Method for manufacturing a composite material part intended to be articulated with other parts

The method improves the manufacturing of composite parts with articulation zones by shaping a fibrous core and positioning a woven belt around it, enhancing mechanical performance and reducing costs and weight.

FR3137013B1Active Publication Date: 2025-05-23SAFRAN LANDING SYSTEMS +1
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Patent Information

Application Number
FR2022006164
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-22
Publication Date
2025-05-23
Estimated Expiration
2042-06-22

AI Technical Summary

Technical Problem

Existing methods for manufacturing composite parts with articulation zones, such as landing gear struts, face challenges including increased size and weight due to laminated configurations, high manual intervention leading to non-conformities and increased costs, and suboptimal mechanical performance in compressive strength.

Method used

A method involving the formation of a fibrous preform through weaving, where a first fibrous core texture is shaped to create positioning surfaces and then a second woven fibrous belt texture is positioned around the first, forming loops for articulation and improving mechanical performance without adding mass.

Benefits of technology

This method enhances mechanical performance, particularly in compressive strength, while maintaining structural lightness and reducing manufacturing costs by minimizing manual intervention and eliminating the need for additional filling materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

Method for manufacturing a part made of composite material intended to be articulated with other parts The invention relates to a method for manufacturing a fibrous preform of a part, comprising: - weaving a first core texture of slender shape extending in a longitudinal direction and comprising, in cross section, a central portion (10) having, on its opposite sides, two edges each comprising two fibrous portions (16a;16b) untied, - shaping the first texture comprising at least the deployment of the untied portions to form a positioning surface (30) defined by the portions thus deployed and by an intermediate portion, located between these deployed portions, which can be formed by an extension (18a) of the central portion, - positioning a second belt texture on the deployed lateral portions and the intermediate fibrous portion, the second texture defining a loop around the first texture shaped to define free spaces for articulation with other parts. Figure for the abstract: Fig. 3D.;
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Description

Title of the invention: Method for manufacturing a part made of composite material intended to be articulated with other parts Technical field

[0001] The subject of the invention is a method for manufacturing a composite part preform intended to be articulated with other parts at its ends, and a method for manufacturing such a part. Prior art

[0002] The use of composite materials as a replacement for metallic materials can be proposed with a view to lightening, which is a constant concern in the particular case of aircraft parts. In this view, document US 7,704,429 has proposed the manufacture of landing gear struts made of composite material which comprise regions, called yokes, which are intended for articulation and the introduction of force with other parts and are formed by a laminated structure with intercalation of plies between primary plies extending the body of the reinforcement. This solution can nevertheless have drawbacks. Indeed, yokes which have a laminated configuration can lead to an increase in the size of the force introduction zones compared to the metal parts in order to avoid the risk of delamination.The mass gain of the overall system then becomes less interesting and the integration of the part more restrictive due to increased bulk. Another problem is that the proposed manufacturing technique involves significant manual intervention which can lead to non-conformities and an increase in cost. Finally, the mechanical performance of the composite material proposed in this document can be improved, particularly in terms of compressive strength over a middle zone of the length of the part called the current zone. One option to address this is to add material in the current zone which then penalizes the mass and therefore does not provide complete satisfaction.

[0003] The invention proposes to address all or part of the aforementioned drawbacks. Statement of the invention

[0004] The invention relates to a method for manufacturing a fibrous preform of a composite part intended to be articulated with other parts, comprising at least: - the formation by weaving of a first fibrous core texture of slender shape extending in a longitudinal direction and comprising, in cross section, a central portion having, on its opposite sides, two positioning edges each comprising two unbound lateral fibrous portions,

[0005] - shaping the first fibrous texture comprising at least the de- folding of the unbound lateral portions to form a positioning surface defined by the lateral portions thus deployed and by an intermediate fibrous portion, located between these deployed portions, formed by an extension of the central portion or by this central portion, and - positioning a second woven fibrous belt texture on the deployed lateral portions and the intermediate fibrous portion, the second texture defining a loop around the first texture shaped so as to define, at the longitudinal ends between the first and second textures, free spaces intended for articulation with other parts.

[0006] The invention proposes a solution based on an assembly between a core and a belt each resulting from a weaving operation with a belt positioning surface formed by the intermediate portion and the deployed unbound portions located on either side thereof. Such a solution provides a good quality interface for the assembly, guaranteeing good holding of the composite material part, and in particular allows the improvement of mechanical performance compared to US 7,704,429, in particular in terms of compressive strength, without penalizing the mass of the structure. In particular, it is advantageous to have a positioning surface of substantially planar shape due to the presence of the intermediate portion, and this by avoiding the use of a third-party filling material between the deployed portions.The loosened portions allow, after shaping, to increase the rigidity along all the stress axes of the part (optimization of the inertia). The belted technology according to the invention also allows to be more economical in terms of manufacturing cost than the discussed solution of the prior art.

[0007] According to one example, each positioning edge further comprises an intercalary fibrous texture extending the central portion and located between the unbound lateral fibrous portions, and the shaping further comprises cutting this intercalary fibrous texture so as to form the intercalary fibrous portion.

[0008] According to this example, the intermediate portion is formed by a residual textile extension of the central portion within the positioning edges resulting from the cutting of the intermediate fibrous texture.

[0009] According to a variant, the central portion comprises woven skins and a set of non-woven threads located between the woven skins and held together by threads originating therefrom, the woven skins extending beyond the central portion in the positioning edges to form the untied lateral fibrous portions, and in which these untied portions are deployed so as to fold them down to the height of the set of non-woven threads during shaping.

[0010] According to this variant, the intermediate portion is formed by the central portion itself- same, located at the same level as the deployed untied portions, and makes it possible to avoid having to carry out the cutting operation described above. In addition, the set of non-woven threads forms a stiffening portion which makes it possible to further improve the compressive strength compared to a structure obtained entirely by three-dimensional weaving.

[0011] In an exemplary embodiment, the untied lateral fibrous portions are formed by weaving first and second yarns and have a first volume ratio of first yarns relative to the second yarns, and the second texture is formed by weaving first and second yarns and has a second volume ratio of first yarns relative to the second yarns, the relative difference between the first and second volume ratios not exceeding 25%, for example not exceeding 10%.

[0012] Such a characteristic helps to further improve the mechanical strength of the composite material part to be obtained.

[0013] In an exemplary embodiment, the first and second textures are made of carbon threads.

[0014] The invention also relates to a method for manufacturing a part made of composite material intended to be articulated with other parts, comprising at least: - the formation of a fibrous preform of the part to be obtained by implementing a process as described above, and - the formation of a matrix in a porosity of the fibrous preform thus obtained.

[0015] In an exemplary embodiment, the matrix is ​​organic.

[0016] In an exemplary embodiment, the part is a landing gear strut, part of a landing gear strut or brake bar. Brief description of the drawings

[0017] [Fig.l] [Fig.l] schematically represents an example of a first fibrous core texture that can be used in the context of the invention.

[0018] [Fig.2] [Fig.2] schematically represents a cross-section of the first texture according to [Fig.l].

[0019] [Fig.3A] [Fig.3A] represents a first step of an example of shaping the first texture according to the invention.

[0020] [Fig.3B] [Fig.3B] represents a second step of the example of shaping the first texture according to the invention.

[0021] [Fig.3C] [Fig.3C] represents a third step of the example of shaping the first texture according to the invention.

[0022] [Fig.3D] [Fig.3D] represents a fourth step of the example of shaping the first texture according to the invention.

[0023] [Fig.4] [Fig.4] schematically represents an example of a preform of a composite material part obtained after positioning the second belt texture on the first shaped texture.

[0024] [Fig.5] [Fig.5] schematically represents a cross-section of a variant of the first texture that can be used in the context of the invention.

[0025] [Fig.6A] [Fig.6A] represents a first step in a possible shaping of the texture of [Fig.5].

[0026] [Fig.6B] [Fig.6B] represents a second stage of this shaping.

[0027] [Fig.6C] [Fig.6C] represents a third stage of this shaping with the positioning the belt on this shaped texture. Description of the embodiments

[0028] [Fig. 1] illustrates an example of a first fibrous texture 1 that can be used in the context of the invention. The first texture 1 has a slender shape extending along a longitudinal direction X. It can be obtained by three-dimensional weaving in a single piece by providing areas of delinking, as will be described below. By “three-dimensional weaving” or “3D weaving” is meant a weaving method by which at least some of the first threads directed in the direction X bind second transverse threads to the first threads on several layers of second threads. Such weaving can be carried out in a Jacquard type loom, in a manner known per se. The first texture 1 is intended to form the core of the fibrous reinforcement of the piece to be obtained. For example, an “interlock” weaving armor can be used to form the first texture 1.The first texture 1 has longitudinal ends 3 which have a curved shape, for example substantially circular, and which are intended to define, in the part to be obtained, free spaces dedicated to articulation with other parts. In the example illustrated, the longitudinal ends 3 are substantially of the same dimension but the person skilled in the art will recognize that other variants are possible and in particular that the invention can be applied to a part having longitudinal ends of different dimensions.

[0029] The first texture 1 may be in the form of a strip and [Fig.2] represents a cross-section thereof taken transversely to the longitudinal direction X. The first texture 1 comprises a central portion 10 which has on its opposite sides 11 two edges 12 which are intended for the positioning of a second texture, called positioning edges 12. The central portion 10 as well as the edges 12 each extend along the longitudinal direction X. The central portion 10 is located between the edges 12. In the example illustrated, the edges 12 as well as the central portion 10 are offset along the width of the first texture (direction L). Each positioning edge 12 successively has, in the example illustrated along the thickness of the first texture 1 (direction E) which corresponds to its smallest dimension, a first unbound lateral fibrous portion 16a, an intercalary fibrous texture 18 and a second unbound lateral fibrous portion 16b. A first unbounding zone 14a is present between the first portion 16a and the texture 18 and a second unbounding zone 14b is present between the texture 18 and the second portion 16b. In the unbounding zones 14a, 14b, layers of yarns of the texture 18 and of the portion 16a, 16b have been deliberately omitted to be woven between them so as to be able to deploy the latter as will be described below. The unbounding zones 14a, 14b are initiated from the sides 11. Each of the portions 16a, 16b extends the central portion 10 beyond the sides 11.In the example illustrated, the portions 16a, 16b as well as the intermediate texture 18 are obtained by three-dimensional weaving like the central portion 10 but it does not depart from the scope of the invention when it is otherwise, in particular the intermediate texture can be formed of layers of non-woven threads (unidirectional layers of threads). It will be noted that the delinking zones 14a, 14b can extend over all or part of the length of the first texture 1, in particular over a length LD at least 50% of the latter. The delinking zones 14a, 14b may in particular be present on the median zone ZM of the length of the first texture 1. The example considered concerns the case where the height of the delinkings 14a, 14b measured along the direction L does not change along the longitudinal direction X but we do not depart from the scope of the invention when this is the case, in particular in the particular case where the longitudinal ends 3 have different dimensions.In particular, the height of the delinks 14a, 14b can vary so as to reach a maximum in the middle zone ZM, thus further promoting the quality of the interface with the belt and therefore the mechanical properties of the current zone, in particular the inertia of the core, thus increasing the resistance to buckling under compression loading or vibration modes. A possible structure of first texture 1 has just been described, the following focuses on detailing, in connection with figures 3A to 3D, a possible shaping for this in order to prepare the positioning of the second belt texture.

[0030] The first texture 1 is positioned in a first tool 20 which comprises two parts 22 intended to bear on the first texture 1, as illustrated in [Fig.3A]. More precisely, the central portion 10 is held between the parts 22 which can optionally apply a compacting pressure to it if it is desired to adjust the fiber content. The two parts 22 can be offset along the direction E as illustrated. The parts 22 have a face 22a, which can be substantially planar, bearing on the central portion 10 and a curved face 22b extending from the face 22a in the opposite direction of the first texture 1. The face 22b defines in particular in the vicinity of the positioning edges 12 a zone 24 on which the loose portions 16a, 16b are intended to be draped during the cutting of the interlayer texture 18. Thus, as illustrated in [Fig.3B], the loose portions 16a, 16b are separated from each other so as to position them on the zone 24 of a respective part 22 and thus release them from the interlayer texture 18. The loose portions 16a, 16b folded over the zone 24 are held in this zone 24 by means known per se, for example by pinching. The interlayer texture 18 is then cut along a cutting line LD as shown in [Fig.3C]. This cutting can be carried out by water jet cutting, but those skilled in the art will recognize that other techniques are possible. As illustrated, the cutting of the interlayer texture 18 can be carried out flush with the loose portions 16a, 16b held on the parts 22.Furthermore, the curved shape of the face 22b ensures that the untied portions 16a, 16b extend away from the cutting line LD, thus avoiding any risk of damage during this operation. The cutting residue of the texture 18 forms the intermediate portion 18a which is located between the untied portions 16a, 16b and will serve as a support for the belt texture. The portion 18a is located in the textile extension of the central portion 10. The textile portion 18a may have a sufficiently short length to have sufficient rigidity allowing it to maintain a straight shape along the direction L in the absence of any holding tooling.

[0031] Once this cutting has been carried out, the first texture is extracted from the tool 20 and is positioned between two shapes 23 of a second separate tool 21 which is a shaping tool to the shape of the core of the part to be obtained. The shapes 23 can be offset along the direction E as illustrated. [Fig.3D] illustrates this shaping where the untied portions 16a and 16b are deployed on the shapes 23 so as to form lateral fins and in which the first texture 13 thus shaped has an I-shape in cross section (called a double angle shape). In the example illustrated, each deployed untied portion 16a, 16b forms an elbow with the central portion 10, with an angle substantially equal to 90° with the direction L.The first shaped texture 13 defines on either side of the central portion 10, at the positioning edges 12, a positioning surface 30 on which the second belt texture is intended to be deposited. The positioning surface 30 is defined by the deployed untied portions 16a, 16b as well as by the intermediate portion 18a extending the central portion 10 which makes it possible to fill the lack of material which would result from the deployment of the untied portions 16a, 16b. This provides a good interface with the belt and in particular a positioning surface 30 of substantially planar shape, as illustrated in [Fig.3D]. The example which has just been described uses two different tools, one for cutting, the other for shaping the first texture but it is not outside the scope of the invention if the same tool is used for both. operations. The method continues by positioning around the first texture 13 thus shaped by the tool 21 a second fibrous texture 40 woven into a belt, as illustrated in [Fig.4]. The second texture 40 may have a strip shape which is wrapped around the first shaped texture 13. During its positioning, the second texture 40 comes to bear on the deployed portions 16a, 16b but also on the intermediate portion 18a which makes it possible to provide a good interface between the two textures. The second texture 40 may be in the form of a single strip of fabric but it is not outside the scope of the invention if it is in the form of several strips placed end to end or side by side. The second texture 40 may also be obtained by three-dimensional weaving, for example with an “interlock” weave.The second texture 40 defines a closed loop around the first texture 13 shaped and defines free spaces 42 intended for articulation with the other parts. Inserts (not shown) can be temporarily used at the longitudinal ends 3 and the second texture 40 can be wrapped around them so as to guarantee the desired shape for the end regions. As indicated above, the volume ratios between the warp and weft threads of each of the first 11 and second 40 textures can be similar. These volume ratios correspond to the ratio: [volume occupied by the warp threads] / [volume occupied by the weft threads] for each texture considered.

[0032] A counter-mold is then positioned around the assembly of the two textures 13 and 40 so as to define with the tool 21 a cavity for introducing the matrix material and the assembly is then densified, for example by introducing a resin, such as an epoxy resin, followed by crosslinking thereof if it is a thermosetting resin or by cooling if it is a thermoplastic resin. The formation of the matrix can be carried out by resin transfer molding technique which corresponds to a technique known per se. A part made of composite material is thus obtained which is intended to be articulated with other parts at its longitudinal ends. The fibrous reinforcement of the part can be formed from carbon threads and the part can have an organic matrix as just described. The part may or may not be intended for an aeronautical application.The part may for example be a connecting rod, a landing gear strut or a constituent element thereof, or even a brake bar. The part may be intended to undergo mainly tensile and compressive forces in operation. The part obtained may be mounted to other parts by positioning through the free spaces 42 a hinge pin for connection to other parts as well as an insert for contact with this pin.

[0033] The example which has just been described concerns the case of an intermediate portion 18a formed by a textile extension of the central portion 10. Nevertheless, the invention also covers the case where the central portion itself is located between the deployed unbound portions so as to provide a support surface for the second belt texture. Such an example will now be discussed in connection with Figures 5 and 6A to 6C.

[0034] [Fig. 5] is a cross-sectional view of a variant of first texture 100 which comprises, over all or part of its length, a central portion 110 having, on its opposite sides 111, two positioning edges 120 which each comprise unbound lateral portions 160a, 160b separated by a unbounding zone 140 allowing a spacing of these portions 160a, 160b relative to each other. As in the previous example, the positioning edges 120 and the central portion 110 are offset along the width direction L and the unbound portions 160a, 160b are offset along the thickness direction E. The first texture 100 comprises woven skins 102a, 102b, for example obtained by three-dimensional weaving, which form a part of the central portion 110 and extend in the extension of this portion so as to form the loose portions 160a, 160b.The skins 102a, 102b are formed by a weave between first yarns C1-C4 and C13-C16 extending along the longitudinal direction X with second yarns t1-t8 extending along the direction L. Generally, it will be recognized that the number of yarn layers and the weave pattern illustrated are provided for example purposes only and may be modified without departing from the scope of the invention. The central portion 110 also includes a set 102c of non-woven yarns C5-C12 located between the skins 102a, 102b and held together by yarns originating therefrom. Indeed, it is noted that the wire t4 extends in the first skin 102a outside the central portion 110 and is deflected in order to exit this first skin 102a to bind the set 102c of wires C5-C12 in the central portion 110.Similarly, the yarn t5 extends into the second skin 102b outside the central portion 110 and is deflected in order to exit this second skin 102b to bind the set 102c of yarns C5-C12 in the central portion 110 on the side opposite the yarn t4. This results in an encapsulation of the set 102c of non-woven yarns C5-C12 between the skins 102a, 102b, these yarns C5-C12 being held in place by the deflected yarns t4-t5. In the example illustrated, there are in the central portion 110 successively along the thickness direction E: the first skin 102a, the set 102c of non-woven yarns and the second skin 102b. It will be noted that the set 102c of non-woven threads is only present in the central portion 110 and not in the positioning edges 120.It may also be noted that the C5-C12 yarns may be non-woven over only part of the length of the first texture 100, for example over its middle zone ZM, but may be woven over the longitudinal ends of the first texture 100. The length where the C5-C12 yarns are non-woven may be greater than or equal to 50% of the . length of the first texture 100. Figures 6A to 6C illustrate, in a simplified manner, the shaping of the first texture of [Fig.5] as well as the positioning of the second belt texture 40, it being understood that the configuration is symmetrical with respect to the directions L and E. In the example considered, there is deployment of the untied portions 160a, 160b on a form (not illustrated) so as to form an angle of substantially 90° with the direction L and to position the untied portions 160a, 160b at the height of the set 102c of non-woven threads. This height is taken along the direction L. This gives a positioning surface 130 of substantially planar shape with, at the same level, the loose portions 160a, 160b as well as the set of threads 102c of the central portion 110 which is located between these loose portions and thus defines a support surface for the belt texture 40.

Claims

Claims

1. A method of manufacturing a fibrous preform of a composite part intended to be articulated with other parts, comprising at least: - the formation by weaving of a first fibrous texture (1; 100) of slender core shape extending in a longitudinal direction (X) and comprising, in cross section, a central portion (10; 110) having, on its opposite sides (11; 111), two positioning edges (12; 120) each comprising two unbound lateral fibrous portions (16a; 16b; 160a; 160b), - the shaping of the first fibrous texture comprising at least the deployment of the unbound lateral portions to form a surface (30;130) positioning defined by the lateral portions thus deployed and by an intermediate fibrous portion, located between these deployed portions, formed by an extension (18a) of the central portion or by this central portion (110), and - the positioning of a second woven fibrous belt texture (40) on the deployed lateral portions and the intermediate fibrous portion, the second texture defining a loop around the first texture shaped so as to define, at the longitudinal ends between the first and second textures, free spaces (42) intended for articulation with other parts.;

2. Method according to claim 1, in which each positioning edge (12) further comprises an intercalary fibrous texture (18) extending the central portion (10) and located between the unbound lateral fibrous portions (16a; 16b), and in which the shaping further comprises a cutting of this intercalary fibrous texture so as to form the intercalary fibrous portion (18a).

3. A method according to claim 1, wherein the central portion (110) comprises woven skins (102a; 102b) and a set of non-woven yarns (102c) located between the woven skins and held together by yarns (t4; t5) originating therefrom, the woven skins extending beyond the central portion in the positioning edges (120) to form the untied lateral fibrous portions (160a; 160b), and wherein these untied portions are deployed so as to fold them down to the height of the set of non-woven yarns during shaping.

4. A method according to any one of claims 1 to 3, wherein the debonded lateral fibrous portions (16a; 16b; 160a; 160b) are formed by weaving first and second yarns and have a first volume ratio of first yarns relative to second yarns, and wherein the second texture (40) is formed by weaving first and second yarns and has a second volume ratio of first yarns relative to second yarns, the relative difference between the first and second volume ratios not exceeding 25%.

5. A method according to any one of claims 1 to 4, wherein the first (1; 100) and second (40) textures are made of carbon yarns.

6. Method for manufacturing a part made of composite material intended to be articulated with other parts, comprising at least: - the formation of a fibrous preform of the part to be obtained by implementing a method according to any one of claims 1 to 5, and - the formation of a matrix in a porosity of the fibrous preform thus obtained.

7.

8. A method according to claim 6, wherein the matrix is ​​organic. A method according to claim 6 or 7, wherein the part is a landing gear strut, a portion of a landing gear strut or a brake bar.