METHOD FOR MANUFACTURING A COMPOSITE PART
Patent Information
- Application Number
- DE602023006959
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-02-10
- Filing Date
- 2023-02-07
- Publication Date
- 2025-09-24
- Estimated Expiration
- 2043-02-07
AI Technical Summary
Existing methods for manufacturing composite material parts, such as those used in turbomachines, face limitations in adaptability for complex geometries and high implementation costs due to the use of rigid porous materials, which are difficult to remove and costly to implement.
A method involving a mold with a fibrous texture, a granular filtration layer, and a retention element is used to introduce a suspension, where the liquid medium is drained through a permeable evacuation surface, allowing matrix particles to be retained in the fibrous texture, and a surface layer is formed from filtration particles, eliminating the need for removing porous parts and enhancing mechanical properties.
This method improves the mechanical properties of the surface layer and reduces implementation costs by integrating a granular filtration layer into the composite material part, enabling better adaptability for complex geometries and reducing the need for costly removal steps.
Description
Technical Field
[0001] The invention relates to a method for manufacturing a part made of composite material in which the material intended to form the matrix is provided by introducing a suspension into a reinforcing texture and the liquid medium of this suspension is removed from the texture by drainage through a granular layer intended to be incorporated into the part obtained. The invention relates in particular to applications in the manufacture of turbomachine parts, for example aeronautical turbomachine parts. Prior art
[0002] It is known to manufacture composite material parts by introducing a powder into the porosity of a fibrous texture by infiltration of a suspension, for example using an STM (Slurry Transfer Molding) process. In this case, the liquid medium of the suspension is drained or filtered while the powder intended to form the matrix of the part is retained in the porosity of the texture. Such a method is notably described in document WO 2016 / 102839 which proposes the implementation of a rigid part made of porous polytetrafluoroethylene (PTFE) material interposed between the fibrous texture and the molding surface through which the liquid medium of the suspension is evacuated. The part made of porous material is then detached from the fibrous texture when it is demolded after infiltration.However, the rigidity of the porous material part used gives it limited adaptability for complex geometries and this technique has a relatively high implementation cost.
[0003] The invention proposes to remedy the drawbacks of the prior art.
[0004] Document DE 10 2020 106043 A1 discloses a method for manufacturing a part made of composite material, comprising at least: obtaining a mold comprising (i) a fibrous texture, (ii) a granular filtration layer located between a drainage surface of the texture and a permeable evacuation surface, and (iii) a retention element for the granular layer distinct from the latter and located between the permeable evacuation surface and the drainage surface, introducing a suspension comprising matrix particles into a liquid medium through an introduction surface of the fibrous texture distinct from the drainage surface, the liquid medium passing through the drainage surface, the granular filtration layer and the retention element to be evacuated through the permeable evacuation surface, and the matrix particles being retained in the porosity of the fibrous texture by the granular filtration layer, and forming the part made of composite material by forming a matrix in the porosity of the fibrous texture from the matrix particles.. Statement of the invention
[0005] The invention relates to a method for manufacturing a part made of composite material, comprising at least: obtaining a mold comprising (i) a fibrous texture, (ii) a granular filtration layer located between a drainage surface of the texture and a permeable evacuation surface and comprising a powder of filtration particles, and (iii) a retention element for the granular layer distinct from the latter and located between the permeable evacuation surface and the drainage surface, introducing a suspension comprising matrix particles into a liquid medium through an introduction surface of the fibrous texture distinct from the drainage surface, the liquid medium passing through the drainage surface, the granular filtration layer and the retention element to be evacuated through the permeable evacuation surface, and the matrix particles being retained in the porosity of the fibrous texture by the granular filtration layer,and forming the composite material part by forming a matrix in the porosity of the fibrous texture from the matrix particles and forming a surface layer of this part from the filtration particles.
[0006] The invention proposes the use of a granular filtration layer which is intended to be integrated into the composite material part obtained, which makes it possible to avoid the step of removing the porous part encountered in the prior art and the limitations in terms of accessible geometries linked to the rigidity of this porous part. The retention element makes it possible to prevent the filtration particles from being carried outside the mold during the evacuation of the liquid medium.
[0007] In an exemplary embodiment, the granular filtration layer further comprises reinforcing fibers distinct from the filtration particles.
[0008] Such a characteristic advantageously makes it possible to improve the mechanical properties of the surface layer of the part obtained.
[0009] In an exemplary embodiment, the retention element comprises at least one film or textile having a plurality of orifices for discharging the liquid medium and located between the granular filtration layer and the permeable discharge surface.
[0010] In one exemplary embodiment, the retention element comprises at least one granular assembly formed by additional filtration particles having a different average size and / or a different shape from the filtration particles and interlocked therewith so as to prevent their movement towards the permeable discharge surface.
[0011] Unless otherwise stated, "average size" means the dimension given by the statistical particle size distribution to half of the population, known as D50.
[0012] In particular, the additional filtration particles may have an average size less than or equal to three times the average size of the filtration particles, for example less than or equal to the average size of the filtration particles.
[0013] The granular filtration layer can be positioned in the mold in different ways.
[0014] According to a first example, obtaining the mold comprises positioning the granular filtration layer in the form of a block comprising the filtration particles bound together by a fugitive binder.
[0015] In another example, obtaining the mold comprises spraying the filtration particles onto the drainage surface of the fibrous texture and / or onto the permeable drainage surface.
[0016] In one example, providing the mold comprises (a) forming the granular filtration layer comprising the filtration particles, and (b) providing the additional filtration particles in a carrier liquid which is drained through the filtration particles and the drainage surface, the additional filtration particles being retained by the filtration particles so as to form the retention element.
[0017] In particular, the granular filtration layer may be formed by adding filtration particles to a second carrier liquid on the drainage surface side, said filtration particles being able to have a particle size greater than a size of the interstices of the pore network of the fibrous texture, with drainage of the second carrier liquid through the drainage surface, the filtration particles being able to be retained by the fibrous texture so as to form the granular filtration layer.
[0018] In one exemplary embodiment, the matrix is formed by sintering the matrix particles, and the surface layer is formed by sintering the filtration particles.
[0019] The use of sintering advantageously allows the matrix and the surface layer to be formed with limited implementation costs.
[0020] In an exemplary embodiment, the matrix particles and the filtration particles are formed from the same material.
[0021] Such a characteristic advantageously makes it possible to obtain optimal compatibility between the surface layer and the matrix of the part.
[0022] In an exemplary embodiment, the matrix particles and the filtration particles are made of ceramic oxide material, silicon carbide or carbon. In an exemplary embodiment, the part is a turbomachine part, for example an aeronautical turbomachine part. Brief description of the drawings
[0023] [ Fig. 1 ] There figure 1 is a schematic sectional view showing the introduction of matrix particles into the porosity of a texture as part of an example of a method according to the invention. Fig. 2 ] There figure 2 schematically illustrates the obtaining of the part by heat treatment from the texture obtained according to the example of the figure 1 . [ Fig. 3 ] There figure 3 is a schematic sectional view showing the introduction of matrix particles into the porosity of a texture in the context of a process variant according to the invention. Fig. 4 ] There figure 4 represents, schematically and partially, a granular filtration layer usable within the framework of the invention. Fig. 5 ] There figure 5 represents, schematically and partially, another granular filtration layer usable within the framework of the invention. Fig. 6A ] There figure 6A represents, schematically and partially, an example of a granular filtration layer usable within the framework of the invention. Fig. 6B ] There figure 6B represents, schematically and partially, an example of a retention element in the form of a granular assembly usable within the framework of the invention and associated with the granular layer of the figure 6A . Description of the embodiments
[0024] There figure 1 represents a mold formed by the joining of an upper tool 8 and a lower tool 2 which comprises a molding surface 4, for example formed from a rigid material, which is intended to give its shape to the surface of the part to be obtained located opposite. The molding surface 4 forms, in the example of the figure 1 , a permeable surface allowing the evacuation of the liquid medium ML from the suspension 1 to the outside of the mold. A fibrous texture 6 is present in the mold and has along one of its surfaces SD, called the drainage surface, a granular filtration layer 5a comprising a plurality of filtration particles 50a. The particles 50a may be in contact with the surface SD. A retention element, in the form of a porous layer 5b for retaining the particles 50a, is located between the layer 5a and the molding surface 4 and has a porosity fine enough to retain the particles 50a in place against the texture 6 during the evacuation of the liquid medium ML during the introduction of the suspension 1. The layers 5a and 5b may, as illustrated, cover substantially the entire surface SD. The particles 50a may be in contact with the layer 5b. The layer 5b may be in contact with the molding surface 4.
[0025] The particles 50a are formed from a material compatible with integration into the composite material part. For example, these particles 50a may be made of alumina (Al 2 O 3 ) if the part is an oxide / oxide composite, of silicon carbide (SiC) for a silicon carbide matrix part, or of carbon or graphite if a carbon matrix part is manufactured. In order to guarantee optimal compatibility, the particles 50a formed from the same material as the matrix particles PM may be used, but those skilled in the art will recognize that variations are possible without departing from the scope of the invention. Generally, the average size of the particles 50a may be greater than the average size of the matrix particles PM.The average size of the particles 50a may be between 1 and 50 times the average size of the matrix particles PM, in particular between 1 and 30 times or between 1 and 3 times the average size of the matrix particles PM. In general, the layer 5a may have a thickness e of between 5 and 1000 times the average size of the matrix particles PM, in particular between 10 and 500 times the average size of the matrix particles. For example, the thickness e of the layer 5a may be between 4 µm and 200 µm.
[0026] Texture 6 is intended to form the reinforcement of the composite material part. The manufacture of texture 6 uses techniques known per se, such as the stacking of two-dimensional fabrics, three-dimensional weaving or the placement of unidirectional fiber ribbons. The threads used to form texture 6 may be made of ceramic material, for example carbide or oxide, or carbon. In particular, alumina threads may be used if an oxide / oxide composite part is manufactured.
[0027] Layer 5b allows particles 50a to be retained against the drainage surface SD of texture 6. In the example illustrated in figure 1 , the layer 5b is formed by a film comprising a plurality of through-orifices or several of these superimposed films. The size of the orifices is chosen according to the size of the particles 50a to ensure their retention. By way of illustration, the orifices may have an average size of between 10 µm and 100 µm and the film may have a surface opening rate (corresponding to the ratio of the total surface area of the orifices / surface area of the film) of between 0.1% and 2%. The layer 5b may be made of polymeric material. Alternatively, a layer 5b formed by a textile, for example a fabric, may be used. Generally speaking, the layer 5b may typically have a thickness less than or equal to 100 µm. In the case of the figure 1 , the particles 50a are not bonded together and held in place due to their interposition between the texture 6 and the layer 5b. The layer 5a may be in the form of a granular bed, here comprising a plurality of loose grains formed by the particles 50a. The particles 50a may have a substantially spherical or ellipsoidal shape. Other structures are nevertheless possible for the granular filtration layer. According to the variant of the figure 4 , the filtration layer 15a further comprises reinforcing fibers 52a, here in the form of discontinuous fibers, present in the interstices between the particles 50a. The volume fraction of the fibers 52a in the layer 15a may be substantially equal to the desired fiber volume ratio in the texture 6 densified by the matrix. The discontinuous fibers 52a may be short fibers having in particular an average size less than or equal to 30,000 µm or alternatively be in the form of independent filaments. According to one variant, the reinforcing fibers may be bonded together so as to form a textile such as a fabric or a non-woven fabric. The fibers added to the filtration layer are of course formed from a material compatible with integration of the composite material part. In a particular case, the fibers 52a may be formed from the same material as the particles 50a, and possibly as the matrix particles PM. According to the variant of the figure 5 , the filtration layer 25a is in the form of a block comprising the particles 50a bound together by a fugitive binder 54a, which is intended to be eliminated during the process. The elimination of the binder 54a makes it possible to free the porosity between the particles 50a and thus to evacuate the liquid medium ML from the suspension. For example, it is possible to choose a binder 54a soluble in the liquid medium ML or, alternatively, a binder 54a which can be removed thermally. It is of course possible to add fibers 52a to the binder 54a and to the particles 50a, as in the case of figure 4 . When placing the elements in the mold, layer 5a can be deposited and then texture 6 can be positioned and the mold closed. This deposition can be done by manual placement or, alternatively, by spraying the particles 50a onto layer 5b and / or onto the surface SD.
[0028] The case of figures 6A et 6B relates to a variant where the retention element comprises additional filtration particles 25b distinct from the particles 50a forming the layer 5a. In this case, the layer 5b of adjusted porosity may or may not be added to allow the retention of the particles which was mentioned above. figure 6A shows the granular filtration layer formed by the particles 50a which can be produced by deposition as described above. Alternatively, it is possible to first position the texture 6 in the mold and then carry out infiltration of the particles 50a by means of a vector liquid supplied from the side of the surface SD. In the example of the figure 1 , this infiltration can be carried out by the lower part of the mold through the molding surface 4. The particles 50a are chosen with a particle size greater than a size of the interstices of the pore network of the texture 6 so as not to pass through it and to be retained opposite the surface SD. Particles 50a of substantially spherical shape have been shown, but it is not outside the scope of the invention when these particles 50a have a different shape, for example when they are of substantially polyhedral shape so as to interlock with each other, and make their movement difficult once piled up or compacted and "percolated". The particles 25b can then be supplied also by infiltration with a carrier liquid which may be identical to or different from the carrier liquid used to supply the particles 50a.The movement of the particles 25b towards the texture 6 is hindered by the particles 50a and some of the particles 25b are lodged in the interstices existing between the particles 50a. In the example illustrated, the particles 25b have a finer particle size than the particles 50a, preferably between 2 and 20 times smaller in order to fit into the interstices of the particles 50a. Preferably at least some of the particles 25b have a polyhedral shape so as to fit together and become stuck between the particles 50a. In the example illustrated, the particles 25b have a different shape from that of the particles 50a but it is not outside the scope of the invention when this is not the case. Thus, a set of particles 50a and 25b are obtained which are fitted together, resulting in a blockage of the set. This nesting prevents the movement of the particles 50a towards the molding surface 4 during the evacuation of the liquid medium ML.According to one example, for a texture 6 whose filaments have a diameter of between 10 µm and 20 µm and interfilament spaces of between 1 µm and 5 µm, and interfiber spaces of up to 50 µm, it is possible to use particles 50a with a particle size of between 5 µm and 50 µm and particles 25b with a particle size of between 0.2 µm and 5 µm. A case has been described where the particles 25b are supplied by infiltration, but it is not outside the scope of the invention if the particles 50a and 25b are co-deposited by spraying or already bound by a fugitive binder in a manner similar to that described above. In the example of the . figure 6B , the set of particles 50a and 25b is interposed between the texture 6 and the molding surface 4. The case of two sets of particles 50a and 25b of distinct particle sizes has been shown, but it does not go beyond the scope of the invention if more particle sizes are used with an average size of filtration particles generally decreasing when moving from the texture 6 towards the molding surface 4.By way of example, it is possible to use a first set of filtration particles, located in a first region on the side of the SD surface, having a first average size of between 0.5 times and 3.5 times the diameter of the filaments of the texture 6, preferably between 0.5 times and 1.5 times this diameter, a second set of filtration particles, located at least in part in a second region between the first region and the molding surface 4, having a second average size of between 0.1 times and 1 time the diameter of the filaments of the texture 6, and a third set of filtration particles, located at least in part in a third region between the second region and the molding surface 4, having a third average size of between 0.03 times and 0.8 times the diameter of the filaments of the texture 6.In this example, the first, second and third sets of filtration particles are nested with each other and the third average size is smaller than the second average size which is itself smaller than the first average size.
[0029] Once all the elements are positioned in the mold, the matrix particles PM are introduced into the porosity of texture 6, as illustrated in figure 1 . These PM particles are introduced into the texture 6 by implementing techniques known per se. The suspension 1 comprising the matrix particles PM in a liquid medium ML is initially stored in a container C1 located outside the mold. The liquid medium ML may be aqueous or alcoholic. The average size of the matrix particles PM may be between 0.1 µm and 2 µm. The PM particles may be made of ceramic, or of carbon or carbon precursor. The volume content of PM particles in the suspension 1 may, before introduction into the texture 6, be between 5% and 50%. The container C1 is connected to the mold via a conduit 80 which opens at a port 8a located upstream of the texture 6. In the text, the expressions “upstream” and “downstream” are understood, unless otherwise stated, to refer to the direction of flow of the liquid medium ML of the suspension 1.A pump 82 is present on the conduit 80 and allows the flow of the suspension 1 from the container C1 to the port 8a in order to allow its introduction into the mold. Alternatively to a pump 82, it is possible to use a device for pressurizing the suspension 1 in C1 with respect to the tooling to produce the flow of the suspension 1. The flow of the suspension 1 upstream of the texture 6 is shown by the arrows E1 in the . figure 1 . A distributor 7, for example in the form of a grid, makes it possible to uniformly distribute the suspension 1 on a surface SI for introducing the texture 6 opposite the surface SD. The use of such a distributor 7 is optional. The suspension 1 flows into the texture 6 through the surface SI and the layer 5a retains the matrix particles PM in the porosity of the texture 6 and the liquid medium ML is drained through the surface SD, the layers 5a and 5b as well as the permeable molding surface 4 to be evacuated outside the mold. The texture 6 is present between the port 8a and the port 2a along the flow path of the liquid medium ML. The layer 5a is present between the texture 6 and the port 2a along the flow path of the liquid medium ML. Layer 5b is present between layer 5a and port 2a along the flow path of the liquid medium ML.The liquid medium ML then flows through the cavity 3 defined by the molding surface 4 to the port 2a located downstream of the texture and connected via a conduit 20 to a container C2, separate from the container C1, and located outside the mold (flow arrows EML). The liquid medium ML is recovered in the container C2. A texture 6 loaded with matrix particles PM is thus obtained. The texture 6 can be maintained in compression in the mold during the introduction of the matrix particles PM. Such compression can promote the drainage of the liquid medium ML and makes it possible to achieve a target thickness for the fiber preform.
[0030] The process is continued by forming the matrix from a heat treatment of this texture 6 loaded with PM particles and filtration particles 50a. According to the example of the figure 2 , the matrix particles PM and the particles 50a are sintered to obtain the part 100 made of composite material. This part 100 comprises a substrate 102 whose reinforcement is formed by the texture 6 and densified by the matrix obtained from the matrix particles PM and a surface layer 104 formed from the particles 50a, here obtained by sintering these particles 50a. The part 100 comprising the substrate 102 and this surface layer 104 is then demolded and then mounted, for example in an aeronautical turbomachine. As examples of parts 100, mention may be made of an aeronautical engine ejection part, such as a nozzle ("exhaust nozzle") or an ejection cone ("exhaust plug"), or a rear aerodynamic fairing ("APF" in the English literature for "Aft Pylon Fairing"). It will be recognized that other methods are possible for the manufacture of the matrix and the surface layer.Alternatively, PM matrix particles and 50a carbon or silicon carbide particles may be used and infiltration with molten silicon may be carried out to obtain a ceramic matrix and a SiC or Si-SiC surface layer.
[0031] We have just described, in connection with the figure 1 , an introduction of suspension 1 by the upper part of texture 6. The example of the figure 3 is a variant showing the possibility of introducing the suspension 1 through the lower part of the texture 6 and of carrying out the drainage and evacuation of the liquid medium through its upper part. The references of the elements having the same function as in the figure 1 are included in this figure. In the case of the figure 3, we can first position the texture 6 on the molding surface 4 then position the granular filtration layer 5a then the retention layer 5b and then close the mold. The evacuation of the liquid medium ML is done here through a permeable surface 41 in the upper part of the mold and in communication with the port 8a.
[0032] The expression "between ... and ..." must be understood as including the limits.
Claims
1. A method for producing a part (100) made of composite material, comprising at least: - obtaining a mold comprising (i) a fibrous texture (6), (ii) a granular filtration layer (5a; 15a; 25a) located between a drainage surface (SD) of the texture and a permeable discharge surface (4; 41) and comprising a powder of filtration particles (50a), and (iii) an element (5b) for retaining the granular layer, which element is distinct from said layer and located between the permeable discharge surface and the drainage surface, - introducing a suspension (1) comprising matrix particles (PM) in a liquid medium (ML) through an introduction surface (SI) of the fibrous texture that is distinct from the drainage surface, the liquid medium passing through the drainage surface, the granular filtration layer and the retention element to be discharged through the permeable discharge surface, and the matrix particles being retained in the pores of the fibrous texture by the granular filtration layer, and - forming the part made of composite material by forming a matrix in the pores of the fibrous texture from the matrix particles and forming a surface layer (104) of this part from the filtration particles.
2. The method according to claim 1, wherein the granular filtration layer (15a) further comprises reinforcing fibers (52a) distinct from the filtration particles (50a).
3. The method according to claim 1 or 2, wherein the retention element (5b) comprises at least one film or textile having a plurality of orifices for discharging the liquid medium (ML) and located between the granular filtration layer (5a; 15a; 25a) and the permeable discharge surface (4; 41).
4. The method according to any one of claims 1 to 3, wherein the retention element comprises at least one granular assembly formed by additional filtration particles (25b) having a different average size and / or a different shape of the filtration particles (50a) and interlocked therewith so as to prevent their movement towards the permeable discharge surface.
5. The method according to any one of claims 1 to 4, wherein obtaining the mold comprises positioning the granular filtration layer (25a) in the form of a block comprising the filtration particles (50a) bound together by a fugitive binder (54a).
6. The method according to any one of claims 1 to 4, wherein obtaining the mold comprises spraying the filtration particles (50a) onto the drainage surface (SD) of the fibrous texture and / or onto the permeable discharge surface (4).
7. The method according to claim 4 or according to one of claims 5 or 6 attached to claim 4, wherein obtaining the mold comprises (a) the formation of the granular filtration layer (5a) comprising the filtration particles (50a), and (b) the supply of additional filtration particles (25b) in a carrier liquid which is drained through the filtration particles and the drainage surface, the additional filtration particles being retained by the filtration particles (50a) so as to form the retention element.
8. The method according to claim 7 attached to claim 4, wherein the granular filtration layer (5a) is formed by adding filtration particles (50a) to a second vector liquid on the side of the drainage surface (SD), said filtration particles having a particle size greater than a size of the interstices of the pore network of the fibrous texture (6), with drainage of the second carrier liquid through the drainage surface, the filtration particles being retained by the fibrous texture so as to form the granular filtration layer (5a).
9. The method according to any one of claims 1 to 8, wherein the matrix is formed by sintering the matrix particles (PM), and the surface layer (104) is formed by sintering the filtration particles (50a).
10. The method according to any one of claims 1 to 9, wherein the matrix particles (PM) and the filtration particles (50a) are formed from the same material.
11. The method according to any one of claims 1 to 10, wherein the matrix particles (PM) and the filtration particles (50a) are made of oxide ceramic material, silicon carbide or carbon.
12. The method according to any one of claims 1 to 11, wherein the part is a turbomachine part.