WALL-ARRANGED GIANT RING-SHAPED STRAIGHT-THROUGH PULVERIZED COAL BURNER
20230280027 · 2023-09-07
Assignee
Inventors
Cpc classification
F23D2201/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D23/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C5/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C5/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C2201/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A wall-arranged giant ring-shaped direct-current pulverized coal burner includes burner nozzles arranged on four side furnace walls of a boiler. The burner nozzles on the four side furnace walls form a wall-tangential combustion mode in the furnace, and the burner nozzles on each side furnace wall are arranged in a ring by a plurality of small nozzles to form a giant ring-shaped combined nozzle. There is a plurality of small nozzles arranged in a ring on each side furnace wall to form a giant ring-shaped combined nozzle. The giant ring-shaped combined nozzles on the four side furnace walls may form a wall- tangential combustion mode in the furnace. Through the mutual entrainments of the multiple airflows in the giant ring-shaped combined nozzle and the mutual support of the fireside and back-fire-side airflows, the stiffness of each airflow may be effectively enhanced.
Claims
1. A wall-arranged giant ring-shaped straight-through pulverized coal burner, comprising burner nozzles arranged on four side furnace walls of a boiler, the burner nozzles on the four side furnace walls form a wall-tangential combustion mode inside the boiler furnace, wherein each burner nozzle on each side furnace wall comprises a plurality of small nozzles arranged along a ring to form a giant ring-shaped combined nozzle.
2. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 1, wherein the small nozzles forming the giant ring-shaped combined nozzle are arranged along a ring selected from a group consisting of a circular ring, an elliptical ring and a rectangular ring.
3. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 1, wherein on each side furnace wall corresponding to a main combustion region inside the furnace, a plurality of the giant ring-shaped combined nozzles are provided along a furnace height direction.
4. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 1, wherein on each side furnace wall corresponding to the main combustion region inside the furnace, the giant ring-shaped combined nozzle comprises a plurality of small primary air nozzles and a plurality of small secondary air nozzles arranged along the ring.
5. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 4, wherein the plurality of small primary air nozzles and the plurality of small secondary air nozzles are arranged at intervals with one another along the ring.
6. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 4, wherein the plurality of small primary air nozzles and the plurality of small secondary air nozzles are arranged on a ring selected from a group consisting of a circular ring, an elliptical ring and a rectangular ring in a mode selected from a group consisting of a two-two concentrated mode and a three-three concentrated mode.
7. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 4, wherein the plurality of small primary air nozzles and the plurality of small secondary air nozzles are arranged on two rings selected from the group consisting of two concentric circular rings, two elliptical rings and two rectangular rings.
8. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 4, wherein the plurality of small primary air nozzles and the plurality of small secondary air nozzles are respectively arranged on two circular rings which have equal diameters and are not concentric.
9. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 1, wherein on each side furnace wall corresponding to a burnout area at an upper part of the furnace, the giant ring-shaped combined nozzle comprises a plurality of small separated over fire air nozzles arranged in a ring.
10. The wall-arranged giant ring-shaped straight-through pulverized coal burner according to claim 1, wherein the small nozzles installed on the side furnace wall are adjusted upward, downward, leftward and rightward.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] The specific embodiments of the present disclosure are further described in detail below in combination with the accompanying drawings. These embodiments are only used to explain the present disclosure, not to limit the present disclosure.
[0031] In the description of the present disclosure, the terminology used herein for the purpose of describing particular examples is not intended to be limiting for further examples. Whenever a singular form such as “a”, “an” and “the” is used and using only a single element is neither explicitly or implicitly defined as being mandatory, further examples may also use plural elements to implement the same functionality. It should be noted that orientation or position relationships indicated by the terms “center”, “longitudinal”, “lateral”, “up”, “down”, “inner”, “outer” and so on are based on the orientation or position relationships shown in the drawings, which are only for the convenience of describing the present disclosure and simplifying the description, rather than indicating or implying that the device or element mentioned must have a specific orientation, be constructed or operated in a specific orientation: therefore, it cannot be understood as a limitation of the present disclosure.
[0032] Furthermore, in the description of the present disclosure, unless otherwise stated, “multiple” means two or more.
[0033] As shown in
[0034] A distance from the installation center of each giant ring-shaped combined nozzle to its adjacent downstream furnace wall should be generally greater than 0.7 times of the equivalent diameter of giant ring-shaped combined nozzle, so that there is a certain distance from the small nozzles on the back-fire side of the giant ring-shaped combined nozzle to the adjacent downstream furnace wall, to prevent the injected airflows from adhering to the furnace wall caused by that the airflows on the back-fire side of the giant ring-shaped combined nozzle is too close to the adjacent wall surface.
[0035] As shown in
[0036] As shown in
[0037] As shown in
[0038] In a preferred embodiment, each giant ring-shaped combined nozzle 10, 20 and 30 in the main combustion region includes 6 small primary air nozzles 1 and 6 small secondary air nozzles 2, and each giant ring-shaped combined nozzle 40 in the burnout area includes 12 small separated over fire air nozzles. Small nozzles with square end sections are adopted, in which a side length of each small primary air nozzle 1 is 0.36 meters, a side length of each small secondary air nozzle 2 is 0.44 meters, a side length of each small over-fired air nozzle is 0.36 meters, and an equivalent ring diameter of the giant ring-shaped combined nozzle is 3.6 meters.
[0039] An area of the end section of the small primary air nozzle 1 may be less than, equal to or greater than that of the small secondary air nozzle 2.
[0040] As shown in
[0041] As shown in
[0042] As shown in
[0043] As shown in
[0044] As shown in
[0045] The total number of the small primary air nozzles and the small secondary air nozzles in each giant ring-shaped combined nozzle may be not less than 5, which may be increased with increasing boiler capacity. Power of each small primary air nozzle is not less than 3~5 MW. A diameter or an equivalent diameter of each giant ring-shaped combined nozzle is not less than 1 meter, which increases with increasing boiler capacity. The above equivalent diameter refers to a diameter of a circle which has an area equal to the ring. For the giant ring-shaped combined nozzle with the small nozzles arranged along two rings, the equivalent diameter refers to an average value of equivalent diameters of the two rings.
[0046] In some embodiments, in order to facilitate installation, the small primary and secondary air nozzles of the giant ring-shaped combined nozzle are installed perpendicular to the furnace wall surface, which reduces the sensitivity to the installation angle compared with the existing four-corner tangential boiler. Furthermore, the small nozzles can be adjusted upward, downward, leftward and rightward; more specially, an angle between the small primary air nozzle and the furnace wall surface and an angle between the small secondary air nozzle and the furnace wall surface can be adjusted upward, downward, leftward and rightward according to the operation requirements, for controlling the size of the actual tangential circle and the adjustment of the flame center position.
[0047] The inventor carried out computational fluid dynamics (CFD) numerical simulation on the tangentially-fired pulverized coal boiler with the traditional wall-arranged burners and the pulverized coal boiler with the giant ring-shaped straight-through pulverized coal burners of the present disclosure to analyze the in-furnace flow and combustion differences under such two schemes. The calculation results are shown in
[0048] From
[0049] It can be seen from
[0050] In the present disclosure, the mutual entrainments of multiple airflows in the giant ring-shaped combined nozzle make it difficult for each individual airflow to diffuse to the external space, thus helping to enhance the overall stiffness of the combined airflows. Furthermore, the swirling flue gas flow and the deflected upstream airflow in the furnace mainly impinge the fire-side airflows from the giant ring-shaped combined nozzle, while the back-fire side airflows can maintain a strong stiffness since they are not directly impinged. The back-fire side airflows with stronger stiffness play a role in supporting the fireside airflows that may be deflected, so it can effectively prevent the large deflection of the fireside airflows.
[0051] The present disclosure provides a wall-arranged giant ring-shaped straight-through pulverized coal burner, which is particularly suitable for reconstruction of the existing boilers and design of new boilers with large capacity of 200MW and above and with large size of furnace. The wall-arranged giant ring-shaped straight-through pulverized coal burner can significantly overcome the problems such as airflow scouring on furnace walls caused by the insufficient airflows stiffness, and the subsequent slagging and high-temperature corrosion on the heating surface caused by the airflow scouring on furnace walls in large capacity boilers, which can make the boiler operate more safely and stably. Furthermore, it is beneficial to control the formation of nitrogen oxides during coal combustion process. In conclusion, the present disclosure can effectively overcome the defects in the prior art and improve the safety and stability of boiler operation, so it has high industrial application value.
[0052] The above embodiments only illustrate the principle and effect of the present disclosure, not limit the present disclosure. Any person ordinarily skilled in the art can modify or change the above embodiments without departing from the spirit and scope of the present disclosure. Therefore, all equivalent modifications or changes made by those with ordinary knowledge in the technical field without departing from the spirit and technical ideas disclosed by the present disclosure shall still be covered by the claims of the present disclosure.