WO2000066486A1 - Process for converting carbon monoxide and water in a reformate stream and apparatus therefore - Google Patents

Process for converting carbon monoxide and water in a reformate stream and apparatus therefore Download PDF

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Publication number
WO2000066486A1
WO2000066486A1 PCT/US2000/012012 US0012012W WO0066486A1 WO 2000066486 A1 WO2000066486 A1 WO 2000066486A1 US 0012012 W US0012012 W US 0012012W WO 0066486 A1 WO0066486 A1 WO 0066486A1
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Prior art keywords
reformate
catalyst
reacting
temperature
platinum
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PCT/US2000/012012
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French (fr)
Inventor
Prashant Chintawar
Craig Thompson
Mark R. Hagan
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Nuvera Fuel Cells
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Application filed by Nuvera Fuel Cells filed Critical Nuvera Fuel Cells
Priority to AT00928761T priority Critical patent/ATE272025T1/en
Priority to DE60012499T priority patent/DE60012499D1/en
Priority to JP2000615329A priority patent/JP2002543032A/en
Priority to CA002372543A priority patent/CA2372543A1/en
Priority to AU46945/00A priority patent/AU768826B2/en
Priority to EP00928761A priority patent/EP1175372B1/en
Publication of WO2000066486A1 publication Critical patent/WO2000066486A1/en

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Definitions

  • the present invention relates to methods for producing hydrogen from hydrocarbon fuels and reactors for carrying out the methods; and more particularly to methods, apparatuses, and catalysts for conducting water gas shift reaclions on a reactant stream of hydrocarbon fuels having been previously relormed by partial oxidation, steam reforming, or both.
  • the proposed integrated -i systems should be able to use existing mfi asti ucture fuels such as gasoline 01 diesel fuels These fuels were not designed as a feed stock for generating hydrogen Because of this, integrated systems are challenged to be able to handle the wide variety of hydrocarbons in the feed stock For example, certain reforming byproducts such as olefins, benzene, methyl amide, and higher molecular weight 0 aromatics can cause harm to catalysts used in reforming or purifying steps and may harm the fuel cell itself Impurities in these fuels such as sulfur and chlorine can also be harmful to reactor catalysts and to the fuel cell.
  • reforming byproducts such as olefins, benzene, methyl amide, and higher molecular weight 0 aromatics can cause harm to catalysts used in reforming or purifying steps and may harm the fuel cell itself
  • Impurities in these fuels such as sulfur and chlorine can also be harmful to reactor catalysts and to the fuel cell.
  • PSA hydrogen permeable membrane separation
  • PSA also suffers from high cost and space requirements Most notably, PSA presents a likely unacceptable parasitic power burden for portable power oi transportation applications At the same time, hydrogen permeable membranes arc expensive, are sensitive to fouling from impurities in the leloi mate. and reduce the total volume of hydrogen provided to the fuel cell
  • PROX PROX
  • selective methanation may both be appropriate as a secondary, or clean up, process at suitably low carbon monoxide levels
  • PROX appears to be suitable for oxidizing carbon monoxide at residuals of 20,000 PPM or less
  • Reformation of hydrocarbons may be subjected to some form of partial oxidation to create a reformate enriched in hydrogen
  • This partial oxidation can be accomplished by a flame-type gas-phase reaction or can be catalytically promoted, for example by a nickel-containing catalyst
  • Water in the form of steam may be added to prevent coking of the hydrocarbons du ⁇ ng oxidation Reformate composition varies widely with the type of hydrocarbon fuel or feed stock and with the efficacy of the particular partial oxidation process employed
  • reformate generated in this way generally includes varying amounts of carbon monoxide, carbon dioxide, water, nitrogen, trace amounts of hydrogen sulfide, and in the case of partial oxidation, ammonia Beyond these chemicals, the remainder of the reformate being methane, ethane and depending on
  • Equation 2 C n H m + nH 2 O ⁇ nCO + ( m / 2 + n)H 2 .
  • reformate composition resulting from the steam reforming process varies widely with the type of hydrocarbon fuel or feed stock and with the efficacy 0 of the particular catalyst and process parameters employed
  • the reformate generated in this way generally includes (in addition to hydrogen) varying amounts of carbon monoxide, carbon dioxide, and water, with the remainder being methane, ethane and potentially higher molecular weight hydi ocarbons including unsaturated and aromatic species, ethers, esthers, alcohols l . aldehydes, etc
  • the refoi mate can include trace amounts of hydrogen sulfide
  • Carbon monoxide produced from either partial oxidation or steam reforming can react with water (present from the prior oxidation process or 25 intentionally added to the system) according to the following water-gas-shi ft
  • the present invention is directed to processes and reactors for converting carbon monoxide and steam in a reformate stream into carbon dioxide and hydrogen while employing an improved catalyst
  • the piocess includes generating
  • a reformate by reacting a hydrocarbon fuel via partial oxidation, steam reforming, or both The reformate is then reacted in the presence of a platinum group metal selected from the group consisting of platinum, palladium, indium, osmium,
  • the platinum group metal is supported on a material selected from the group consisting of:
  • a water gas shift reaction can be accomplished in a reformate over a wide range of temperatures (for example, between about 200°C to about 650°C ) using a single
  • enhancement includes the step of introducing a predetermined amount of oxygen into the reformate for a desired period of time, oxidizing hydrocarbons, carbon monoxide and hydrogen, in the presence of the catalyst to generate heat to produce a desired temperature in the catalyst This takes advantage of the heating value of the reformate at start up, when the reformate may not yet be acceptably pure for delivery to the fuel cell.
  • a reactor according to the invention includes a first reactor section configured to produce reformate by a process selected from the group of partial oxidation, steam reforming, or a combination thereof.
  • a second reactor section is put in communication with the first reactor section so as to receive the reformate.
  • a catalyst is located in the second reactor section
  • the catalyst comprises a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof, and a support material, for the platinum group metal, selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof.
  • the catalyst of the invention can be operated at higher temperatures than conventional "high temperature” shift catalysts containing iron. Catalysts according to the invention are also expected to have a higher activity than iron-containing catalysts. Also, as noted above, commercial Cu/ZnO catalysts or so called “low temperature shift" catalysts can undergo exothermic oxidation and reduction reactions, which in turn, can cause the catalyst temperature to rise to undesirable levels This is not the case for the catalyst of the invention, because it can be used at relatively lower metal loading due to its activity The low metal content in the Pt/Zr02 catalyst, for example, minimizes any temperature rise
  • SMSI a strong metal support interaction
  • Cu/ZnO catalysts are also susceptible to sintering promoted by Chlorine and other halogens
  • the Pt/Zr0 2 catalyst should be resistant to this form of deactivation because the melting point of PtCl is much higher than the melting point of CuCl 2
  • the metal catalyst is deployed on the support without the use a hahde salt
  • the preparation method eliminates the possibility of any leftover halogen on the catalyst This will prevent any possible problems to the WGS catalyst or any downstream processes caused by halogens Platinum on ZrO 2 (as discussed below) has been tested to date, but other Platinum Group Metals are also expected to work Transition metals may also benefit from the ZrO 2 support and result in a more cost-efficient solution (e g ,
  • the catalyst of the invention does not need a special controlled reducing atmosphere for initial reduction as do the Cu Zn catalysts
  • the catalysts of the invention can be reduced (if needed) by the constituents in the reformate stream during normal operation
  • FIG 1 is a schematic view of a reactor and process according to the present invention
  • FIG 2 is a schematic view of another reactor and process according to the present invention.
  • FIG 3 is a schematic view of another reactor and process according to the present invention
  • FIG 4 is a schematic view of another reactor and process according to the present invention
  • FIG 5 is a schematic view of another reactor and process according to the present invention.
  • FIG 6 is a schematic view of another reactor and process according to the present invention.
  • FIG 7 is a schematic view of another reactor and process according to the present invention.
  • FIG 8 is a schematic view of another reactor and process according to the present invention
  • FIG 9 is a schematic view of another reactor and process according to the present invention.
  • FIG 10 is a chart disclosing activity of a catalyst according to the invention at different metal loadings on a support.
  • FIG. 1 1 is a chart disclosing the effect of ethylene on the activity of a catalyst according to the invention;
  • FIG. 12 is a chart disclosing the effect of sulfur on the activity of a catalyst
  • FIG. 13 is a chart disclosing the effect of benzene on the activity of a
  • a test catalyst of l %Pt/ZrO 2 was prepared by incipient wetness impregnation.
  • preparing catalysts of the invention would preferably be generally free of
  • platinum (II) nitrate Pt(NH 4 (NO 3 ) 2 (“TAPN”)
  • TAPN Platinum(II) nitrate
  • Traditional platinum compounds used for catalyst synthesis are hexachloroplatinic acid hexahydrate and Platinum(II) Chloride. These are an inexpensive source of
  • the TAPN was acquired and is commercially available from Ald ⁇ ch Chemical Company, U.S.A.
  • the ZrO is available from Norton CPPC (Chemical Process Product Corp.) in 3mm pellets (Part No. XZ16075).
  • Table 1 provides physical properties of the zirconium oxide used.
  • the water saturation capacity of the pellets was determined as follows. To 3.91 g. of ZrO 2 pellets, water was added drop-wise until all of it was absorbed by the pellets. A total of 2.76 g. of water was absorbed. Thus, the water saturation capacity of the ZrO, was found to be 0 706 g. per g. of ZrO 2 .
  • the surface area, pore volume, and median pore diameter are important to allow an optimum amount of Pt to be accessible to reactant molecules
  • 0.043 g. of TAPN salt was dissolved in 1 .5g water in a PyrexTM beaker. The solution was warmed on a hot plate until no solid residue was visible at the bottom of the beaker ( l -3mins.) To this solution, 2. 1 3 g.
  • the WGS catalyst testing was performed in a single pass tubular reactor.
  • the reactor itself was a V.” OD (10 mm ID) quartz tube. A quartz frit centered in
  • Mass flow controllers set a dry composition and flow rate of the reactant mixture
  • the gas passed through a humidifier, where humidity level was set by saturating the gas with water at a set temperature
  • a watei dropout trap maintained at 0°C removed moisture from the product stream befoie entering the gas chromatograph for analysis
  • a gas chromatograph gave continuous TCD analysis of the product stream, at two-minute intervals
  • the average concentrations of constituents comprising the test reformate used in the tests described below are disclosed TABLE 2 as volume percent
  • the catalyst used in these tests contained 0 5%, 1 0%, and 5% Pt on ZrO 2 by weight Three tests were conducted to find the optimal precious metal loading The percentage of carbon monoxide conversion for each metal loading is graphically depicted in FIG 10 The percentage conversion at 215°C is tabulated in TABLE 3 for comparison
  • Normalized activity was calculated by choosing 215°C. as a temperature that is not in the equilibrium-controlled regime and shows significant differences
  • a 0.5% PtZrO 2 catalyst was made according to the above-described
  • FIG 1 1 graphically shows that exposure to ethylene did not lower catalyst activity, as is seen with conventional WGS catalysts It was determined by chromatographic analysis that the WGS catalyst hydrogenated the ethylene to ethane, which is less detrimental to downstream processes
  • FIG 1 discloses a reactor 10 having a first reactor section 12 configured to produce reformate first by partial oxidation of the hydrocarbon ("POX") in a subsection 14 and next a steam reforming of the resultant reaction stream in subsection 16
  • a second reactor section 18 is in communication with the first reactor section 12 so as to receive the resulting reformate
  • FIG ? discloses another exemplary reformer reactor 20
  • Reactor 20 includes a first reactor section 22 configured to produce reformate first by partial oxidation ol the hydrocarbon(s)
  • a second reactor section 24 is in communication with the first reactor section 22 so as to receive the resulting reformate
  • FIG. 3 discloses a reactor 26 having a first reactor section 28 configured to produce reformate by steam reforming of the hydrocarbon feedstock
  • a second reactor section 30 is in communication with the first reactor section 28 so as to
  • FIG. 4 discloses a reactor 32 having a first reactor section 34 configured to
  • a second reactor section 40 is in communication with a third reactor section 42 which is in turn in communication with the first reactor section 34 so as to receive
  • FIG. 5 discloses a reactor 44 having a first reactor section 46 configured to
  • a second reactor section 48 is in communication with a third reactor section 50 which is in turn in communication with the first reactor section 44 so as to receive the resulting
  • FIG. 6 discloses a reactor 52 having a first reactor section 54 configured to
  • a second reactor section 56 is in communication with a third reactor section 58 which is in turn in communication with the first reactor section 54 so as to receive the resulting
  • FIG 7 discloses a reactor 60 having a first reactor section 62 configured to
  • a second reactor section 68 is in communication with a third reactor section 70 which is in turn in communication with the first reactor section 62 so as to
  • FIG 8 discloses a reactor 78 having a first reactor section 80 configured to produce reformate by partial oxidation of the hydrocarbons
  • a second reactor section 82 is in communication with a third reactor section 84 which is in turn in communication with the first reactor section 80 so as to receive the resulting
  • FIG 9 discloses a reactor 92 having a first reactor section 94 configured to produce reformate by steam reforming of the hydrocarbons
  • a second reactor section 96 is in communication with the first reactor section 94 so as to receive the
  • a catalyst is disposed in the second reactor sections 18, 24, 30, 40, 48, 56, 76, 90 and 96
  • the catalyst is a platinum group metal ("PGM") selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof (but preferably is platinum)
  • PGM platinum group metal
  • the PGM is supported on a support material selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof, but preferably zirconium oxide For PtZrO.
  • the metal loading is preferably between 0 5% to 1 0%, platinum
  • the catalyst and support in reactor sections 18, 24, 30, 40, 48, 56, 76, 90 and 96 may be dispersed upon a monolithic base, or may be deployed on, or in, any other well accepted form of support or base such as a powder, granules, pellets, foam, etc For stationary uses, granules appear to be preferable I lowever, for uses of reactor
  • pieferable Preferable monoliths are believed to include foam or reticulate type, cellular or straight channel honeycomb type, and, extruded channel-type
  • a monolithic substrate may be fabricated of zirconium oxide
  • the PGM may be support
  • a monolithic base may be wash-coated with zirconium oxide upon which
  • the metal is then dispersed.
  • the metal may be dispersed by any known method such as an incipient wetness method Regardless of the form in which the catalyst
  • halogenated salt This is because the amines will burn off more easily than halogens bonded to the platinum. It is preferable that the catalyst in any form will
  • the zirconium support of the preferred embodiment has a
  • a catalyst employed in the second reactor section is resistant to poisoning by sulfur, hydrogen sulfide, ethylene, benzene, air and condensed water t he catalyst is stable and active at converting carbon monoxide to carbon dioxide, at temperatures between about 200°C. and 650°C.
  • the third reactor sections 42, 50, and 58, (FIGS 4-6) each contain a catalyst other than the catalyst disclosed herein, such as a conventional catalyst
  • a preferable example of such a catalyst is an iron-containing catalyst, capable of effective carbon monoxide conversion in the temperature range of about 300°C. and 650 ⁇ C.
  • the second and third reactor are identical to one aspect of the invention.
  • the reformate can be exposed to the iron-containing catalyst in the third reactor sections 42, 50, and 58 at a relatively high temperature, preferably between
  • the reformate can be exposed to a PGM catalyst of the invention in
  • the second reaction sections at relatively a lower temperature range, preferably
  • the PGM catalysts of the invention will have the advantages discussed herein over conventional "low temperature shift" catalysts such as those containing copper or zinc.
  • FIGS 7-9 disclose alternate reformer reactors according to other aspects of the invention.
  • 70, 84 (FIGS 7 and 8) contain a catalyst comprising a platinum group metal
  • PGM platinum, palladium, iridium, osmium, rhodium and mixtures thereof (but preferably is platinum).
  • the PGM is supported on a support material selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof, but preferably zirconium oxide (ZrO 2 ).
  • the respective reactor sections can then take advantage of the superior water gas shift catalysts of the invention in a two-stage relatively high, then relatively low temperature shift to again first take advantage of relatively higher kinetics and then a relatively more favorable equilibrium at the lower temperature.
  • FIGS 7 and 8 also disclose optional heat exchange tubes 76 and 90 with inlets 72,
  • FIG 9 discloses another exemplary embodiment according to the invention
  • the second reactor section 96 includes a helical heat exchange tube 102
  • reactor section 96 is configured as necessary
  • the catalysts of the invention are stable in the presence of air Thus, it is
  • the PGM catalysts in particular platinum, can also be used to oxidize hydrocarbons, carbon monoxide, and the hydrogen enriched stream, upon
  • FIG 1 discloses such an arrangement
  • An inlet 19 is provided to the second reactor section 18 to permit a flow oi an oxygen containing gas, such as air
  • the air can be added to the reformate stream through the inlet 19 for a predetermined time until a desired temperature is achieved in the catalyst and/or the reformate during start up
  • Such a reactor configuration would be particularly useful in transportation applications where speed to full power delivery is important In such applications it would be advantageous to be able to provide comparable speed to full power delivery now provided by internal combustion engines While the specific embodiments have been illustrated and described, numerous modifications come to mind without significantly departing from the spirit of the invention and the scope of protection is only limited by the scope of the accompanying Claims
  • reactors described herein are described in terms of “reactor sections" It is contemplated that these sections will provide benefits according to the invention whether or not these sections are incorporated into integrated unitary structures having multiple sections or are configured as stand alone, modular sections as is desired
  • the inventions disclosed and claimed herein are concerned with providing reactor configurations and structures wherein 'reactor sections,” are coordinated and arranged to provide the sequencing of reactions necessary to accommodate the processes contemplated

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Abstract

A process for converting carbon monoxide and water in a reformate stream into carbon dioxide and hydrogen comprising: generating a reformate by reacting a hydrocarbon via partial oxidation, steam reforming, or both, including autothermal reforming; and promoting a water gas shift in the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof, supported on zirconium oxide. The platinum group metal advantageously may be supported directly on a monolithic substrate composed of zirconium oxide.

Description

PROCESS FOR CONVERTING CARBON MONOXIDE AND WATER IN A REFORMATE STREAM AND APPARATUS THEREFORE
DESCRIPTION
Related Applications
This application relies on the priority of U.S. Serial No. 60/132,183 filed May 3. 1999, and U.S. Serial No. 60/158,626 filed October 6, 1999.
Technical Field
The present invention relates to methods for producing hydrogen from hydrocarbon fuels and reactors for carrying out the methods; and more particularly to methods, apparatuses, and catalysts for conducting water gas shift reaclions on a reactant stream of hydrocarbon fuels having been previously relormed by partial oxidation, steam reforming, or both.
Background of the Invention
Reforming of hydrocarbon fuels to make hydrogen is well known in the art. Conventionally, hydrocarbons are reformed predominately in large-scale industrial facilities providing hydrogen for bulk storage and redistribution, or producing hydrogen as an on-line, upstream reagent for another large-scale chemical process. For the most part, these prior processes operate continuously and at steady-state conditions. More recently, however, a strong interest has developed in providing hydrocarbon-reforming reactors integrated with an end use of the hydrogen. Also, there is a strong interest to develop a low-cosl. small-scale source lor hydrogen thai can replace the need lor storing hydrogen gas on site oι on board Mote particularly, a great interest has developed in providing leactors for producing hydrogen, which can be integrated with a fuel cell which uses hydrogen as a fuel
RECTIFIED SHEET (RULE 91) ISA/EP source to generate electricity Such hydrogen generator/tuel cell systems ai e being pursued foi stationary uses such as providing electncal power to a stationary tacility (home or business) lor portable electric powei uses and foi tiansportatio
There ai e many technical requirements lor reactors used in such applications which are not required of traditional large or small-scale hydrogen generating reactors 1 or example, it is of particular interest to have such a system where the fuel cell can provide "power on demand Hence, hydrogen must be produced at required variable levels on demand In other words, the hydrogen producing reactors must be sufficiently dynamic to follow the load It is also of interest that such systems perform well upon start up and shutdown cycling In particular, it is desirable to have these integrated systems be stable through repeated on-off cycling including being ready to come back on-line in a relatively short time after penods of non-use
Anothet mai ked dif feience between proposed integrated systems and tiaditional reactors is that there must be sufficient processing in the integiated system itself, and ol the hydiocarbon feed stock so as to not only give a yield of hydrogen sufficient to meet the demand, but also to minimize bypioducts of reaction including contaminants In large-scale reactor systems, which produce enormous volumes and run continuously, space, weight, and cost of auxiliary systems is not so critical as in the integrated, smaller-scale reformers, especially those proposed for portable power or transportation applications For example, carbon monoxide may be considered an undesirable reaction product on board a fuel cell powered automobile However, in a steady state conventional process, the carbon monoxide can easily be handled by auxiliary separation systems, and may in fact be welcomed for its use in a synthesis gas to make acetic acid, dimethyl ether and alcohols
In short, the challenge for the smaller-scale dynamic, integrated processoi s is the idea that what goes in the reformer must come out at the same end as the desired hydrogen gas Accordingly, processing has to be more complete and moi e ef ficient, while cost cl lective, lightweight, and durable I he processing must be sufficient to reduce or eliminate species in the product gas which are harmful to the end use (for example. Kiel cells) or other down stream components
Another challenge exists for the proposed integrated systems with respect to the hydrocarbon feed stock To be of maximum benefit, the proposed integrated -i systems should be able to use existing mfi asti ucture fuels such as gasoline 01 diesel fuels These fuels were not designed as a feed stock for generating hydrogen Because of this, integrated systems are challenged to be able to handle the wide variety of hydrocarbons in the feed stock For example, certain reforming byproducts such as olefins, benzene, methyl amide, and higher molecular weight 0 aromatics can cause harm to catalysts used in reforming or purifying steps and may harm the fuel cell itself Impurities in these fuels such as sulfur and chlorine can also be harmful to reactor catalysts and to the fuel cell.
It is also important to note that a natural byproduct of hydrocarbon reforming is carbon monoxide Carbon monoxide can poison proton exchange i s membrane ("PEM") fuel cells, even at very low concentrations, e g , less than 100
PPM This poses a problem for an integrated reactor system that is not faced by traditional reforming processes where significant carbon monoxide concentrations are either a useful co-product, or can be separated from the product gas without undue burden on the system economics as a whole
20 Also, as noted above, integrated systems proposed to date are expected to transfer the total of the reformate to a fuel cell Accordingly, techniques which separate carbon monoxide from hydrogen, such as pressure swing adsorption
("PSA") or hydrogen permeable membrane separation, have the deficit of having to provide an alternate means for disposal or storage of the carbon monoxide
25 Both of the aforementioned techniques also suffer in efficiency as neither converts the carbon monoxide (in the presence of water) to maximize hydrogen production
PSA also suffers from high cost and space requirements Most notably, PSA presents a likely unacceptable parasitic power burden for portable power oi transportation applications At the same time, hydrogen permeable membranes arc expensive, are sensitive to fouling from impurities in the leloi mate. and reduce the total volume of hydrogen provided to the fuel cell
At the levels of carbon monoxide present in the relormate stream alter partial oxidation, steam reforming or ATR (for example, less than or equal to about 20% carbon monoxide), catalytic techniques such as pref erential oxidation
("PROX") or selective methanation are not efficient options Although it should be noted that PROX and selective methanation may both be appropriate as a secondary, or clean up, process at suitably low carbon monoxide levels Foi example, PROX appears to be suitable for oxidizing carbon monoxide at residuals of 20,000 PPM or less
On the other hand, implementing and using water gas shift reactions does not present the impairments of the above-discussed techniques Hence use of a water gas shift reactor is highly preferred
Reformation of hydrocarbons (for example, alcohols, methane, propane. butane, pentane, hexane, and various othei gaseous and liquid peti oleum fi actions saturated and unsaturated, cyclic compounds, aromatic compounds, etc ) may be subjected to some form of partial oxidation to create a reformate enriched in hydrogen This partial oxidation can be accomplished by a flame-type gas-phase reaction or can be catalytically promoted, for example by a nickel-containing catalyst Water in the form of steam may be added to prevent coking of the hydrocarbons duπng oxidation Reformate composition varies widely with the type of hydrocarbon fuel or feed stock and with the efficacy of the particular partial oxidation process employed However, reformate generated in this way generally includes varying amounts of carbon monoxide, carbon dioxide, water, nitrogen, trace amounts of hydrogen sulfide, and in the case of partial oxidation, ammonia Beyond these chemicals, the remainder of the reformate being methane, ethane and depending on the fuel, other higher molecular weight hydrocarbons including unsaturated and aromatic species, oxygenated species such as ethers, esthers, alcohols, aldehydes, etc Steam reforming may also be used to produce hydi ogen by promoting the following reaction Equation 1 . with a cataly st such as a nickel supported on a lef ractorv material
CnHm + nH2O nCO + (m/2 + n)H2 . where n = an integer of I or greater and m = an integer of 2 or greater toi example, Equation 2
CH4 + H2O ^ CO + 3H2
Again, reformate composition resulting from the steam reforming process varies widely with the type of hydrocarbon fuel or feed stock and with the efficacy 0 of the particular catalyst and process parameters employed Again, however, the reformate generated in this way generally includes (in addition to hydrogen) varying amounts of carbon monoxide, carbon dioxide, and water, with the remainder being methane, ethane and potentially higher molecular weight hydi ocarbons including unsaturated and aromatic species, ethers, esthers, alcohols l . aldehydes, etc Depending on the sulfur content of the fuel used, the refoi mate can include trace amounts of hydrogen sulfide
It has been proposed to use partial oxidation in combination with steam reforming with the former being upstream of and providing methane-πch reactant feed to the steam reforming step, for example see e g WO 98/08771 , published 20 3/5/98, assigned to Applicant The coupling of an exothermic partial oxidation reaction with an endothermic steam reforming reaction is sometimes referred to as "autothermal reforming," or "ATR "
Carbon monoxide produced from either partial oxidation or steam reforming can react with water (present from the prior oxidation process or 25 intentionally added to the system) according to the following water-gas-shi ft
( WGS) reaction of Equation 3 to generate more hydrogen
CO + H2O - CO2 + H2 However the extent of the WGS reaction is l imited by equil ibrium concerns At the elevated temperatures required for steam reloi mation (typical ly .() between 65()"C -980 C ) the purity or yield of hydrogen is limited by the equilibrium Hence it has been pioposed to sub|ect the teed stream emanating trom the steam retorming step to one oι more catal \ tically promoted shift steps As disclosed in WO 98/08771 such an integrated s\ stem provides foi a high temperature shi ft l eaction promoted
Figure imgf000008_0001
ΔU iron-containing catalyst, followed by a low temperature shift process promoted bv a coppei -containing catalyst In that system, the high temperature shi ft pioccss takes ad . antage of relatively higher kinetics at the higher temperature w hile sacrificing desired equilibrium I he relatively lower temperature shift process can then take advantage of a more favorable WGS equilibrium to provide a higher yield of hydrogen, while it benefits from the preliminary level of conversion in the high temperature shift
Problems exist with conventional WGS catalysts, particularly the copper- based and zinc-based catalysts used for so-called "low temperature shift," in an integrated fuel reformer These catal sts are adversely affected by many of the common reformate species discussed above such as unsaturated and aromatic compounds These catalysts are also adversely affected b> contaminants in the feed stock such as sulfur and halogen compounds, all of which can routinely exist in the reaction gas stream as it enters the "low temperature" shift catalyst down stream of the aforementioned reformer processes in an integrated system
During startup and shutdown of a dynamic reactor, the frailties of these catalysts are even more pronounced At start up, the upstream reactors are not up to peak efficiency temperatures and hence there are higher concentrations of (and perhaps more) harmful reactant species produced, such as unsaturated and aromatic compounds, which can poison these catalysts After shutdown, steam in the system can condense on the catalyst This condensed steam deactivates these conventional catalysts prematurely by permitting the copper and zinc to mobilize in the liquid phase condensate ( I e water)
Also, these conventional copper and zinc catalysts must be reduced
(usually in situ) by a controlled atmosphere artif icially being led into the reactor to control the rate ol reduction to avoid excessive heat which can spoil the catalyst Once reduced further burdensome care during manutacture and maintenance ot the reactor is needed to avoid contact with oxygen in the air, because these catalysts spontaneously oxidize in the presence of air and release heat during the process When this happens, the catalyst needs to be reduced again Fhe subsequent reduction of the catalyst is also exothermic Ultimately, the heat from exothermic reduction and/or oxidation reduces the catalyst life
The present invention addresses the above mentioned deficiencies in the art and provides additional advantages as will be disclosed more fully below
Summary of the Invention
The present invention is directed to processes and reactors for converting carbon monoxide and steam in a reformate stream into carbon dioxide and hydrogen while employing an improved catalyst The piocess includes generating
a reformate by reacting a hydrocarbon fuel via partial oxidation, steam reforming, or both The reformate is then reacted in the presence of a platinum group metal selected from the group consisting of platinum, palladium, indium, osmium,
rhodium or mixtures thereof According to another aspect of the invention, the platinum group metal is supported on a material selected from the group consisting
of an oxide of zirconium, titanium and mixtures thereof The preferable catalyst
and support is Pt/ZrO2 According to another aspect of the invention, a water gas shift reaction can be accomplished in a reformate over a wide range of temperatures (for example, between about 200°C to about 650°C ) using a single
shift catalyst
According to another aspect of the invention, an advantageous process
enhancement includes the step of introducing a predetermined amount of oxygen into the reformate for a desired period of time, oxidizing hydrocarbons, carbon monoxide and hydrogen, in the presence of the catalyst to generate heat to produce a desired temperature in the catalyst This takes advantage of the heating value of the reformate at start up, when the reformate may not yet be acceptably pure for delivery to the fuel cell.
A reactor according to the invention includes a first reactor section configured to produce reformate by a process selected from the group of partial oxidation, steam reforming, or a combination thereof. A second reactor section is put in communication with the first reactor section so as to receive the reformate. A catalyst is located in the second reactor section The catalyst comprises a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof, and a support material, for the platinum group metal, selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof. Use of this process and apparatus provides a number of advantages over prior art water gas shift catalysts. For example, the catalyst of the invention can be operated at higher temperatures than conventional "high temperature" shift catalysts containing iron. Catalysts according to the invention are also expected to have a higher activity than iron-containing catalysts. Also, as noted above, commercial Cu/ZnO catalysts or so called "low temperature shift" catalysts can undergo exothermic oxidation and reduction reactions, which in turn, can cause the catalyst temperature to rise to undesirable levels This is not the case for the catalyst of the invention, because it can be used at relatively lower metal loading due to its activity The low metal content in the Pt/Zr02 catalyst, for example, minimizes any temperature rise
Also it is believed that a strong metal support interaction ("SMSI") occurs between the platinum group metals ("PGMV) and the supports disclosed which aids in structural integrity Cu/ZnO catalysts are not known to have the added integrity provided by an SMSI interaction
Apart from the lack of an SMSI structural attribute, Cu/ZnO catalysts are also susceptible to sintering promoted by Chlorine and other halogens The Pt/Zr02 catalyst should be resistant to this form of deactivation because the melting point of PtCl is much higher than the melting point of CuCl2
According to another broad aspect of the invention, the metal catalyst is deployed on the support without the use a hahde salt The preparation method eliminates the possibility of any leftover halogen on the catalyst This will prevent any possible problems to the WGS catalyst or any downstream processes caused by halogens Platinum on ZrO2 (as discussed below) has been tested to date, but other Platinum Group Metals are also expected to work Transition metals may also benefit from the ZrO2 support and result in a more cost-efficient solution (e g ,
Cu/ZrO2 )
Notably, the catalyst of the invention does not need a special controlled reducing atmosphere for initial reduction as do the Cu Zn catalysts The catalysts of the invention can be reduced (if needed) by the constituents in the reformate stream during normal operation
It is also believed that other supports capable of producing SMSI effects may be good supports for WGS catalysts according to the invention (e g , TiO? etc )
BRIEr DESCRIPTION OF THE DRAWINGS FIG 1 is a schematic view of a reactor and process according to the present invention,
FIG 2 is a schematic view of another reactor and process according to the present invention,
FIG 3 is a schematic view of another reactor and process according to the present invention, FIG 4 is a schematic view of another reactor and process according to the present invention,
FIG 5 is a schematic view of another reactor and process according to the present invention,
FIG 6 is a schematic view of another reactor and process according to the present invention,
FIG 7 is a schematic view of another reactor and process according to the present invention,
FIG 8 is a schematic view of another reactor and process according to the present invention, FIG 9 is a schematic view of another reactor and process according to the present invention, and,
FIG 10 is a chart disclosing activity of a catalyst according to the invention at different metal loadings on a support. FIG. 1 1 is a chart disclosing the effect of ethylene on the activity of a catalyst according to the invention;
FIG. 12 is a chart disclosing the effect of sulfur on the activity of a catalyst
according to the invention; and, FIG. 13 is a chart disclosing the effect of benzene on the activity of a
catalyst according to the invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS While this invention is susceptible of embodiment in many different forms, there are shown in the drawings and will herein be described in detail, preferred embodiments of the invention with the understanding that the present disclosure is
to be considered as an exemplification of the principles of the invention and is not
intended to limit the broad aspect of the invention to the embodiments illustrated.
Preparation of a Test Catalyst
A test catalyst of l %Pt/ZrO2 was prepared by incipient wetness impregnation. According to one aspect of the invention, the platinum salt used in
preparing catalysts of the invention would preferably be generally free of
halogens, sulfur, arsenic, etc. as these species will not be completely removed by
calcination and could cause problems in a fuel processor. Hence, tetra-amine
platinum (II) nitrate, Pt(NH 4(NO3)2 ("TAPN"), was proposed. Traditional platinum compounds used for catalyst synthesis are hexachloroplatinic acid hexahydrate and Platinum(II) Chloride. These are an inexpensive source of
platinum and are more readily available than TAPN. However, these also contain chlorine which could cause system problems.
The TAPN was acquired and is commercially available from Aldπch Chemical Company, U.S.A. The ZrO: is available from Norton CPPC (Chemical Process Product Corp.) in 3mm pellets (Part No. XZ16075). Table 1 provides physical properties of the zirconium oxide used.
Figure imgf000014_0001
The 3 mm. spheres of the zirconium oxide were broken into Tyler 12-14
mesh particles. These particles were then calcined overnight at 400°C. to remove
the moisture and other volatile impurities. The water saturation capacity of the pellets was determined as follows. To 3.91 g. of ZrO2 pellets, water was added drop-wise until all of it was absorbed by the pellets. A total of 2.76 g. of water was absorbed. Thus, the water saturation capacity of the ZrO, was found to be 0 706 g. per g. of ZrO2. The surface area, pore volume, and median pore diameter are important to allow an optimum amount of Pt to be accessible to reactant molecules To prepare a 1 % Pt/ZrO2, 0.043 g. of TAPN salt was dissolved in 1 .5g water in a Pyrex™ beaker. The solution was warmed on a hot plate until no solid residue was visible at the bottom of the beaker ( l -3mins.) To this solution, 2. 1 3 g.
of pre-dried Pt/ZrO, particles of the Tyler 12- 14 mesh were added with constant
stirring. All solution was absorbed by the particles. These particles were then
dried at room temperature overnight. The particles or granules were then transferred into a flat tray and calcined in an oven using the following sequence:
(1 ) ramp from room temperature to 150°C. at 2°C./min.; (2) held isothermally at
1 50°C. for 4hrs.; (3) ramp from 150°C. to 500°C. at 2°C./min.; (4) held at 500°C.
for 8hrs.; and (5) furnace shut-down and catalyst permitted to cool within.
Test samples with 0.5%, and 5.0% platinum loading were also prepared in the same manner although the process was scaled appropriately for each metal
loading. Test Reformer
The WGS catalyst testing was performed in a single pass tubular reactor.
The reactor itself was a V." OD (10 mm ID) quartz tube. A quartz frit centered in
the tube held the catalyst in place. Catalyst particles were crushed to an average particle diameter of 1.3 mm. A bed volume of approximately 0.75 cm.3 was used,
corresponding to a catalyst mass of 0.98 g. The reactor tube was located and
controlled within a shell oven. The location of the catalyst bed allowed 6 inches of the tube to provide a preheat for the reactant gases. Test Reformate
Mass flow controllers set a dry composition and flow rate of the reactant mixture The gas passed through a humidifier, where humidity level was set by saturating the gas with water at a set temperature At the reactor exit a watei dropout trap maintained at 0°C removed moisture from the product stream befoie entering the gas chromatograph for analysis A gas chromatograph gave continuous TCD analysis of the product stream, at two-minute intervals The average concentrations of constituents comprising the test reformate used in the tests described below are disclosed TABLE 2 as volume percent
Figure imgf000016_0001
Test For Metal Loading
The catalyst used in these tests contained 0 5%, 1 0%, and 5% Pt on ZrO2 by weight Three tests were conducted to find the optimal precious metal loading The percentage of carbon monoxide conversion for each metal loading is graphically depicted in FIG 10 The percentage conversion at 215°C is tabulated in TABLE 3 for comparison
Figure imgf000016_0002
Figure imgf000017_0001
Normalized activity was calculated by choosing 215°C. as a temperature that is not in the equilibrium-controlled regime and shows significant differences
in conversion. Values shown are in units of (% conversion) per (weight % Pt). The data show a preferred effective range of loading exists between 0.5% and
5.0%. An even better range with a higher ratio of carbon monoxide conversion to weight of platinum appears to be between 0.5% to 1 % platinum. It was also noted
that a small amount of methane was detected above 260°C. during the 5% Pt runs,
where DGHSV was 8,000. Test for Cycling Stability and Resistance to Poisoning
A 0.5% PtZrO2 catalyst was made according to the above-described
process. Tests were run on the catalyst to determine if: (1 ) the catalyst would be stable upon cycling between run and shutdown cycles, where water condenses on
the catalyst upon cooling after shutdown; and, (2) whether the catalyst would be stable in a reformate stream containing certain species which can routinely appear
and are known to be harmful to conventional water-gas-shift catalysts, namely
ethylene, benzene, and sulfur.
After four cycles, no measurable activity loss (or deactivation) was seen
when the catalyst was cycled between exposure to air and exposure to process
conditions, including condensation of water on the catalyst at shutdown.
The 0.5% platinum catalyst was then run in the test reactor separately with each of ethylene, benzene, and hydrogen sulfide. The results are shown in FIGS 1 1 , 12 and 13
FIG 1 1 graphically shows that exposure to ethylene did not lower catalyst activity, as is seen with conventional WGS catalysts It was determined by chromatographic analysis that the WGS catalyst hydrogenated the ethylene to ethane, which is less detrimental to downstream processes
As seen in FIG 12, the addition of hydrogen sulfide to the reactant stream causes a transient in CO conversion, but also shows that the system stabilizes with no activity loss When the hydrogen sulfide is removed from the feed stream, the system again stabilizes to the original activity level As seen in FIG 13, no deactivation of the catalyst occurs due to exposure to benzene Reactors According to the Invention
In view of the stability and performance of the platinum zirconia catalyst as demonstrated above, the following hydrocarbon reformer reactors disclosed in FIGS 1 -9 are proposed as exemplary configurations according to the invention
FIG 1 discloses a reactor 10 having a first reactor section 12 configured to produce reformate first by partial oxidation of the hydrocarbon ("POX") in a subsection 14 and next a steam reforming of the resultant reaction stream in subsection 16 A second reactor section 18 is in communication with the first reactor section 12 so as to receive the resulting reformate
FIG ? discloses another exemplary reformer reactor 20 Reactor 20 includes a first reactor section 22 configured to produce reformate first by partial oxidation ol the hydrocarbon(s) A second reactor section 24 is in communication with the first reactor section 22 so as to receive the resulting reformate
FIG. 3 discloses a reactor 26 having a first reactor section 28 configured to produce reformate by steam reforming of the hydrocarbon feedstock A second reactor section 30 is in communication with the first reactor section 28 so as to
receive the resulting reformate
FIG. 4 discloses a reactor 32 having a first reactor section 34 configured to
produce reformate first by partial oxidation of the hydrocarbon in a subsection 36 and next a steam reforming of the resultant reaction stream in subsection 38. A second reactor section 40 is in communication with a third reactor section 42 which is in turn in communication with the first reactor section 34 so as to receive
the resulting reformate.
FIG. 5 discloses a reactor 44 having a first reactor section 46 configured to
produce reformate by partial oxidation of the hydrocarbons. A second reactor section 48 is in communication with a third reactor section 50 which is in turn in communication with the first reactor section 44 so as to receive the resulting
reformate.
FIG. 6 discloses a reactor 52 having a first reactor section 54 configured to
produce reformate by steam reforming of the hydrocarbons. A second reactor section 56 is in communication with a third reactor section 58 which is in turn in communication with the first reactor section 54 so as to receive the resulting
reformate
FIG 7 discloses a reactor 60 having a first reactor section 62 configured to
produce reformate first by partial oxidation of hydrocarbons in a subsection 64 and next a steam reforming of the resultant reaction stream (reformate) in subsection 66 A second reactor section 68 is in communication with a third reactor section 70 which is in turn in communication with the first reactor section 62 so as to
ieceive the resulting reformate FIG 8 discloses a reactor 78 having a first reactor section 80 configured to produce reformate by partial oxidation of the hydrocarbons A second reactor section 82 is in communication with a third reactor section 84 which is in turn in communication with the first reactor section 80 so as to receive the resulting
reformate FIG 9 discloses a reactor 92 having a first reactor section 94 configured to produce reformate by steam reforming of the hydrocarbons A second reactor section 96 is in communication with the first reactor section 94 so as to receive the
resulting reformate
According to the invention, a catalyst is disposed in the second reactor sections 18, 24, 30, 40, 48, 56, 76, 90 and 96 The catalyst is a platinum group metal ("PGM") selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof (but preferably is platinum) The PGM is supported on a support material selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof, but preferably zirconium oxide For PtZrO. the metal loading is preferably between 0 5% to 1 0%, platinum The catalyst and support in reactor sections 18, 24, 30, 40, 48, 56, 76, 90 and 96 may be dispersed upon a monolithic base, or may be deployed on, or in, any other well accepted form of support or base such as a powder, granules, pellets, foam, etc For stationary uses, granules appear to be preferable I lowever, for uses of reactor
10 in transportation or portable applications, a monolithic base is thought to be
pieferable Preferable monoliths are believed to include foam or reticulate type, cellular or straight channel honeycomb type, and, extruded channel-type
According to another aspect of the invention, a monolithic substrate may be fabricated of zirconium oxide In such a case, the PGM may be support
directly on the substrate.
A monolithic base may be wash-coated with zirconium oxide upon which
the metal is then dispersed. The metal may be dispersed by any known method such as an incipient wetness method Regardless of the form in which the catalyst
(PGM and support) are deployed (granules, powder, monolith, etc.) the aggregate
of the catalyst defines a "body of catalyst" to which reformate can be exposed
During the heating stage of the incipient wetness method another
advantage according to the invention is provided by the use of TAPN versus a
halogenated salt. This is because the amines will burn off more easily than halogens bonded to the platinum. It is preferable that the catalyst in any form will
be prepared from a non-halogenated salt of the PGM in question.
Preferably, the zirconium support of the preferred embodiment has a
surface area approximately about 50 m. /g., a pore volume of approximately about
0.3 cm Vg , and a median pore diameter greater than about 15 nm. Also, according to one aspect of the invention a catalyst employed in the second reactor section is resistant to poisoning by sulfur, hydrogen sulfide, ethylene, benzene, air and condensed water t he catalyst is stable and active at converting carbon monoxide to carbon dioxide, at temperatures between about 200°C. and 650°C.
The third reactor sections 42, 50, and 58, (FIGS 4-6) each contain a catalyst other than the catalyst disclosed herein, such as a conventional catalyst
suitable for promoting a water gas shift reaction in the reformate. A preferable example of such a catalyst is an iron-containing catalyst, capable of effective carbon monoxide conversion in the temperature range of about 300°C. and 650υC.
According to another aspect of the invention, the second and third reactor
sections 42, 50, 58 and 40, 48, 56 can be used cooperatively in a two-part shift
process. The reformate can be exposed to the iron-containing catalyst in the third reactor sections 42, 50, and 58 at a relatively high temperature, preferably between
300°C. and 650°C, more preferably between 350°C. and 540°C, and even more
preferably between 370°C. and 480°C. In so doing, the process can take advantage
of relatively high temperature reaction kinetics as the reformate passes through the
"high temperature shift" reactor section. The reactor thus takes advantage of the
lower cost of the iron-containing catalysts which are relatively less expensive than
the PGM catalysts disclosed.
Next, the reformate can be exposed to a PGM catalyst of the invention in
the second reaction sections at relatively a lower temperature range, preferably
between 150°C. and 320°C, more preferably between 200°C. and 320°C, and even more preferably between 230-290°C. at an inlet of the second reactor section and
200-240°C. at an outlet end of the second reactor section. In so doing, a more favorable water gas shift reaction equilibrium can be obtained at the lower
temperatures, hence providing a lower level of carbon monoxide. Also the PGM catalysts of the invention will have the advantages discussed herein over conventional "low temperature shift" catalysts such as those containing copper or zinc.
FIGS 7-9 disclose alternate reformer reactors according to other aspects of the invention. In particular, both the second and third reactor sections 76, 90 and
70, 84 (FIGS 7 and 8) contain a catalyst comprising a platinum group metal
("PGM") selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof (but preferably is platinum). The PGM is supported on a support material selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof, but preferably zirconium oxide (ZrO2).
The respective reactor sections can then take advantage of the superior water gas shift catalysts of the invention in a two-stage relatively high, then relatively low temperature shift to again first take advantage of relatively higher kinetics and then a relatively more favorable equilibrium at the lower temperature. This is possible because the catalysts posses catalytic effectiveness and stability over a wide range of effective temperatures and fuels, unlike conventional copper/zinc catalysts.
FIGS 7 and 8 also disclose optional heat exchange tubes 76 and 90 with inlets 72,
88 and outlets 74, 86, respectively, for reactors 60 and 78 to provide for active cooling in the second reactor section. This is to provide a means for controlling the temperature of the catalyst and reformate to a desired range. It should be understood that the third reactor sections could also deploy such heat exchangers for the same purpose. It will also be understood by those in the art that depending on the desired effect, the coolant can be routed co-current with the reformate flow or counter-flow, depending on the desired control or conditions
FIG 9 discloses another exemplary embodiment according to the invention The second reactor section 96 includes a helical heat exchange tube 102
throughout a major extent of the PGM catalyst bed The essential distinction from
the other disclosed reactors is that the reactor section 96 is configured as necessary
(l e the form of catalyst (granules, monolith, etc ), the direction of coolant flow
(co-current, counter-current), flow rates of reformate and coolant, etc ) to provide a
relatively continuous gradient of temperature from an inlet end 103 of the second reactor section to the end 104 near the outlet 106 of the second reactor section
This is again to take advantage of the wide temperature range of the catalysts of the invention The continuous gradient will be most advantageous to the extent it tracks a carbon monoxide concentration gradient through the second reactor section to give the optimal reaction kinetics/favorable equilibrium balance at all
times The catalysts of the invention are stable in the presence of air Thus, it is
proposed that the PGM catalysts, in particular platinum, can also be used to oxidize hydrocarbons, carbon monoxide, and the hydrogen enriched stream, upon
start-up of a reactor to speed the process of bringing the WGS catalyst to an
effective operating temperature through the exothermic oxidation reaction
Significant hydrogen is produced at startup in a partial oxidation reaction, a steam reforming reaction or ATR Since the hydrogen produced in the reformate during startup can not be used while carbon monoxide levels are still high, it is
advantageous to use the heating value of that hydrogen to directly heat the WGS catalyst bed responsible for reducing carbon monoxide levels
FIG 1 discloses such an arrangement An inlet 19 is provided to the second reactor section 18 to permit a flow oi an oxygen containing gas, such as air The air can be added to the reformate stream through the inlet 19 for a predetermined time until a desired temperature is achieved in the catalyst and/or the reformate during start up Such a reactor configuration would be particularly useful in transportation applications where speed to full power delivery is important In such applications it would be advantageous to be able to provide comparable speed to full power delivery now provided by internal combustion engines While the specific embodiments have been illustrated and described, numerous modifications come to mind without significantly departing from the spirit of the invention and the scope of protection is only limited by the scope of the accompanying Claims
For example, the reactors described herein are described in terms of "reactor sections " It is contemplated that these sections will provide benefits according to the invention whether or not these sections are incorporated into integrated unitary structures having multiple sections or are configured as stand alone, modular sections as is desired The inventions disclosed and claimed herein are concerned with providing reactor configurations and structures wherein 'reactor sections," are coordinated and arranged to provide the sequencing of reactions necessary to accommodate the processes contemplated

Claims

CLAIMSWe claim:
1 . A process for converting carbon monoxide and water in a reformate stream into carbon dioxide and hydrogen comprising:
generating a reformate by reacting a hydrocarbon via partial oxidation, steam reforming, or both, including autothermal reforming; and
reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof.
2. The process of claim 1 wherein the platinum group metal is supported on a material selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof.
3. The process of claim 1 wherein the reacting the reformate step includes maintaining the reaction at a temperature between about 200°C. to about 650°C.
4. The process of claim 2 wherein the reacting the reformate step includes maintaining the reaction at a temperature between about 200°C. to about 650°C.
5. The process of claim 1 wherein the reacting the reformate step includes maintaining the reaction at a temperature between about 150°C. and about 320°C, more preferably between 200°C. and 320°C, and even more preferably between 230-290°C. at an inlet of the second reactor section.
6. The process of claim 2 wherein the reacting the reformate step includes maintaining the reaction at a temperature between about 200°C. to about 320°C.
7. The process of claim 1 wherein the reacting the reformate step includes maintaining the reaction at a first temperature between about 230°C. to about 290°C. at an inlet of a reactor section containing the catalyst and at a second temperature between about 200°C and about 240°C at an outlet end of the reactor section
8 The process of claim 2 wherein the reacting the reformate step includes maintaining the reaction at a first temperature between about 230°C to about 290°C at an inlet of a reactor section containing the catalyst and at a second temperature between about 200°C and about 240°C at an outlet end of the reactor section
9 The process of claim 1 including the step of reacting the reformate in the presence of an iron containing catalyst before reacting the reformate in the presence of the platinum group metal.
10 The process of claim 2 including the step of reacting the reformate in the presence of an iron containing catalyst before reacting the reformate in the presence of the platinum group metal
1 1 The process of claim 3 including the step of reacting the reformate in the presence of an iron containing catalyst before reacting the reformate in the presence of the platinum group metal.
12. The process of claim 9 wherein the step of reacting the reformate in the presence of an iron containing catalyst includes maintaining the reaction at a temperature between about 300°C. and about 650°C.
13 The process of claim 10 wherein the step of reacting the reformate in the presence of an iron containing catalyst includes maintaining the reaction at a temperature between about 300°C. and about 650°C.
14 The process of claim 1 1 wherein the step of reacting the reformate in the presence of an iron containing catalyst includes maintaining the reaction at a temperature between about 300°C and about 650υC
15. The process of claim 9 wherein the step of reacting the reformate in the presence of an iron containing catalyst includes maintaining the reaction at a temperature between about 350°C. and 540°C.
16. The process of claim 10 wherein the step of reacting the reformate in the presence of an iron containing catalyst includes maintaining the reaction at a temperature between about 350°C. and about 540°C.
17. The process of claim 1 1 wherein the step of reacting the reformate in the presence of an iron containing catalyst includes maintaining the reaction at a temperature between about 350°C. and about 540°C.
18. The process of claim 5 including the steps of:
reacting the reformate in the presence of an iron containing catalyst before reacting the reformate in the presence of the platinum group metal; and,
maintaining the reaction in the presence of the iron containing catalyst at a temperature between about 300°C. and about 650°C. when in the presence of the iron containing catalyst.
19. The process of claim 6 including the steps of:
reacting the reformate in the presence of an iron containing catalyst before reacting the reformate in the presence of the platinum group metal; and,
maintaining the reaction in the presence of the iron containing catalyst at a temperature between about 300°C. and about 650°C. when in the presence of the iron containing catalyst.
20. The process of claim 1 wherein the reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof includes reacting the reformate first in the presence of a first portion of said catalyst at a first temperature between about 300°C to about 650°C and then reacting the resultant reformate in the presence of a second portion of said catalyst while maintaining the reaction at a second temperature between about 200°C and about 400°C
21 The process of claim 2 wherein the reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium indium, osmium, rhodium and mixtures thereof includes reacting the reformate first in the presence of a first portion of said catalyst at a first temperature between about 300°C to about 650°C and then reacting the resultant reformate in the presence of a second portion of said catalyst while maintaining the reaction at a second temperature between about 200°C and about 400°C
22 The process of claim 1 wherein the reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, indium, osmium, rhodium and mixtures thereof includes reacting the reformate first in the presence of a first portion a body of said catalyst at a first temperature between about 350°C to about 540°C and then reacting the resultant reformate in the presence of a second portion of the body of said catalyst while maintaining the reaction at a second temperature between about 200°C and about 400°C
23 The process of claim 2 wherein the reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, indium, osmium, rhodium and mixtures thereof includes reacting the reformate first in the presence of a first portion of said catalyst at a first temperature between about 300°C to about 650°C and then reacting the resultant reformate in the presence of a second portion of said catalyst while maintaining the reaction at a second temperature between about 200°C and about 400°C
24 The process of claim 1 wherein the reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium indium, osmium, rhodium and mixtures thereof includes providing a body of said catalyst for traverse of the reformate there along from a beginning of the catalyst body through an end of the catalyst body; and,
maintaining a gradient of reaction temperatures along the body, the gradient decreasing in temperature from the beginning of the body to the end of the body.
25. The process of claim 2 wherein the reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof includes:
providing a body of said catalyst for traverse of the reformate there along from a beginning of the catalyst body through an end of the catalyst body; and,
maintaining a gradient of reaction temperatures along the body, the gradient decreasing in temperature from the beginning of the body to the end of the body.
26. The process of claim 24 wherein the gradient is defined by a first temperature near the beginning of the body between about 260°C. to about 650°C. and a second temperature near the end of the body between about 175°C. to about 345°C .
27. The process of claim 25 wherein the gradient is defined by a first temperature near the beginning of the body between about 260°C. to about 650°C. and a second temperature near the end of the body between about 175°C. to about 345°C.
28. The process of claim 26 wherein the gradient is defined by a first temperature near the beginning of the body between about 260°C. to about 650°C. and a second temperature near the end of the body between about 175°C. to about 300°C.
29. The process of claim 25 wherein the gradient is defined by a first temperature near the beginning of the body between about 350°C. to about 650°C. and a second temperature near the end of the body between about 175°C. to about 275°C.
30 The process of claim 2 wherein the reacting the reformate step includes maintaining the reaction at a temperature between about 150"C to about 250°C
3 1 The process of claim 1 wherein the step of reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, indium, osmium, rhodium and mixtures thereof, includes
introducing a predetermined amount of oxygen into the reformate for a desired period of time; and,
promoting oxidation of constituents in the reformate by the presence of the catalyst to generate heat to a desired temperature in the catalyst
32. The process of claim 2 wherein the step of reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof, includes
introducing a predetermined amount of oxygen into the reformate for a desired period of time; and,
promoting oxidation of constituents in the reformate by the presence of the catalyst to generate heat to a desired temperature in the catalyst.
33. The process of claim 2 wherein the generating a reformate step provides a resulting reformate having carbon monoxide, carbon dioxide, nitrogen, hydrogen, and water, wherein the water constitutes above 10% of the reformate by volume.
34 The process of claim 1 wherein the generating step includes generating a reformate having a carbon monoxide concentration of greater than about 10% by volume
35 The process ol claim 2 wherein the generating step includes generating a reformate having a carbon monoxide concentration of greater than about 10% by volume
36. The process of claim 1 wherein the generating step includes generating a reformate having a water concentration of greater than about 15% by volume.
37. The process of claim 2 wherein the generating step includes generating a reformate having a water concentration of greater than about 15% by volume.
38. The process of claim 34 wherein the generating step includes generating a reformate having a water concentration of greater than about 15% by volume.
39. The process of claim 35 wherein the generating step includes generating a reformate having a water concentration of greater than about 15% by volume.
40. The process of claim 1 wherein the generating step includes generating a reformate having an aliphatic hydrocarbon concentration between about 0.01 % to about 0.50% by volume.
41. The process of claim 2 wherein the generating step includes generating a reformate having an aliphatic hydrocarbon concentration between about 0.01% to about 0.50% by volume.
42. The process of claim 38 wherein the generating step includes generating a reformate having an aliphatic hydrocarbon concentration between about 0.01% to about 0.50% by volume.
43. The process of claim 39 wherein the generating step includes generating a reformate having an aliphatic hydrocarbon concentration between about 0.01% to about 0.50% by volume.
44. The process of claim 1 wherein the generating step includes generating a reformate having one or more non-aliphatic hydrocarbon constituents selected from the group of: an alcohol, an ester, an ether, an acid, an aldehyde, an unsaturated non-aromatic, an aromatic, and a cyclic.
45 The process of claim 2 wherein the generating step includes generating a i ctormate having one or more non-aliphatic, carbon-based constituents selected fiom the group of an alcohol, an ester, an ether, an acid, an aldehyde, an unsaturated non-aromatic, an aromatic, and a cyclic
46 fhe process of claim 42 wherein the generating step includes generating a leloi mate having one or more non-aliphatic hydrocarbon constituents selected fiom the group of: an alcohol, an ester, an ether, an acid, an aldehyde, an unsaturated non-aromatic, an aromatic, and a cyclic
47 The process of claim 43 wherein the generating step includes generating a reformate having one or more non-aliphatic hydrocarbon constituents selected fi om the group of: an alcohol, an ester, an ether, an acid, an aldehyde, an unsaturated non-aromatic, an aromatic, and a cyclic
48 The process of claim 2 wherein the generating step includes generating a reformate having an amount of unconverted hydrocarbon f uel
49 The process of claim 1 wherein the generating step includes generating a reformate that includes hydrogen sulfide.
50 The process of claim 2 wherein the generating step includes generating a i e formate that includes hydrogen sulfide.
51 The process of claim 1 wherein the generating step includes partial oxidation and the reformate includes ammonia.
52 The process of claim 2 wherein the generating step includes partial oxidation and the reformate includes ammonia
53 A process for converting carbon monoxide and water in a reformate stream into carbon dioxide and hydrogen via a water-gas-shitt reaction, comprising' generating a leformate by reacting a hydrocarbon via partial oxidation, steam leforming, 01 both,
reacting the reformate in the presence of a catalyst that (1) promotes a watei gas shift leaction of carbon monoxide to carbon dioxide and (u) is active and stable, at temperatures between about 200°C to about 650°C
54 The process of claim 54 including the step of reacting the reformate in the presence of a platinum group metal selected from the group consisting of platinum, palladium, indium, osmium, rhodium and mixtures thereof
55 The process of claim 55 including the step of supporting the platinum group metal is supported on a material selected from the group consisting of an oxide of zirconium, an oxide of titanium and mixtures thereof
56 A piocess for converting carbon monoxide and water in a l efoi mate stream into carbon dioxide and hydrogen comprising via a water-gas-shift reaction, comprising
generating a reformate by reacting a hydrocarbon via partial oxidation, steam reforming, or both, and,
reacting the reformate in the presence of a catalyst that promotes water gas shift of carbon monoxide to carbon dioxide and is resistant to loss of activity by exposure to any one of the constituents selected from the group of sulfur, hydrogen sulfide, ethylene, benzene, air and condensed water
57 A reactor comprising
a first reactor section configured to produce reformate by a process selected from the group ol partial oxidation, steam reforming, or a combination thereof,
a second reactor section in communication with the first reactor section so as to receive the rctormate. a catalyst in the second reactor section comprising, a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof; and,
a support material, for the platinum group metal, selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof
58. The reactor of claim 58, further comprising a monolithic base in the second reaction section upon which the catalyst and support are dispersed.
59. The reactor, as defined in claim 59, wherein the platinum group metal is platinum and the support material is an oxide of zirconium.
60. The reactor, as defined in claim 60, wherein platinum is in the range of from about 0.1% to about 3% by weight with respect to the oxide of zirconium.
61. The reformer of claim 60, wherein the catalyst is deployed as a wash-coat of an oxide of zirconium on a monolithic base, and the platinum being impregnated on of the oxide of zirconium by an incipient wetness process employing a non- halogenated salt of platinum.
62. The reactor, as defined in claim 60, wherein the oxide of zirconium has a surface area approximately about 50 m. /g., a pore volume of approximately about 0.3 cm.3/g., and a median pore diameter greater than about 15 nm.
63. The reactor, as defined in claim 60, wherein the catalyst is formed by dispersing a non-halogenated platinum salt on a material selected from the group consisting of an oxide of zirconium and titanium, and mixtures thereof.
64. The reactor, as defined in claim 58, wherein the catalyst is resistant to poisoning by sulfur, hydrogen sulfide, ethylene, benzene, air and condensed water.
65. The reactor, as defined in claim 58, wherein the catalyst is stable at temperatures between about 200υC. and 650°C.
66. The reactor, as defined in claim 58, wherein the reactor includes a source for providing an oxygen-containing gas to the second reactor section and the catalyst promotes combustion of hydrogen and carbon monoxide in the presence of oxygen
67. The reactor, as defined in claim 9, further comprising a temperature control for maintaining the reactor at a temperature between about 200°C to about 650°C.
68. A reactor comprising:
a first reactor section configured to produce reformate by a process selected from the group of partial oxidation, steam reforming, or a combination thereof;
a second reactor section in communication with the first reactor section so as to receive the reformate;
a third reactor section in communication with the second so as to receive reformate from the second reactor section;
a catalyst in the second reactor section comprising an iron-containing catalyst suitable for promoting a water-gas shift reaction at a temperature in the range of about 350°C. to about 500°C,
a catalyst in the third reactor section comprising, a platinum group metal selected from the group consisting of platinum, palladium, iridium, osmium, rhodium and mixtures thereof, and,
a support material, for the platinum group metal, selected from the group consisting of an oxide of zirconium, titanium and mixtures thereof.
69 An improved process for converting carbon monoxide and water in a reformate stream into hydrogen and carbon dioxide, characterized in that a reformate, which is generated by one or more of partial oxidation, steam reforming, autothermal l eforming, is reacted in a reactor with a catalyst, wherein the catalyst comprises a metal selected from platinum, palladium, iridium, osmium, rhodium, and mixtures thereof, and wherein said metal is deposited on a support of a zirconium oxide.
70. The process of claim 69 wherein the step of reacting the reformate includes maintaining the reaction at a temperature in the range of about 200°C. to 650°C.
71 . The process of claim 73 wherein the range of temperature is between about 200°C. and 320°C.
72. The process of claim 69 wherein the range of temperature is between about 150° and 250°C.
73. The process of claim 69 wherein the reactor has an inlet section and an outlet, and wherein the inlet section is maintained in a range of about 230° to 290°C.
74. The process of claim 76 wherein the temperature of the outlet is in the range of about 200° and 240°C. and is not greater than the temperature of the inlet.
75. The process of claim 69 further including the step of reacting the reformate stream with an iron-containing catalyst before reacting it with the catalyst of claim 1.
76. The process of claim 78 wherein the step of reacting the reformate in the presence of the iron containing catalyst includes maintaining the reaction at a temperature in the range of about 300°C. and 600°C. during contact with said iron catalyst.
77. The process of claim 79 wherein the temperature is in the range of about 350° to 540°C.
78. The process of claim 69 wherein the catalyst is disposed in a first body and a second body, wherein the first body is maintained between about 350° to 540°C. and the second body is maintained between about 200° and 400°C.
79. The process of claim 69 wherein the catalyst is provided as at least one body. wherein a gradient of temperature is provided along said body in a direction substantially the same as the direction of reformate flow through said body.
80. The process of claim 82 wherein the gradient is defined by a first temperature near the beginning of said body between about 260° and 650°C, and a second temperature near the end of the body between about 175° and 345°C, wherein the second temperature is lower that the first temperature.
81. The process of claim 69 wherein the reaction step further includes introduction of a predetermined amount of oxygen into said reaction, and promoting the oxidation of the reformate by the oxygen thereby generating heat to increase the temperature of the catalyst.
82. The process of claim 69 wherein the catalyst promotes the water shift reaction and is resistant to inactivation by at least one of a sulfur-containing material, an ethylenically unsaturated or aromatic material, a nitrogen-containing material, and liquid water.
83. A reactor constructed and ananged for the execution of the process of claim 69.
84. The process of claim 1 including the initial step of forming a monolithic base from the zirconium oxide and supporting the platinum group metal directly on the monolith.
PCT/US2000/012012 1999-05-03 2000-05-03 Process for converting carbon monoxide and water in a reformate stream and apparatus therefore WO2000066486A1 (en)

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AT00928761T ATE272025T1 (en) 1999-05-03 2000-05-03 METHOD FOR CONVERTING CARBON MONOXIDE AND WATER IN A REFORMATE GAS STREAM AND DEVICE THEREFOR
DE60012499T DE60012499D1 (en) 1999-05-03 2000-05-03 METHOD FOR CONVERTING CARBON MONOXIDE AND WATER IN A REFORMATE GAS FLOW AND DEVICE THEREFOR
JP2000615329A JP2002543032A (en) 1999-05-03 2000-05-03 Method for converting carbon monoxide and water in a reformate stream and apparatus therefor
CA002372543A CA2372543A1 (en) 1999-05-03 2000-05-03 Process for converting carbon monoxide and water in a reformate stream and apparatus therefore
AU46945/00A AU768826B2 (en) 1999-05-03 2000-05-03 Process for converting carbon monoxide and water in a reformate stream and apparatus therefore
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Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1136441A2 (en) * 2000-03-21 2001-09-26 dmc2 Degussa Metals Catalysts Cerdec AG Method for the catalytic conversion of carbon monoxide in a hydrogen containing gas mixture
EP1136442A3 (en) * 2000-03-21 2002-08-21 OMG AG & Co. KG Method for the catalytic conversion of carbon monoxide in a hydrogen containing gas mixture with improved cold start and catalyst therefor
US6562315B2 (en) 2000-09-25 2003-05-13 Engelhard Corporation Suppression of methanation activity by a water gas shift reaction catalyst
US6881703B2 (en) 2001-08-08 2005-04-19 Corning Incorporated Thermally conductive honeycombs for chemical reactors
US6913739B2 (en) 2000-09-25 2005-07-05 Engelhard Corporation Platinum group metal promoted copper oxidation catalysts and methods for carbon monoxide remediation
US7632778B2 (en) 2004-01-16 2009-12-15 Süd-Chemie AG Device for the generation of hydrogen
EP1785394A3 (en) * 2005-11-10 2009-12-30 Samsung SDI Co., Ltd. Reformer and Method of Operating a Reformer

Families Citing this family (44)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3473898B2 (en) * 1999-04-22 2003-12-08 松下電器産業株式会社 Hydrogen purification equipment
FR2807746B1 (en) * 2000-04-13 2002-12-13 Air Liquide METHOD FOR PRODUCING A MIXTURE COMPRISING HYDROGEN AND CO
US7338644B2 (en) * 2000-04-17 2008-03-04 Shell Oil Company Fuel processor
DE10025032A1 (en) * 2000-05-20 2001-11-29 Dmc2 Degussa Metals Catalysts Process for the autothermal, catalytic steam reforming of hydrocarbons
JP2002173370A (en) * 2000-12-01 2002-06-21 Toyota Central Res & Dev Lab Inc Titania-based porous body and catalyst
EP1354853A4 (en) * 2001-01-26 2009-08-19 Panasonic Corp Hydrogen purification device and fuel cell power generation system
US6652830B2 (en) * 2001-02-16 2003-11-25 Battelle Memorial Institute Catalysts reactors and methods of producing hydrogen via the water-gas shift reaction
US20020174603A1 (en) * 2001-03-23 2002-11-28 Shabbir Ahmed Method for generating hydrogen for fuel cells
US6713040B2 (en) * 2001-03-23 2004-03-30 Argonne National Laboratory Method for generating hydrogen for fuel cells
US6967063B2 (en) * 2001-05-18 2005-11-22 The University Of Chicago Autothermal hydrodesulfurizing reforming method and catalyst
US6821494B2 (en) * 2001-07-31 2004-11-23 Utc Fuel Cells, Llc Oxygen-assisted water gas shift reactor having a supported catalyst, and method for its use
DE10157155A1 (en) * 2001-11-22 2003-06-12 Omg Ag & Co Kg Process for the catalytic autothermal steam reforming of higher alcohols, especially ethanol
US6846585B2 (en) * 2002-03-08 2005-01-25 General Motors Corporation Method for quick start-up of a fuel processing system using controlled staged oxidation
DE10225945A1 (en) * 2002-06-11 2003-12-24 Basf Ag Process for the production of hydrogenous gases
US6790432B2 (en) * 2002-06-12 2004-09-14 Engelhard Corporation Suppression of methanation activity of platinum group metal water-gas shift catalysts
US7041271B2 (en) * 2002-10-10 2006-05-09 Praxair Technology, Inc. Integrated olefin recovery and hydrogen production from refinery off-gases
US7459224B1 (en) 2002-11-26 2008-12-02 General Motors Corporation Methods, apparatus, and systems for producing hydrogen from a fuel
US7105148B2 (en) * 2002-11-26 2006-09-12 General Motors Corporation Methods for producing hydrogen from a fuel
EP1578529A2 (en) * 2002-12-20 2005-09-28 Honda Giken Kogyo Kabushiki Kaisha Platinum and rhodium and/or iron containing catalyst formulations for hydrogen generation
CA2510656A1 (en) * 2002-12-20 2004-07-15 Honda Giken Kogyo Kabushiki Kaisha Platinum-ruthenium containing catalyst formulations for hydrogen generation
CA2675767A1 (en) * 2002-12-20 2004-07-15 Honda Giken Kogyo Kabushiki Kaisha Platinum-free ruthenium-cobalt catalyst formulations for hydrogen generation
EP1578688A2 (en) * 2002-12-20 2005-09-28 Honda Giken Kogyo Kabushiki Kaisha Catalyst formulations for hydrogen generation
US20040197246A1 (en) * 2003-04-04 2004-10-07 Texaco Inc. Fuel processing reactor with internal heat exchange for low pressure gas stream
US7153334B2 (en) * 2003-05-21 2006-12-26 General Motors Corporation Fuel reforming system and method of operation
DE112005000391T5 (en) * 2004-02-17 2007-12-27 Modine Manufacturing Co., Racine Integrated fuel processing plant for decentralized hydrogen production
US7399326B2 (en) * 2004-03-04 2008-07-15 General Motors Corporation Carbon monoxide clean-up in a PEM fuel cell system
US20070196267A1 (en) * 2004-03-12 2007-08-23 Carpenter Brandon S Hydrogen Generator Apparatus And Start-Up Processes
US7510696B2 (en) * 2005-02-07 2009-03-31 Air Products And Chemicals, Inc. Method and apparatus for the production of hydrogen-rich gas
GB2423489A (en) * 2005-02-25 2006-08-30 Johnson Matthey Plc Water gas shift reactor
US20070183968A1 (en) * 2005-08-03 2007-08-09 Todd Healey Water-gas shift and reforming catalyst and method of reforming alcohol
US7435275B2 (en) * 2005-08-11 2008-10-14 Delphi Technologies, Inc. System and method of heating an exhaust treatment device
JP4813169B2 (en) * 2005-12-14 2011-11-09 株式会社ティラド Reformer
US20070175094A1 (en) * 2006-01-30 2007-08-02 Reinke Michael J Integrated autothermal reformer recuperator
JP2009528249A (en) * 2006-02-27 2009-08-06 エンサイン−ビツクフオード・エアロスペース・アンド・デフエンス・カンパニー Solid hydrogen fuel element and manufacturing method thereof
US20080014494A1 (en) * 2006-07-11 2008-01-17 Coca Iordache Catalysts Including Metal Oxide For Organic Fuel Cells
US20080069765A1 (en) * 2006-09-19 2008-03-20 Weibin Jiang Catalyst configuration and methods for syngas production
US20080131361A1 (en) * 2006-12-05 2008-06-05 Diwakar Garg Process and apparatus for the production of hydrogen gas
US20080128655A1 (en) * 2006-12-05 2008-06-05 Diwakar Garg Process and apparatus for production of hydrogen using the water gas shift reaction
EP2218678A4 (en) * 2007-11-13 2014-03-19 Panasonic Corp Apparatus for treating fuel and method of starting the same
JP5818502B2 (en) * 2011-04-28 2015-11-18 本田技研工業株式会社 Fuel cell module
CN103143347B (en) * 2013-02-26 2015-02-04 四川中自尾气净化有限公司 Sulfur-tolerant oxidation catalyst and preparation method thereof
RU2561077C2 (en) * 2013-07-11 2015-08-20 Общество с ограниченной ответственностью "ВТР" Method of obtaining hydrogen from hydrocarbon raw material
KR101771303B1 (en) * 2015-02-16 2017-08-24 한국가스공사 Fuel processor
CN107816730B (en) * 2016-09-14 2019-03-26 中国石油化工股份有限公司 A kind of device and method of catalysis burning removing VOC

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0213840A2 (en) * 1985-08-30 1987-03-11 Imperial Chemical Industries Plc Hydrogen production
EP0361648A1 (en) * 1988-07-22 1990-04-04 Imperial Chemical Industries Plc Hydrogen production including a shift reaction process
EP0602864A2 (en) * 1992-12-18 1994-06-22 Johnson Matthey Public Limited Company Palladium containing metal oxide catalyst

Family Cites Families (36)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3088919A (en) * 1958-09-10 1963-05-07 Engelhard Ind Inc Treatment of gases
US3471399A (en) 1967-06-09 1969-10-07 Universal Oil Prod Co Hydrodesulfurization catalyst and process for treating residual fuel oils
US3830752A (en) 1968-09-20 1974-08-20 Union Oil Co Hydrocarbon conversion catalysts
US3609099A (en) 1969-09-08 1971-09-28 Union Oil Co Method of activating impregnated catalyst
CA979180A (en) * 1972-04-12 1975-12-09 Janice L. Stiles Process for depositing noble metal catalysts
US3900646A (en) * 1973-02-21 1975-08-19 Robert A Clyde Method of plating metal uniformly on and throughout porous structures
US3965040A (en) * 1974-09-25 1976-06-22 Gulf Research & Development Company Process for preparing catalyst
US4238468A (en) * 1978-08-30 1980-12-09 Engelhard Minerals And Chemicals Corporation Ammonia manufacturing process
US4743570A (en) 1979-12-21 1988-05-10 Varian Associates, Inc. Method of thermal treatment of a wafer in an evacuated environment
US4844837A (en) 1982-09-30 1989-07-04 Engelhard Corporation Catalytic partial oxidation process
JPS59199042A (en) 1983-04-28 1984-11-12 Nissan Motor Co Ltd Catalyst for reforming methanol
DE3340569A1 (en) 1983-11-09 1985-05-23 Sued Chemie Ag CATALYST FOR THE PRODUCTION OF SYNTHESIS GAS OR FROM HYDROGEN AND METHOD FOR THE PRODUCTION THEREOF
US4721611A (en) 1984-03-02 1988-01-26 Imperial Chemical Industries Plc Hydrogen production
JPS63272136A (en) 1987-04-30 1988-11-09 Tokyo Electric Power Co Inc:The Time division multiplex multiple access communication system
US5312789A (en) 1987-05-27 1994-05-17 Minnesota Mining And Manufacturing Company Abrasive grits formed of ceramic, impregnation method of making the same and products made therewith
JPS6434443A (en) 1987-07-14 1989-02-03 Lonza Ag Catalyst for oxidizing carbon compound
US5061464A (en) 1988-11-14 1991-10-29 Johnson Matthey, Inc. Oxidation process and catalyst for use therefor
US5223236A (en) 1988-12-16 1993-06-29 Tosoh Corporation Method for exhaust gas cleaning
US5134109A (en) 1989-07-07 1992-07-28 Idemitsu Kosan Company Limited Catalyst for reforming hydrocarbon with steam
JPH0380937A (en) 1989-08-25 1991-04-05 Tonen Corp Steam reforming catalyst of hydrocarbon and preparation thereof
JPH0492945A (en) 1990-08-06 1992-03-25 Fujitsu Ltd Connection control system for input/output controller
US5259754A (en) 1990-11-26 1993-11-09 Catalytica, Inc. Partial combustion catalyst of palladium on a zirconia support and a process for using it
JP2848970B2 (en) 1990-12-21 1999-01-20 日本碍子株式会社 Honeycomb heater and catalytic converter
JPH0558159A (en) 1991-08-30 1993-03-09 Iseki & Co Ltd Ventilating device for mobile vehicle cabin
EP0609840B1 (en) * 1993-02-02 1996-12-18 Nippon Paint Co., Ltd. Polyurea resin composition
ATE153987T1 (en) 1993-04-22 1997-06-15 Mannesmann Ag USE OF A CATALYST TO PRODUCE SYNTHESIS GAS
US5877377A (en) * 1993-08-14 1999-03-02 Johnson Matthey Public Limited Company Metal oxide catalyst and use thereof in chemical reactions
US5500198A (en) 1993-10-26 1996-03-19 Massachusetts Institute Of Technology Composite catalyst for carbon monoxide and hydrocarbon oxidation
JP3479941B2 (en) * 1993-11-30 2003-12-15 ヤマハマリン株式会社 Ship propulsion device
EP0715879A1 (en) 1994-12-09 1996-06-12 Kabushiki Kaisha Toyota Chuo Kenkyusho Catalyst for purifying exhaust gases and process for producing the same
DE19603222C1 (en) 1996-01-30 1997-08-28 Daimler Benz Ag Method and device for obtaining a hydrogen-rich, low-carbon monoxide gas
DE19625093A1 (en) * 1996-06-24 1998-01-02 Bayer Ag Process for the production of carbon monoxide and hydrogen
US6409974B1 (en) * 1998-12-11 2002-06-25 Uop Llc Water gas shift process and apparatus for purifying hydrogen for use with fuel cells
US6254807B1 (en) * 1998-01-12 2001-07-03 Regents Of The University Of Minnesota Control of H2 and CO produced in partial oxidation process
TW460570B (en) * 1998-04-16 2001-10-21 Haldor Topsoe As Process and unit for the combined production of ammonia synthesis gas and power
US6342197B1 (en) * 2000-03-29 2002-01-29 Uop Llc Multi-stage combustion for fuel processing for use with fuel cell

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0213840A2 (en) * 1985-08-30 1987-03-11 Imperial Chemical Industries Plc Hydrogen production
EP0361648A1 (en) * 1988-07-22 1990-04-04 Imperial Chemical Industries Plc Hydrogen production including a shift reaction process
EP0602864A2 (en) * 1992-12-18 1994-06-22 Johnson Matthey Public Limited Company Palladium containing metal oxide catalyst

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
LADEBECK J ET AL: "CR-FREE IRON-CATALYSTS FOR WATER-GAS SHIFT REACTION", STUDIES IN SURFACE SCIENCE AND CATALYSIS,NL,ELSEVIER SCIENCE B.V., AMSTERDAM, 1995, pages 1079 - 1083, XP000199574, ISSN: 0167-2991 *

Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1136441A2 (en) * 2000-03-21 2001-09-26 dmc2 Degussa Metals Catalysts Cerdec AG Method for the catalytic conversion of carbon monoxide in a hydrogen containing gas mixture
EP1136442A3 (en) * 2000-03-21 2002-08-21 OMG AG & Co. KG Method for the catalytic conversion of carbon monoxide in a hydrogen containing gas mixture with improved cold start and catalyst therefor
EP1136441A3 (en) * 2000-03-21 2002-08-21 OMG AG & Co. KG Method for the catalytic conversion of carbon monoxide in a hydrogen containing gas mixture
US6555088B1 (en) 2000-03-21 2003-04-29 Dmc2 Degussa Metal Catalysts Cerdec Ag Method for catalytic conversion of carbon monoxide in a hydrogen-containing gas mixture with improved cold start behavior
US6723298B1 (en) 2000-03-21 2004-04-20 Dmc2 Degussa Metals Catalysts Cerdec Ag Method for catalytic conversion of carbon monoxide in a hydrogen-containing gas mixture
US6562315B2 (en) 2000-09-25 2003-05-13 Engelhard Corporation Suppression of methanation activity by a water gas shift reaction catalyst
US6913739B2 (en) 2000-09-25 2005-07-05 Engelhard Corporation Platinum group metal promoted copper oxidation catalysts and methods for carbon monoxide remediation
US6881703B2 (en) 2001-08-08 2005-04-19 Corning Incorporated Thermally conductive honeycombs for chemical reactors
US7632778B2 (en) 2004-01-16 2009-12-15 Süd-Chemie AG Device for the generation of hydrogen
EP1785394A3 (en) * 2005-11-10 2009-12-30 Samsung SDI Co., Ltd. Reformer and Method of Operating a Reformer
US7838161B2 (en) 2005-11-10 2010-11-23 Samsung Sdi Co., Ltd. Reformer and fuel cell system using the same

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