ANGLED MAIN BURNER

20180363895 · 2018-12-20

Assignee

Inventors

Cpc classification

International classification

Abstract

A gasification burner for a multiple-burner arrangement in an entrained-flow gasifier, in which the gasification burner extends along a main axis and in which the media for the gasification reaction in the gasification burner are guided in separate media channels and exit at the burner mouth in a direction having an angle to the main axis that is not zero. A vertical installation with an optimally adaptable flame shape is provided. Depending on the orientation of the burners, the flame shape is adaptable, whether it be a minimized total flame diameter for an initial slag formation of the cooling screen or an increase in the total twist of the total flame for an increased particle deposition on the reactor wall. The gasification burner with angled burner tips can be used as part of a retrofit.

Claims

1. A gasification burner for a multiple-burner arrangement in an entrained-flow gasifier, comprising: a gasification burner that extends along a main axis, media for the gasification reaction in the gasification burner, and separate media channels adapted for guiding the media such that the media exit at the burner mouth in a direction which has a non-zero angle to the main axis.

2. The gasification burner as claimed in claim 1, wherein the media are provided from the group of carbon-containing fuels and free-oxygen-containing gasification media.

3. The gasification burner as claimed in claim 2, wherein the carbon-containing fuels are provided from the group of combustible dust, oil, combustible dust-oil slurry, combustible dust-water slurry, and the gasification medium is provided from the group of oxygen gas and steam.

4. The gasification burner as claimed in claim 1, wherein the center of the burner mouth is situated outside the main axis of the gasification burner.

5. The gasification burner as claimed in claim 1, wherein the media channels taper toward the burner mouth.

6. The gasification burner as claimed in claim 1, wherein the plane of the burner mouth is passed through perpendicularly by the direction of exit of the media.

7. The gasification burner as claimed in claim 1, further comprising: a plurality of gasification burners which are arranged in an entrained-flow gasifier, and wherein the media channels of the gasification burners exit in respective directions such that the direction vectors do not pass through a cylinder about the central axis of the entrained-flow gasifier.

8. The gasification burner as claimed in claim 1, further comprising: a plurality of gasification burners which are arranged in the entrained-flow gasifier, and a pilot burner which is arranged along the central axis of the entrained-flow gasifier.

9. The gasification burner as claimed in claim 1, wherein the gasification burner is rotatably arranged in its flange such that different angles between the media direction and the central axis of the entrained-flow gasifier are able to be set.

10. The gasification burner as claimed in claim 1, wherein the gasification burner is arranged with its main axis parallel to the central axis of the entrained-flow gasifier

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The invention will be explained below, to an extent necessary for comprehension, as an exemplary embodiment on the basis of figures, in which:

[0020] FIG. 1 shows an entrained-flow gasifier with multiple gasification burners according to the invention,

[0021] FIG. 2 shows a side section of a gasification burner according to the invention,

[0022] FIG. 3 shows a view of the burner mouth of the gasification burner as per FIG. 2,

[0023] FIG. 4 shows a side section of a gasification burner according to the invention with a bent-off burner tip,

[0024] FIG. 5 shows a view of the burner mouth of the gasification burner as per FIG. 4,

[0025] FIG. 6 shows a plan view for the arrangement and orientation of the gasification burners according to the invention with minimized total flame diameter, and

[0026] FIG. 7 shows a plan view for the arrangement and orientation of the gasification burners according to the invention with maximization of the total swirl.

[0027] Identical designations denote identical elements in the figures.

DETAILED DESCRIPTION OF INVENTION

[0028] In an entrained-flow reactor, 300 000 kg/h of coal dust 3 are converted by oxygen and steam 2 as a gasification medium to raw synthetic gas. The gasification temperature is 1450 C., and the gasification pressure is 4 MPa. Two or three gasification burners 1 are arranged on the head of the reactor. In the case of three gasification burners 1, these are arranged symmetrically about the central axis 18 with an angle offset of 120 degrees as illustrated in FIGS. 6 and 7. As fuel 3, coal dust is fed pneumatically as a coal dust conveying gas suspension to the gasification burners 1, and the conversion takes place in the gasification chamber 5, which is delimited by a cooling screen 4, wherein the cooling screen is formed by tubes which are welded in a gas-tight manner and through which cooling water flows. The hot gasification gas exits the gasification chamber 5 together with the liquid slag and passes through the raw-gas and slag outlet 6 into the quenching chamber 12, into which water is injected via the quenching nozzles 7 for the purpose of cooling raw gas and slag. The slag 11 is deposited in the water bath 8 and is discharged via the slag discharge 9. The quenched raw gas exits the quenching chamber 12 in a steam-saturated state via the raw-gas discharge 10 and passes into subsequent cleaning stages. The gasification burners 1 and the ignition and pilot burner 13 are guided into the gasification chamber 5 via respective single burner flanges 14. The ignition and pilot burner 13 is arranged vertically along the reactor axis, and the gasification burners 1 are arranged with their gasification burner axes 15 parallel to the reactor axis 18.

[0029] On the head of the reactor, an ignition and pilot burner 13 for fuel-gas operation is arranged along the reactor axis 18. It is also possible to integrate the ignition and pilot burner 13 into one or more gasification burners 1. This embodiment renders unnecessary a separate flange for the ignition and pilot burner.

[0030] The gasification burners 1 can be charged with fuels in the form of dust or with liquid fuels, wherein liquid fuels are also to be understood to mean suspensions of liquids, such as water or oil, with fuels reduced to a dust or inorganic additions.

[0031] The gasification burner illustrated in FIG. 2 has a cylindrical outer contour about the main axis 15. An annular duct for the fuel 3 is arranged concentrically around a central gasification medium channel 2. It is also possible for the gasification medium channel 2 and the fuel channel 3 to be interchanged. The gasification medium channel 2 and the fuel channel 3, which are separated from one another by a separating wall 21, are, in the region of the burner tip, bent off in a direction 16 relative to the main axis 15 such that the exiting media and thus also the gasification burner flame has a non-zero angle 17 to the main axis 15. The angle can lie between 3 degrees and 30 degrees, advantageously 15 degrees. Arranged close to the burner mouth 22 in the gasification medium channel 2 is a swirl plate 19 which sets the outflowing gasification medium in rotation. When the gasification medium exits the burner, the fuel is drawn in and a fuel-gasification medium swirl is formed. A liquid cooling means 20 is arranged between the outer wall of the gasification burner and the outer media channel. The gasification burner according to the invention has a fastening flange (not illustrated), which permits pressure-tight installation in the burner seat 14 of the housing of the entrained-flow gasifier by means of fastening bolts.

[0032] FIG. 3 shows a view of the end face and of the burner mouth 22 of the gasification burner as per FIG. 2.

[0033] The gasification burner according to the invention as per FIG. 4 has, about the gasification burner axis 15, a tubular outer contour which, toward the burner tip, merges into a bent-off frustrum whose axis 16 is bent off by a non-zero angle 17 in relation to the gasification burner axis 15. The top surface of the frustrum forms the burner mouth. The burner tip is formed such that it does not project beyond the tubular outer contour.

[0034] FIG. 5 shows a view of the end face and of the burner mouth 22 of the gasification burner as per FIG. 4.

[0035] In the configuration of the gasification burner as per FIG. 4, a reduced surface of the burner is opposite the hot reaction chamber 5, as a result of which the thermal input into the burner is correspondingly reduced.

[0036] FIG. 6 shows an arrangement of three gasification burners whose respective media outlet direction 16 is oriented toward the central axis 18 of the entrained-flow gasifier. This orientation of the gasification burners results in a minimized total flame diameter. The ignition and pilot burner 13 is arranged along the central axis 18 of the entrained-flow gasifier.

[0037] FIG. 7 shows an arrangement of three gasification burners whose respective media outlet direction 16 pass the central axis 18 of the entrained-flow gasifier at a predefined distance. The gasification burners are arranged in their burner seat 14 so as to be rotated in the same sense such that their respective media outlet directions 16 form a tangent to an imaginary cylinder 23 about the central axis 18 of the entrained-flow gasifier. An angle 25 of the respective media outlet axes 16 to the central axis 18 of the entrained-flow gasifier is realized, which can lie between 3 degrees and 30 degrees, advantageously 15 degrees. In this arrangement, the gasification burner flames are crossed with respect to one another and the total swirl of the gasification burner flames is increased.

[0038] A burner according to the invention is also realized by a burner, the bulk of which is arranged concentrically with respect to a main axis 15 and in which the center of the burner mouth 22 is situated outside the main axis of the burner.

[0039] A burner according to the invention is also realized by a burner which has a fastening flange and in which the burner part between the fastening flange and the burner mouth is delimited by a tubular outer contour.

[0040] The burner according to the invention may also be referred to as a bent-off burner or as a cross-eyed burner.

[0041] Fuels are to be understood to mean coals of different rank and cokes of different origin and even also combustible liquids having particular solids and ash contents and even also water, coal or oil-coal suspensions, so-called slurries.

LIST OF REFERENCE SIGNS

[0042] 1. Gasification burner [0043] 2. Gasification medium, gasification medium channel [0044] 3. Fuel, fuel channel [0045] 4. Cooling screen [0046] 5. Gasification chamber [0047] 6. Raw-gas and slag outlet [0048] 7. Quenching nozzle [0049] 8. Water bath [0050] 9. Slag discharge [0051] 10. Raw-gas discharge [0052] 11. Slag deposit [0053] 12. Quenching chamber [0054] 13. Ignition and pilot burner with pilot flame [0055] 14. Single burner flange, burner seat [0056] 15. Gasification burner axis [0057] 16. Media outlet axis (direction of the gasification burner flame) [0058] 17. Angle of the media outlet axis 16 to the gasification burner axis 15 [0059] 18. Central axis of the entrained-flow gasifier [0060] 19. Swirl plate [0061] 20. Liquid-cooled outer wall of the gasification burner [0062] 21. Gasification medium channel-fuel channel separating wall [0063] 22. Burner mouth [0064] 23. Imaginary cylinder about the central axis 18 of the entrained-flow gasifier [0065] 24. Gasification burner, rotatably oriented [0066] 25. Angle of the media outlet axis 16 to the central axis 18 of the entrained-flow gasifier