Balanced turbine engine portion and turbine engine
10415424 ยท 2019-09-17
Assignee
Inventors
Cpc classification
F16F15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/96
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01M1/36
PHYSICS
International classification
F01D25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01M1/36
PHYSICS
F01D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A balanced turbomachine part including one angular sector arranged to form a balancing ring centered about a ring axis. The angular sector includes a plurality of fasteners, a bearing face having a complementary shape to the balancing ring, the angular sector bearing on the bearing face. The part further includes a plurality of balancing masses each fastened to the corresponding fastener of the angular sector, at least one of the balancing masses also acting as a fastener for fastening the angular sector on the bearing face.
Claims
1. A balanced turbomachine part comprising: at least one angular sector arranged to form a balancing ring centered about a ring axis, the angular sector including a plurality of fasteners each adapted to fasten at least one respective balancing mass, the fasteners each including a threading axis, all the threading axes substantially converging at a same point on the ring axis; a bearing face having a shape complementary to the balancing ring, the angular sector bearing on the bearing face; and a plurality of balancing masses each fastened to the corresponding fastener of the angular sector, at least one of the balancing masses also acting as a fastener for fastening the angular sector to the bearing face, wherein the fasteners are nuts, and the balancing masses are screws, wherein a perimeter of the balancing ring includes a plurality of nut locations substantially evenly distributed along the balancing ring, each of the nut locations including a through hole and a mounting system for mounting the nut, and wherein the mounting system includes a portion of the balancing ring in a form of a side flare forming a nut support, a width of the nut support being greater than a width of the nut, the nut support including two side extensions presenting an L-shaped cross section.
2. The balanced turbomachine part according to claim 1, wherein the angle of the angular sector is between 20 and 360.
3. The balanced turbomachine part according to claim 1, wherein the threading axis of each of the fasteners is substantially radially oriented with respect to the angular sector.
4. The balanced turbomachine part according to claim 1, wherein each fastener is held in place by side extensions crimped by folding.
5. The balanced turbomachine part according to claim 1, wherein the balancing ring has a cylindrical or frustro-conical revolution shape.
6. The balanced turbomachine part according to claim 1, wherein the fasteners are substantially evenly distributed along the angular sector.
7. The balanced turbomachine part according to claim 1, wherein the turbomachine part is a turbomachine inlet cone.
8. A method for balancing a turbomachine part comprising a bearing face, the method comprising: providing at least one angular sector for forming a balancing ring centered about a ring axis, the angular sector including a plurality of fasteners each adapted to fasten at least one respective balancing mass, the fasteners each including a threading axis, all the threading axes substantially converging at a same point on the ring axis; bringing the angular sector to bear on the bearing face of the turbomachine part to be balanced so as to form a balancing ring; and fastening at least one balancing mass on one of the fasteners of the angular sector so as to fasten the angular sector and to balance the turbomachine part, wherein the fasteners are nuts, and the balancing masses are screws, wherein a perimeter of the balancing ring includes a plurality of nut locations substantially evenly distributed along the balancing ring, each of the nut locations including a through hole and a mounting system for mounting the nut, and wherein the mounting system includes a portion of the balancing ring in a form of a side flare forming a nut support, a width of the nut support being greater than a width of the nut, the nut support including two side extensions presenting an L-shaped cross section.
9. A turbomachine comprising one balanced turbomachine part according to claim 1.
10. The balanced turbomachine part according to claim 1, wherein the mounting system includes two outgrowths extending radially inward on either side of the nut support, the outgrowths forming stops.
11. The balanced turbomachine part according to claim 10, wherein each nut includes a platen including an aperture corresponding to the through hole at the nut location, a first face which abuts the nut support when the nut is positioning on the mounting system, and a second face including side edges which rest on the side extensions of the nut support.
12. The balanced turbomachine part according to claim 11, wherein the aperture of the nut is extending by a sleeve that extends substantially perpendicular to the second face of the platen.
13. The balanced turbomachine part according to claim 1, wherein the screws include a first screw and a second screw, a mass of the first screw being different than a mass of the second screw.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be better understood upon reading the description of exemplary embodiments, given by way of purely indicating and in no way limiting purposes, with reference to the appended drawings in which:
(2)
(3)
(4)
(5)
(6) Identical, similar or equivalent parts of the different figures bear the same reference numerals so as to facilitate switching from one figure to the other.
(7) Different parts represented in the figures are not necessary drawn to a uniform scale, for making the figures more understandable.
DETAILED DISCLOSURE OF PARTICULAR EMBODIMENTS
(8)
(9) Such a balancing ring 20 is as illustrated in
(10) The balancing ring 20, as illustrated in
(11) According to a first possibility, the angular sectors 21 are free of a mounting system for assembling them to each other, and are thus adapted to form the balancing ring 20 by a simple side by side mounting upon installation on the inlet cone 1. According to a second possibility, the angular sectors 21 each have at least one fastening means adapted to cooperate with a complementary fastening means of a directly adjacent angular sector. According to this second possibility, the assembly of the angular sectors 21 to form the balancing ring 20 can occur prior to installation on the inlet cone 1 or at the same time as the assembly on the inlet cone 1. The balancing method which is described hereinafter is adapted for the first possibility in which the angular sectors 21 do not include a mounting system to assemble them to each other, and thus in which the balancing ring 20 is formed by a simple side by side mounting of the angular sectors 21.
(12) The balancing ring 20 includes, along its perimeter and as shown in
(13) Each of the nut locations 25 includes a through hole 28, suitable for passing the shank of a balancing screw 40 therethrough, and a system for mounting a nut 30 adapted for mounting the nut 30 by rotationally locking it.
(14) The mounting system includes a portion 26 of balancing ring 20 forming a nut support. This portion 26 is in the form of a side flare of the balancing ring 20 such that the balancing ring 20 includes, at this portion 26, a width lager than that of a nut 30. The balancing ring 20 is thus adapted to support a nut 30 at each nut location 25 formed on a portion 26. Each portion 26 has two side extensions 27 extending radially from the portion 26 towards the portion inside of the balancing ring 20 and then toward one another. These side extensions 27 thus have L shaped side cross-sections which enable the nut 30 to be supported when it is placed onto the corresponding portion 26 of the balancing ring 20.
(15) The mounting system also includes two outgrowths 29, adapted to form stops, both extending on either side of the corresponding portion 26 towards the inside of the balancing ring 20. The outgrowths 29 can consist for example of tabs formed by cut outs provided in the balancing ring 20, which are curved by punching to form the outgrowths 29 once the nut 30 is put in place.
(16) Thus, once a nut 30 is provided in the corresponding location of the ring, it is held in place by the mounting system with both side extensions 27 which rotationally lock it and both outgrowths 29 which hold it in place in the peripheral direction of the balancing ring 20. Advantageously, at least one outgrowth 29 can be retractable, for example by flattening the tab forming it. This enables the holding in place of the corresponding nut 30 to be unlocked, and enables the nut to be moved in the peripheral direction to disengage it from the side extensions 27 and pull it away from the balancing ring 20. Thus, such mounting systems enable a removable mounting of the nuts 30 on the balancing ring 20 while contributing a holding meeting safety requirements related to the installation on a turbomachine.
(17) Each of the nuts 30, as illustrated in
(18) The through aperture of a platen 32 is extended by a sleeve 31 which extends substantially perpendicular from the platen 32 from its second face. The sleeve 31 is a hollow cylindrical revolution shaped threaded sleeve. The threading axis F of the sleeve 31, thus corresponding to the threading axis F of the nut, is oriented substantially perpendicularly to the plane along which the platen 32 extends.
(19) Thus, with such a configuration of the nut 30, when the same is mounted on a location of the balancing ring 20, the threading axis F of the nut 30 becomes radially oriented with respect to the balancing ring. When all the locations 25 are occupied by nuts 30, as is illustrated in
(20) Each of the nuts 30 forms a threaded fastener adapted to fasten a balancing screw 40, that is a balancing mass.
(21) The turbomachine inlet cone 1 forms part of the turbomachine which is to be balanced. In order to allow for a balancing by means of a balancing ring 20, the inlet cone 1 includes, as shown in the cross-section view illustrated by
(22) The balancing of such an inlet cone 1 can be made by means of a balancing method comprising the following steps of: placing a first angular sector 21 bearing on the bearing face 5 of the inlet cone 1, the through holes 28 being each positioned facing an opening 6 of the bearing face 5 of the inlet cone 1, installing at least one balancing screw 40 in order to define the positioning of this first angular sector 21, the shank 41 of the balancing screw 40 passing through the opening 6 and being screwed in a corresponding nut 30 of said angular sector 21, positioning the other angular sector with respect to the first angular sector 21 on the bearing face 5 of the inlet cone 1, installing at least one second balancing screw 40, so as to fasten the second angular sector, installing the other balancing screws 40, the mass of these other balancing screws 40 being selected so as to balance the inlet cone 1.
(23) The above-described method relates to a balancing ring 20 which is formed by two angular sectors assembled upon positioning on the inlet cone. Of course, the steps of such a method are perfectly adaptable to a balancing ring including a single angular sector or which is formed by angular sectors assembled prior to installing on the inlet cone. Such an adapted method thus includes a prior step of providing the balancing ring 20, either directly by an angular sector of 360, or the assembly of the angular sectors 21 to each other them to form the balancing ring 20. In this same method, the step of placing the angular sector is replaced by a step of placing the balancing ring 20 and the steps of positioning the other sector and installing the second balancing screw are not performed, because they are no longer necessary.
(24) In the above described balancing method, the balancing ring 20 includes two angular sectors of 180, it can however include a different number of angular sectors without departing from the scope of the invention. Thus, for example, the balancing ring can include a single angular sector of 360, four angular sectors of 90 each, or even 3 angular sectors, two being of 90 and another of 180.
(25) In the embodiment described above, the nuts are fastened to the balancing ring. According to this possibility, a change of nut requires its total removal it from the balancing ring, or as the case may be, from the angular sector including it. However, it is contemplatable, without departing from the scope of the invention, that part or all of the nuts are removably mounted on the ring, for example by providing means for removably snap-fitting the nut platen on the ring.