WO2016067978A1 - 排気装置及びガスタービン - Google Patents
排気装置及びガスタービン Download PDFInfo
- Publication number
- WO2016067978A1 WO2016067978A1 PCT/JP2015/079609 JP2015079609W WO2016067978A1 WO 2016067978 A1 WO2016067978 A1 WO 2016067978A1 JP 2015079609 W JP2015079609 W JP 2015079609W WO 2016067978 A1 WO2016067978 A1 WO 2016067978A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- cooling air
- diffuser
- exhaust
- partition member
- flow path
- Prior art date
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/30—Exhaust heads, chambers, or the like
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/08—Cooling; Heating; Heat-insulation
- F01D25/12—Cooling
-
- 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
- F01D25/08—Cooling; Heating; Heat-insulation
- F01D25/14—Casings modified therefor
-
- 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
- F01D25/16—Arrangement of bearings; Supporting or mounting bearings in casings
- F01D25/162—Bearing supports
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/24—Casings; Casing parts, e.g. diaphragms, casing fastenings
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/24—Casings; Casing parts, e.g. diaphragms, casing fastenings
- F01D25/26—Double casings; Measures against temperature strain in casings
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02C—GAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
- F02C7/00—Features, components parts, details or accessories, not provided for in, or of interest apart form groups F02C1/00 - F02C6/00; Air intakes for jet-propulsion plants
- F02C7/12—Cooling of plants
- F02C7/16—Cooling of plants characterised by cooling medium
- F02C7/18—Cooling of plants characterised by cooling medium the medium being gaseous, e.g. air
Definitions
- the present invention relates to, for example, an exhaust device that processes exhaust gas discharged from a gas turbine, and also relates to the gas turbine.
- a general gas turbine is composed of a compressor, a combustor, and a turbine.
- the compressor compresses the air taken in from the air intake port into high-temperature and high-pressure compressed air.
- the combustor obtains high-temperature and high-pressure combustion gas by supplying fuel to the compressed air and burning it.
- the turbine is driven by the combustion gas and drives a generator connected on the same axis.
- an exhaust device is provided on the downstream side of the turbine.
- the turbine is configured such that a plurality of stationary blades and a plurality of moving blades are alternately arranged in the flow direction of the combustion gas in a turbine casing.
- an exhaust chamber is disposed on the downstream side via the exhaust casing.
- the exhaust chamber has an exhaust diffuser supported by the exhaust casing.
- the exhaust diffuser is formed by connecting a cylindrical outer diffuser and an inner diffuser by a strut shield.
- the strut has one end connected to a bearing that supports the rotor, and the other end connected to the exhaust casing.
- the exhaust diffuser is cooled by drawing cooling air from the outside between the strut and the strut shield.
- Patent Document 1 discloses a non-heating unit that is provided at an inlet of an exhaust diffuser cooling device to which a cooling fluid fed from a guide pipe of a cooling unit is supplied and that cools the exhaust diffuser through a passage of the cooling fluid of the exhaust diffuser cooling device. And a through-hole plate that is divided into a heating unit that cools the paragraph casing.
- the vent plate is provided for the purpose of blocking the radiant heat, and is provided in the exhaust diffuser. A part of the supplied cooling fluid passes through the through-hole plate and is supplied to a non-heating unit that cools the exhaust diffuser. After cooling the exhaust diffuser, it is discharged to the outside.
- Patent Document 2 discloses a second cooling system in which a partition wall is provided on the outer peripheral side of the inner peripheral casing, and an air chamber is formed between the inner peripheral casing and the partition wall.
- the exhaust diffuser is cooled by drawing cooling air from the outside between the strut and the strut shield.
- cooling air drawn between the strut and the strut shield from the outside.
- the air that has cooled the exhaust diffuser is discharged to the exhaust gas flow path, there is a problem that the exhaust gas temperature is lowered and the turbine efficiency is lowered.
- the through-hole plate disclosed in Patent Document 1 has a structure that allows a cooling fluid to pass therethrough, and the passage formed between the through-hole plate and the outer diffuser has poor cooling efficiency and cannot be said to have good cooling performance. Further, the air chamber disclosed in Patent Document 2 is not provided in the outer diffuser. When the air diffuser disclosed in Patent Document 1 is attached to the outer diffuser disclosed in Patent Document 2, a load is applied to the outer diffuser, and the load supporting method becomes difficult.
- This invention solves the subject mentioned above, and aims at providing the exhaust apparatus and gas turbine which can cool an exhaust diffuser efficiently.
- an exhaust system includes a casing formed in an annular shape, an outer diffuser formed in an annular shape and supported on the inner side in the radial direction of the casing, An inner diffuser that forms an exhaust gas flow channel with the outer diffuser by being disposed inside the outer diffuser in a radial direction, and is formed in a cylindrical shape with one end in the longitudinal direction on the outer side A strut cover connected to the diffuser and having the other end connected to the inner diffuser, a cooling air introduction portion provided upstream or downstream of the exhaust gas passage from the strut cover in the vehicle compartment, and the outer side A partition member that is formed in an annular shape so as to cover the outer side in the radial direction of the diffuser and is supported by the vehicle compartment, and provided between the outer diffuser and the partition member It is characterized in that it has a cooling air passage formed to guide the cooling air introduced from the cooling air introducing portion to the strut cover channel of the strut cover inner being.
- a partition member is newly provided outside the outer diffuser to form a cooling air passage having a narrower passage area than that of the conventional structure, so that the cooling performance of the outer diffuser can be improved. Moreover, since the partition member is supported from the passenger compartment side, the mounting structure is simplified and the maintainability can be improved.
- the partition member includes one end in the axial direction as a free end whose front end is not fixed, and the other end includes a fixed end fixed to the vehicle interior.
- the cooling air flow path is disposed so as to form a flow path from the free end toward the fixed end.
- the entire flow rate of the cooling air supplied from the cooling air introduction part is folded back at the free end of the partition member and flows in the cooling air flow path toward the fixed end, so that cooling of the outer diffuser is promoted, and the strut cover flow path The cooling air flows smoothly into the unit.
- the outer diffuser is supported by the vehicle compartment via a support member that is annularly disposed in the circumferential direction at one end in the axial direction, and the partition member is the support member It is characterized by being arranged radially inside.
- the partition member can be arranged on the radially inner side of the support member that supports the outer diffuser, the partition member can be brought close to the outer diffuser within a range that does not interfere with the outer air diffuser, and the flow passage cross-sectional area of the cooling air passage can be formed narrowly. Diffuser cooling is enhanced.
- the support member is formed by a plurality of divided pieces that are divided into a plurality of spaces in the circumferential direction, and the divided pieces are arranged in the circumferential direction when viewed from the axial direction. Further, the at least one gap is disposed between the strut covers.
- the cooling air supplied from the cooling air introduction part passes through the gaps between the support members, thereby promoting the dispersion of the cooling air in the circumferential direction.
- the divided pieces are arranged adjacent to each other in the circumferential direction, one end in the axial direction is fixed to the vehicle compartment, and the other end is on a radially outer wall surface of the outer diffuser. It is fixed, and the gap between the adjacent divided pieces is arranged so as to form a constant width in the axial direction.
- the exhaust device is characterized in that the partition member is divided into a plurality of portions in the circumferential direction, and seal portions are provided at both ends in the circumferential direction of the divided partition member pieces.
- the cooling air entering the cooling air flow path flows into the cooling air flow path from the free end side without short-circuiting, so that the cooling air in the circumferential direction The flow is made uniform.
- the partition member piece can be partially removed, and maintenance is improved.
- the cooling air flow path is provided outside a connecting portion between the strut cover and the outer diffuser.
- the cooling portion is cooled when the cooling air passes through the cooling air flow path. Thermal stress acting on the connecting portion can be reduced.
- the exhaust device is characterized in that the cooling air introduction portion is provided to face the outside in the radial direction of the partition member.
- the cooling air introduced into the passenger compartment from the cooling air introduction portion is uniformized in the circumferential direction in the process of passing through the support member and the partition member, and is guided to the inside of the strut cover through the cooling air flow path.
- the outer diffuser can be uniformly cooled in the circumferential direction by the cooling air.
- an annular space portion is provided between the vehicle compartment and the partition member, the cooling air introduction portion communicates with the space portion, and the cooling air flow path is One end portion communicates with the space portion, and the other end portion communicates with the inside of the strut cover.
- the cooling air introduced into the passenger compartment from the cooling air introduction portion enters the cooling air flow path via the space portion having a certain volume, so that the space portion serves as a buffer tank, and the cooling air Is uniformized in the circumferential direction in the space portion and then flows into the cooling air flow path, and the outer diffuser can be uniformly cooled in the circumferential direction by the cooling air.
- the exhaust device is characterized in that a plurality of the cooling air introduction sections are provided at predetermined intervals in the circumferential direction.
- a gas turbine includes a compressor that compresses air, a combustor that mixes and burns compressed air and fuel compressed by the compressor, and a combustion gas generated by the combustor. It has a turbine that obtains rotational power, and the exhaust device that processes the exhaust discharged from the turbine.
- the outer diffuser can be efficiently cooled with a small flow rate, and an increase in the amount of cooling air can be suppressed. Therefore, an increase in the amount of cooling air discharged to the exhaust gas passage can be suppressed, and the exhaust gas The turbine efficiency can be maintained by preventing the temperature from decreasing.
- cooling air having a small flow area is provided between the partition member supported from the passenger compartment and the outer surface in the radial direction of the outer diffuser. Since the cooling air flow path leading to the inside of the strut cover is provided, the flow rate of the cooling air in the cooling air flow path is increased, and the cooling performance of the outer diffuser is improved. Further, the outer diffuser can be efficiently cooled with a small flow rate, and the power generation efficiency can be improved. Furthermore, since the partition member is supported from the passenger compartment, the structure is simplified and the maintainability is improved.
- FIG. 1 is a cross-sectional view illustrating the exhaust device of the first embodiment.
- 2 is a cross-sectional view taken along the line II-II of FIG. 1 showing the exhaust device.
- FIG. 3 is a cross-sectional view illustrating a second cooling path in the exhaust device.
- FIG. 4 is a schematic diagram illustrating the overall configuration of the gas turbine.
- FIG. 5 is a cross-sectional view illustrating the exhaust device of the second embodiment.
- FIG. 6 is a cross-sectional view of a main part showing the exhaust device of the third embodiment.
- FIG. 7 is a cross-sectional view of a main part showing the exhaust device of the fourth embodiment.
- FIG. 4 is a schematic diagram illustrating the overall configuration of the gas turbine according to the first embodiment.
- the gas turbine 10 includes a compressor 11, a combustor 12, and a turbine 13.
- a compressor 11 and a turbine 13 are disposed outside a rotor (rotary shaft) 32 along a direction of an axis C (hereinafter referred to as an axial direction), and between the compressor 11 and the turbine 13.
- a plurality of combustors 12 are arranged.
- the gas turbine 10 is connected to a generator (electric motor) (not shown) on the same axis and can generate power.
- the compressor 11 has an air intake 20 for taking in air, an inlet guide vane (IGV: Inlet Guide Vane) 22 is disposed in the compressor casing 21, and a plurality of stationary blades 23 and a plurality of moving blades. 24 are alternately arranged in the air flow direction (axial center C direction).
- the compressor 11 generates high-temperature and high-pressure compressed air by compressing the air taken in from the air intake port 20 and supplies the compressed air to the combustor 12.
- the compressor 11 can be started by an electric motor connected on the same axis.
- the combustor 12 is supplied with high-temperature and high-pressure compressed air and fuel that are compressed by the compressor 11 and stored in the turbine casing 26, and burns to generate combustion gas.
- a plurality of stationary blades 27 and a plurality of moving blades 28 are alternately arranged in the turbine casing 26 in the flow direction (axial direction) of the combustion gas.
- the turbine casing 26 is provided with an exhaust chamber 30 via an exhaust casing 29 on the downstream side.
- the exhaust chamber 30 has an exhaust diffuser 31 connected to the turbine 13.
- the turbine 13 is driven by combustion gas from the combustor 12 and can drive a generator connected on the same axis.
- the compressor 11, the combustor 12, and the turbine 13 are provided with a rotor 32 along the axial direction so as to penetrate the central portion of the exhaust chamber 30.
- the end of the rotor 32 on the compressor 11 side is rotatably supported by the bearing portion 33, and the end of the exhaust chamber 30 side is rotatably supported by the bearing portion 34.
- the rotor 32 is fixed in the compressor 11 by stacking a plurality of disks on which the moving blades 24 are mounted.
- the rotor 32 is fixed by the turbine 13 by stacking a plurality of disks on which the moving blades 28 are mounted.
- the drive shaft of the generator is connected with the edge part by the side of the air intake port 20 side.
- the compressor casing 21 of the compressor 11 is supported by the legs 35
- the turbine casing 26 of the turbine 13 is supported by the legs 36
- the exhaust chamber 30 is supported by the legs 37. Yes.
- the air taken in from the air intake 20 in the compressor 11 passes through the inlet guide vane 22, the plurality of stationary vanes 23, and the moving vanes 24 and is compressed to become high-temperature / high-pressure compressed air. .
- a predetermined fuel is supplied to the compressed air in the combustor 12 and burned.
- high-temperature and high-pressure combustion gas generated in the combustor 12 passes through a plurality of stationary blades 27 and moving blades 28 in the turbine 13 to drive and rotate the rotor 32, and is connected to the rotor 32. Drive the generator. And the combustion gas which drove the turbine 13 is discharge
- the gas turbine 10 thus configured is provided with an exhaust device for processing the exhaust gas discharged from the turbine 13.
- 1 is a cross-sectional view showing the exhaust device of the first embodiment
- FIG. 2 is a cross-sectional view taken along the line II-II of FIG. 1 showing the exhaust device
- FIG. 3 is a cross-sectional view showing a second cooling path in the exhaust device.
- the axial center direction of the rotor 32 is the axial direction, which is the flow direction of the combustion gas (exhaust gas) G.
- the upstream side in the flow direction of the combustion gas (exhaust gas) G is referred to as a front side (front), and the downstream side in the flow direction of the combustion gas (exhaust gas) G is referred to as a rear side (rear).
- the turbine casing 26 has a cylindrical shape (annular), and a plurality of stationary blades 27 and moving blades 28 are alternately arranged along the axial direction.
- the exhaust casing 29 is arranged on the downstream side in the flow direction of the cylinder and is connected by a fastening bolt 41.
- the exhaust casing 29 has a cylindrical shape, and the exhaust chamber 30 is disposed downstream in the flow direction of the combustion gas G.
- the exhaust chamber 30 has a cylindrical shape (annular shape).
- the exhaust casing 29 and the exhaust chamber 30 are connected by an exhaust chamber support 42 that can absorb thermal expansion.
- the exhaust casing 29 is provided with an exhaust diffuser 31 having a cylindrical shape inside.
- the exhaust diffuser 31 is configured by connecting an outer diffuser 43 and an inner diffuser 44 having a cylindrical shape (annular) by a strut cover (strut shield) 45.
- the strut cover 45 has a hollow structure such as a cylindrical shape or an elliptical cylinder shape, is inclined by a predetermined angle in the circumferential direction with respect to the radial direction, and a plurality of the strut covers 45 are arranged at equal intervals in the circumferential direction of the exhaust diffuser 31 (this embodiment). Then, 6) are provided.
- the inner diffuser 44 is disposed inside the outer diffuser 43 in the radial direction, so that an exhaust gas flow path F through which exhaust gas (combustion gas) G flows is formed between the inner and outer diffusers 43, 44. ing.
- the rotor 32 is rotatably supported by the bearing portion 34, and the bearing portion 34 is supported from the exhaust casing 29 via a strut 47.
- a strut 47 is disposed inside the strut cover 45.
- a strut cover channel 65 through which the cooling air A flows is formed between the strut cover 45 and the strut 47 to cool the strut 47.
- the outer diffuser 43 of the exhaust diffuser 31 has a front end 43c on the front side in the axial direction extending toward the turbine casing 26 and abutting against the blade ring 48.
- a gas seal 49 having a ring shape in the radial direction is provided between the exhaust casing 29 and the outer diffuser 43 disposed radially inward from the exhaust casing 29.
- the outer diffuser 43 is integrally formed with the strut cover 45 and the inner diffuser 44, and the exhaust casing 29 is provided by a diffuser support (support member) 50 at a rear end 43 d on the rear side in the axial direction from the strut 47. It is supported from.
- the diffuser support 50 has a strip shape, extends along the axial direction, and is annularly arranged at a predetermined interval in the circumferential direction. As shown in FIG. 3, the diffuser support 50 is provided by being divided into a plurality of support dividing pieces 50a in the circumferential direction. Each support split piece 50 a has one end fastened to the exhaust casing 29 and the other end fastened to the outer diffuser 43. The support divided piece 50a is fixed to the exhaust casing 29 so that a gap S2 having a constant width is formed in the axial direction between the support divided piece 50a and the support divided pieces 50a arranged adjacent to each other in the circumferential direction.
- the exhaust casing 29 is provided so as to cover the diffuser support 50 from the outside, and a gas seal 51 is provided between the rear end portion of the exhaust casing 29 and the rear end portion of the outer diffuser 43.
- the gas seals 49 and 51 seal the space between the annular space surrounded by the exhaust casing 29 and the outer diffuser 43 and the blade ring 48 and the exhaust chamber 30 adjacent to the upstream or downstream side in the axial direction. The flow of combustion gas or cooling air in the direction is blocked.
- the exhaust casing 29 is provided with a plurality of first cooling air inlets 61 at predetermined positions in the circumferential direction at positions corresponding to the struts 47 in the axial direction.
- the plurality of first cooling air introduction ports 61 can introduce external cooling air A into the strut cover channel 65 between the strut cover 45 and the strut 47.
- the exhaust casing 29 has a second cooling air introduction port (cooling air introduction portion) 62 at a predetermined interval in the circumferential direction at a position downstream of the exhaust gas flow path F from the strut 47 (strut cover 45).
- a plurality are provided.
- the plurality of second cooling air introduction ports 62 are openings through which the external cooling air A is introduced for the purpose of cooling the outer diffuser 43.
- the cooling air A cools the outer diffuser 43 in a cooling air flow path 63 described later, and then is supplied to the strato cover flow path 65 and merges with the flow of the cooling air A supplied from the first cooling air introduction port 61. After 47 is cooled, it is discharged to the combustion gas flow path F.
- the outer diffuser 43 has an annular outer shape in the radial direction, and has a flow passage area smaller than the second cooling air introduction port 62, and the cooling air A introduced from the second cooling air introduction port 62 is covered with the strut cover.
- a cooling air passage 63 is provided to be introduced into the strut cover passage 65 between 45 and the strut 47.
- the cooling air flow path 63 has an axially rearward one end portion of the annular partition member 64 as a free end where the tip is not fixed and an axially forward side as a fixed end in the axial direction of the exhaust casing 29. It is formed by being fixed to a surface facing the rear side and arranged so as to cover the outer diffuser 43 on the outer side in the radial direction of the outer diffuser 43. That is, the partition member 64 has a cylindrical shape larger in diameter than the outer diffuser 43, and has a front end (one end) in the axial direction fixed to the exhaust casing 29 by welding, and a rear end in the axial direction. A gap S1 is provided between the free end of the (other end) and the rear end 43d on the outer diffuser 43 side.
- the cooling air flow path 63 is connected between the partition member 64 and the outer surface of the outer diffuser 43 in the radial direction, and between the strut cover 45 extending from the outer diffuser 43 to the front side in the axial direction and the outer diffuser 43. It is formed between the outside of the part 45b.
- the partition member 64 is divided into two partition member pieces (an upper half partition member piece 64 b and a lower half partition member piece 64 c) at the horizontal flange portion 64 a and is arranged around the rotor 32 in an annular shape.
- the upper half partition member piece 64b and the lower half partition member piece 64c are fastened by a fastening bolt 64d (not shown).
- a seal member 64e (not shown) is disposed on the horizontal flange portion 64a, and the cooling air A flowing in the axial direction on the outer surface of the partition member 64 leaks from the horizontal flange portion 64a and enters the cooling air flow path 63. Preventing short passes.
- the partition member 64 is not limited to two divisions, and may be three or more divisions.
- the temperature difference between the exhaust casing 29 and the outer diffuser 43 increases, and the partition member 64 fixed to the exhaust casing 29 and the outer diffuser 43 approach each other in the radial direction and interfere with each other. There is a risk. For this reason, the exhaust diffuser 31 including the outer diffuser 43 is attached so that the minimum gap can be maintained even when approaching closest. That is, the gap in the cooling air flow path 63 is determined by adjusting the radial gap between the partition member 64 and the outer diffuser 43 so that the minimum gap can be maintained during operation.
- the cooling air flow path 63 is set so that a narrow flow path cross-sectional area can be maintained during operation, the flow rate of the cooling air A (A1) flowing through the cooling air flow path 63 is high during operation. In other words, the cooling performance for the outer diffuser 43 by the cooling air A is improved.
- the strut cover 45 is provided with a flange portion 45a in which a radially outer end of the exhaust diffuser 31 is expanded and bent outward.
- the outer diffuser 43 has an opening 43a at a position where the strut cover 45 is connected.
- the flange portion 45a of the strut cover 45 is in close contact with the periphery of the opening 43a of the outer diffuser 43, and is connected by welding.
- the outer diffuser 43 has a rear end portion 43 d supported by the exhaust casing 29 via a plurality of diffuser supports 50, and the inner diffuser 44 is connected via a plurality of strut covers 45.
- a bending load acts on the connecting portion 45 b between the flange portion 45 a of the strut cover 45 and the opening portion 43 a of the outer diffuser 43.
- the outer diffuser 43 is heated by the high-temperature exhaust gas G flowing through the exhaust gas flow path F, and in particular, thermal stress acts on the connecting portion 45b between the flange portion 45a of the strut cover 45 and the opening portion 43a of the outer diffuser 43.
- the cooling performance by the cooling air A1 flowing through the cooling air flow path 63 is improved, and the outer diffuser 43 and the connecting portion 45b between the strut cover 45 and the outer diffuser 43 are cooled to reduce the thermal stress. I am doing so.
- the exhaust casing 29 has an outer diffuser 43 disposed radially inside and a partition member 64 disposed radially outside the outer diffuser 43, so that the exhaust casing 29 is disposed between the exhaust casing 29 and the partition member 64.
- An annular space R is provided.
- a plurality of diffuser supports 50 that connect the exhaust casing 29 and the outer diffuser 43 are disposed in the space R, and the partition members 64 are disposed on the inner side in the radial direction of the diffuser supports 50.
- the second cooling air introduction port 62 is provided to face the outside in the radial direction of the partition member 64. Therefore, the second cooling air introduction port 62 communicates with the space portion R, and the cooling air flow path 63 has one end portion communicating with the space portion R and the other end portion communicating with the strut cover flow path 65. .
- the partition member 64 is disposed on the radially outer side of the outer diffuser 43, the front end portion (fixed end) on the front side in the axial direction is fixed to the exhaust casing 29, and the rear end portion (free end) on the rear side in the axial direction.
- a gap S1 is provided on the side. That is, since the second cooling air introduction port 62 is located on the axially front side with respect to the partition member 64 and the gap S is located on the axially rear side of the partition member 64, the second cooling air introduction port 62, the space A reverse S-shaped flow path extending to the portion R, the gap S1, the cooling air flow path 63, and the strut cover 45 is formed. Further, since the cooling air flow path 63 has a passage cross-sectional area smaller than that of the space portion R, the cooling air flow path 63 functions as a throttle portion, and the flow rate of the cooling air A1 increases.
- the exhaust casing 29 and the outer diffuser 43 have a structure that is vertically divided into two parts, and are formed into a cylindrical shape by being bolted by horizontal flange portions 29a and 43b. Therefore, similarly, the partition member 64 has a structure divided into two in the vertical direction, and has a cylindrical shape by being bolted by the horizontal flange portion 64a.
- the negative pressure is the highest in the vicinity of the downstream side in the axial direction of the rotor blade 28 at the final stage.
- the cooling air A flowing in the strut cover channel 65 is discharged from the axial upstream end of the inner diffuser 44 into the exhaust diffuser 31 in the vicinity of the rotor blade 28 at the final stage. Therefore, a negative pressure acts on the inside of the strut cover channel 65, and a suction force acts on each cooling air inlet 61, 62.
- external air is introduced into the space between the strut cover 45 and the strut 47 from the first cooling air introduction port 61 by suction force.
- external air is introduced from the second cooling air inlet 62 into the strut cover channel 65 through the cooling air channel 63 by suction force.
- the partition member 64 is attached to the outer diffuser 43 so that a minimum gap can be secured during operation. Accordingly, during normal operation, when the cooling air A1 passes through the cooling air flow path 63, the flow velocity increases from the space R and the vicinity of the diffuser support 50. As a result, the flow rate per unit time by the cooling air A1 increases, and the cooling of the outer surface of the outer diffuser 43 is promoted. Therefore, the connection part 45b with the outer diffuser 43 and the strut cover 45 can be efficiently cooled with a smaller flow rate of the cooling air A1 than in the past.
- the exhaust diffuser 31 is cooled only by the cooling air A introduced from the first cooling air introduction port 61.
- a part of the cooling air A introduced from the first cooling air introduction port 61. Is introduced from the second cooling air introduction port 62, and the exhaust diffuser 31 is further cooled by this part of the cooling air A.
- the cooling air A introduced from the second cooling air introduction port 62 is smaller than the cooling air A introduced from the first cooling air introduction port 61, the flow velocity increases when passing through the cooling air flow path 63.
- the connection part 45b with the diffuser 43 and the strut cover 45 can be cooled efficiently.
- the exhaust device includes the exhaust casing 29, the outer diffuser 43 supported on the inner side in the radial direction of the exhaust casing 29, and the inner side disposed on the inner side in the radial direction of the outer diffuser 43.
- An exhaust gas flow path F is formed by the diffuser 44.
- the strut cover 45 has one end connected to the outer diffuser 43 and the other end connected to the inner diffuser 44.
- the exhaust casing 29 is formed in an annular shape so as to cover the second cooling air introduction port 62 provided on the downstream side of the exhaust gas passage F from the strut cover 45 and the outer side in the radial direction of the outer diffuser 43.
- a partition member 64 supported by the passenger compartment 29 is provided.
- the exhaust casing 29 is provided between the outer diffuser 43 and the partition member 64, and the cooling air A introduced from the second cooling air introduction part 62 is supplied to the strut cover channel 65 inside the strut cover 45.
- a cooling air flow path 63 formed so as to be guided is provided.
- the cooling air A introduced into the exhaust casing 29 from the second cooling air introduction port 62 is guided to the inside of the strut cover 45 through the cooling air flow path 63.
- a partition member 64 formed in an annular shape so as to cover the outer diffuser 43 from the radially outer side is fixed to the exhaust casing 29. .
- the partition member 64 is fixed to the exhaust casing 29 so as to maintain a minimum gap that does not interfere with the outer diffuser during operation.
- the outer diffuser 43 can be efficiently cooled with a smaller flow rate than before, and an increase in the amount of cooling air can be suppressed. Further, since the partition member 64 that forms the cooling air flow path 63 is directly fixed to the exhaust casing 29 without being attached to the outer diffuser 43, the load applied to the outer diffuser 43 is reduced. Furthermore, since the structure is simplified, the maintainability is also improved.
- the partition member 64 has one end portion in the axial direction as a free end whose front end is not fixed, and the other end portion includes a fixed end fixed in the exhaust casing 29 in the axial direction. Are arranged in a ring shape.
- the cooling air channel 63 is arranged to form a channel from the free end toward the fixed end. Accordingly, since the entire amount of the introduced cooling air is folded back at the free end of the partition member and the flow of the cooling air A1 toward the fixed end is formed, the cooling of the outer diffuser is promoted, and the cooling air to the strut cover channel is promoted. Inflow becomes smooth.
- the outer diffuser 43 is supported by the exhaust casing 29 via a diffuser support 50 (support member) that is annularly arranged in the circumferential direction at one end in the axial direction.
- the diffuser support 50 is disposed on the inner side in the radial direction. Therefore, since the partition member 64 can be disposed on the radially inner side of the diffuser support 50 that supports the outer diffuser 43, the partition member 64 can be brought close to the outer diffuser 43, and the flow passage cross-sectional area of the cooling air flow passage 63 can be formed narrowly. The flow rate of the cooling air is increased, and the cooling of the outer diffuser 43 is enhanced.
- the diffuser support 50 is formed of divided pieces 50a that are divided into a plurality of portions with a gap in the circumferential direction, and the divided pieces 50a are arranged in the circumferential direction as viewed from the axial direction.
- the strut covers 45 are attached so that at least one gap S2 is disposed. Therefore, the cooling air A supplied from the second cooling air introduction portion 62 passes through the gap S2 between the split pieces 50a of the diffuser support 50, thereby promoting the dispersion of the cooling air A in the circumferential direction.
- the split pieces 50 a of the diffuser support 50 are arranged adjacent to each other in the circumferential direction, one end in the axial direction is fixed to the exhaust casing 29, and the other end is radially outward of the outer diffuser 43.
- the gap between the adjacent divided pieces 50a is arranged so as to form a constant width in the axial direction. Accordingly, since a uniform gap S2 is formed between the circumferentially divided pieces 50a, the flow rate of the cooling air A flowing through the cooling air flow path 63 is made uniform in the circumferential direction.
- the partition member 64 is divided into a plurality of portions in the circumferential direction, and the partition member pieces 64b and 64c thus divided are provided with seal portions 64e. Therefore, since both ends of the partition member pieces 64b and 64c are sealed by the sealing member, the cooling air A1 entering the cooling air flow path 63 flows into the cooling air flow path 63 from the free end side without performing a short path, The flow of the cooling air in the circumferential direction is made uniform. Further, the partition member pieces 64b and 64c can be partially detached, and the maintainability is improved.
- the strut cover 45 includes a flange portion 45a that expands the other end and bends outward, and the flange portion 45a is connected to the periphery of the opening 43a formed in the outer diffuser 43. Is done.
- a cooling air channel 63 is provided outside the connecting portion 45 b between the strut cover 45 and the outer diffuser 43. Therefore, although the thermal stress due to the exhaust gas G is concentrated on the connecting portion 45b between the strut cover 45 and the outer diffuser 43, when the cooling air A1 passes through the cooling air flow path 63, the connecting portion 45b is cooled. The thermal stress acting on the connecting portion 45b between the strut cover 45 and the outer diffuser 43 can be reduced.
- the second cooling air introduction port 62 is provided facing the outside in the radial direction of the partition member 64. Therefore, the cooling air A ⁇ b> 1 introduced into the exhaust casing 29 through the second cooling air introduction port 62 strikes the partition member 64 and is made uniform in the circumferential direction by changing the flow direction. Furthermore, it will be guide
- an annular space R is provided between the exhaust casing 29 and the partition member 64, the second cooling air introduction port 62 communicates with the space R, and the cooling air flow path 63.
- One end portion of the strut cover 45 communicates with the space portion R, and the other end portion communicates with the inside of the strut cover 45. Accordingly, the cooling air A introduced into the exhaust casing 29 from the second cooling air introduction port 62 enters the cooling air flow path 63 via the space R, so that the cooling air A circulates in the space R. Uniform in the direction.
- the air flow flows into the cooling air flow path 63, and the outer diffuser 43 can be uniformly cooled in the circumferential direction by the cooling air A1.
- a plurality of second cooling air inlets 62 are provided at predetermined intervals in the circumferential direction. Therefore, the cooling air A can be uniformly introduced into the exhaust casing 29 in the circumferential direction.
- the compressor 11 that compresses air, the combustor 12 that mixes and burns the compressed air compressed by the compressor 11 and the fuel, and the combustion gas generated by the combustor 12 are provided with a turbine 13 for obtaining rotational power and an exhaust device for processing the exhaust discharged from the turbine 13. Accordingly, the outer diffuser 43 can be efficiently cooled with a small flow rate by the exhaust device, and an increase in the amount of cooling air can be suppressed, so that an increase in the amount of cooling air discharged to the exhaust gas passage F is suppressed. Therefore, it is possible to prevent the exhaust gas temperature from decreasing and maintain the turbine efficiency.
- FIG. 5 is a cross-sectional view illustrating the exhaust device of the second embodiment.
- symbol is attached
- the exhaust casing 29 has a cylindrical exhaust diffuser 31 disposed inside thereof.
- the exhaust diffuser 31 is configured by connecting an outer diffuser 43 and an inner diffuser 44 by a straddle cover 45.
- the inner diffuser 44 is disposed inside the outer diffuser 43 in the radial direction, so that an exhaust gas flow path F is formed.
- the strut cover 45 has a strut 47 disposed therein.
- the front end portion of the outer diffuser 43 in the axial direction extends to the turbine casing 26 side, and is supported from the exhaust casing 29 by a diffuser support (support member) 71.
- the outer diffuser 43 has an axially rear rear end portion extending toward the exhaust chamber (not shown).
- the exhaust casing 29 is provided so as to cover the diffuser support 71 from the outside, and the axial front end of the outer diffuser 43 disposed radially inward of the exhaust casing 29 and the exhaust casing 29 in the radial direction.
- a gas seal 72 is provided in the radial direction between the two portions.
- the strut cover 45, the inner diffuser 44, and the outer diffuser 43 are integrated by welding, and are supported from the exhaust casing 29 via the diffuser support 71 at the front end 43c of the outer diffuser 43. This is different from the first embodiment.
- the exhaust casing 29 is provided with a plurality of second cooling air inlets (cooling air inlets) 73 at predetermined positions in the circumferential direction at a position upstream of the exhaust gas passage F from the strut 47 (strut cover 45). It has been.
- the plurality of second cooling air introduction ports 73 can introduce external cooling air A into the strut cover flow path 65 between the strut cover 45 and the strut 47 through the outside of the outer diffuser 43.
- the cooling air flow path 74 provided in the outer diffuser 43 is formed by arranging an annular partition member 75 on the outer side in the radial direction of the outer diffuser 43.
- the partition member 75 has a cylindrical shape larger in diameter than the outer diffuser 43, and a fixed end (other end portion) which is a rear end portion in the axial direction is fixed to the exhaust casing 29 by welding, and at the front end portion in the axial direction.
- a clearance S1 is provided on a certain free end (one end) side. Therefore, the cooling air flow path 74 is provided by the partition member 75 on the outside of the outer diffuser 43 and on the outer side of the connecting portion 45 b between the strut cover 45 and the outer diffuser 43.
- the exhaust casing 29 has an outer diffuser 43 disposed inside in the radial direction and a partition member 75 disposed outside the outer diffuser 43 in the radial direction, so that there is no gap between the exhaust casing 29 and the partition member 75.
- An annular space R is provided.
- a plurality of diffuser supports 71 that connect the exhaust casing 29 and the outer diffuser 43 are arranged in the space R, and the partition members 75 are arranged inside the diffuser supports 71 in the radial direction.
- the second cooling air introduction port 73 is provided to face the outside in the radial direction of the partition member 75.
- the external cooling air A is sucked into the space R from the second cooling air introduction port 73, passes between the diffuser supports 71, and the partition member 75. To reach. After reaching the partition member 75, the cooling air A is guided by the partition member 75 and flows forward in the axial direction, and then flows into the cooling air channel 74 through the gap S1. That is, the cooling air A flows forward in the space portion R, flows backward in the axial direction so as to be turned 180 degrees, and reaches the cooling air flow path 74.
- the outer diffuser 43 can be cooled by the cooling air A1 flowing through the cooling air flow path 74, and the vicinity of the connecting portion 45b on the upstream side in the axial direction between the outer diffuser 43 and the strut cover 45 having a large thermal stress can be cooled. Can do.
- the cooling air passage 74 is attached to the exhaust casing 29 so that a minimum clearance can be secured between the partition member 75 and the outer diffuser 43 during operation.
- the flow rate in the air flow path 74 is faster than before. Therefore, the cooling on the outer surface of the outer diffuser 74 is promoted, and the connecting portion between the outer diffuser 43 and the strut cover 45 can be efficiently cooled with less cooling air A than in the past.
- the partition member 74 that forms the cooling air flow path 74 is directly fixed to the exhaust casing 29 without being attached to the outer diffuser 43, the load applied to the outer diffuser 43 is reduced. Furthermore, since the structure is simplified, the maintainability is also improved.
- FIG. 6 is a cross-sectional view of a main part showing the exhaust device of the third embodiment.
- symbol is attached
- the exhaust casing 29 has a second cooling air at a predetermined interval in the circumferential direction at a position downstream of the strut cover 45 in the exhaust gas flow path F.
- a plurality of introduction ports 81 are provided.
- the plurality of second cooling air introduction ports 81 communicate with the space R on the radially inner side of the diffuser support 50 and on the radially outer side of the partition member 64.
- the configurations of the cooling air channel 63 and the partition member 64 are the same as those in the first embodiment.
- the second cooling air inlet 81 is provided on the upstream side of the exhaust gas flow path F from the strut cover 45 in the exhaust casing 29.
- the partition member 64 fixed to the exhaust casing 29 is disposed so as to form an annular shape on the outer side in the radial direction of the outer diffuser 43, and the cooling air flow is between the exhaust casing 29 and the outer surface of the outer diffuser 43.
- a path 63 is formed. The cooling air flow path 63 communicates with the space R on the upstream side and communicates with the strut cover flow path 65 on the downstream side.
- the external cooling air A can be introduced into the space R without being obstructed by the diffuser support 50, and the outer diffuser 43 can be efficiently cooled by the cooling air A having a smaller flow rate than in the past.
- FIG. 7 is a cross-sectional view of a main part showing the exhaust device of the fourth embodiment.
- symbol is attached
- the exhaust casing 29 has a cylindrical exhaust diffuser 31 disposed inside thereof.
- the exhaust diffuser 31 is configured by connecting an outer diffuser 43 and an inner diffuser 44 by a straddle cover 45.
- the rear end of the outer diffuser 43 is connected to the support member 91 of the exhaust casing 29.
- a plurality of second cooling air inlets (cooling air inlets) 92 are provided in the support member 91 at a position downstream of the strut cover 45 in the exhaust gas flow path F with a predetermined interval in the circumferential direction. It has been. Note that the exhaust casing 29 and the support member 91 may be integrally formed, and the second cooling air inlet 92 may be formed in the exhaust casing 29.
- the plurality of second cooling air introduction ports 92 can introduce external cooling air A into the strut cover channel 65 between the strut cover 45 and the strut 47 through the outside of the outer diffuser 43.
- a cooling air flow path 93 is provided between the outer diffuser 43 and the partition member 64 that is fixed to the exhaust casing 29 and is arranged so as to form an annular shape outside the radial direction of the outer diffuser 43. Accordingly, the cooling air A introduced from the second cooling air introduction port 92 once flows into the space R surrounded by the exhaust casing 29 and the partition member 64 and flows through the cooling air flow path 93 to be strut cover. It is introduced into the flow path 65.
- the structure on the upstream side of the cooling air flow path 93 is simplified, the pressure loss of the path to the cooling air flow path 93 is reduced, and the outer diffuser 43 is cooled by the cooling air A flowing through the cooling air flow path 93.
- the connecting portion between the outer diffuser 43 and the strut cover 45 can be cooled.
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Abstract
Description
図4は、第1実施形態のガスタービンの全体構成を表す概略図である。
図5は、第2実施形態の排気装置を表す断面図である。なお、上述した実施形態と同様の機能を有する部材には、同一の符号を付して詳細な説明は省略する。
図6は、第3実施形態の排気装置を表す要部断面図である。なお、上述した実施形態と同様の機能を有する部材には、同一の符号を付して詳細な説明は省略する。
図7は、第4実施形態の排気装置を表す要部断面図である。なお、上述した実施形態と同様の機能を有する部材には、同一の符号を付して詳細な説明は省略する。
12 燃焼器
13 タービン
29 排気車室
29a,43a,64a 水平フランジ部
30 排気室
31 排気ディフューザ
32 ロータ(回転軸)
43 外側ディフューザ
43b 水平フランジ部
43c 前端部
43d 後端部
44 内側ディフューザ
45 ストラットカバー
45a フランジ部
45b 連結部
47 ストラット
50,71 ディフューザサポート(サポート部材)
50a サポート分割片
61 第1冷却空気導入口
62,73,81,92 第2冷却空気導入口(冷却空気導入部)
63,74,93 冷却空気流路
64,75,94 仕切部材
64b,64c 仕切部材片
64e シール部
65 ストラットカバー流路
G 排気ガス(燃焼ガス)
F 排気ガス流路
R 空間部
S1,S2 隙間
Claims (11)
- 環状に形成される車室と、
環状に形成されて前記車室の径方向の内側に支持される外側ディフューザと、
環状に形成されて前記外側ディフューザの径方向の内側に配置されることで前記外側ディフューザとの聞に排気ガス流路を形成する内側ディフューザと、
筒形状を形成されて長手方向の一端部が前記外側ディフューザに連結されて他端部が前記内側ディフューザに連結されるストラットカバーと、
前記車室における前記ストラットカバーより前記排気ガス流路の上流側または下流側に設けられる冷却空気導入部と、
前記外側ディフューザの径方向の外側を覆うように環状に形成されて前記車室に支持される仕切部材と、
前記外側ディフューザと前記仕切部材との間に設けられて前記冷却空気導入部から導入された冷却空気を前記ストラットカバー内側のストラットカバー流路に導くように形成される冷却空気流路と、
を有することを特徴とする排気装置。 - 前記仕切部材は、軸方向の一端部を先端が固定されない自由端とし、他端部は前記車室に固定された固定端を備え、軸方向に環状に配置され、前記冷却空気流路が、前記自由端から前記固定端に向かう流路を形成するように配置されることを特徴とする請求項1に記載の排気装置。
- 前記外側ディフューザは、軸方向の一端部において周方向に環状に配置されたサポート部材を介して前記車室に支持され、前記仕切部材は、前記サポート部材に対して径方向の内側に配置されることを特徴とする請求項1または請求項2に記載の排気装置。
- 前記サポート部材は、周方向に一定の隙間をあけて複数に分割された分割片で形成され、前記分割片は、軸方向から見て、周方向に配置された前記ストラットカバーの間に少なくとも一以上の前記隙間が配置されるように取付けられることを特徴とする請求項3に記載の排気装置。
- 前記分割片は、周方向に隣接して配置され、軸方向の一端が前記車室に固定され、他端が前記外側ディフューザの径方向外側の壁面に固定された前記分割片は、隣接する前記分割片の間の隙間が軸方向に一定幅を形成するように配置されることを特徴とする請求項4に記載の排気装置。
- 前記仕切部材は、周方向に複数に分割され、分割された仕切部材片の周方向両端にはシール部を備えたことを特徴とする請求項1から請求項3のいずれか一項に記載の排気装置。
- 前記冷却空気流路は、前記ストラットカバーと前記外側ディフューザとの連結部の外側に設けられることを特徴とする請求項1から請求項6のいずれか一項に記載の排気装置。
- 前記冷却空気導入部は、前記仕切部材の径方向の外側に対向して設けられることを特徴とする請求項4に記載の排気装置。
- 前記車室と前記仕切部材との間に環状をなす空間部が設けられ、前記冷却空気導入部は、前記空間部に連通し、前記冷却空気流路は、一端部が前記空間部に連通し、他端部が前記ストラットカバーの内部に連通することを特徴とする請求項1と請求項4と請求項7のいずれか一項に記載の排気装置。
- 前記冷却空気導入部は、周方向に所定間隔で複数設けられることを特徴とする請求項1から請求項9のいずれか一項に記載の排気装置。
- 空気を圧縮する圧縮機と、
前記圧縮機が圧縮した圧縮空気と燃料を混合して燃焼する燃焼器と、
前記燃焼器が生成した燃焼ガスにより回転動力を得るタービンと、
前記タービンから排出される排気を処理する請求項1から請求項10のいずれか一項に記載の排気装置と、
を有することを特徴とするガスタービン。
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DE112015004964.9T DE112015004964T5 (de) | 2014-10-29 | 2015-10-20 | Abgassystem und gasturbine |
US15/521,717 US10590806B2 (en) | 2014-10-29 | 2015-10-20 | Exhaust system and gas turbine |
CN201580058028.3A CN107148510B (zh) | 2014-10-29 | 2015-10-20 | 排气装置以及燃气轮机 |
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DE102017114608A1 (de) * | 2017-06-30 | 2019-01-03 | Man Diesel & Turbo Se | Turbinenzuströmgehäuse einer Axialturbine eines Turboladers |
CN107559091A (zh) * | 2017-08-28 | 2018-01-09 | 陈佳伟 | 一种燃气轮机 |
GB2566498B (en) * | 2017-09-15 | 2021-02-17 | Gkn Aerospace Sweden Ab | Turbine exhaust case cooling |
CN109372637B (zh) * | 2018-12-16 | 2021-04-16 | 中国航发沈阳发动机研究所 | 一种燃气轮机排气装置流路设计方法 |
KR102217633B1 (ko) | 2019-03-26 | 2021-02-22 | 두산중공업 주식회사 | 가스터빈의 스트럿 구조체, 이를 포함하는 배기 디퓨저 및 가스터빈 |
US11460037B2 (en) | 2019-03-29 | 2022-10-04 | Pratt & Whitney Canada Corp. | Bearing housing |
FR3115829B1 (fr) * | 2020-11-05 | 2022-10-14 | Safran Nacelles | Fixation d’un cône d’éjection dans une tuyère de turbomachine |
CN112983563B (zh) * | 2021-05-10 | 2021-11-30 | 成都中科翼能科技有限公司 | 一种用于燃气轮机涡轮间支点的承力拉杆及涡轮支承结构 |
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US20140119880A1 (en) * | 2012-10-30 | 2014-05-01 | Jose L. Rodriguez | Temperature control within a cavity of a turbine engine |
Also Published As
Publication number | Publication date |
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CN107148510B (zh) | 2019-06-07 |
US20170241295A1 (en) | 2017-08-24 |
KR101926289B1 (ko) | 2018-12-06 |
CN107148510A (zh) | 2017-09-08 |
JP2016089630A (ja) | 2016-05-23 |
JP6399894B2 (ja) | 2018-10-03 |
US10590806B2 (en) | 2020-03-17 |
KR20170065584A (ko) | 2017-06-13 |
DE112015004964T5 (de) | 2017-07-13 |
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