EP0977293A2

Thermally intergrated two-staged methanol reformer and method of operation

Abstract

A thermally integrated two-stage methanol reformer including a heat exchanger (6,42) and first (20,44) and second (30,46) reactors colocated in a common housing (50) in which a gaseous heat transfer medium (4) circulates to carry heat from the heat exchanger (6,42) into the reactors (20,30,44,46). The heat transfer medium (4) comprises principally hydrogen, carbon dioxide, methanol vapor and water vapor formed in a first stage reforming reaction. A small portion of the circulating heat transfer medium (4) is drawn off and reacted in a second stage reforming reaction which substantially completes the reaction of the methanol and water remaining in the drawn-off portion. Preferably, a PrOx reactor (36,40) will be included in the housing (50) upstream of the heat exchanger (6,42) to supplement the heat provided by the heat exchanger (6,42).

EP0977293A2, drawing sheet 1
Sheet 1 of 19

Term

Term ended

Projected expiry passed 3 March 2019, 7.6 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

34 claims: 8 independent, 26 dependent

  1. 1
    A thermally-integrated, fuel processor including a reformer for the two stage conversion of methanol into a H 2 -rich fuel gas comprising:a. a housing (50);b. a fan (2,48) for recirculating a gaseous heat transfer medium (4) through said housing (50), said medium (4) comprising first concentrations of water vapor, hydrogen, carbon dioxide and methanol vapor;c. a water inlet (34,72) to said housing (50) for introducing water into said medium (4);d. a methanol inlet (32,70) to said housing (50) for introducing methanol into said medium (4);e. a heater (6,42) within said housing (50) downstream of said fan (2,48) in the direction of flow of said medium (4) for heating said medium (4);f. a first reactor (20,44) within said housing (50) downstream from said heater (6,42) for substantially isothermally converting a portion of said medium (4) to a reformate gas having second concentrations of hydrogen, and carbon dioxide greater than said first concentrations, and concentrations of said water and methanol vapors less than said first concentrations, said first reactor (20,44) including a plurality of first (24,94) and second channels (22,98) separated each from the other by a thermally conductive partition (93), said first channels (24,94) being adapted to receive said portion of said medium (4) and containing a first catalyst (96) for effecting said converting, and said second channels (22,98) being adapted to receive medium (4) heated by said heater (6,42) for heating said first catalyst (96) in said first channels (24,94);g. a second reactor (30,46) within said housing (50) downstream from said heater (6,42), said second reactor (30,46) containing a second catalyst (90) and adapted to contact said second catalyst (90) with said medium (4) heated by said heater (6,42) so as to react some of the water and methanol in the said medium (4) to form said hydrogen, and carbon dioxide in said medium;and h. a shunt (26,45) for diverting said portion of said medium (4) through said first channel (24,94) of said first reactor (20,44).
  2. 5
    A thermally-integrated fuel processor including a reformer for the two stage conversion of methanol into a H 2 -rich fuel gas comprising:a. a housing (50);b. a fan (2,48) for recirculating a gaseous heat transfer medium (4) through said housing, said medium (4) comprising first concentrations of water vapor, hydrogen, carbon dioxide and methanol vapor;c. a water inlet (14,72) to said housing (50) for introducing water into said medium (4);d. a methanol inlet (32,70) to said housing (50) for introducing methanol into said medium;e. a heater (6,42) within said housing (50) downstream of said fan (2,48) in the direction of flow of said medium (4) for heating said medium (4);f. a first reactor (20,44) within said housing downstream from said heater (6,42) for substantially isothermally converting a portion of said medium (4) to a reformate gas having second concentrations of hydrogen, and carbon dioxide greater than said first concentrations, and concentrations of said water and methanol vapors less than said first concentrations, said first reactor (20,44) including a plurality of first (24,94) and second (22,98) channels separated each from the other by a thermally conductive partition (93), said first channels (24,94) being adapted to receive said portion of said medium (4) and containing a first catalyst (96) for effecting said converting, and said second channels (22,98) having an inlet (112) adapted to receive heated medium (4) from said heater (6,42) for heating said first catalyst (96) and a first outlet for discharging said medium (4) from said second channels (22,98);g. a second reactor (39,46) within said housing (50) downstream from said first reactor (20,44), said second reactor (30,46) containing a second catalyst (90) and adapted to contact said second catalyst (90) with said medium (4) discharged from said first outlet for reacting some of the water and methanol in the heated medium (4) to form said hydrogen, and carbon dioxide;and h. a shunt (26,45) for diverting said portion of said medium through said first channels (24,94) of said first reactor.
  3. 6
    A thermally-integrated fuel processor including a reformer for the two stage conversion of methanol into a H 2 -rich fuel gas comprising:a. a housing (50);b. a fan (2,48) for recirculating a gaseous heat transfer medium (4) through said housing (50), said medium (4) comprising first concentrations of water vapor, hydrogen, carbon dioxide and methanol vapor;c. a water inlet (34,72) to said housing (50) for introducing water into said medium (4);d. a methanol inlet (32,70) to said housing (50) for introducing methanol into said medium (4);e. a heat exchanger (6,42) within said housing (50) downstream of said fan (2,48) in the direction of flow of said medium (4), said heat exchanger (6,42) having a hot side (16) including a plurality of first conduits (114) through which a heating fluid flows, a cold side (18) including a plurality of second conduits (116) through which said medium flows to be heated, and a thermally conductive barrier (119) defining said conduits and separating said hot (16) and cold (18) sides each from the other, said second conduits (116) having a first inlet (134) for receiving said medium (4) and a first outlet (110) for exhausting said medium (4) from said second conduits (116);f. a first reactor (20,44) within said housing (50) downstream from said heat exchanger (6,42) for substantially isothermally converting a portion of said medium to a reformate gas having second concentrations of hydrogen and carbon dioxide greater than said first concentrations, and concentrations of said water and methanol vapors less than said first concentrations, said first reactor (20,44) including a plurality of first (24,94) and second (22,98) channels separated each from the other by a thermally conductive partition (93) defining said channels, said first plurality of channels (24,94) being adapted to receive said portion of said medium (4) and containing a first catalyst (96) for effecting said converting, and said second plurality of channels (22,98) having a second inlet (112) adapted to receive heated medium (4) from said first outlet (110) of said heat exchanger (6,42) for heating said first catalyst (96) in said first plurality of channels (24,94) and a second outlet for discharging said medium from said second plurality of channels (22,98);g. a second reactor (30,46) within said housing (50) downstream from said first reactor (20,44), said second reactor (30,46) containing a catalyst (90) and adapted to contact said second catalyst (90) with said medium (4) discharged from said second channels (22,98) for reacting some of said water and methanol to form said hydrogen and carbon dioxide in said medium (4);and h. a shunt (26,45) for diverting said portion of said medium into said first chambers (24,94) of said first reactor (20,44).
  4. 17
    A thermally-integrated fuel processor including a reformer for the two stage conversion of methanol into a H 2 -rich fuel gas comprising:a. a housing (50);b. a fan (2,48) for recirculating a gaseous heat transfer medium (4) comprising first concentrations of water vapor, hydrogen, carbon dioxide and methanol vapor through said housing, said fan (2,48) comprising an impeller (52) having a plurality of blades (58) arranged and configured to drawn said medium into the center (56) of said impeller (52) and discharge said medium radially outwardly from said center (56);c. a water inlet (34,72) adapted to impinge water onto said impeller (52) such that said impeller (52) atomizes said water and expels said water into said medium (4) as said medium discharges from said impeller (52);d. a methanol inlet (32,70) adapted to impinge methanol onto said impeller (52) such that said impeller (52) atomizes said methanol and expels said methanol into said medium (4) as said medium discharges from said impeller (52);e. a heat exchanger (6,42) within said housing (50) downstream of said fan (2,48) for heating said medium (4);f. a first reactor (20,44) within said housing (50) downstream from said heat exchanger (6,42) for substantially isothermally converting a portion of said medium (4) to a reformate gas having second concentrations of hydrogen and carbon dioxide greater than said first concentrations, and concentrations of said water and methanol vapors less than said first concentrations, said first reactor (20,44) including a plurality of first (24,94) and second (22,98) channels separated each from the other by a thermally conductive partition (93) defining said channels, said first plurality of channels (24,94) being adapted to receive said portion of said medium (4) and containing a first catalyst (96) for effecting said converting, and said second plurality of channels (22,98) having an inlet (112) adapted to receive heated medium (4) from said heat exchanger (2,42) for heating said first catalyst (96) in said first plurality of channels (24,94) and an outlet for discharging said medium from said second plurality of channels (22,98);g. a second reactor (30,46) within said housing (50) downstream from said first reactor (20,44), said second reactor (30,46) containing a catalyst (90) and adapted to contact said second catalyst (90) with said medium (4) discharged from said second channels (22,98) for reacting said water and methanol to form said hydrogen, and carbon dioxide in said medium (4);and h. a shunt (26,45) for diverting said portion of said medium (4) into said first chamber of said first reactor (20,44).
  5. 22
    A method for steam reforming methanol in stages comprising the steps of:a. providing a gaseous heat transfer medium comprising a first concentration of water vapor, hydrogen, carbon dioxide and methanol vapor with a housing;b. positioning a heater, a first catalytic reactor, and a second catalytic reactor in a common housing such that said first catalytic reactor is downstream of said heater in the direction of flow of said medium in said housing, and said second catalytic reactor is downstream of said first catalytic reactor in the direction of flow of said medium in said housing, said first catalytic reactor having a plurality of first channels containing a first catalyst, and a plurality of second channels in heat transfer relationship with said first channels, and said second catalytic reactor having a second catalyst, said first and second catalysts being suitable for promoting reaction between said water vapor and said methanol vapor;c. circulating said medium within said housing sequentially through said heater, said plurality of second channels, and said second catalyst;d. heating said circulating medium with said heater to a temperature sufficient for said medium to heat said first and second catalysts to temperatures suitable for promoting said reaction;e. injecting methanol and water into said circulating medium;f. reacting a part of said water and said methanol in said medium in a first stage reaction on said second catalyst;and g. diverting a portion of said medium through said first catalyst to react methanol and water in said portion in a second stage reaction to form a reformate gas having second concentrations of hydrogen and carbon dioxide greater than said first concentrations, and concentrations of said water and methanol vapors less than said first concentrations.
  6. 27
    A method for steam reforming methanol in stages comprising the steps of:a. providing a gaseous heat transfer medium comprising a first concentration of water vapor, hydrogen, carbon dioxide and methanol vapor within a housing;b. positioning a heater, a first catalytic reactor, and a second catalytic reactor in a housing such that said first and second catalytic reactors are downstream of said heater in the direction of flow of said medium in said housing, said first catalytic reactor having a plurality of first channels containing a first catalyst, and a plurality of second channels in heat transfer relationship with said first channels, and said second catalytic reactor having a second catalyst, said first and second catalysts being suitable for promoting reaction between said water vapor and said methanol vapors;c. circulating said medium within said housing through said heater and said reactors;d. heating said circulating medium with said heater to a temperature sufficient for said medium to heat said first and second catalysts to temperatures suitable for promoting said reaction;e. injecting methanol and water into said circulating medium;f. reacting a part of said water and said methanol in said medium in a first stage reaction on said second catalyst;and g. diverting a portion of said medium through said first catalyst to react the methanol and water in said portion in a second stage reaction to form a reformate gas having second concentrations of hydrogen and carbon dioxide greater than said first concentrations, and concentrations of said water and methanol vapors less than said first concentrations.
  7. 28
    A thermally integrated fuel processor for the two stage steam reforming of methanol to fuel a fuel cell comprising within a common housing (1) a heat exchanger for heating a gaseous heat transfer medium comprising first concentrations of water vapor, hydrogen, carbon monoxide, carbon dioxide and methanol, (2) a first catalytic reactor downstream from said heat exchanger and heated by said medium exiting from said heat exchanger for producing a reformate gas from said medium which is richer in hydrogen, carbon monoxide and carbon dioxide than said medium, (3) a second catalytic reactor downstream from said first reactor and heated by said medium exiting said first catalytic reactor for promoting the reaction of some of said water and methanol vapor in said medium, (4) a fan for circulating said medium through said heat exchanger, and catalytic reactors, and (5) a PrOx reactor for oxidizing any CO in said reformate with air and supplying heat to the heat transfer medium, said PrOx reactor including a reaction chamber adapted to receive air and said reformate gas, and a heat-extraction chamber separated from the reaction chamber by a thermally conductive wall, said reaction chamber containing a catalyst for promoting said oxidizing, and said heat-extraction chamber being adapted to conduct said medium therethrough for heating said medium and cooling said reaction chamber, whereby waste heat generated exothermally in said PrOx reactor is used to preheat the gaseous heat transfer medium before it enters the heat exchanger.
  8. 31
    A method of starting up a multi-stage thermally-integrated methanol reformer for fueling a fuel cell comprising a heater, a first catalytic reactor, a second catalytic reactor and a housing encasing said heater and reactors, said first catalytic reactor being downstream of said heater in the direction of flow of a heat transfer medium within said housing, and said second catalytic reactor being downstream of said first catalytic reactor in said direction, said first catalytic reactor having a plurality of first channels containing a first catalyst, and a plurality of second channels in heat transfer relationship with said first channels, and said second catalytic reactor having a second catalyst, said first and second catalysts being suitable for promoting reaction between water and methanol vapors, said method comprising the steps of:a. circulating a startup gas within said housing sequentially through said heater, said plurality of second channels, and said second catalyst;b. heating said startup gas with said heater to a temperature sufficient for said startup gas to heat said first and second catalysts to temperatures suitable for promoting said reaction;c. injecting methanol and water into said circulating startup gas;d. reacting a part of said water and methanol in said startup gas in a first stage reaction on said second catalyst;e. diverting a portion of said circulating startup gas through said first catalyst to react methanol and water in said portion in a second stage reaction to form an effluent from said housing which contains hydrogen, water vapor, carbon dioxide and said inert gas;f. continuing steps a-e above until substantially all of said startup gas is eliminated from said effluent;and thereafter g. supplying said effluent to said fuel cell.