Claims
- 1. A method of operating a burner apparatus defining a reaction zone, a process chamber adjoining said reaction zone, an oxidant supply structure configured to direct oxidant to flow into said reaction zone, a primary fuel supply structure configured to direct primary fuel to flow into said reaction zone for mixing with said oxidant to create a combustible mixture in said reaction zone, an igniter operative to ignite said combustible mixture in said reaction zone and thereby to initiate combustion that provides thermal energy to said process chamber, and a secondary fuel supply structure configured to direct secondary fuel to flow into said process chamber, said method comprising:
providing flows of oxidant and fuel through said supply structures in a plurality of distinct modes; said modes including a startup mode in which flows of said oxidant and said primary fuel are ignited by said igniter and are provided simultaneously with a flow of said secondary fuel until said process chamber reaches the auto-ignition temperature of said secondary fuel; said modes further including a subsequent mode in which flows of said oxidant and said secondary fuel are provided simultaneously to the exclusion of a flow of said primary fuel.
- 2. A method as defined in claim 1 wherein said subsequent mode immediately follows said startup mode.
- 3. A method as defined in claim 1 wherein said flow of said secondary fuel in said subsequent mode is controlled to be equal to the total fuel flow of said primary and said secondary fuel flows in said startup mode.
- 4. An apparatus comprising:
a furnace structure defining a reaction zone and a process chamber adjoining said reaction zone; an oxidant supply structure configured to direct oxidant into said reaction zone; a primary fuel supply structure configured to direct primary fuel into said reaction zone for mixing with said oxidant to create a combustible mixture in said reaction zone; an igniter operative to ignite said combustible mixture in said reaction zone and thereby to initiate combustion that provides thermal energy to said process chamber; and a secondary fuel supply structure configured to direct secondary fuel to flow into said process chamber at a secondary fuel inlet in said process chamber; said primary fuel supply structure being further configured to direct said primary fuel into said reaction zone in a first concentration of fuel in a first region of said reaction zone remote from said secondary fuel inlet, and to direct said primary fuel into said reaction zone in a second, greater concentration of fuel in a second region of said reaction zone between said first region and said secondary fuel inlet, whereby combustion of said second concentration of fuel provides thermal energy adjacent to said secondary fuel inlet sufficient to auto-ignite said secondary fuel in said process chamber.
- 5. An apparatus as defined in claim 4 wherein said primary fuel supply structure has a total inlet flow area in said reaction zone and said total inlet flow area is asymmetrical with reference to said reaction zone.
- 6. An apparatus as defined in claim 5 wherein said asymmetrical total fuel inlet flow area is configured to direct a first portion of primary fuel into said first region and a second portion of primary fuel into said second region.
- 7. An apparatus as defined in claim 4 wherein said reaction zone has a central axis, and said primary fuel supply structure includes a main fuel inlet centered on said axis, and further includes a branch fuel inlet spaced radially from said main fuel inlet.
- 8. An apparatus as defined in claim 7 wherein said main fuel inlet is configured to provide a first amount of said primary fuel, and said branch fuel inlet is configured to supply a second amount of said primary fuel for a given flow of primary fuel through said primary fuel supply structure.
- 9. An apparatus comprising:
a furnace structure defining a reaction zone and a process chamber adjoining said reaction zone; an oxidant supply structure configured to direct oxidant to flow from a source of oxidant into said reaction zone; and a fuel supply structure configured to direct primary fuel to flow from the source of fuel into said reaction zone for mixing with said oxidant to create a combustible mixture in said reaction zone, and to direct secondary fuel to flow into said process chamber, said fuel supply structure including a fuel line joint; said joint having an inlet communicating with the source of fuel, a primary fuel outlet communicating with said reaction zone, and a secondary fuel outlet communicating with said process chamber; said joint being configured to direct fuel from said inlet to said primary fuel outlet along a first flow path at a first flow rate, and simultaneously to direct fuel from said inlet to said secondary fuel outlet along a second flow path at a second flow rate for a given inlet flow rate such that the ratio of said first flow rate to said second flow rate varies inversely with said inlet flow rate.
- 10. An apparatus as defined in claim 9 wherein said joint is T shaped.
- 11. An apparatus as defined in claim 9 wherein said first flow path and said second flow path are coextensive between said inlet and a divergence location, and diverge in said joint at said divergence location, and said first and second flow paths are separate from each other between said divergence location and said outlets.
- 12. An apparatus as defined in claim 11 wherein said first flow path is orthogonal to said second flow path between said divergence location and said primary fuel outlet.
- 13. An apparatus as defined in claim 11 wherein said second flow path is straight from said inlet to said secondary fuel outlet.
Parent Case Info
[0001] This application claims priority to provisional patent application Serial No. 60/251,905, filed Dec. 6, 2000.
Provisional Applications (1)
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Number |
Date |
Country |
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60251905 |
Dec 2000 |
US |