Extraction device of a platform for holding a blade and method using this device
11060420 ยท 2021-07-13
Assignee
Inventors
- Patrick Jean-Louis Reghezza (Moissy-Cramayel, FR)
- Pierrick Charles Chevallier (Moissy-Cramayel, FR)
- Simon Pierre Claude Charbonnier (Moissy-Cramayel, FR)
Cpc classification
F01D25/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25B27/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
F01D25/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25B27/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An extraction device of a platform for holding a blade fitted with an upstream flange, out of a turbomachine rotor disc, and extraction method using the device. The device includes a handle fitted with a radial annular shoulder extended by a threaded pin, a proximal ring and a distal ring having a tube extended by a radial collar and a sleeve. The proximal ring is arranged around the pin, the tapped distal ring being screwed onto the other end of the pin and the sleeve being arranged around the two rings between their respective collars. Screwing of the handle results in moving the distal ring towards the proximal ring, radial deformation of the distal part of the sleeve against the flared part of the cylindrical orifice of the flange and its being joined to the latter. It is possible to conjointly extract the platform and the device from the disc.
Claims
1. An extraction device of a platform for holding a blade, out of a turbomachine rotor disc, said platform being fitted with an upstream flange having an orifice including an inner wall with a flared part, wherein the extraction device comprises: a manipulation handle having an opposite handling end and an engagement end, the engagement end being fitted with a radial annular shoulder which is extended by a threaded axial pin, a proximal ring and a distal ring, which each comprise a tube extended at one of both ends of the tube by a radial collar which extends towards an exterior of said tube, and a sleeve of tubular shape and having a cylindrical interior with distal and proximal ends, the proximal ring, whereof an inner tubular wall is smooth, being arranged around a proximal end of the pin, so that the collar of the proximal ring is against the annular shoulder of the manipulation handle, the distal ring, whereof an inner tubular wall is threaded, being threadingly engaged around a distal end of the threaded axial pin and arranged so that the collar of the distal ring is opposite the distal end of the pin, the tube of the proximal ring and the tube of the distal ring being inserted into the interior of the sleeve to make the tube of the proximal ring and the tube of the distal ring all coaxially assembled to each other, so that a distal end of the sleeve bears against the radial collar of the distal ring and a proximal end of the sleeve bears against the radial collar of the proximal ring, such that the turning of the handle causes threaded engagement of the handle pin and the inner tubular wall of the distal ring which causes axial displacement of the distal ring in the direction of the proximal ring and causes compression of the sleeve and radial deformation of the distal end of the sleeve until the distal end of the sleeve makes contact with the flared part of the inner wall of the orifice of the flange, joining together said extraction device and the platform to be extracted and allowing a joint extraction of the extraction device and of the platform from the turbomachine rotor disc.
2. The extraction device according to claim 1, wherein the sleeve is made of elastically deformable material.
3. The extraction device according to claim 2, wherein the sleeve is made of elastomer.
4. The extraction device according to claim 1, wherein the external surface of the sleeve comprises a plurality of annular throats, arranged around the axis of said sleeve.
5. The extraction device according to claim 4, wherein said sleeve comprises between five and twenty annular throats.
6. The extraction device according to claim 1, wherein the sleeve is an anti-rotation sleeve which prevents rotation of the distal ring relative to the proximal ring.
7. The extraction device according to claim 1, wherein the sleeve is made of material having a Shore hardness A between 30 Shore and 80 Shore.
8. The extraction device according to claim 1, wherein the external diameter of said sleeve in the noncompressed state corresponds, close to the introduction clearance, to the internal diameter of the orifice of said upstream flange of the platform to be extracted.
9. An extraction method of a platform for holding a blade, out of a turbomachine rotor disc, said platform being fitted with an upstream flange having an orifice including an inner wall with a flared part, wherein the extraction method comprises: inserting the extraction device according to claim 1 into the orifice of the upstream flange until the radial shoulder of the handle is in axial stop against said upstream flange, screwing the handle so as to move the distal ring to the proximal ring and cause compression of the sleeve and radial deformation of a distal part of the sleeve until the distal part of the sleeve makes contact with the flared part of the inner wall of the orifice of the flange, joining together said extraction device and the platform to be extracted, and simultaneously removing said extraction device and said holding platform from the rotor disc of the turbomachine.
Description
PRESENTATION OF FIGURES
(1) Other characteristics and advantages of the invention will emerge from the description which will now be given in reference to the appended drawings which illustrate one possible embodiment by way of indication but non-limiting.
(2) In these drawings:
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) In reference to
(8) As is evident in
(9) The extraction device 1 according to the invention comprises a handle 2, two rings, specifically a so-called proximal ring 3, and a so-called distal ring 4, as a function of their position more or less near the handle 2 and a sleeve 5.
(10) The handle 2 comprises a handling end 20 (or stick) and an engagement end 201 which are opposed. The engagement end 201 is fitted with a radial annular shoulder 21 which is extended by a cylindrical axial pin 22, threaded on its external surface, (see also the
(11) The proximal end of the pin 22 (located most closely to the shoulder 21) is referenced 221 and its distal end 222.
(12) The handle 2 extends according to a longitudinal axis X-X.
(13) The two rings 3 and 4 comprise each a tube 30, respectively 40, which is extended at one of its ends by a radial annular collar 31, respectively 41, (see
(14) The inner wall 301 of the tube 30 of the proximal ring 3 is smooth. Preferably, its external wall 302 is also.
(15) The inner wall 401 of the tube 40 of the distal ring 4 is tapped, this tapping corresponding and cooperating (that is, meshing) with the threading of the pin 22. The external wall 402 of the tube 40 of the distal ring 4 is preferably smooth.
(16) The internal diameter of the tube 30 of the proximal ring 3 is larger (slightly more) than the external diameter of the cylindrical pin 22 so as to allow introduction of said pin into this tube and its rotation around the axis X-X.
(17) The proximal ring 3 is oriented so that its collar 31 is near the shoulder 21.
(18) The distal ring 4 is screwed around the distal end 222 of the pin 22 so that its collar 41 is near this distal end, (end opposite to that where the shoulder 21 is).
(19) Finally, the sleeve 5 is arranged around the tubes 30 and 40 of the rings 3 and 4 and it is dimensioned in terms of internal diameter and length, so that it bears against the external walls 302, 402 of the rings, its two proximal 51 and distal 52 ends are respectively in contact with the collars 31, 41 and its distal end is opposite the flared downstream part of the cylindrical orifice Q.
(20) Preferably, the respective external diameters D30 and D40 of the tubes 30 and 40 are identical so as to allow easy insertion of the sleeve 5 around said tubes.
(21) The two rings 3 and 4 and the sleeve 5 are annular parts whereof the axis of revolution is combined with the axis X-X of the handle 2, when they are mounted on the latter.
(22) The sleeve 5 is a tubular element, preferably made of elastically deformable material so that it can return to its original position after deformation, as will be explained later. This material is preferably elastomer.
(23) Preferably also, this sleeve 5 is made of material whereof the Shore hardness A is adapted to the material constituting the upstream flange L of the platform I or to the material of the tubular socket R when the latter is present. The Shore hardness A is for example between 30 Shore and 80 Shore, especially when the flange is made of aluminium or the socket is made of steel.
(24) The sleeve 5 plays a role of anti-rotation sleeve, that is, it prevents rotation of the distal ring 4 relative to the proximal ring 3, and does this by rubbing its internal surface against the external walls 302, 405 of the rings 3 respectively 4.
(25) By way of advantage, the external diameter of the sleeve 5 in the non-compressed state corresponds, close to the introduction clearance, to the internal diameter of the orifice Q of the upstream flange of the platform to be extracted, such that when the device 1 is introduced into the orifice Q, the sleeve 5 rubs against the inner wall of this orifice, can no longer turn and reinforces the bond between the device 1 and the platform during extraction.
(26) By way of advantage, the external surface 50 of the sleeve 5 exhibits preferably over at least part of its length a plurality of annular throats 501, preferably parallel to each other, arranged around the longitudinal axis of the sleeve, that is, perpendicular to the axis of said sleeve. As will be describes later, this geometry favours holding the device during extraction and distributes the traction force to prevent it being applied in the region of the flared part only.
(27) The sleeve preferably comprises between five and twenty throats 501.
(28) It is clear that the anti-rotation geometry zone does not need to extend in the region of the end downstream of the sleeve 5 located opposite the flared end S of the socket when the device 1 is inserted into the socket.
(29) The use and operation of the extraction device 1 will now be explained in more detail.
(30) The operator commences by removing the screws by which the platform L is fixed onto the rim of the rotor disc A.
(31) Next, as shown in
(32) The operator next screws the device 1 by turning the handle 2 (arrow F2 in
(33) Next, via axial traction in the reverse direction of the direction of introduction (arrow F4 in
(34) When next the handle 2 is unscrewed, the distal ring 4 retracts and returns to its original position. The sleeve 5 is no longer compressed and due to its preferably elastically deformable character returns to its original position.
(35) The extraction device 1 can be removed from said platform and be reused to disassemble another platform and this can be repeated.
(36) The extraction device 1 according to the invention has many advantages.
(37) Due to its easy handling, it simply and quickly removes the platforms for holding blades installed on the engines, which is also advantageous when there are many platforms to be removed.
(38) This device offers a considerable time gain during removal of the platforms.
(39) Due especially to its small dimensions and its portable character, it can be used in the workshop (disassembled engine) or under the wing of the aircraft (engine in place, for example during relubrication operations of the feet of blades), that is, in an environment lacking accessibility.
(40) Finally, this extraction device does not damage the platforms or the rotor discs.