A PREMIXED DUAL FUEL BURNER WITH A TAPERING INJECTION COMPONENT FOR MAIN LIQUID FUEL
20180216828 · 2018-08-02
Assignee
Inventors
Cpc classification
F23C2900/07021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C2900/07002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D11/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/286
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D11/402
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F23R3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D11/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A premixed dual fuel burner includes a burner head, a burner interior elongated along a main axis and having an upstream side enclosed by a swirler and a downstream side enclosed by a premixing section, and an injection component. The burner head and sides are serially arranged. The swirler includes an inlet section for introducing air and a main gas fuel. The injection component has a tapering structure positioned along the main axis which extends from the burner head into the burner interior. The injection component tapers from a burner head side and an injection side along the main axis. At the injection side a liquid fuel outlet introduces a main liquid fuel into the burner interior. The injection side is disposed in the burner interior. At least one of the at least one liquid fuel outlet is at a side of the injection side of the injection component.
Claims
1. A premixed dual fuel burner for a combustion chamber of a turbomachine, the premixed dual fuel burner comprising: a burner head having a burner head end, a burner interior elongated along a main axis and having an upstream side and a downstream side, wherein the upstream side is disposed between the burner head and the downstream side and wherein the upstream side is fluidly connected to the downstream side, a swirler enclosing the upstream side of the burner interior and comprising an inlet section configured to introduce air and a main gas fuel into the burner interior, a premixing section enclosing the downstream side of the burner interior, wherein the swirler is arranged between the burner head and the premixing section, and wherein the premixing section comprises a burner outlet configured to be arranged with the combustion chamber such that the downstream side is fluidly connected to the combustion chamber, and an injection component having a tapering structure positioned along the main axis and extending from the burner head into the burner interior, the injection component having a burner head side and an injection side and wherein the injection component tapers from the burner head side to the injection side along the main axis, wherein the injection component comprises at least one liquid fuel outlet at the injection side and the injection component is configured to introduce a main liquid fuel into the burner interior through the at least one liquid fuel outlet and wherein the injection side of the injection component is disposed in the burner interior, and wherein at least one of the at least one liquid fuel outlet is at a side of the injection side of the injection component.
2. The premixed dual fuel burner according to claim 1, wherein the tapering structure of the injection component is a conical structure.
3. The premixed dual fuel burner according to claim 1, wherein the tapering structure of the injection component is arranged coaxially to the main axis.
4. The premixed dual fuel burner according to claim 1, wherein a first distance along the main axis between the at least one liquid fuel outlet and the burner head end is between 20% and 80% of a second distance along the main axis between the burner outlet of the premixing section and the burner head end.
5. The premixed dual fuel burner according to claim 1, wherein the injection component is configured to be longitudinally adjustable such that a position of the at least one liquid fuel outlet of the injection component is changeable from a first location along the main axis to a second location along the main axis.
6. The premixed dual fuel burner according to claim 1, wherein the at least one liquid fuel outlet is positioned in the upstream side of the burner interior.
7. The premixed dual fuel burner according to claim 1, wherein the at least one liquid fuel outlet is positioned in the downstream side of the burner interior.
8. The premixed dual fuel burner according to claim 1, wherein the injection component comprises a second additional outlet configured to introduce the main liquid fuel into the burner interior and wherein the second additional outlet is at an end of the injection side, particularly at a tip, of the injection component.
9. The premixed dual fuel burner according to claim 1, wherein the inlet section of the swirler comprises at least one air inlet and at least one main fuel gas inlet.
10. The premixed dual fuel burner according to claim 9, wherein at least one of the at least one air inlet and the at least one main fuel gas inlet is arranged tangentially along the swirler with respect to the main axis.
11. The premixed dual fuel burner according to claim 1, wherein the swirler has a conical frustum shape having a top side and a bottom side and wherein a cross-section of the conical frustum increases from the top side towards the bottom side and wherein the top side is connected to the burner head and the bottom side is connected to the pre-mixing section.
12. The premixed dual fuel burner according to claim 1, wherein a part of the premixing section surrounding the burner outlet of the premixing section comprises an external pilot configured to introduce a pilot fuel into the combustion chamber.
13. The premixed dual fuel burner according to claim 1, wherein a radial width of the injection component reduces over an axial distance D by only or less than D/10.
14. The premixed dual fuel burner according to claim 1, wherein a radial width of the injection component reduces over an axial distance D by only or less than D/15.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The present technique is further described hereinafter with reference to illustrated embodiments shown in the accompanying drawing, in which:
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION OF INVENTION
[0039] Hereinafter, above-mentioned and other features of the present technique are described in details. Various embodiments are described with reference to the drawing, wherein like reference numerals are used to refer to like elements throughout. In the following description, for purpose of explanation, numerous specific details are set forth in order to provide a thorough understanding of one or more embodiments. It may be noted that the illustrated embodiments are intended to explain, and not to limit the invention. It may be evident that such embodiments may be practiced without these specific details.
[0040] It may be noted that in the present disclosure, the terms first, second, another second etc. are used herein only to facilitate discussion, and carry no particular temporal or chronological significance unless otherwise indicated.
[0041] Referring to
[0042] The burner 1 includes a burner head 10, a burner interior 20, a swirler 30, a premixing section 40 and an injection component 50. The burner 1 is assembled in association with a combustion chamber 99 in a turbomachine (not shown) which work with dual fuel combustion reaction. The main fuel is combusted in the combustion chamber 99 in form of a combustion mixture after being mixed with an air from a compressor section (now shown) of the turbomachine. The main gas fuel mixed with air and the main liquid fuel may be combusted in the combustion chamber 99 separately or simultaneously.
[0043] The burner head 10 includes a burner head end 12. The swirler 30 is arranged in series between the burner head 10 and the premixing section 40. The burner 1 has a main axis 9. The burner head 10, the swirler 30 and the premixing section 40 are arranged along the main axis 9. The swirler 30 is an elongated 3-dimensional body. When visualized as not integrated as a part of the burner 1, the swirler 30 is open at both ends and has a side wall enclosing a volume or limiting a volume within the side wall and the open ends. Similarly, the premixing section 40 is an elongated 3-dimensional body. When visualized as not integrated as a part of the burner 1, the premixing section 40 is open at both ends and has a side wall enclosing a volume or limiting a volume within the side wall and the open ends.
[0044] However, when integrated as parts of the burner 1, and when arranged in series such that the swirler 30 is positioned between the burner head 10 and the premixing section 40, as depicted in
[0045] The burner interior 20 is a volume or a hollow that is elongated along the main axis 9. The burner interior 20 is formed of an upstream side 22 and a downstream side 24. The upstream side 22 is disposed between the burner head 10 and the downstream side 24. As depicted in
[0046] As depicted in
[0047] The swirler 30 includes an inlet section 32. The inlet section 32 is fluidly connected to the compressor (not shown) of the turbomachine (not shown). The inlet section 32 receives compressed air from the compressor and introduces the compressed air into the burner interior 20, more precisely into the upstream side 22 of the burner interior 20. Similarly, the inlet section 32 is fluidly connected to a fuel supply (not shown) of the turbomachine. The inlet section 32 receives main gas fuel from the fuel supply and introduces the main gas fuel into the burner interior 20, more precisely into the upstream side 22 of the burner interior 20.
[0048] In an exemplary embodiment of the burner 1 as depicted in
[0049] The premixing section 40 is an elongated tubular body. The premixing section 40 has a burner outlet 42 through which the premixing section 40 is arranged or fixed or assembled with the combustion chamber 99. As seen in
[0050] The injection component 50 has a tapering structure positioned along the main axis 9. The tapering structure of the injection component 50 extends from the burner head 12 into the burner interior 20. The injection component has a burner head side 52 and an injection side 54. The injection component 50 tapers from the burner head side 52 to the injection side 54 along the main axis 9. The tapering means a cross-sectional area perpendicular to the main axis 9 of the injection component 50 decreases when moving from the head side 52 to the injection side 54 along the main axis 9. In one embodiment the decrease in the cross-sectional area is gradual for example when the injection body 50 is designed like in form of a regular conical structure, as also depicted in
[0051] The injection component 50 may be hollow for guiding fuel. Particularly, as the injection component 50 is tapered, the inner hollow space may also be tapered accordingly. So the fuel passage within the injection component 50 reduces in width along an axial direction of the tapered section of the injection component 50.
[0052] As seen in
[0053] As shown in
[0054] Referring now to
[0055] As can be seen in
[0056] Furthermore, as seen in
[0057] As depicted in
[0058] Now referring to
[0059] As depicted in
[0060] Furthermore, in one embodiment of the burner 1, the injection component 50 is longitudinally adjustable or moveable along the central axis 9, such that a position of the at least one liquid fuel outlet 55 of the injection component 50 gets changed from a first location 93, as depicted in
[0061] Furthermore, as depicted from a combination of
[0062] The shape of a fuel lancei.e. the injection component 50is tapered in a way, that the fuel lance is an elongated component. Advantageously it may reduce its width taken in radial direction along an axial distance D only by or less than D/10, advantageously less than D/20.
[0063] While the present technique has been described in detail with reference to certain embodiments, it should be appreciated that the present technique is not limited to those precise embodiments. Rather, in view of the present disclosure which describes exemplary modes for practicing the invention, many modifications and variations would present themselves, to those skilled in the art without departing from the scope and spirit of this invention. The scope of the invention is, therefore, indicated by the following claims rather than by the foregoing description. All changes, modifications, and variations coming within the meaning and range of equivalency of the claims are to be considered within their scope.