Claims
- 1. A method for operating a catalytic reactor on two different fuels having dissimilar reactivity, one after the other, the method comprising the steps of:
a. mixing a first fuel with a first stream comprising air to create a fuel-rich fuel/air mixture; b. contacting the fuel-rich fuel/air mixture with a backside-cooled catalyst to oxidize at least a portion of the fuel within the fuel-rich fuel/air mixture thereby creating a product stream and a heat of reaction, the reaction rate at the catalyst surface being oxygen mass transfer limited, the backside-cooled catalyst being cooled by a cooling stream comprising a second air stream; c. conducting at least a portion of the heat of reaction into the cooling stream, the cooling stream being of sufficient flow rate to form a fuel-lean fuel/air mixture if mixed with the product stream; d. contacting the product stream with the cooling stream; and e. substituting a second fuel for the first fuel and repeating steps (a) through (d).
- 2. The method of claim 1 wherein greater than 50 percent of the heat of reaction is conducted to the cooling stream.
- 3. The method of claim 1 wherein the first fuel and the second fuel each have a heat release per mole of O2 combusted between 80 and 120 kcal.
- 4. The method of claim 1 wherein the first fuel and the second fuel each have a heat release per mole of O2 combusted between 90 and 110 kcal.
- 5. The method of claim 1 comprising the additional step of adding steam to the first stream.
- 6. The method of claim 1 comprising the additional step of adding steam to the cooling stream.
- 7. A method for operating a catalytic reactor on two different fuels having dissimilar reactivity, one after the other, the method comprising the steps of:
a. flowing a first fuel stream into a first stream comprising air, and mixing the first fuel stream with the first stream comprising air to create a first fuel-rich fuel/air mixture; b. contacting the first fuel-rich fuel/air mixture with a backside-cooled catalyst to oxidize at least a portion of the fuel within the first fuel-rich fuel/air mixture thereby creating a first product stream and a first heat of reaction, the reaction rate at the catalyst surface being oxygen mass transfer limited, the backside-cooled catalyst being cooled by a cooling stream comprising a second air stream; c. conducting at least a portion of the first heat of reaction into the cooling stream, the cooling stream being of sufficient flow rate to form a first fuel-lean fuel/air mixture if mixed with the first product stream; d. contacting the first product stream with the cooling stream; e. stopping the flow of the first fuel; f. flowing a second fuel stream into the first air stream, and mixing the second fuel stream with the first air stream to create a second fuel-rich fuel/air mixture; g. contacting the second fuel-rich fuel/air mixture with the backside-cooled catalyst to oxidize at least a portion of the fuel within the second fuel-rich fuel/air mixture thereby creating a second product stream and a second heat of reaction, the reaction rate at the catalyst surface being oxygen mass transfer limited, the backside-cooled catalyst being cooled by the cooling stream; h. conducting at least a portion of the second heat of reaction into the cooling stream, the cooling stream being of sufficient flow rate to form a second fuel-lean fuel/air mixture if mixed with the second product stream; and i. contacting the second product stream with the cooling stream.
- 8. The method of claim 7 wherein greater than 50 percent of the first heat of reaction is conducted to the cooling stream, and greater than 50 percent of the second heat of reaction is conducted to the cooling stream.
- 9. The method of claim 7 wherein the first fuel and the second fuel each have a heat release per mole of O2 combusted between 80 and 120 kcal.
- 10. The method of claim 7 wherein the first fuel and the second fuel each have a heat release per mole of O2 combusted between 90 and 110 kcal.
- 11. A method for operating a catalytic reactor on two different fuels, one after the other, the method comprising the steps of:
a. mixing a first fuel with a first stream comprising air to create a fuel-rich fuel/air mixture; b. contacting the fuel-rich fuel/air mixture with a backside-cooled catalyst to oxidize at least a portion of the fuel within the fuel-rich fuel/air mixture thereby creating a product stream and a heat of reaction, the reaction rate at the catalyst surface being controlled to limit surface temperature by limiting oxygen mass transfer to the surface, the backside-cooled catalyst being cooled by a cooling stream comprising a second air stream; c. conducting at least a portion of the heat of reaction into the cooling stream, the cooling stream being of sufficient flow rate to form a fuel-lean fuel/air mixture if mixed with the product stream; d. contacting the product stream with the cooling stream; and e. substituting a second fuel for the first fuel and repeating steps (a) through (d).
CROSS-REFERENCE TO OTHER APPLICATIONS
[0001] This application claims priority to U.S. Provisional Application No. 60/323,488 entitled “Method and Apparatus for a Fuel-Rich Catalytic Reactor” filed Sep. 19, 2001. The disclosure contained within the provisional application is hereby incorporated by reference in its entirety.
Government Interests
[0002] This invention was developed under DOE Grant DE-FC02-98CH10939 entitled “Catalytic Combustion Enabling Technologies Development Program for Industrial Gas Turbine Systems”. The government may have certain rights herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60323488 |
Sep 2001 |
US |