Intermediate composite element, process for its manufacture and composite part

Intermediate composite elements with a bonded dry stack and molded part using thermosetting polymer penetration provide a strong bond, addressing the limitations of complex-shaped composite part manufacturing by eliminating mechanical fasteners and enhancing mechanical strength.

JP7805311B2Active Publication Date: 2026-01-23HEXCEL REINFORCEMENTS SAS
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2022564391
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-22
Filing Date
2021-04-21
Publication Date
2026-01-23
Estimated Expiration
2041-04-21

AI Technical Summary

Technical Problem

Existing composite part manufacturing processes face limitations in producing large and complex-shaped parts, particularly in direct processes, where mechanical fastening methods like riveting are required to ensure bond strength, leading to brittleness and additional assembly steps.

Method used

The use of intermediate composite elements comprising a molded part embedded in a thermosetting polymer matrix and a dry stack of reinforcing fiber layers with porous polymer layers, allowing partial penetration of the polymer into the stack for a strong bond without mechanical fasteners, suitable for direct processes with injected or infused resins.

Benefits of technology

This method enables the production of complex composite parts with enhanced mechanical strength and resistance to stress, eliminating the need for additional mechanical connections and simplifying the assembly process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007805311000003
    Figure 0007805311000003
  • Figure 0007805311000004
    Figure 0007805311000004
  • Figure 0007805311000005
    Figure 0007805311000005
Patent Text Reader

Abstract

The present invention relates to an intermediate composite element (200) comprising at least one molded part (300) comprising a mass of reinforcing fibers embedded in a thermosetting polymer matrix, and at least one dry stack (400) of reinforcing fiber layers comprising at least one porous polymer layer interposed between two successive reinforcing fiber layers, characterized in that the molded part (300) is applied to the surface of the stack and bonded to it, and the thermosetting polymer penetrates from the surface of the dry stack (400) to which the molded part (300) is applied through part of the thickness of the dry stack (400), thereby providing a bond between the dry stack (400) and the molded part (300). The present invention also relates to a process for its production, a process for producing a composite part using such an element, and the resulting composite part.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to the technical field of reinforcing materials suitable for the manufacture of composite parts, more particularly to reinforcing materials combined with injected or infused resins suitable for the manufacture of composite parts. [Background technology]

[0002] Composite parts, which contain not only one or more fiber reinforcements but also a matrix (typically primarily thermoset, but which may also contain one or more thermoplastics), are increasingly being used as replacements for metal parts, especially in the aeronautical, automotive, and energy sectors, due to their combination of light weight, mechanical properties, and corrosion resistance.

[0003] The manufacture of composite parts or articles can be carried out by two types of processes: the so-called "indirect" process and the so-called "direct" or "liquid composite molding" (LCM) process.

[0004] The indirect process utilizes a fiber material that is pre-impregnated with a polymer resin and then shaped to produce the desired composite part by a compression molding operation. The fiber prepreg material contains the desired amount of resin for the final composite part. The main manufacturing process for compression molding is as follows: - the "sheet moulding compound" (SMC) process, in which sheets of prepreg are positioned in the form of a stack; -The "bulk molding compound" (BMC) process, in which chopped fibers mixed with resin are combined in a compression molding operation.

[0005] Prior art has proposed using chips, particularly rectangular chips, consisting of a collection of impregnated unidirectional fibers, which can be randomly positioned directly within a mold or used to intermediately form a sheet material in which the chips are randomly arranged so that they extend substantially within the plane of the sheet. The resulting intermediate sheet material is cut to the size of the mold, stacked within the mold, and then compression molded. These types of materials flow during the molding operation and can fill all parts of the mold in which they are used. Hexcel Corporation (Stamford, USA) offers this type of sheet material commercially available under the name HexMC®.

[0006] Such compression molding processes are particularly suitable for producing three-dimensional parts with complex shapes, but nevertheless have limitations for producing large parts.

[0007] A direct process is defined as one in which one or more fiber reinforcements are utilized in a "dry" state (i.e., without a final matrix) and the resin used as the matrix is ​​prepared separately and, for example, injected into a mold containing the fiber reinforcement (resin transfer molding (RTM) process), infused through the thickness of the fiber reinforcement (liquid resin infusion (LRI) process or resin film infusion (RFI) process), or by manual coating / impregnation with a roller or brush applied in a sequential fashion onto each single layer of fiber reinforcement.

[0008] The RTM, LRI, or RFI process generally involves first fabricating a fiber preform or stack in the form of the desired finished product, then impregnating the preform or stack with a resin to form a matrix. The resin is injected or infused by a pressure differential at temperature, and then, after the entire required amount of resin is contained in the preform, the assembly is brought to a higher temperature to complete the polymerization / crosslinking cycle, thereby causing its cure.

[0009] Examples of materials suitable for direct processing include fiber reinforced materials in which a unidirectional sheet of reinforcing fiber, in particular carbon, is combined with two layers of thermoplastic fiber bonded to both sides of the unidirectional sheet. Such materials are described in particular in applications EP 1,125,728, US 6,828,016, WO 00 / 58083, WO 2007 / 015706, WO 2006 / 121961, US 6,503,856, US 2008 / 7435693, WO 2010 / 046609, WO 2010 / 061114, EP 2,547,816, US 2008 / 0289743, US 2007 / 8361262, US 2011 / 9371604, and WO 2011 / 048340.

[0010] Multiaxial reinforcements, commonly referred to as "non-crimp fabrics" (NCF), are also ideally suited for the direct process. Such multiaxial reinforcements consist of a stack of several unidirectional layers of reinforcing fibers (particularly carbon, glass, or aramid) arranged in several orientations and stitched together, and are described in particular in applications EP 2547816 and WO 2010 / 067003.

[0011] Thus, direct and indirect processes utilize different materials, equipment, and processes.

[0012] In the prior art, various processes or devices have been proposed, in particular for the production of three-dimensional parts with more or less complex shapes.

[0013] Application WO 2016 / 207309 proposes a prepreg molding process that uses at least one blank of molding material that includes guides that guide the flow of the molding material into the cavity of a compression mold during molding, thereby making it possible to obtain complex shapes with surface ribs. The reinforcing fiber material is of the HexMC® or prepreg type. The HexMC® material consists of chips of unidirectional tape impregnated with a thermosetting resin that are arranged in a quasi-isotropic arrangement to form a fiber material layer, and can be easily thermoformed into a three-dimensional arrangement.

[0014] Application WO2017 / 029121 describes an alternative solution consisting of a mold for producing composite parts by compression molding, which includes an inner insert with walls that can be moved independently to increase or decrease the dimensions of the insert.

[0015] It has also been proposed to combine different materials or intermediate elements to manufacture certain parts, in particular parts having parts of different shapes or complexity, or even parts subjected to different stresses.

[0016] In particular, the prior art has proposed joining two molded parts together by gluing or riveting, which can cause brittleness at the interface and require additional assembly steps. In particular, a molded composite part forming a rib or protrusion can be attached to another molded composite part using such techniques. Nevertheless, simple adhesion is generally considered insufficient, especially for aviation parts, and must be supplemented by a mechanical joint such as riveting, which requires the use of appropriate tooling and an additional joining step (see, in particular, U.S. Department of Transportation Federal Aviation Administration Advisory Circular 20-107, dated August 9, 2009, and 14 CFR §23.573(a)).

[0017] However, application WO 2014 / 168701 proposes the production of multi-component structures from various materials: moldable components with complex geometries made from chips of unidirectional tape pre-impregnated with a thermosetting resin of the HexMC® type, and structural components made from unidirectional fibers pre-impregnated with a thermosetting resin, which are then bonded and molded in a single step by curing the thermosetting resin. By selecting the thermal expansion coefficients of the structural and moldable components, microcracks at the interface between the two components during high-temperature molding are minimized. For this purpose, it is proposed to integrate continuous fibers oriented in various directions into the structural components. Each component contains 25% to 45% by weight of thermosetting resin.

[0018] Other documents propose processes suitable for the manufacture of very specific components. Document US2019 / 338881 describes a tubular fastener for repairing pipelines with liners that include a first section made of reinforcing fibers and a substantially fully cured resin composition, and a second section permeated with the resin composition, the second section being made of dry fibers, in particular felt. Meanwhile, document DE102014009446 describes an attachment element that includes a thermoplastic molded part into which a fiber layer 11 is inserted. This fiber layer has two components: one completely embedded in the molded part, and two dry parts 11.1 that extend outside the molded part and are not impregnated with thermoplastic material. A composite part including this attachment point is then obtained by impregnating the dry parts with a thermosetting resin.

[0019] In this regard, the present invention proposes new intermediate composite elements (intermediate composite elements), processes for their manufacture, and embodiments for processes for the manufacture of composite parts, offering more options for adaptation and better suited to the manufacture of parts of various shapes and sizes, depending on the direct or indirect equipment available at a particular location. In particular, the present invention is ideally suited for the manufacture of composite parts with complex shapes, such as parts containing ribs or protrusions. The process according to the present invention can be easily adapted to various types of composite parts and can result in composite parts with good resistance to mechanical stress. In particular, the present invention proposes an intermediate composite element and a process using the various parts required to make a composite part containing said intermediate composite element and then assemble them with a satisfactory connection at the joint between the two parts. Summary of the Invention

[0020] First, the present invention provides: at least one molded part comprising a collection of reinforcing fibers embedded in a thermosetting polymer matrix; at least one dry stack of reinforcing fiber layers, in particular comprising at least one porous polymer layer inserted between two successive reinforcing fiber layers, the molded part being applied to the surface of the dry stack and bonded to the dry stack; wherein the thermosetting polymer partially penetrates into the thickness of the dry stack from the surface to which the molded part is applied, thereby forming a bond between the dry stack and the molded part.

[0021] In the context of the present invention, the thermosetting polymer forming the polymer matrix of the molded part also penetrates the thickness of the dry stack. This penetration allows for the formation of a strong bond between the molded part and the dry stack. Therefore, this bond does not need to be supplemented with additional mechanical connections. Also, advantageously, in the context of the present invention, the bond between the molded part and the dry stack is not provided by mechanical fastening devices such as rivets, screws, etc. Furthermore, such intermediate composite elements are ideally suited for the production of complex composite parts by direct processes, especially in combination with injection or infusion resins that penetrate the dry stack. In fact, since the thermosetting polymer only partially penetrates the thickness of the stack, it is necessary to subsequently supplement this dry stack by adding a polymer matrix during the production of the composite part. In particular, the dry stack contains 4 to 20 reinforcing fiber layers, preferably 8 to 16 reinforcing fiber layers, with at least two, preferably at least four, reinforcing fiber layers of the dry stack not containing the thermosetting polymer that has penetrated from the molded part. These layers are located in the outer part of the stack, opposite the surface connected to the molded part.

[0022] Advantageously, in the intermediate composite element, the dry stack of reinforcing fiber layers has an average thickness of at least 5 mm, and the thermosetting polymer penetrates partially from the surface of the stack into the thickness of the stack with an average penetration depth of at least 2 mm. Such penetration ensures a good bond between the dry stack and the molded part, regardless of the thickness of the dry stack, and good shear resistance properties at the interface of the final composite part obtained from the intermediate composite element. In the context of the present invention, the average thickness and average penetration depth of the stack can be measured by making 10 measurements perpendicular to the plane of the interface between the molded part and the dry stack and then calculating the arithmetic mean of these measurements. Such measurements may also be performed by cutting the intermediate composite element, as explained in the examples. Another way to characterize the penetration of the thermosetting polymer is to observe the number of reinforcing fiber layers of the dry stack that have been penetrated by the thermosetting polymer, as described above.

[0023] In the context of the present invention, a dry stack is called "dry" because it comprises a polymer portion that accounts for up to 10% of the total weight of the stack, preferably 0.5% to 10% of the total weight of the stack, more preferably 2% to 6% of the total weight of the stack, and which polymer portion contributes at least partially to the cohesion of the stack. This polymer portion does not include the amount of thermosetting polymer that has permeated the dry stack.

[0024] This polymeric portion may in particular be a thermoplastic polymer, a polymer containing a thermoplastic portion, or a mixture of such polymers.

[0025] The intermediate composite element according to the invention has the characteristic of being integral and cohesive, so that not only the molded part and the dry stack are joined to each other, but also the dry stack forms a bonded part, i.e. the reinforcing fiber layers (also called fiber layers) of the dry stack are joined together. Such a bond can be achieved by mechanical bonding, such as sewing or knitting, or by polymeric parts contained in the dry stack, as explained below.

[0026] According to one embodiment, the reinforcing fiber layer is a fabric.

[0027] According to a preferred embodiment, the reinforcing fiber layer is a unidirectional sheet of reinforcing fibers preferably oriented in at least two different directions.

[0028] According to one embodiment, the drystack is formed from one or more non-crimp fabrics (NCFs), each NCF being an assembly of several unidirectional sheets of reinforcing fibers oriented in at least two different directions, joined by stitching or knitting. In this case, the drystack may be formed from one or more NCFs, each NCF being an assembly of several unidirectional sheets of reinforcing fibers oriented in at least two different directions, and one or more porous polymer layers may be present on or between the unidirectional layers, said assembly being joined by stitching or knitting.

[0029] When the fibrous layers are fabrics or preferably unidirectional sheets of reinforcing fibers, whether in the form of NCFs or not, at least one porous polymer layer is inserted between two continuous fabrics or two continuous unidirectional sheets of reinforcing fibers, which makes it possible to optimize the mechanical properties of the resulting composite part.

[0030] In particular, whatever the method of practicing the invention, the porous polymer layer present in the dry stack is a porous film, a grid, a powder coating, a fabric, or preferably a nonwoven fabric or veil.

[0031] Using such a porous polymer layer, the dry stack can have cohesive properties as a result, at least in part, of the hot tack properties of the porous polymer layer present between the two fibrous layers.

[0032] Typically, the reinforcing fibers in the dry stack and / or molded part are glass, carbon, aramid, or ceramic fibers, with carbon fibers being particularly preferred.

[0033] According to a preferred embodiment, particularly suitable for the production of complex molded parts, the molded part is obtained by molding chips of unidirectional fibers impregnated with a thermosetting resin, forming an intermediate mat of preferably randomly arranged chips, in particular, these chips are rectangular or substantially rectangular, and preferably have a length of 1 cm to 10 cm, a width of 2 mm to 2 cm and a thickness of 0.02 mm to 0.50 mm.

[0034] In the context of the present invention, a "complex part", and therefore in particular a "complex molded part", means in particular that the part has at least one non-developable surface, whereas a developable surface corresponds to a regulated surface, i.e., its tangent plane is the same along its generatrix. Examples include parts with variable thickness or T-shaped sections, or T-shaped parts. Such molded parts can in particular be obtained by conventional compression molding techniques.

[0035] In particular, in the intermediate composite element according to the invention, the thermosetting polymer of the molded part is an epoxy.

[0036] Generally, the thermosetting polymer comprises at least 25% by weight of the molded part, and preferably between 25% and 55% by weight of the molded part.

[0037] Advantageously, in the intermediate composite element according to the invention, the dry stack comprises between 4 and 20 reinforcing fibre layers, preferably between 8 and 16 reinforcing fibre layers.

[0038] According to a particular embodiment of the invention, the shaped portion has a complex shape compared to the shape of the stack, in particular the shaped portion has the shape of a hinge, attachment point, rib, ribbed beam, support, bracket, channel, bracket, clevis, stiffener, hatch frame, door frame, lever arm, base, fitting, joint, socket or pivot.

[0039] Another feature of the present invention is at least one molded part comprising a collection of reinforcing fibers embedded in a thermosetting polymer matrix; at least one dry stack of reinforcing fiber layers, in particular comprising at least one porous polymer layer inserted between two successive reinforcing fiber layers, said shaped part being applied and bonded to the surface of said stack; A process for the manufacture of an intermediate composite element comprising the following successive steps: a-applying at least one assembly of reinforcing fibers pre-impregnated with a thermosetting polymer onto a surface area of ​​an initial dry stack of reinforcing fiber plies, the initial dry stack comprising in particular at least one porous polymer layer inserted between two successive reinforcing fiber layers, and in particular at least one porous polymer layer inserted between two successive reinforcing fiber layers; b - carrying out in the mould a hot compression moulding operation of the mass of reinforcing fibres pre-impregnated with a thermosetting polymer, deposited on an initial dry stack of reinforcing fibre plies, thereby resulting in cross-linking of the thermosetting polymer and partial penetration of the thermosetting polymer into the thickness of the stack; c - by cooling, producing a shaped part comprising a mass of reinforcing fibers embedded in a thermosetting polymer to form a matrix, partially infiltrating the thermosetting polymer from the surface of the stack to which the shaped part is applied through the thickness of the stack, and bonding said shaped part to the stack of reinforcing fiber layers thus obtained as a result of this infiltration of the thermosetting polymer; The present invention relates to a process including:

[0040] Such a process makes it possible to produce intermediate composite elements according to the invention, in particular intermediate composite elements of complex shape, by a compression moulding process involving heating, which is particularly suitable for producing elements of complex shape. The characteristics of the production process are therefore selected in order to obtain intermediate composite elements according to the invention, and are thereby adapted to the characteristics of the invention.

[0041] In this manufacturing process, the mass of reinforcing fibers pre-impregnated with a thermosetting polymer applied in step a can be in the form of a preform of the desired molded part.

[0042] According to one embodiment, the plies of reinforcing fibers forming the initial dry stack used in step a are reinforcing fiber fabrics bonded on at least one side with a porous polymer layer, the porous polymer layer present in said plies making up a maximum of 10% of the total weight of said plies, preferably between 0.5% and 10% of the total weight of said plies, more preferably between 2% and 6% of the total weight of said plies, and at least one porous polymer layer being inserted between two successive fabrics.

[0043] According to a preferred embodiment, the plies of reinforcing fibers forming the initial dry stack used in step a) are unidirectional sheets of reinforcing fibers bonded on at least one of their faces with a porous polymer layer, the porous polymer layer present in said plies accounting for up to 10% of the total weight of said plies, preferably between 0.5% and 10% of the total weight of said plies, more preferably between 2% and 6% of the total weight of said plies, and at least one porous polymer layer being inserted between two consecutive unidirectional layers of reinforcing fibers.

[0044] In such a case, it is particularly preferred that the plies of reinforcing fibers forming the initial dry stack used in step a consist of a unidirectional sheet of reinforcing fibers bonded on both sides with porous polymer layers, the porous polymer layers present on both sides of the unidirectional sheet of reinforcing fibers being identical.

[0045] The porous polymer layer present in said ply may have hot tack properties, and the unidirectional sheet or fabric and said at least one porous polymer layer are bonded to form a pre-obtained ply as a result of the hot tack properties of the porous polymer layer, such plies being conventionally utilized in the prior art as a means of dry consolidation.

[0046] It is also possible for the initial dry stack of reinforcing fiber plies used in step a to have cohesive properties as a result of the hot tack properties of the porous polymer layer present. Such cohesion facilitates its handling and its implementation during the manufacturing process. In this case, it is also possible for the initial dry stack of reinforcing fiber plies used in step a to be preformed, especially if this dry stack is not simply a flat plate.

[0047] Another variation is that the initial dry stack of plies of reinforcing fibers utilized in step a is not cohesive, since at the end of step b, its cohesion is obtained as a result of the hot tack properties of the porous polymer layer present.

[0048] Advantageously, the porous polymer layer optionally present in said plies of the initial dry stack used in step a) comprises or consists of a thermoplastic polymer or a polymer containing a thermoplastic portion.

[0049] In particular, the porous polymer layer present in said plies of the initial dry stack used in step a) is a porous film, a grid, a powder coating, a fabric, or preferably a nonwoven fabric or veil.

[0050] According to another variant, the plies of reinforcing fibers forming the initial dry stack are unidirectional sheets of reinforcing fibers oriented in at least two different directions, joined by stitching or knitting. In this case, the dry stack may be formed from a plurality of NCFs, each NCF being an assembly of a plurality of unidirectional sheets oriented in at least two different directions, with one or more porous polymer layers present on or between the surfaces of the unidirectional sheets, said assembly being joined by stitching or knitting. Traditionally, in the field of NCFs, sewing or knitting can be carried out using glass, carbon, basalt, silica or polyester yarns or yarns made of thermoplastic polymers, in particular yarns made of thermoplastic polymers with a titre in the range of 5 dTex to 150 dTex, preferably in the range of 5 dTex to 30 dTex.

[0051] In the manufacturing process according to the invention, the reinforcing fiber plies of the dry stack and / or prepreg reinforcing fiber assembly are generally glass, carbon, aramid, or ceramic fibers, with carbon fibers being particularly preferred.

[0052] According to one embodiment, which is particularly ideally suited for the production of molded elements of complex shape, the aggregate-forming reinforcing fibers pre-impregnated with a thermosetting polymer used to form the molded part are chips of unidirectional fibers impregnated with a thermosetting polymer, preferably forming an intermediate mat of randomly arranged chips. Advantageously, the chips are rectangular or substantially rectangular, and preferably have a length of 1 cm to 10 cm, a width of 2 mm to 2 cm, and a thickness of 0.02 mm to 0.50 mm.

[0053] Preferably, the thermosetting polymer of the mass used to form the molded part is an epoxy. Generally, the thermosetting polymer of the mass used to form the molded part comprises at least 25% by weight of the mass, preferably 25% to 55% by weight of the mass.

[0054] In the context of the present invention, step b of compression molding results in the diffusion of the thermosetting polymer, which in its final thermoset state partially penetrates the thickness of the stack in the region of the interface with the molded part. In most cases, the resulting dry stack of reinforcing fiber layers has an average thickness of at least 5 mm, and the thermosetting polymer partially penetrates the thickness of the stack from the surface of the stack with an average penetration depth of at least 2 mm. To achieve such penetration, the conditions of the molding operation, in particular the pressure, temperature and time, must be adjusted by the skilled person.

[0055] Generally, in step a, the initial dry stack of reinforcing fiber plies comprises between 4 and 20 plies, preferably between 8 and 16 plies, and advantageously, after step b, at least two, preferably at least four, reinforcing fiber layers of the dry stack obtained do not contain thermosetting polymer that has infiltrated from the molded part.

[0056] According to a particular embodiment, the dry stack used in step a) has notches or perforations at least in the area of ​​its surface where the mass of reinforcing fibers pre-impregnated with a thermosetting polymer will be applied, such notches or perforations being advantageous for the adhesion of the mass of pre-impregnated reinforcing fibers to the dry stack and, ultimately, for the bond between the two parts forming the final intermediate composite element obtained.

[0057] In certain embodiments, which are applicable regardless of alternative embodiments of the manufacturing process, a mold of suitable shape is used in step b to obtain a molded part having a complex shape compared to the shape of the stack.

[0058] In particular, in the context of the present invention, the intermediate composite elements obtained are used to form hinges, attachment points, ribs, ribbed beams, supports, brackets, channels, fasteners, clevises, stiffeners, hatch frames, door frames, lever arms, bases, fittings, joints, sockets or pivots.

[0059] The present invention also relates to the use of an intermediate composite element according to the invention or obtained by the manufacturing process described in the context of the present invention, for the manufacture of a composite part in combination with a thermosetting resin, a thermoplastic resin or a mixture of such resins. Such a process is called a direct process, in which the resin or mixture of resins is poured or injected into a dry stack of the intermediate composite element and cooled after said pouring or injection, with the use of thermosetting resins and mixtures of thermosetting resins being preferred. When using a thermosetting resin or a mixture containing a thermosetting resin, the injection or injection is carried out under conditions that crosslink the thermosetting resin.

[0060] The present invention therefore also relates to a so-called direct process for manufacturing composite parts using the intermediate composite elements described in the context of the present invention.

[0061] In such a process, intermediate composite elements are advantageously used together with other dry reinforcements. According to a first preferred variant, the invention comprises the following steps: A1 - providing an intermediate composite element according to the invention or manufactured by a manufacturing process according to the invention; A2 - applying said intermediate composite element to at least a portion of the surface of a dry stack of reinforcing fiber plies, called an additional dry stack, thereby bringing the dry stack of the intermediate composite element into contact with the additional dry stack; A3 - Injecting or injecting a thermosetting resin, a thermoplastic resin, or a mixture of such resins into both the dry stack of intermediate composite elements and the additional dry stack under conditions that result in crosslinking of the thermosetting resin, if used, followed by cooling to obtain the desired final composite part; The present invention relates to a process for the manufacture of composite parts, including:

[0062] In the context of the present invention, there is a very good bond between the intermediate composite element and the additional dry stack, since this bond is of the same type and is provided by the resin that is poured / injected into both the dry stack of the intermediate composite element and the additional dry stack. This bond is provided over the entire surface of the intermediate composite element, in contact with the additional dry stack. This results in a part that has good bonds at the interfaces of the various parts that form it, in addition to the bond obtained by the penetration of the polymer that forms the molded part into the dry stack of the intermediate composite element. Therefore, it is not necessary to supplement these bonds with additional mechanical bonds. Also, advantageously, within the context of the present invention, in the final composite part, the bonds between the element of the part that corresponds to the molded part and the dry stack of the intermediate composite element, as well as the bonds between the intermediate composite element and the additional dry stack, are not provided by mechanical fasteners such as certain rivets, screws, etc.

[0063] The reinforcing fiber plies forming the additional dry stack can be structurally identical to those forming the dry stack of the intermediate composite element. This choice can favorably affect the compatibility between the additional dry stack and the intermediate composite element and promote bonding at the interface, but is not required. In fact, the use of various types of dry reinforcement joined by resin infusion / injection generally results in very good cohesion / bonding at the interface between the two types of reinforcement.

[0064] Furthermore, the process according to the invention is particularly advantageous since it makes it possible to produce an intermediate composite element having a smaller size and a more complex shape by so-called indirect techniques, in particular by compression molding, to attach this part to an additional dry stack having a larger size, and then to carry out a so-called direct process, which requires a separate device, for example of the vacuum bag type, to produce the final composite part.

[0065] Also, according to certain embodiments of the invention, the intermediate composite elements have a complex shape compared to the shape of the additive dry stacks, in particular they form hinges, attachment points, ribs, ribbed beams, supports, brackets, channels, ties, clevises, stiffeners, hatch frames, door frames, lever arms, bases, fittings, joints, sockets or pivots in the resulting final composite part.

[0066] Advantageously, the additional dry stack has at least one dimension that is larger than at least one dimension of the intermediate composite element, in particular at least twice, preferably at least four times the size of at least one dimension of the intermediate composite element, in particular an area at least ten times the size of the area to which the intermediate composite element is applied.

[0067] In the context of the present invention, the additional dry stack used in step A2 may be pre-formed.

[0068] Furthermore, advantageously, the surface of the additional dry stack to which the intermediate composite element is attached has one or more surface irregularities, such as ribs or protrusions, which can be obtained in particular by preforming the additional dry stack in advance. In this case, the presence of the dry stack of the intermediate composite element at its interface with the additional dry stack allows for a greater deformation capacity than the molded part and a less restrictive adjustment of the relative position of the intermediate composite element and the additional dry stack. A less restrictive setting and therefore a more rapid engagement than would be possible in the case of direct assembly with the molded part can be utilized. This facilitates the joining / assembly of these two elements.

[0069] Although it is not a preferred variant of the invention, it is also possible to use the intermediate composite element directly in the process without using additional reinforcing elements. The invention therefore also relates to a process for the manufacture of a composite part, comprising the following steps: B1 - providing an intermediate composite element according to the invention or obtained by a process described in the context of the present invention; B2 - pouring or injecting a thermosetting resin, a thermoplastic resin, or a mixture of such resins into the dry stack of intermediate composite elements under conditions that result in crosslinking if a thermosetting resin is used, followed by cooling to obtain the desired final composite part; The present invention relates to a process including:

[0070] It is understood that in the process for the manufacture of a composite part according to the invention, the same features as those described in relation to the intermediate composite element or the process for its manufacture are preferably implemented, in particular in the molded part and / or the dry stack.

[0071] The thermosetting resin, in particular the epoxy resin, is advantageously poured or injected in step A3 or B2, respectively, of the process for the production of the composite part.

[0072] Using conventional techniques well known to those skilled in the art, steps A3 or B2, respectively, can be carried out by injection, preferably in an open mold, for example by vacuum bag injection techniques.

[0073] The invention also relates to a composite part obtainable by one of the processes for manufacturing a composite part described in the context of the present invention.

[0074] Such parts correspond in particular to composite parts used in the aeronautical, automotive, space, defense, industrial or energy sectors.The invention is particularly adapted for the manufacture of three-dimensional parts with complex shapes.

[0075] The present invention will be better understood from the following detailed description when taken in conjunction with the accompanying drawings, in which: Documents cited herein are incorporated by reference. [Brief explanation of the drawings]

[0076] [Figure 1] 1 is a schematic cross-sectional view of an intermediate composite element according to the invention;

[0077] [Figure 2] 1 is a schematic cross-sectional view of a composite part according to the invention;

[0078] [Figure 3] 1 is a schematic representation of the steps involved in the manufacture of an intermediate composite element according to the invention;

[0079] [Figure 4] 2 is a schematic representation of the steps involved in the manufacture of a composite part according to the invention from intermediate composite elements, according to a first variant of the process for the manufacture of a composite part according to the invention; FIG.

[0080] [Figure 5] 3A-3C are schematic illustrations of the steps involved in the manufacture of a composite part according to the invention from intermediate composite elements, according to a second variant of the process for the manufacture of a composite part according to the invention;

[0081] [Figure 6A]FIG. 1 is a schematic perspective view of a complex shaped intermediate composite element and an additional dry stack (only partially shown) shaped to have a series of ribs.

[0082] [Figure 6B] FIG. 10 shows the same two elements with an intermediate composite element attached to an additional dry stack before adding resin to form the final part.

[0083] [Figure 6C] FIG. 10 is an enlarged view of a portion of the intermediate composite element showing the interface between the molded portion and the dry stack and the partial penetration into the thickness of the dry stack of the thermosetting polymer, which also forms the matrix of the molded portion.

[0084] [Figure 7] 10 is a photograph corresponding to a partial cross-section of an intermediate composite element showing the infiltration of the dry stack with the polymer that forms the matrix of the molded part. DETAILED DESCRIPTION OF THE INVENTION

[0085] Intermediate composite elements According to a first aspect, the present invention relates to an intermediate composite element used in the manufacture of composite parts in combination with injected or infused resin. An intermediate composite element 2 according to the invention is shown diagrammatically in Figure 1 and comprises at least one molded part, in the illustrated example a single molded part 3, and at least one dry stack, in the illustrated example a single dry stack 4 of fiber layers 5, the molded part 3 and the dry stack 4 being bonded together. The molded part 3 is positioned on one of the major faces of the dry fiber stack 4, and the interface 6 corresponding to the bonding area between the molded part 3 and the dry stack 4 may correspond to the entire surface of the face of the dry stack 4 on which the molded part 3 is placed, as in the example shown in Figure 1, or it may correspond to only a part of this surface.

[0086] The molded part 3 consists of a matrix of one or more thermosetting polymers in which reinforcing fibers are distributed. In the context of the present invention, the term "thermosetting polymer" is used to mean a polymer that is completely thermosetting, or even a thermosetting polymer that is not completely thermosetting. In particular, the thermosetting rate can be less than 100%, but generally more than 70%. Also, in the molded part, the thermosetting polymer may contain some thermally crosslinkable functional groups, but the polymer retains its thermosetting properties, i.e., it cannot return to its original liquid or paste form when subjected to heating.

[0087] The thermosetting polymer matrix is ​​obtained by polymerizing / crosslinking a thermosetting polymer or a mixture of thermosetting polymers. The molded part is obtained by compression molding a collection of reinforcing fibers pre-impregnated with a thermosetting polymer or a mixture of thermosetting polymers. The reinforcing fibers are traditionally glass, carbon, aramid, or ceramic fibers, with carbon fibers being particularly preferred. The reinforcing fibers can be found in any type of configuration known to those skilled in the art and used in the manufacture of molded composite parts. They can be woven or nonwoven fiber fabrics, unidirectional sheets, or chopped fibers or chips, preferably made of unidirectional fibers. In particular, molded parts can be made using chips of unidirectional fibers impregnated with a thermosetting polymer. The use of such chips allows for good creep and is particularly suitable for the manufacture of complex molded parts. In particular, molded parts can be made from rectangular or substantially rectangular chips, preferably with a length of 1 cm to 10 cm, a width of 2 mm to 2 cm, and a thickness of 0.02 mm to 0.50 mm. Chips of such unidirectional fibers impregnated with a thermosetting polymer are obtained, in particular, by impregnating and then cutting unidirectional fiber rovings or by cutting sheets impregnated with unidirectional fibers. These chips can then be randomly laid flat and pressed into a sheet to form an intermediate mat. Such intermediate mats prepared from impregnated unidirectional fiber chips correspond, for example, to the HexMC® material marketed by Hexcel Corporation (Stamford, USA). When chips made of unidirectional fibers are used, the unidirectional reinforcing fibers forming the chips are randomly oriented in three dimensions within the molded part if the chips are randomly arranged before the compression molding operation, or randomly oriented in only two dimensions if the chips are arranged as intermediate mats, which are then stacked and subjected to the compression molding operation.

[0088] The thermosetting matrix can correspond to any type of thermosetting polymer in the thermoset state, i.e., epoxy, phenolic, bismaleimide, or cyanate resin, or a mixture of such resins, with epoxy resin being preferred. The molded part contains the desired amount of thermosetting polymer in the final composite part. In particular, the thermosetting polymer matrix comprises at least 25% by weight of the molded part, preferably 25% to 55% by weight of the molded part.

[0089] The dry stack 4, on the other hand, consists of an assembly of reinforcing fiber layers 5, positioned one on top of the other. The dry stack 4 is cohesive, i.e., the reinforcing fiber layers 5 constituting the dry stack 4 are bonded to one another. The stack is described as "dry" because, for the production of a composite part, it must be combined with a thermoplastic or thermosetting resin, or a mixture of such resins, in particular a thermosetting resin. Nevertheless, the dry stack may contain a polymeric portion, which accounts for up to 15% of the total weight of the dry stack, preferably up to 10%, more preferably 0.5% to 10%, preferably 2% to 6% of the total weight of the dry stack. This polymeric portion may be a thermosetting polymer, in particular an epoxy, a thermoplastic polymer, a polymer containing a thermoplastic portion, or a mixture of such polymers. The polymeric portion may in particular be in the form of one or more porous layers inserted between two reinforcing fiber layers 5. This may also include one or more porous layers positioned on the surface of the dry stack 4 and / or on the sewing or knitting threads. Advantageously, the dry stack 4 contains a polymer portion that makes it possible to ensure the cohesion of the reinforcing fiber layer 5 and gives the dry stack 4 its integral character.

[0090] The fiber layers 5 of the dry stack 4 can be any type of reinforcing fiber layer suitable for the manufacture of composite parts by a direct process, in particular fabrics, nonwovens or unidirectional sheets. Preferably, the reinforcing fiber layers 5 forming the dry stack 4 are all reinforcing fiber fabrics, or even more preferably, all unidirectional layers of reinforcing fibers.

[0091] Within the dry stack 4, the fiber layers 5 may be different or preferably all identical. Here again, the reinforcing fibers of the fiber layers 5 are conventionally glass, carbon, aramid or ceramic fibers, with carbon fibers being particularly preferred. In the context of the present invention, the dry stack 4 comprises one or more porous polymer layers inserted between the reinforcing fiber layers 5 in order to ensure the cohesion of the stack, in particular as a result of the hot tack properties of said polymer. It is also possible to ensure or partially ensure the cohesion of the stack by stitching or knitting threads to join the various fiber layers of the stack, or at least some of them, to one another.

[0092] A "porous layer" refers to a permeable layer that allows the passage of a liquid, such as a resin, injected or infused through a stack containing the permeable layer when a composite part is formed. In particular, the openness coefficient of such a layer, determined according to the process described in application WO 2011 / 086266, is in the range of 1% to 70%, preferably 30% to 60%. Examples of porous layers include porous films, grids made of intertwined yarns, powder coating layers, fabrics, and nonwovens. The porous layer is referred to as polymeric because it is composed of a polymer or a mixture of polymers. In particular, the porous polymer layer may be made of one or more thermoplastic polymers, one or more thermosetting polymers, or a mixture of thermosetting or thermoplastic polymers. Examples of thermoplastic polymers conventionally used in dry stacks (and therefore for the formation of the porous layers present) are polyamides (e.g. PA: PA6, PA12, PA11, PA6.6, PA6.10, PA6.12), copolyamides (CoPA), polyamide-ether or ester blocks (PEBAX, PEBA), polyphthalamides (PPA), polyesters (e.g. polyethylene terephthalate (PET), polybutylene terephthalate (PBT), copolyesters (CoPE), thermoplastic polyurethanes (TPU), polyacetals (e.g. POM), polyolefins (e.g. PP, HDPE, LDPE, LLDPE), polyethersulfones (PES), poly Examples of suitable polymers include sulfones (e.g., PSU), polyphenylene sulfones (e.g., PPSU), polyetheretherketone (PEEK), polyetherketoneketone (PEKK), polyphenylene sulfide (PPS), polyetherimide (PEI), thermoplastic polyimides, liquid crystal polymers (LCP), phenoxy, block copolymers such as styrene-butadiene-methyl methacrylate (SBM) copolymers, methyl methacrylate-butyl methacrylate (MAM) copolymers, and mixtures thereof. As described in application WO 2019 / 102136, the porous polymer layer may consist of or contain a partially crosslinked thermoplastic polymer.The choice of constituent polymers for the polymer portion of the dry stack can be varied by those skilled in the art based on the choice of resins to be injected or infused during the subsequent manufacture of the composite part. Advantageously, the polymer portion of the dry stack (and therefore the porous polymer layers present therein) comprises or consists of a thermoplastic polymer or a polymer comprising a thermoplastic portion or a mixture of such polymers.

[0093] The molded part 3 and the dry stack 4 are bonded together to form the intermediate composite element 2. At the interface 6 between the molded part 3 and the dry stack 4, a bond is formed by the thermosetting matrix that permeates the dry stack 4. Polymer portions present in the dry stack, which may also be present at the interface 6, may also contribute to the formation of this bond.

[0094] In the context of the present invention, the bond between the molded part 3 and the dry stack 4 is strengthened by partial infiltration of a thermosetting matrix from the surface 6 of the stack to which the molded part is applied into the thickness of the stack, thereby strengthening the bond between the stack and the molded part. This infiltration occurs during the manufacture of the intermediate composite element 2, as explained below.

[0095] Advantageously, in the intermediate composite element, the dry stack 4 comprises at least two reinforcing fiber layers 5, and the thermosetting polymer infiltrates at least two reinforcing fiber layers 5 of the dry stack 4. In particular, the dry stack 4 comprises 4 to 20 reinforcing fiber layers 5, preferably 8 to 16 reinforcing fiber layers 5, and the thermosetting polymer infiltrates at least two reinforcing fiber layers 5 of the dry stack 4, preferably at least four reinforcing fiber layers 5 of the dry stack 4.

[0096] Process for manufacturing intermediate composite elements The process for the manufacture of an intermediate composite element according to the invention is illustrated in FIG. 3 and comprises the following successive steps: a- applying at least one mass 60 of reinforcing fibers pre-impregnated with a thermosetting polymer to a surface area 70 of the initial dry stack 40 of reinforcing fiber plies 50; b - carrying out a hot compression molding operation in a mold 80 of a mass of reinforcing fibers 60 pre-impregnated with a thermosetting polymer, deposited on a dry stack 40 of reinforcing fiber plies, resulting in cross-linking of the thermosetting polymer and partial penetration into the thickness of the stack; c--cooling to produce a molded part 300 comprising a mass of reinforcing fibers embedded in a matrix corresponding to the thermosetting polymer after heat curing, and then bonding said molded part to the stack of reinforcing fiber layers 400 thus obtained by the infiltrated thermosetting polymer. Includes:

[0097] The molding operation can be carried out using any conventional technique known to those skilled in the art. The various elements include a mass 60 of reinforcing fibers impregnated with a thermosetting polymer and an initial dry stack 40 of reinforcing fiber plies 50, all of which undergo a compression molding operation, as shown in Figure 3.

[0098] For this purpose, the individual elements are conventionally positioned in an open mold 20 or part of an open mold. The initial dry stack 40 of reinforcing fiber plies 50 can be formed directly in the mold by depositing the individual plies, or the initial dry stack 40 can be pre-formed and deposited in the mold in one operation.

[0099] Similarly, the assembly 60 of reinforcing fibers pre-impregnated with a thermosetting polymer may be formed directly in the mold by depositing selected prepregs onto the initial dry stack 40, or the assembly 60 of reinforcing fibers pre-impregnated with a thermosetting polymer may be pre-formed in the form of a preform and deposited in a single operation onto the initial dry stack 40 already present in the mold 20.

[0100] For example, the prepreg reinforcing fiber assembly 60 may correspond to a long fiber, short fiber, or staple fiber prepreg assembly including a stack of prepreg material in the form of a sheet of reinforcing fiber prepreg material, in particular a prepreg fabric or a prepreg unidirectional sheet, BMC (bulk moulding compound), or SMC (sheet moulding compound). In particular, the HexPly® range of prepreg fabrics and prepreg unidirectional sheets are available from Hexcel Corporation (Stamford USA).

[0101] Advantageously, the thermosetting polymer assembly 60 of prepreg reinforcing fibers can be produced from rectangular or substantially rectangular chips, preferably having a length of 1 cm to 10 cm, a width of 2 mm to 2 cm, and a thickness of 0.02 mm to 0.50 mm. Such unidirectional fiber chips impregnated with a thermosetting polymer can be obtained, inter alia, by impregnating and then cutting unidirectional fiber rovings or by cutting sheets impregnated with unidirectional fibers. Such chips can then be randomly laid flat and pressed into a sheet to form an intermediate mat. Such intermediate mats prepared from impregnated unidirectional fiber chips correspond, for example, to the HexMc® material marketed by Hexcel Corporation (Stamford, USA). When chips made of unidirectional fibers are used, in the molded part, the unidirectional reinforcing fibers forming the chips are randomly oriented in three dimensions if the chips are randomly arranged before the compression molding operation, or randomly oriented in only two dimensions if the chips are arranged as intermediate mats, which are then stacked and subjected to the compression molding operation. Suitable hot pressing conditions and firing cycles for this type of material are described, for example, in application WO2016 / 207309, to which reference may be made for further details.

[0102] "Fiber reinforced ply" means a material consisting of one or more layers, said material having a unitary or cohesive character, i.e., the various layers are bonded together. Within the fiber reinforced ply 50, there is at least one layer of reinforcing fibers. Such a reinforcing fiber layer may be in the form of a fabric, unidirectional sheet, or nonwoven fabric made of reinforcing fibers. According to a preferred embodiment, each ply includes unidirectional sheets of reinforcing fibers, and these various unidirectional sheets of reinforcing fibers are oriented in different directions within the dry stack 40, as is conventional in the art.

[0103] It is also possible to use a ply in which the reinforcing fiber layer is fabric.

[0104] The dry stack 40 corresponds to the dry stack 4 in the intermediate composite element 2 and can therefore be considered as the precursor stack of the dry stack 4. The initial dry stack 40 of the fiber reinforced ply 50 therefore comprises at least one porous polymer layer interposed between two reinforcing fiber layers.

[0105] The reinforcing fibers are particularly glass, carbon, aramid, or ceramic fibers, with carbon fibers being particularly preferred. The fiber-reinforced ply 50 can also contain a polymer portion, but in a small amount to maintain the dry characteristics of the initial dry stack 40. In particular, if the fiber-reinforced ply has a polymer portion, the polymer portion accounts for up to 15%, preferably up to 10%, of the total weight of the fiber-reinforced ply, preferably 0.5% to 10%, more preferably 2% to 6% of the total weight of the fiber-reinforced ply. In this case, the fiber-reinforced ply can particularly include a reinforcing fiber layer and a porous polymer layer that are integral (associated) with each other. If the polymer portion is bonded to the fiber reinforcement, it is considered to be part of the fiber-reinforced ply. If the polymer portion is not bonded to the fiber-reinforced ply, it is clearly part of the initial dry stack 40, but it can also be considered to be deposited on the fiber-reinforced ply or inserted between two fiber-reinforced plies. The dry stack 40 therefore comprises either at least one porous polymer layer inserted between two consecutive plies 50 within the dry stack 40, or at least one porous polymer layer belonging to one ply 50 and positioned in contact with another ply 50. Ultimately, however, the initial dry stack 40 comprises a polymer portion representing at most 15%, preferably at most 10%, of the total weight of the fiber-reinforced plies, preferably between 0.5% and 10%, more preferably between 2% and 6% of its total weight.

[0106] According to a first alternative embodiment, the reinforcing fiber plies 50 forming the initial dry stack 40 are fibrous reinforcements, in particular unidirectional sheets of reinforcing fibers, bonded on at least one of their faces to one or more porous polymer layers, the porous polymer layers present in said plies representing up to 10% of the total weight of said plies, preferably between 0.5% and 10% of the total weight of said plies, more preferably between 2% and 6% of the total weight of said plies, and at least one porous polymer layer being inserted between two successive fibrous reinforcements, in particular two successive unidirectional sheets of reinforcing fibers.

[0107] It is also possible that the reinforcing fiber plies 50 forming the initial dry stack 40 are reinforcing fiber fabrics bonded on at least one of their faces with porous polymer layers, with one or more porous polymer layers present in said plies accounting for up to 10% of the total weight of said plies, preferably 0.5% to 10% of the total weight of said plies, more preferably 2% to 6% of the total weight of said plies, and at least one porous polymer layer being interposed between two successive fabrics.

[0108] "A fiber reinforcement bonded to a porous layer on at least one of its faces" means that the fiber reinforcement is bonded to at least one porous layer applied to one of its faces. Such bonding is achieved in particular by adhesion, in particular as a result of the hot tack properties of the porous polymer layer. In particular in the case of stacks comprising several fiber reinforcements and several porous polymer layers, this bonding can also be supplemented or replaced by mechanical bonding of the stitching or knitting type, or by any other physical means (such as needle bonding).

[0109] In particular, the porous polymer layer is a nonwoven fabric. The terms "nonwoven fabric" and the equivalent term "veil" conventionally refer to a collection of continuous or short, randomly arranged fibers. These nonwoven fabrics or veils can be produced, for example, by dry processes ("drylaid"), wet processes ("wetlaid"), melt processes ("spunlaid"), such as extrusion ("spunbond"), extrusion blow molding ("meltblown"), melt spraying ("fiberizing spray applicator"), or solvent spinning ("electrospinning", "flashspinning", "forcespinning"), all of which are well known to those skilled in the art. In particular, the fibers forming the nonwoven fabric have an average diameter in the range of 0.5 μm to 70 μm, preferably in the range of 0.5 μm to 20 μm. The nonwoven fabric can be formed from short fibers or preferably continuous fibers. In the case of short fiber nonwoven fabrics, the fibers can have a length of, for example, 1 mm to 100 mm. The nonwoven fabric provides random, preferably isotropic, coverage.

[0110] Advantageously, the nonwoven fabric present in the initial dry stack 40 has a density of 0.2 g / m 2 ~20g / m 2 The thickness of the nonwoven fabric in the reinforced material according to the present invention may vary depending on the nature of the bond with the fiber reinforcement. Preferably, the nonwoven fabric or fabrics present in the initial dry stack 40 have a thickness of 0.5 μm to 50 μm, preferably 3 μm to 35 μm, after bonding with the fiber reinforcement, if the bonding is achieved by applying heat and pressure, in order to take advantage of the hot tack properties of the nonwoven fabric. If the bonding is achieved by mechanical means, such as sewing, knitting, or needle bonding, the thickness of the nonwoven fabric may be greater than 50 μm, in particular in the range of 50 μm to 200 μm. The properties of such nonwoven fabrics can be measured by the methods described in application WO 2010 / 046609.

[0111] Dry fabrics with powder or polymer veils are available from Hexcel in the HexForce® range, and there is even a G0926 powder fabric and a 48302 veil fabric.

[0112] Preferably, in the role of the reinforcing fiber ply 50, a unidirectional sheet of reinforcing fibers corresponding to the fiber reinforcement is used, which is bonded on at least one of its faces to a porous layer, as provided in the context of the present invention. To have a symmetrical material, the fiber reinforcement, in particular the unidirectional sheet of reinforcing fibers, is bonded on both sides to a porous layer, and the porous layers present on both sides of the unidirectional sheet of reinforcing fibers are preferably identical. In the context of the present invention, the porous layer advantageously has thermal adhesion properties, and the bond between the fiber reinforcement and the porous layer is achieved as a result of the hot tack properties of the porous layer, thereby forming a single ply. These hot tack properties result from the polymer constituting the porous layer, preferably a thermoplastic polymer or a polymer containing a thermoplastic portion, or a mixture of such polymers. If a single reinforcing fiber ply 50 is pre-laminated and bonded in the form of a preform before being positioned in the mold, this adhesion property also imparts cohesive properties to the dry stack thus obtained.

[0113] Such reinforcing fiber plies 50 are described in WO 2010 / 046609, WO 2010 / 061114, US 2008 / 7435693, US 2010 / 003881, EP 1125728, WO 2007 / 015706, WO 2006 / 121961, and US 6,503,856, which may be consulted for further details. As in these documents, the constituent reinforcing yarns that make up the unidirectional sheet may be untwisted. Twisted reinforcing yarns can be used to form the unidirectional sheet, advantageously individually twisted yarns with a twist of 3 to 15 turns / m, preferably 6 to 12 turns / m.

[0114] In a second alternative embodiment, the reinforcing fiber ply 50 forming the initial dry stack 40 comprises several unidirectional layers of reinforcing fibers oriented in different directions and joined by stitching or knitting. In particular, the reinforcing fiber ply 50 consists of a stack of unidirectional reinforcing fiber layers oriented in different directions, preferably with at least one porous polymer layer inserted between two unidirectional sheets of reinforcing fibers or even on the surface of the stack, as previously described. According to a first embodiment of this second variant, such a fiber-reinforced ply is made of a material selected from the group consisting of a sequence (CM / R) n where CM denotes a porous polymer layer as provided within the context of the present invention, R denotes a fiber reinforcement as described in the context of the present invention, and n denotes an integer, in particular 1, 2 or 3, and preferably all CM layers have a similar or even identical weight.

[0115] In a second embodiment of this second alternative embodiment, such fiber reinforced plies are (CM / R) n / CM sequence, where CM denotes a porous polymer layer as provided in the context of the present invention, R denotes a fiber reinforcement as described in the context of the present invention, and n denotes an integer, in particular 1, 2 or 3, and preferably all porous CM layers have a similar or even identical weight, or the outer porous layers have a weight equal to half the weight of each of the inner porous polymer layers.

[0116] In particular, in such stacks, the fiber reinforcement R is a unidirectional sheet of reinforcing fiber, in particular carbon fiber, preferably having the same weight. Such materials are described as NCF (non-crimp fabric). Traditionally, in the NCF field, the bonding of the unidirectional layers of reinforcing fiber to each other and to any existing porous layer is achieved by sewing or knitting. Naturally, measures may be taken to replace or even supplement this bonding by sewing or knitting, by adhesion achieved as a result of the hot tack properties of a porous polymer layer, preferably made of a thermoplastic polymer, or a polymer containing a thermoplastic portion, or a mixture of such polymers, or by any other means of physical bonding type (for example, needle bonding).

[0117] In particular, in the case of NCF, the fiber-reinforced ply according to the invention is composed of unidirectional sheets extending at different orientations selected from angles 0°, 30°, 45°, 60°, 90°, 120°, 135°. All or only some of the sheets may have a different orientation. By way of example, the fiber-reinforced ply according to the invention can be made in the following stack: 0° / 90°, 90° / 0°, 45° / 135°, 135 / 45°, 90° / 0° / 90°, 0° / 90° / 0°, 135° / 45° / 135°, 45° / 135° / 45°, 0° / 45° / 90°, 90° / 45° / 0°, 45° / 0° / 90°, 90° / 0° / 45°, 0° / 135° / 90°, 90° / 135° / 0°, 135° / 0° / 90°, 90° / 0° / 135°, 45° / 0° / 135°, 135° / 0° / 45°, 45° / 135° / 0°, 0° / 135° / 45°, 45° / 135° / 90°, 90° / 135° / 45°, 135° / 45° / 0°, 0° / 45° / 135°, 135° / 45° / 90°, 90° / 45° / 135°, 60° / 0° / 120°, 120° / 0° / 60°, 30° / 0° / 150°, 150° / 0° / 30°, 135° / 0° / 45° / 90°, 90° / 45° / 0° / 135 °, 45° / 135° / 0° / 90°, 90° / 0° / 135° / 45°, 0° / 45° / 135° / 90°, 90° / 135° / 45° / 90°, 90° / 135° / 0° / 45°, 45° / 0° / 135° / 90°, where 0° corresponds to the direction of travel of the machine for producing the reinforcement material according to the invention. In the case of joining performed by sewing or knitting, the general direction of the sewing or knitting threads also generally corresponds to 0°. The production of such multiaxial fibers is well known and uses conventional techniques, such as those described, for example, in Chapter 5, paragraph 3.3 of the book "Textile Structural Composites, Composite Materials Series Volume 3" by Tsu Wei Chou & Franck K. Ko, ISBN 0-444-42992-1, Elsevier Science Publishers BV, 1989, or in patent FR2761380, which describes a process and an apparatus for the production of multiaxial fiber sheets.In particular, the unidirectional sheets may be formed before the multiaxial formation or may be applied in-line. The stitching or knitting between the individual unidirectional sheets can be performed by stitching or knitting stitches that run parallel to one another. In particular, the stitching or knitting stitches are preferably spaced apart in the same line at a pitch of 1 mm to 20 mm, preferably 2 mm to 12 mm. Similarly, two consecutive stitching or knitting lines are spaced apart from one another by, for example, 2 mm to 50 mm, preferably 5 mm to 15 mm. Preferably, all consecutive stitching lines in a series of parallel lines should be equally spaced. Examples of materials that may be used to construct the sewing threads in the context of the present invention include glass, carbon, basalt, silica, thermoplastic threads, in particular thermoplastic threads made of polymers selected from polyester (PET), polypropylene (PP), polyethylene (PE), polyphenylene sulfide (PPS), polyethylene naphthalate (PEN), liquid crystal polymers (LCP), polyketones, polyamides, and mixtures thereof. Polyethylene terephthalate, polybutylene terephthalate, polytrimethylene terephthalate, polylactic acid and copolymers thereof are examples of polyesters that can be used. The yarns have, for example, a titer in the range of 5 dTex to 150 dTex, in particular less than 30 dTex, measured according to EN ISO 2060. Further details regarding the specific structures that can be used in NCF-type materials can be found in particular in documents EP 2547816 or WO 2010 / 067003.

[0118] Examples of NCF are described in documents US 8,361,262, US 9,371,604, WO 2011 / 113751 and EP 2491175, to which reference can be made for further details. Here again, the component reinforcing yarns may be untwisted. For the formation of unidirectional sheets, twisted reinforcing yarns can be used, advantageously individually twisted yarns with a twist of 3 to 15 turns / m, preferably 6 to 12 turns / m.

[0119] Once the individual components are positioned in the mold, a hot compression molding operation b is performed using any suitable technique known to those skilled in the art. The purpose of this operation is to first form and solidify (consolidate) the molded part 300, followed by cooling. The resulting shape of the molded part 300 corresponds to the desired shape, which is its final shape in the final molded part 100. The shape of the mold 80 is therefore adjusted accordingly. Compression molding is performed by applying pressure and heat. Conventionally, the temperature, pressure, thermal cycle, and curing time are selected by those skilled in the art as a function of the amount and properties of the thermosetting polymer present in the prepreg reinforcing fiber assembly 60. By way of example, reference may be made to application WO 2016 / 207309 for all necessary details regarding usable processes and thermosetting polymers. In particular, the thermosetting polymer present in the prepreg reinforcing fiber assembly is an epoxy, phenolic, bismaleimide, or cyanate resin, or a mixture of such resins, with epoxy resin being preferred. The thermosetting resin contains a suitable curing agent to achieve crosslinking / curing. In particular, the thermosetting polymer accounts for at least 25% by weight of the prepreg reinforcing fiber assembly, preferably 25% to 55% by weight of the prepreg reinforcing fiber assembly.

[0120] Typically, compression molding is carried out at a temperature ranging from 100° C. to 400° C., at a pressure ranging from 0.2 MPa to 2000 MPa, for a period of time ranging from 15 seconds to 2 hours, for example. The selection of these parameters can be varied by those skilled in the art according to the characteristics of the thermosetting polymer and its amount, which is a function of the size of the mold.

[0121] If the initial dry stack 40 contains a thermoplastic portion, step b of the compression molding also affects the thermoplastic portion. In particular, it can cause melting or even cross-linking of the porous polymer layer present. Nevertheless, such deformation, given the small proportion of the polymer portion in the resulting dry stack 400, does not in any way prevent the subsequent diffusion of the resin by injection or infusion required to manufacture the composite part.

[0122] Step b of compression molding also allows for the formation of a bond between the resulting dry stack 400 and the molded part 300 after cooling, forming an intermediate composite element 200 similar to that during molding. The thermosetting polymer also diffuses at the interface 600 with the dry stack 400 and hardens after cooling, thus bonding the two parts at the interface. Indeed, after applying pressure and heat, the polymer partially penetrates the thickness of the dry stack 400 during the compression molding operation. Furthermore, as shown in FIG. 3 , if the prepreg reinforcing fiber assembly 60 contains short fibers, including unidirectional fiber tips, creep of the reinforcing fibers and the polymer of the prepreg reinforcing fiber assembly 60 may occur, resulting in a larger contact area 600 between the resulting molded part and the dry stack than the initial contact area 70, corresponding to the surface of the dry stack 40 on which the prepreg reinforcing fiber assembly 60 was deposited. This creep also allows the prepreg reinforcing fiber assembly 60 to fully conform to the inner wall of the mold 80, thereby obtaining a molded part 300 with a complex shape.

[0123] The cooling step c is usually carried out outside the mould, but it can also be carried out inside the mould, usually by maintaining pressure on the mould.

[0124] One advantage of the present invention is that the compression molding step b causes a portion of the thermosetting polymer present in the prepreg reinforcing fiber aggregate 60 to diffuse into the initial dry stack 40 from the interface 600. Thus, at the end of the compression molding step b, when the resin is in a thermoset state, the thermosetting resin partially penetrates the thickness of the dry stack 400 at the interface 600 with the molded part 300, thereby strengthening the bond between the dry stack 400 and the resulting molded part 300. In particular, such diffusion occurs over a thickness of at least 2 mm from the interface 600. Typically, the initial dry stack 40 contains 4 to 20 reinforcing fiber plies 50, preferably 8 to 16 reinforcing fiber plies 50, and the thermosetting polymer penetrates at least two reinforcing fiber plies 50 of the dry stack, in particular at least four reinforcing fiber plies of the dry stack 400 (including the reinforcing fiber layer) present in the intermediate composite element 200 obtained at the end of the molding operation. This is evident in the cross-section of an intermediate reinforcement material according to the present invention, shown in Figure 7, taken with a ZEISS Axio Imager M2m optical microscope. Boundary line a corresponds to the interface between the molded part (top) and the dry stack (bottom). Encapsulating resin was added to the dry stack to highlight the area of ​​the dry stack previously impregnated with the thermosetting polymer. A photograph of the molded sample was taken and then covered with encapsulating resin to hold it in place. An automated polishing sequence performed by the Struers Tegramin-25 provided a flat, scratch-free surface for microscopic observation. Boundary line b corresponds to the encapsulating resin c / thermosetting polymer-impregnated dry stack interface. It can be seen that line b is well below line a, and the distance between these two lines corresponds to the thickness of the dry stack impregnated with the thermosetting polymer, which is also present in the molded part. Nevertheless, reinforcing fiber plies not impregnated with the polymer from the molded part remain in the dry stack. In particular, in the dry stack 400 present in the intermediate composite element 200 , at least two, and preferably at least four, reinforcing fiber plies do not contain the thermosetting polymer that has permeated from the molded part 300 .

[0125] Certain modifications may be made to this process to facilitate the adhesion of the prepreg reinforcing fiber aggregate 60 to the dry stack and, ultimately, the bond between the two parts that make up the resulting final intermediate composite element 200. In particular, notches or perforations may be made in the area of ​​the surface 70 where the reinforcing fiber aggregate 60 pre-impregnated with a thermosetting polymer will be applied. By way of example, such notches or perforations may have a maximum dimension of between 2 mm and 150 mm.

[0126] At the end of step b, the intermediate composite element can be demolded and transferred to another device suitable for manufacturing a composite part by the direct process.

[0127] Process for manufacturing composite parts and composite parts According to a first variant illustrated in FIG. 4, the invention comprises the following steps: A1 - providing an intermediate composite element 200 according to the invention or an intermediate composite element obtained according to the process for the manufacture of an intermediate composite element described in the present invention; A2 - applying said intermediate composite element 200 to at least a portion of the surface of a dry stack of reinforcing fiber plies known as an additional dry stack 700, thereby bringing the dry stack 400 of the intermediate composite element 200 into abutment with the additional dry stack 700; A3 - Injecting or injecting a thermosetting resin, a thermoplastic resin, or a mixture of such resins into both the dry stack 400 of intermediate composite elements 200 and the additional dry stack 700, followed by cooling to obtain the desired final composite part 100; The present invention relates to a process for manufacturing a composite part 100, including: If the resin is or includes a thermosetting resin, the infusion or injection is carried out under conditions that result in crosslinking of the thermosetting resin, which is conventionally achieved by an appropriate cure cycle.

[0128] In the context of the present invention, the portion of the dry stack 400 positioned on the additional dry stack 700 does not contain a thermosetting polymer and therefore has a certain flexibility in that it conforms to the surface of the additional dry stack to which it is applied. In step A3, the resin then diffuses into the additional dry stack 700 as well as into the portions of the dry stack 400 available for such diffusion. A temperature process cycle is performed in step A3, which, after cooling, results in solidification (consolidation) of the assembly and the final part 100.

[0129] Here again, the additional dry stack 700 is described as "dry" because it must be combined with a thermoplastic or thermosetting resin, possibly mixed with a thermosetting resin, to produce a composite part. Accordingly, the additional dry stack 700 may include a polymer portion, which accounts for up to 15%, preferably up to 10%, of the total weight of the additional dry stack 700, preferably 0.5% to 10%, more preferably 2% to 6% of the total weight of the additional dry stack 700. The polymer portion may be, in particular, in the form of one or more layers embedded in the fiber-reinforced ply, inserted between two reinforcing fiber plies and / or positioned on the surface of the additional dry stack 700, or in the form of sewing or knitting threads. In particular, the dry stack 700 includes either at least one porous polymer layer inserted between two consecutive fiber-reinforced plies or a fiber-reinforced ply including at least one polymeric porous layer positioned opposite another fiber-reinforced ply in the dry stack 700.

[0130] An interface 900 between the intermediate composite element 200 and the additional dry stack 700 is created through the dry stack 400. This portion of the dry stack does not contain the thermosetting polymer that has penetrated into the thickness of the dry stack from the molded portion that is applied to the additional dry stack 700. Thus, at interface 900 there is an interface between two dry materials through which the injected / infused resin can penetrate and cure during step A3.

[0131] Any of the fiber reinforced plies described above for the initial dry stack 40 are suitable for the additional dry stack 700. The reinforcing fiber plies 800 comprising the additional dry stack 700 may be structurally identical to or structurally different from those comprising the initial dry stack 40 used to form the intermediate composite element 200. For example, NCF type plies may be utilized for the additional dry stack 700, while the dry stack 400 of the intermediate composite element 200 is comprised of fabrics or unidirectional sheets bonded only by polymer interlayers.

[0132] This first variant is particularly advantageous as it combines the benefits of both the direct and indirect processes. A complex shaped part is made by the indirect process, then joined to a simpler but larger part, and then solidified (consolidated) by the direct process. The intermediate bond between the dry stack 400 of intermediate composite elements 200 and the shaped part 300 provides a particularly strong bond between the two parts. In particular, one or more intermediate composite elements used to form ribs or protrusions may be applied to the surface of an additional dry stack to form the bulk of the final composite part.

[0133] The additional dry stack 700 of reinforcing fiber plies can be formed directly in equipment adapted for the process by depositing the plies individually, or the stack is pre-formed and then deposited in a single operation in an apparatus into which the resin 10 is poured or injected. In the second case, the additional dry stack 700 may be in the form of a preform tailored to the desired shape of the final composite part 100.

[0134] Processes for ply placement and preform manufacturing are well known to those skilled in the art.

[0135] 6A-6B illustrate such a case. FIG. 6A shows an additional dry stack 702, or more precisely, a portion of this additional dry stack with a surface to which the intermediate composite element 202 is attached. The additional dry stack 702 is pre-formed and has a series of ribs 710. As for the intermediate composite element 202, it has a complex shape and includes a seat 210 and a gripping surface 220. The seat 210 also has a series of rails 230 into which the ribs 710 can be inserted. The final composite part obtained after infusion / injection of resin into the assembly of the two attached elements, as shown in FIG. 6B, can be used in particular for the construction of aircraft landing gear.

[0136] 6C shows an enlarged portion of the intermediate composite element 202 of FIG. 6A, showing the molded portion 310 and dry stack 410 in the seat 210. Region 420 of the dry stack 410 extending from the molded portion 310 contains a thermosetting polymer infiltration that diffused during molding and spread from the molded portion to partially impregnate the dry stack 410. The remainder of the stack 410 is dry, does not contain thermosetting polymer, and has greater flexibility to conform to the surface of the shaped additional dry stack 702, particularly in the region of the ribs 710.

[0137] Traditionally, in a direct process for manufacturing composite parts, thermoset resins, thermoplastic resins, or a mixture of thermoset and thermoplastic resins are injected or infused into a dry stack.

[0138] In the context of the present invention, if a thermoplastic part is present in a porous polymer layer present in the additional dry stack 700, the deposition or shaping may be carried out as a result of the hot tack properties of at least one porous polymer layer present, before the infusion or injection of the resin. Advantageously, in this case, the process comprises a preliminary step of constructing the additional dry stack 700 and a step of depositing or shaping the reinforcing fiber plies used to form said stack, in which the porous polymer layer is heated to a temperature that leads to at least partial melting of the porous layer as defined in the context of the present invention, in particular to a temperature in the range of 80°C to 130°C, preferably in the range of 80°C to 120°C.

[0139] Deposition processes that can be used to form stacks directly in equipment that is subsequently used for infusion or injection of resin or for the production of flat preforms or even preforms of the desired three-dimensional shape are well known to those skilled in the art.

[0140] According to a second alternative embodiment shown in FIG. 5, which is not preferred, the present invention comprises the following steps: B1 - providing an intermediate composite part 201 according to the invention or obtained by a process described in the context of the invention; B2 - pouring or injecting a thermosetting resin, a thermoplastic resin 10, or a mixture of such resins into the dry stack of intermediate composite elements under conditions that result in crosslinking if a thermosetting resin is used, followed by cooling to obtain the desired final composite part 101; The present invention relates to a process for the manufacture of a composite 101 part, including:

[0141] In this case, only the intermediate composite element 201, consisting of the molded part 301 and the dry stack 401 joined together by partial penetration into the thickness of the dry stack 401 by the thermosetting polymer forming the polymer matrix of the molded part 301, is subjected to the direct process. In the example shown, the resin 10 is injected using a vacuum bag type device 30. The resin is then diffused into the parts of the dry stack 401 available for such diffusion.

[0142] Regardless of the process used to manufacture a composite part, the manufacture of a composite part by the direct process involves, as a final step, a diffusion step by infusion or injection of a thermosetting resin, a thermoplastic resin, or a mixture of thermosetting and thermoplastic resins into an existing dry stack, followed by a solidification (consolidation) of the desired part by a polymerization / crosslinking step according to a defined cycle of temperature under pressure, and a cooling step. According to a particular embodiment, which is further adapted to all the alternative embodiments described with respect to the present invention, the diffusion, solidification and cooling steps are carried out in an open or closed mold, in particular an open mold, for example by vacuum bag injection techniques.

[0143] In particular, the diffusion resin may be of the thermoplastic or, preferably, thermosetting type, or may consist of a mixture of thermosetting and thermoplastic resins. Examples of thermoplastic resins include polyamides, polyesters, polyamideimides, polyethersulfones, polyimides, polyetherketones, polymethyl methacrylates, aromatic polyethers, etc. Thermosetting resins that can be used are, in particular, selected from the following: epoxides, unsaturated polyesters, vinyl esters, phenolic resins, polyimides, bismaleimides, phenol-formaldehyde resins, urea-formaldehyde resins, 1,3,5-triazine-2,4,6-triamine, benzoxazines, cyanate esters, and mixtures thereof. Such resins may also contain one or more hardeners known to those skilled in the art for use with the selected thermosetting polymer. Preferably, the present invention is carried out using a thermosetting resin, in particular an epoxy resin, during the infusion or injection step. A mechanical bond already exists with the molded part, where the polymer matrix is ​​already crosslinked. However, it may be preferable to use infused or injected resins that belong to the same chemical family as those present in the molded part, or even polymer portions present in the dry stack, as this makes it easier to obtain the same types of structural properties.

[0144] The present invention preferably utilizes infusion of a thermosetting resin under reduced pressure, particularly below atmospheric pressure, especially below 100 kPa, preferably between 10 kPa and 100 kPa, for the manufacture of composite parts. Infusion is preferably carried out in an open mold, for example by vacuum bag infusion techniques.

[0145] The composite part is finally obtained after a heat treatment step. In particular, the composite part is generally obtained by a conventional solidification (consolidation) cycle of the polymers involved, by carrying out a heat treatment recommended by the supplier of these polymers and known to those skilled in the art. This solidification step of the desired composite part is carried out by polymerization / crosslinking according to a predetermined temperature and pressure cycle, followed by cooling. In the case of thermosetting resins, there is usually a gelation step before the resin hardens. The pressure applied during the process cycle can be low if injected under vacuum or higher if injected into an RTM mold.

[0146] In the context of the present invention, the intermediate composite part is manufactured by a first compression molding process and the final composite part is manufactured by resin infusion / injection. These two manufacturing steps, which therefore require different equipment, may be performed at the same manufacturing site, integrated into a single manufacturing line, or performed at two different sites based on technological constraints and available resources.

[0147] The composite part thus obtained is the part constituting the whole of the invention. Figure 2 shows diagrammatically such a composite part 1. This composite part comprises a molded part 3 and a part 7 comprising a reinforcing fiber layer 8 impregnated with a thermoplastic or thermosetting matrix (not shown) resulting from the implementation of the direct process.

[0148] At the interface 9 with the molded part there is a penetration of the thermosetting polymer that forms the molded part. Such a part can be obtained from the intermediate composite element 2 shown in Figure 1 according to the process illustrated in Figure 4, in which the part of the reinforcing fibre layer 8 that forms part 7 corresponds to the reinforcing fibre layer 5 that formed the dry stack.

[0149] The present invention is suitable for the manufacture of a wide variety of composite parts in the aeronautical, automotive, space, defense, industrial or energy sectors, such as wing panels, fuselages, landing gear doors, movable panels, doors, wing boxes, nacelles, fuselage panels, vertical or horizontal tails, self-stiffened panels, floors, cowlings, mono-hull chassis, etc. [Example]

[0150] example The examples set forth below serve to illustrate the present invention but are not intended to limit the scope of the invention.

[0151] Various intermediate composite elements were produced. For the production of moulded parts, either HexMC® material, marketed by Hexcel Corporation (Stamford, USA), or a fabric pre-impregnated with thermosetting resin, called HexPly® M81, was used. HexMC® is a high-performance compression moulding material used for the production of complex shaped parts. It is made from long carbon fibre (50 mm) and contains 38% by weight of thermosetting resin. HexPly® M81 is a 200 g / m² fabric pre-impregnated with 42% by weight of epoxy resin. 2 It is a prepreg fabric.

[0152] For the production of the dry stack, whether corresponding to that present in the intermediate composite or to the additional dry stack used to produce the final composite part, the unidirectional layer of carbon fiber, IMA 12K fiber from Hexcel, is applied on both sides with a 4 g / m2 fiber load from Protechnic. 2The unidirectional sheet was bonded with a copolyamide veil type 1R8 polymer binder. The bonding of the unidirectional sheet to the veil was achieved as a result of the veil's hot tack properties. The polymer binder was bonded to carbon as described in application WO 2010 / 046609. In the following, this unidirectional veil / unidirectional sheet bond will be referred to as a "dry ply" (or "ply" in Tables 1 and 2 below). Such a dry ply is described, in particular, in application EP 2 342 073.

[0153] For injection moulding, an epoxy resin for use in primary and secondary aerostructures marketed under the reference HexFlow® RTM6 by Hexcel Corporation (Stamford USA) was used.

[0154] Tables 1 and 2 below summarize the various intermediate composites and parts according to the present invention that were produced. [Table 1] [Table 2]

[0155] Three 180 mm x 180 mm plies of HexMC® were cut from a 460 mm wide roll using a die-cut press and placed in an oven at 180 °C for 10 minutes, then cooled to room temperature (22 °C). A dry 200 mm x 200 mm ply and a ply of HexMC® or HexPly® were stacked and then introduced into a mold preheated to 180 °C. The interface between the prepreg assembly and the dry stack occupied 80% of the upper surface of the dry stack. The mold was closed using a press, and a pressure of 100 bar was applied at 180 °C for 20 minutes. The intermediate composite element was recovered without pre-cooling the mold. Cooling was performed outside the mold.

[0156] After resin encapsulation, the resulting intermediate composite element was observed at the interface between the molded part and the dry stack using a ZEISS Axio Imager M2m optical microscope. Samples of the resulting intermediate composite element were placed in the mold, then covered with encapsulating resin and held in place while images were taken. An automated polishing sequence was performed using a Struers Tegramin-25 to obtain a flat, scratch-free surface for microscopic observation. These observations clearly demonstrated the penetration of the thermosetting polymer provided by HexMC® into the dry stack at the interface. This penetration can be seen in Figure 7, a photograph taken at the interface for intermediate composite element 2, listed in Table 1. The observations in Figure 7 indicate that penetration occurred to a depth of 2 mm, reaching 3–5 plies of the dry stack.

[0157] The resulting intermediate composite elements were placed either in a single mold (composite part I) or in additional dry stacks (composite parts II-IV) to form parts according to Table 2. Epoxy resin, commercially available from Hexcel as HexFlow RTM6, was injected into a mold equipped with a vacuum injection system at 80°C under 1 bar and held at a temperature of 120°C. The mold was then filled with the epoxy resin, and a vacuum bag injection system was then installed inside the mold. Once the preform was filled and the resin had emerged from the mold, the outlet pipe was closed and the curing cycle was initiated (ramp up to 180°C at 3°C / min, followed by a 2-hour post-cure at 180°C and a 5°C / min cooldown).

[0158] Test specimens were then cut to the appropriate dimensions for shear testing in a plane corresponding to the molded part / dry stack interface in the resin matrix according to ASTM D 2344. The specimen was positioned on two support points (1.5 mm tip radius) spaced a distance equal to four times the specimen thickness, and a punch (1.5 mm tip radius) was placed on the opposite side of the specimen at the midpoint of the two support points. Values ​​ranging from 41 MPa to 56 MPa were obtained as a function of configuration, which is entirely satisfactory. No significant differences were observed in the shear strength data for Parts I and II, demonstrating that adding an additional dry stack and performing the direct process does not affect the interlaminar shear strength of the resulting parts. Various aspects or embodiments that can be included in the present invention are summarized as follows. [1]. An intermediate composite element (2, 200, 201, 202), - at least one molded part (3, 300, 301, 310) comprising a mass of reinforcing fibers embedded in a thermosetting polymer matrix; at least one dry stack (4, 400, 401, 410) of reinforcing fiber layers (5), comprising at least one porous polymer layer inserted between two successive reinforcing fiber layers (5); Including, The molded portion (3, 300, 301, 310) is attached to and bonded to the surface of the stack, and the thermosetting polymer partially penetrates into the thickness of the dry stack (4, 400, 401, 410) from the surface of the dry stack (4, 400, 401, 410) to which the molded portion (3, 300, 301, 310) is attached, thereby providing a bond between the dry stack (4, 400, 401, 410) and the molded portion (3, 300, 301, 310). [2]. Item 1, wherein the dry stack (4, 400, 401, 410) of reinforcing fiber layers (5) has an average thickness of at least 5 mm, and the thermosetting polymer partially penetrates the thickness of the stack from the stack surface to an average penetration depth of at least 2 mm. [3]. The intermediate composite element (2, 200, 201, 202) according to item 1 or 2 above, characterized in that the dry stack (4, 400, 401, 410) comprises a polymer portion that accounts for a maximum of 10% of the total weight of the stack, preferably 0.5% to 10% of the total weight of the stack, more preferably 2% to 6% of the total weight of the stack, and that the polymer portion at least partially contributes to the cohesion of the stack. [4]. An intermediate composite element (2, 200, 201, 202) according to item 3 above, characterized in that the polymer portion is a thermoplastic polymer, a polymer containing a thermoplastic moiety, or a mixture of such polymers. [5]. An intermediate composite element (2, 200, 201, 202) according to any one of the above items 1 to 4, characterized in that the reinforcing fiber layer (5) is a fabric. [6]. An intermediate composite element (2, 200, 201, 202) according to any one of the above items 1 to 4, characterized in that the reinforcing fiber layer (5) is a unidirectional sheet of reinforcing fibers oriented in at least two different directions. [7]. The intermediate composite element (2, 200, 201, 202) according to item 6 above, characterized in that the dry stack (4, 400, 401, 410) is formed from one or more non-crimp fabrics (NCF), each NCF being an assembly of a plurality of unidirectional sheets of reinforcing fibers oriented in at least two different directions joined by sewing or knitting. [8]. Item 6. An intermediate composite element (2, 200, 201, 202) according to item 6, characterized in that the dry stack (4, 400, 401, 410) is formed from one or more NCFs, each NCF being an assembly of unidirectional sheets of multiple reinforcing fibers oriented in at least two different directions, with one or more porous polymer layers present or absent on the surface, and the assembly being joined by sewing or knitting. [9]. 9. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 8, characterized in that the porous polymer layer present is a porous film, a lattice, a powder coating, a fabric, or preferably a nonwoven fabric or a veil.

[10] . 10. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 9, characterized in that the cohesion of the dry stack (4, 400, 401, 410) is obtained at least in part as a result of the hot tack properties of the porous polymer layer present between two reinforcing fiber layers (5).

[11] . 11. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 10, characterized in that the reinforcing fibers of the dry stack (4, 400, 401, 410) and / or of the molded part (3, 300, 301, 310) are glass, carbon, aramid or ceramic fibers, with carbon fibers being particularly preferred.

[12] . 11. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 10, characterized in that the shaped portion (3, 300, 301, 310) is obtained by shaping chips of unidirectional fibers impregnated with a thermosetting resin, preferably forming an intermediate mat in which the chips are randomly arranged.

[13] . An intermediate composite element (2, 200, 201, 202) according to item 12 above, characterized in that the chip is rectangular or substantially rectangular, preferably having a length of 1 cm to 10 cm, a width of 2 mm to 2 cm, and a thickness of 0.02 mm to 0.50 mm.

[14] . 14. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 13, characterized in that the thermosetting polymer of the molded part (3, 300, 301, 310) is an epoxy.

[15] . 15. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 14, characterized in that the thermosetting polymer is at least 25% by weight of the molded part (3, 300, 301, 310), preferably between 25% and 55% by weight of the molded part (3, 300, 301, 310).

[16] . 16. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 15, characterized in that the dry stack (4, 400, 401, 410) comprises 4 to 20 reinforcing fiber layers (5), preferably 8 to 16 reinforcing fiber layers (5), advantageously at least two, preferably at least four reinforcing fiber layers (5) of the dry stack (4, 400, 401, 410) do not contain thermosetting polymer that has penetrated from the molded part (3, 300, 301, 310).

[17] . 17. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 16, characterized in that the shaped portion (3, 300, 301, 310) has a complex shape compared to the shape of the stack.

[18] . 18. An intermediate composite element (2, 200, 201, 202) according to any one of the preceding items 1 to 17, characterized in that the shaped portion (3, 300, 301, 310) has the shape of a hinge, an attachment point, a rib, a ribbed beam, a support, a bracket, a channel, a tie, a clevis, a stiffener, a hatch frame, a door frame, a lever arm, a base, a fitting, a joint, a socket or a pivot.

[19] . - at least one molded part (3, 300, 301, 310) comprising a mass of reinforcing fibers embedded in a thermosetting polymer matrix; at least one dry stack (4, 400, 401, 410) of reinforcing fiber layers (5) comprising at least one polymeric porous layer inserted between two successive reinforcing fiber layers (5), said molded part (3, 300, 301, 310) being applied and bonded to the surface of said stack; A process for the manufacture of an intermediate composite element (2, 200, 201, 202) comprising the following successive steps: a-applying at least one mass (60) of reinforcing fibers pre-impregnated with a thermosetting polymer onto a surface area (70) of an initial dry stack (40) of reinforcing fiber plies (50), the initial dry stack (40) comprising at least one polymeric porous layer interposed between two successive reinforcing fiber layers (50); b- carrying out a hot compression molding operation in a mold of the mass (60) of reinforcing fibers pre-impregnated with the thermosetting polymer deposited on the initial dry stack (40) of reinforcing fiber plies (50), resulting in cross-linking of the thermosetting polymer and its partial penetration into the thickness of the stack; c- carrying out a cooling operation to obtain a molded part (3, 300, 301, 310) comprising said assembly of reinforcing fibers embedded in said thermosetting polymer, forming a matrix by partial penetration of said thermosetting polymer from the surface to which said molded part (3, 300, 301, 310) is applied into the thickness of said dry stack (4, 400, 401, 410), and bonding said molded part (3, 300, 301, 310) to said dry stack (4, 400, 401, 410) of reinforcing fiber layer (5) thereby obtained as a result of this penetration of said thermosetting polymer. and a process including.

[20] . Item 19, the manufacturing process according to item 19, characterized in that the assembly (60) of reinforcing fibers pre-impregnated with a thermosetting polymer applied in step a is in the form of a preform of the desired molded part (3, 300, 301, 310).

[21] . 21. The manufacturing process according to item 19 or 20, characterized in that the reinforcing fiber plies forming the initial dry stack (40) used in step a are unidirectional sheets of reinforcing fibers bonded to a porous polymer layer on at least one of their faces, the porous polymer layer present in the plies occupying a maximum of 10% of the total weight of the plies, preferably 0.5% to 10% of the total weight of the plies, more preferably 2% to 6% of the total weight of the plies, and at least one porous polymer layer is inserted between two successive unidirectional layers of reinforcing fibers.

[22] . 22. The manufacturing process according to item 21, characterized in that the reinforcing fiber plies (50) forming the initial dry stack (40) used in step a) consist of a unidirectional sheet of reinforcing fibers bonded on both sides with porous polymer layers, and the porous polymer layers on each side of the unidirectional sheet of reinforcing fibers are identical.

[23] . 21. The manufacturing process according to item 19 or 20, characterized in that the reinforcing fiber plies (50) forming the initial dry stack (40) are fabrics made of reinforcing fibers bonded to a porous polymer layer on at least one of their faces, the porous polymer layer present in the plies making up a maximum of 10% of the total weight of the plies, preferably between 0.5% and 10% of the total weight of the plies, more preferably between 2% and 6% of the total weight of the plies, and at least one porous polymer layer is inserted between two successive fabrics.

[24] . 24. The manufacturing process according to any one of items 20 to 23, characterized in that the porous polymer layer present in the ply exhibits hot tack properties, and the bonding of the at least one porous polymer layer of the previously obtained ply to the unidirectional sheet or the fabric is a result of the hot tack properties of the porous polymer layer.

[25] . 25. The manufacturing process according to any one of items 20 to 24, characterized in that the initial dry stack (40) of reinforcing fiber plies (50) used in step a) has a cohesive strength resulting from the hot tack properties of the porous polymer layer present.

[26] . 26. The manufacturing process according to item 25, characterized in that the initial dry stack (40) of reinforcing fiber plies (50) used in step a) is preformed.

[27] . 25. The manufacturing process according to any one of the above items 20 to 24, characterized in that the initial dry stack (40) of reinforcing fiber plies (50) used in step a is not cohesive, and its cohesiveness is obtained at the end of step b as a result of the hot tack properties of the porous polymer layer present.

[28] . 28. The manufacturing process according to any one of items 20 to 27, characterized in that the porous polymer layer present in the ply (50) of the initial dry stack (40) used in step a) comprises or consists of a thermoplastic polymer or a polymer containing a thermoplastic portion.

[29] . 29. The manufacturing process according to any one of the above items 20 to 28, characterized in that the porous polymer layer present in the ply (50) of the initial dry stack (40) used in step a) is a porous film, a lattice, a powder coating, a fabric, or preferably a nonwoven fabric or a veil.

[30] . 21. The manufacturing process according to item 19 or 20, characterized in that the reinforcing fiber plies (50) forming the initial dry stack (40) are unidirectional sheets of reinforcing fibers oriented in at least two different directions, joined by sewing or knitting.

[31] . 31. The manufacturing process of claim 30, wherein the initial dry stack (40) is formed from a plurality of NCFs, each NCF being an assembly of a plurality of unidirectional sheets oriented in at least two different directions, one or more porous polymer layers may be present on the surface, and the assembly is joined by sewing or knitting.

[32] . 32. The manufacturing process according to item 30 or 31, characterized in that the sewing or knitting uses glass, carbon, basalt, silica, or polyester yarn or thermoplastic polymer yarn, in particular yarn made of a thermoplastic polymer having a titer in the range of 5 dTex to 150 dTex, preferably in the range of 5 dTex to 30 dTex.

[33] . 33. The manufacturing process according to any one of the above items 19 to 32, characterized in that the fibers of the reinforcing fiber plies (50) of the initial dry stack (40) and / or of the assembly (60) of pre-impregnated reinforcing fibers are glass, carbon, aramid or ceramic fibers, with carbon fibers being particularly preferred.

[34] . 34. The manufacturing process according to any one of the above items 19 to 33, characterized in that the reinforcing fibers pre-impregnated with a thermosetting polymer forming the aggregate (60) used to form the molded part (3, 300, 301, 310) are chips of unidirectional fibers impregnated with a thermosetting polymer, preferably forming an intermediate mat in which the chips are randomly arranged.

[35] . 35. The manufacturing process according to item 34 above, characterized in that the chips are rectangular or substantially rectangular, preferably having a length of 1 cm to 10 cm, a width of 2 mm to 2 cm, and a thickness of 0.02 mm to 0.50 mm.

[36] . 36. The manufacturing process according to any one of the preceding items 19 to 35, characterized in that the thermosetting polymer of the assembly (60) used to form the molded part (3, 300, 301, 310) is an epoxy.

[37] . 37. The manufacturing process according to any one of items 19 to 36, characterized in that the thermosetting polymer of the assembly used to form the molded part (3, 300, 301, 310) accounts for at least 25% by weight of the assembly, preferably 25% to 55% by weight of the assembly.

[38] . 38. The manufacturing process according to any one of the above items 19 to 37, characterized in that the compression molding step b) results in a diffusion of the thermosetting polymer which, in its thermoset state, eventually partially penetrates the thickness of the stack in the region of the interface with the molded part (3, 300, 301, 310), and the resulting dry stack of reinforcing fiber layers (5) has an average thickness of at least 5 mm, and the thermosetting polymer partially penetrates the thickness of the stack from the surface of the stack to an average penetration depth of at least 2 mm.

[39] . 39. A manufacturing process according to any one of the above items 19 to 38, characterized in that in step a, the initial dry stack (40) of reinforcing fiber plies comprises between 4 and 20 plies, preferably between 8 and 16 plies, and advantageously, at the end of step b, at least two, preferably at least four reinforcing fiber layers (5) of the dry stack (4, 400, 401, 410) do not contain thermosetting polymer that has penetrated from the shaped part (3, 300, 301, 310).

[40] . 40. The manufacturing process according to any one of items 19 to 39, characterized in that the initial dry stack (40) used in step a has notches or perforations at least on the surface to which the assembly (60) of reinforcing fibers pre-impregnated with a thermosetting polymer is attached.

[41] . 41. A manufacturing process according to any one of the preceding items 19 to 40, characterized in that a mold of suitable shape is used in step b to obtain a molded part (3, 300, 301, 310) having a complex shape compared to the shape of the stack.

[42] . 42. A manufacturing process according to any one of the above items 19 to 41, characterized in that the intermediate composite element (2, 200, 201, 202) obtained is used to form a hinge, an attachment point, a rib, a ribbed beam, a support, a bracket, a channel, a tie, a clevis, a stiffener, a hatch frame, a door frame, a lever arm, a base, a fitting, a joint, a socket or a pivot.

[43] . 42. Use of an intermediate composite element (2, 200, 201, 202) according to any one of the above items 1 to 18 or an intermediate composite element (2, 200, 201, 202) obtained by the process according to any one of the above items 19 to 42, for the manufacture of a composite part (1, 100, 101) in combination with a thermosetting resin (10), a thermoplastic resin or a mixture of such resins, wherein the thermosetting resin (10), a thermoplastic resin or a mixture of such resins is poured or injected into the dry stack (4, 400, 401, 410) of the intermediate composite element (2, 200, 201, 202) under conditions which result in crosslinking of the thermosetting resin (10), if used, followed by cooling, the use of a thermosetting resin or a mixture of thermosetting resins being preferred.

[44] . A process for the manufacture of composite parts (100, 101), comprising: A1 - Providing an intermediate composite element (2, 200, 201, 202) according to any one of the above items 1 to 18 or obtained by the process according to any one of the above items 19 to 42, A2 - attaching said intermediate composite element (2, 200, 201, 202) to at least a portion of the surface of a dry stack of reinforcing fiber plies, called an additional dry stack (700, 702), and abutting said dry stack (4, 400, 410) of said intermediate composite element (2, 200, 202) against said additional dry stack (700, 702); A3 - Injecting or injecting a thermosetting or thermoplastic resin (10) or a mixture of such resins into both the dry stack (4, 400, 410) of the intermediate composite elements (2, 200, 202) and into the additional dry stack (700, 702) under conditions that result in crosslinking, if a thermosetting resin (10) is used, followed by cooling, making it possible to obtain the desired final composite part (100, 101); 2. A process for manufacturing, including

[45] . 45. A process for manufacturing a composite part (100, 101) according to item 44, characterized in that the reinforcing fiber plies forming the additional dry stack (700, 702) are structurally identical to those constituting the dry stack (4, 400, 410) of the intermediate composite element (2, 200, 202).

[46] . 46. ​​A process for the manufacture of composite parts (100, 101) according to item 44 or 45, characterized in that the additional dry stack (700, 702) has an area at least 10 times the area to which the intermediate composite element (2, 200, 201, 202) is applied.

[47] . 47. A process for manufacturing a composite part (100, 101) according to any one of the above items 44 to 46, characterized in that the additional dry stack (700, 702) used in step A2 is preformed.

[48] . 48. A process for manufacturing a composite part (100, 101) according to any one of the above items 44 to 47, characterized in that the surface of the additional dry stack (700, 702) to which the intermediate composite element (2, 200, 202) is applied has one or more surface irregularities (710) of the rib or protrusion type.

[49] . 49. A process for the manufacture of a composite part (100, 101) according to any one of the above items 44 to 48, characterized in that a thermosetting resin (10), in particular an epoxy resin, is injected or infused in step A3.

[50] . 50. A process for the manufacture of a composite part (100, 101) according to any one of the above items 44 to 49, characterized in that step A3 is carried out by injection, preferably in an open mould, for example by vacuum bag injection.

[51] . A composite part (100, 101) obtained by the manufacturing process according to any one of items 44 to 50 above.

[52] . 52. A composite part (100, 101) according to the above item 51, for use in the fields of aeronautics, automobiles, space, defense, industry or energy.

Claims

1. An intermediate composite element (2, 200, 201, 202), - at least one molded part (3, 300, 301, 310) comprising a mass of reinforcing fibers embedded in a thermosetting polymer matrix; at least one dry stack (4, 400, 401, 410) of reinforcing fiber layers (5), comprising at least one porous polymer layer inserted between two successive reinforcing fiber layers (5); Including, The molded part (3, 300, 301, 310) is attached to the surface of the stack and bonded thereto, and the thermosetting polymer partially penetrates into the thickness of the dry stack (4, 400, 401, 410) from the surface of the dry stack (4, 400, 401, 410) to which the molded part (3, 300, 301, 310) is attached, thereby providing a bond between the dry stack (4, 400, 401, 410) and the molded part (3, 300, 301, 310).

2. 2. An intermediate composite element (2, 200, 201, 202) according to claim 1, characterized in that the dry stack (4, 400, 401, 410) of reinforcing fiber layers (5) has an average thickness of at least 5 mm and the thermosetting polymer partially penetrates the thickness of the stack from the stack surface to an average penetration depth of at least 2 mm.

3. The intermediate composite element (2, 200, 201, 202) according to claim 1 or 2, characterized in that the dry stack (4, 400, 401, 410) comprises the porous polymer layer, which accounts for at most 10% of the total weight of the stack, and which contributes at least partially to the cohesion of the stack.

4. 4. An intermediate composite element (2, 200, 201, 202) according to claim 3, characterized in that said porous polymer layer is made of a thermoplastic polymer or a mixture of polymers including a thermoplastic polymer.

5. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 4, characterized in that the reinforcing fiber layer (5) is a fabric.

6. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 4, characterized in that the reinforcing fiber layer (5) is a unidirectional sheet of a plurality of reinforcing fibers oriented in at least two different directions.

7. The intermediate composite element (2, 200, 201, 202) of claim 6, characterized in that the dry stack (4, 400, 401, 410) is formed from one or more non-crimp fabrics (NCF), each NCF being an assembly of multiple unidirectional sheets of reinforcing fibers oriented in at least two different directions joined by sewing or knitting.

8. 7. An intermediate composite element (2, 200, 201, 202) according to claim 6, characterized in that the dry stack (4, 400, 401, 410) is formed from one or more NCFs, each NCF being an assembly of a plurality of unidirectional sheets of reinforcing fibers oriented in at least two different directions, one or more porous polymer layers (different from the at least one porous polymer layer inserted between the two consecutive reinforcing fiber layers (5)) being present or absent on the surface of the dry stack, and the assembly being joined by sewing or knitting.

9. 9. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 8, characterized in that the porous polymer layer present is a porous film, a lattice, a powder coating, a fabric, a nonwoven or a veil.

10. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 9, characterized in that the cohesion of the dry stack (4, 400, 401, 410) is obtained at least in part as a result of the hot tack properties of the porous polymer layer present between two reinforcing fiber layers (5).

11. 11. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 10, characterized in that the reinforcing fibers of the dry stack (4, 400, 401, 410) and / or the molded part (3, 300, 301, 310) are glass, carbon, aramid or ceramic fibers.

12. 11. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 10, characterized in that the shaped portion (3, 300, 301, 310) is obtained by shaping chips of unidirectional fibres impregnated with a thermosetting resin, forming an intermediate mat in which the chips are randomly arranged.

13. An intermediate composite element (2, 200, 201, 202) according to claim 12, characterized in that said chip is rectangular or substantially rectangular and has a length of 1 cm to 10 cm, a width of 2 mm to 2 cm and a thickness of 0.02 mm to 0.50 mm.

14. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 13, characterized in that the thermosetting polymer of the molded part (3, 300, 301, 310) is an epoxy.

15. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 14, characterized in that the thermosetting polymer represents at least 25% by weight of the molded part (3, 300, 301, 310).

16. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 15, characterized in that the dry stack (4, 400, 401, 410) comprises 4 to 20 reinforcing fiber layers (5), and at least two reinforcing fiber layers (5) of the dry stack (4, 400, 401, 410) do not contain thermosetting polymer that has permeated from the molded part (3, 300, 301, 310).

17. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 16, characterized in that the shaped portion (3, 300, 301, 310) has a complex shape compared to the shape of the stack.

18. 18. An intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 17, characterized in that the shaped portion (3, 300, 301, 310) has the shape of a hinge, an attachment point, a rib, a ribbed beam, a support, a bracket, a channel, a tie, a clevis, a stiffener, a hatch frame, a door frame, a lever arm, a base, a fitting, a joint, a socket or a pivot.

19. - at least one molded part (3, 300, 301, 310) comprising a mass of reinforcing fibers embedded in a thermosetting polymer matrix; at least one dry stack (4, 400, 401, 410) of reinforcing fiber layers (5), comprising at least one porous polymer layer inserted between two successive reinforcing fiber layers (5), said molded part (3, 300, 301, 310) being applied and bonded to the surface of said stack; A process for the manufacture of an intermediate composite element (2, 200, 201, 202) comprising the following successive steps: a- applying at least one mass (60) of reinforcing fibers pre-impregnated with a thermosetting polymer onto a surface region (70) of an initial dry stack (40) of reinforcing fiber plies (50), the initial dry stack comprising at least one porous polymer layer interposed between two successive reinforcing fiber layers (50); b- carrying out a hot compression molding operation in a mold of the assembly (60) of reinforcing fibers pre-impregnated with the thermosetting polymer deposited on the initial dry stack (40) of reinforcing fiber plies (50), resulting in cross-linking of the thermosetting polymer and its partial penetration into the thickness of the stack; c- carrying out a cooling operation to obtain a molded part (3, 300, 301, 310) comprising said mass of reinforcing fibers embedded in said thermosetting polymer, forming a matrix by partial penetration of said thermosetting polymer from the surface to which said molded part (3, 300, 301, 310) is applied into the thickness of said dry stack (4, 400, 401, 410), and bonding said molded part (3, 300, 301, 310) to said dry stack (4, 400, 401, 410) of reinforcing fiber layer (5) thereby obtained as a result of this penetration of said thermosetting polymer. and a process including.

20. 20. A manufacturing process according to claim 19, characterized in that the mass (60) of reinforcing fibers pre-impregnated with a thermosetting polymer applied in step a) is in the form of a preform of the desired shaped part (3, 300, 301, 310).

21. 21. A manufacturing process according to claim 19 or 20, characterized in that the reinforcing fiber plies forming the initial dry stack (40) used in step a) are unidirectional sheets of reinforcing fibers bonded on at least one of their faces with a porous polymer layer, the porous polymer layer present in the ply making up a maximum of 10% of the total weight of the ply, and at least one porous polymer layer being inserted between two successive unidirectional layers of reinforcing fibers.

22. 22. The manufacturing process of claim 21, wherein the reinforcing fiber plies (50) forming the initial dry stack (40) used in step a) consist of a unidirectional sheet of reinforcing fibers bonded on both sides with porous polymer layers, the porous polymer layers being identical on each side of the unidirectional sheet of reinforcing fibers.

23. 21. A manufacturing process according to claim 19 or 20, characterized in that the reinforcing fiber plies (50) forming the initial dry stack (40) are fabrics made of reinforcing fibers bonded on at least one of their faces with a porous polymer layer, the porous polymer layer present in the ply making up a maximum of 10% of the total weight of the ply, and at least one porous polymer layer being inserted between two successive fabrics.

24. 23. A manufacturing process according to claim 21 or 22, characterized in that the porous polymer layer present in the ply exhibits hot tack properties, and the bonding of the at least one porous polymer layer of the previously obtained ply to the unidirectional sheet is a result of the hot tack properties of the porous polymer layer.

25. A manufacturing process as described in claim 23, characterized in that the porous polymer layer present in the ply exhibits hot tack properties, and the bonding of the at least one porous polymer layer comprising a previously obtained ply to the fabric is a result of the hot tack properties of the porous polymer layer.

26. 26. The manufacturing process according to any one of claims 20 to 25, characterized in that the initial dry stack (40) of reinforcing fiber plies (50) used in step a) has a cohesive strength resulting from the hot tack properties of the porous polymer layer present.

27. 27. A manufacturing process according to claim 26, characterized in that the initial dry stack (40) of reinforcing fiber plies (50) used in step a) is preformed.

28. 26. The manufacturing process according to any one of claims 20 to 25, characterized in that the initial dry stack (40) of reinforcing fiber plies (50) used in step a) is not cohesive, the cohesiveness being obtained at the end of step b) as a result of the hot tack properties of the porous polymer layer present.

29. 29. The manufacturing process according to any one of claims 20 to 28, characterized in that the porous polymer layer present in the ply (50) of the initial dry stack (40) used in step a) comprises or consists of a thermoplastic polymer or a mixture of polymers including a thermoplastic polymer.

30. 30. The manufacturing process according to any one of claims 20 to 29, characterized in that the porous polymer layer present in the ply (50) of the initial dry stack (40) used in step a) is a porous film, a grid, a powder coating, a fabric, a nonwoven or a veil.

31. 21. A manufacturing process according to claim 19 or 20, characterized in that the reinforcing fiber plies (50) forming the initial dry stack (40) are unidirectional sheets of reinforcing fibers oriented in at least two different directions, joined by stitching or knitting.

32. 32. The manufacturing process of claim 31, wherein the initial dry stack (40) is formed from a plurality of NCFs, each NCF being an assembly of a plurality of unidirectional sheets oriented in at least two different directions, and one or more porous polymer layers (different from the at least one porous polymer layer inserted between the two successive reinforcing fiber layers (50)) can be present on the surface of the initial dry stack, and the assembly is joined by sewing or knitting.

33. 33. The manufacturing process according to claim 31 or 32, characterized in that the sewing or knitting uses thermoplastic polymer yarns made of glass, carbon, basalt, silica or thermoplastic polymers with a fineness in the range of 5 dTex to 150 dTex.

34. 34. The manufacturing process according to any one of claims 19 to 33, characterized in that the fibers of the reinforcing fiber plies (50) of the initial dry stack (40) and / or the assembly (60) of pre-impregnated reinforcing fibers are glass, carbon, aramid, or ceramic fibers.

35. 35. A manufacturing process according to any one of claims 19 to 34, characterized in that the reinforcing fibres pre-impregnated with a thermosetting polymer forming the mass (60) used to form the moulded part (3, 300, 301, 310) are chips of unidirectional fibres impregnated with a thermosetting polymer, forming an intermediate mat in which the chips are randomly arranged.

36. 36. The manufacturing process of claim 35, wherein the chips are rectangular or substantially rectangular, having a length of 1 cm to 10 cm, a width of 2 mm to 2 cm, and a thickness of 0.02 mm to 0.50 mm.

37. 37. Manufacturing process according to any one of claims 19 to 36, characterized in that the thermosetting polymer of the mass (60) used to form the molded part (3, 300, 301, 310) is an epoxy.

38. 38. The manufacturing process according to any one of claims 19 to 37, characterized in that the thermosetting polymer of the assemblage used to form the molded part (3, 300, 301, 310) represents at least 25% by weight of the assemblage.

39. 39. The manufacturing process according to any one of claims 19 to 38, characterized in that the compression moulding step b) results in a diffusion of the thermosetting polymer which, in its thermoset state, eventually partially penetrates the thickness of the stack in the region of the interface with the moulded part (3, 300, 301, 310), the dry stack of reinforcing fibre layers (5) obtained having an average thickness of at least 5 mm, the thermosetting polymer having partially penetrated the thickness of the stack from the surface of the stack to an average penetration depth of at least 2 mm.

40. 40. The manufacturing process according to any one of claims 19 to 39, characterized in that in step a, the initial dry stack (40) of reinforcing fiber plies comprises 4 to 20 plies, and at the end of step b, at least two reinforcing fiber layers (5) of the dry stack (4, 400, 401, 410) do not contain thermosetting polymer that has permeated from the molded part (3, 300, 301, 310).

41. 41. A manufacturing process according to any one of claims 19 to 40, characterized in that the initial dry stack (40) used in step a) has notches or perforations at least on the surface to which the assembly (60) of reinforcing fibres pre-impregnated with a thermosetting polymer is applied.

42. 42. A manufacturing process according to any one of claims 19 to 41, characterized in that a mould of suitable shape is used in step b to obtain a moulded part (3, 300, 301, 310) having a complex shape compared to the shape of the stack.

43. 43. Manufacturing process according to any one of claims 19 to 42, characterized in that the intermediate composite element (2, 200, 201, 202) obtained is used to form a hinge, an attachment point, a rib, a ribbed beam, a support, a bracket, a channel, a tie, a clevis, a stiffener, a hatch frame, a door frame, a lever arm, a base, a fitting, a joint, a socket or a pivot.

44. 44. Use of an intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 18 or obtained by the process according to any one of claims 19 to 43 for manufacturing a composite part (1, 100, 101) in combination with a thermosetting resin (10), a thermoplastic resin or a mixture of such resins, wherein the thermosetting resin (10), the thermoplastic resin or a mixture of such resins is poured or injected into the dry stack (4, 400, 401, 410) of the intermediate composite element (2, 200, 201, 202) under conditions that result in crosslinking of the thermosetting resin (10), if used, followed by cooling.

45. A process for the manufacture of composite parts (100, 101), comprising: A1 - Providing an intermediate composite element (2, 200, 201, 202) according to any one of claims 1 to 18 or obtained by a process according to any one of claims 19 to 43, A2 - applying said intermediate composite element (2, 200, 201, 202) to at least a portion of the surface of a dry stack of reinforcing fiber plies, called an additional dry stack (700, 702), and abutting said dry stack (4, 400, 410) of said intermediate composite element (2, 200, 202) against said additional dry stack (700, 702); A3 - Injecting or pouring a thermosetting or thermoplastic resin (10) or a mixture of such resins into both the dry stack (4, 400, 410) of the intermediate composite element (2, 200, 202) and into the additional dry stack (700, 702) under conditions that result in crosslinking, if a thermosetting resin (10) is used, followed by cooling, which allows the desired final composite part (100, 101) to be obtained.

2. A process for manufacturing, including

46. 46. ​​A process for manufacturing a composite part (100, 101) according to claim 45, characterized in that the reinforcing fiber plies forming the additional dry stack (700, 702) are structurally identical to those constituting the dry stack (4, 400, 410) of the intermediate composite element (2, 200, 202).

47. 47. A process for the manufacture of composite parts (100, 101) according to claim 45 or 46, characterized in that the additional dry stack (700, 702) has an area at least 10 times the area to which the intermediate composite element (2, 200, 201, 202) is applied.

48. 48. Process for manufacturing a composite part (100, 101) according to any one of claims 45 to 47, characterized in that the additional dry stack (700, 702) used in step A2 is pre-formed.

49. 49. A process for manufacturing a composite part (100, 101) according to any one of claims 45 to 48, characterized in that the surface of the additional dry stack (700, 702) to which the intermediate composite element (2, 200, 202) is applied has one or more surface irregularities (710) of the rib or protrusion type.

50. 50. A process for the manufacture of a composite part (100, 101) according to any one of claims 45 to 49, characterized in that the thermosetting resin (10) is injected or poured in step A3.

51. 51. A process for the manufacture of a composite part (100, 101) according to any one of claims 45 to 50, characterized in that step A3 is carried out in an open mould by injection.

52. A composite part (100, 101) obtained by a manufacturing process described in any one of claims 45 to 51.

53. 53. A composite part (100, 101) according to claim 52, for use in the aeronautical, automotive, space, defense or energy sectors.

Citation Information

Patent Citations

  • Method for producing composite material panel

    JP2003011231A

  • Fiber-reinforced composite molded products

    JP2013537490A

  • Coupling element for use in pipeline rehabilitation and method of manufacture thereof - Patents.com

    JP2020506349A