Flow straightener unit comprising a centering and attachment plate
11525366 · 2022-12-13
Assignee
Inventors
Cpc classification
F05D2260/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/282
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
International classification
F01D9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention concerns a flow straightener unit (1) for a fan module of a turbomachine, the straightener unit (1) comprising a plurality of blades (2) distributed about an axis of rotation, each blade (2) is made of a composite material and comprises an aerofoil (21) and a root (22) intended to be assembled on a hub (4) of the turbomachine. The unit (1) comprises a centring and attachment plate (3) of the blade (2) on the turbomachine intended to be attached to the hub (4) at a determined azimuthal position and to the root (22) of the blade (2), the plate (3) is designed to be screwed to the hub (4) by screws (51a) that are longitudinal with respect to the axis of rotation of the unit (1) and screwed to the root (22) of the blade (2) by screws (52) that are radial with respect to the axis of rotation of the unit (1).
Claims
1. A flow straightener assembly for a fan module of a turbomachine, the flow straightener assembly comprising: a plurality of blades distributed about an axis of revolution of the flow straightener assembly, each blade of the plurality is made of a composite material, each blade having a vane and a root configured to be assembled to a hub of a turbomachine; and a centering and fastening plate configured to be fastened to the hub at a determined azimuthal position and to the root of one blade of the plurality of blades, the centering and fastening plate configured to be fastened to the hub by screws extending longitudinally relative to the axis of revolution of the flow straightener assembly and attached to the root by screws extending radially relative to the axis of revolution of the assembly.
2. The flow straightener assembly of claim 1, wherein the plate has a radial section having a L or S or triangular shape.
3. The flow straightener assembly of claim 1, wherein the root is fastened to the hub only via the plate.
4. The flow straightener assembly of claim 1, wherein the root has a leading portion and a trailing portion, the leading portion of the root being fastened directly to the hub and the trailing portion of the root being fastened to the hub via the plate.
5. The flow straightener assembly of claim 1, wherein the plate is made of metal.
6. The flow straightener assembly of claim 1, wherein a platform is positioned between the root and the vane, the platform having a conical radial section configured to having a deflector function for an air flow.
7. The flow straightener assembly of claim 6, wherein the platform is integral with the vane.
8. The flow straightener assembly of claim 6, wherein the platform is an element separable from the vane, and is fastened to the vane.
9. A turbomachine comprising: a fan module; a hub on which the fan module is mounted; and a flow straightener assembly comprising: a plurality of blades distributed about an axis of revolution of the flow straightener assembly, each blade having a vane and a root fastened to the hub of the turbomachine, and a respective centering and fastening plate fastened to the hub at a determined azimuthal position and to the root of each respective blade of the plurality of blades, the centering and fastening plate fastened to the hub by screws extending longitudinally relative to the axis of revolution of the flow straightener assembly and attached to the root by screws extending radially relative to the axis of revolution of the assembly.
10. A method for assembling a flow straightener assembly in a turbomachine, the method comprising: fastening a centering and fastening plate to a blade of a flow straightener assembly, the blade being made of a composite material, the blade having a vane and a root, the centering and fastening plate fastened to the root of the blade by screws extending radially relative to an axis of revolution of the flow straightener assembly; and fastening the centering and fastening plate to a hub of a turbomachine at a determined azimuthal position, the centering and fastening plate fastened to the hub by screws extending longitudinally relative to the axis of revolution of the flow straightener assembly.
Description
DESCRIPTION OF THE FIGURES
(1) Other characteristics and advantages of the invention will emerge from the following description, which is purely illustrative and not limiting, and should be read in relation to the appended figures in which:
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DETAILED DESCRIPTION OF THE INVENTION
(12) General Architecture
(13) The invention relates to a flow straightener assembly 1 for a fan module of a turbomachine comprising a plurality of blades 2 distributed about an axis of revolution. Each blade 2 is made of a composite material and has a vane 21 and a root 22 intended to be assembled to a hub 4 of the turbomachine. In addition, the assembly 1 comprises a plate 3 fastened on the one hand to the hub 4 at a determined azimuthal position and on the other hand to the blade 2. It is specified that by “determined azimuthal position” it is meant an accurate and chosen position on the hub 4. The hub can be modeled in a cylindrical reference frame, the azimuthal position is defined by an angular sector (i.e. position) and a position relative to the longitudinal axis of the hub 4.
(14) Thus, as will be described below, within the framework of a modular assembly, the plates 3 are previously fastened to the blades 2 then to the hub 4, the right position of the blades 2 being guaranteed by the right positioning of each plate 3.
(15) It is recalled that, in the present document, by “fastened” it is meant that the parts are secured to each other, in a standardized mechanical connection of the embedding type.
(16) In addition, it is specified that in the present document, by “longitudinal axis” it is meant an axis parallel to the axis of revolution of the straightener assembly and therefore an axis of rotation of the blade 2. Likewise, by “radial axis” it is meant an axis perpendicular to the axis of revolution of the straightener assembly and therefore an axis of rotation of the blade 2.
(17) Straightener Blade
(18) The straightener blade 2 mainly comprises a vane 21 and at least one root 22. The vane 21 has a leading edge and a trailing edge. In a conventional manner, “leading portion” 22a denotes a portion of the root 22 in line with the leading edge of the vane 21 and “trailing portion” 22b denotes a portion of the root 22 in line with the trailing edge of the vane 21.
(19) In a known manner, the vane 21 has a geometry adapted to straighten an air flow derived from a fan positioned upstream.
(20) The root 22 can conform to the known geometries (i.e. conventional blades 2 can be used). Thus, the root 22 may be continuous from the leading edge portion 22a to the trailing edge portion 22b, or may be perforated between the leading edge portion 22a and the trailing edge portion 22b. Likewise, in a traditional manner, the root 22 can be adapted to be fastened by fastening means only along a radial axis.
(21) According to a first embodiment presented in
(22) According to the embodiments presented in
(23) According to the embodiment presented in
(24) As will be detailed below, the root 22 is adapted to be screwed to a plate 3 and/or to the hub 4. As will be detailed below, the entire root 22 or only a portion of it can be fastened to the plate 3.
(25) According to the embodiments presented in
(26) Preferably, the blade 2 is made of composite material. It is specified that by “composite material” it is meant a material comprising a resin in which fibers are embedded. The resin can for example be a polymer and the fibers can for example be carbon fibers, glass fibers.
(27) Platinum
(28) Advantageously, the plate 3 is a centering and fastening member adapted to be interposed between the hub 4 and the root 22. The plate 3 can be made of metal and shaped by forging. According to the embodiments, inner ribs can optionally enhance the mechanical structure of the plate.
(29) In general, whatever the embodiment, the plate 3 has at least one longitudinal surface 31 adapted to be fastened on the underside of a root 22 and a radial surface 32 adapted to be fastened to the hub 4, for example by a conical bearing seat. In general, common to all the embodiments presented below, the fastening of the longitudinal surface 31 on the underside of the root 22 is achieved by radial screws 52. In addition, the fastening of the radial surface 32 to the hub 4 is achieved by longitudinal screws 51a. In other words, the plate 3 combines two distinct functions distributed over two separate surfaces of the plate. On the one hand, the longitudinal fastening to the hub 4 via the longitudinal surface 31, and on the other hand the radial fastening to the root 22 via the radial surface 32.
(30) According to a first embodiment presented in
(31) According to the embodiments presented in
(32) According to these embodiments, the plate 3 has a first longitudinal surface 31a adapted to be fastened on the underside of a leading portion of a root 22, and a second longitudinal surface 31b adapted to be positioned on the underside of a trailing portion of a root 22. The substantially S-shaped radial section is such that the first longitudinal surface 31a and the second longitudinal surface 31b are in separate parallel planes.
(33) According to one embodiment presented in
(34) According to one embodiment presented in
Assembly According to the First Embodiment
(35) According to the first embodiment, as explained above, the root 22 is entirely fastened to the plate 3. In other words, according to this embodiment, the root 22 is fastened to the hub 4 only via the plate 3.
(36) In a particularly advantageous manner, the root 22 is fastened by radial screws 52 passing through the longitudinal surface 31. This particularly advantageous disposition is common to all the embodiments, and allows simple fastening of the root 22 to the plate 3, while at the same time guaranteeing the right positioning of the root 22. In addition, this disposition advantageously allows the transmission of the mechanical forces from the hub 4 towards the vane 21, so that the forces are not concentrated in the plate 3.
(37) According to the first embodiment, it is remarkable that a leading portion of the platform 23 can be fastened with the plate 3. Likewise, a trailing portion of the platform 23 can be fastened with the plate 3. This disposition allows creating an air flow tight area between the platform 23 and the plate 3, so as not to create disturbances in the air flow.
(38) Then, the plate 3 is fastened to the hub 4 by longitudinal screws 51a positioned in the radial surface 32, as well as by radial screws 51b.
Assembly According to the Second Embodiment
(39) The assembly according to the second embodiment is identical to the assembly presented for the first embodiment, notwithstanding the differences in geometries of the radial sections of the root 22 and of the plate 3. As can be seen in
(40) Nevertheless, it is remarkable that according to the second embodiment, the platform 23 is fastened to the root 22 (and not to the plate 3).
(41) According to one variant, presented in
(42) These two parts are both fastened to the plate 3.
Assembly According to the Third and Fourth Embodiments
(43) According to these embodiments, represented in
(44) According to these embodiments, the platform 23 is screwed to the root 22. According to a particular disposition represented in
(45) In a particularly advantageous manner, whatever the embodiment, the entire fastening can be achieved by screws. In other words, the assembly 1 according to the invention does not comprise complex mechanical connections such as dovetails.
(46) It is remarkable that according to these embodiments, the plate 3 is of small dimensions sufficient to ensure the right positioning of the blade 2. In other words, according to these embodiments, the fastening of the leading portion 22a of the root 22 serves only as a fastener and has no positioning function. It should be noted that the small dimensions of the plate 3 allow a reduction of the mass and a simplification of the manufacture. As for the root 22 presented in
(47) Turbomachine
(48) According to another aspect, the invention relates to a turbomachine comprising a flow straightener assembly 1 for a fan module comprising at least one blade 2 having a vane 21 and a root intended to be fastened to a hub 4 of the turbomachine, and a plate 3 of the blade 2 on the turbomachine fastened on the one hand to the hub 4 at a determined azimuthal position and on the other hand to the root 22 of the blade 2.
(49) Assembly Method
(50) According to a third aspect, the invention relates to a method for assembling a flow straightener assembly 1 for a fan module to a hub 4 of a turbomachine comprising the following steps:
(51) fastening at least one a plate 3 to a flow straightener blade 2,
(52) fastening, on the hub 4, the plate 3 fastened to the blade 2, at a determined azimuthal position.
(53) This assembly method is particularly advantageous insofar as the plate 3 previously fastened to the blade 2 allows guaranteeing the right positioning of the blade 2 on the hub 4. Thus, it is possible to dispense with complex and unsustainable mechanical connections.