Fan blade comprising a thin shield and a stiffener
11598348 · 2023-03-07
Assignee
Inventors
- Thomas Alain DE GAILLARD (MOISSY-CRAMAYEL, FR)
- Benjamin Bulot (Moissy-Cramayel, FR)
- Eddy Keomorakott SOURYAVONGSA (Moissy-Cramayel, FR)
Cpc classification
F01D5/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/174
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/388
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/282
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/702
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
F05D2240/303
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
F04D29/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D5/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a fan blade (1) comprising: —an aerofoil (8) made of a composite material comprising a fibrous reinforcement densified by a polymer matrix, a leading edge (4) and a trailing edge (5), and —a structural shield (10) fitted and attached to the leading edge (4) or the training edge (5), and —at least one stiffener (20) formed integrally and in one piece with the structural shield (10), said stiffener (20) extending in a cavity (15) formed between the shield (10) and the leading edge (4) or the trailing edge (5) so as to increase a stiffness of the blade (1).
Claims
1. A blade of a rotating part of a turbomachine comprising: an airfoil made of a composite material comprising a fibrous reinforcement embedded in a polymer matrix, the airfoil comprising a leading edge and a trailing edge; a structural shield applied and attached to the leading edge or the trailing edge; and at least one stiffener formed integrally and in a single piece with the structural shield, the at least one stiffener extending into a cavity formed between the structural shield and one of the leading edge or the trailing edge and contacting the leading edge or the trailing edge so as to increase a stiffness of the blade, wherein the blade has an aerodynamic surface, the aerodynamic surface having a main extension direction defining a longitudinal axis of the blade which is substantially radial to an axis of revolution of the rotating part and a height corresponding to a distance between a lower limit of the aerodynamic surface and a tip of the blade, the at least one stiffener extending only from the tip of the blade over at most 70% of the height of said aerodynamic surface, such that the blade does not comprise a stiffener from a bottom of the blade over at least 30% of the height.
2. The blade of claim 1, wherein the at least one stiffener and the structural shield are produced by additive manufacturing.
3. The blade of claim 1, wherein the at least one stiffener comprises a plurality of walls forming at least one bellows.
4. The blade of claim 1, wherein the at least one stiffener extends along an extension direction, said extension direction being substantially parallel to the leading edge or to the trailing edge.
5. The blade of claim 1, wherein the at least one stiffener extends along an extension direction, said extension direction being substantially transverse to the leading edge or to the trailing edge.
6. The blade of claim 1, wherein the at least one stiffener and the structural shield are metallic.
7. The blade of claim 1, further comprising: another structural shield applied and attached to the trailing edge, and another stiffener formed integrally and in a single piece with the another structural shield, the another stiffener extending between the trailing edge and the structural shield.
8. The blade of claim 7, wherein the another structural shield has an aerodynamic surface, the aerodynamic surface having a main extension direction defining a longitudinal axis of the blade which is substantially radial to an axis of revolution of the rotating part and a height corresponding to a distance between a lower limit of the aerodynamic surface and a tip of the blade, the stiffener extending over only a portion of the height of said aerodynamic surface.
9. The blade of claim 8, wherein the another stiffener extends over at most 70% of the height.
10. The blade of claim 7, wherein the another stiffener is adjacent to a tip of the blade.
11. The blade of claim 7, wherein the another stiffener and the structural shield are produced by additive manufacturing.
12. The blade of claim 7, wherein at least one of the at least one stiffener of the structural shield and the another stiffener of the another structural shield comprises a plurality of walls forming at least one bellows.
13. The blade of claim 7, wherein the another stiffener extends along an extension direction, said extension direction being substantially parallel to the leading edge or to the trailing edge.
14. The blade of claim 7, the another stiffener extends along an extension direction, said extension direction being substantially transverse to the leading edge or to the trailing edge.
15. The blade of claim 7, wherein the another stiffener and the another structural shield are metallic.
16. A fan comprising the blade according to claim 1.
17. The blade of claim 1, wherein the at least one stiffener extends over at most 60% of the height.
18. A blade of a rotating part of a turbomachine comprising: an airfoil made of a composite material comprising a fibrous reinforcement embedded in a polymer matrix, the airfoil comprising a leading edge and a trailing edge; a structural shield applied and attached to the leading edge or the trailing edge; and at least one stiffener formed integrally and in a single piece with the structural shield, the at least one stiffener extending into a cavity formed between the structural shield and one of the leading edge or the trailing edge and contacting the leading edge or the trailing edge so as to increase a stiffness of the blade, wherein the at least one stiffener comprises a plurality of walls forming at least one bellows, the plurality of walls arranged adjacent to each other in a direction that is perpendicular to the leading edge or the trailing edge to which the structural shield is applied and attached, adjacent walls of the plurality of walls having a gap located therebetween.
19. The blade of claim 18, wherein a first end surface of at least one wall of the plurality of walls is connected to a pressure side fin of the stiffener and the second end surface of the at least one wall of the plurality of walls is connected to a suction side fin of the stiffener.
20. The blade of claim 18, wherein, the at least one wall of the plurality of walls extends substantially parallel to the leading edge or to the trailing edge to which the structural shield is applied and attached.
21. The blade of claim 18, wherein the at least one wall of the plurality of walls extends substantially transverse to the leading edge or the trailing edge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other features, aims and advantages of the present invention will be better revealed by reading the detailed description that follows, and with reference to the appended drawings given by way of non-limiting examples and in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF ONE EMBODIMENT
(7) Hereafter, the invention will be described more particularly in the case of a fan blade of a turbomachine. It will be understood, however, that the invention applies by analogy to blades of any rotating portion of the turbomachine, as long as these blades are made of composite material.
(8) In a manner known per se, a fan blade 1 conforming to the invention includes an aerodynamic surface 2 between a blade 1 root and a blade 1 tip. The blade 1 also comprises an airfoil having a leading edge 4, a trailing edge 5, a pressure side wall 6 and a suction side wall 7. The leading edge 4 is configured to extend facing the flow of the gases entering into the turbomachine. It corresponds to the anterior portion of an aerodynamic profile which faces the flow of air and which divides the flow of air into a pressure side flow and a suction side flow. The trailing edge 5, for its part, corresponds to the posterior portion of the aerodynamic profile, where the pressure side and suction side flows rejoin one another.
(9) The aerodynamic surface 2 of the blade 1 has a main extension direction, defining the longitudinal axis X of the blade 1 which is substantially radial to an axis of revolution Y of the fan. The aerodynamic surface 2 further has a height h corresponding to a distance between a lower limit 3 of the aerodynamic surface 2 and a tip of the blade 1, at an intersection between the leading edge 4 and the lower limit.
(10) The airfoil is made of a composite material comprising a fibrous reinforcement densified by a polymer matrix.
(11) The fibrous reinforcement can be formed from a fibrous preform obtained by three-dimensional weaving with a changing thickness. It can in particular comprise carbon, glass, aramid and/or ceramic fibers. The matrix, for its part, is typically a polymer matrix, for example epoxy, bismaleimide or polyimide.
(12) The airfoil is then formed by resin vacuum injection molding of the RTM (“Resin Transfer Molding”) or VARRTM (for Vacuum Resin Transfer Molding) type.
(13) The blade 1 further comprises a structural shield 10 which is applied and attached to the leading edge 4 of the airfoil.
(14) The shield 10 is a single-piece part comprising a substantially V-shaped cross section having a base 13, which can also be designated a “nose,” configured to extend in the continuation of the leading edge 4 of the airfoil, as well as a pressure side fin 11 and a suction side fin 12 configured to mold themselves respectively to the pressure side 6 and suction side 7 walls of the airfoil. The fins can have a tapered or thinned profile in the direction of the trailing edge 5 of the airfoil.
(15) The shield 10 extends over the entire height of the aerodynamic surface 2 of the airfoil 1. Conventionally, when the blade 1 is integrated into a fan, the radially internal portion of the flow stream is delimited by an inter-blade platform (shown in dashed lines in
(16) As illustrated in the figures, the shield 10 molds itself to the shape of the leading edge 4 of the blade, which it continues to form a new leading edge, called the leading edge 14 of the shield 10. The shield 10 thus forms the anterior portion of the aerodynamic profile of the blade 1.
(17) The shield 10 of the blade 1 is generally metallic, of titanium for example, in order to confer a high capacity for energy absorption due to possible shocks.
(18) The shield 10 and the airfoil are produced separately. The shield 10 is then applied to the leading edge 4 of the airfoil and attached to it by gluing, for example by means of a cyanoacrylate or epoxy glue. To this end, the shield 10 has an internal profile adapted to mold itself to the rounded shape of the leading edge 4 of the blade 1, with or without contact with said leading edge 4. If necessary, joggling of the pressure side 6 and suction side 7 walls of the airfoil can be carried out in order to facilitate the assembly of the shield 10.
(19) In order to allow the production of a fine leading edge on a blade 1 of composite material, yet without increasing the mass of the blade 1, the blade 1 further includes a stiffener 20 formed integrally and in a single piece with the structural shield 10. The stiffener 20 extends between the leading edge 4 and at least one inner face of the shield 10 by being supported against the leading edge 4 of the airfoil 8 so as to increase a stiffness of the blade 1.
(20) It will be understood that the invention applies by analogy to the case where the shield 10 is applied to the trailing edge of the blade 1. For the sake of simplifying the description, the invention will however be described and illustrate only for the case where the shield 10 is applied to the leading edge 4. It will further be noted that a blade 1 can both comprise a shield 10 with a stiffener 20 on the leading edge 4 and a shield 10 with a stiffener on the trailing edge 5 of the airfoil 8.
(21) Using a stiffener 20 allows reducing the mass of the base 13 of the shield 10 by creating a cavity 15 between the base 13 and the leading edge of the airfoil 8, and partially filling in this cavity 15 with a part (the stiffener 20) with low mass but which is capable of improving stiffness of the shield 10. It is therefore possible to increase the distance between the leading edge 14 of the shield 10 and the leading edge 4 of the airfoil 8, and consequently thinning the leading edge 14, yet without increasing the mass of the shield 10.
(22) It is possible for example to refer to
(23) In one embodiment, the stiffener 20 extends over only a portion of the height of the aerodynamic surface 2. More particularly, the stiffener 20 may only extend over the upper portion 1a of the blade 1, i.e. the portion adjacent to the tip of the blade 1, the lower portion 1b (i.e. the portion adjacent to the root of the blade 1) lacking a stiffener 20. In fact, the Applicant has noticed the fact that the leading edge 14 of the lower portion 1b of the blade 1 could have a greater thickness insofar as its impact on the aerodynamic properties and the behavior of the blade 1 was less. In addition, the impact of objects, and particularly of birds, do not degrade the blade 1 in the lower portion 1b of the blade 1 and to not therefore risk detaching the shield 10.
(24) In this embodiment, the profile of the shield 10 is therefore conventional in the lower portion 1b of the blade 1, i.e. thicker than in its upper portion 1a.
(25) For example, for a fan blade 1, the stiffener 20 can extend over at most 70% of the height h of the aerodynamic surface 2, starting from the blade 1 tip, preferably over at most 60% of said height h. The blade 1 is then lacking a stiffener 20 in its lower portion 1b (over the rest of the height h of the aerodynamic surface 2, i.e. approximately 30% of its height h, preferably 40%).
(26) In one embodiment, the stiffener 20 is configured to stiffen the leading edge in the direction of the axis X, i.e. along the height of the aerodynamic surface 2, in order to limit the bending of the blade 1. The stiffener 20 then extends mainly in this direction of the blade 1. Exemplary embodiments of a stiffener 20 of this type are illustrated in
(27) In the embodiments illustrated in
(28) In a second embodiment, the stiffener 20 is configured to stiffen the blade 1 in a direction transverse to the axis X, i.e. in a direction parallel to the axis of revolution of the rotating portion. The stiffener 20 then extends mainly in this transverse direction. In this second embodiment illustrated in
(29) The number, inclination and thickness of the walls 21 forming the bellows of the stiffener 20 can be optimized in design, depending on the application of the blade 1 and the stresses that it is likely to endure. In particular, the number, the inclination and the thickness of the walls depend on the following parameters: the number of blades, the speed of rotation, the diameter of the blade 10, the material of the leading edge 4 and of the composite material blade, the aerodynamic profile 2 including the thickness of the leading edge 4 of the blade 1, the thickness of the shield 10.
(30) In the third embodiment, the stiffener 20 is configured to stiffen the blade 1 both in the direction of the axis X and in the transverse direction. The stiffener 20 can then comprise a grid array.
(31) In this case of an embodiment, not shown, while being near the embodiment illustrated in
(32) The stiffener 20 and the shield 10 are metallic, of titanium for example.
(33) Considering the complex shape of the shield 10 and of the stiffener 20, they are preferably produced by additive manufacturing.