Method for manufacturing a decorated thermoplastic shell in a single operation
The one-shot process for decorated thermoplastic shells addresses the environmental and efficiency issues of traditional methods by integrating decoration and finishing in a single operation, reducing time and costs while enhancing product quality and recyclability.
Patent Information
- Application Number
- FR2024005462
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-05-28
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2044-05-28
AI Technical Summary
Traditional manufacturing methods for composite shells, particularly those used in aircraft seats, are environmentally unsustainable due to the use of non-recyclable thermosetting materials and involve complex, time-consuming processes with manual finishing steps that increase costs and defects.
A one-shot process for producing decorated thermoplastic shells using a self-regulating heated mold that integrates all manufacturing steps, including decorative film application, ensuring uniform curing and eliminating the need for post-treatments.
Reduces production time and costs while improving product quality and recyclability by integrating decoration and finishing in a single operation, using a thermoplastic multilayer structure with a honeycomb core and thermoplastic skins.
Smart Images

Figure 00000000_0000_ABST
Abstract
Description
Title of the invention: Method for manufacturing a decorated thermoplastic shell in a single operation. Technical field
[0001] The present invention relates to the field of manufacturing processes for parts made of composite materials, particularly thermoplastic composite shells. More specifically, it relates to a process for manufacturing a decorated thermoplastic shell in a single operation.
[0002] The invention finds a direct, but not exclusive, application in the manufacture of upholstery shells for aeronautical seats, in particular those of the upper classes (first class and business class).
[0003] Indeed, in such armchairs, the upholstery shell is designed, among other things, to partially enclose the armchair and thus delimit a private space for the passenger. State of the art
[0004] The manufacture of composite shells, particularly for demanding applications such as aircraft seats, relies on well-established processes but has certain limitations. Composite shells are widely used because of their lightness, mechanical strength, and ability to be molded into complex shapes.
[0005] Traditional manufacturing methods for composite hulls often involve the use of thermosetting materials. These materials, such as epoxy and polyester resins, are transformed by an irreversible polymerization process that gives the final material its mechanical and thermal properties.
[0006] A commonly used technique is hand lay-up, where successive layers of fiber reinforcements, such as glass or carbon fiber, are impregnated with thermosetting resin and deposited into a mold. Resin transfer molding (RTM) is another widely used method. It consists of injecting resin into a closed mold containing the fiber reinforcements, allowing for better impregnation and a superior quality of the finished part.
[0007] For curing thermosetting materials, the molded parts are generally placed in an oven or autoclave. Vacuum bagging is often combined with autoclaving to improve layer consolidation and eliminate air bubbles. The autoclave uses a combination of high pressure and temperature to ensure that the resin polymerizes homogeneously and that the resulting part has optimal mechanical properties.
[0008] Although these methods are widely adopted, they have several notable limitations. First, the thermosetting materials used are not recyclable. At the end of their life, these shells cannot be transformed back into new materials, which poses significant environmental problems.
[0009] Secondly, the manufacturing process is complex and involves several steps. The need for curing in an oven or autoclave adds time and costs to production. Furthermore, the finishing of the shells is often done manually by applying a decorative film after demolding. This operation not only lengthens production time but also increases the risk of defects and non-conformities.
[0010] Scientific articles and industry reports highlight these limitations. For example, according to "Wong, K., Rudd, C., Pickering, S. et al. Composites recycling solutions for the aviation industry. Sci. China Technol. Sci. 60, 1291-1300 (2017). https: / / doi.org / 10.1007 / sll431-016-9028-7", the inability to recycle thermosetting materials constitutes a major challenge for the aerospace industry, which is particularly seeking to reduce its environmental footprint.
[0011] On the other hand, “Chardon G, Chanal H, Duc E, Garnier T. Study of surface finish of fiber-reinforced composite molds. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture. 2017; 231(4):576-587. doi: 10.1177 / 0954405415617929” discusses the additional costs and delays associated with manual finishing steps in the composite shell manufacturing process. This article examines the production process of composite parts using molds made of Hextool (trademark), a carbon fiber-reinforced thermosetting plastic. It highlights the need for manual finishing to meet surface quality and dimensional requirements. In particular, he emphasizes that the manual polishing operation is essential to achieve a specific surface roughness, and proposes methods to optimize the milling process in order to minimize manual finishing time.
[0012] In contrast, thermoplastic materials offer a promising alternative. Unlike thermosets, thermoplastics can be melted and reshaped, thus facilitating their recycling. Furthermore, manufacturing processes using thermoplastics can potentially integrate finishing steps directly into the mold, thereby simplifying the production chain and reducing costs.
[0013] Existing solutions highlight the need for innovations in the field of composite shell manufacturing processes, aimed at overcoming current limitations and offering more efficient and environmentally friendly solutions. Summary of the invention
[0014] The present invention aims to overcome all or part of the drawbacks of the prior art described above, by proposing an innovative solution in the form of a "one-shot" process for producing directly decorated and recyclable thermoplastic shells. Indeed, the decorated shell is obtained in a single operation using a self-contained, regulated heated mold, which allows the finish to be integrated simultaneously.
[0015] One objective of the invention is therefore to reduce manufacturing steps, thereby reducing costs and time while improving the durability and ecological footprint of the finished products.
[0016] To this end, the present invention relates to a method for manufacturing a shell for an aeronautical seat, from a thermoplastic multilayer structure, said method being remarkable in that it comprises: • a step of placing the multilayer structure on a self-heating and self-regulating autonomous mold; • a step of applying a heating membrane directly onto the multilayer structure; • a step of applying a vacuum in the mold by means of the heating membrane, said vacuum producing a compression of the multilayer structure; • a cooking stage at a predefined temperature, following a cycle regulated by the mold; and • a demolding and trimming step of the resulting shell (150);
[0017] This process further includes the integration of a decorative film onto the multilayer structure during molding, before the baking stage.
[0018] This one-step process, in that it integrates all manufacturing steps, including the application of the decorative film in the molding process, reduces production time by combining several steps into a single operation. It also improves quality by ensuring uniform curing and the integration of the decoration, while simplifying the overall manufacturing process.
[0019] According to an advantageous aspect of the invention, the multilayer structure is pre-prepared and comprises a honeycomb or foam core, sandwiched between two thermoplastic skins by means of adhesive films.
[0020] According to one aspect of the invention, the mold and the heating membrane heat respectively a lower part and an upper part of the multilayer structure.
[0021] Simultaneous heating of both parts of the multilayer structure ensures homogeneous melting and superior molding quality, reducing the risks of deformation and imperfections.
[0022] According to one embodiment, the cooking step takes place according to a temperature profile having a constant plateau corresponding to the melting temperature of adhesive films contained in the multilayer structure.
[0023] The regulated temperature profile ensures that the adhesive films reach their melting temperature, guaranteeing perfect adhesion and effective consolidation of the multilayer structure.
[0024] The invention also relates to a decorated thermoplastic shell, obtained by the process as presented.
[0025] The resulting shell is directly decorated, eliminating the need for decorative post-treatments, thus reducing production cost and time.
[0026] More specifically, this shell comprises a honeycomb core sandwiched between two thermoplastic skins.
[0027] The honeycomb core offers excellent mechanical strength while maintaining minimal weight, ideal for aeronautical applications.
[0028] More specifically, the honeycomb core is tubular and isotropic in the directions of the median plane of the thermoplastic skins.
[0029] The isotropic tubular core ensures a uniform distribution of stresses, thus improving the structural performance of the shell and increasing its lifespan.
[0030] According to one embodiment, the thermoplastic skins are reinforced with fibers selected from PEI, PPS, PC or PEEK.
[0031] The fundamental concepts of the invention having been set out above in their most elementary form, other details and characteristics will become clearer from reading the following description and with regard to the attached drawings, giving by way of non-limiting example an embodiment of a method for manufacturing a decorated thermoplastic shell, in accordance with the principles of the invention. Presentation of the drawings
[0032] The figures are given for illustrative purposes only to facilitate a better understanding of the invention without limiting its scope. The various elements may be represented schematically and are not necessarily to scale. Throughout the figures, identical or equivalent elements are identified by the same numerical reference.
[0033] It is thus illustrated in:
[0034] [Fig.l]: a synoptic diagram of the main steps of a process for manufacturing a thermoplastic shell according to an embodiment of the invention;
[0035] [Fig.2]: a schematic cross-section of a multilayer structure for the implementation of the process and from which the shell will be derived;
[0036] [Fig.3]: an example of a temperature profile applied during the cooking stage;
[0037] [Fig.4]: a diagram of the main elements for implementing the process, including a self-heating mold and a heating membrane;
[0038] [Fig.5]: an example of a finished hull obtained by the process according to the invention. Detailed description of implementation methods
[0039] It should be noted that certain technical elements well known to those skilled in the art are recalled here to avoid any insufficiency or ambiguity in the understanding of the present invention.
[0040] The embodiment described below refers to a method for manufacturing thermoplastic shells, primarily intended for the production of decorated upholstery shells for aircraft seats. This non-limiting example is given for a better understanding of the invention and does not preclude the implementation of the method in other industrial sectors for manufacturing other types of parts.
[0041] Figure 1 illustrates the main steps of a process 500 for manufacturing a decorated thermoplastic shell, said process comprising: • an initial step 510 of placing a thermoplastic multilayer structure on a self-supporting heated mold; • a step 520 of applying a heating membrane over the multilayer structure; • a 530 vacuum step on the mold via the heating membrane; • a step 540 of cooking at a predefined temperature; and • a final step 550 of demolding and trimming the resulting shell.
[0042] Process 500 advantageously allows for the production of a decorated thermoplastic shell in a single integrated operation, thus minimizing manufacturing steps and intermediate handling. Unlike traditional methods that require several distinct draping, curing, and finishing steps, this "one-shot" process reduces costs, production time, and the risk of errors while improving the quality, lightness, and recyclability of the finished products.
[0043] Step 510 of placing a thermoplastic multilayer structure on a self-heating mold consists of placing a structure composed of several layers of thermoplastic materials on a mold specially designed to be heated independently. This mold is equipped with temperature control systems. ensuring a uniform distribution of heat, essential for the smooth progress of the following steps.
[0044] Fig. 2 represents a multilayer structure 100 for implementing the process 500. The multilayer structure 100 comprises a tubular honeycomb core 10 with isotropic behavior in the plane directions, sandwiched between two thermoplastic skins, an upper skin 30a and a lower skin 30b, by means of adhesive films 20. A decorative film 40 is applied to the upper skin 30a during the process.
[0045] The honeycomb core 10 is designed to provide good mechanical strength while minimizing the final weight of the resulting shell. This isotropic structure ensures a uniform distribution of stresses.
[0046] Alternatively, the core 10 can be made of foam.
[0047] The adhesive films 20 are placed on either side of the honeycomb core 10. These films allow the layers to be assembled, ensuring a strong and durable bond between the core 10 and the thermoplastic skins 30a and 30b. The adhesives used are selected for their compatibility with thermoplastic materials and their ability to withstand the manufacturing and end-use conditions. They include, for example, a special adhesive.
[0048] The thermoplastic skins 30 are reinforced with fibers selected from materials such as PEI (Polyetherimide), PPS (Polyphenylene Sulfide), PC (Polycarbonate), or PEEK (Polyetheretherketone). These materials offer an ideal combination of strength, rigidity, and lightness, while also being able to withstand the heating and molding processes necessary for manufacturing the shell.
[0049] The decorative film 40 is applied to the outer surface of the upper thermoplastic skin 30a. This decorative film is integrated directly during the molding process, resulting in an aesthetically pleasing and durable finish without the need for additional post-processing steps. The decorative film 40 is designed to withstand the stresses of use.
[0050] The multilayer structure 100 thus described is placed on the mold before step 520 of application of the heating membrane.
[0051] Step 520 of applying the heating membrane over the multilayer structure 100 consists of placing a membrane, of the tarpaulin type, capable of generating heat directly over the multilayer structure. This heating membrane ensures uniform pressure on the structure and improves the adhesion between the different layers, while initiating the melting process necessary to form a homogeneous shell.
[0052] Step 530 of vacuuming the mold via the heating membrane consists of applying a vacuum (or vacuum) through the heating membrane, which allows Compress the entire assembly and eliminate air bubbles to ensure better consolidation of the thermoplastic layers. This vacuum also helps to hold the structure in place and guarantee a high-quality, defect-free finish.
[0053] Step 540 of baking at a suitable temperature consists of heating the entire multilayer structure to a predefined temperature, corresponding to the melting temperature of the adhesive films 20. This baking is regulated by the autonomous mold, thus ensuring a constant and homogeneous temperature over the entire surface of the shell, which is crucial to obtain the desired mechanical and aesthetic properties.
[0054] Fig. 3 represents an example of a baking temperature profile used during step 540 of process 500. This temperature profile ensures homogeneous melting and optimal hardening of the thermoplastic shell from the multilayer structure 100.
[0055] The graph shows that the setpoint temperature begins to rise rapidly from the start of the process. From 0 to approximately 30 minutes, the temperature gradually increases until it reaches approximately 130°C. This temperature ramp-up phase prepares the multilayer structure for the melting phase.
[0056] Between 30 and 90 minutes, the temperature is maintained constant at approximately 130°C. This thermal plateau phase ensures complete and uniform melting of the thermoplastic materials, allowing good adhesion between the different layers and optimal consolidation of the structure.
[0057] After 90 minutes, the temperature begins to decrease gradually. This controlled cooling phase, which lasts from 90 to just over 200 minutes, allows the multilayer structure to solidify without introducing internal stresses or deformations. The temperature returns to ambient temperature, ensuring that the thermoplastic shell is sufficiently hardened before demolding.
[0058] The final step 550 of demolding and trimming the resulting shell consists of carefully removing the shell from the mold once the thermoplastic material has sufficiently cooled and hardened. Next, the shell is trimmed to remove excess material and obtain the desired final dimensions. This step also includes a final inspection to ensure that the shell meets the quality and design specifications.
[0059] Figure 4 represents elements necessary for the implementation of the process 500 for the manufacture of a decorated thermoplastic shell, these elements include in particular a mold 300 and a heating cover 200.
[0060] The resulting shell 150 is demolded at the end of the process and comes from the multilayer structure 100 initially placed in the mold.
[0061] The mold 300, of which only the self-heating lower part is shown, is equipped with a control system 350. The visible surface of the mold is heated, allowing for uniform heating of the multilayer structure placed inside. The 350 control system ensures precise control of thermal conditions, thus guaranteeing homogeneous melting and curing of thermoplastic materials.
[0062] In particular, the 350 control system continuously adjusts the temperature to maintain ideal cooking conditions, according to the temperature profile of [Fig.3] for example.
[0063] The heating cover 200 is intended to be placed under the upper part of the mold, as indicated by the dotted lines in the figure. This cover heats the upper part of the multilayer structure while exerting compressive pressure through an applied vacuum. This compression ensures perfect adhesion between the different layers and a homogeneous finish of the shell.
[0064] After the baking phase, which involves a heating plate followed by a controlled cooling phase, the shell 150 is formed. The shell, now solidified and decorated, is demolded. Demolding is done delicately to preserve the integrity of the shell and ensure a perfect finish.
[0065] The 150 shell, made in a sandwich construction with a visible decoration on its upper surface, is the result of the molding process. After undergoing various heating, compression, and cooling stages, the shell is demolded and exhibits a robust and decorated structure. The decoration integrated during molding eliminates the need for additional post-processing, thus reducing production costs and time.
[0066] Process 500 thus enables the efficient and integrated manufacturing of decorated thermoplastic shells in a single molding operation, reducing intermediate handling and improving the quality and durability of the final product. The combined use of the heating blanket 200 and the self-heating mold 300 with regulator 350 ensures optimized production, both in terms of time and cost, while guaranteeing the desired performance of the manufactured shells.
[0067] Figure 5 shows an example of the final shell 150 obtained after implementation of the described process.
[0068] The 150 shell has a smooth, decorated exterior surface that meets the aesthetic and functional requirements for use in first-class and business-class aircraft seats. The integrated decoration, visible on the upper surface, was applied directly during the molding process, thus ensuring a homogeneous finish without the need for additional post-processing steps.
[0069] As described, the manufacturing process for decorated thermoplastic shells presented offers numerous advantages. The recyclability of the thermoplastic materials used allows for more environmentally friendly management of end-of-life products. Production In a single operation, thanks to the use of a self-regulating, heated mold, manufacturing time and associated costs are significantly reduced. Furthermore, integrating the decoration during the molding process ensures a consistent aesthetic finish without additional post-processing steps.
[0070] Certain non-essential steps can be added to the process according to industrial needs, such as the application of additional protective coatings or the integration of specific structural reinforcements. Minor adjustments, such as modifying the temperature and pressure parameters depending on the materials used, can also be made to optimize the quality and performance of the shells produced. This flexible and efficient process thus meets the high requirements of aeronautical applications and other fields requiring lightweight and robust components.
[0071] For example, the process may include an additional step of preheating the multilayer structure before the application of the heating membrane. This preheating reduces thermal stresses during the application of the vacuum and ensures better fusion of the thermoplastic layers.
[0072] In another embodiment, the self-heating mold can be equipped with integrated pressure sensors, allowing for the regulation not only of the temperature but also of the pressure exerted on the multilayer structure. This precise pressure regulation can improve the quality of the melting and the consolidation of the layers, thereby reducing potential defects.
[0073] Another technical variant involves the use of thermoplastic skins with localized reinforcements in specific areas of the shell, such as the attachment or connection points to other components of the chair. These localized reinforcements can be achieved by adding extra fibers to these areas, thereby increasing mechanical strength without significantly increasing the overall weight of the shell.
[0074] Finally, in an additional embodiment, the process may include a thermal imaging inspection step after baking and before demolding. This inspection makes it possible to detect any internal defects or poorly fused areas, thus ensuring that only the shell of optimal quality is demolded and ready for use.
Claims
Demands
1. A method (500) for manufacturing a shell (150) for an aeronautical seat, from a thermoplastic multilayer structure (100), said method being characterized in that it comprises: a step (510) of placing the multilayer structure (100) on a self-heating and self-regulating autonomous mold (300); a step (520) of applying a heating membrane (200) directly onto the multilayer structure; a step (530) of applying a vacuum in the mold by means of the heating membrane, said vacuum producing a compression of the multilayer structure; a step (540) of curing at a predefined temperature, following a cycle regulated by the mold; and a step (550) of demolding and trimming the resulting shell (150); said method further comprising the integration of a decorative film (40) onto the multilayer structure during molding, before the curing step (540).
2. A method according to claim 1, wherein the multilayer structure (100) is pre-prepared and comprises a honeycomb or foam core (10) sandwiched between two thermoplastic skins (30a, 30b) by means of adhesive films (20).
3. Method according to claim 1 or 2, wherein the mold (300) and the heating membrane (200) heat respectively a lower part and an upper part of the multilayer structure (100).
4. A method according to any one of the preceding claims, wherein the baking step (540) takes place according to a temperature profile having a constant plateau corresponding to the melting temperature of adhesive films (20) contained in the multilayer structure (100).
5. Decorated thermoplastic shell (150), obtained by a process (500) according to any one of the preceding claims.
6. Shell according to claim 5, comprising a honeycomb core (10) sandwiched between two thermoplastic skins (30a, 30b).
7. Shell according to claim 6, wherein the honeycomb core (10) is tubular and isotropic in the directions of the median plane of the thermoplastic skins (30a, 30b).
8. 11 Shell according to claim 6 or 7, wherein the thermoplastic skins (30a, 30b) are reinforced with fibers selected from PEI, PPS, PC or PEEK.
Citation Information
Patent Citations
Moulding a structure from thermoplastics material
GB2310822A
Sandwich component and method for the production thereof
US20120315429A1
System for manufacturing thermoplastic parts
US20230143940A1
Process and apparatus for producing an article made of composite material
WO2020065448A1