desulfurization efficiency increased in the order of Ca(OH)2, scallop, and limestone in O2/CO2 combustion, but in the order of scallop, Ca(OH)2, and limestone in conventional air combustion. Nevertheless, all three sorbents demonstrated much higher desulfurization efficiency in O2/CO2 combustion than in conventional air combustion.  相似文献   

18.
Coal combustion in thermal power plants throughout the world produces large amounts of fly ash. Disposal of fly ash is a serious threat to the environment and hence is a worldwide concern for conversion of these wastes into useful products. Synthesis of mesoporous silica materials from coal fly ash has already been proposed as an option which can be utilized as an adsorbent. Adsorption is considered to be one of the more promising technologies for capturing CO2 from flue gases. This paper reviews the recent development of solid adsorbents from industrial waste materials with special reference to fly ash for post-combustion capture of CO2.  相似文献   

19.
This work investigates the improvement of Ni/Al2O3 catalyst stability by ZrO2 addition for H2 gas production from CH4/CO2 reforming reactions. The initial effect of Ni addition was followed by the effect of increasing operating temperature to 500–700 °C as well as the effect of ZrO2 loading and the promoted catalyst preparation methods by using a feed gas mixture at a CH4:CO2 ratio of 1:1.25. The experimental results showed that a high reaction temperature of 700 °C was favored by an endothermic dry reforming reaction. In this reaction the deactivation of Ni/Al2O3 was mainly due to coke deposition. This deactivation was evidently inhibited by ZrO2, as it enhances dissociation of CO2 forming oxygen intermediates near the contact between ZrO2 and nickel where the deposited coke is gasified afterwards. The texture of the catalyst or BET surface area was affected by the catalyst preparation method. The change of the catalyst texture resulted from the formation of ZrO2–Al2O3 composite and the plugging of Al2O3 pore by ZrO2. The 15% Ni/10% ZrO2/Al2O3 co-impregnated catalyst showed a higher BET surface area and catalytic activity than the sequentially impregnated catalyst whereas coke inhibition capability of the promoted catalysts prepared by either method was comparable. Further study on long-term catalyst stability should be made.  相似文献   

20.
The effect of the support nature on the performance of Pd catalysts during partial oxidation of ethanol was studied. H2, CO2 and acetaldehyde formation was favored on Pd/CeO2, whereas CO production was facilitated over Pd/Y2O3 catalyst. According to the reaction mechanism, determined by DRIFTS analyses, some reaction pathways are favored depending on the support nature, which can explain the differences observed on products distribution. On Pd/Y2O3 catalyst, the production of acetate species was promoted, which explain the higher CO formation, since acetate species can be decomposed to CH4 and CO at high temperatures. On Pd/CeO2 catalyst, the acetaldehyde preferentially desorbs and/or decomposes to H2, CH4 and CO. The CO formed is further oxidized to CO2, which seems to be promoted on Pd/CeO2 catalyst.  相似文献   

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