Stage of variable-pitch blades for a turbine engine, turbine engine and associated installation method
10753371 · 2020-08-25
Assignee
Inventors
- Pierre-Alain Francis Claude Sebrecht (Moissy-Cramayel, FR)
- Damien Joseph Cellier (Moissy-Cramayel, FR)
- Cédric Michel Claude Chretien (Moissy-Cramayel, FR)
Cpc classification
F04D29/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/644
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/563
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/3219
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/162
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/083
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/129
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D17/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A stage of variable-pitch vanes for a turbine engine includes a plurality of vanes. Each vane has a blade with a first radially internal frusto-conical surface. The cone angle of the first frusto-conical surface is radially flared inwards and is configured to interact with an internal frusto-conical surface of a first frusto-conical bushing. The vane further includes a second radially external frusto-conical surface with cone angle that is radially flared outwards and is configured to interact with an internal frusto-conical surface of a second substantially frusto-conical bushing.
Claims
1. A stage of variable-pitch vanes for a turbine engine, comprising an annular casing with an axis of revolution and an annular row of vanes extending about said axis and inside the casing, each vane comprising a substantially radial blade comprising a radially internal cylindrical pivot and a radially external pivot, the radially external pivot of each vane being mounted in a radial chamber of the casing and being centered and guided in the chamber, wherein the radially external pivot of each vane comprises: a first radially internal frusto-conical surface having a first cone angle radially flared inwards and configured to engage a first internal frusto-conical surface of a first substantially frusto-conical bushing, said first frusto-conical bushing comprising an external frusto-conical surface designed to interact with an internal frusto-conical surface of the chamber of the casing; and a second radially external frusto-conical surface having a second cone angle flared outwards configured to engage a second internal frusto-conical surface of a second substantially frusto-conical bushing, said second bushing comprising an external frusto-conical surface designed to interact with an internal frusto-conical surface of the chamber of the casing.
2. The stage according to claim 1, wherein said first radially internal frusto-conical surface and said second radially external frusto-conical surface are connected together by a cylindrical surface of the radially external pivot.
3. The stage according to claim 1, wherein each of said first and second frusto-conical bushings comprises a cylindrical or radial rim.
4. The stage according to claim 1, wherein the closest radial distance between said first and second frusto-conical surfaces of the radially external pivot is greater than a length of an internal cylindrical surface of the radial chamber.
5. The stage according to claim 1, wherein the first frusto-conical surface of the radially external pivot is defined by a radially internal frusto-conical part of the radially external pivot, which part is integrally formed with the radially external pivot, and the second frusto-conical surface of the radially external pivot is defined by an internally threaded ring configured to threadedly engage an externally threaded radially external frusto-conical part of the radially external pivot.
6. A method for mounting a stage according to claim 5, wherein said method comprises the following steps, including, for each vane: mounting said first and second bushings in the chamber of the casing; positioning the vane in the casing and inserting the radially external pivot of that vane into a corresponding chamber of the casing, by radially moving said pivot from the inside to the outside, until the first frusto-conical surface of the pivot comes into abutment on the internal frusto-conical surface of the first bushing; placing the ring on the pivot and screwing the ring onto the externally threaded part of the pivot, until a desired distance is obtained between said first and second frusto-conical surfaces.
7. A method according to claim 6, wherein, after screwing, the second frusto-conical surface defined by the ring is radially spaced apart from the internal frusto-conical surface of the second bushing.
8. A turbine engine for aircraft, comprising at least one stage according to claim 1.
Description
DESCRIPTION OF THE DRAWINGS
(1) The invention will be better understood, and further details, features and advantages of the invention will become more clearly apparent, upon reading the following description, which is provided by way of a non-limiting example, and with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) This stage 10 of vanes forms part of a high-pressure compressor of a turbine engine, in particular an aircraft turbine engine, that comprises a succession of stages or cascades of variable-pitch stator vanes 10 and stages or cascades of rotor blades.
(9) Each stage comprises an annular row of vanes 10 supported by a stator casing 12, which surrounds the vanes 10.
(10) Each vane 10 comprises a blade 14 and a cylindrical pivot 16, 18 at each of its radial ends.
(11) The radially external pivot 16 is connected to the blade by a disc or a plate 20 that extends perpendicularly to the axis 22 of the vane in a corresponding housing 24 of the casing 12. The external pivot 16 extends inside a chamber 26 of the casing 12, which passes radially through the casing 12 and emerges at its radially internal end in the housing 24.
(12) The radially internal pivot 18 is connected to the blade 14 by a disc or a plate 28 that extends perpendicularly to the axis 22 of the vane in a corresponding housing 30 of a casing ring 32. The internal pivot 18 extends inside an opening 34 in the casing 12, which passes radially through the casing and emerges at its radially internal end in the housing 30.
(13) The external pivot 16 of each vane 14 is connected at its radially external end to an end of a lever 36, the opposite end of which is connected to a control ring 38, which surrounds the casing 12 and is connected to actuation means (not shown) that allow it to rotate in one direction or in the other direction about the longitudinal axis of the casing 12 in order to drive the vanes 10 of a stage about their axes 22.
(14) The vanes 14 can rotate about their axes 22 between a full closed position and a full open position.
(15) In the full closed position, the blades 18 of the vanes are inclined relative to the longitudinal axis of the turbine engine and together define a minimum cross section of airflow in the duct. The vanes 10 are brought to this position when the turbine engine is at low speed or idling, the airflow flowing in the compressor then having a minimum value.
(16) In the full open position, the blades 14 of the vanes extend substantially in parallel with the axis of the turbine engine so that the cross section of airflow between the blades is maximal. The vanes 10 are brought to this position when the turbine engine is at full throttle, the airflow flowing in the compressor then having a maximum value.
(17) The external pivot 16 of each vane 10 is centred and guided in the corresponding chamber 26 by two cylindrical bushings 40, 42. A first bushing 40 is mounted around a radially internal part of the pivot 16 and comprises an internal cylindrical surface 40a interacting with the external cylindrical surface of the pivot 16, and an external cylindrical surface 40b interacting with the internal cylindrical surface of the chamber 26. The first bushing 40 comprises, at its radially internal end, an external annular rim 44 interposed between the plate 20 and the bottom of the housing 24.
(18) A second bushing 42 is mounted around a radially external part of the pivot 16 and comprises an internal cylindrical surface 42a interacting with the external cylindrical surface of the pivot 16, and an external cylindrical surface 42b interacting with the internal cylindrical surface of the chamber 26. The second bushing 42 comprises, at its radially external end, an external annular rim 46 interposed between the free radially external end of the chamber 26 and the aforementioned end of the lever 36.
(19) This technology has sealing problems, as previously mentioned, that are solved by the invention.
(20)
(21) The vanes 110 of the stage of
(22) The external pivot 116 of each vane 110 in this case comprises: a first radially internal frusto-conical surface 150, the cone angle of which is radially flared inwards and which is designed to interact with an internal frusto-conical surface 152 of the first substantially frusto-conical bushing 140; and a second radially external frusto-conical surface 154, the cone angle of which is radially flared outwards and which is designed to interact with an internal frusto-conical surface 156 of the second substantially frusto-conical bushing 142.
(23) The first bushing 140 comprises an external frusto-conical surface 158 designed to interact with an internal frusto-conical surface 160 of the chamber 126 of the casing, and the second bushing 142 comprises an external frusto-conical surface 162 designed to interact with an internal frusto-conical surface 164 of the chamber 126 of the casing (
(24) The chamber 126 comprises an internal cylindrical surface 166 extending between the radially external end of the surface 160 and the radially internal end of the surface 164.
(25) Similarly, the pivot 116 comprises an external cylindrical surface 168 extending between the radially external end of the surface 150 and the radially internal end of the surface 154.
(26) The first bushing 140 comprises, at its radially external end, a cylindrical rim, the external cylindrical surface of which interacts with the internal cylindrical surface 166 of the chamber 126. The second bushing 142 comprises, at its radially internal end, a cylindrical rim, the external cylindrical surface of which interacts with the internal cylindrical surface 166 of the chamber 126.
(27) In the example shown, and advantageously, the length (or radial distance) L1 of the external cylindrical surface 168 of the pivot 116 is greater than the length L2 of the internal cylindrical surface 166 of the chamber 126, such that an axial clearance in relation to the axis 122 or a radial clearance in relation to the axis A are provided upon mounting between the pivot 116 and the bushings 140, 142.
(28) When the pressures between the inside and the outside of the casing 112 are balanced, the vanes 110 can be in the position shown in
(29)
(30) When the pressure on the external plate of the vane is greater than the pressure on its internal plate, the vanes are radially stressed outwards and come into abutment, via their frusto-conical surfaces, on the first bushings, even if they are worn (
(31)
(32) Depending on the state of wear of the bushings, it is conceivable, for example during a maintenance operation, to retighten the second bushing on the pivot of the vane in order to compensate for this wear. The second bushing can be equipped with anti-rotation means to prevent it from becoming loose during operation.
(33)
(34) During a first step, shown in
(35) The vane 110 is then positioned in the casing and its pivot 116 is inserted into the chamber, by radially moving said pivot from the inside to the outside. It can be seen in
(36) The first frusto-conical surface 150 of the pivot 116 is defined by a radially internal frusto-conical part of the pivot, which part is integrally formed with the pivot. By contrast, the second frusto-conical surface 152 of the pivot is defined by an internally threaded ring 170 designed to be screwed onto an externally threaded radially external part 172 of the pivot.
(37) The external pivot 116 of the vane is inserted into the chamber 126 until the first frusto-conical surface 150 of the pivot comes into abutment on the internal frusto-conical surface 152 of the first bushing 140 (
(38) The ring 170 is then placed on the pivot and is screwed onto the externally threaded part 172 of the pivot. In the screwed position, the second frusto-conical surface defined by the ring is radially spaced apart from the internal frusto-conical surface of the second bushing.
(39)
(40) The bushing 142 of
(41) The bushing 142 of
(42) The bushing 142 of