BURNER, AND COMBUSTION EQUIPMENT AND BOILER COMPRISING BURNER
A burner including a fuel-containing fluid supply nozzle which supplies a fuel-containing fluid, from a connecting part in a fluid transfer flow passage for transferring a fuel-containing fluid including a fuel and a medium for transfer of the fuel, toward an outlet part provided on a furnace wall surface. The nozzle in its cross section perpendicular to the direction of flow of the fluid has a rectangular, elliptical, or substantially elliptical form having major and minor axis parts from a connecting part in the fluid transfer flow passage toward the outlet part provided on the furnace wall surface. Further, the area of a cross section perpendicular to the direction of flow of the fluid is gradually increased from the connecting part in the fluid transfer flow passage toward the outlet part. Air supply nozzle(s) for supplying combustion air are provided on the outer peripheral part of the nozzle.
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The present application is a division of U.S. application Ser. No. 12/442,745, filed Mar. 25, 2009, which is the National Stage Application of PCT/JP2007/056311 filed Mar. 27, 2007, the disclosures of which are incorporated herein by reference in their entireties.
FIELD OF THE ARTThe present invention relates to a burner and a combustion equipment and a boiler including the burner, and particularly relates to a burner capable of performing low nitrogen oxide (NOx) combustion at high efficiency.
BACKGROUND ARTA front end of the combustion air sleeve (15) is disposed at a position facing a burner throat (16), a combustion air guide plate (15a), spreading outside the burner, is disposed at the front end of the sleeve (15), the tertiary air (14) is spread outward by the combustion air guide plate (15a) to delay mixing of air into a central part of a flame, and by promotion of combustion under a reducing atmosphere condition of insufficient air, generation of nitrogen oxides (NOx) in a combustion gas is suppressed.
The burner of circular cross section, shown in
Burners, with which the outlet shape of the transverse section (section orthogonal to the flow of the fuel-containing fluid) of the fuel-containing fluid supply nozzle (12) is made a rectangular shape, an elliptical shape, or a substantially elliptical shape with major and minor axis parts, are disclosed in the following Patent Documents 1 to 3.
- Patent Document 1: Japanese Translation of International Application (Kohyo) No. Sho 59-500981
- Patent Document 2: Japanese Published Patent Application No. Hei 8-226615
- Patent Document 3: Japanese Published Patent Application No. Hei 11-281009
In general, a cross section of an outlet part of a fuel-containing fluid supply nozzle (12) of a burner has a shape close to a circular shape or a square shape, and there are cases where, as shown in
Although increasing a burner capacity (decreasing a number of burners) is an effective method for reducing cost and improving operability, with the conventional art, when the burner capacity is increased, a diameter or a length of an outer diameter part of the fuel-containing fluid supply nozzle (12) becomes long and the unignited region (31) expands, causing increase of NOx and lowering of the combustion efficiency. This problem was due to the distance from an ignited region (32) at a fuel-containing fluid ejection flow surface to the central part of the fuel-containing fluid ejection flow being large. Also, with the inventions described in Patent Documents 1 to 3 where the outlet shape of the transverse section (section orthogonal to the flow of the fuel-containing fluid) of the fuel-containing fluid supply nozzle (12) is made a rectangular shape, etc. that combines major and minor axis parts, nothing is mentioned in regard to a countermeasure for the expansion of the unignited region (31) due to increase of the burner capacity and the resulting increase of NOx and lowering of the combustion efficiency.
An object of the present invention is to provide a solid fuel burner that is increased in capacity over the conventional art and yet is suppressed in expansion of an unignited region to prevent increase of NOx concentration in a combustion gas and prevent lowering of combustion efficiency, a combustion equipment and a boiler including the burner.
SUMMARY OF THE INVENTIONThe above object of the present invention is achieved by the following solutions.
A first aspect of the present invention provides a burner including: a fuel-containing fluid supply nozzle (12) supplying a fuel-containing fluid (11), containing a solid fuel and a medium for transfer of the solid fuel, to an outlet part disposed on a wall surface of a furnace (4) from a connecting part (10a) of a fuel-containing fluid transfer flow passage (10) that transfers the fluid (11); and one or more air supply nozzles (15) supplying combustion air and disposed at an outer peripheral part of the fuel-containing fluid supply nozzle (12); and where, from the connecting part (10a) of the fluid transfer flow passage (10) toward the outlet part disposed on the wall surface of the furnace (4), a cross section of the fuel-containing fluid supply nozzle (12) perpendicular to a flow of the fluid (11) has a rectangular, elliptical, or substantially elliptical shape with major and minor axis parts and, from the connecting part (10a) of the fluid transfer flow passage (10) toward the outlet part, a size of the major axis part of the cross section perpendicular to the flow of the fluid (11) increases gradually along a direction of the flow of the fluid (11) and a size of the minor axis part is unchanged.
A fourth aspect of the present invention provides the burner according to the first aspect where the fuel-containing fluid supply nozzle (12) has, in an interior thereof, fuel-containing fluid guide plates (19) plurally partitioning the flow of the fuel-containing fluid (11).
A fifth aspect of the present invention provides the burner according to the fourth aspect where the fuel-containing fluid guide plates (19) are disposed at a plurality of different inclination angles with respect to a plane passing along a line extending a central axis in the direction of the flow of the fluid (11) in the fuel-containing fluid supply nozzle (12) toward the furnace (4) and parallel to a shortest axis of the minor axis part of the nozzle (12).
A sixth aspect of the present invention provides the burner according to any of the first, fourth and fifth aspects where the fuel-containing fluid supply nozzle (12) has, in an interior of the outlet thereof, fuel-containing fluid direction changing guide plates (21) forcibly changing a direction of ejection flow of the fuel-containing fluid (11).
A seventh aspect of the present invention provides the burner according to the sixth aspect where the fuel-containing fluid direction changing guide plates (21) are disposed in a plurality of mutually different directions with respect to planes parallel to a plane passing along the line extending the central axis of the fuel-containing fluid supply nozzle (12) toward the furnace (4) and passing through a longest axis of the major axis part of the nozzle (12).
An eighth aspect of the present invention provides the burner according to the sixth aspect where the fuel-containing fluid direction changing guide plates (21) for a portion of the fuel-containing fluid (11) are disposed parallel to planes parallel to a plane passing along the line extending the central axis of the fuel-containing fluid supply nozzle (12) toward the furnace (4) and passing through a longest axis of the major axis part of the nozzle (12), and the fuel-containing fluid direction changing guide plates (21) for another portion of the fuel containing fluid (11) are disposed at an inclination angle with respect to planes parallel to the plane passing along the line extending the central axis of the fuel-containing fluid supply nozzle (12) toward the furnace (4) and passing through the longest axis of the major axis part of the nozzle (12).
A ninth aspect of the present invention provides the burner according to the fourth aspect where the fuel-containing fluid supply nozzle (12) is partitioned into a plurality of flow passages by the fuel-containing fluid guide plates (19), and central axes of the respective flow passages are disposed at the wall surface of the furnace (4) at a plurality of mutually different inclination angles with respect to planes parallel to a plane passing along the line extending the central axis of the fuel-containing fluid supply nozzle (12) toward the furnace (4) and passing through a longest axis of the major axis part of the nozzle (12) outlet.
A tenth aspect of the present invention provides the burner according to any of the first and fourth to ninth aspects where fuel-containing fluid partitioning plates (22), capable of plurally partitioning the outlet part of the fuel-containing fluid supply nozzle (12), are disposed at the outlet part.
An eleventh aspect of the present invention provides the burner according to any of the first and fourth to tenth aspects where a flame stabilizer (17) with an L-shaped cross section is disposed at the outlet part of the fuel-containing fluid supply nozzle (12).
A twelfth aspect of the present invention provides the burner according to the eleventh aspect where a guide plate (17a) outwardly changing an ejection direction of the combustion air in a periphery of the flame stabilizer (17) is disposed at a front end of the L-shaped flame stabilizer (17).
A thirteenth aspect of the present invention provides the burner according to any of the first and fourth to twelfth aspects where a combustion air guide plate (15a), outwardly spreading an ejection direction of the combustion air at an outer side of the one or more combustion air supply nozzles (15) disposed at the outer peripheral part of the nozzle (12) with respect to a fuel ejection direction, is disposed at a front end of the combustion air supply nozzles (15).
A fourteenth aspect of the present invention provides the burner according to any one of the first and fourth to thirteenth aspects where a condenser (23), narrowing the flow passage of the fuel-containing fluid (11) once and then expanding the flow passage again, is disposed in an interior of the fuel-containing fluid supply nozzle (12).
A fifteenth aspect of the present invention provides the burner according to any one of the first and fourth to fourteenth aspects where a fluid distribution plate (24) distributing the fuel uniformly inside the fuel-containing fluid supply nozzle (12) is disposed at an inlet part of the fuel-containing fluid supply nozzle (12).
A sixteenth aspect of the present invention provides the burner according to any of the first and fourth to fifteenth aspects where a nozzle (41, 44), ejecting a liquid fuel or a gas fuel that is an auxiliary fuel to a vicinity of the fluid (11) ejected from the fuel-containing fluid supply nozzle (12), is disposed at the vicinity of the fuel-containing fluid supply nozzle (12).
A seventeenth aspect of the present invention provides a combustion equipment where the burners according to any of the first and fourth to sixteenth aspects are disposed in a plurality of stages in an up/down direction at each of two opposing furnace walls, and a plurality of burners disposed at each stage are disposed respectively symmetrically in wall surface regions divided in two at a central part of width in a horizontal direction of the same furnace wall.
An eighteenth aspect of the present invention provides a combustion equipment where the burners according to any of the first and fourth to sixteenth aspects are disposed in the plurality of stages in the up/down direction at each of the two opposing furnace walls, and burners, which, among the plurality of burners disposed in each stage of the same furnace wall, are adjacent each other in the horizontal direction, are burners of the same structure.
A nineteenth aspect of the present invention provides a boiler including: a furnace wall formed by spirally winding a set of water wall tubes (25) inclined with respect to a horizontal direction; and where openings (26) of rectangular, elliptical, or substantially elliptical shape are disposed in the furnace wall along a longitudinal direction of the water wall tubes (25) and the burner according to any of the first and fourth to sixteenth aspects is mounted in each opening (26).
A twentieth aspect of the present invention provides a boiler including: a furnace wall formed by a set of water wall tubes (25) extending in a vertical direction; and where openings (26) of rectangular, elliptical, or substantially elliptical shape are disposed in the furnace wall along a longitudinal direction of the water wall tubes (25) and the burner according to any of the first and fourth to sixteenth aspects is mounted in each opening (26).
Effect(s) of the InventionAccording to the first aspect of the present invention, expansion of an unignited region can be suppressed even if a burner capacity is increased, an unignited distance can be reduced effectively in comparison with the conventional art because the fuel-containing fluid (11) spreads in the width direction even after the fuel-containing fluid (11) is loaded into the furnace (4) so that a cross-sectional area of the ejection flow of the fuel-containing fluid (11) increases and a flow velocity decreases, and also because the fuel-containing fluid (11) spreads inside the furnace (4), a combustion space can be utilized effectively and a practical furnace retention time is made long, thereby providing effects of reducing NOx concentration in a combustion gas and improving combustion efficiency. Also, the size of the minor axis part of the fuel-containing fluid supply nozzle (12) is unchanged, and this is effective for simplification of structure. Also, a flow velocity at an upstream side of the fuel-containing fluid supply nozzle (12) can be made high, and this is effective for preventing backfiring in a case of a readily ignitable fuel, etc.
According to the fourth and fifth aspects of the present invention, because the flow of the fuel-containing fluid (11) is partitioned plurally by the fuel-containing fluid guide plates (19) in the interior of the fuel-containing fluid supply nozzle (12), the fuel-containing fluid (11) is supplied uniformly in the direction in which the fuel-containing fluid supply nozzle (12) expands from the fuel-containing fluid connecting part (10a) toward the outlet part of the nozzle (12), and the effects of NOx reduction, improvement in combustion efficiency, suppression of flow velocity increase, minimization of pressure loss, and suppression of wear of component parts are improved in comparison with other those of the third aspect of the present invention.
According to the sixth aspect of the present invention, effects of promoting dispersion of the fuel-containing fluid ejection flow (20) inside the furnace (4) and promoting combustion at a wake part of the furnace (4) are provided.
According to the seventh aspect of the present invention, because the fuel-containing fluid guide plates (19) are respectively disposed in mutually opposing directions with respect to the planes parallel to the plane passing along the line extending the central axis of the fuel-containing fluid supply nozzle (12) toward the furnace (4) and passing through the longest axis of the major axis part of the nozzle (12), the fuel-containing fluid (11) can be ejected into the furnace (4) in two or more groups and the fuel-containing fluid ejection flow (20) can thereby be divided into groups by a simple structure to provide the effects of promoting the dispersion of the fuel-containing fluid ejection flow (20) inside the furnace (4) and promoting the combustion at the wake part of the furnace (4).
According to the eighth aspect of the present invention, by dividing four fuel-containing fluid ejection flows (20), formed by the fuel-containing fluid supply nozzle (12) and the fuel-containing fluid guide plates (19) into two groups (20a, 20b) and thereby making, for example, fuel-containing fluid ejection flows (20a), adjacent a furnace side wall, rectilinear flows and making fuel-containing fluid ejection flows (20b), not adjacent the furnace side wall, be ejected upon applying an inclination with respect to a horizontal direction, an effect of preventing ash deposition by suppressing flame inflow to a vicinity of the furnace side wall while maintaining promotion of combustion at the furnace wake part by dispersion of the fuel is provided.
According to the ninth aspect of the present invention, because the fuel-containing fluid (11) can be ejected into the furnace (4) at mutually different angles with respect to the horizontal direction or the vertical direction from the fuel-containing fluid supply nozzle (12) and the fuel-containing fluid ejection flow (20) can be varied in direction without using parts inside the fuel-containing fluid supply nozzle (12) with which pulverized coal or other solid fuel collides directly, wear of parts can be suppressed effectively.
According to the tenth aspect of the present invention, the fuel-containing fluid ejection flow (20) is partitioned by the fuel-containing fluid partitioning plates (22) to be increased in surface area, and radiant heat inside the furnace (4) is thereby increased and a negative pressure region is formed at the wake side of the fluid partitioning plates (22), thereby making a high temperature gas in a periphery flow into the negative pressure region to contribute to early ignition of the fuel, promote combustion at a reducing region in the vicinity of the burner, and effectively contribute to the reduction of the NOx concentration in the combustion gas and the improvement in the combustion efficiency.
According to the eleventh aspect of the present invention, by disposing the flame stabilizer (17) with the L-shaped cross section at the outlet part of the fuel-containing fluid supply nozzle (12), a circular vortex is formed at the wake of the flame stabilizer (17) and draws back the high-temperature combustion gas to a vicinity of the flame stabilizer (17) to contribute to early ignition of the fuel, promote combustion at the reducing region in the vicinity of the burner, and effectively contribute to the reduction of the NOx concentration in the combustion gas and the improvement in the combustion efficiency in compassion with the eleventh aspect of the invention.
According to the twelfth aspect of the present invention, by the secondary air guide plate (17a) at the front end of the flame stabilizer (17) of L-shaped cross section, the secondary air is spread outward and the circular vortex at the wake of the flame stabilizer (17) is enlarged, thereby increasing a recirculation amount of the high-temperature combustion gas to further quicken ignition of the fuel, promote combustion at the reducing region near the burner, and effectively contribute to the reduction of the NOx concentration in the combustion gas and the improvement in the combustion efficiency in comparison with the eleventh aspect of the invention.
According to the thirteenth aspect of the present invention, by provision of the combustion air guide plate (15a) that spreads the combustion air ejection direction at the outer side of the combustion air supply nozzles (15) outward with respect to the fuel-containing fluid ejection direction, the combustion air is spread outward, thereby enlarging the reducing region at a central part of the flame and effectively contributing to the reduction of the NOx concentration in the combustion gas and the improvement in the combustion efficiency.
According to the fourteenth aspect of the present invention, the fuel in the vicinity of the flame stabilizer (17) is condensed by the condenser (23) thereby contributing to early ignition of the fuel to promote combustion at a reducing region in the vicinity of the burner and effectively contributing to the reduction of the NOx concentration in the combustion gas and the improvement in the combustion efficiency.
According to the fifteenth aspect of the present invention, the fuel concentration at the inlet part of the fuel-containing fluid supply nozzle (12) is made uniform by the fluid distribution plate (24) to suppress imbalance of concentration of the fuel flowing into the respective flow passages partitioned by the fuel-containing fluid guide plates (19), and this is effective for NOx reduction and improvement in the combustion efficiency.
According to the sixteenth aspect of the present invention, because the liquid fuel or the gas fuel is ejected to the burner outlet, the fuel-containing fluid (11) that contains the solid fuel can be ignited reliably.
According to the seventeenth aspect of the present invention, by the burners according to any of the first and fourth to sixteenth aspects being disposed in the plurality of stages in the up/down direction at each of the opposing furnace walls of the opposed firing type furnace (4) and by disposing the plurality of burners of each stage respectively symmetrically at the wall surface regions divided in two at the central part of width in the horizontal direction of the same furnace wall, the directions of the fluid ejection flows (20a, 20b) can be made left/right symmetrical at a single furnace wall surface and good left/right balance of flow and combustion states can be maintained in the furnace (4).
According to the eighteenth aspect of the present invention, by the burners according to any of the first and fourth to sixteenth aspects being disposed in the plurality of stages in the up/down direction at each of the two opposing furnace walls of the opposed firing type furnace (4) and by making the burners, which, among the plurality of burners disposed in each stage of the same furnace wall, are adjacent each other in the horizontal direction, burners of the same structure, collision of the fuel-containing fluid ejection flows (20a, 20b) can be avoided, especially in a furnace (4) of small capacity, to suppress localized concentration of fuel and provide the effects of reducing the NOx concentration in the combustion gas and improving the combustion efficiency.
According to the nineteenth aspect of the present invention, by aligning a longitudinal direction of the water wall tubes (25) with a longitudinal direction of the major axis parts of the openings (26), a number of the spiral water wall tubes (25) necessary for forming the openings (26) can be made small and an economical boiler can be constructed with few processed and bent parts in the water wall tubes (25). The number of the spiral water wall tubes (25) necessary for forming the openings (26) can be minimized to improve economy. Also, because the fuel-containing fluid (11) spreads in the horizontal (width) direction of the furnace (4), distribution of the fuel-containing fluid (11) in the horizontal (width) direction of the furnace (4) is made uniform, the practical furnace retention time is made longer, and the effects of reducing the NOx concentration in the combustion gas and improving the combustion efficiency are provided.
According to the twentieth aspect of the present invention, because the rectangular openings (26) are installed on the furnace wall along the arrangement of the water wall tubes (25) in the vertical direction, by aligning the longitudinal direction of the water wall tubes (25) with the longitudinal direction of the major axis parts of the openings (26), an economical boiler can be constructed with few processed and bent parts in the water wall tubes (25).
Embodiments of the present invention shall now be described along with the drawings.
Basic concepts of the present invention shall now be described using
As shown in
In the present embodiment, by making the shape of the outlet part of the fuel-containing fluid supply nozzle (12) of the burner a rectangular shape and reducing a length of a short edge, a length L2 (
A cylindrical fuel-containing fluid flow passage (10) is connected via a connecting part (10a) of circular cross section to the fuel-containing fluid supply nozzle (12) having a rectangular cross section and has an adequate configuration for forming the ejection flow of rectangular cross section from the fuel-containing fluid supply nozzle (12) into the furnace (4). Even after the fuel-containing fluid (11) is loaded into the furnace (4), the fuel-containing fluid (11) spreads along the ejection flow directions and a cross-sectional area of the ejection flow of the fuel-containing fluid (11) expands while a flow velocity decreases, thereby effectively reducing the unignited distance L1 shown in
In the burner shown in
Although as cross-sectional shapes in a vertical direction of the burner (direction perpendicular to the ejection flow of the fuel-containing fluid (11)), the representative shapes of rectangular and elliptical were shown in
In the burner shown in
A characteristic of the burner structure shown in
In the burner shown in
Because the flow of the fuel-containing fluid (11) flowing inside the fuel-containing fluid supply nozzle (12) is partitioned plurally by the fuel-containing fluid guide plates (19), the fuel-containing fluid (11) is spread uniformly according to the spreading of the fuel-containing fluid supply nozzle (12) from the fuel-containing fluid connecting part (10a) toward the outlet part of the fuel-containing fluid supply nozzle (12) and can be combusted without imbalance. Also, by the fuel-containing fluid (11) being spread uniformly, the effects of suppression of localized increase of flow velocity, minimization of pressure loss, and suppression of wear of component parts are improved over those of the configuration shown in
In the burner shown in
In the burner shown in
In a case where the fuel-containing fluid direction changing guide plates (21a) are not installed and only the guide plates (21b) that change the direction are installed, the same fuel-containing fluid ejection flows (20a, 20b) are formed.
For example, by making fuel-containing fluid ejection flows, close to a water wall side at a side wall side of the furnace (4), rectilinear flows and making fuel-containing fluid that are not close to the water wall side at the side wall side of the furnace (4) flows that are oblique with respect to a central side of the furnace by the burner configuration shown in
In the burner shown in
By this configuration, an obliquely downwardly directed fuel-containing fluid ejection flow (20a) is formed at a portion close to the side surface (12a) of the fuel-containing fluid supply nozzle (12) as shown in
Although the effects of the burner configuration of FIG. 9 are equivalent to those of the burner shown in
Fuel-containing fluid partitioning plates 22, perpendicular to the flow of the fuel-containing fluid (11) and partially blocking the flow, are disposed at the outlet part of the fuel-containing fluid supply nozzle (12). The fuel-containing fluid ejection flow (20) is partitioned into four by the fuel-containing fluid partitioning plates (22) as shown in
The fuel-containing fluid partitioning plates (22), perpendicular to the flow of the fuel-containing fluid (11) and partially blocking the flow, are disposed at the outlet parts of the fuel-containing fluid guide plates (19) at the outlet part of the fuel-containing fluid supply nozzle (12). Because the fuel-containing fluid (11) is supplied uniformly inside the fuel-containing fluid supply nozzle (12) by the fuel-containing fluid guide plates (19), the reduction of NOx and improvement in the combustion efficiency are realized more effectively.
A flame stabilizer (17) with an L-shaped cross section is installed at the outlet part of the fuel-containing fluid supply nozzle (12). Because a circular vortex (not shown) is formed at a wake of the flame stabilizer (17) and draws back the high-temperature combustion gas to the vicinity of the flame stabilizer (17), the configuration contributes to early ignition of the fuel and promotes combustion in the reducing region in the vicinity of the burner to effectively contribute to reduction of the NOx concentration in the combustion gas and improvement in the combustion efficiency.
A secondary air guide plate (17a) that outwardly spreads ejection directions of a secondary air is installed at a front end of the flame stabilizer (17) of L-shaped cross section shown in
In the burner shown in
In the burner shown in
A fuel-containing fluid condenser (23′) combining a triangular prism gradually increasing in cross-sectional area at an upstream side, a quadrangular prism at an intermediate part, and an oppositely directed triangular prism gradually decreasing in cross-sectional area at a downstream side, is installed inside the fuel-containing fluid supply nozzle (12). In the present configuration, delamination is suppressed by making an angular variation around the condenser (23′) small and a fuel condensing effect is thereby promoted to heighten the NOx reducing effect and improve the combustion efficiency.
Although effective configuration examples of the condenser (23, 23′) are shown in
In
As viewed from the furnace (4) front side, the fuel-containing fluid ejection flows (20a, 20b) from the fuel-containing fluid supply nozzle (12) shown in
As viewed from the furnace (4) front side, one fuel-containing fluid ejection flow (20b) from the fuel-containing fluid supply nozzle (12) shown in
As long as the ejection flows (20a, 20b) from the fuel-containing fluid supply nozzles (12), disposed distributedly at left and right halves of a single furnace wall, are formed at mirror symmetrical positions, the directions of the fuel-containing fluid ejection flows (20a, 20b) from the nozzles (12) do not necessary have to be as illustrated.
By selecting appropriately from the burner structures of
As described above, a combustion equipment configured from the respective embodiments of the present invention has a characteristic of enabling the combustion space to be utilized effectively because the fuel-containing fluid ejection flows (20) spread inside the furnace (4), and with the configuration shown in
In the present configuration, by using the burners shown in
An oil or a gas is generally used as an auxiliary fuel in a burner, and even when supply nozzles for such fuels are installed at a part of the burners according to the embodiments of the present invention, the characteristics and effects of the burners according to the embodiments of the present invention are maintained.
INDUSTRIAL APPLICABILITYAs a burner structure capable of following a trend toward burners of large capacity while reducing cost without lowering combustion performance, the present invention is high in future industrial applicability.
DESCRIPTION OF THE SYMBOLS
- 3 windbox, 4 furnace, 10 fuel-containing fluid flow passage, 10a fuel-containing fluid connecting part, 11 fuel-containing fluid, 12 fuel-containing fluid supply nozzle
- 13 secondary air, 14 tertiary air, 15 combustion air sleeve, 15a tertiary air guide plate, 16 burner throat, 17 flame stabilizer, 17a secondary air guide plate, 19 fuel-containing fluid guide plate, 20, 20a, 20b, 20c, 20d fuel-containing fluid ejection flow, 21a, 21b fuel-containing fluid direction changing guide plate, 22 fuel-containing fluid partitioning plate, 22a negative pressure region, 23, 23′ condenser, 24 fluid distribution plate, 25 water wall tube, 26 opening, 31 unignited region, 32 ignited region, 33 ignition position, 41 oil supply nozzle, 42 gas introduction tube, 43 horizontal tube, 44 gas supply nozzle, L1 unignited distance, L2 distance from ignition position to central part of fuel-containing fluid ejection flow
Claims
1. A burner, comprising:
- a fuel-containing fluid supply nozzle supplying a fuel-containing fluid, containing a solid fuel and a medium for transfer of the solid fuel, to an outlet part disposed on a wall surface of a furnace from a connecting part of a fuel-containing fluid transfer flow passage that transfers the fluid; and one or more air supply nozzles supplying combustion air and disposed at an outer peripheral part of the fuel-containing fluid supply nozzle; wherein,
- from the connecting part of the fluid transfer flow passage toward the outlet part disposed on the wall surface of the furnace, a cross section of the fuel-containing fluid supply nozzle perpendicular to a flow of the fluid has a rectangular, elliptical, or substantially elliptical shape with major and minor axis parts and, from the connecting part of the fluid transfer flow passage toward the outlet part,
- a size of the major axis part of the cross section perpendicular to the flow of the fluid increases gradually along a direction of the flow of the fluid from the connecting part of the fluid transfer flow passage,
- a size of the minor axis part of the cross section perpendicular to the flow of the fluid is unchanged or decreases gradually along the direction of the flow of the fluid, and
- a fluid distribution plate, distributing the fuel uniformly inside the fuel-containing fluid supply nozzle is disposed at an inlet part of the fuel-containing fluid supply nozzle.
2. The burner according to claim 1, wherein
- fuel-containing fluid guide plates disposed at a plurality of different inclination angles with respect to a plane passing along a line extending a central axis in the direction of the flow of the fluid in the fuel-containing fluid supply nozzle toward the furnace and parallel to a shortest axis of the minor axis part of the nozzle.
3. The burner according to claim 1, wherein
- the fuel-containing fluid supply nozzle has, in an interior of the outlet thereof, fuel-containing fluid direction changing guide plates forcibly changing a direction of ejection flow of the fuel-containing fluid.
4. The burner according to claim 3, wherein
- the fuel-containing fluid direction changing guide plates are disposed in a plurality of mutually different directions with respect to planes parallel to a plane passing along a line extending the central axis of the fuel-containing fluid supply nozzle toward the furnace and passing through a longest axis of the major axis part of the nozzle.
5. The burner according to claim 3, wherein
- the fuel-containing fluid direction changing guide plates for a portion of the fuel-containing fluid are disposed parallel to planes parallel to a plane passing along a line extending the central axis of the fuel-containing fluid supply nozzle toward the furnace and passing through a longest axis of the major axis part of the nozzle, and the fuel-containing fluid direction changing guide plates for another portion of the fuel containing fluid are disposed at an inclination angle with respect to the plane passing along the line extending the central axis of the fuel-containing fluid supply nozzle toward the furnace and parallel to the longest axis of the major axis part of the nozzle.
6. The burner according to claim 1, wherein
- the fuel-containing fluid supply nozzle is partitioned into a plurality of flow passages by the fuel-containing fluid guide plates, and central axes of the respective flow passages are disposed at the wall surface of the furnace at a plurality of mutually different inclination angles with respect to planes parallel to a plane passing along a line extending the central axis of the fuel-containing fluid supply nozzle toward the furnace and passing through a longest axis of the major axis part of the nozzle outlet.
7. The burner according to claim 1, wherein
- fuel-containing fluid partitioning plates, capable of plurally partitioning the outlet part of the fuel-containing fluid supply nozzle, are disposed at the outlet part.
8. The burner according to claim 1, wherein
- a flame stabilizer with an L-shaped cross section is disposed at the outlet part of the fuel-containing fluid supply nozzle.
9. The burner according to claim 8, wherein
- a guide plate outwardly changing an ejection direction of the combustion air in a periphery of the flame stabilizer is disposed at a front end of the L-shaped flame stabilizer.
10. The burner according to claim 1, wherein
- a combustion air guide plate, outwardly spreading an ejection direction of the combustion air at an outer side of the one or more combustion air supply nozzles disposed at the outer peripheral part of the nozzle with respect to a fuel ejection direction, is disposed at a front end of the combustion air supply nozzles.
11. The burner according to claim 1, wherein
- a condenser, narrowing the flow passage of the fuel-containing fluid once and then expanding the flow passage again, is disposed in an interior of the fuel-containing fluid supply nozzle.
12. The burner according to claim 1, wherein
- a nozzle, ejecting a liquid fuel or a gas fuel that is an auxiliary fuel to a vicinity of the fluid ejected from the fuel-containing fluid supply nozzle, is disposed at a vicinity of the fuel-containing fluid supply nozzle.
13. A combustion equipment wherein
- the burners according to claim 1 are disposed in a plurality of stages in an up/down direction at each of two opposing furnace walls, and a plurality of burners disposed at each stage are disposed respectively symmetrically in wall surface regions divided in two at a central part of width in a horizontal direction of the same furnace wall.
14. A combustion equipment wherein
- the burners according to claim 1 are disposed in a plurality of stages in an up/down direction at each of two opposing furnace walls, and burners, which, among the plurality of burners disposed in each stage of the same furnace wall, are adjacent each other in a horizontal direction, are burners of the same structure.
15. A boiler including: a furnace wall formed by spirally winding a set of water wall tubes inclined with respect to a horizontal direction; wherein
- openings of rectangular, elliptical, or substantially elliptical shape are disposed in the furnace wall along a longitudinal direction of the water wall tubes and the burner according to claim 1 is mounted in each opening.
16. A boiler including: a furnace wall formed by a set of water wall tubes extending in a vertical direction; wherein
- openings of rectangular, elliptical, or substantially elliptical shape are disposed in the furnace wall along a longitudinal direction of the water wall tubes and the burner according to claim 1 is mounted in each opening.
Type: Application
Filed: Dec 24, 2013
Publication Date: May 1, 2014
Applicant: BABCOCK-HITACHI KABUSHIKI KAISHA (Tokyo)
Inventors: Kenji KIYAMA (Hiroshima), Akira BABA (Hiroshima), Takanori YANO (Hiroshima), Osamu OKADA (Hiroshima), Hirofumi OKAZAKI (Hiroshima), Kouji KURAMASHI (Hiroshima)
Application Number: 14/139,975
International Classification: F23D 1/00 (20060101); F22B 21/26 (20060101); F22B 1/18 (20060101);