SYSTEMS AND METHODS FOR FACILITATING VARYING SIZE COAL PIPES FOR A PULVERIZED COAL BURNER
Embodiments of the invention can include systems and methods for facilitating varying coal pipes for a pulverized coal burner. In one embodiment, a method for improving operation of a pulverized coal burner comprising at least one burner comprising at least one coal pipe having an inner diameter, and an outer diameter. The method can include installing at least one sleeve or at least one liner within the coal pipe between the inner and outer diameter of the coal pipe, wherein velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe. The method can also include reducing the at least one sleeve or liner, wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
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The invention generally relates to pulverized coal burners, and more particularly relates to systems and methods for facilitating varying size coal pipes for a pulverized coal burner.
BACKGROUND OF THE INVENTIONPulverized coal burners are utilized in combustion and heat transfer processes within utility and industrial boiler furnaces of coal-fired power plants and other power generating facilities. In a typical furnace, raw coal is crushed into small pieces, conveyed to coal feed hoppers, pulverized into a very fine powder, mixed with primary air, and blown through a furnace coal pipe, wherein the fine coal is directed to a coal burner where the mixture of primary air and coal is ignited upon introduction to the furnace. The subsequent combustion of the primary air and coal mixture heats the furnace to generate steam used for power generation and other plant purposes.
Extracting maximum energy from pulverized coal while minimizing environmental pollutants sometimes requires careful control of the fuel delivery and combustion process. Excess nitrogen oxides (NOx) can be produced at the burner when the flame is not carefully controlled, or when it becomes unstable, as is often the case when the air/coal mixture velocity is too high when introduced at the burner end. However, the air/coal mixture velocity must be high enough within the coal delivery pipe so that the coal particles do not fall out of the air and collect in or otherwise clog the coal delivery pipe. These two opposing requirements (high air/coal mixture velocity in the coal delivery pipe and low air/coal mixture velocity at the burner end) present a difficult challenge for boiler and service engineers, particularly as furnace output and/or air/coal mixture velocity requirements change.
Many existing pulverized coal burners were designed with coal pipe geometries tuned to a certain air/fuel injection and velocity rate. As new industrial pollution limits, process refinements, etc. are implemented, existing pulverized coal burners may not be suitable to maintain or otherwise attain certain upstream and downstream air/coal mixture velocity requirements, and new coal burner components, such as different sized coal delivery pipes, may need to be installed to stabilize the burner flame and eliminate coal dropout. Such installations can be time consuming and expensive.
Therefore, a need exists for systems, methods, and apparatus for facilitating varying size coal pipes for a pulverized coal burner.
A further need exists for systems, methods, and apparatus to modify or retrofit existing coal pipes as injection speeds or other system parameters are changed to meet new requirements.
A further need exists for systems, methods, and apparatus for improving operation of a pulverized coal burner.
BRIEF DESCRIPTION OF THE INVENTIONEmbodiments of the invention can include systems and methods for facilitating varying size coal pipes for a pulverized coal burner. Other embodiments of systems, apparatuses and methods for improving the operation of a pulverized a coal burner can also be provided. Certain embodiments of the invention can utilize existing parts of a coal pipe together with newly added sleeves, liners and/or transition ramps to meet target air/coal mixture velocities within the coal pipe and at the burner without having to replace the entire coal pipe assembly.
In one embodiment, a method for improving operation of a pulverized coal burner can include at least one coal pipe having an inner diameter, and an outer diameter. In addition, the method can include installing at least one sleeve or at least one liner within the coal pipe between the inner and outer diameter of the coal pipe, wherein velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe. The method can also include reducing the at least one sleeve or liner, wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
In one embodiment, an apparatus for improving operation of a pulverized coal burner can include at least one coal pipe having an inner diameter, and an outer diameter. The method can include installing at least one sleeve or at least one liner within the coal pipe between the inner and outer diameter of the coal pipe, wherein velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe. The method can also include reducing the at least one sleeve or at least one liner, wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
In one embodiment, a combustion system can be provided. The combustion system can include at least one burner starter, at least one core pipe, wherein the at least one burner starter is mounted within at least one core pipe. The system can include at least one coal pipe having an inner diameter and an outer diameter. The system can further include at least one sleeve or at least one liner between the coal pipe inner diameter and outer diameter, wherein the velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe, and wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
Other embodiments and aspects of embodiments of the invention will become apparent from the following description taken in conjunction with the accompanying drawings.
Having thus described the invention in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
Embodiments of the invention will now be described more fully hereinafter with reference to the accompanying drawings. This invention may, however be embodied in many different forms and should not be construed as limited to the embodiment set forth herein; rather, embodiments are provided so that this disclosure will be thorough and complete, and will convey the scope of the invention.
As used herein, the term “sleeve” refers to a structure that is adjacent to, borders, surrounds, mounts to, or is otherwise attached to an outer portion of a core pipe, such as 112 in
As used herein, the term “liner” refers to a structure that is adjacent to, borders, mounts to, or is otherwise attached to an inner portion of a coal pipe, such as 104 in
As used herein, the term “fuel mixture” refers to a mixture of primary air and pulverized coal. Other embodiments may include mixtures of primary air and other fuel types.
As used herein, the term “upstream” refers to a section of a coal pipe nearest to an inlet duct, such as 110 in
Embodiments of a pulverized coal burner in accordance with the invention are shown with respect to
To illustrate example principles for improving operation of a pulverized coal burner in accordance with embodiments of the invention,
Referring to
The velocities V1, V2 of the fuel mixture within the coal pipe 404 is typically determined by the flow rate, the flow temperature, and the cross-sectional area within the coal pipe 404. For a pulverized coal burner in accordance with embodiments of the invention, injection flow rate and flow temperature are usually fixed. Therefore, the flow area multiplied by the flow velocity is maintained relatively constant.
With reference to
In one example, V1=50 ft/s (15.2 m/s), V2=60 ft/s (18.3 m/s), do=20 inches (50.8 cm), di=10 inches (25.4 cm). From equation (2), a sleeve diameter (ds) can be calculated to be approximately 12.25 inches (31.1 cm). A sleeve thickness calculated from equation (3) can be calculated to be approximately 1.125 inches (2.86 cm). Using some or all of the equations (1), (2), and (3), one can perform a similar calculation to determine geometric requirements for a liner embodiment, as shown in
Embodiments of the invention can include any combination of at least one sleeve and/or at least one liner. In the example pulverized coal burner 600 shown in
In this manner, the relative exit velocity (Vexit) can be reduced, thereby reducing or minimizing flow recirculation and turbulence of the fuel mixture at the downstream end 606, 706 of the burner 600, 700, which can stabilize burner combustion characteristics, i.e., the burner flame. If the sleeve and/or liner abruptly ends, for example, within approximately 6 inches (15.2 cm) of the downstream end 606, 706 of the burner 600, 700, a relatively higher probability may exist that unwanted turbulence will be generated near or adjacent to the downstream end 606, 706 of the burner 600, 700, thereby resulting in possible flow recirculation and/or flame instability.
One pulverized coal burner embodiment is described by way of
π·do2·V1=π·dl2·V2 (4)
where again, a transition ramp element or feature, similar to 802 of
In one embodiment, a sleeve and/or liner can be installed in multiple corresponding and adjacent sections to accommodate existing obstructions that would otherwise prevent or hinder the installation of a single or single-piece sleeve and/or liner. As shown in
The method 1100 begins at block 1102, wherein at least one sleeve or at least one liner can be installed within the coal pipe between the inner and outer diameter of the coal pipe, wherein velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe.
Block 1102 is followed by block 1104, wherein the at least one sleeve or liner can be reduced, wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
The method 1100 ends at block 1104.
The methods, systems and apparatus disclosed herein are by way of example only, and other methods in accordance with the embodiments of the invention can include other elements or steps, including fewer or greater numbers of elements or steps than the example methods described herein as well as various combinations of these or other elements.
While the above description contains many specifics, these specifics should not be construed as limitations on the scope of the invention, but merely as exemplifications of the disclosed embodiments. Those skilled in the art will envision many other possible variations that are within the scope of the invention.
Claims
1. A method for improving operation of a pulverized coal burner comprising at least one coal pipe having an inner diameter, and an outer diameter, the method comprising:
- installing at least one sleeve or at least one liner within the coal pipe between the inner and outer diameter of the coal pipe, wherein velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe; and
- reducing the at least one sleeve or liner, wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
2. The method of claim 1, wherein the at least one sleeve or at least one liner terminates within about 10 to about 20 inches (25.4 to 50.8 cm) from a downstream end of the burner.
3. The method of claim 1, wherein the at least one sleeve or at least one liner comprises a ceramic, metal, or a high temperature resistant material.
4. The method of claim 1, wherein the at least one sleeve or at least one liner comprises at least one transition ramp or device to prevent flow recirculation.
5. The method of claim 1, wherein the at least one sleeve or at least one liner comprises a plurality of sleeve or liner components or sections.
6. The method of claim 1, wherein a thickness of the at least one sleeve or at least one liner is determined by the equations: ds = do 2 · ( V 2 - V 1 ) + di 2 · V 1 V 2 Thickness = ds - di 2
- wherein, ds is an outer diameter of the at least one sleeve, do is an outer diameter of the coal pipe, di is an inner diameter of the coal pipe, V2 is a target velocity of the primary air and pulverized coal mixture within the upstream portion of the coal pipe, and V1 is a target exit velocity of the primary air and pulverized coal mixture.
7. The method of claim 1, wherein the at least one sleeve or at least one liner is mounted coaxially and in close proximity to an inner diameter, of at least one coal pipe, or coaxially and in close proximity to an outer diameter, of the at least one coal pipe.
8. An apparatus for improving operation of a pulverized coal burner comprising at least one coal pipe having an inner diameter, and an outer diameter, the apparatus comprising:
- at least one sleeve or at least one liner installed within the coal pipe between the inner and outer diameter of the coal pipe, wherein velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe; and
- wherein the at least one sleeve or at least one liner is reduced in a downstream portion of the coal pipe to reduce the velocity of the primary air and pulverized coal mixture.
9. The apparatus of claim 8, wherein the at least one sleeve or at least one liner terminates within about 10 to about 20 inches (25.4 to 50.8 cm) from a downstream end of the burner.
10. The apparatus of claim 8, wherein the at least one sleeve or at least one liner comprises a ceramic, a metal, or a high temperature resistant material.
11. The apparatus of claim 8, wherein the at least one sleeve or at least one liner comprises at least one transition ramp or device to prevent flow recirculation.
12. The apparatus of claim 8, wherein the at least one sleeve or at least one liner comprises a plurality of sleeve or liner components or sections.
13. The apparatus of claim 8, wherein a thickness of the at least one sleeve or at least one liner is determined by the equations: ds = do 2 · ( V 2 - V 1 ) + di 2 · V 1 V 2 Thickness = ds - di 2
- wherein, ds is an outer diameter of the at least one sleeve, do is an outer diameter of the coal pipe, di is an inner diameter of the coal pipe, V2 is a target velocity of the primary air and pulverized coal mixture within the coal pipe, and V1 is a target exit velocity of the primary air and pulverized coal mixture.
14. A combustion system comprising:
- at least one burner starter;
- at least one core pipe, wherein the at least one burner starter is mounted within at least one core pipe;
- at least one coal pipe having an inner diameter and an outer diameter;
- at least one sleeve or at least one liner between the coal pipe inner diameter, and outer diameter, wherein the velocity of a primary air and pulverized coal mixture is increased in an upstream portion of the coal pipe, and wherein velocity of the primary air and pulverized coal mixture is reduced in a downstream portion of the coal pipe.
15. The system of claim 14, wherein the at least one sleeve or at least one liner terminates within about 10 to about 20 inches (25.4 to 50.8 cm) from a downstream end of the burner.
16. The system of claim 14, wherein the at least one sleeve or at least one liner comprises a ceramic, metal, or a high temperature resistant material.
17. The system of claim 14, wherein the at least one sleeve or at least one liner comprises at least one transition ramp or device to prevent flow recirculation.
18. The system of claim 14, wherein the at least one sleeve or at least one liner comprises a plurality of sleeve or liner components or sections.
19. The system of claim 14, wherein a thickness of the at least one sleeve or at least one liner is determined by the equations; ds = do 2 · ( V 2 - V 1 ) + di 2 · V 1 V 2 Thickness = ds - di 2
- wherein, ds is an outer diameter of the at least one sleeve, do is an outer diameter of the coal pipe, di is an inner diameter of the coal pipe, V2 is a target velocity of the primary air and pulverized coal mixture within the coal pipe, and V1 is a target exit velocity of the primary air and pulverized coal mixture at the burner.
20. The system of claim 14, wherein the at least one sleeve or at least one liner is mounted coaxially and in close proximity to an outer diameter, of the at least one coal pipe, or coaxially and in close proximity to an inner diameter, of the at least one coal pipe.
Type: Application
Filed: Sep 30, 2008
Publication Date: Apr 1, 2010
Applicant: GENERAL ELECTRIC COMPANY (Schenectady, NY)
Inventors: Donald K. Morrison (Clinton, OH), Wei Zhou (Foothill Ranch, CA), Bob Frato (Stilwell, KS), David Kelly Moyeda (Laguna Hills, CA), Robert W. Waltz (Canton, OH)
Application Number: 12/241,623
International Classification: F23D 14/00 (20060101); F23D 1/00 (20060101);