WO2018110580A1 - ガスタービンの分解組立方法、シール板組立体及びガスタービンロータ - Google Patents
ガスタービンの分解組立方法、シール板組立体及びガスタービンロータ Download PDFInfo
- Publication number
- WO2018110580A1 WO2018110580A1 PCT/JP2017/044653 JP2017044653W WO2018110580A1 WO 2018110580 A1 WO2018110580 A1 WO 2018110580A1 JP 2017044653 W JP2017044653 W JP 2017044653W WO 2018110580 A1 WO2018110580 A1 WO 2018110580A1
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- WIPO (PCT)
- Prior art keywords
- seal plate
- axial direction
- state
- gas turbine
- rotor disk
- Prior art date
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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
- F01D25/285—Temporary support structures, e.g. for testing, assembling, installing, repairing; Assembly methods using such structures
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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
- F01D11/00—Preventing or minimising internal leakage of working-fluid, e.g. between stages
- F01D11/003—Preventing or minimising internal leakage of working-fluid, e.g. between stages by packing rings; Mechanical seals
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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
- F01D11/00—Preventing or minimising internal leakage of working-fluid, e.g. between stages
- F01D11/005—Sealing means between non relatively rotating elements
- F01D11/006—Sealing the gap between rotor blades or blades and rotor
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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
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/30—Fixing blades to rotors; Blade roots ; Blade spacers
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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
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/30—Fixing blades to rotors; Blade roots ; Blade spacers
- F01D5/3007—Fixing blades to rotors; Blade roots ; Blade spacers of axial insertion type
- F01D5/3015—Fixing blades to rotors; Blade roots ; Blade spacers of axial insertion type with side plates
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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
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/30—Fixing blades to rotors; Blade roots ; Blade spacers
- F01D5/3053—Fixing blades to rotors; Blade roots ; Blade spacers by means of pins
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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
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/30—Fixing blades to rotors; Blade roots ; Blade spacers
- F01D5/32—Locking, e.g. by final locking blades or keys
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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
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/30—Fixing blades to rotors; Blade roots ; Blade spacers
- F01D5/32—Locking, e.g. by final locking blades or keys
- F01D5/323—Locking of axial insertion type blades by means of a key or the like parallel to the axis of the rotor
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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
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/30—Fixing blades to rotors; Blade roots ; Blade spacers
- F01D5/32—Locking, e.g. by final locking blades or keys
- F01D5/326—Locking of axial insertion type blades by other means
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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
- F05D2220/00—Application
- F05D2220/30—Application in turbines
- F05D2220/32—Application in turbines in gas turbines
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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
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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
- F05D2230/00—Manufacture
- F05D2230/60—Assembly methods
- F05D2230/68—Assembly methods using auxiliary equipment for lifting or holding
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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
- F05D2230/70—Disassembly methods
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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
- F05D2240/00—Components
- F05D2240/20—Rotors
- F05D2240/24—Rotors for turbines
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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
- F05D2240/00—Components
- F05D2240/20—Rotors
- F05D2240/30—Characteristics of rotor blades, i.e. of any element transforming dynamic fluid energy to or from rotational energy and being attached to a rotor
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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
- F05D2240/00—Components
- F05D2240/80—Platforms for stationary or moving blades
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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
- F05D2260/30—Retaining components in desired mutual position
- F05D2260/31—Retaining bolts or nuts
Definitions
- the present disclosure relates to a gas turbine disassembly and assembly method, a seal plate assembly, and a gas turbine rotor.
- the gas turbine generally includes a gas turbine rotor including a rotor disk, a plurality of moving blades mounted on the outer peripheral surface of the rotor disk, and at least one seal plate assembly for the moving blades.
- the seal plate assembly is provided on at least one side in the axial direction with respect to the rotor disk in order to seal the gas flow in the axial direction between the rotor blades adjacent in the circumferential direction of the rotor disk.
- the gas turbine includes a rotor disk, a plurality of moving blades mounted on the outer peripheral surface of the rotor disk, and at least one seal plate assembly for the moving blades.
- Patent Document 1 discloses a gas turbine in which seal plate assemblies (locking plate assemblies) are provided on the upstream side and the downstream side in the axial direction with respect to the rotor disk.
- the upstream seal plate assembly includes a seal plate (locking plate) configured to restrict axial movement of the moving blade by engaging with the moving blade, and a rotor disk. And a seal plate movement restricting portion (eccentric cam) that restricts the radial movement of the seal plate by engaging with.
- the eccentric cam is held on the seal plate in contact with the outer peripheral surface of the rotor disk, and when this eccentric cam rotates, the position of the rotation center of the eccentric cam with respect to the outer peripheral surface of the rotor disk is the phase of the eccentric cam.
- the seal plate moves in the radial direction of the rotor disk.
- the eccentric cam When the gas turbine is disassembled or assembled, the eccentric cam is rotated to move the seal plate in the radial direction of the rotor disk, so that the seal plate is engaged with the rotor blade and the seal plate is engaged with the rotor blade. The state that does not match is switched. Further, it is disclosed that the eccentric cam on the upstream side of the rotor disk is rotated from the downstream side of the rotor disk through the space formed between the blade root portion of the rotor blade and the blade groove of the rotor disk. .
- the eccentric cam as the seal plate movement restricting portion is directed toward the opposite side of the rotor disk from the seal plate in the axial direction (upstream side in the configuration according to Patent Document 1).
- Protruding portions are provided, and the peripheral surface of the protruding portion is engaged with the protruding portion protruding from the rotor disk, thereby restricting the radial movement of the seal plate.
- the object of the present invention is to provide a seal plate and a moving blade from the opposite side of the seal plate across the rotor disk.
- An object of the present invention is to provide a gas turbine disassembly and assembly method, a seal plate assembly, and a gas turbine rotor including the gas turbine disassembly / assembly method that can easily switch between an engaged state and a disengaged state.
- the gas turbine includes a seal plate provided on one side in the axial direction with respect to the rotor disk, and a seal plate for the rotor disk.
- a seal plate movement restricting portion that restricts radial movement of the rotor disk, and the disassembly and assembly method operates the seal plate movement restricting portion by operating the seal plate movement restricting portion from the other side in the axial direction.
- a restriction plate does not restrict the radial movement of the seal plate, and at least a part of the seal plate movement restriction portion protrudes from the seal plate toward the other side in the axial direction.
- There is provided a seal plate restriction state switching step for switching between a seal plate restriction state for restricting the radial movement of the seal plate.
- the other side in the axial direction that is, the protruding direction side of the seal plate movement restricting portion with respect to the seal plate (seal in the axial direction).
- the one side in the axial direction is a downstream side of the combustion gas flow in the axial direction.
- the other side is an upstream side of the combustion gas flow in the axial direction.
- the seal plate assembly provided on the downstream side of the rotor disk is sealed from the upstream side of the rotor disk. It is possible to switch between the seal plate restriction state and the seal plate non-restriction state while visually confirming whether the state of the plate movement restriction portion is the seal plate restriction state or the seal plate non-restriction state. Thereby, it becomes easy for the seal plate assembly provided on the downstream side of the rotor disk to appropriately switch between the seal plate restricted state and the seal plate non-restricted state from the upstream side of the rotor disk.
- the seal plate assembly provided on the downstream side of the rotor disk has an engagement state and a non-engagement state between the seal plate and the rotor blade from the upstream side of the rotor disk. It becomes easy to switch appropriately.
- the moving blades with respect to the rotor disk can be removed without removing the gas turbine casing. Attachment or removal can be performed from the upstream side of the rotor disk. For this reason, the maintainability of the gas turbine is improved.
- the rotor disk has a through hole extending along the axial direction.
- the seal plate non-restriction state and the seal plate restriction state are switched by operating the seal plate movement restriction portion via the through hole.
- the seal plate restriction state switching step in the seal plate restriction state switching step, the seal plate movement restriction portion and By switching the state where the rotor disk is not engaged and the state where the seal plate movement restricting portion and the rotor disk are engaged by moving the seal plate movement restricting portion along the axial direction, Switching between the seal plate non-restricted state and the seal plate restricted state.
- the seal plate non-restricted state and the seal plate restriction are achieved by moving the seal plate movement restriction portion along the axial direction.
- the state can be switched.
- seal plate non-restricted state and the seal plate restricted state are switched by switching the engagement state and the non-engagement state between the seal plate movement restricting portion and the rotor disk, the seal plate and the rotor blade are moved at an unintended timing.
- the effect which suppresses switching between an engagement state and a non-engagement state can be heightened.
- the seal plate movement restriction portion and The seal plate movement restricting portion is moved between a position where the rotor disk does not overlap in the axial direction and a position where the seal plate movement restricting portion and the rotor disk overlap in the axial direction. Switching between the plate non-regulated state and the seal plate restricted state.
- the seal plate movement restriction portion By rotating the seal plate movement restricting portion in a state where the other of the female screw or the male screw provided on the seal plate is engaged with one of the provided female screw or the male screw, the seal plate non-restricted state And the seal plate regulation state.
- the seal plate non-regulated state and the seal plate restricted state can be obtained by rotating the seal plate movement restricting portion while the male screw and the female screw are screwed together. Therefore, even if an axial force acts on the seal plate movement restricting portion, it is difficult to switch between the seal plate non-regulated state and the seal plate restricted state. For this reason, the effect which suppresses switching the engagement state and non-engagement state of a seal plate and a moving blade at an unintended timing can be heightened.
- seal plate non-restricted state and the seal plate restricted state are not switched unless the seal plate movement restricting portion is rotated, for example, the work of moving the seal plate in the radial direction while maintaining the seal plate non-restricted state is easy. It becomes.
- the seal plate movement restriction portion is provided in the seal plate restriction state switching step.
- the seal plate restriction state is switched to the seal plate non-regulation state by moving the seal plate movement restriction portion along the axial direction against the urging force of the urging portion to be urged.
- the gas turbine disassembly / assembly method described in (8) is the disassembly / assembly method described in (7) above, the loosening of the screws can be suppressed by the urging force of the urging portion. Also in this respect, it is possible to enhance the effect of suppressing the switching between the engaged state and the disengaged state between the seal plate and the moving blade at an unintended timing.
- the seal plate movement restriction portion and the seal plate are By switching between a non-engaged state and a state in which the seal plate movement restricting portion and the seal plate are engaged, the seal plate non-restricted state and the seal plate restricted state are switched.
- the seal plate non-regulated state and the seal plate restricted state are switched by switching the engagement state and the non-engagement state between the seal plate movement restriction portion and the seal plate. Therefore, the effect of suppressing the switching between the engaged state and the disengaged state of the seal plate and the moving blade at an unintended timing can be enhanced.
- the seal plate movement restricting portion is a seal plate dropping pin extending along the axial direction
- the tip of the seal plate retaining pin and the recess formed in the seal plate are not engaged, and the tip of the seal plate retaining pin and the recess formed in the seal plate Is switched between the engagement state and the seal plate non-restriction state and the seal plate restriction state.
- the seal plate non-restricted state and the seal plate restricted state are obtained by linearly moving the seal plate retaining pin along the axial direction with respect to the recess. Therefore, the switching operation between the seal plate non-restricted state and the seal plate restricted state is easy.
- the seal plate movement restriction portion is a seal plate drop-off piece, and in the seal plate restriction state switching step, By removing the sealing plate drop-off piece attached to the recess formed in the seal plate from the recess, or by attaching the seal plate fall-off piece to the recess, the seal plate non-regulated state and the Switch between seal plate regulation states.
- a female screw provided in the rotor disk is attached to the seal plate movement restriction portion.
- the seal plate movement restricting portion is rotated to switch between the seal plate non-restricted state and the seal plate non-restricted state.
- the seal plate non-regulated state and the seal plate restricting state are obtained by rotating the seal plate movement restricting portion in a state where the male screw and the female screw are screwed together. Therefore, even if an axial force acts on the seal plate movement restricting portion, it is difficult to switch between the seal plate non-regulated state and the seal plate restricted state. For this reason, the effect which suppresses switching the engagement state and non-engagement state of a seal plate and a moving blade at an unintended timing can be heightened.
- seal plate non-restricted state and the seal plate restricted state are not switched unless the seal plate movement restricting portion is rotated, for example, the work of moving the seal plate in the radial direction while maintaining the seal plate non-restricted state is easy. It becomes.
- the seal plate and the seal plate movement restricting portion are integrally configured.
- the seal plate movement restriction portion is plastically deformed to switch between the seal plate non-restriction state and the seal plate restriction state.
- the seal plate assembly having a simple configuration is provided.
- the switching operation between the seal plate non-regulated state and the seal plate restricted state can be easily performed.
- the seal plate movement restriction portion in the seal plate restriction state switching step, the seal plate movement restriction portion The seal plate non-restricted state and the seal plate restriction are achieved by rotating the seal plate movement restricting portion in a state where the female screw provided in the through hole penetrating the seal plate is screwed to the provided male screw. Switch between states.
- the seal plate non-regulated state and the seal plate restricted state are obtained by rotating the seal plate movement restricting portion in a state where the male screw and the female screw are screwed together. Therefore, even if an axial force acts on the seal plate movement restricting portion, it is difficult to switch between the seal plate non-regulated state and the seal plate restricted state. For this reason, the effect which suppresses switching the engagement state and non-engagement state of a seal plate and a moving blade at an unintended timing can be heightened.
- seal plate non-restricted state and the seal plate restricted state are not switched unless the seal plate movement restricting portion is rotated, for example, the work of moving the seal plate in the radial direction while maintaining the seal plate non-restricted state is easy. It becomes.
- the seal plate in the gas turbine disassembly and assembly method according to any one of the above (1) to (14), the seal plate is moved in the radial direction so that the seal plate is moved. Is a blade control state that switches between a blade non-restricted state where the movement of the blade is not restricted along the axial direction and a blade restriction state where the seal plate restricts the movement of the blade along the axial direction. A switching step is further provided.
- the sealing plate regulating state switching step described in (1) since the sealing plate regulating state and the sealing plate non-regulating state are sandwiched between the rotor disks. It becomes easy to switch appropriately from the opposite side to the seal plate. Therefore, when disassembling or assembling the gas turbine, it is easy to appropriately switch between the blade non-restricted state and the blade restricted state from the side opposite to the seal plate with the rotor disk interposed therebetween.
- a jig in the gas turbine disassembly and assembly method according to (15), a jig can be engaged with a surface of the seal plate facing the other side in the axial direction.
- a jig engaging concave part or a jig engaging convex part is formed, and in the moving blade regulation state switching step, the jig is engaged with the jig engaging concave part or the jig engaging convex part.
- the sealing plate can be easily moved in the radial direction by the jig in the blade control state switching step. Therefore, when disassembling or assembling the gas turbine, it is easy to appropriately switch between the blade non-restricted state and the blade restricted state from the side opposite to the seal plate with the rotor disk interposed therebetween.
- the moving blade that restricts the movement of the sealing plate along the axial direction of the moving blade only by operation from the opposite side of the sealing plate with the rotor disk interposed therebetween. It is possible to appropriately and easily switch between the restricted state and the moving blade non-fitted state where the moving blade and the rotor disk are not fitted.
- a seal plate assembly is a seal plate assembly for a moving blade of a gas turbine, and is configured to be provided on one side in an axial direction with respect to a rotor disk. And a seal plate movement restricting portion for restricting the radial movement of the rotor disk of the seal plate with respect to the rotor disk, wherein the seal plate movement restricting portion includes the seal plate movement restricting portion. At least a part of the portion protrudes from the seal plate toward the other side in the axial direction to restrict the radial movement of the seal plate, and restricts the radial movement of the seal plate It is configured to be switchable between the non-regulated state of the seal plate.
- sealing is performed from the other side in the axial direction, that is, from the protruding direction side of the seal plate movement restricting portion with respect to the seal plate (in the axial direction from the rotor disk side to the seal plate).
- the plate movement restricting portion By operating the plate movement restricting portion, it is possible to switch between the seal plate non-restricted state and the seal plate restricted state.
- one side in the axial direction is a downstream side in the axial direction, and the other side in the axial direction is in the axial direction. It is upstream.
- the seal plate assembly described in (19) above when the gas turbine is disassembled or assembled, the seal plate assembly provided on the downstream side of the rotor disk is moved from the upstream side of the rotor disk. It is possible to switch between the seal plate restriction state and the seal plate non-restriction state while visually confirming whether the state of the restriction portion is the seal plate restriction state or the seal plate non-restriction state. Thereby, it becomes easy for the seal plate assembly provided on the downstream side of the rotor disk to appropriately switch between the seal plate restricted state and the seal plate non-restricted state from the upstream side of the rotor disk.
- the seal plate assembly provided on the downstream side of the rotor disk has an engagement state and a non-engagement state between the seal plate and the rotor blade from the upstream side of the rotor disk. It becomes easy to switch appropriately.
- the seal plate in the seal plate assembly according to (18) or (19), includes one of an internal thread and an external thread extending along the axial direction,
- the seal plate movement restricting portion includes the other of the female screw or the male screw that is engaged with one of the female screw or the male screw.
- the seal plate non-restricted state and the seal plate restricted state are switched by rotating the seal plate movement restricting portion while the male screw and the female screw are screwed together. Even if an axial force acts on the seal plate movement restricting portion, it is difficult to switch between the seal plate non-restricted state and the seal plate restricted state. For this reason, the effect which suppresses switching the engagement state and non-engagement state of a seal plate and a moving blade at an unintended timing can be heightened.
- seal plate non-restricted state and the seal plate restricted state are not switched unless the seal plate movement restricting portion is rotated, for example, the work of moving the seal plate in the radial direction while maintaining the seal plate non-restricted state is easy. It becomes.
- the seal plate assembly according to the above (20) further includes a washer disposed between the seal plate movement restricting portion and the seal plate.
- an end portion on the other side in the axial direction of the seal plate movement restriction portion is And a jig engaging portion with which a jig for rotating the seal plate movement restricting portion can be engaged.
- the seal plate non-restricted state and the seal plate restricted state are obtained by engaging the jig with the jig engaging portion and rotating the seal plate movement restricting portion. And can be switched.
- the seal plate movement restricting portion is biased to the other side in the axial direction.
- An urging unit is further provided.
- the seal plate assembly described in (23) is the seal plate assembly described in (20)
- the loosening of the screw can be suppressed by the biasing force of the biasing portion. Even in this respect, it is possible to enhance the effect of suppressing the switching between the engaged state and the disengaged state between the seal plate and the moving blade at an unintended timing.
- the urging portion includes a disc spring, a coil spring, or a plate spring.
- the seal plate assembly described in (24) above when a disc spring is used as the biasing portion, the size of the biasing portion in the axial direction is not easily reduced even if a crack or the like occurs in the biasing portion.
- the seal plate movement restricting portion can be biased relatively stably.
- the seal plate in the seal plate assembly according to any one of (18) to (24), includes: a plate-like portion extending in the radial direction; A storage chamber forming portion that forms a storage chamber for at least partially storing the seal plate movement restricting portion, and the seal plate movement restricting portion is disposed on the other side in the axial direction of the storage chamber forming portion. A part of the seal plate movement restricting portion is configured to protrude from the formed opening.
- the storage chamber forming portion is configured to protrude to the one side in the axial direction with respect to the plate-like portion. Is done.
- the effect exerted by the seal plate assembly described in the above (25) can be obtained while ensuring a space in which the seal plate movement restricting portion can move.
- the storage chamber forming portion does not exist in a range where the seal plate movement restricting portion exists in the circumferential direction of the rotor disk. In both ranges, it is configured to project to the one side in the axial direction with respect to the plate-like portion.
- the storage chamber forming portion is formed so as to protrude to one side in the axial direction only in the range where the seal plate movement restricting portion exists in the circumferential direction, the storage chamber forming portion is rotated during the rotation of the gas turbine rotor accompanying the operation of the gas turbine. A windage loss caused by the protruding portion of the gas occurs, and the efficiency of the gas turbine is reduced.
- the storage chamber forming portion is 80% or more of the seal plate in the circumferential direction. Over the range, it is configured to protrude to the one side in the axial direction with respect to the plate-like portion.
- the storage chamber forming portion is configured to protrude to one side in the axial direction with respect to the plate-like portion over most of the circumferential direction,
- the increase in the windage loss can be suppressed as compared with the case where the protruding range of the storage chamber forming portion in the circumferential direction is local.
- the end surface on the one side in the axial direction of the storage chamber forming portion is It is formed along a plane orthogonal to the axial direction.
- the storage chamber forming portion is closer to an outer side in the radial direction of the seal plate. Is provided.
- the center of gravity of the seal plate can be set to the outside in the radial direction.
- the storage chamber forming portion is formed at a position different from the storage chamber.
- the rigidity of the seal plate can be adjusted by providing the lightening portion.
- the natural frequency of the moving blade can be adjusted by adjusting the rigidity of the seal plate. By adjusting the natural frequency of the moving blade, it is possible to suppress the occurrence of resonance of the moving blade.
- the plate-like portion in the seal plate assembly according to any one of (25) to (31), includes two or more portions having different thicknesses.
- the rigidity of the seal plate can be adjusted by providing two or more portions having different thicknesses in the plate-like portion.
- the natural frequency of the moving blade can be adjusted by adjusting the rigidity of the seal plate. By adjusting the natural frequency of the moving blade, it is possible to suppress the occurrence of resonance of the moving blade.
- one of the seal plate or the seal plate movement restricting portion is arranged in the axial direction.
- the seal plate movement restricting portion includes a flange portion and a protruding portion protruding from the flange portion toward the other side in the axial direction, and the seal plate assembly is disposed on the outer peripheral side of the cylindrical portion.
- a disc spring configured to bias the flange toward the other side in the axial direction, and the seal plate moves the flange toward the other side in the axial direction.
- the axial direction relative to the buttocks to regulate comprising a collar portion movement restricting portion provided on the other side.
- the seal plate non-restricted state and the seal plate restricted state are switched by rotating the seal plate movement restricting portion while the male screw and the female screw are screwed together. Even if an axial force acts on the seal plate movement restricting portion, it is difficult to switch between the seal plate non-restricted state and the seal plate restricted state. For this reason, the effect which suppresses switching the engagement state and non-engagement state of a seal plate and a moving blade at an unintended timing can be heightened.
- the seal plate non-restricted state and the seal plate restricted state are not switched unless the seal plate movement restricting portion is rotated, for example, the work of moving the seal plate in the radial direction while maintaining the seal plate non-restricted state is easy. It becomes. Moreover, even if a force weaker than the urging force of the urging portion acts on the seal plate movement restricting portion, the seal plate restricting state does not switch to the seal plate non-regulating state. For this reason, the effect which suppresses switching the engagement state and non-engagement state of a seal plate and a moving blade at an unintended timing can be heightened.
- a surface of the seal plate facing the other side in the axial direction includes: At least one elongated hole having a length in the circumferential direction of the rotor disk longer than a length in the radial direction of the rotor disk is formed.
- the moving blade is inserted into a blade groove extending in a direction inclined with respect to the axial direction of the rotor disk. Therefore, when the rod-shaped jig is passed through the space formed between the moving blades on the radially inner side from the moving blade platform and the seal plate is moved in the radial direction by the jig, the shape described in (34) above If it is a long hole which has, a rod-shaped jig
- a gas turbine rotor comprises: a rotor disk; a plurality of moving blades mounted on the rotor disk; and at least one seal plate assembly for the moving blades.
- the at least one seal plate assembly includes the seal plate assembly according to any one of (18) to (34).
- the rotor disk is used when the gas turbine is disassembled or assembled. It is easy to appropriately switch the engagement state and the non-engagement state between the seal plate and the rotor blade from the opposite side of the seal plate.
- a locking plate for holding the seal plate between the rotor disk and an end surface of the rotor disk; And a locking piece configured to be pressed against the end face side of the.
- the locking piece And the switching operation can be easily performed by attaching or removing the locking plate.
- a gas turbine rotor includes a rotor disk, a plurality of moving blades mounted on the rotor disk, and at least one seal plate assembly for the moving blades.
- the at least one seal plate assembly includes a pair of seal plate assemblies adjacent to each other in the circumferential direction of the rotor disk, and each of the pair of seal plate assemblies includes the above (18) to (34).
- the seal plate assembly according to any one of the above.
- each of the pair of seal plate assemblies is appropriately switched between the engagement state and the non-engagement state of the seal plate and the rotor blade from the opposite side of the seal plate with the rotor disk interposed therebetween. It becomes easy.
- a gas turbine rotor comprises a rotor disk, a plurality of moving blades attached to the rotor disk, and at least one seal plate assembly for the moving blades.
- the at least one seal plate assembly includes a plurality of seal plate assemblies arranged at symmetrical positions with respect to a rotation center of the rotor disk, and the plurality of seal plate assemblies arranged at the symmetrical positions. Each is the seal plate assembly according to any one of (18) to (34).
- the plurality of seal plate assemblies arranged at symmetrical positions with respect to the rotation center of the rotor disk are described in any one of (18) to (34). Therefore, when disassembling or assembling the gas turbine, each of the plurality of seal plate assemblies is engaged with the seal plate and the moving blade from the opposite side of the seal plate across the rotor disk. It becomes easy to appropriately switch between the state and the non-engaged state.
- a gas turbine according to at least one embodiment of the present invention includes the gas turbine rotor according to any one of (35) to (38) and a casing that covers the gas turbine rotor.
- the gas turbine described in (39) includes the gas turbine rotor described in any one of (35) to (38) above, the rotor disk is sandwiched when the gas turbine is disassembled or assembled. Thus, it becomes easy to appropriately switch the engaged state and the disengaged state between the seal plate and the moving blade from the side opposite to the seal plate.
- the gas turbine includes: a seal plate provided on one side in the axial direction with respect to the rotor disk; and the seal plate for the rotor disk.
- a seal plate movement restricting portion for restricting movement of the rotor disk in the radial direction, and the manufacturing method operates the seal plate movement restricting portion from the other side in the axial direction. From the seal plate non-regulated state in which the portion does not restrict the radial movement of the seal plate, at least a part of the seal plate movement restricting portion protrudes from the seal plate toward the other side in the axial direction.
- a sealing plate restriction state switching step for switching to a sealing plate restriction state for restricting the radial movement of the plate;
- the seal plate restriction state switching step in the seal plate restriction state switching step, the other side in the axial direction, that is, the protruding direction side of the seal plate movement restriction portion with respect to the seal plate (the seal plate in the axial direction).
- the seal plate movement restricting portion by operating the seal plate movement restricting portion from the rotor disk side, the seal plate non-regulated state and the seal plate restricting state can be switched.
- the seal plate non-restricted state can be switched to the seal plate restricted state. Thereby, it becomes easy to appropriately switch the seal plate non-restricted state to the seal plate restricted state from the side opposite to the seal plate across the rotor disk.
- a disassembly and assembly method, a seal plate assembly, and a gas turbine rotor including the same are provided.
- FIG. 2 is a diagram illustrating a schematic configuration of a moving blade 22.
- FIG. 3 is a diagram showing a schematic configuration of a blade groove 26 formed on the outer peripheral surface 24 of the gas turbine rotor 16. It is a figure for demonstrating the structure of the seal plate assembly 42 (42A) which concerns on one Embodiment, and has shown partially the cross section of the gas turbine rotor 16 along an axial direction. It is a figure for demonstrating the structure of the seal plate assembly 42 (42A) which concerns on one Embodiment, and has shown partially the cross section of the gas turbine rotor 16 along an axial direction.
- FIG. 12 is a schematic view showing a BB cross section in FIG. 11. It is a figure which shows arrangement
- an expression indicating that things such as “identical”, “equal”, and “homogeneous” are in an equal state not only represents an exactly equal state, but also has a tolerance or a difference that can provide the same function. It also represents the existing state.
- expressions representing shapes such as quadrangular shapes and cylindrical shapes represent not only geometrically strict shapes such as quadrangular shapes and cylindrical shapes, but also irregularities and chamfers as long as the same effects can be obtained. A shape including a part or the like is also expressed.
- the expressions “comprising”, “comprising”, “comprising”, “including”, or “having” one constituent element are not exclusive expressions for excluding the existence of the other constituent elements.
- FIG. 1 is a schematic cross-sectional view along the rotation axis of a gas turbine 2 according to an embodiment of the present invention.
- the gas turbine 2 compresses the outside air to generate compressed air, and mixes fuel from a fuel supply source (not shown) with the compressed air and burns to generate combustion gas.
- a combustor 6 and a turbine 8 driven by combustion gas are provided.
- the turbine 8 includes a turbine casing 10, a plurality of stationary blade rows 12 fixed inside the turbine casing 10, and a gas turbine rotor 16 that includes a plurality of moving blade rows 14 and rotates within the turbine casing 10.
- the gas turbine rotor 16 includes a plurality of rotor disks 18 that are aligned in the axial direction and connected to each other, and a plurality of blade rows 14 are mounted on each of the plurality of rotor disks 18.
- the stationary blade rows 12 and the moving blade rows 14 are alternately provided along the axial direction of the gas turbine rotor 16.
- Each of the stationary blade rows 12 has a plurality of stationary blades 20 arranged in the circumferential direction of the gas turbine rotor 16, and each of the plurality of stationary blades 20 is fixed inside the turbine casing 10.
- Each of the moving blade rows 14 includes a plurality of moving blades 22 arranged in the circumferential direction of the gas turbine rotor 16, and each of the plurality of moving blades 22 is mounted on the outer peripheral surface of the rotor disk 18.
- the axial direction of the gas turbine rotor 16 (axial direction of the rotor disk 18) is simply referred to as “axial direction”, and the circumferential direction of the gas turbine rotor 16 (circumferential direction of the rotor disk 18) is simply “circumferential direction”.
- the radial direction of the gas turbine rotor 16 (the radial direction of the rotor disk 18) is simply referred to as the “radial direction”.
- the upstream side and the downstream side of the combustion gas flow in the axial direction are simply referred to as “the upstream side in the axial direction” and “the downstream side in the axial direction”, respectively.
- FIG. 2 is a diagram showing a schematic configuration of the moving blade 22.
- FIG. 3 is a view showing a schematic configuration of the blade groove 26 formed on the outer peripheral surface 24 of the gas turbine rotor 16.
- the rotor blade 22 includes a blade body 28, a platform 30 provided inside the blade body 28 in the radial direction, a shank 32 provided inside the platform 30 in the radial direction, and a radial direction. And a blade root 34 provided inside the shank 32.
- An outer groove 36 that is recessed outward in the radial direction and extends in the circumferential direction is formed on the inner peripheral surface of the downstream end portion in the axial direction of the platform 30.
- the cross-sectional shape of the blade root 34 (the cross-sectional shape orthogonal to the cord direction of the blade body 28) is such that the widened portion whose width in the circumferential direction increases toward the inner side in the radial direction and the reduced width portion where the width decreases. It has a repeated Christmas tree shape.
- a gap 38 through which cooling air for cooling the moving blade 22 flows is provided between the shanks 32 of the adjacent moving blades 22.
- a blade groove 26 into which a blade root 34 of the rotor blade 22 is fitted is formed on the outer peripheral surface 24 of the rotor disk 18.
- the blade groove 26 extends from the upstream end to the downstream end of the rotor disk 18 in the axial direction, and has a cross-sectional shape corresponding to the Christmas tree shape of the blade root 34.
- the circumferential position and the radial position of the moving blade 22 are fixed by inserting the blade root 34 of the moving blade 22 into the blade groove 26 along the axial direction and fitting into the blade groove 26.
- the rotor disk 18 is formed with an inner groove 40 which is recessed inward in the radial direction and extends in the circumferential direction on the downstream side of the blade groove 26.
- the outer peripheral surface 24 of the rotor disk 18 means a surface of the rotor disk 18 where the blade groove 26 is formed, and does not include a surface where the inner groove 40 is formed. To do.
- FIG. 4 is a view for explaining the configuration of the seal plate assembly 42 (42A) according to the embodiment, and partially shows a cross section of the gas turbine rotor 16 along the axial direction.
- the gas turbine rotor 16 includes a plurality of seal plate assemblies 42 (42 ⁇ / b> A) for the plurality of rotor blades 22.
- the seal plate assembly 42 (42 ⁇ / b> A) includes a seal plate 44 provided on the downstream side in the axial direction with respect to the rotor disk 18, and a seal plate for the rotor disk 18. And a seal plate movement restricting portion 46 for restricting the movement of 44 in the radial direction.
- the seal plate movement restricting portion 46 is configured as a plug 45.
- the seal plate 44 is configured to restrict movement of the moving blade 22 along the axial direction by engaging the radially outer end 48 so as to fit into the outer groove 36 of the moving blade 22. Yes. Further, the outer groove 36 restricts the radial movement of the seal plate 44 so that the seal plate 44 does not move outward in the radial direction.
- the seal plate 44 has a first surface 50 and a second surface 52 that face in opposite directions. The first surface 50 faces the upstream side in the axial direction, and the second surface 52 faces the downstream side in the axial direction.
- the seal plate movement restricting portion 46 is a seal plate restricting state in which at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 toward the upstream side in the axial direction to restrict the radial movement of the seal plate 44 (see FIG. 4) and a seal plate non-regulated state (see FIG. 5) in which the radial movement of the seal plate 44 is not restricted.
- the seal plate movement restricting portion 46 is configured as a movable portion that can change the amount of protrusion from the first surface 50.
- the seal plate movement restricting portion 46 restricts the movement of the seal plate 44 inward in the radial direction by engaging the peripheral surface thereof with the outer peripheral surface 24 of the rotor disk 18.
- the protruding direction (moving direction) of the seal plate movement restricting portion 46 does not have to be parallel to the axial direction as long as it includes an axial component.
- the seal plate movement restricting portion 46 may protrude (move) along the extending direction of the blade groove 26.
- the gas turbine rotor 16 includes a locking plate 56 for holding the seal plate 44 between the downstream end surface 54 of the rotor disk 18 and the locking plate 56 on the end surface 54 side of the rotor disk 18. And a locking piece 58 configured to be pressed against. The locking plate 56 and the locking piece 58 are held in the inner groove 40 of the rotor disk 18.
- the locking plate 56 includes a plate body portion 60 that extends in the radial direction along the downstream end surface 54 of the gas turbine rotor 16, and a rising portion 62 that extends downstream from the radially outer end portion of the plate body portion 60. And a wrap portion 66 that extends radially outward from the downstream end of the rising portion 62 and overlaps with the radially inner end 64 of the seal plate 44 in the radial direction.
- the locking plate 56 has a crank shape in cross section.
- the wrap portion 66 is provided with a gap with respect to the end surface 54 on the downstream side of the gas turbine rotor 16, and the radially inner end portion 64 of the seal plate 44 is held in the gap. As shown in FIG.
- A is larger than the depth B of the outer groove 36 (the depth based on the downstream edge 63 in the outer groove 36).
- the locking piece 58 includes a receiving plate 68 and a pressing screw 70.
- the receiving plate 68 is provided downstream of the plate body 60 in the axial direction so as to be adjacent to the plate body 60, and extends in the radial direction along the plate body 60.
- the pressing screw 70 is screwed into the receiving plate 68.
- the receiving plate 68 and the locking plate 56 are separated from each other in the axial direction, and the receiving plate 68 and the locking plate 56 are brought into the inner side by a tensile force. It is fixed with respect to the side groove 40.
- FIG. 6 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 in the seal plate assembly 42 (42A).
- the seal plate 44 includes a plate-like portion 72 extending in the radial direction and a storage chamber forming portion 76 that forms a storage chamber 74 for at least partially storing the seal plate movement restricting portion 46.
- the seal plate movement restricting portion 46 is a part of the seal plate movement restricting portion 46 through an opening 78 formed in an upstream portion (the first surface 50 of the seal plate 44) in the axial direction of the storage chamber forming portion 76. Is configured to protrude.
- the storage chamber forming portion 76 is provided on the outer side in the radial direction of the seal plate 44, and protrudes toward the downstream side in the axial direction (in the direction toward the second surface 52) with respect to the plate-like portion 72. It is configured.
- the accommodating chamber forming portion 76 of the seal plate 44 includes a cylindrical portion 82 extending along the axial direction from the downstream wall portion 80 in the axial direction toward the upstream side, and on the inner peripheral surface of the cylindrical portion 82.
- the seal plate movement restricting portion 46 includes a male screw 86 that is screwed into the female screw 84 at the downstream end in the axial direction.
- the seal plate movement restricting portion 46 is provided adjacent to the upstream side of the male screw 86 in the axial direction and protrudes toward the upstream side in the axial direction from the flange 88 that protrudes toward the radial direction of the male screw 86. And a projecting portion 90.
- the protrusion 90 of the seal plate movement restricting portion 46 can be engaged with a jig for rotating the seal plate movement restricting portion 46.
- a tool engaging portion 92 is provided.
- the jig engaging portion 92 is formed as a recess having a non-circular (for example, hexagonal) cross-sectional shape on a surface facing the same direction as the first surface 50 of the protruding portion 90 of the seal plate movement restricting portion 46. Yes.
- the seal plate assembly 42 (42A) includes an urging portion 94 provided on the outer peripheral side of the cylindrical portion 82 and configured to urge the flange portion 88 toward the upstream side in the axial direction.
- the urging portion 94 urges the seal plate movement restricting portion 46 in a direction in which the seal plate movement restricting portion 46 protrudes from the first surface 50.
- the urging portion 94 is constituted by, for example, a disc spring, a coil spring, or a leaf spring. When a disc spring is used as the urging portion 94, the size of the urging portion 94 in the axial direction is not easily reduced even if a crack or the like occurs in the urging portion 94, so that the seal plate movement restricting portion 46 can be made relatively stable. Can be energized.
- an annular spacer 193 is provided on the outer peripheral side of the cylindrical portion 82. The annular spacer 193 is sandwiched between the disc spring as the biasing portion 94 and the wall portion 80.
- the storage chamber forming portion 76 includes a flange movement restricting portion 96 provided on the upstream side in the axial direction with respect to the flange 88 so as to restrict the movement of the flange 88 upstream in the axial direction.
- the opening portion 78 described above is provided in the collar portion movement restricting portion 96, and in a state where the collar portion 88 is in contact with the collar portion movement restricting portion 96, a part of the projecting portion 90 extends in the axial direction from the opening portion 78. It is configured to protrude upstream.
- FIG. 7 is a schematic view of the arrangement of the plurality of seal plate assemblies 42 (42A) viewed from the downstream side in the axial direction.
- the plurality of seal plate assemblies 42 (42A) are arranged in the circumferential direction, and the circumferential ends of the seal plates 44 of the respective seal plate assemblies 42 (42A) are adjacent in the circumferential direction.
- An overlapping structure having a stepped portion 98 that overlaps with a circumferential end portion of another seal plate 44 (or a seal plate 110 described later) is formed. Thereby, the cooling air in the gap 38 is prevented from leaking into the space on the downstream side in the axial direction of the rotor disk 18 from between the circumferential ends of the sealing plates 44 adjacent in the circumferential direction.
- the gap 38 is formed between the region 128 other than the blade groove 26 in the outer peripheral surface 24 of the rotor disk 18 and the platform 30 of the rotor blade 22.
- the jig engaging portion 92 of the seal plate movement restricting portion 46 is provided at a position overlapping the gap 38 when viewed in the axial direction.
- a position P is the outermost position in the radial direction in the portion of the outer peripheral surface 24 of the rotor disk 18 that is fitted with the moving blade 22
- the blade groove 26 is larger in diameter than the position P in the outer peripheral surface 24. It means the inner part in the direction.
- the region 128 means a portion of the outer peripheral surface 24 that is outside in the radial direction from the position P.
- a protrusion 100 is provided at the radially outer end 48 (upper edge) of the seal plate 44 so as to protrude radially outward.
- the protrusion 100 is provided on the opposite side of the seal plate movement restricting portion 46 across the center of the seal plate 44 in the circumferential direction.
- the radially outer end 48 of the seal plate 44 is fitted into the outer groove 36 (see FIG. 6) together with the protrusion 100.
- the protrusion 100 of the seal plate 44 hits a step (not shown) provided in the outer groove 36 and restricts the movement of the seal plate 44 in the circumferential direction.
- the protrusion 100 may be on the same side as the seal plate movement restricting portion 46 with respect to the center of the seal plate 44 in the circumferential direction, or at the center of the seal plate 44 in the circumferential direction. Also good. Further, the seal plate movement restricting portion 46 may be at the center of the seal plate 44 in the circumferential direction.
- FIG. 8 is a schematic view of the seal plate assembly 42 (42A) viewed from the upstream side in the axial direction.
- FIG. 9 is a schematic view of the seal plate assembly viewed from the downstream side in the axial direction.
- FIG. 10 is a schematic view showing the AA cross section in FIG.
- the seal plate 44 is formed in a square shape when viewed in the axial direction, the long side direction of the seal plate 44 coincides with the circumferential direction, and the short side direction of the seal plate 44 is the radial direction. The thickness direction of the seal plate 44 coincides with the axial direction.
- the width direction of the seal plate 44 is a direction orthogonal to each of the protruding direction (radial direction) of the protrusion 100 of the seal plate 44 and the thickness direction (axial direction) of the seal plate 44. Further, the width direction of the seal plate 44 extends in the extending direction (radial direction) of the stepped portion 98 provided at both ends in the circumferential direction of the seal plate 44 so as to overlap with the adjacent seal plate 44 and the seal plate movement restricting portion. This is a direction orthogonal to each of the 46 protruding directions (axial directions).
- the storage chamber forming portion 76 has a range in which the seal plate movement restricting portion 46 exists in the circumferential direction (width direction of the seal plate 44) (see FIG. 6) and a range in which it does not exist (see FIG. 10). Both are configured so as to protrude toward the downstream side in the axial direction (the direction in which the second surface 52 faces) with respect to the plate-like portion 72. As shown in FIGS. 6 and 10, the end surface 102 on the downstream side in the axial direction of the storage chamber forming portion 76 is formed along a plane orthogonal to the axial direction. Further, as shown in FIG.
- the storage chamber forming portion 76 is downstream in the axial direction with respect to the plate-like portion 72 over a range W1 of 80% or more of the existence range W0 of the seal plate 44 in the circumferential direction. It is comprised so that it may protrude to the side.
- the accommodation chamber forming portion 76 is downstream in the entire circumferential range W1 except the range where the stepped portion 98 on one side in the circumferential direction is formed on the downstream surface of the seal plate 44. It is configured to protrude uniformly to the side.
- the plate-like portion 72 of the seal plate 44 includes two or more portions having different thicknesses.
- the thickness t1 of the radially inner end portion 64 of the plate-like portion 72 is the thickness 105 of the portion 105 between the radially inner end portion 64 and the storage chamber forming portion 76 of the plate-like portion 72. It is larger than t2.
- the storage chamber forming portion 76 has at least one thinning portion 104 (first thinning portion) at a position different from the storage chamber 74.
- at least one of the lightening portions 104 includes a plurality of lightening portions 104 provided at positions different from the accommodation chamber 74 in the circumferential direction, and each of the lightening portions 104 is accommodated in the radial direction. It is provided in a range overlapping with the chamber 74.
- the circumferential size S1 of the thinned portion 104 is larger than the circumferential size S2 of the protruding portion 90 of the seal plate movement restricting portion 46, and the radial size S3 of the thinned portion 104 is the seal.
- S1, S2, S3, and S4 may be different from the magnitude relationship described above, and the rotor blade 22 may be adjusted by appropriately adjusting the size, shape, number, or arrangement of the lightening portions.
- the natural frequency can be adjusted by adjusting the rigidity.
- the first surface 50 of the seal plate 44 is formed with a jig engaging recess 108 with which a jig can be engaged.
- the jig engaging recess 108 is configured as at least one elongated hole having a circumferential length S5 longer than a radial length S6.
- one jig engaging recess 108 is provided at one end and the other end of the seal plate 44 in the circumferential direction.
- these jig engaging recesses 108 are formed as gaps 38 (between the shanks 32) between the region of the outer peripheral surface 24 of the rotor disk 18 other than the blade groove 26 and the platform of the rotor blade 22.
- the first surface 50 of the seal plate 44 may be formed with a jig engaging convex portion with which a jig can be engaged.
- the moving blade is inserted into a blade groove extending in a direction inclined with respect to the axial direction of the rotor disk. For this reason, for example, when a stick-shaped jig is passed through the gap 38 between the moving blades 22 on the radially inner side of the platform 30 of the moving blade 22 shown in FIG. As described above, it is preferable to configure the jig engaging recess 108 as a long hole in which the length S5 in the circumferential direction is longer than the length S6 in the radial direction.
- FIG. 11 is a schematic view of the seal plate 110 according to one embodiment viewed from the upstream side in the axial direction.
- FIG. 12 is a schematic view of the seal plate 110 according to the embodiment as viewed from the downstream side in the axial direction.
- FIG. 13 is a schematic view showing a BB cross section in FIG.
- FIG. 14 is a diagram illustrating a circumferential arrangement of the seal plate assembly 42 and the seal plate 110 in the gas turbine rotor 16 according to the embodiment.
- the gas turbine rotor 16 is provided with a seal plate movement restricting portion 46 at a position different from the seal plate assembly 42 in the circumferential direction together with the seal plate assembly 42.
- a plurality of seal plates 44 that are not provided are provided.
- the seal plate 110 projects to the plate-like portion 112 and to the downstream side in the axial direction with respect to the plate-like portion 112 (the direction in which the second surface 52 of the seal plate 44 faces).
- a convex portion 114 configured as described above.
- the convex portion 114 has at least one thinning portion 116 (second thinning portion) having a dimension different from that of the above-described thinning portion 104.
- at least one of the lightening portions 116 includes a plurality of lightening portions 116 arranged in the circumferential direction.
- the size S7 in the radial direction of each of the lightening portions 116 is larger than the size S8 in the circumferential direction of each of the lightening portions. Further, the dimension h2 in the radial direction of the seal plate 110 excluding the protrusion 122 described later is larger than the dimension h1 in the radial direction of the seal plate 44 excluding the protrusion 100.
- the plurality of seal plates 110 are arranged in the circumferential direction, and an end portion of each seal plate 110 in the circumferential direction has a stepped portion 118 that overlaps with a circumferential end portion of another seal plate 110 adjacent in the circumferential direction. Is made. This prevents the cooling air in the gap 38 from leaking into the combustion gas from between the circumferential ends of the seal plates 110 adjacent in the circumferential direction.
- a protrusion 122 protruding outward in the radial direction is provided at the radially outer end 120 of the seal plate 110.
- the radially outer end 120 of the seal plate 110 is fitted into the outer groove 36 (see FIG. 6) of the rotor blade 22 together with the protrusion 122.
- the protrusion 122 of the seal plate 110 hits a step (not shown) provided in the outer groove 36 to restrict the circumferential movement of the seal plate 110.
- the end surface 118 on the downstream side in the axial direction of the convex portion 114 is formed along a plane orthogonal to the axial direction.
- the convex portion 114 is on the downstream side in the axial direction with respect to the plate-like portion 72 over a range W3 of 80% or more of the existence range W2 of the seal plate 44 in the circumferential direction. It is comprised so that it may protrude.
- the convex portion 114 protrudes to the downstream side over the entire circumferential range W ⁇ b> 3 excluding the range where the step portion on one side in the circumferential direction is formed on the downstream surface of the seal plate 110. Is configured to do.
- the plate-like portion 112 of the seal plate 110 includes two or more portions having different thicknesses.
- the thickness t3 of the radially inner end portion 124 of the plate-like portion 112 is equal to the above-described thickness t1, and the radial inner end portion 124 of the plate-like portion 112 and the storage chamber forming portion 76.
- the thickness t4 of the intermediate portion 126 is equal to the thickness t2 described above.
- the protruding amount H2 in the axial direction from the plate-like portion in the convex portion 114 is equal to the protruding amount H1 in the axial direction from the plate-like portion in the accommodating chamber forming portion of the seal plate (see FIG. 10).
- the plurality of seal plate assemblies 42 include two or more seal plate assemblies 42 adjacent to each other in the circumferential direction. Further, the plurality of seal plate assemblies 42 include a plurality of seal plate assemblies 42 disposed at symmetrical positions with respect to the rotation center O of the rotor disk 18.
- the plurality of seal plate assemblies 42 include three circumferentially adjacent seal plate assemblies 42, and other positions arranged symmetrically with the three seal plate assemblies with respect to the rotation center O. Three seal plate assemblies 42. Further, a plurality of seal plates 110 not provided with the seal plate movement restricting portion 46 are arranged in the circumferential direction in an angular range where the six seal plate assemblies 42 are not arranged in the circumferential direction.
- the seal plate 44 provided with the seal plate movement restricting portion 46 and the plurality of seal plates 110 not provided with the seal plate movement restricting portion 46 have different radial dimensions of portions of the seal plate excluding the protrusions.
- the locking plate 56 for holding the seal plate 44 and the seal plate 110 and the locking piece 58 configured to press the locking plate against the end face 54 side of the rotor disk 18 are of the same shape. be able to.
- a jig (not shown) is engaged with the jig engaging portion 92 of the seal plate movement restricting portion 46 through the gap 38 from the upstream side in the axial direction. Then, the seal plate movement restricting portion 46 is rotated and screwed by the jig, thereby moving the seal plate movement restricting portion 46 downstream along the axial direction. That is, the seal plate movement restricting portion 46 is moved relative to the seal plate 44. Thereby, at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 toward the upstream side in the axial direction, and the seal plate restricting state (see FIG. 15) that restricts the radial movement of the seal plate 44.
- the seal plate movement restricting section 46 switches to a seal plate non-restricted state (see FIG. 16) that does not restrict the radial movement of the seal plate 44 (a seal plate restricting state switching step).
- the seal plate movement restriction portion 46 is moved downstream along the axial direction so that the seal plate movement restriction portion 46 and the outer peripheral surface 24 of the rotor disk 18 are engaged (FIG. 15). Is switched to a state where the seal plate movement restricting portion 46 and the outer peripheral surface 24 of the rotor disk 18 are not engaged (see FIG. 16), thereby switching the seal plate restricted state to the seal plate non-restricted state. That is, in the seal plate restriction state switching step, the seal plate movement restriction part 46 and the outer periphery of the rotor disk 18 are moved from the position where the seal plate movement restriction part 46 and the outer peripheral surface 24 of the rotor disk 18 overlap in the axial direction (see FIG. 15). By moving the seal plate movement restricting portion 46 to a position where the surface 24 does not overlap in the axial direction (see FIG. 16), the seal plate restricting state and the seal plate non-regulating state are switched.
- the jig is engaged with the jig engaging recess 108 (see FIG. 8) of the seal plate 44 from the upstream side in the axial direction. Then, as shown by an arrow a2 in FIG. 16, the seal plate 44 is pushed down by the jig so as to move inward in the radial direction, and the radially outer end 48 of the seal plate 44 and the outer groove 36 of the rotor blade 22 Release the engagement.
- the moving blade restriction state in which the seal plate 44 restricts the movement of the moving blade 22 along the axial direction, and the moving blade in which the seal plate 44 does not restrict the movement of the moving blade 22 along the axial direction. Switching to a non-restricted state (see FIG. 17) (moving blade restricted state switching step).
- the blade 22 is pulled out from the blade groove 26 of the rotor disk 18 to the upstream side in the axial direction, whereby the blade root 34 of the blade 22 and the blade groove 26 ( 3 is switched to a blade non-fitted state where the blade root 34 of the blade 22 and the blade groove 26 of the rotor disk 18 are not fitted (the blade fitted state).
- Switching step By performing the above steps, the operation of removing the rotor blade 22 from the rotor disk 18 is completed.
- the blade root 34 of the rotor blade 22 is inserted into the blade groove 26 (see FIG. 3) of the rotor disk 18 from the upstream side in the axial direction by inserting the blade root 34 of the rotor blade 22.
- the blade non-fitted state where the blade 34 and the blade groove 26 of the rotor disk 18 are not fitted is switched to a blade-fitted state where the blade root 34 of the blade 22 and the blade groove 26 of the rotor disk 18 are fitted ( Rotor blade fitting state switching step).
- the jig is engaged with the jig engaging recess 108 (see FIG. 8) of the seal plate 44 through the gap 38 from the upstream side in the axial direction.
- the jig lifts the seal plate 44 so as to move outward in the radial direction by the jig, and engages the radially outer end 48 of the seal plate 44 with the outer groove 36 of the rotor blade 22. .
- the state in which the seal plate 44 restricts the movement of the moving blade 22 along the axial direction see FIG. 20
- the seal plate 44 restricts the movement of the moving blade 22 along the axial direction.
- Switching to the blade regulation state (see FIG. 21) (moving blade regulation state switching step).
- a jig (not shown) is engaged with the jig engaging portion 92 of the seal plate movement restricting portion 46 from the upstream side in the axial direction. Then, by rotating the seal plate movement restricting portion 46 with the jig, the seal plate movement restricting portion 46 is moved upstream along the axial direction. As a result, the seal plate movement restricting portion 46 does not restrict the radial movement of the seal plate 44 and the seal plate non-restricted state (see FIG. 21), and at least a part of the seal plate movement restricting portion 46 extends axially from the seal plate 44. Is switched to a seal plate restricting state (see FIG. 22) that protrudes toward the upstream side and restricts the radial movement of the seal plate 44 (a seal plate restricting state switching step).
- the seal plate movement restriction portion 46 is moved upstream along the axial direction to seal the state where the seal plate movement restriction portion 46 and the rotor disk 18 are not engaged (see FIG. 21).
- the seal plate non-restricted state is switched to the seal plate restricted state. That is, in the seal plate restriction state switching step, the seal plate movement restriction portion 46 and the rotor disk 18 overlap in the axial direction from a position where the seal plate movement restriction portion 46 and the rotor disk 18 do not overlap in the axial direction (see FIG. 21).
- the seal plate non-restricted state is switched to the seal plate restricting state.
- the state of the seal plate movement restricting portion 46 is the seal plate restricted state or the seal plate non-restricted state from the side opposite to the seal plate 44 with the rotor disk 18 interposed therebetween. It is possible to switch between the seal plate restricted state and the seal plate non-restricted state while visually confirming whether there is any. Thereby, it becomes easy to appropriately switch the seal plate restricted state and the seal plate non-restricted state from the side opposite to the seal plate 44 with the rotor disk 18 interposed therebetween.
- the engagement state and the disengagement state of the seal plate 44 and the rotor blade 22 can be appropriately switched from the side opposite to the seal plate 44 with the rotor disk 18 interposed therebetween. It becomes easy.
- the rotor without removing the casing 10 of the gas turbine 2. It is possible to attach or remove the rotor blade 22 to or from the disk 18 from the upstream side of the rotor disk 18. For this reason, the maintainability of the gas turbine 2 is improved.
- the seal plate restriction state and the seal plate non-restriction state are switched by moving the seal plate movement restriction portion 46 along the axial direction.
- the male screw 86 (see FIG. 6) provided on the seal plate movement restricting portion 46 and the female screw 84 (see FIG. 6) provided on the seal plate 44 are provided.
- the seal plate movement restricting portion 46 is rotated to switch between the seal plate restricting state and the seal plate non-regulating state.
- seal plate non-restricted state and the seal plate restricted state are not switched unless the seal plate movement restricting portion 46 is rotated, for example, the operation of moving the seal plate 44 in the radial direction while maintaining the seal plate non-restricted state. Can be performed smoothly and easily.
- the seal plate 44 When the gas turbine rotor 16 is rotating at a high rotational speed, the seal plate 44 is stuck to the outer groove 36 by centrifugal force, and the seal plate movement restricting portion 46 is provided on the outer peripheral surface 24 of the rotor disk. Do not touch. However, during turning of the gas turbine rotor 16, the seal plate 44 moves inward in the radial direction by its own weight, and the seal plate movement restricting portion 46 contacts the outer peripheral surface 24. At this time, the seal plate movement restricting portion 46 tries to rotate in a direction opposite to the rotation direction of the gas turbine rotor 16 by a frictional force.
- the male screw 86 and the female screw 84 described above rotate in a direction in which the seal plate movement restricting portion 46 protrudes when receiving a frictional force from the outer peripheral surface 24 of the rotor disk 18 during the turning of the gas turbine rotor 16. It is threaded like this. For example, for example, when the rotation direction of the gas turbine rotor 16 is counterclockwise in the upstream view, the seal plate movement restricting portion 46 is rotated when the seal plate movement restricting portion 46 tries to rotate clockwise by the frictional force in the upstream view.
- the external thread 86 and the internal thread 84 are threaded so that the shaft rotates in a direction projecting upstream in the axial direction.
- the seal plate movement restriction portion 46 is moved against the urging force of the urging portion 94 (see FIG. 6) for urging the seal plate movement restriction portion 46.
- the seal plate restriction state is switched to the seal plate non-restriction state.
- the seal plate restriction state and the seal plate non-restriction state are switched by operating the seal plate movement restriction portion 46 from the upstream side in the axial direction via the gap 38 between the moving blade 22 and the platform 30.
- the seal plate movement restricting portion 46 between the two blades 22 on the radially inner side with respect to the platforms of the two blades 22 adjacent to each other the seal plate restriction state and the seal It will be switched to a plate non-regulated state.
- the resonance of the moving blade 22 can be avoided by adjusting the natural frequency of the moving blade 22 by adjusting the length of the shank 32 between the platform 30 and the blade root 34 in the moving blade 22. Further, the shape and size of the blade root 34 of the moving blade 22 are determined from the required strength. On the other hand, it is not preferable to make the outer diameter size of the rotor disk 18 larger than necessary from the viewpoint of suppressing an increase in centrifugal force of the rotor disk 18.
- the operation of the seal plate movement restricting portion 46 can be performed through the wide gap 38 for switching between the seal plate non-regulated state and the seal plate restricted state, and the switching operation is facilitated. For this reason, the operation
- the seal plate assembly 42 (42B to 42L) according to the following modification differs from the above-described seal plate assembly 42 (42A) in the configuration for switching between the seal plate non-regulated state and the seal plate restricted state.
- members having the same functions as those in the above-described configuration are denoted by the same reference numerals, description thereof will be omitted, and the characteristic configuration of each modified example will be mainly described.
- FIG. 23 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 (movable portion) in the seal plate assembly 42 (42B) according to the embodiment.
- the accommodating chamber forming portion 76 of the seal plate 44 includes the cylindrical portion 82 having the female screw 84, and the male screw 86 screwed into the female screw 84 is used as the seal plate movement restricting portion.
- the configuration included in 46 is illustrated.
- the seal plate movement restricting portion 46 includes the cylindrical portion 82 having the female screw 84, and the male screw 86 screwed into the female screw 84 is accommodated in the seal plate 44.
- a chamber forming portion 76 is included.
- the seal plate movement restriction portion 46 is moved along the axial direction by rotating the seal plate movement restriction portion 46 from the upstream side in the axial direction. Can be moved. As a result, the seal plate movement restricting portion 46 does not restrict the radial movement of the seal plate 44, and at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 to the upstream side in the axial direction. Thus, it is possible to switch between a sealing plate restricting state in which the radial movement of the sealing plate 44 is restricted.
- FIG. 24 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 (movable portion) in the seal plate assembly 42 (42C) according to the embodiment.
- the seal plate movement restricting portion 46 includes the cylindrical portion 82 having the female screw 84, and the male screw 86 screwed into the female screw 84 is provided.
- a storage chamber forming portion 76 of the seal plate 44 is included.
- a flange portion 88 that protrudes outward in the radial direction of the female screw 84 is provided, and between the flange portion 88 and the flange portion movement restricting portion 96 of the storage chamber forming portion 76.
- a Nord lock washer 130 is provided.
- the seal plate movement restriction portion 46 is moved along the axial direction by rotating the seal plate movement restriction portion 46 from the upstream side in the axial direction. Can be moved. As a result, the seal plate movement restricting portion 46 does not restrict the radial movement of the seal plate 44, and at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 to the upstream side in the axial direction. Thus, it is possible to switch between a sealing plate restricting state in which the radial movement of the sealing plate 44 is restricted.
- the Nord lock washer 130 functions as a detent for the seal plate movement restricting portion 46, it is possible to suppress switching between the seal plate restricted state and the seal plate non-restricted state at an unintended timing.
- FIG. 25 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 (movable portion) in the seal plate assembly 42 (42D) according to the embodiment.
- the seal plate assembly 42 includes a seal plate movement restricting portion 46 configured as a cylindrical member 85 whose upstream side in the axial direction is closed, and the seal plate movement restricting portion 46 in the upstream in the axial direction. It includes a biasing portion 94 that biases to the side.
- the urging portion 94 is configured as a coil spring.
- the urging portion 94 is supported by a support column 132 that protrudes in the axial direction from the downstream wall portion 80 of the accommodation chamber forming portion 76 of the seal plate 44.
- the seal plate assembly 42 (42D) has a simpler configuration than the above-described seal plate assemblies 42 (42A to 42C) in that no screw mechanism is provided on the seal plate movement restricting portion 46 and the seal plate 44. .
- the upstream end surface 134 in the axial direction of the seal plate movement restricting portion 46 resists the biasing force of the biasing portion 94 in the axial direction.
- the seal plate movement restricting portion 46 can be moved downstream along the axial direction. Thereby, at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 in the axial direction, and the seal plate restricting state (see FIG. 25) restricting the radial movement of the seal plate 44 is changed to the seal plate moving restricting portion. 46 can be switched to a seal plate non-regulated state (see FIG. 26) in which the radial movement of the seal plate 44 is not regulated.
- the seal plate movement restricting portion is not provided with a screw mechanism. For this reason, in order to maintain the seal plate non-restricted state, it is necessary to continue to apply a force toward the downstream side to the seal plate movement restricting portion 46. Therefore, in the moving blade restricted state switching step, the jig engagement recess 108 formed in the seal plate 44 is maintained while the upstream end surface 134 of the seal plate movement restricting portion 46 is pushed downstream to maintain the seal plate non-restricted state. By engaging a jig (see FIG. 8) and moving the seal plate 44 in the radial direction, the moving blade restricted state can be switched to the moving blade non-restricted state.
- FIG. 27 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 (movable portion) in the seal plate assembly 42 (42E) according to the embodiment.
- 27 (42E) shown in FIG. 27 includes a seal plate movement restricting portion 46 configured as a pin 93 and an urging portion 94 configured as a coil spring.
- the seal plate movement restricting portion 46 includes a compression amount restricting portion 136 provided at a downstream end in the axial direction, a flange portion 88 protruding radially outward from the compression amount restricting portion 136, and an upstream portion in the axial direction from the flange portion 88. And a projecting portion 90 projecting to the side.
- the urging portion 94 is configured to urge the collar portion 88 upstream.
- the storage chamber forming portion 76 has a facing portion 138 that faces the compression amount restricting portion 136 in the axial direction, and the compression amount restricting portion 136 and the facing portion 138 come into contact with each other, whereby the seal plate movement restricting portion 46 is axially moved. It is possible to prevent the urging portion 94 from being excessively compressed by restricting the movement to the downstream side.
- the seal plate assembly 42 (42E) has a simpler configuration than the above-described seal plate assemblies 42 (42A to 42C) in that no screw mechanism is provided on the seal plate movement restricting portion 46 and the seal plate 44. .
- the seal plate movement restricting portion 46 can be moved downstream along the axial direction. As a result, at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 to the upstream side in the axial direction, and the seal plate restricting state (see FIG. 27) restricting the radial movement of the seal plate 44 is obtained.
- the movement restricting portion 46 can be switched to a seal plate non-restricted state (see FIG. 28) in which the radial movement of the seal plate 44 is not restricted.
- the blade control state switching step can be executed by the same method as in the case of the seal plate assembly 42 (42E).
- FIG. 29 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 (movable portion) in the seal plate assembly 42 (42F) according to the embodiment.
- the seal plate 44 and the seal plate movement restricting portion 46 are integrally formed as one member.
- the seal plate movement restricting portion 46 is configured as a branching portion 97 branched from the main body portion 95 of the seal plate 44, and in the seal plate movement restricting state, in the upstream direction in the axial direction and the inner side in the radial direction. Protrusively.
- the seal plate assembly 42 has a simpler configuration than the above-described seal plate assemblies 42 (42A to 42E) in that no urging portion or screw mechanism is provided.
- the seal plate movement restricting portion 46 is moved in the radial direction of the seal plate 44.
- a seal plate non-restricted state see FIG. 30
- at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 to the upstream side in the axial direction and restricts radial movement of the seal plate 44. It is possible to switch to the seal plate regulation state (see FIG. 29).
- FIG. 31 is an enlarged cross-sectional view along the axial direction in the vicinity of the seal plate movement restricting portion 46 (movable portion) in the seal plate assembly 42 (42G) according to the embodiment.
- the seal plate 44 includes a female screw 142 provided in a through hole 140 that passes through the seal plate 44 in the axial direction
- the seal plate movement restricting portion 46 is a male screw 144 that is screwed into the female screw 142. It is configured as.
- the male screw 144 has an axial length longer than that of the female screw 142, and a jig engaging portion that engages a jig for rotating the male screw at the tip (upstream end in the axial direction) of the male screw 144.
- the seal plate assembly 42 (42 G) includes a washer 146 disposed between the head of the male screw 144 and the seal plate 44.
- the seal plate 44 includes a receiving portion 148 for preventing the male screw 144 from dropping from the seal plate 44 to the downstream side in the axial direction.
- the receiving portion 148 includes a portion that protrudes from the position radially inward of the seal plate 44 to the downstream side in the axial direction, and a portion that extends radially outward from the downstream end of the protruding portion. It is formed in an L-shaped cross section.
- Such a seal plate assembly 42 has a simpler configuration than some of the above-described seal plate assemblies 42 (42A, 42B, 42D, 42E) in that an urging portion is not provided.
- the male screw 144 can be moved along the axial direction by operating the jig engaging portion 92 of the male screw 144 from the upstream side in the axial direction to rotate the male screw 144.
- the seal plate non-regulated state in which the male screw 144 does not restrict the radial movement of the seal plate 44 (see FIG. 32), and at least a part of the male screw 144 protrudes from the seal plate 44 in the axial direction. It is possible to switch between the seal plate regulation state (see FIG. 31) that regulates the movement in the direction.
- the seal plate movement restricting portion 46 and the rotor disk 18 are not engaged with each other, By switching the state where the seal plate is moved by moving the seal plate movement restricting portion 46 along the axial direction, the seal plate non-restricted state and the seal plate restricted state can be switched.
- the seal plate movement restricting portion 46 and the seal plate 44 are not engaged, and the seal plate movement restricting portion 46 and the seal plate 44. Is switched by moving the seal plate movement restricting portion 46 along the axial direction, so that the seal plate non-restricted state and the seal plate restricted state can be switched.
- FIG. 33 is a view for explaining the configuration of the seal plate assembly 42 (42H) according to the embodiment, and partially shows a cross section of the gas turbine rotor 16 along the axial direction.
- the seal plate assembly shown in FIG. 33 includes a seal plate 44 and a seal plate movement restricting portion 46 configured as a seal plate drop-off piece 180 (concave engaging member).
- the seal plate 44 has a first surface 50 and a second surface 52 that face in opposite directions as in the above-described some forms.
- the first surface 50 faces the upstream side in the axial direction
- the second surface 52 faces the downstream side in the axial direction.
- a recess 150 is formed on the first surface 50.
- the seal plate movement restricting portion 46 is mounted in the concave portion 150 of the seal plate 44, and the axial size of the seal plate movement restricting portion 46 is larger than the axial depth of the concave portion 150. Therefore, in a state where the seal plate movement restricting portion 46 is mounted in the recess 150, at least a part of the seal plate movement restricting portion 46 protrudes from the seal plate 44 in the axial direction and restricts the radial movement of the seal plate 44. It is possible.
- the seal plate movement restricting portion 46 attached to the concave portion 150 of the seal plate 44 is removed from the concave portion 150, or the seal plate movement restricting portion 46 is attached to the concave portion 150 so that the seal plate is not restricted.
- the seal plate regulation state see FIG. 33
- the seal plate non-regulated state and the seal plate restricted state can be switched.
- the radial length of the seal plate 44 can be shortened as compared with other forms, for example, the seal plate assembly 42 (42A). Further, the radial length of the locking plate 56 may be changed as appropriate.
- each of the seal plate movement restricting portions 46 may be attached to the seal plate 44.
- each of the seal plate movement restricting portions 46 is provided at a position overlapping the gap 38 described above in the axial direction.
- the recess 150 is provided in the vicinity of the center in the radial direction of the first surface 50 of the seal plate 44.
- the present invention is not limited to this, and for example, the first surface 50 of the seal plate 44 is provided. Of these, it may be provided at the radially inner end.
- FIG. 36 is a view for explaining the configuration of the seal plate assembly 42 (42I) according to the embodiment, and partially shows a cross section of the gas turbine rotor 16 along the axial direction.
- the rotor disk 18 includes a convex portion 152 that protrudes radially outward along the first surface 50 of the seal plate 44.
- a through hole 154 that penetrates in the axial direction is formed in the convex portion 152, and a female screw 156 is formed in the through hole 154.
- the seal plate movement restricting portion 46 in the seal plate assembly 42 (421) includes a male screw 158 configured to be inserted into the through hole 154 and screwed into the female screw 156. The downstream end of the seal plate movement restricting portion 46 in the axial direction is engaged with a recess 150 formed on the first surface 50 of the seal plate 44.
- the seal plate movement restricting portion 46 is rotated and moved in the axial direction in a state where the male screw 158 provided on the seal plate movement restricting portion 46 is screwed to the female screw 156 provided on the rotor disk 18.
- the seal plate movement restricting portion 46 does not restrict the radial movement of the seal plate 44 (see FIG. 37), and at least a part of the seal plate movement restricting portion 46 extends from the seal plate 44 in the axial direction.
- the sealing plate restricting state (see FIG. 36) that protrudes and restricts the radial movement of the sealing plate 44 can be switched.
- FIG. 38 is a view for explaining the configuration of the seal plate assembly 42 (42J) according to the embodiment, and partially shows a cross section of the gas turbine rotor 16 along the axial direction.
- the seal plate assembly 42 shown in FIG. 38 includes a seal plate 44 and a seal plate movement restricting portion 46 configured as a seal plate retaining pin 182 (concave engaging member).
- the seal plate 44 has a first surface 50 and a second surface 52 that face in opposite directions as in the above-described some forms.
- the first surface 50 faces the upstream side in the axial direction
- the second surface 52 faces the downstream side in the axial direction.
- a recess 150 is formed on the first surface 50.
- the rotor disk 18 is formed with a through hole 160 penetrating in the axial direction (perpendicular direction of the first surface 50).
- the seal plate retaining pin 182 is inserted into the through hole 160 and extends in the axial direction. It extends and its tip engages with the recess 150.
- a step portion is formed in the through hole 160, and the step portion 162 formed on the seal plate dropping pin 182 contacts the step portion of the through hole 160, so that the seal plate dropping pin 182 is positioned in the axial direction. Is done.
- the tip of the seal plate retaining pin 182 engages with the recess 150 as described above with the stepped portion 162 of the seal plate retaining pin 182 in contact with the stepped portion of the through hole 160. . Further, on the upstream side of the seal plate retaining pin 182 in the axial direction, a stopper pin stopper 164 for preventing the seal plate retaining pin 182 from moving upstream in the axial direction is provided.
- the region 128 on the outer peripheral surface 24 of the rotor disk 18 is provided with a built-up portion 166 extending in the axial direction, and the through-hole 160 is formed in the built-up portion 166. Is formed.
- the seal plate retaining pin 182 has a circular cross-sectional shape.
- the seal plate stopper pin 182 is operated through the through hole 160 in a state where the stopper pin stopper 164 is removed, and the seal plate stopper pin 182 is moved in the axial direction so that the seal plate stopper pin is moved.
- the seal plate is not regulated ( 40) and the seal plate regulation state (see FIG. 38) can be switched.
- the seal plate retaining pin 182 may be inserted into a pin groove 168 formed in the region 128 on the outer peripheral surface 24 of the rotor disk 18 along the axial direction.
- the pin groove portion 168 has a retaining portion 170 configured to prevent the seal plate dropping prevention pin 182 from coming out of the pin groove portion 168 radially outward.
- the seal plate retaining pin 182 has a square cross-sectional shape.
- the seal plate retaining pin 182 is moved in the axial direction so that the tip of the seal plate retaining pin 182 and the recess 150 of the seal plate 44 are not engaged, and the tip of the seal plate retaining pin 182.
- the seal plate non-regulated state see FIG. 42
- the seal plate restricted state see FIG. 41
- FIG. 43 is a view for explaining the configuration of the seal plate assembly 42 (42L) according to the embodiment, and partially shows a cross section of the gas turbine rotor 16 along the axial direction.
- the seal plate assembly 42 shown in FIG. 43 includes an eccentric cam 172 as the seal plate movement restricting portion 46.
- the eccentric cam 172 includes a cam portion 174 configured to protrude from the seal plate 44 to the upstream side in the axial direction, and a shaft portion 176 that supports the cam portion 174.
- a jig engaging portion 92 with which a jig for rotating the eccentric cam 172 engages is formed on the upstream end surface 198 in the axial direction of the eccentric cam 172.
- the seal plate 44 has a through hole 178 penetrating in the axial direction, and a female screw 184 is formed in the through hole 178.
- the eccentric cam 172 is rotatably supported by the seal plate 44 by the male screw 186 formed on the shaft portion 176 being screwed into the female screw 184 of the seal plate 44.
- the peripheral surface of the cam portion 174 includes a flat surface portion 188 and a curved surface portion 190, as shown in FIGS.
- the distance between the rotation center C of the eccentric cam 172 and the flat surface portion 188 is set larger than the distance between the rotation center C and the curved surface portion 190.
- the state where the flat surface portion 188 of the cam portion 174 is engaged with the outer peripheral surface 24 of the rotor disk 18 is a state where the rotation of the eccentric cam 172 is restricted, that is, the eccentric cam 172 is the seal plate 44. It is a seal plate regulation state which regulates movement in the diameter direction. 45, the state where the curved surface portion 190 of the cam portion 174 is engaged with the outer peripheral surface 24 of the rotor disk 18 is a state where the eccentric cam 172 is allowed to rotate, ie, the eccentric cam 172 is sealed. This is a non-regulated state of the seal plate that does not regulate the radial movement of the plate.
- the eccentric cam 172 has a gap 38 between the outer peripheral surface 24 of the rotor disk 18 other than the blade groove 26 for fitting the blade 22 and the platform of the blade 22. They are provided at overlapping positions when viewed in the axial direction.
- the eccentric cam 172 does not restrict the radial movement of the seal plate 44, and at least the eccentric cam 172.
- a part of the seal plate 44 protrudes upstream in the axial direction and can be switched to a seal plate restricting state in which the radial movement of the seal plate 44 is restricted.
- each of the seal plate movement restricting portions 46 is provided at a position overlapping with the above-described gap 38 in the axial direction.
- the operation of the seal plate movement restricting portion 46 can be performed through the wide gap 38 for switching between the seal plate non-regulated state and the seal plate restricted state, and the switching operation is facilitated. For this reason, the operation
- FIG. 47 is a plan view showing a configuration example of an inspection apparatus for confirming the assembled state of the seal plate assembly 42 (however, shown in a partial cross section around the holding hole 522 of the inspection rod holder 520).
- FIG. 48 is a view of the inspection apparatus viewed from the upstream side in the insertion direction of the inspection rod.
- FIG. 49 is a diagram illustrating a usage state of the inspection apparatus illustrated in FIGS. 47 and 48.
- the inspection apparatus 500 shown in FIGS. 47 and 48 measures whether or not the protruding amount of the seal plate movement restricting portion 46 of the seal plate assembly 42 from the seal plate 44 is within a specified range. By doing so, it is used to confirm the suitability of the assembled state of the seal plate assembly 42.
- the inspection device 500 is useful when it is difficult to directly measure the protruding amount of the seal plate movement restricting portion 46, and can be used for the seal plate assembly 42 (42A to 42I), for example.
- the seal plate assembly 42 (42A to 42H) including the seal plate movement restricting portion 46 that engages with the outer peripheral surface 24 of the rotor disk 18 is an inspection object, but the seal plate assembly 42I.
- the inspection object 500 can be the inspection object.
- the inspection apparatus 500 includes an inspection bar 510 and an inspection bar holder 520 for holding the inspection bar 510 in a specified posture.
- the inspection rod 510 is configured to be movable relative to the inspection rod holder 520 in the longitudinal direction of the inspection rod 510 in a state where the inspection rod 510 is constrained in a predetermined posture by the inspection rod holder 520.
- the inspection rod 510 is a long member having a cross-sectional shape that is longer than the gap 38 between the shanks 32 of the moving blades 22 adjacent in the circumferential direction and can pass through the gap 38.
- At the base end portion 512 of the inspection rod 510 at least one measurement surface 514 (514A, 514B) is provided.
- the measurement surface 514 is used to determine whether or not the pressing amount of the inspection rod 510 with respect to the inspection rod holder 520 is within a specified range when the inspection apparatus 500 is used.
- a pair of measurement surfaces 514A and 514B are provided on both sides of the center axis Z of the inspection rod 510, respectively.
- the pair of measurement surfaces 514A and 514B are provided at different positions in the longitudinal direction of the inspection rod 510.
- the distance ⁇ Z between the measurement surfaces 514A and 514B is the protruding length of the seal plate movement restricting portion 46 when the seal plate assembly 42 (42A to 42H) is properly assembled (that is, the rotor disk of the seal plate movement restricting portion 46).
- 18 engagement length with the outer peripheral surface 24
- a small value for example, 0.5 times or less.
- the tip portion 516 of the inspection rod 510 is a portion that comes into contact with the seal plate movement restriction portion 46 when the inspection device 500 is used.
- the tip 516 may be configured to be insertable into a recess (not shown in FIG. 49) provided in the seal plate movement restricting portion 46. In this case, when the inspection apparatus 500 is used, it is easy to bring the tip 516 of the inspection rod 510 into contact with the prescribed location in the recess of the seal plate movement restricting portion 46, and the reliability of the inspection can be improved.
- the concave portion of the seal plate movement restricting portion 46 may be a jig engaging portion 92.
- the inspection rod 510 has a large-diameter portion 518 that engages with the large-diameter portion 522A of the holding hole 522 on the tip side of the measurement surface 514.
- the large-diameter portion 518 of the inspection rod 510 is fitted into the large-diameter portion 522A of the holding hole 522, whereby the posture of the inspection rod 510 is regulated and the inspection by the inspection device 500 is stably performed. It is possible.
- the inspection rod holder 520 has a holding hole 522 for holding the inspection rod 510, an axial positioning surface 524 for positioning the inspection rod holder 520 with respect to the axial direction of the gas turbine 2 when the inspection apparatus 500 is used, Have In the exemplary embodiment shown in FIG. 47, the axial positioning surface 524 abuts the axial reference surface 600 (see FIG. 49) when the inspection apparatus 500 is used, and the inspection rod holder 520 can be positioned in the axial direction. It has become.
- the axial reference surface 600 may be the axial end surface of the rotor disk 18 as in the example shown in FIG. 49, or the axial end surface of the shank 32 or the blade root 34 of the rotor blade 22. .
- the inspection rod holder 520 abuts on the radial reference surface 610 when the inspection apparatus 500 is used, and is used for positioning the inspection rod holder 520 in the radial direction.
- a surface 526 may be provided.
- the rotor disk 18 is provided with a radial reference surface 610.
- the radial positioning surface 526 of the inspection rod holder 520 may have a shape corresponding to the radial reference surface 610.
- the radial positioning surface 526 is upstream of the inspection rod 510 in the insertion direction. It has an arc shape when viewed from the side.
- the inspection rod holder 520 has a measurement reference surface 528 around the opening of the holding hole 522.
- the measurement reference plane 528 is a reference plane that should be compared with the position of the measurement plane 514 (514A, 514B) of the inspection rod 510 when the inspection apparatus 500 is used.
- the measurement reference surface 528 is a plane orthogonal to the axial direction of the holding hole 522 in the peripheral region of the holding hole 522 in the end surface opposite to the axial positioning surface 524 of the inspection rod holder 520. Provided. The examples shown in FIGS.
- the inspection apparatus 500 having the above configuration When the inspection apparatus 500 having the above configuration is used, first, as shown in FIG. 49, the axial positioning surface 524 and the radial positioning surface 526 of the inspection rod holder 520 are brought into contact with the axial reference surface 600 and the radial reference surface 610, respectively. The inspection rod holder 520 is positioned by contact. Accordingly, the relative position of the measurement reference surface 528 of the inspection rod holder 520 with respect to the seal plate assembly 42 is determined.
- the inspection rod 510 is inserted into the holding hole 522 of the inspection rod holder 520 until the tip portion 516 of the inspection rod 510 contacts the seal plate movement restricting portion 46 of the seal plate assembly 42 via the gap 38.
- the inspection rod 510 is pushed in.
- the large diameter portion 518 of the inspection rod 510 is fitted into the large diameter portion 522A of the holding hole 522, and the posture of the inspection rod 510 is regulated.
- the tip 516 of the inspection rod 510 may be engaged with a recess (not shown) (for example, the jig engaging portion 92) of the seal plate movement restricting portion 46.
- the measurement reference plane is such that the measurement reference plane 528 of the inspection rod holder 520 is positioned between the pair of measurement surfaces 514A and 514B of the inspection rod 510. If the position of 528 is set, the suitability of the assembled state of the seal plate assembly 42 can be easily determined.
- both measurement surfaces 514A and 514B are located closer to the seal plate assembly 42 than the measurement reference surface 528 (if the measurement surfaces 514A and 514B are hidden in the holding hole 522), the seal plate movement restriction The amount of protrusion of the portion 46 from the seal plate 44 is insufficient, and it can be determined that the seal plate assembly 42 is not assembled properly.
- one measurement surface 514A is located on the opposite side of the seal plate assembly 42 from the measurement reference surface 528 (the measurement surface 514A is located outside the holding hole 522), and the other measurement surface 514B is measured.
- the protruding amount of the seal plate movement restricting portion 46 from the seal plate 44 is within a specified range. It can be determined that the seal plate assembly 42 is properly assembled.
- the inspection apparatus 500 having the above-described configuration, it is possible to confirm the suitability of the assembled state of the seal plate assembly 42 from the relative positional relationship of the measurement surface 514 (514A, 514B) with respect to the measurement reference surface 528.
- the suitability of the assembly state of the seal plate assembly 42 may be determined by comparing the mark provided on the inspection rod 510 with the measurement reference surface 528.
- the inspection rod holder 520 is not positioned with respect to the circumferential direction of the gas turbine 2, but in another embodiment, the inspection rod holder 520 is provided with a circumferential positioning function. May be. In this case, as a circumferential reference to be brought into contact with the circumferential positioning portion of the inspection rod holder 520, at least one side wall surface of the pair of shanks 32 adjacent in the circumferential direction with the gap 38 interposed therebetween may be used.
- the present invention is not limited to the above-described embodiments, and includes forms obtained by modifying the above-described embodiments and forms obtained by appropriately combining these forms.
- seal plate assembly 42 (42A to 42L) the case where the seal plate assembly 42 is provided on the downstream side in the axial direction with respect to the rotor disk 18 is illustrated.
- a seal plate assembly may be provided on the upstream side in the direction.
- the seal plate assembly includes a seal plate provided on one side in the axial direction with respect to the rotor disk, and a seal plate movement restricting portion that restricts the radial movement of the rotor disk with respect to the rotor disk.
- the gas turbine disassembly and assembly method operates by operating the seal plate movement restricting portion from the other side in the axial direction so that the seal plate movement restricting portion does not restrict the radial movement of the seal plate, If at least a part of the plate movement restricting portion has a seal plate restricting state switching step for switching between a seal plate restricting state that protrudes from the seal plate toward the other side in the axial direction and restricts the radial movement of the seal plate. Good.
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Abstract
Description
また、上記複数のシール板組立体に対応する複数の動翼をロータディスクから取り外すことにより生じるスペースが、ロータディスクの回転中心に対して対称位置に位置するため、上記他のシール板を周方向に移動させる際に、短い移動距離で動翼から取り外すことができる。このため、ガスタービンの分解作業を効率的に行うことができる。
例えば、「ある方向に」、「ある方向に沿って」、「平行」、「直交」、「中心」、「同心」或いは「同軸」等の相対的或いは絶対的な配置を表す表現は、厳密にそのような配置を表すのみならず、公差、若しくは、同じ機能が得られる程度の角度や距離をもって相対的に変位している状態も表すものとする。
例えば、「同一」、「等しい」及び「均質」等の物事が等しい状態であることを表す表現は、厳密に等しい状態を表すのみならず、公差、若しくは、同じ機能が得られる程度の差が存在している状態も表すものとする。
例えば、四角形状や円筒形状等の形状を表す表現は、幾何学的に厳密な意味での四角形状や円筒形状等の形状を表すのみならず、同じ効果が得られる範囲で、凹凸部や面取り部等を含む形状も表すものとする。
一方、一の構成要素を「備える」、「具える」、「具備する」、「含む」、又は、「有する」という表現は、他の構成要素の存在を除外する排他的な表現ではない。
図1は、本発明の一実施形態に係るガスタービン2の回転軸線に沿った概略断面図である。
図1に示すように、ガスタービン2は、外気を圧縮して圧縮空気を生成する圧縮機4と、不図示の燃料供給源からの燃料を圧縮空気に混合して燃焼させ燃焼ガスを生成する燃焼器6と、燃焼ガスにより駆動するタービン8と、を備える。
図4は、一実施形態に係るシール板組立体42(42A)の構成を説明するための図であり、軸方向に沿ったガスタービンロータ16の断面を部分的に示している。
ガスタービンロータ16は、複数の動翼22のための複数のシール板組立体42(42A)を含む。
図6に示すように、シール板44は、径方向に延在する板状部72と、シール板移動規制部46を少なくとも部分的に収容するための収容室74を形成する収容室形成部76とを含む。シール板移動規制部46は、収容室形成部76のうち軸方向における上流側の部分(シール板44の第1の面50)に形成された開口部78からシール板移動規制部46の一部が突出可能に構成されている。収容室形成部76は、シール板44のうち径方向における外側寄りに設けられており、板状部72に対して軸方向における下流側に(第2の面52の向く方向に)突出するように構成されている。
図7に示すように、複数のシール板組立体42(42A)は、周方向に配列され、各シール板組立体42(42A)のシール板44の周方向端部は、周方向に隣接する他のシール板44(又は後述するシール板110)の周方向端部と互いに重なり合う段差部98を有するオーバーラップ構造を成している。これにより、隙間38内の冷却空気が、周方向に隣接するシール板44の周方向端部の相互間からロータディスク18の軸方向下流側の空間に漏れ出すのを防止している。
次に、上述した構成を有するガスタービン2の分解組立方法(ガスタービンの分解又は組立を行う方法)について説明する。まず、ガスタービン2の分解方法を説明する。ガスタービンの分解は、例えばガスタービン2のメンテナンス時に実行される。
次に、ガスタービン2の組立方法を説明する。ガスタービン2の組立は、例えばガスタービン2の製造時やメンテナンス時に実行される。ガスタービン2の組立方法では、以下で説明するように、上述したガスタービン2の分解方法とは逆の手順を行う。
図15、図16、図21及び図22を用いて説明したように、シール板規制状態切替ステップにおいて、軸方向における上流側すなわちシール板44に対してシール板移動規制部46の突出方向側(軸方向においてシール板44に対してロータディスク18側)からシール板移動規制部46を操作することで、シール板非規制状態とシール板規制状態とが切り替えられる。
次に、幾つかの実施形態に係る変形例について説明する。以下の変形例に係るシール板組立体42(42B~42L)では、上述したシール板組立体42(42A)とは、シール板非規制状態とシール板規制状態とを切り替えるための構成が異なる。以下の変形例では、上述した構成と同様の機能を有する部材については同一の符号を付して説明を省略し、各変形例の特徴的な構成を中心に説明する。
図6に示したシール板組立体42(42A)では、雌ねじ84を有する筒状部82をシール板44の収容室形成部76が含み、雌ねじ84に螺合する雄ねじ86をシール板移動規制部46が含む構成を例示した。これに対し、図23に示すシール板組立体42(42B)では、雌ねじ84を有する筒状部82をシール板移動規制部46が含み、雌ねじ84に螺合する雄ねじ86をシール板44の収容室形成部76が含む。
図24に示したシール板組立体42においても、図23に示した形態と同様に、雌ねじ84を有する筒状部82をシール板移動規制部46が含み、雌ねじ84に螺合する雄ねじ86をシール板44の収容室形成部76が含む。筒状部82の外周面には、雌ねじ84の径方向における外側に向かって突出する鍔部88が設けられており、鍔部88と収容室形成部76の鍔部移動規制部96との間にノルトロックワッシャ130が設けられている。
図25に示した形態では、シール板組立体42は、軸方向における上流側が閉じられた筒状部材85として構成されたシール板移動規制部46と、シール板移動規制部46を軸方向における上流側に付勢する付勢部94を含む。図示する形態では、付勢部94は、コイルばねとして構成されている。付勢部94は、シール板44の収容室形成部76における下流側の壁部80から軸方向に突出する支柱132に支持されている。シール板組立体42(42D)は、シール板移動規制部46とシール板44とにねじ機構が設けられていない点で、上述したシール板組立体42(42A~42C)より簡素な構成を有する。
図27に示した42(42E)は、ピン93として構成されたシール板移動規制部46、コイルばねとして構成された付勢部94とを含む。シール板移動規制部46は、軸方向における下流側端に設けられた圧縮量規制部136と、圧縮量規制部136から径方向外側に突出する鍔部88と、鍔部88から軸方向における上流側に突出する突出部90とを含む。付勢部94は、鍔部88を上流側に付勢するよう構成されている。収容室形成部76は、圧縮量規制部136と軸方向に対向する対向部138を有し、圧縮量規制部136と対向部138とが当接することにより、シール板移動規制部46の軸方向における下流側への移動が規制され、付勢部94が過度に圧縮されることを防止することができる。シール板組立体42(42E)は、シール板移動規制部46とシール板44とにねじ機構が設けられていない点で、上述したシール板組立体42(42A~42C)より簡素な構成を有する。
図29に示す形態では、シール板44とシール板移動規制部46とは一部材で一体的に構成されている。シール板移動規制部46は、シール板44の本体部95から分岐した分岐部97として構成されており、シール板移動規制状態において本体部95から軸方向における上流側且つ径方向における内側の方向に向かって突出している。かかるシール板組立体42は、付勢部やねじ機構が設けられていない点で、上述したシール板組立体42(42A~42E)より簡素な構成を有する。
図31に示す形態では、シール板44は、当該シール板44を軸方向に貫通する貫通孔140に設けられた雌ねじ142を含み、シール板移動規制部46は、雌ねじ142に螺合する雄ねじ144として構成されている。雄ねじ144は、雌ねじ142よりも長い軸方向長さを有し、雄ねじ144の先端(軸方向における上流側端)には、雄ねじを回動させるための治具を係合する治具係合部92が設けられている。また、シール板組立体42(42G)は、雄ねじ144の頭部とシール板44との間に配置された座金146を備える。
図33に示すシール板組立体は、シール板44と、シール板落ち止めピース180(凹部係合部材)として構成されたシール板移動規制部46とを含む。シール板44は、上述した幾つかの形態と同様に、互いに反対方向を向く第1の面50及び第2の面52を有する。第1の面50は、軸方向における上流側を向いており、第2の面52は軸方向における下流側を向いている。
図36に示す形態では、ロータディスク18は、シール板44の第1の面50に沿って径方向外側に突出する凸部152を含む。凸部152には、軸方向に貫通する貫通孔154が形成されており、貫通孔154に雌ねじ156が形成されている。シール板組立体42(42I)におけるシール板移動規制部46は、貫通孔154に挿通されて雌ねじ156に螺合するよう構成された雄ねじ158を含む。軸方向におけるシール板移動規制部46の下流端部はシール板44の第1の面50に形成された凹部150に係合している。
図38に示すシール板組立体42は、シール板44と、シール板落ち止めピン182(凹部係合部材)として構成されたシール板移動規制部46とを含む。シール板44は、上述した幾つかの形態と同様に、互いに反対方向を向く第1の面50及び第2の面52を有する。第1の面50は、軸方向における上流側を向いており、第2の面52は軸方向における下流側を向いている。
図43に示すシール板組立体42は、シール板移動規制部46としての偏心カム172を備える。偏心カム172は、シール板44から軸方向における上流側に突出するよう構成されたカム部174と、カム部174を支持する軸部176とを含む。偏心カム172のうち軸方向における上流側の端面198には、偏心カム172を回動させるための治具が係合する治具係合部92が形成されている。
検査装置500は、シール板移動規制部46の突出量を直接計測することが難しい場合に有用であり、例えば、シール板組立体42(42A~42I)について用いることができる。なお、図49に示す例では、ロータディスク18の外周面24と係合するシール板移動規制部46を含むシール板組立体42(42A~42H)を検査対象としているが、シール板組立体42Iについても同様に検査装置500の検査対象とすることができる。
図47に示す例示的な実施形態では、検査棒510の中心軸Zを挟んで両側にそれぞれ一対の計測面514A,514Bが設けられている。一対の計測面514A,514Bは、検査棒510の長手方向において互いに異なる位置に設けられる。計測面514A,514B間の距離ΔZは、シール板組立体42(42A~42H)の適正な組付け状態におけるシール板移動規制部46の突出長さ(即ち、シール板移動規制部46のロータディスク18の外周面24との係合長さ)に対して小さな値(例えば、0.5倍以下)に設定される。
なお、シール板移動規制部46の凹部は、治具係合部92であってもよい。
図47に示す例示的な実施形態では、軸方向位置決め面524は、検査装置500の使用時において、軸方向基準面600(図49参照)に当接し、検査棒ホルダ520を軸方向に関して位置決め可能となっている。なお、軸方向基準面600は、図49に示す例のようにロータディスク18の軸方向端面であってもよいし、動翼22のシャンク32又は翼根34の軸方向端面であってもよい。
なお、検査棒ホルダ520の径方向位置決め面526は、径方向基準面610に対応した形状であってもよく、図48に示す例では、径方向位置決め面526は、検査棒510の挿入方向上流側から視て円弧形状である。
図47に示す例では、計測基準面528は、検査棒ホルダ520の軸方向位置決め面524とは反対側の端面のうち、保持穴522の周辺領域において保持穴522の軸方向に直交する平面として設けられる。なお、図47~図49に示す例は、周方向に隣り合う動翼22のシャンク32間の隙間38がガスタービン2の軸方向に対して斜めに延在する場合を想定したものであり、軸方向位置決め面524に対して計測基準面528が互いに平行ではなく、両者間に傾斜角が存在する構成を図示したが、この例に限定されるものではない。
例えば、シール板組立体42の組付け状態が適正である場合に、検査棒ホルダ520の計測基準面528が、検査棒510の一対の計測面514A,514Bの間に位置するように計測基準面528の位置を設定しておけば、シール板組立体42の組付け状態の適否を容易に判断できる。即ち、両方の計測面514A,514Bが計測基準面528よりもシール板組立体42側に位置していれば(計測面514A,514Bが保持穴522内に隠れていれば)、シール板移動規制部46のシール板44からの突出量が不足しており、シール板組立体42が適切に組み付けられていないと判断できる。これに対し、一方の計測面514Aが計測基準面528からみてシール板組立体42の反対側に位置し(計測面514Aが保持穴522外に位置し)、且つ、他方の計測面514Bが計測基準面528よりもシール板組立体42側に位置していれば(計測面514Bが保持穴522内に隠れていれば)、シール板移動規制部46のシール板44からの突出量が規定範囲内であり、シール板組立体42が適切に組み付けられていると判断できる。
4 圧縮機
6 燃焼器
8 タービン
10 タービンケーシング
12 静翼列
14 動翼列
16 ガスタービンロータ
18 ロータディスク
20 静翼
22 動翼
24 外周面
26 翼溝
28 翼体
30 プラットフォーム
32 シャンク
34 翼根
36 外側溝
38 隙間
40 内側溝
42 シール板組立体
44,110 シール板
45 プラグ
46 シール板移動規制部
48,120 径方向外側端部
50 第1の面
52 第2の面
54,102,118,134,194,196,198 端面
56 ロッキングプレート
58 ロッキングピース
60 プレート本体部
62 立上り部
63 縁
64,124 径方向内側端部
66 ラップ部
68 板
70 押付ねじ
72,112 板状部
74 収容室
76 収容室形成部
78 開口部
80 壁部
82 筒状部
84,142,156,184 雌ねじ
85 筒状部材
86 ねじ
86 雄ねじ
86,144,158,186 雄ねじ
88 鍔部
90 突出部
92 治具係合部
94 付勢部
95 本体部
96 鍔部移動規制部
97 分岐部
98,118,162 段差部
100 突起
104,116 肉抜き部
105,126 部分
108 治具係合用凹部
114,152 凸部
122 突起
128 領域
130 ノルトロックワッシャ
132 支柱
136 圧縮量規制部
138 対向部
140,154,160,178 貫通孔
146 座金
148 受け部
150 凹部
164 止めピン用栓
166 肉盛り部
168 ピン用溝部
170 止め部
172 偏心カム
174 カム部
176 軸部
180 シール板落ち止めピース
182 シール板落ち止めピン
188 平面部
190 曲面部
193 環状スペーサ
500 検査装置
510 検査棒
512 基端部
514(514A,514B) 計測面
516 先端部
518 大径部
520 検査棒ホルダ
522 保持穴
522A 大径部分
524 軸方向位置決め面
526 径方向位置決め面
528 計測基準面
600 軸方向基準面
610 径方向基準面
Claims (40)
- ガスタービンの分解組立方法であって、
前記ガスタービンは、
ロータディスクに対して軸方向における一方側に設けられるシール板と、
前記ロータディスクに対する前記シール板の前記ロータディスクの径方向の移動を規制するシール板移動規制部と、
を備え、
前記分解組立方法は、前記軸方向における他方側から前記シール板移動規制部を操作することで、前記シール板移動規制部が前記シール板の前記径方向の移動を規制しないシール板非規制状態と、前記シール板移動規制部の少なくとも一部が前記シール板から前記軸方向における前記他方側に向けて突出して前記シール板の前記径方向の移動を規制するシール板規制状態とを切り替えるシール板規制状態切替ステップを備える、ガスタービンの分解組立方法。 - 前記軸方向における前記一方側は前記軸方向における燃焼ガス流れの下流側であり、前記軸方向における前記他方側は前記軸方向における燃焼ガス流れの上流側である、請求項1に記載のガスタービンの分解組立方法。
- 前記シール板規制状態切替ステップでは、互いに隣接する二つの動翼のプラットフォームに対して前記径方向の内側において該二つの動翼の間を通って前記シール板移動規制部を操作することで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1又は2に記載のガスタービンの分解組立方法。
- 前記ロータディスクは、前記軸方向に沿って延在する貫通口を含み、
前記シール板規制状態切替ステップでは、前記貫通口を介して前記シール板移動規制部を操作することで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至3の何れか1項に記載のガスタービンの分解組立方法。 - 前記シール板規制状態切替ステップでは、前記シール板移動規制部と前記ロータディスクとが係合しない状態と、前記シール板移動規制部と前記ロータディスクとが係合する状態とを前記シール板移動規制部を前記軸方向に沿って移動させて切り替えることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至4の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板規制状態切替ステップでは、前記シール板移動規制部と前記ロータディスクとが前記軸方向において重ならない位置と、前記シール板移動規制部と前記ロータディスクとが前記軸方向において重なる位置との間で前記シール板移動規制部を移動させることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至5の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板規制状態切替ステップでは、前記シール板移動規制部に設けられた雌ねじ又は雄ねじの一方に、前記シール板に設けられた前記雌ねじ又は前記雄ねじの他方が螺合した状態で、前記シール板移動規制部を回動させることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至6の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板規制状態切替ステップでは、前記シール板移動規制部を付勢する付勢部の付勢力に抗して前記シール板移動規制部を前記軸方向に沿って移動させることで、前記シール板規制状態を前記シール板非規制状態に切り替える、請求項1乃至7の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板規制状態切替ステップでは、前記シール板移動規制部と前記シール板とが係合しない状態と、前記シール板移動規制部と前記シール板とが係合する状態とを切り替えることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至4の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板移動規制部は前記軸方向に沿って延在するシール板落ち止めピンであり、
前記シール板規制状態切替ステップでは、前記シール板落ち止めピンの先端と前記シール板に形成された凹部とが係合しない状態と、前記シール板落ち止めピンの先端と前記シール板に形成された凹部とが係合する状態とを切り替えることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項9に記載のガスタービンの分解組立方法。 - 前記シール板移動規制部はシール板落ち止めピースであり、
前記シール板規制状態切替ステップでは、前記シール板に形成された凹部に装着された前記シール板落ち止めピースを前記凹部から取り外すことにより、又は、前記凹部に前記シール板落ち止めピースを装着することにより、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項9に記載のガスタービンの分解組立方法。 - 前記シール板規制状態切替ステップでは、前記ロータディスクに設けられた雌ねじに前記シール板移動規制部に設けられた雄ねじが螺合した状態で、前記シール板移動規制部を回動させることで、前記シール板非規制状態と前記シール板非規制状態とを切り替える、請求項9に記載のガスタービンの分解組立方法。
- 前記シール板と前記シール板移動規制部とは一体的に構成されており、
前記シール板規制状態切替ステップでは、前記シール板移動規制部を塑性変形させることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至6の何れか1項に記載のガスタービンの分解組立方法。 - 前記シール板規制状態切替ステップでは、前記シール板移動規制部に設けられた雄ねじに、前記シール板を貫通する貫通孔に設けられた雌ねじが螺合した状態で、前記シール板移動規制部を回動させることで、前記シール板非規制状態と前記シール板規制状態とを切り替える、請求項1乃至6の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板を前記径方向に移動させることで、前記シール板が動翼の前記軸方向に沿った移動を規制しない動翼非規制状態と、前記シール板が前記動翼の前記軸方向に沿った移動を規制する動翼規制状態とを切り替える動翼規制状態切替ステップを更に備える、請求項1乃至14の何れか1項に記載のガスタービンの分解組立方法。
- 前記シール板のうち前記軸方向における前記他方側を向く面には、治具が係合可能な治具係合用凹部又は治具係合用凸部が形成されており、
前記動翼規制状態切替ステップは、
前記治具係合用凹部又は前記治具係合用凸部に前記治具を係合させた状態で前記シール板を前記径方向に移動させることで、前記動翼非規制状態と前記動翼規制状態とを切り替える、請求項15に記載のガスタービンの分解組立方法。 - 前記動翼と前記ロータディスクとが嵌合しない動翼非嵌合状態と、前記動翼と前記ロータディスクとが嵌合する動翼嵌合状態とを切り替える動翼嵌合状態切替ステップを更に備える、請求項15又は16に記載のガスタービンの分解組立方法。
- ガスタービンの動翼のためのシール板組立体であって、
ロータディスクに対して軸方向における一方側に設けられるように構成されたシール板と、
前記ロータディスクに対する前記シール板の前記ロータディスクの径方向の移動を規制するためのシール板移動規制部と、
を備え、
前記シール板移動規制部は、前記シール板移動規制部の少なくとも一部が前記シール板から前記軸方向における他方側に向けて突出して前記シール板の前記径方向の移動を規制するシール板規制状態と、前記シール板の前記径方向の移動を規制しないシール板非規制状態と、の間で切替可能に構成された、シール板組立体。 - 前記軸方向における一方側は前記軸方向における下流側であり、前記軸方向における他方側は前記軸方向における上流側である、請求項18に記載のシール板組立体。
- 前記シール板は、前記軸方向に沿って延在する雌ねじ又は雄ねじの一方を含み、
前記シール板移動規制部は、前記雌ねじ又は雄ねじの一方に螺合する前記雌ねじ又は雄ねじの他方を含む、請求項18又は19に記載のシール板組立体。 - 前記シール板移動規制部と前記シール板との間に配置された座金を更に備える、請求項20に記載のシール板組立体。
- 前記シール板移動規制部のうち前記軸方向における他方側の端部は、前記シール板移動規制部を回動させるための治具が係合可能な治具係合部を有する、請求項18乃至21の何れか1項に記載のシール板組立体。
- 前記シール板移動規制部を前記軸方向における前記他方側に付勢する付勢部を更に備える、請求項18乃至22の何れか1項に記載のシール板組立体。
- 前記付勢部は、皿ばね、コイルばね、又は板バネを含む、請求項23に記載のシール板組立体。
- 前記シール板は、前記径方向に延在する板状部と、前記シール板移動規制部を少なくとも部分的に収容するための収容室を形成する収容室形成部とを含み、
前記シール板移動規制部は、前記収容室形成部のうち前記軸方向における前記他方側に形成された開口部から前記シール板移動規制部の一部が突出可能に構成された、請求項18乃至24の何れか1項に記載のシール板組立体。 - 前記収容室形成部は、前記板状部に対して前記軸方向における前記一方側に突出するように構成された、請求項25に記載のシール板組立体。
- 前記収容室形成部は、前記ロータディスクの周方向における前記シール板移動規制部が存在する範囲と存在しない範囲の両方において、前記板状部に対して前記軸方向における前記一方側に突出するように構成された、請求項26に記載のシール板組立体。
- 前記収容室形成部は、前記ロータディスクの周方向における前記シール板の80%以上の範囲に亘って、前記板状部に対して前記軸方向における前記一方側に突出するように構成された、請求項26又は27に記載のシール板組立体。
- 前記収容室形成部のうち前記軸方向における前記一方側の端面は、前記軸方向に直交する平面に沿って形成された、請求項25乃至28の何れか1項に記載のシール板組立体。
- 前記収容室形成部は、前記シール板のうち前記径方向における外側寄りに設けられた、請求項25乃至29の何れか1項に記載のシール板組立体。
- 前記収容室形成部は、前記収容室とは異なる位置に肉抜き部を有する、請求項25乃至30の何れか1項に記載のシール板組立体。
- 前記板状部は、厚さの異なる2以上の部分を含む、請求項25乃至31の何れか1項に記載のシール板組立体。
- 前記シール板又は前記シール板移動規制部の一方は、前記軸方向に沿って延在する筒状部を含み、
前記筒状部の内周面に雌ねじが形成されており、
前記シール板又は前記シール板移動規制部の他方は、前記雌ねじに螺合する雄ねじを含み、
前記シール板移動規制部は、鍔部と、前記鍔部から前記軸方向における前記他方側へ向けて突出する突出部と、を含み、
前記シール板組立体は、前記筒状部の外周側に設けられるとともに前記鍔部を前記軸方向における前記他方側に付勢するように構成された皿バネを更に備え、
前記シール板は、前記軸方向における前記他方側への前記鍔部の移動を規制するように前記鍔部に対して前記軸方向における前記他方側に設けられた鍔部移動規制部を含む、請求項18乃至32の何れか1項に記載のシール板組立体。 - 前記シール板のうち前記軸方向における前記他方側を向く面には、前記ロータディスクの周方向における長さが前記ロータディスクの径方向における長さよりも長い少なくとも一つの長穴が形成された、請求項18乃至33の何れか1項に記載のシール板組立体。
- ロータディスクと、
前記ロータディスクに装着された複数の動翼と、
前記動翼のための少なくとも一つのシール板組立体と、を備え、
前記少なくとも一つのシール板組立体は、請求項18乃至34の何れか1項に記載のシール板組立体を含む、ガスタービンロータ。 - 前記ロータディスクの端面との間に前記シール板を保持するためのロッキングプレートと、
前記ロッキングプレートを前記ロータディスクの前記端面側に押し付けるように構成されたロッキングピースと、
を更に備える、請求項35に記載のガスタービンロータ。 - ロータディスクと、
前記ロータディスクに装着された複数の動翼と、
前記動翼のための少なくとも一つのシール板組立体と、を備え、
前記少なくとも一つのシール板組立体は、前記ロータディスクの周方向において互いに隣接する一対のシール板組立体を含み、
前記一対のシール板組立体の各々は、請求項18乃至34の何れか1項に記載のシール板組立体である、ガスタービンロータ。 - ロータディスクと、
前記ロータディスクに装着された複数の動翼と、
前記動翼のための少なくとも一つのシール板組立体と、を備え、
前記少なくとも一つのシール板組立体は、前記ロータディスクの回転中心に対して対称位置に配置される複数のシール板組立体を含み、
前記対称位置に配置される複数のシール板組立体の各々は、請求項18乃至34の何れか1項に記載のシール板組立体であるガスタービンロータ。 - 請求項35乃至38の何れか1項に記載のガスタービンロータと、前記ガスタービンロータを覆うケーシングとを備えるガスタービン。
- ガスタービンの製造方法であって、
前記ガスタービンは、
ロータディスクに対して軸方向における一方側に設けられたシール板と、
前記ロータディスクに対する前記シール板の前記ロータディスクの径方向の移動を規制するシール板移動規制部と、
を備え、
前記製造方法は、前記軸方向における他方側から前記シール板移動規制部を操作することで、前記シール板移動規制部が前記シール板の前記径方向の移動を規制しないシール板非規制状態から、前記シール板移動規制部の少なくとも一部が前記シール板から前記軸方向における前記他方側に向けて突出して前記シール板の前記径方向の移動を規制するシール板規制状態へ切り替えるシール板規制状態切替ステップを備える、ガスタービンの製造方法。
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- 2017-12-13 MX MX2019006639A patent/MX2019006639A/es unknown
- 2017-12-13 KR KR1020197016122A patent/KR102249570B1/ko active IP Right Grant
- 2017-12-13 EP EP17881406.7A patent/EP3536905B1/en active Active
- 2017-12-13 US US16/463,588 patent/US11111799B2/en active Active
- 2017-12-13 JP JP2018556706A patent/JP6817329B2/ja active Active
- 2017-12-13 CN CN201780075963.XA patent/CN110062838B/zh active Active
- 2017-12-13 WO PCT/JP2017/044653 patent/WO2018110580A1/ja unknown
- 2017-12-13 TW TW106143673A patent/TWI705182B/zh active
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Also Published As
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KR20190070994A (ko) | 2019-06-21 |
MX2019006639A (es) | 2019-08-01 |
EP3536905A1 (en) | 2019-09-11 |
JP6817329B2 (ja) | 2021-01-20 |
KR102249570B1 (ko) | 2021-05-07 |
EP3536905B1 (en) | 2021-04-14 |
JPWO2018110580A1 (ja) | 2019-10-24 |
CN110062838B (zh) | 2021-09-14 |
EP3536905A4 (en) | 2020-01-08 |
SA519401838B1 (ar) | 2022-05-12 |
TWI705182B (zh) | 2020-09-21 |
US11111799B2 (en) | 2021-09-07 |
CN110062838A (zh) | 2019-07-26 |
TW201829902A (zh) | 2018-08-16 |
US20190277147A1 (en) | 2019-09-12 |
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