Claims
- 1. A method for introducing atomized liquid fuel into a furnace for combustion therein, the method comprising the steps of forming a core stream of a pressurized gas; forming a combined fuel and core stream by introducing at least two separate streams of the liquid fuel tangentially into the core stream, the fuel streams each lying within a plane radial to the core stream; forming an annular envelope stream of pressurized gas about the combined fuel and core stream; coaxially passing the combined fuel and core stream and the envelope stream through a common conduit; and thereafter substantially simultaneously discharging from the conduit into an enlarged space all streams; whereby the core stream and the envelope stream atomize the liquid fuel while contact between the liquid fuel and walls of the conduit is prevented.
- 2. A method according to claim 1 including the step of directing the core stream through a first portion of the conduit, and thereafter forming the fuel streams thereabout.
- 3. A method according to claim 2 wherein the fuel streams pass through apertures formed in walls of the conduit and oriented substantially tangentially to the core stream so that the core stream shears relatively small droplets of liquid fuel of the conduit wall at about the intersection of the apertures and the wall.
- 4. A method according to claim 3 wherein the step of flowing the liquid fuel through the apertures comprises the step of flowing the liquid fuel at a speed of about 50 ft. per second when fuel is atomized at a rate which constitutes the maximum rate at which fuel is combusted in the furnace.
- 5. A method according to claim 3 including the step of flowing the combined fuel and core stream through a second portion of the conduit having an increasing cross-sectional area in the direction of flow so that the pressure of the combined fuel and core stream is substantially equal to the pressure of the envelope stream at a point downstream of the apertures where the envelope stream is formed about the combined fuel and core stream.
- 6. A method according to claim 1 wherein the step of forming the annular envelope stream comprises the steps of initially flowing an annular stream of pressurized gas separate of the combined fuel and core stream, orienting the annular stream of pressurized gas substantially parallel to the combined fuel and core and stream, thereafter bringing the envelope stream into contact with the combined fuel and core stream and passing the combined fuel and core stream and the envelope stream in mutual contact through an outer portion of the conduit towards the enlarged space.
- 7. A method according to claim 6 wherein the outer portion of the conduit has an expanding cross-sectional area in the direction of flow so that the combined streams have a pressure substantially equal to the pressure in the enlarged space when they are discharged from the outermost conduit section.
- 8. A method according to claim 1 including the step of directing the combined fuel and core stream streams through a common conduit portion and thereafter forming the envelope stream thereabout.
- 9. A method according to claim 1 wherein the core stream has a generally cylindrical cross section.
- 10. A method according to claim 9 wherein the gas of the core stream and the gas of the envelope stream both comprise steam, and including the step of supplying no more than about 0.05 kg of steam for each kg of liquid fuel flowing in the fuel streams.
- 11. A method according to claim 10 wherein the step of supplying comprises the step of supplying at least about 0.03 kg of steam for each kg of liquid fuel flowing in the fuel streams.
- 12. A method according to claim 1 including the step of forming at least two sets of core, liquid fuel, and envelope streams, and supplying the sets of streams with pressurized gas and liquid fuel from a common liquid fuel source and a common pressurized gas source.
- 13. A method according to claim 12 including the step of flowing the liquid fuel from the source to the respective stream sets at a sufficient rate so that liquid fuel flows at substantially the same rate to each set irrespective of elevational differences between the sets.
- 14. A method according to claim 13 wherein the step of flowing the liquid fuel from the source to the respective sets comprises the step of flowing the liquid fuel from the source through a conduit into a disc-shaped cavity, oriented transversely to the passage and communicating with the conduits of the sets, at a rate of about 40 ft. per second when liquid fuel is combusted in the furnace at its maximum combustion rate so that the oil impinges on a surface of the cavity substantially perpendicular to the oil flow direction at a relatively high velocity sufficient to assure a substantially equal distribution of the oil to the sets.
- 15. A method for introducing atomized liquid fuel through a nozzle having a plurality of discharge ports into a furnace for combustion therein, the method comprising the steps of: providing first and second, separated chambers interiorly of the nozzle; flowing a core stream of a pressurized gaseous medium including steam from the first chamber along an axis inclined relative to a longitudinal axis of the nozzle to the ports; flowing liquid fuel from the second chamber towards each core stream and substantially equally dividing the flow of liquid fuel into a number of fuel branch flow equalling the number of core streams; directing each branch flow generally tangentially to the associated core stream into contact with the core stream so as to form a substantially homogenous, annular fuel stream surrounding the core stream; forming a secondary, annular stream of the medium for each core stream at a point downstream of the point at which the fuel stream is combined with the core stream; enveloping the combined core and fuel streams with the secondary stream; equalizing the pressure of the combined core and fuel streams and of the secondary stream at about the point where the latter envelops the former; and discharging each core stream and the associated, coaxial fuel and secondary streams from the corresponding ports into the furnace for combustion therein.
- 16. A method corresponding to claim 15 including the step of accelerating the combined streams prior to the step of discharging by reducing the pressure of the streams to about the pressure prevailing in the furnace.
- 17. A method according to claim 16 wherein the step of equally dividing comprises the step of flowing the liquid fuel from the second chamber into a disc-shaped cavity fluidly communicating with the core streams and oriented substantially perpendicular to the fuel flow from the second chamber and at a speed sufficient to substantially negate the effects of gravity on the flow of fuel in the branch flows; whereby substantially identical amounts of fuel are combined with all core streams and discharged from the ports.
- 18. A method according to claim 17 wherein the step of flowing the fuel from the second chamber towards the cavity comprises the step of flowing the fuel at a speed of up to about 40 ft. per second when liquid fuel is combusted in the furnace at its maximum rate.
- 19. A method according to claim 18 including the step of flowing fuel in the branch flows at a speed of up to about 20 ft. per second when liquid fuel is combusted in the furnace at its maximum rate.
- 20. A method according to claim 19 wherein the step of tangentially directing the liquid fuel comprises the step of flowing the liquid through tangentially oriented apertures surrounding the core stream at a speed of up to least about 50 ft. per second when the liquid fuel is combusted in the furnace at its maximum rate.
- 21. A nozzle for atomizing liquid fuel preparatory to its combustion in a furnace, the nozzle comprising: a generally axially oriented housing defining first and second, separated chambers; a discharge conduit in fluid communication with the first chamber and extending through the housing to the exterior thereof; the conduit having first, second and third axially aligned and spaced apart sections of successively large cross-sectional dimensions arranged successively from the first chamber through the housing to the exterior thereof and terminating in a discharge port at an end of the third section; first passage means defined by the housing communicating the first chamber with an upstream end of the third conduit section; second passage means fluidly communicating the second chamber with an upstream end of the second section and including at least two apertures disposed tangentially to the periphery of the first section; whereby the introduction of a pressurized gas in the first chamber and the introduction of a pressurized liquid fuel into the second chamber causes the formation of a gas-fuel mixture in the third conduit section comprised of a primary gaseous core stream, an annular fuel comprised of a primary gaseous core stream, an annular fuel stream surrounding the core stream, and a secondary gaseous stream enveloping the fuel stream; and whereby further the gaseous streams cause the atomization of the liquid fuel and protect housing walls defining the conduit and in the vicinity of the port from direct contact with the fuel and thereby also prevent a deposition of fuel particles on the walls.
- 22. A nozzle according to claim 21 wherein the first passage means comprises means for forming an annular flow of pressurized gas substantially parallel to the axis of the conduit before the pressurized gas reaches the upstream end of the third conduit section.
- 23. A nozzle according to claim 21 including means in the conduit for substantially equalizing the pressure of the combined core and annular fuel streams and of the secondary stream at about the upstream end of the third conduit section.
- 24. A nozzle according to claim 21 including means in the third conduit section for substantially equalizing the pressure of the combined core, fuel and secondary streams with the pressure prevailing on the exterior of the nozzle to thereby accelerate the combined stream before it reaches the port.
- 25. A nozzle according to claim 21 there are a plurality of conduits in the housing, and wherein the second passage means comprises a generally disc-shaped cavity oriented transversely to the nozzle axis and in fluid communication with the second chamber, and means communicating the cavity with the second chamber, the last mentioned means, and the cavity being formed so as to prevent gravitational forces from causing an unequal fluid flow to the conduits.
- 26. A nozzle according to claim 25 wherein axes of the conduits are inclined relative to an axis of the nozzle by not substantially more than about 30.degree..
- 27. A nozzle according to claim 21 wherein the second chamber is centrally disposed within the housing and the first chamber generally surrounds the second chamber.
- 28. A nozzle according to claim 21 wherein the first chamber is centrally disposed within the housing and is generally surrounded by the second chamber.
- 29. A nozzle for introducing atomized liquid fuel into a furnace for combustion therein, the nozzle comprising: an inner member defining a fuel compartment, a housing surrounding the inner member and defining in conjunction with the inner member a chamber; a conduit extending from the chamber to an exterior of the housing and forming axially aligned and successively spaced first, second and third conduit sections, the first section communicating with the chamber and the third section terminating in a discharge port at an outer surface of the housing, the first, second and third sections having consecutively larger diameters; a first passage fluidly communicating the compartment with a wall defining an upstream end of the second conduit section, the wall including a plurality of circumferentially spaced apart apertures oriented generally tangentially with respect to the second conduit section; whereby the application of pressurized liquid fuel to the compartment and of pressurized gas to the chamber forms a gas core stream flowing through the sections and an annular liquid fuel stream surrounding the core stream and flowing through the second and third conduit sections, the core and fuel streams forming a combined stream; and whereby further the introduction of liquid fuel through the apertures into the second conduit section causes an atomization of liquid fuel so that the annular fuel stream comprises atomized liquid fuel; second passage means communicating with the chamber; tubular wall means downstream of the wall, surrounding the combined stream, spaced from the housing and defining with the housing an annular space in communication with the second passage means, oriented parallel and coaxial to the conduit, and terminating at and communicating with an upstream end of the third conduit section; whereby pressurized gas from the chamber flows through the second passage means and the annular space to form an annular, secondary gas stream enveloping the combined stream; and whereby further the combined stream and the annular stream are simultaneously discharged from the port, the discharged liquid fuel being atomized, and direct contact between the liquid fuel and the housing is prevented to thereby enhance the combustion of the liquid fuel and prevent an accumulation of fuel particles on the nozzle.
- 30. Apparatus according to claim 29 wherein the wall and the tubular wall means are integrally constructed and form a continuous tubular member extending from about the upstream end of the second conduit section to about the upstream end of the third conduit section.
- 31. A nozzle according to claim 30 wherein the tubular member also forms the first conduit section and is defined by an insert connected with the housing.
- 32. A nozzle according to claim 31 including a restrictor defined by the insert and having a central, reduced diameter hole defining the first conduit section.
- 33. A nozzle according to claim 32 wherein a downstream end of the insert includes a conically shaped end portion of the second conduit section diverging in a downstream direction, the conically shaped portion being sized so that the combined stream has a pressure substantially equal to the pressure of the enveloping stream at about the upstream end of the third section.
- 34. A nozzle according to claim 31 wherein the insert is secured to the inner member.
- 35. A nozzle for introducing atomized liquid fuel into a furnace for combustion therein, the nozzle comprising an inner member defining a chamber for connection to a source of a pressurized, gaseous medium, a shell in surrounding relationship disposed about the member, the shell defining a compartment and including means for supplying liquid fuel to the compartment; a discharge conduit extending through the member and the shell and communicating the chamber with a port at an exterior of the shell so as to flow a core stream of the medium in the conduit; an insert disposed between the member and the shell, the insert having a first wall spaced apart from the shell and defining a first passage in communication with the compartment and the conduit at a first point intermediate the chamber and the port and arranged so as to flow the liquid fuel annularly about the core stream flowing from the chamber through the conduit; the insert having a second wall spaced apart from the member and defining a second passage communicating the chamber with the conduit at a second point disposed between the first point and the port and arranged so as to flow gaseous medium generally annularly about the liquid fuel flowing in the conduit between the first point and the port; the insert defining a first section of the conduit intermediate the member and the shell and having a diameter larger than the portion of the conduit through the member; the first passage having a lateral extent in a direction transverse to the axis of and larger than the diameter of the first conduit section; whereby an atomized liquid fuel stream of a generally annular cross-section issues from the conduit and the core stream and an annular exterior stream of gaseous medium prevents fuel from contacting portions of the shell defining the conduit and the port.
- 36. Apparatus according to claim 35 wherein a third section of the conduit is defined by the shell and has a diameter larger than the first conduit section.
- 37. Apparatus according to claim 36 wherein the second passage has a lateral extent in a direction transverse to the axis of the conduit which is larger than the diameter of the third conduit section.
- 38. Apparatus according to claim 37 including means establishing fluid communication between the chamber and the second passageway.
RELATED APPLICATIONS
This application is a continuation-in-part application of the copending patent application bearing Ser. No. 040,390, filed May. 18, 1979 and entitled IMPROVED FURNACE BURNER, now U.S. Pat. No. 4,303,386.
US Referenced Citations (6)
Continuation in Parts (1)
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Number |
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Country |
Parent |
40390 |
May 1979 |
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