Conventional secondary fuel nozzle constructions are multi-weld, multi-part complex assemblies. As a consequence they include multiple seals and multiple welds that are potential failure locations and leak paths.
The invention provides an integrated one-piece secondary fuel nozzle that is drilled to define secondary, pilot and tertiary passages in appropriate locations. The proposed integrated one-piece structure uses far fewer parts than the conventional assembly, and the unique design has fewer weld areas so as to be easier to manufacture and less expensive and easier to construct.
Thus, the invention may be embodied in a secondary fuel nozzle assembly comprising: a core portion having proximal and distal longitudinal ends, a central bore for receiving a liquid fuel cartridge, and at least two passages concentric with said central bore and extending along at least a part of the length thereof to said distal end; and a unitary secondary fuel nozzle portion, the secondary fuel nozzle portion including a base flange, and a main shaft having a central bore for aligning with the central bore of the core portion and for receiving the liquid fuel cartridge, and a plurality of peripheral bores disposed at spaced locations about the central bore for flow communication with at least one of said concentric passages of the core portion, wherein said core portion and said one piece secondary fuel nozzle portion are integrated into a one-piece assembly by being at least one of brazed and welded together.
The invention may also be embodied in a method of manufacturing a secondary fuel nozzle, comprising: providing a core portion having proximal and distal longitudinal ends, a central bore for receiving a liquid fuel cartridge, and at least two passages concentric with said central bore and extending along at least a part of the length thereof to said distal end; providing a unitary secondary fuel nozzle portion including a base flange, and a main shaft having a central bore for aligning with the central bore of the core and for receiving the liquid fuel cartridge; gun drilling a plurality of peripheral bores at spaced locations about the central bore; and at least one of brazing and welding said core portion to said base flange of said unitary secondary fuel nozzle portion, whereby the core portion and nozzle portion are integrated to define a one-piece secondary fuel nozzle assembly.
The water lip seal cavity 12 and the diffusion lip seal cavity 16 each have two piston ring seals and one lip seal. The water passage concentricity feature 14 also has two piston ring seals and the body to sleeve fuel cavity 20 has one ring seal. Thus, there are a total of nine seals in the depicted conventional design that are potential failure locations and gas leak paths. The lip seals are gold plated, very expensive seals. The other 6 smaller piston ring type seals are also expensive seals. Additionally, the structure is difficult to manufacture and assemble. In addition to the multiple seals, in the conventional design there are a minimum of 12 circular welds required to attach pipes, plus 6 fuel pegs welded to the base manifold. These are all potential failure locations and leak paths.
Referring to
As illustrated, the radially inner 54 of the two illustrated concentric passages is longer to allow a hole to simply be drilled to provide access port 56 for dual fuel operation. A hole is drilled also for access 62 to the central passage 52, more specifically for access to the space around the liquid fuel cartridge 32 as mentioned above. So that the secondary fuel nozzle assembly 110 can be attached to the combustion end cover (not shown), slots or bores are formed at or adjacent the periphery of the core portion for receiving respective bolts. In the illustrated example, slots 64 are formed in the peripheral surface of the core member 50 for bolt access.
The secondary fuel nozzle assembly further includes a one piece secondary fuel nozzle portion 68. The secondary fuel nozzle portion includes a base flange 70 having a plurality of bores 72 defined therein for respectively aligning with the bolt slots of the core. Port 74 is included for completeness. It is a view port for the flame detector camera and is standardly included on most combustors, to make sure flame is lit and stays lit.
In the illustrated example embodiment, the secondary fuel nozzle portion further includes a main shaft 76 having a central bore 78, for aligning with the central bore 52 of the core 50 and for receiving the liquid fuel cartridge 32, and a plurality of peripheral bores 80 disposed at spaced locations about the central bore 78. The peripheral bores 80 are disposed for flow communication, in the assembled unit, with the radially inner manifold/passage 54 of the core 50.
The unitary secondary fuel nozzle portion further includes a plurality of fins 82 that project from the main shaft 76, each having at least one bore 84 defined axially therethrough, radially outwardly of the plurality of bores 80 of the main shaft 76 and disposed for flow communication, in the assembled unit, with the radially outer manifold/passage 58 of the core 50. In an example embodiment, the bores 80, 84 of the secondary fuel nozzle portion, including the bores of the main shaft and of the fins, are gunned drilled through a solid component.
In an example implementation, liquid fuel goes in central pipe 32. Access 62, central passage 52, and central bore 78, outside pipe 32 are for water or air injection, for cooling the tip. This water or air cooling will spray out with fuel into the combustion chamber. The tip of pipe 32 is shown as solid bar stock for convenience as the tip configuration does not per se comprise the present invention. The tip to be used may be a conventional tip design. For completeness it is noted that passage 58 and aligned holes 84 are for gas fuel, and passage 54 and holes 80 aligned therewith are for transfer gas fuel.
To assemble the secondary fuel nozzle, braze plate 86 is interposed between the distal end face of the core 50 and the base flange 70 of the nozzle portion 68 and then the assembly is heated to fuse the core 50 and base flange 70 together. More specifically, in the illustrated example embodiment, the three concentric parts of the braze plate 86 are applied to the solid cylinder end part 50, then base flange 70 is furnace brazed to core 50 using the three concentric parts. Then cylindrical body section 66 is slid over core 50 and secured to base flange 70 by circular welding around cylindrical body section 66. Consequently, the core 50, cylindrical body section 66, and a one piece secondary fuel nozzle portion 68 are integrated to define the one piece secondary fuel nozzle 110.
According to a further example embodiment, the one piece secondary fuel nozzle 110 may be retrofit to replace a conventional secondary fuel nozzle. In this regard, the current secondary fuel nozzle can be simply unbolted and the new integrated secondary fuel nozzle bolted on in its stead. In this regard, the new, e.g. gun drilled secondary fuel nozzle is advantageously configured to occupy the same basic profile as the current secondary fuel nozzle, but use less parts to manufacture. Further, as indicated above, in production e.g. current tip end parts would be attached by welding or brazing on the end of the new gun drilled secondary fuel nozzle in a conventional manner.
While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiment, it is to be understood that the invention is not to be limited to the disclosed embodiment, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
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Number | Date | Country | |
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20070131796 A1 | Jun 2007 | US |