Claims
- 1. A burner (10) for reducing NOx emissions comprising:
a main burner body (22) defining an internal cavity (13), an air connection (12) fluidly connected to the internal cavity (13), and a combustion tunnel (52); a distribution tee (30) positioned adjacent to the internal cavity (13) and spaced away from the combustion tunnel (52), the distribution tee (30) fluidly connected to the internal cavity (13); and a burner nozzle (46) positioned in the interior cavity (13) of the main burner body (22), the burner nozzle defining a primary air orifice (32), a fuel annulus (47) having a first width (W1), and a fuel orifice (48) having a second width (W2), wherein the first width (WI) of the fuel annulus (47) is less than the second width (W2) of the fuel orifice (48).
- 2. The burner (10) as claimed in claim 1, wherein the main burner body (22) extends longitudinally about an imaginary burner centerline (C), and the primary air orifice (32) is oriented to form a convergent angle (∝) as measured from the imaginary burner centerline (C).
- 3. The burner (10) as claimed in claim 2, wherein the convergent angle (∝) is approximately 30-60° as measured from the imaginary burner centerline (C).
- 4. The burner (10) as claimed in claim 1, wherein the main burner body (22) extends longitudinally about an imaginary burner centerline (C) and the primary air orifice (32) is oriented to produce a swirl pattern in the combustion tunnel (52).
- 5. The burner (10) as claimed in claim 4, wherein the swirl is approximately less than or equal to 0.7 times an internal diameter (D) of the combustion tunnel (52).
- 6. The burner (10) as claimed in claim 1, further comprising a secondary air conduit (54) fluidly connected to the distribution tee (30), the secondary air conduit (54) having a secondary air jet (56) fluidly connected to a secondary combustion zone (60).
- 7. The burner (10) as claimed in claim 6, wherein the main burner body (22) extends longitudinally about an imaginary burner centerline (C) and the secondary air jet (56) is oriented substantially parallel to the imaginary burner centerline (C) of the main burner body (22).
- 8. The burner (10) as claimed in claim 6, wherein the main burner body (22) extends longitudinally about an imaginary burner centerline (C) and the secondary air jet (56) is oriented at an angle (β) convergent with the imaginary burner centerline (C) of the main burner body (22).
- 9. The burner (10) as claimed in claim 1, further comprising a primary fuel path (42) and a secondary fuel path (44), the primary fuel path (42) fluidly connected to the annulus (47), the secondary fuel path (44) fluidly connected to the fuel orifice (48), and the primary fuel path (42) and the secondary fuel path (44) are fluidly connected to each other.
- 10. A method of decreasing NOx emissions in a burner (10) having a main burner body (22) defining a combustion tunnel (52) and a source of secondary air (26) comprising the steps of:
a. exhausting products of combustion (59) into a secondary combustion zone (60); and b. drawing products of combustion (59) from the secondary combustion zone (60) to an combustion tunnel exit (62) and to the source of secondary air (26).
- 11. The method as claimed in claim 10, further comprising the steps of:
c. flowing supply air (20) into the main burner body (22); d. dividing the supply air (20) into primary air (24) and secondary air (26); e. flowing the primary air (24) into the combustion tunnel (52) at a given velocity; f. flowing primary fuel (38) into the combustion tunnel (52) at a velocity lower than the velocity of the primary air (24); g. flowing secondary fuel (40) into the combustion tunnel (52) at a velocity higher than the velocity of the primary fuel (38); h. flowing the secondary air (26) into the secondary combustion zone (60) at a velocity higher than the velocity of the primary fuel (38); and i. igniting the primary fuel (38), the secondary fuel (40), and primary air (24) in the combustion tunnel (52) to form products of combustion (59).
- 12. The method as claimed in claim 11, wherein the ratio of primary air (24) to secondary air (26) is approximately in the range of 40/60 to 70/30, respectively.
- 13. The method as claimed in claim 11, wherein the primary air (24) flows into the combustion tunnel (52) at a rate of approximately 300-400 feet per second at rated input.
- 14. The method as claimed in claim 11, wherein the secondary air (26) flows in the secondary combustion zone (60) at a velocity of approximately 150-400 feet/second at rated input.
- 15. The method as claimed in claim 11, wherein the primary fuel (38) to secondary fuel (40) split ratio is in the range of approximately 20/80 to 40/60, respectively.
- 16. The method as claimed in claim 11, wherein the primary fuel (38) flows into the combustion tunnel (52) at a velocity less than approximately 100 feet/second at rated input.
- 17. The method as claimed in claim 11, wherein the secondary fuel (40) flows into the combustion tunnel (52) at a velocity approximately greater than 350 feet/second at rated input.
- 18. A burner (10) for reducing NOx emissions comprising:
a main burner body (22) defining an internal cavity (13), an air connection (12) fluidly connected to the internal cavity (13), and a combustion tunnel (52); a distribution tee (30) fluidly connected to the internal cavity (13); a burner nozzle (46) positioned in the interior cavity (13) of the main burner body (22), the burner nozzle defining a primary air orifice (32), a fuel annulus (47) having a first width (W1), and a fuel orifice (48) having a second width (W2), wherein the first width (W1) of the fuel annulus (47) is less than the second width (W2) of the fuel orifice (48); a fuel connector (14) defining a primary fuel path (42) and a secondary fuel path (44), the primary fuel path (42) fluidly connected to the annulus (47), the secondary fuel path (44) fluidly connected to the orifice (48), and the primary fuel path (42) and the secondary fuel path (44) fluidly connected to each other; and a secondary air conduit (54) defining a secondary air jet (56), the secondary air conduit (54) fluidly connected to the distribution tee (30) and the secondary air jet (56) spaced away from the combustion tunnel (52).
- 19. The burner (10) as claimed in claim 18, wherein the fuel orifice (48) and the fuel annulus (47) lie in the same plane, substantially perpendicular to an imaginary burner centerline (C).
- 20. The burner (10) as claimed in claim 19, wherein the distribution tee (30) is positioned adjacent to the internal cavity (13) of the main burner body (22) and spaced opposite the combustion tunnel (52).
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of earlier filed United States Provisional Patent Application Ser. No. 60/171,073, filed Dec. 16, 1999, entitled “Air and Fuel Staged Burner”.
Provisional Applications (1)
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Number |
Date |
Country |
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60171073 |
Dec 1999 |
US |