EP4530439A2 - Support link for an exhaust diffuser assembly - Google Patents
Support link for an exhaust diffuser assembly Download PDFInfo
- Publication number
- EP4530439A2 EP4530439A2 EP24197922.8A EP24197922A EP4530439A2 EP 4530439 A2 EP4530439 A2 EP 4530439A2 EP 24197922 A EP24197922 A EP 24197922A EP 4530439 A2 EP4530439 A2 EP 4530439A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- support link
- assembly
- main body
- diffuser
- exhaust diffuser
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/30—Exhaust heads, chambers, or the like
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/04—Antivibration arrangements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/24—Casings; Casing parts, e.g. diaphragms, casing fastenings
- F01D25/243—Flange connections; Bolting arrangements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/28—Supporting or mounting arrangements, e.g. for turbine casing
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05D—INDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
- F05D2230/00—Manufacture
- F05D2230/60—Assembly methods
- F05D2230/64—Assembly methods using positioning or alignment devices for aligning or centring, e.g. pins
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05D—INDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
- F05D2260/00—Function
- F05D2260/30—Retaining components in desired mutual position
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05D—INDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
- F05D2260/00—Function
- F05D2260/96—Preventing, counteracting or reducing vibration or noise
Definitions
- the present disclosure relates generally to support links for connecting two or more components in a turbomachine. Specifically, the present disclosure relates to support links for connecting an exhaust diffuser to a casing of a turbomachine.
- a gas turbine engine generally includes a compressor section, a combustion section, a turbine section, and an exhaust section.
- the compressor section progressively increases the pressure of a working fluid entering the gas turbine engine and supplies this compressed working fluid to the combustion section.
- the compressed working fluid and a fuel e.g., natural gas
- the combustion gases flow from the combustion section into the turbine section where they expand to produce work.
- expansion of the combustion gases in the turbine section may rotate a rotor shaft connected, e.g., to a generator to produce electricity.
- the combustion gases are then exhausted from the turbine section through an exhaust diffuser positioned downstream from the turbine section.
- the exhaust diffuser typically includes an inner liner and an outer liner that is radially separated from the inner liner to form an exhaust flow passage through the diffuser.
- One or more generally airfoil shaped diffuser struts extend between the inner and outer liners within the exhaust flow passage to provide structural support to the outer liner and/or to an aft bearing that supports the shaft.
- the exhaust diffuser is generally connected to a casing (e.g., an outer casing) via an array of circumferentially spaced support links.
- Operation of the turbomachine for power generation can result in frequency oscillations (i.e., pressure pulsations or vibrations) within the exhaust diffuser that could cause damage over time to various components of the exhaust diffuser or that could result in an unscheduled or premature shutdown of the turbomachine.
- the support links may be exposed to these vibrations, which may reduce or limit the useful hardware life of the support links and/or the entire exhaust diffuser.
- existing support links may experience high stresses at the junctions between the support link and the turbomachine (e.g., where the support link couples to the exhaust diffuser and/or the casing)
- an improved support link that is robust to the vibrations experienced by the exhaust diffuser is desired.
- an improved support link having features that reduce vibrations and reduce junctional stresses is desired and would be appreciated in the art.
- a support link assembly for coupling an exhaust diffuser to a diffuser casing.
- the support link assembly includes a support link.
- the support link includes a main body that extends from a forward end to an aft end.
- the support link further includes a forward flange that extends from the main body at the forward end.
- the forward flange is configured to couple to the diffuser casing.
- the support link further includes a pair of arms that extend from the main body at the aft end. The pair of arms are configured to couple to the exhaust diffuser.
- a support link assembly for coupling an exhaust diffuser to a diffuser casing
- the support link assembly includes a support link that has a main body extending from a forward end to an aft end.
- the support link assembly further includes a vibrational damping assembly that is affixed to the support link.
- the vibrational damping assembly includes at least one pin assembly coupled to the main body of the support link.
- the at least one pin assembly includes a pin and a disk.
- the pin includes a pin head and a pin body.
- the vibrational damping assembly further includes at least one plate disposed between the pin head and the support link. The at least one plate surrounds the pin body, and the at least one plate is movable between the pin head and the support link relative to the pin and relative to the support link to dampen vibrations experienced by the support link.
- an exhaust diffuser assembly in accordance with yet another embodiment, includes a diffuser casing, an exhaust diffuser, and a support link coupling the exhaust diffuser to the diffuser casing.
- the support link includes a main body that extends from a forward end to an aft end.
- the support link further includes a forward flange that extends from the main body at the forward end.
- the forward flange is configured to couple to the diffuser casing.
- the support link further includes a pair of arms that extend from the main body at the aft end. The pair of arms are configured to couple to the exhaust diffuser.
- the gas turbine engine 10 generally includes a compressor section 12.
- the compressor section 12 includes a compressor 14.
- the compressor section 12 includes an inlet 16 that is disposed at an upstream end of the gas turbine engine 10.
- the gas turbine engine 10 further includes a combustion section 18 having one or more combustors 20 disposed downstream from the compressor section 12.
- the gas turbine engine 10 further includes a turbine section 22 that is downstream from the combustion section 18.
- a shaft 24 extends generally axially through the gas turbine engine 10.
- the exhaust diffuser assembly 100 may further include one or more support link assemblies 300 coupling the exhaust diffuser 34 to the diffuser casing 56.
- the exhaust diffuser assembly 100 may include a plurality of support link assemblies 300 circumferentially spaced apart (e.g., equally or unequally) from one another and coupled to the outer liner 48 and the diffuser casing 56.
- the diffuser casing 56 may include a forward end 57 having a flange 59 extending outwardly (e.g., radially) from the diffuser casing 56 at the forward end 57.
- the flange 59 may include one or more bolt holes (not shown) for coupling the forward end 57 of the diffuser casing 56 to a flange 67 at an aft end 65 of a turbine casing 63.
- the turbine casing 63 and the diffuser casing 56 may each be annular such that both the turbine casing 63 and the diffuser casing 56 surround the axial centerline 50.
- the support link assemblies 300 may include a support link 301 having a main body 302, a forward flange 304, and a pair of aft arms 306.
- the forward flange 304 may couple to the forward end 57 of the diffuser casing 56.
- FIG. 4 illustrates an isometric view of an exhaust diffuser assembly 100 having an exhaust diffuser 34 with a plurality of support link assemblies 300 coupled thereto.
- the exhaust diffuser 34 may include an inner liner 46, an outer liner 48, and a plurality of struts 44 extending (e.g., radially) between the inner liner 46 and the outer liner 48.
- the exhaust diffuser 34 may include a top half 70 and a bottom half 72, which are joined together at a split line 74. Additionally, the exhaust diffuser 34 may extend axially between a forward end 78 and an aft end 76.
- each support link assembly 300 in a group 310 of support link assemblies 300 may be approximately (e.g., ⁇ 5%) circumferentially equally spaced from the other support link(s) 300 in the group 310.
- each strut 44 of the plurality of struts 44 defines an interior 86 that extends between an outer opening 88 defined in the outer liner 48 and an inner opening 90 defined in the inner liner 46.
- the support link assemblies 300 that are affixed to the outer liner 48 may be disposed between circumferentially neighboring outer openings 88.
- one or more groups 310 may be disposed circumferentially between two neighboring outer openings 88.
- a single split-line support link assembly 300 may be disposed between the split line 74 and an outer opening 88 in closest proximity to the outer split-line 110.
- the circumferential groups 310 are shown as having three support link assemblies 300, other numbers of support link assemblies 300 may be used (e.g., two or more).
- the exhaust diffuser assembly 100 includes an outer liner 48 of an exhaust diffuser 34, a diffuser casing 56 radially spaced apart from the outer liner 48, and a support link assembly 300 coupling the outer liner 48 of the exhaust diffuser 34 to the diffuser casing 56.
- the diffuser casing 56 may include a casing body 104, a forward flange 106 extending radially outwardly from the casing body 104, and a tab 108 extending radially inwardly from the casing body 104.
- the forward flange 106 may couple to the aft flange 67 of the turbine casing 63 ( FIG. 2 ) when the exhaust diffuser assembly 100 is implemented in a gas turbine engine (such as the gas turbine engine 10 discussed above with reference to FIG. 1 ).
- the support link assembly 300 may include a support link 301 and a vibrational damping assembly 200 ( FIGS. 7-8 ) affixed to the support link 301.
- the support link 301 may include a main body 302, a forward flange 304, and a pair of aft arms 306 (one of which is shown in FIG. 5 ).
- the main body 302 may extend from a forward end 308 to an aft end 312.
- the forward flange 304 may extend (e.g., generally radially outwardly) from the main body 302 at the forward end 308 and couple (e.g., removably couple) to the diffuser casing 56.
- the forward flange 304 may couple to a forward face of the tab 108 of the diffuser casing 56 via one or more bolts 110.
- the aft arms 306 may extend (e.g., generally radially inwardly) from the main body 302 at the aft end 312.
- the aft arms 306 may be fixedly coupled to a radially outer surface of the outer liner 48 of the exhaust diffuser 34 (such as via welding, brazing, or other means).
- the aft arms 306 may form a weld joint 305 with an outer surface of the outer liner 48.
- FIG. 6 illustrates a perspective view a support link 301, which may be incorporated in the support link assemblies 300 discussed above with reference to FIGS. 2 through 5 .
- the vibrational damping assembly 200 as well as other mounting hardware has been removed from the support link assembly 300 to isolate the support link 301 in order to show details of the support link 301.
- the support link 301 includes the main body 302, the forward flange 304 at the forward end 308 of the main body 302, and the pair of aft arms 306 at the aft end 312 of the main body 302.
- the support link defines a longitudinal centerline 350 and a cartesian coordinate system relative to the longitudinal centerline 350 (e.g., a coordinate system having three directions mutually perpendicular to one another).
- the support link 301 defines a longitudinal direction L extending along the longitudinal centerline 350, a transverse direction T extending perpendicular to the longitudinal centerline 350, and a vertical direction V extending perpendicular to the longitudinal centerline 350.
- the longitudinal direction L, the transverse direction T, and the vertical direction V are mutually perpendicular.
- the aft portion 318 may extend to an aft edge 328 at the aft end 312, and the pair of arms 306 may extend from the aft portion 318 between the forward portion 316 and the aft edge 328.
- the forward portion 316 may be longer in the longitudinal direction L than the aft end 312, such as between about 1.5 times longer and about 5 times longer, or such as between about 2 times longer and about 4 times longer.
- the forward portion 316 may define a longitudinal length that is between about 150% and about 500% of a longitudinal length of the aft portion 318, or such as between about 200% and about 400%.
- the main body 302 may define a width 320 in the transverse direction T that varies in the longitudinal direction L between the forward end 308 and the aft end 312.
- the forward portion 316 converges in width 320 in the transverse direction T as the forward portion 316 extends longitudinally from the forward end 308 to the junction 317, such that the width 320 (e.g., the transverse width) of the forward portion 316 gradually decreases from the forward end 308 to the aft portion 318.
- the aft portion 318 may diverge in width 320 in the transverse direction T as the aft portion 318 extends longitudinally from the junction 317 with the forward portion 316 to the aft end 312, such that the width 320 (e.g., the transverse width) of the aft portion 316 increases from the junction 317 to the aft end 312.
- the junction 317 between the forward portion 316 and the aft portion 318 may be an inflection point at which the width 320 transitions from decreasing to increasing as the main body extends from the forward end 308 to the aft end 312.
- the forward flange 304 extends generally vertically from the main body in a first direction, and the pair of arms 306 each extend generally vertically from the main body 302 in a second direction that is opposite the first direction.
- the forward flange 304 may extend generally vertically outwardly from the main body 302, and the pair of arms 306 may each extend generally vertically inwardly from the main body 302.
- the forward flange 304 may include an arcuate segment 322 and a straight segment 324, and the forward flange 304 may extend to a terminal edge 326.
- the arcuate segment may extend between the forward end 308 of the main body 302 to the straight segment 324, and the straight segment 324 may extend from the arcuate segment 322 to the terminal edge 326.
- the arcuate segment 322 may increase in transverse width from the forward end 308 to the straight segment 324.
- the straight segment 324 may have a generally constant or uniform transverse width.
- the main body 302 may extend longitudinally between the forward end 308 and the aft end 312, and the main body 302 may extend transversely from a first side 330 to a second side 332.
- the main body 302 may be longer in the longitudinal direction L than the transverse direction T, e.g., a length between the forward end 308 and the aft end 312 may be longer than the width 320.
- the pair of arms 306 may include a first arm 307A and a second arm 307B spaced apart from the first arm 307A in the transverse direction T.
- the first arm 307A may extend from the first side 330 of the main body 302. More particularly, the first arm 307A may extend from the first side 330 of the main body 302 at the aft portion 318.
- the second arm 307B may extend from the second side 332 of the main body 302. That is, the second arm 307B may extend from the second side 332 of the main body 302 at the aft portion 318.
- the support link 301 may define one or more stress relief openings 334A, 334B.
- the one or more stress relief openings 334A, 334B may each include a hole 336A, 336B and a slit 338A, 338B extending from the hole to an edge of the support link 301.
- a first stress relief opening 334A may include a first hole 336A defined in the forward portion 316 of the main body 302 proximate the forward end 308.
- the first stress relief opening 334A may further include a first slit 338A extending from the first hole 336A to the terminal edge 326 of the forward flange 304.
- a majority portion of the first slit 338A may be defined in the forward flange 304, and a minority portion of the first slit 338A may be defined in the forward portion 316 of the main body 302.
- a second stress relief opening 334B may include a second hole 336B defined in the aft portion 318 of the main body 302.
- the second stress relief opening 334B may further include a second slit 338B extending from the second hole 336B to the aft edge 328.
- the forward flange 304 (such as the straight segment 324 of the forward flange 304) may define bolt holes 362 and dowel holes 364.
- the bolt holes 362 may be disposed on either side of the slit 338A.
- Each bolt hole 332 may be disposed between two dowel holes 364.
- the bolt holes 362 may be configured to receive a bolt
- the dowel holes 364 may be configured to receive a dowel rod to couple the forward flange to a diffuser casing.
- the bolt holes 362 may have a diameter that is larger than a diameter of the dowel holes 364.
- FIG. 7 illustrates a perspective view of a first side of a support link 300
- FIG. 8 illustrates a perspective view of second side of the support link 300, in accordance with embodiments of the present disclosure.
- the support link 300 further includes a vibrational damping assembly 200 affixed to the support link 300.
- the vibrational damping assembly 200 may dampen vibrations experienced by the support link 301 during operation of the exhaust diffuser assembly 100 (and/or the gas turbine engine 10), in order to prevent damage to the support link 301 and increase the hardware life of the support link 301.
- the vibrational damping assembly 200 may include at least one plate 202 and at least one pin assembly 204 (shown more clearly in FIGS. 10-11 ) coupling the at least one plate 202 to the support link 301.
- the at least one pin assembly 204 may be coupled to the main body 302 of the support link 301.
- the at least one pin assembly 204 may include a pin 206 and a disk 208 coupled to the pin 206.
- the pin 206 may include a pin head 210 and a pin body 212.
- at least one plate 202 may be disposed between the pin head 210 and the support link 301.
- the at least one plate 202 surrounds the pin body 206 and is restricted to movement along the pin body 206 to dampen vibrations of the support link 301. That is, the at least one plate 202 is movable between the pin head 210 and the support link 301 relative to the pin 206 and relative to the support link 301 to dampen vibrations experienced by the support link 301.
- the vibrational damping assembly 200 further includes a brace 344 and one or more bands 346 coupled to the brace 344.
- brace 344 and the one or more bands 346 may collectively surround the main body 302 and the at least one plate 202.
- the support link 301 may include a first side surface 340 (such as an outer side surface) and a second side surface 342 (such as an inner side surface) opposite the first side surface 340.
- the brace 344 may extend along, and be disposed in contact with, the first side surface 340.
- At least one of the one or more plates 202 may be disposed along, and in contact with, the second side surface 342.
- the bands 346 may be coupled to the brace 344 and may extend along an exterior plate of the one or more plates 202.
- the first band portion 218 may couple to a first band 349 of the one or more bands 346
- the second band portion 220 may couple to the second band 347 of the one or more bands 346.
- FIG. 9 an enlarged view of the detail boxed in FIG. 7 is illustrated in accordance with exemplary aspects of the present disclosure. As should be appreciated, while FIG. 9 illustrates features of the first band portion 218 and the first band 349, the features illustrated in FIG. 9 may also be incorporated in the second band portion 222 and the second band 347.
- the first band portion 218 may include a plate segment 224 and two flange segments 226 extending perpendicularly from the plate segment 224 on either side 330, 332 of the main body 302.
- the plate segment 224 may be generally parallel to the main body 302 and in contact with the first surface 340 of the main body 302.
- the first band 349 may include a plate segment 228 and two tab segments 230 extending perpendicularly from the plate segment 228 on either side 330, 332 of the main body 302.
- Each flange segment 226 may include an inner surface 232 that is in contact with a side of the main body 302 (such as the first side 330 or the second side 332) and at least one plate of the one or more plates 202.
- each flange segment 226 may include an outer surface 234 that is in contact with an interior surface 236 of a tab segment 230.
- the tab segment 230 of the first band 349 may form a friction fit with the flange segment 226 of the first band portion 218 of the brace 344.
- FIG. 10 illustrates a cross sectional view of the support link assembly 300 from along the line 10-10 shown in FIG. 7 in accordance with embodiments of the present disclosure
- FIG. 11 illustrates an enlarged view of a portion of FIG. 10 . While FIG. 10 only illustrates the first arm 307A of the pair of arms 306, it should be understood and appreciated that the features shown and described with reference to FIG. 10 may also be incorporated into the second arm 307B.
- each arm 307A, 307B of the pair of arms 306 may extend from a root 352 connected the main body 302 to a free edge 354.
- the root 352 may be the junction between the main body 302 and the respective arm 307A, 307B.
- Each arm 307A, 307B may include a shank portion 356 and a protruding portion 358.
- the shank portion 356 may extend generally vertically from the root 352 to the protruding portion 358, and the protruding portion 358 may extend from the shank portion 356 to the free edge 354.
- the protruding portion 358 may extend outwardly (e.g., longitudinally and/or vertically) from the shank portion 356.
- the protruding portion 358 may include protrusions 360 that extend outwardly from the shank portion 356.
- the free edge 354 of each arm 307A, 307B may be welded to the outer liner 48, and the protrusions 360 may significantly reduce the stresses experienced at the weld joint as well as provide easier access to the junction to be welded, which is advantageous.
- the support link assembly 300 includes a support link 301 and a vibrational damping assembly 200 affixed to the support link 301.
- the vibrational damping assembly 200 may dampen vibrations experienced by the support link 301 during operation of the exhaust diffuser assembly 100 (and/or the gas turbine engine 10), in order to prevent damage to the support link 201 and increase the hardware life of the support link 301.
- the vibrational damping assembly 200 may include at least one plate 202, a brace 344, and at least one pin assembly 204 coupling the at least one plate 202 and the brace 344 to the support link 301.
- the at least one pin assembly 204 may be coupled to the main body 302 of the support link 301.
- the at least one pin assembly 204 may include a pin 206 and a disk 208 coupled to the pin 206.
- the pin may include a pin head 210 and a pin body 212.
- the pin head 210 may be disk shaped, may extend outwardly from the pin body 212 and may be generally parallel to the disk 208.
- the pin body 212 may extend through the at least one plate 202 (e.g., a first plate 240 and a second plate 242), the main body 302 of the support link 301, the brace 344, and the disk 208. Once installed, the pin 206 may be secured in position by welding or brazing the disk 208 to the pin body 212.
- At least one plate 202 may be disposed between the pin head 210 and the main body 302 of the support link 301.
- the at least one plate 202 surrounds the pin body 206 and is restricted to movement along the pin body 206 to dampen vibrations of the support link 301. That is, the at least one plate 202 is movable between the pin head 210 and the support link 301 relative to the pin 206 and relative to the support link 301 to dampen vibrations experienced by the support link 301.
- the at least one plate 202 (such as the first plate 240 and the second plate 242) may be disposed between the pin head 210 and the second side surface 342 of the main body 302.
- the brace 344 may be disposed between the disk 208 and the first side surface 340 of the main body 302.
- the plates 202 may include the first plate 242 having a first thickness 128 and the second plate 240 having a second thickness 129.
- the second thickness 129 may be greater than the first thickness 128.
- the second thickness 129 may be between about 20% and about 80% greater than the first thickness 128, or such as between about 30% and about 70% greater than the first thickness 128, or such as between about 40% and about 60% greater than the first thickness 128.
- the plates 202 may move relative to the support link 301 and one another, which causes micro-collisions (or "bumping") between the plates 202. These micro-collisions may counteract vibrations experienced by the support link 301 to which the vibrational damping assembly 200 is attached, thereby advantageously increasing the hardware life of the support link 301.
- the aft arms 306 of the support link 301 advantageously facilitate fixable coupling (e.g., welding) of the support link to the outer liner 48 without introducing unreasonable stresses at the weld location.
- a support link assembly for coupling an exhaust diffuser to a diffuser casing comprising: a support link comprising: a main body extending from a forward end to an aft end; a forward flange extending from the main body at the forward end, the forward flange configured to couple to the diffuser casing; and a pair of arms extending from the main body at the aft end, the pair of arms configured to couple to the exhaust diffuser.
- the vibrational damping assembly comprises: at least one pin assembly coupled to the main body of the support link, the at least one pin assembly having a pin and a disk, the pin including a pin head and a pin body; and at least one plate disposed between the pin head and the support link, wherein the at least one plate surrounds the pin body, and wherein the at least one plate is movable between the pin head and the support link relative to the pin and relative to the support link to dampen vibrations experienced by the support link.
- the vibrational damping assembly further comprises a brace and one or more bands coupled to the brace, wherein the brace and the one or more bands collectively surround the main body and the at least one plate.
- first band portion couples to a first band of the one or more bands
- second band portion couples to a second band of the one or more bands
- the main body includes a forward portion and an aft portion, wherein the forward portion converges in width as the forward portion extends from the forward end to a junction of the forward end with the aft portion, and wherein the aft portion diverges in width as the aft portion extends from the junction with the forward portion to the aft end.
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Abstract
Description
- The present disclosure relates generally to support links for connecting two or more components in a turbomachine. Specifically, the present disclosure relates to support links for connecting an exhaust diffuser to a casing of a turbomachine.
- Turbomachines are utilized in a variety of industries and applications for energy transfer purposes. For example, a gas turbine engine generally includes a compressor section, a combustion section, a turbine section, and an exhaust section. The compressor section progressively increases the pressure of a working fluid entering the gas turbine engine and supplies this compressed working fluid to the combustion section. The compressed working fluid and a fuel (e.g., natural gas) mix within the combustion section and burn in a combustion chamber to generate high pressure and high temperature combustion gases. The combustion gases flow from the combustion section into the turbine section where they expand to produce work. For example, expansion of the combustion gases in the turbine section may rotate a rotor shaft connected, e.g., to a generator to produce electricity. The combustion gases are then exhausted from the turbine section through an exhaust diffuser positioned downstream from the turbine section.
- The exhaust diffuser typically includes an inner liner and an outer liner that is radially separated from the inner liner to form an exhaust flow passage through the diffuser. One or more generally airfoil shaped diffuser struts extend between the inner and outer liners within the exhaust flow passage to provide structural support to the outer liner and/or to an aft bearing that supports the shaft. Additionally, the exhaust diffuser is generally connected to a casing (e.g., an outer casing) via an array of circumferentially spaced support links.
- Operation of the turbomachine for power generation can result in frequency oscillations (i.e., pressure pulsations or vibrations) within the exhaust diffuser that could cause damage over time to various components of the exhaust diffuser or that could result in an unscheduled or premature shutdown of the turbomachine. For example, the support links may be exposed to these vibrations, which may reduce or limit the useful hardware life of the support links and/or the entire exhaust diffuser. Particularly, existing support links may experience high stresses at the junctions between the support link and the turbomachine (e.g., where the support link couples to the exhaust diffuser and/or the casing)
- Accordingly, an improved support link that is robust to the vibrations experienced by the exhaust diffuser is desired. Particularly, an improved support link having features that reduce vibrations and reduce junctional stresses is desired and would be appreciated in the art.
- Aspects and advantages of the support link assemblies and exhaust diffuser assemblies in accordance with the present disclosure will be set forth in part in the following description, or may be obvious from the description, or may be learned through practice of the technology.
- In accordance with one embodiment, a support link assembly for coupling an exhaust diffuser to a diffuser casing is provided. The support link assembly includes a support link. The support link includes a main body that extends from a forward end to an aft end. The support link further includes a forward flange that extends from the main body at the forward end. The forward flange is configured to couple to the diffuser casing. The support link further includes a pair of arms that extend from the main body at the aft end. The pair of arms are configured to couple to the exhaust diffuser.
- In accordance with another embodiment, a support link assembly for coupling an exhaust diffuser to a diffuser casing is provided the support link assembly includes a support link that has a main body extending from a forward end to an aft end. The support link assembly further includes a vibrational damping assembly that is affixed to the support link. The vibrational damping assembly includes at least one pin assembly coupled to the main body of the support link. The at least one pin assembly includes a pin and a disk. The pin includes a pin head and a pin body. The vibrational damping assembly further includes at least one plate disposed between the pin head and the support link. The at least one plate surrounds the pin body, and the at least one plate is movable between the pin head and the support link relative to the pin and relative to the support link to dampen vibrations experienced by the support link.
- In accordance with yet another embodiment, an exhaust diffuser assembly is provided. The exhaust diffuser assembly includes a diffuser casing, an exhaust diffuser, and a support link coupling the exhaust diffuser to the diffuser casing. The support link includes a main body that extends from a forward end to an aft end. The support link further includes a forward flange that extends from the main body at the forward end. The forward flange is configured to couple to the diffuser casing. The support link further includes a pair of arms that extend from the main body at the aft end. The pair of arms are configured to couple to the exhaust diffuser.
- These and other features, aspects and advantages of the present support link assemblies and exhaust diffuser assemblies will become better understood with reference to the following description and appended claims. The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the technology and, together with the description, serve to explain the principles of the technology.
- A full and enabling disclosure of the present support link assemblies and exhaust diffuser assemblies, including the best mode of making and using the present systems and methods, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
-
FIG. 1 is a schematic illustration of a turbomachine in accordance with embodiments of the present disclosure; -
FIG. 2 schematically illustrates an enlarged cross-sectional view of an exhaust diffuser assembly in accordance with embodiments of the present disclosure; -
FIG. 3 illustrates a cross-sectional view of the exhaust diffuser assembly from along the line 3-3 shown inFIG. 2 , in accordance with embodiments of the present disclosure in accordance with embodiments of the present disclosure; -
FIG. 4 illustrates an isometric view of an exhaust diffuser assembly having an exhaust diffuser with a plurality of support link assemblies coupled thereto in accordance with embodiments of the present disclosure; -
FIG. 5 illustrates a cross-sectional view of a support link assembly in accordance with embodiments of the present disclosure; -
FIG. 6 illustrates a perspective view of a support link, which may be incorporated in the support link assembly discussed above with reference toFIG. 5 in accordance with embodiments of the present disclosure; -
FIG. 7 illustrates a perspective view of a first side of a support link in accordance with embodiments of the present disclosure; -
FIG. 8 illustrates a perspective view of a second side of a support link in accordance with embodiments of the present disclosure; -
FIG. 9 illustrates an enlarged view of the detail boxed inFIG. 7 in accordance with exemplary aspects of the present disclosure; -
FIG. 10 illustrates a cross-sectional view of the support link assembly from along the line 10-10 shown inFIG. 7 in accordance with embodiments of the present disclosure; and -
FIG. 11 illustrates an enlarged view of a portion ofFIG. 10 in accordance with embodiments of the present disclosure. - Reference now will be made in detail to embodiments of the present support link assemblies and exhaust diffuser assemblies, one or more examples of which are illustrated in the drawings. Each example is provided by way of explanation, rather than limitation of, the technology. In fact, it will be apparent to those skilled in the art that modifications and variations can be made in the present technology without departing from the scope or spirit of the claimed technology. For instance, features illustrated or described as part of one embodiment can be used with another embodiment to yield a still further embodiment. Thus, it is intended that the present disclosure covers such modifications and variations as come within the scope of the appended claims and their equivalents.
- The word "exemplary" is used herein to mean "serving as an example, instance, or illustration." Any implementation described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other implementations. Additionally, unless specifically identified otherwise, all embodiments described herein should be considered exemplary.
- The detailed description uses numerical and letter designations to refer to features in the drawings. Like or similar designations in the drawings and description have been used to refer to like or similar parts of the invention. As used herein, the terms "first", "second", and "third" may be used interchangeably to distinguish one component from another and are not intended to signify location or importance of the individual components.
- The term "fluid" may be a gas or a liquid. The term "fluid communication" means that two or more areas defining a flow passage are joined to one another such that a fluid is capable of making the connection (i.e., flowing) between the areas specified.
- As used herein, the terms "upstream" (or "forward") and "downstream" (or "aft") refer to the relative direction with respect to fluid flow in a fluid pathway. For example, "upstream" refers to the direction from which the fluid flows, and "downstream" refers to the direction to which the fluid flows. In the context of an exhaust diffuser assembly, "upstream" refers to the direction closest to the turbine section, and "downstream" refers to the outlet end of the exhaust diffuser assembly.
- The term "radially" refers to the relative direction that is substantially perpendicular to an axial centerline of a particular component; the term "axially" refers to the relative direction that is substantially parallel and/or coaxially aligned to an axial centerline of a particular component; and the term "circumferentially" refers to the relative direction that extends around the axial centerline of a particular component.
- Terms of approximation, such as "about," "approximately," "generally," and "substantially," are not to be limited to the precise value specified. In at least some instances, the approximating language may correspond to the precision of an instrument for measuring the value, or the precision of the methods or machines for constructing or manufacturing the components and/or systems. In at least some instances, the approximating language may correspond to the precision of an instrument for measuring the value, or the precision of the methods or machines for constructing or manufacturing the components and/or systems. For example, the approximating language may refer to being within a 1, 2, 4, 5, 10, 15, or 20 percent margin in either individual values, range(s) of values and/or endpoints defining range(s) of values. When used in the context of an angle or direction, such terms include within ten degrees greater or less than the stated angle or direction. For example, "generally vertical" includes directions within ten degrees of vertical in any direction, e.g., clockwise or counter-clockwise.
- The terms "coupled," "fixed," "attached to," and the like refer to both direct coupling, fixing, or attaching, as well as indirect coupling, fixing, or attaching through one or more intermediate components or features, unless otherwise specified herein. The terms "directly coupled," "directly fixed," "directly attached to," and the like mean that two components are joined in contact with one another and that no intermediate components or features are present.
- As used herein, the terms "comprises," "comprising," "includes," "including," "has," "having" or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, article, or apparatus that comprises a list of features is not necessarily limited only to those features but may include other features not expressly listed or inherent to such process, method, article, or apparatus. Further, unless expressly stated to the contrary, "and/or" refers to a condition satisfied by any one of the following: A is true (or present) and B is false (or not present), A is false (or not present) and B is true (or present), and both A and B are true (or present).
- Here and throughout the specification and claims, where range limitations are combined and interchanged, such ranges are identified and include all the sub-ranges contained therein unless context or language indicates otherwise. For example, all ranges disclosed herein are inclusive of the endpoints, and the endpoints are independently combinable with each other.
- Referring now to the drawings,
FIG. 1 illustrates a schematic diagram of one embodiment of a turbomachine, which in the illustrated embodiment is agas turbine engine 10. Although an industrial or land-based gas turbine engine is shown and described herein, the present disclosure is not limited to an industrial and/or land-based gas turbine engine, unless otherwise specified in the claims. For example, the invention as described herein may be used in any type of turbomachine including but not limited to a steam turbine, an aircraft gas turbine, or a marine gas turbine. - As shown, the
gas turbine engine 10 generally includes acompressor section 12. Thecompressor section 12 includes acompressor 14. Thecompressor section 12 includes aninlet 16 that is disposed at an upstream end of thegas turbine engine 10. Thegas turbine engine 10 further includes acombustion section 18 having one ormore combustors 20 disposed downstream from thecompressor section 12. Thegas turbine engine 10 further includes aturbine section 22 that is downstream from thecombustion section 18. Ashaft 24 extends generally axially through thegas turbine engine 10. - The
compressor section 12 may generally include a plurality ofrotor disks 21 and a plurality ofrotor blades 23 extending radially outwardly from and connected to eachrotor disk 21. Eachrotor disk 21 in turn may be coupled to or form an upstream portion of theshaft 24 that extends through thecompressor section 12. Therotor blades 23 of thecompressor section 12 may include turbomachine airfoils that define an airfoil shape (e.g., having a leading edge, a trailing edge, and side walls extending between the leading edge and the trailing edge). Additionally, thecompressor section 12 includes stator vanes disposed between the rotor blades to define a series of compression stages. The stator vanes may extend from, and couple to, a compressor casing. - The
turbine section 22 may generally include a plurality ofrotor disks 27 and a plurality ofrotor blades 28 extending radially outwardly from and being interconnected to eachrotor disk 27. Eachrotor disk 27 in turn may be coupled to or form a portion of theshaft 24 that extends through theturbine section 22. Theturbine section 22 further includes anouter casing 32 that circumferentially surrounds the downstream portion of theshaft 24 and therotor blades 28. Theturbine section 22 may includestationary nozzles 26 extending radially inward from theouter casing 32. Therotor blades 28 andstationary nozzles 26 may be arranged in alternating fashion in stages along anaxial centerline 30 ofgas turbine 10. Both therotor blades 28 and thestationary nozzles 26 may include turbomachine airfoils that define an airfoil shape (e.g., having a leading edge, a trailing edge, and side walls extending between the leading edge and the trailing edge). - In operation,
ambient air 36 or other working fluid is drawn into theinlet 16 of thecompressor 14 and is progressively compressed to providecompressed air 38 to thecombustion section 18. Thecompressed air 38 flows into thecombustion section 18 and is mixed with fuel to form a combustible mixture. The combustible mixture is burned within acombustion chamber 40 of thecombustor 20, thereby generatingcombustion gases 42 that flow from thecombustion chamber 40 into theturbine section 22. Energy (kinetic and/or thermal) is transferred from thecombustion gases 42 to therotor blades 28, causing theshaft 24 to rotate and produce mechanical work. - The
gas turbine engine 10 may define a cylindrical coordinate system having an axial direction A extending along theaxial centerline 30, a radial direction R perpendicular to theaxial centerline 30, and a circumferential direction C extending around theaxial centerline 30. - The
combustion gases 42 exit theturbine section 22 and flow through theexhaust diffuser 34 across a plurality ofstruts 44 that are disposed within theexhaust diffuser 34. During various operating conditions of thegas turbine engine 10, such as during part-load operation, thecombustion gases 42 flowing into theexhaust diffuser 34 from theturbine section 22 are conferred with a high level of swirl that is caused by the rotatingturbine rotor blades 28. Such swirling flow can cause pressure fluctuations, frequency oscillations, or acoustic vibrations. -
FIG. 2 illustrates a cross-sectional view of an exhaust diffuser assembly 100 (which includes an exhaust diffuser 34), andFIG. 3 illustrates a cross-sectional view of theexhaust diffuser assembly 100 from along the line 3-3 shown inFIG. 2 , in accordance with embodiments of the present disclosure. As shown, theexhaust diffuser 34 generally includes aninner liner 46 and anouter liner 48 radially spaced apart from theinner liner 46. Theinner liner 46 may extend generally axially along anaxial centerline 50 of theexhaust diffuser 34. Theaxial centerline 50 of theexhaust diffuser 34 may be coaxial with theaxial centerline 30 of thegas turbine engine 10. Theinner liner 46 is generally annular shaped and may at least partially surround rotating components. For example, theinner liner 46 may surround or encase a portion of theshaft 24. - In many embodiments, the
outer liner 48 may be radially separated from theinner liner 46, such that anexhaust flow passage 52 is defined between theinner liner 46 and theouter liner 48. In particular embodiments, theinner liner 46 is concentrically and coaxially aligned within theouter liner 48 with respect to theaxial centerline 50. In certain embodiments, adiffuser casing 56 may be radially spaced apart from theouter liner 48 and annularly surround theouter liner 48 such that afluid plenum 58 is defined between thediffuser casing 56 and theouter liner 48. A flow of compressed air (or other working fluid) may flow within thefluid plenum 58 to cool the various components of the exhaust diffuser 34 (such as theouter liner 48 and the struts 44). The present disclosure is not limited to any particular size, shape, material, or other physical characteristics of theinner liner 46, theouter liner 48, and/or thediffuser casing 56, except as recited in the claims. - Each of the diffuser struts 44 may extend between the
inner liner 46 and theouter liner 48 and within theexhaust flow passage 52 defined therebetween. The diffuser struts 44 are spaced circumferentially around theinner liner 46, and the diffuser struts 44 may orient, align, or otherwise center theinner liner 46 within theouter liner 48. In addition, the diffuser struts 44 may provide structural support between the inner and the 46, 48. As shown inouter liners FIG. 1 , the diffuser struts 44 are positioned relative to a direction offlow 60 of the spentcombustion gases 42 flowing from theturbine section 22 of thegas turbine engine 10. As shown inFIG. 3 , eachdiffuser strut 44 generally includes aroot portion 62 that is connected to theinner liner 46, and atip portion 64 radially separated from theroot portion 62 and connected to theouter liner 48. - In exemplary embodiments, as shown in
FIGS. 2 and 3 , theexhaust diffuser assembly 100 may further include one or moresupport link assemblies 300 coupling theexhaust diffuser 34 to thediffuser casing 56. Particularly, theexhaust diffuser assembly 100 may include a plurality ofsupport link assemblies 300 circumferentially spaced apart (e.g., equally or unequally) from one another and coupled to theouter liner 48 and thediffuser casing 56. Thediffuser casing 56 may include aforward end 57 having aflange 59 extending outwardly (e.g., radially) from thediffuser casing 56 at theforward end 57. Theflange 59 may include one or more bolt holes (not shown) for coupling theforward end 57 of thediffuser casing 56 to aflange 67 at anaft end 65 of aturbine casing 63. Theturbine casing 63 and thediffuser casing 56 may each be annular such that both theturbine casing 63 and thediffuser casing 56 surround theaxial centerline 50. Thesupport link assemblies 300 may include asupport link 301 having amain body 302, aforward flange 304, and a pair ofaft arms 306. Theforward flange 304 may couple to theforward end 57 of thediffuser casing 56. Particularly, theforward flange 304 may be positioned between theaft end 65 of theturbine casing 63 and theforward end 57 of thediffuser casing 56. Theforward flange 304 may extend along (e.g., parallel to) the radial direction R. - In exemplary embodiments, as shown in
FIG. 3 , the plurality ofsupport link assemblies 300 may be circumferentially spaced apart from one another and each coupled to theouter liner 48 and thediffuser casing 56 within thefluid plenum 58. Theforward flange 304 may be removably coupled to theforward end 57 of the diffuser casing 56 (e.g., via one or more bolts, dowel pins, etc.), and the pair ofaft arms 306 may be fixedly coupled to a radially outer surface of the outer liner 48 (e.g., via welding, brazing, or other methods). In exemplary embodiments, as shown, the pair ofaft arms 306 may be non-parallel to one another. -
FIG. 4 illustrates an isometric view of anexhaust diffuser assembly 100 having anexhaust diffuser 34 with a plurality ofsupport link assemblies 300 coupled thereto. As discussed above, theexhaust diffuser 34 may include aninner liner 46, anouter liner 48, and a plurality ofstruts 44 extending (e.g., radially) between theinner liner 46 and theouter liner 48. Theexhaust diffuser 34 may include atop half 70 and abottom half 72, which are joined together at asplit line 74. Additionally, theexhaust diffuser 34 may extend axially between aforward end 78 and anaft end 76. - As shown in
FIG. 4 , the plurality ofsupport link assemblies 300 that are affixed to theouter liner 48, some of which may be arranged in circumferential groups 310 (e.g., groups of three). Eachsupport link assembly 300 in agroup 310 ofsupport link assemblies 300 may be approximately (e.g., ±5%) circumferentially equally spaced from the other support link(s) 300 in thegroup 310. As shown inFIG. 4 , eachstrut 44 of the plurality ofstruts 44 defines an interior 86 that extends between anouter opening 88 defined in theouter liner 48 and aninner opening 90 defined in theinner liner 46. In such embodiments, thesupport link assemblies 300 that are affixed to theouter liner 48 may be disposed between circumferentially neighboringouter openings 88. Particularly, one ormore groups 310 may be disposed circumferentially between two neighboringouter openings 88. Additionally, a single split-linesupport link assembly 300 may be disposed between thesplit line 74 and anouter opening 88 in closest proximity to the outer split-line 110. Although thecircumferential groups 310 are shown as having threesupport link assemblies 300, other numbers ofsupport link assemblies 300 may be used (e.g., two or more). - Referring now to
FIG. 5 , a cross-sectional view of asupport link assembly 300 installed within anexhaust diffuser assembly 100 is illustrated in accordance with embodiments of the present disclosure. As shown, theexhaust diffuser assembly 100 includes anouter liner 48 of anexhaust diffuser 34, adiffuser casing 56 radially spaced apart from theouter liner 48, and asupport link assembly 300 coupling theouter liner 48 of theexhaust diffuser 34 to thediffuser casing 56. Thediffuser casing 56 may include acasing body 104, aforward flange 106 extending radially outwardly from thecasing body 104, and atab 108 extending radially inwardly from thecasing body 104. Theforward flange 106 may couple to theaft flange 67 of the turbine casing 63 (FIG. 2 ) when theexhaust diffuser assembly 100 is implemented in a gas turbine engine (such as thegas turbine engine 10 discussed above with reference toFIG. 1 ). - The
support link assembly 300 may include asupport link 301 and a vibrational damping assembly 200 (FIGS. 7-8 ) affixed to thesupport link 301. Thesupport link 301 may include amain body 302, aforward flange 304, and a pair of aft arms 306 (one of which is shown inFIG. 5 ). Themain body 302 may extend from aforward end 308 to anaft end 312. Theforward flange 304 may extend (e.g., generally radially outwardly) from themain body 302 at theforward end 308 and couple (e.g., removably couple) to thediffuser casing 56. Particularly, theforward flange 304 may couple to a forward face of thetab 108 of thediffuser casing 56 via one ormore bolts 110. Theaft arms 306 may extend (e.g., generally radially inwardly) from themain body 302 at theaft end 312. Theaft arms 306 may be fixedly coupled to a radially outer surface of theouter liner 48 of the exhaust diffuser 34 (such as via welding, brazing, or other means). Particularly, theaft arms 306 may form a weld joint 305 with an outer surface of theouter liner 48. -
FIG. 6 illustrates a perspective view asupport link 301, which may be incorporated in thesupport link assemblies 300 discussed above with reference toFIGS. 2 through 5 . Specifically, the vibrational dampingassembly 200 as well as other mounting hardware has been removed from thesupport link assembly 300 to isolate thesupport link 301 in order to show details of thesupport link 301. As shown, thesupport link 301 includes themain body 302, theforward flange 304 at theforward end 308 of themain body 302, and the pair ofaft arms 306 at theaft end 312 of themain body 302. - As shown in
FIG. 6 , the support link defines alongitudinal centerline 350 and a cartesian coordinate system relative to the longitudinal centerline 350 (e.g., a coordinate system having three directions mutually perpendicular to one another). For example, thesupport link 301 defines a longitudinal direction L extending along thelongitudinal centerline 350, a transverse direction T extending perpendicular to thelongitudinal centerline 350, and a vertical direction V extending perpendicular to thelongitudinal centerline 350. The longitudinal direction L, the transverse direction T, and the vertical direction V are mutually perpendicular. - The
main body 302 may include aforward portion 316 and anaft portion 318, which may intersect with one another at a junction 317). The forward portion may extend (e.g., longitudinally) from theforward end 308 to theaft portion 318. Theaft portion 318 may extend (e.g., longitudinally) from theforward portion 316 to theaft end 312. The pair ofarms 306 may each extend from theaft portion 318 of themain body 302, and theforward flange 304 may extend from theforward end 308 of theforward portion 316 of themain body 302. Particularly, theaft portion 318 may extend to anaft edge 328 at theaft end 312, and the pair ofarms 306 may extend from theaft portion 318 between theforward portion 316 and theaft edge 328. - The
forward portion 316 may be longer in the longitudinal direction L than theaft end 312, such as between about 1.5 times longer and about 5 times longer, or such as between about 2 times longer and about 4 times longer. Alternatively stated, theforward portion 316 may define a longitudinal length that is between about 150% and about 500% of a longitudinal length of theaft portion 318, or such as between about 200% and about 400%. - The
main body 302 may define awidth 320 in the transverse direction T that varies in the longitudinal direction L between theforward end 308 and theaft end 312. Particularly, theforward portion 316 converges inwidth 320 in the transverse direction T as theforward portion 316 extends longitudinally from theforward end 308 to thejunction 317, such that the width 320 (e.g., the transverse width) of theforward portion 316 gradually decreases from theforward end 308 to theaft portion 318. Theaft portion 318 may diverge inwidth 320 in the transverse direction T as theaft portion 318 extends longitudinally from thejunction 317 with theforward portion 316 to theaft end 312, such that the width 320 (e.g., the transverse width) of theaft portion 316 increases from thejunction 317 to theaft end 312. In summary, thejunction 317 between theforward portion 316 and theaft portion 318 may be an inflection point at which thewidth 320 transitions from decreasing to increasing as the main body extends from theforward end 308 to theaft end 312. - As shown in
FIG. 6 , theforward flange 304 extends generally vertically from the main body in a first direction, and the pair ofarms 306 each extend generally vertically from themain body 302 in a second direction that is opposite the first direction. Alternatively stated, theforward flange 304 may extend generally vertically outwardly from themain body 302, and the pair ofarms 306 may each extend generally vertically inwardly from themain body 302. - The
forward flange 304 may include anarcuate segment 322 and astraight segment 324, and theforward flange 304 may extend to aterminal edge 326. The arcuate segment may extend between theforward end 308 of themain body 302 to thestraight segment 324, and thestraight segment 324 may extend from thearcuate segment 322 to theterminal edge 326. Thearcuate segment 322 may increase in transverse width from theforward end 308 to thestraight segment 324. Thestraight segment 324 may have a generally constant or uniform transverse width. - As shown in
FIG. 6 , themain body 302 may extend longitudinally between theforward end 308 and theaft end 312, and themain body 302 may extend transversely from afirst side 330 to asecond side 332. Themain body 302 may be longer in the longitudinal direction L than the transverse direction T, e.g., a length between theforward end 308 and theaft end 312 may be longer than thewidth 320. - In exemplary embodiments, the pair of
arms 306 may include afirst arm 307A and asecond arm 307B spaced apart from thefirst arm 307A in the transverse direction T. Thefirst arm 307A may extend from thefirst side 330 of themain body 302. More particularly, thefirst arm 307A may extend from thefirst side 330 of themain body 302 at theaft portion 318. Similarly, thesecond arm 307B may extend from thesecond side 332 of themain body 302. That is, thesecond arm 307B may extend from thesecond side 332 of themain body 302 at theaft portion 318. - In exemplary embodiments, as shown in
FIG. 6 , thesupport link 301 may define one or more 334A, 334B. The one or morestress relief openings 334A, 334B may each include astress relief openings 336A, 336B and ahole 338A, 338B extending from the hole to an edge of theslit support link 301. For example, a firststress relief opening 334A may include afirst hole 336A defined in theforward portion 316 of themain body 302 proximate theforward end 308. The firststress relief opening 334A may further include afirst slit 338A extending from thefirst hole 336A to theterminal edge 326 of theforward flange 304. A majority portion of thefirst slit 338A may be defined in theforward flange 304, and a minority portion of thefirst slit 338A may be defined in theforward portion 316 of themain body 302. Additionally, a secondstress relief opening 334B may include asecond hole 336B defined in theaft portion 318 of themain body 302. The secondstress relief opening 334B may further include asecond slit 338B extending from thesecond hole 336B to theaft edge 328. - Additionally, as shown in
FIG. 6 , the forward flange 304 (such as thestraight segment 324 of the forward flange 304) may definebolt holes 362 and dowel holes 364. The bolt holes 362 may be disposed on either side of theslit 338A. Eachbolt hole 332 may be disposed between two dowel holes 364. The bolt holes 362 may be configured to receive a bolt, and the dowel holes 364 may be configured to receive a dowel rod to couple the forward flange to a diffuser casing. The bolt holes 362 may have a diameter that is larger than a diameter of the dowel holes 364. - Referring now to
FIGS. 7 and 8, FIG. 7 illustrates a perspective view of a first side of asupport link 300, andFIG. 8 illustrates a perspective view of second side of thesupport link 300, in accordance with embodiments of the present disclosure. As shown inFIGS. 7 and 8 , thesupport link 300 further includes a vibrational dampingassembly 200 affixed to thesupport link 300. The vibrational dampingassembly 200 may dampen vibrations experienced by thesupport link 301 during operation of the exhaust diffuser assembly 100 (and/or the gas turbine engine 10), in order to prevent damage to thesupport link 301 and increase the hardware life of thesupport link 301. - The vibrational damping
assembly 200 may include at least oneplate 202 and at least one pin assembly 204 (shown more clearly inFIGS. 10-11 ) coupling the at least oneplate 202 to thesupport link 301. The at least onepin assembly 204 may be coupled to themain body 302 of thesupport link 301. In many embodiments, as shown inFIGS. 7 and 8 , the at least onepin assembly 204 may include apin 206 and adisk 208 coupled to thepin 206. Thepin 206 may include apin head 210 and apin body 212. As shown, at least oneplate 202 may be disposed between thepin head 210 and thesupport link 301. For example, the at least oneplate 202 surrounds thepin body 206 and is restricted to movement along thepin body 206 to dampen vibrations of thesupport link 301. That is, the at least oneplate 202 is movable between thepin head 210 and thesupport link 301 relative to thepin 206 and relative to thesupport link 301 to dampen vibrations experienced by thesupport link 301. - The vibrational damping
assembly 200 further includes abrace 344 and one or more bands 346 coupled to thebrace 344. As shown,brace 344 and the one or more bands 346 may collectively surround themain body 302 and the at least oneplate 202. That is, thesupport link 301 may include a first side surface 340 (such as an outer side surface) and a second side surface 342 (such as an inner side surface) opposite thefirst side surface 340. Thebrace 344 may extend along, and be disposed in contact with, thefirst side surface 340. At least one of the one ormore plates 202 may be disposed along, and in contact with, thesecond side surface 342. The bands 346 may be coupled to thebrace 344 and may extend along an exterior plate of the one ormore plates 202. - As shown in
FIG. 7 , thebrace 344 includes a mountingportion 214, afirst web portion 216, afirst band portion 218, asecond web portion 220, and asecond band portion 222. The mountingportion 214 may be connected to the pin 206 (e.g., the mountingportion 214 may surround thepin body 212 and be disposed between thedisk 208 and themain body 302. That is, the mountingportion 214 may define a hole through which thepin body 212 extends. Thefirst web portion 216 may include a first pair ofweb branches 217 each extending from the mountingportion 214 to thefirst band portion 218. Thesecond web portion 220 may include a second pair ofweb branches 221 each extending from thefirst band portion 218 to thesecond band portion 222. - As shown in
FIGS. 7 and 8 collectively, thefirst band portion 218 may couple to afirst band 349 of the one or more bands 346, and thesecond band portion 220 may couple to the second band 347 of the one or more bands 346. Referring now toFIG. 9 , an enlarged view of the detail boxed inFIG. 7 is illustrated in accordance with exemplary aspects of the present disclosure. As should be appreciated, whileFIG. 9 illustrates features of thefirst band portion 218 and thefirst band 349, the features illustrated inFIG. 9 may also be incorporated in thesecond band portion 222 and the second band 347. - As shown in
FIG. 9 , thefirst band portion 218 may include aplate segment 224 and twoflange segments 226 extending perpendicularly from theplate segment 224 on either 330, 332 of theside main body 302. Theplate segment 224 may be generally parallel to themain body 302 and in contact with thefirst surface 340 of themain body 302. Similarly, thefirst band 349 may include aplate segment 228 and twotab segments 230 extending perpendicularly from theplate segment 228 on either 330, 332 of theside main body 302. Eachflange segment 226 may include aninner surface 232 that is in contact with a side of the main body 302 (such as thefirst side 330 or the second side 332) and at least one plate of the one ormore plates 202. Additionally, eachflange segment 226 may include anouter surface 234 that is in contact with aninterior surface 236 of atab segment 230. Thetab segment 230 of thefirst band 349 may form a friction fit with theflange segment 226 of thefirst band portion 218 of thebrace 344. -
FIG. 10 illustrates a cross sectional view of thesupport link assembly 300 from along the line 10-10 shown inFIG. 7 in accordance with embodiments of the present disclosure, andFIG. 11 illustrates an enlarged view of a portion ofFIG. 10 . WhileFIG. 10 only illustrates thefirst arm 307A of the pair ofarms 306, it should be understood and appreciated that the features shown and described with reference toFIG. 10 may also be incorporated into thesecond arm 307B. - In exemplary embodiments, each
307A, 307B of the pair ofarm arms 306 may extend from aroot 352 connected themain body 302 to afree edge 354. Theroot 352 may be the junction between themain body 302 and the 307A, 307B. Eachrespective arm 307A, 307B may include aarm shank portion 356 and a protrudingportion 358. Theshank portion 356 may extend generally vertically from theroot 352 to the protrudingportion 358, and the protrudingportion 358 may extend from theshank portion 356 to thefree edge 354. The protrudingportion 358 may extend outwardly (e.g., longitudinally and/or vertically) from theshank portion 356. That is, the protrudingportion 358 may includeprotrusions 360 that extend outwardly from theshank portion 356. In exemplary implementations, as will be discussed below, thefree edge 354 of each 307A, 307B may be welded to thearm outer liner 48, and theprotrusions 360 may significantly reduce the stresses experienced at the weld joint as well as provide easier access to the junction to be welded, which is advantageous. - As shown in
FIG. 11 , thesupport link assembly 300 includes asupport link 301 and a vibrational dampingassembly 200 affixed to thesupport link 301. The vibrational dampingassembly 200 may dampen vibrations experienced by thesupport link 301 during operation of the exhaust diffuser assembly 100 (and/or the gas turbine engine 10), in order to prevent damage to the support link 201 and increase the hardware life of thesupport link 301. - The vibrational damping
assembly 200 may include at least oneplate 202, abrace 344, and at least onepin assembly 204 coupling the at least oneplate 202 and thebrace 344 to thesupport link 301. The at least onepin assembly 204 may be coupled to themain body 302 of thesupport link 301. In many embodiments, as shown inFIGS. 7 and 8 , the at least onepin assembly 204 may include apin 206 and adisk 208 coupled to thepin 206. The pin may include apin head 210 and apin body 212. Thepin head 210 may be disk shaped, may extend outwardly from thepin body 212 and may be generally parallel to thedisk 208. Thepin body 212 may extend through the at least one plate 202 (e.g., a first plate 240 and a second plate 242), themain body 302 of thesupport link 301, thebrace 344, and thedisk 208. Once installed, thepin 206 may be secured in position by welding or brazing thedisk 208 to thepin body 212. - As shown, at least one plate 202 (such as the first plate 240 and the second plate 242) may be disposed between the
pin head 210 and themain body 302 of thesupport link 301. For example, the at least oneplate 202 surrounds thepin body 206 and is restricted to movement along thepin body 206 to dampen vibrations of thesupport link 301. That is, the at least oneplate 202 is movable between thepin head 210 and thesupport link 301 relative to thepin 206 and relative to thesupport link 301 to dampen vibrations experienced by thesupport link 301. Particularly, the at least one plate 202 (such as the first plate 240 and the second plate 242) may be disposed between thepin head 210 and thesecond side surface 342 of themain body 302. Thebrace 344 may be disposed between thedisk 208 and thefirst side surface 340 of themain body 302. - In exemplary embodiments, the
plates 202 may include the first plate 242 having afirst thickness 128 and the second plate 240 having asecond thickness 129. Thesecond thickness 129 may be greater than thefirst thickness 128. For example, thesecond thickness 129 may be between about 20% and about 80% greater than thefirst thickness 128, or such as between about 30% and about 70% greater than thefirst thickness 128, or such as between about 40% and about 60% greater than thefirst thickness 128. - During operation, the
plates 202 may move relative to thesupport link 301 and one another, which causes micro-collisions (or "bumping") between theplates 202. These micro-collisions may counteract vibrations experienced by thesupport link 301 to which the vibrational dampingassembly 200 is attached, thereby advantageously increasing the hardware life of thesupport link 301. Additionally, theaft arms 306 of thesupport link 301 advantageously facilitate fixable coupling (e.g., welding) of the support link to theouter liner 48 without introducing unreasonable stresses at the weld location. - This written description uses examples to disclose the invention, including the best mode, and also to enable any person skilled in the art to practice the invention, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the invention is defined by the claims and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims if they include structural elements that do not differ from the literal language of the claims, or if they include equivalent structural elements with insubstantial differences from the literal language of the claims.
- Further aspects of the invention are provided by the subject matter of the following clauses:
- A support link assembly for coupling an exhaust diffuser to a diffuser casing, the support link assembly comprising: a support link comprising: a main body extending from a forward end to an aft end; a forward flange extending from the main body at the forward end, the forward flange configured to couple to the diffuser casing; and a pair of arms extending from the main body at the aft end, the pair of arms configured to couple to the exhaust diffuser.
- The support link assembly as in any preceding clause, further comprising a vibrational damping assembly affixed to the support link.
- The support link assembly as in any preceding clause, wherein the vibrational damping assembly comprises: at least one pin assembly coupled to the main body of the support link, the at least one pin assembly having a pin and a disk, the pin including a pin head and a pin body; and at least one plate disposed between the pin head and the support link, wherein the at least one plate surrounds the pin body, and wherein the at least one plate is movable between the pin head and the support link relative to the pin and relative to the support link to dampen vibrations experienced by the support link.
- The support link assembly as in any preceding clause, wherein the vibrational damping assembly further comprises a brace and one or more bands coupled to the brace, wherein the brace and the one or more bands collectively surround the main body and the at least one plate.
- The support link assembly as in any preceding clause, wherein the brace includes a mounting portion, a first web portion, a first band portion, a second web portion, and a second band portion.
- The support link assembly as in any preceding clause, wherein the first band portion couples to a first band of the one or more bands, and wherein the second band portion couples to a second band of the one or more bands.
- The support link assembly as in any preceding clause, wherein the main body includes a forward portion and an aft portion, wherein the forward portion converges in width as the forward portion extends from the forward end to a junction of the forward end with the aft portion, and wherein the aft portion diverges in width as the aft portion extends from the junction with the forward portion to the aft end.
- The support link assembly as in any preceding clause, wherein the pair of arms extends from the aft portion of the main body, and wherein the forward flange extends from the forward portion of the main body.
- The support link assembly as in any preceding clause, wherein the support link defines a longitudinal centerline, a longitudinal direction, a transverse direction, and a vertical direction, wherein the main body extends generally longitudinally from the forward end to the aft end, wherein the forward flange extends generally vertically from the main body in a first direction, and wherein each arm of the pair of arms extends generally vertically from the main body in a second direction that is opposite the first direction.
- The support link assembly as in any preceding clause, wherein the main body extends transversely from a first side to a second side, wherein a first arm of the pair of arms extends from the first side, and wherein a second arm of the pair of arms extends from the second side.
- The support link assembly as in any preceding clause, wherein each arm of the pair of arms extends from a root connected the main body to a free edge, wherein each arm includes a shank portion and a protruding portion, the shank portion extending from the root to the protruding portion, and the protruding portion extending from the shank portion to the free edge.
- The support link assembly as in any preceding clause, wherein one or more stress relief openings are defined in the support link, each of the one or more stress relief openings including a hole and a slit extending from the hole to an edge of the support link.
- A support link assembly for coupling an exhaust diffuser to a diffuser casing, the support link assembly comprising: a support link comprising a main body extending from a forward end to an aft end; and a vibrational damping assembly affixed to the support link, the vibrational damping assembly comprising: at least one pin assembly coupled to the main body of the support link, the at least one pin assembly having a pin and a disk, the pin including a pin head and a pin body; and at least one plate disposed between the pin head and the support link, wherein the at least one plate surrounds the pin body, and wherein the at least one plate is movable between the pin head and the support link relative to the pin and relative to the support link to dampen vibrations experienced by the support link.
- The support link assembly as in any preceding clause, wherein the vibrational damping assembly further comprises a brace and one or more bands coupled to the brace, wherein the brace and the one or more bands collectively surround the main body and the at least one plate.
- The support link assembly as in any preceding clause wherein the brace includes a mounting portion, a first web portion, a first band portion, a second web portion, and a second band portion.
- The support link assembly as in any preceding clause, wherein the first band portion couples to a first band of the one or more bands, and wherein the second band portion couples to a second band of the one or more bands.
- The support link assembly as in any preceding clause, wherein one or more stress relief openings are defined in the support link, each of the one or more stress relief openings including a hole and a slit extending from the hole to an edge of the support link.
- The support link assembly as in any preceding clause, wherein the support link further comprises: a forward flange extending from the main body at the forward end, the forward flange configured to couple to the diffuser casing; and a pair of arms extending from the main body at the aft end, the pair of arms configured to couple to the exhaust diffuser.
- An exhaust diffuser assembly comprising: a diffuser casing; an exhaust diffuser; and a support link coupling the exhaust diffuser to the diffuser casing, the support link comprising: a main body extending from a forward end to an aft end; a forward flange extending from the main body at the forward end, the forward flange configured to couple to the diffuser casing; and a pair of arms extending from the main body at the aft end, the pair of arms configured to couple to the exhaust diffuser.
- The exhaust diffuser assembly as in any preceding clause, wherein a vibrational damping assembly is affixed to the support link.
Claims (15)
- A support link assembly (300) for coupling an exhaust diffuser (34) to a diffuser casing (56), the support link assembly (300) comprising:
a support link (301) comprising:a main body (302) extending from a forward end (308) to an aft end (312);a forward flange (304) extending from the main body (302) at the forward end (308), the forward flange (304) configured to couple to the diffuser casing (56); anda pair of arms (306) extending from the main body (302) at the aft end (312), the pair of arms (306) configured to couple to the exhaust diffuser (34). - The support link assembly (300) as in claim 1, further comprising a vibrational damping assembly (200) affixed to the support link (301).
- The support link assembly (300) as in claim 2, wherein the vibrational damping assembly (200) comprises:at least one pin assembly (204) coupled to the main body (302) of the support link (301), the at least one pin assembly (204) having a pin (206) and a disk (208), the pin (206) including a pin head (210) and a pin body (212); andat least one plate (202) disposed between the pin head (210) and the support link (301), wherein the at least one plate (202) surrounds the pin body (212), and wherein the at least one plate (202) is movable between the pin head (210) and the support link (301) relative to the pin (206) and relative to the support link (301) to dampen vibrations experienced by the support link (301).
- The support link assembly (300) as in claim 3, wherein the vibrational damping assembly (200) further comprises a brace (344) and one or more bands (346) coupled to the brace (344), wherein the brace (344) and the one or more bands (346) collectively surround the main body (302) and the at least one plate (202).
- The support link assembly (300) as in claim 4, wherein a first band portion (218) of the brace (344) couples to a first band (349) of the one or more bands (346), and wherein a second band portion (220) of the brace (344) couples to a second band (347) of the one or more bands (346).
- The support link assembly (300) as in any preceding claim, wherein the main body (302) includes a forward portion (316) and an aft portion (318), wherein the forward portion (316) converges in width as the forward portion (316) extends from the forward end (308) to a junction (317) of the forward portion (316) with the aft portion (318), and wherein the aft portion (318) diverges in width as the aft portion (318) extends from the junction (317) with the forward portion (316) to the aft end (312).
- The support link assembly (300) as in claim 6, wherein the pair of arms (306) extends from the aft portion (318) of the main body (302), and wherein the forward flange (304) extends from the forward portion (316) of the main body (302).
- The support link assembly (300) as in any preceding claim, wherein the support link (301) defines a longitudinal centerline (350), a longitudinal direction (L), a transverse direction (T), and a vertical direction (V), wherein the main body (302) extends generally longitudinally from the forward end (308) to the aft end (312), wherein the forward flange (304) extends generally vertically from the main body (302) in a first direction, and wherein each arm of the pair of arms (306) extends generally vertically from the main body (302) in a second direction that is opposite the first direction.
- The support link assembly (300) as in claim 8, wherein the main body (302) extends transversely from a first side (330) to a second side (332), wherein a first arm (307A) of the pair of arms (306) extends from the first side (330), and wherein a second arm (307B) of the pair of arms (306) extends from the second side (332).
- The support link assembly (300) as in any preceding claim, wherein each arm of the pair of arms (306) extends from a root (352) connected the main body (302) to a free edge (354), wherein each arm (306) includes a shank portion (356) and a protruding portion (358), the shank portion (356) extending from the root (352) to the protruding portion (358), and the protruding portion (358) extending from the shank portion (356) to the free edge (354).
- The support link assembly (300) as in any preceding claim, wherein one or more stress relief openings (334A, 334B) are defined in the support link, each of the one or more stress relief openings (334A, 334B) including a hole (336A, 336B) and a slit (338A, 338B) extending from the hole (336A, 336B) to an edge (326, 328) of the support link (301).
- An exhaust diffuser assembly (100) comprising:a diffuser casing (56) defining a fluid plenum (58);an exhaust diffuser (34) disposed within the fluid plenum (58); anda support link assembly (300) coupling the exhaust diffuser (34) to the diffuser casing (56), the support link assembly (300) being defined according to any of the previous claims.
- The exhaust diffuser assembly (100) as in claim 12, wherein the exhaust diffuser (34) includes an outer liner (48) radially inward of the diffuser casing (56); and wherein the support link assembly (300) is one of a plurality of support link assemblies circumferentially spaced around an outer liner (48) of the exhaust diffuser (34) to couple the outer liner (48) to the diffuser casing (56).
- The exhaust diffuser assembly (100) as in claims 12 or 13, wherein the forward flange (304) of the support link assembly (300) is removably coupled to the diffuser casing (56), and the pair of arms is fixedly coupled to a radially outer surface of the outer liner (48) of the exhaust diffuser (34).
- The exhaust diffuser assembly (100) as in claim 13 or 14, wherein the plurality of support link assemblies (300) is arranged in circumferential groups (310), the circumferential groups (310) being disposed between circumferentially neighboring outer openings (88) defined in the outer liner (48) of the exhaust diffuser (34); and wherein a single split-line support assembly (300) may be disposed between a split line (74) of the outer liner (48) and an outer opening (88) is closest proximity to the split line (74).
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PL44624323 | 2023-09-27 |
Publications (2)
| Publication Number | Publication Date |
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| EP4530439A2 true EP4530439A2 (en) | 2025-04-02 |
| EP4530439A3 EP4530439A3 (en) | 2025-05-07 |
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ID=92633732
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP24197922.8A Pending EP4530439A3 (en) | 2023-09-27 | 2024-09-02 | Support link for an exhaust diffuser assembly |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20260092540A1 (en) |
| EP (1) | EP4530439A3 (en) |
| JP (1) | JP2025064941A (en) |
| CN (1) | CN119754877A (en) |
Family Cites Families (13)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FR2623249A1 (en) * | 1987-11-12 | 1989-05-19 | Snecma | ASSEMBLY CONSISTING OF TWO PIECES OF MATERIALS HAVING DIFFERENT EXPANSION COEFFICIENTS, CONNECTED THEREBY AND METHOD OF ASSEMBLY |
| FR2935753B1 (en) * | 2008-09-08 | 2011-07-01 | Snecma Propulsion Solide | FASTENING, FASTENING CONNECTIONS FOR MOUNTING CMC PIECES |
| US20120186269A1 (en) * | 2011-01-25 | 2012-07-26 | General Electric Company | Support between transition piece and impingement sleeve in combustor |
| WO2013163510A1 (en) * | 2012-04-27 | 2013-10-31 | General Electric Company | Connecting gas turbine engine annular members |
| US9494109B2 (en) * | 2012-08-15 | 2016-11-15 | United Technologies Corporation | Pivoting ball stop for exhaust duct liner hanger |
| US9476524B2 (en) * | 2012-08-15 | 2016-10-25 | United Technologies Corporation | Support system bumper for exhaust duct liner hanger |
| EP2964943B1 (en) * | 2013-03-06 | 2017-11-22 | United Technologies Corporation | Exhaust system having a flow path liner supported by structural duct segments |
| JP6399894B2 (en) * | 2014-10-29 | 2018-10-03 | 三菱日立パワーシステムズ株式会社 | Exhaust device and gas turbine |
| US10156183B2 (en) * | 2016-11-30 | 2018-12-18 | GM Global Technology Operations LLC | Anti-rattle devices and turbocharger wastegate assemblies including the same |
| US10533457B2 (en) * | 2017-05-11 | 2020-01-14 | United Technologies Corporation | Exhaust liner cable fastener |
| US10458281B2 (en) * | 2017-06-12 | 2019-10-29 | United Technologies Corporation | Resilient mounting assembly for a turbine engine |
| FR3084916B1 (en) * | 2018-08-10 | 2020-07-17 | Safran Ceramics | FLEXIBLE FIXING EJECTION CONE |
| US11428120B1 (en) * | 2021-08-03 | 2022-08-30 | Pratt & Whitney Canada Corp. | Damping bracket for a gas turbine engine |
-
2024
- 2024-08-22 CN CN202411163854.1A patent/CN119754877A/en active Pending
- 2024-08-29 JP JP2024147491A patent/JP2025064941A/en active Pending
- 2024-09-02 EP EP24197922.8A patent/EP4530439A3/en active Pending
- 2024-09-20 US US18/891,905 patent/US20260092540A1/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| JP2025064941A (en) | 2025-04-17 |
| US20260092540A1 (en) | 2026-04-02 |
| CN119754877A (en) | 2025-04-04 |
| EP4530439A3 (en) | 2025-05-07 |
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