Continuous forming equipment for carbon fiber prepreg-stainless steel ultra-thin strip fiber metal laminate

The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate has enabled rapid and continuous production of carbon fiber composite materials and stainless steel, solving the problems of interface bonding strength and production efficiency. It is suitable for high-efficiency manufacturing in aerospace, electronic devices and other fields.

CN121515523AActive Publication Date: 2026-02-13TAIYUAN UNIVERSITY OF TECHNOLOGY
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Patent Information

Application Number
CN202610055587.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-16
Publication Date
2026-02-13
Estimated Expiration
2046-01-16

AI Technical Summary

Technical Problem

Existing technologies make it difficult to achieve rapid and continuous production of carbon fiber composites and stainless steel. Furthermore, the interface of the laminate is prone to failure due to thermal stress, leading to delamination and reduced strength, resulting in low production efficiency and difficulty in meeting the needs of large-scale applications.

Method used

Employing an integrated and continuous "thermal-mechanical" synergistic process, a continuous forming equipment for carbon fiber prepreg and ultra-thin stainless steel fiber metal laminates is used, including unwinding, preheating, lamination and compaction, cooling and shaping systems, to achieve uninterrupted material generation and efficient bonding.

Benefits of technology

It enables efficient and continuous production of fiber-reinforced metal laminates, improves production efficiency, enhances interfacial bonding strength, and ensures structural controllability and dimensional stability of products, making it suitable for the manufacture of precision components in aerospace, electronic devices and other fields.

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Abstract

The invention relates to the technical field of preparation of fiber metal laminates, in particular to continuous forming equipment for a carbon fiber prepreg-stainless steel ultra-thin strip fiber metal laminate. An unwinding system, a preheating system, a laminating and compacting system, a cooling and shaping system and a winding system are sequentially arranged on a rack in the material advancing direction; the laminating and compacting system is sequentially provided with a pre-compacting roller system and a main compacting roller pair in the material advancing direction, the main compacting roller pair is composed of an upper heating and pressurizing roller and a lower heating and pressurizing roller, and embossing matched in a concave-convex mode is arranged on the roller faces of the upper heating and pressurizing roller and the lower heating and pressurizing roller of the main compacting roller. The winding system comprises an upper winding roller and a lower winding roller, and a roller gap between the upper winding roller and the lower winding roller is a profile output port. According to the invention, the thermoplastic carbon fiber prepreg and the stainless steel ultra-thin strip are rapidly and continuously compounded into the profile through a'heat-force 'synergistic process, so that the production efficiency and the product performance are improved in a leap-over manner.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of fiber metal laminates, in particular to a kind of carbon fiber prepreg-stainless steel extremely thin strip fiber metal laminates continuous forming equipment. BACKGROUND

[0002] Fiber metal laminates (FMLs) made of carbon fiber composites and metal (such as stainless steel) have wide application prospects in aerospace, electronic devices and other fields due to their excellent performance in lightweight, functionalization and production efficiency potential. Specifically, carbon fiber provides extremely high strength and modulus, while stainless steel extremely thin strip contributes toughness and ductility, achieving a synergistic effect of "1+1>2" and performing outstandingly in lightweight; Moreover, the fiber layer can effectively "bridge" and prevent crack propagation, with fatigue life far exceeding that of single metal material, and is not sensitive to impact, indentation and other damage, and can inhibit further propagation of damage; Its polymer matrix and interfacial interface can effectively absorb vibration energy, and the shock absorption and noise reduction effect is better than that of pure metal structure.

[0003] Although this material has broad prospects, it still faces a series of severe challenges and defects in terms of moving from the laboratory to industrial continuous production. Carbon fiber composites and stainless steel are essentially two incompatible materials with a large difference in thermal expansion coefficient, and their combination mainly relies on physical and mechanical interlocking, with weak chemical bonding. In traditional autoclave or flat plate hot pressing process, after high-low temperature cycle, the interface of laminated plate is easy to fail due to thermal stress, resulting in delamination and strength reduction. The existing process and device are mostly batch processing, with low production efficiency and high cost, which is difficult to meet the demand of large-scale application. Therefore, there is an urgent need for a device that can realize rapid continuous production and effectively improve the interface bonding, and can simultaneously manufacture laminated plates with complex topological cross sections. SUMMARY

[0004] The present application aims to overcome the deficiencies in the prior art and provide a kind of carbon fiber prepreg-stainless steel extremely thin strip fiber metal laminates continuous forming equipment, which replaces the traditional intermittent autoclave through integrated and continuous "thermal-mechanical" synergistic process, and rapidly and continuously composites thermoplastic carbon fiber prepreg and stainless steel extremely thin strip into profile, achieving a leap in production efficiency and product performance.

[0005] To solve the above technical problems, the present application adopts the following technical scheme: a kind of carbon fiber prepreg-stainless steel extremely thin strip fiber metal laminates continuous forming equipment, including rack, preheating system, laminating and compacting system, cooling and shaping system and winding system are sequentially arranged on the rack along the material advancing direction.

[0006] The unwinding system comprises an upper unwinding roller and a lower unwinding roller, a roller gap between the upper unwinding roller and the lower unwinding roller is a material inlet, and the upper unwinding roller and the lower unwinding roller realize feeding of the stainless steel ultra-thin strip or the carbon fiber prepreg; the preheating system comprises a preheating roller system and a preheating source, the preheating source is symmetrically arranged above and below a gap position of the preheating roller system, the preheating source does not contact the material, and the material forms a laminated material after passing through the preheating system; the laminating and compacting system is sequentially provided with a pre-compacting roller system and a main compacting roller pair along a material running direction, the pre-compacting roller system adopts a heating and pressing roller with a smooth surface, is responsible for preliminary compacting and guiding of the preheated laminated material, and the main compacting roller pair is composed of two upper and lower heating and pressing rollers, and the roller surfaces of the two upper and lower heating and pressing rollers of the main compacting roller pair are provided with concave-convex matched embossing, so that the embossing is completed on the laminated material, and a high-temperature laminated material is formed; the cooling and shaping system comprises a water-cooling roller system, the water-cooling roller system is composed of a plurality of rollers with cooling medium arranged inside, the water-cooling roller system uniformly and controllably cools the high-temperature laminated material, and shaping is completed; and the winding system comprises an upper winding roller and a lower winding roller, a roller gap between the upper winding roller and the lower winding roller is a profile outlet.

[0007] The roller gap center lines of the upper and lower parts of the unwinding system, the preheating system, the laminating and compacting system, the cooling and shaping system and the winding system are on the same center line.

[0008] Preferably, the upper unwinding roller and the lower unwinding roller each comprise at least one.

[0009] Preferably, the preheating source is an infrared heater or a hot air nozzle.

[0010] Preferably, the main compacting roller pair is of a detachable structure, and the embossing shape on the roller surface of the main compacting roller pair is set according to requirements.

[0011] Preferably, the embossing shape on the roller surface of the main compacting roller pair comprises a corrugated shape for forming alternating peaks and valleys, a trapezoidal shape for forming trapezoidal reinforcing ribs, and a triangular shape for forming triangular reinforcing ribs.

[0012] Preferably, the main compacting roller pair is internally integrated with a heating system, which controls the roller surface temperature to be in a range of 300-450 DEG C.

[0013] Preferably, the pre-compacting roller system and the main compacting roller pair are each provided with a pressing system, which provides a linear pressure of 20-50 t.

[0014] More preferably, the temperature and pressure of the main compacting roller pair are higher than those of the pre-compacting roller system.

[0015] The present application has the following beneficial effects: 1. It achieves continuous and efficient production. Traditional lamination processes are mostly segmented or intermittent (such as autoclaves), resulting in long production cycles and low efficiency. The device in this invention achieves uninterrupted production from raw materials to formed laminates through a continuous process of unwinding-preheating-lamination-cooling-rewinding, greatly improving production capacity and making it suitable for large-scale industrial applications.

[0016] 2. High interfacial bonding strength. Preheating the laminated materials using a non-contact preheating source softens the resin in the prepreg, reducing the material's molding resistance. The combination of a pre-compacting roller system and a main compacting roller pair allows the pre-compacting roller system to first expel interlayer gas, initiate bonding, and provide guidance. The main compacting roller pair then applies high pressure and a specific temperature. The high temperature melts and flows the thermoplastic resin, while the high pressure forces the molten resin to penetrate the microstructure of the surface-treated stainless steel, forming a strong mechanical interlock. This gradient compaction method effectively reduces defects such as air bubbles and insufficient adhesive, ensuring strong interfacial bonding.

[0017] 3. Precise molding and structural controllability. The main compaction roller pair is detachable, and the embossing shape on the roller surface can be set according to requirements. By replacing roller pairs with different embossing patterns, different reinforcing rib structures can be directly formed on the laminate, realizing integrated manufacturing of structure and function, and enabling customized production of laminates with different mechanical properties. The resulting corrugated, trapezoidal, and other three-dimensional structures have higher bending and peel resistance, effectively redistributing and mitigating interfacial thermal stress caused by mismatch in thermal expansion and contraction coefficients, thereby significantly improving the product's resistance to high and low temperature cycling.

[0018] 4. Stable dimensional and internal stress control. After lamination, the material is in a high-temperature state. Direct winding will lead to deformation and residual stress. The water-cooled roller system achieves uniform and controllable cooling through internal cooling medium, which can effectively "freeze" the formed shape, reduce warpage deformation, stabilize product dimensions, and reduce residual internal stress.

[0019] 5. By changing the unwinding material, adjusting process parameters, and replacing the main compaction roller pair, fiber-reinforced metal laminates ranging from flat sheets to various complex interface shapes can be produced, meeting the needs of different fields such as aerospace, high-end electronics, and automotive lightweighting. Through an integrated continuous production line design, combined with precise temperature and pressure control and innovative embossing technology, efficient, high-quality, highly consistent, and customizable production of fiber-reinforced metal laminates is achieved. It is particularly suitable for the manufacture of precision, ultra-thin components, possessing significant industrial application value and market prospects. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is an overall structural layout diagram of the present invention; Figure 3 This is a schematic diagram of the lamination and compaction system in this invention; Figure 4 This is a schematic diagram of the first structure of the main compaction roller for embossing in this invention; Figure 5 This is a schematic diagram of the second structure of the main compaction roller for embossing in this invention; Figure 6 This is a schematic diagram of the third structure of the main compaction roller for embossing in this invention.

[0021] Figure label: 1. Frame; 2. Unwinding system; 21. Upper unwinding roll; 22. Lower unwinding roll; 3. Preheating system; 31. Preheating roll system; 32. Preheating source; 4. Lamination and compaction system; 41. Precompacting roll system; 42. Main compaction roll pair; 5. Cooling and setting system; 51. Water-cooled roll system; 6. Rewinding system; 61. Upper rewinding roll; 62. Lower rewinding roll. Detailed Implementation

[0022] The present invention will now be further described with reference to the accompanying drawings. The following embodiments are only used to illustrate the structure of the present invention more clearly.

[0023] like Figure 1 and Figure 2 As shown, a continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin strip fiber metal laminate includes a frame 1, on which an unwinding system 2, a preheating system 3, a lamination and compaction system 4, a cooling and shaping system 5, and a winding system 6 are arranged sequentially along the material travel direction.

[0024] The unwinding system 2 includes an upper unwinding roller 21 and a lower unwinding roller 22. The roller gap between the upper unwinding roller 21 and the lower unwinding roller 22 serves as the material inlet. The upper unwinding roller 21 and the lower unwinding roller 22 enable the feeding of stainless steel ultra-thin strips or carbon fiber prepreg. Each of the upper unwinding roller 21 and the lower unwinding roller 22 includes at least one. Figure 1 With one upper unwinding roller 21 and one lower unwinding roller 22, a fiber metal layer can be produced with one layer of carbon fiber prepreg and one layer of stainless steel ultrathin strip. When multiple layers (such as sandwich structure or multi-layer alternating structure) are required, multiple sets of unwinding rollers can be arranged in parallel along the material travel direction. The position and number of unwinding rollers for carbon fiber prepreg and stainless steel ultrathin strip are allocated according to the structural design. Finally, all layers are gathered and stacked before entering the preheating system 3.

[0025] The upper unwinding roller 21 and the lower unwinding roller 22 of the unwinding system 2 are used to carry carbon fiber prepreg rolls and stainless steel ultrathin strip rolls, respectively. Under the control of the drive device, the unwinding rollers unwind the raw materials with constant tension or speed and feed them into the subsequent work station precisely and synchronously.

[0026] The preheating system 3 includes a preheating roller system 31 and preheating sources 32. Preheating sources 32 are symmetrically arranged vertically at the gaps in the preheating roller system 31. The preheating sources 32 do not contact the material; the material forms a laminated material after passing through the preheating system. The preheating source 32 can be an infrared heater or a hot air nozzle, which softens the resin in the prepreg, making it viscous and fluid, creating conditions for bonding with the metal strip. It also reduces the yield strength of the ultra-thin stainless steel strip, making it easier to plastically deform during subsequent pressing, reducing springback and internal stress. This allows the material to bond faster and better when entering the lamination and compaction system 4, reducing defects.

[0027] like Figure 3 As shown, the lamination and compaction system 4 is sequentially arranged with a pre-compacting roller system 41 and a main compacting roller pair 42 along the material travel direction. The pre-compacting roller system 41 uses smooth-surfaced heated pressure rollers, which are responsible for the initial compaction and guidance of the preheated laminated material. The main compacting roller pair 42 consists of two upper and lower heated pressure rollers. The roller surfaces of the upper and lower heated pressure rollers of the main compacting roller 42 are provided with paired concave and convex embossing to complete the pressing of the laminated material and form a high-temperature laminated material. In this system, under the combined action of heat and force, different layers of materials are firmly bonded into a whole and pressed into a preset structural shape, which is the core station of the entire equipment.

[0028] The main compaction roller pair 42 is a detachable structure, and the embossing shape on the roller surface of the main compaction roller pair 42 can be set according to requirements, such as... Figure 4 The embossing shape on the 42 roller surface of the main compaction roller shown is a corrugated shape used to form alternating peaks and troughs, such as... Figure 5 The main compaction roller shown has a trapezoidal shape with shaped trapezoidal reinforcing ribs on its 42 roller surface, as shown in the figure. Figure 6 The main compaction rollers shown have 42 roller surfaces with triangular shapes for forming triangular reinforcing ribs. By pre-setting embossing on the rollers, corrugated, trapezoidal, and triangular reinforcing rib structures are directly formed on the laminate, achieving integrated manufacturing of structure and function.

[0029] The main compaction roller pair 42 integrates a heating system that controls the roller surface temperature within the range of 300℃-450℃. Both the pre-compaction roller system 41 and the main compaction roller pair 42 are equipped with a pressurization system, providing a linear pressure of 20t-50t. The temperature and pressure of the main compaction roller pair 42 are higher than those of the pre-compaction roller system 41. Under extremely high linear pressure and precise temperature, a strong mechanical interlock and interfacial bond are formed between the resin and the metal.

[0030] The cooling and shaping system 5 includes a water-cooled roller system 51, which consists of multiple rollers internally equipped with a cooling medium. This system allows for the controlled and uniform cooling of the high-temperature laminated material, completing the shaping process. The laminated material is at a very high temperature and in a plastic state. This system, through multiple water-cooled rollers contacting the material surface, rapidly and uniformly removes heat during the material's movement, causing the thermoplastic resin to re-solidify and "freeze" the formed shape. Furthermore, it minimizes warping, twisting, and internal stress caused by temperature differences, ensuring dimensional stability of the product and facilitating winding.

[0031] The winding system 6 includes an upper winding roller 61 and a lower winding roller 62. The roller gap between the upper winding roller 61 and the lower winding roller 62 serves as the profile output port. The upper winding roller 61 and the lower winding roller 62 apply appropriate tension to the final product coming out of the cooling and shaping system 5 and wind it neatly and tightly into a large coil, achieving continuous production and facilitating storage, transportation, and subsequent cutting processing.

[0032] The unwinding system 2, preheating system 3, lamination and compaction system 4, cooling and shaping system 5, and winding system 6 all have their upper and lower parts aligned on the same center line. This design ensures that the material is consistently and smoothly conveyed along a straight line during its journey, maximizing the protection of the integrity of the fibers and metal strip. It also guarantees that pressure is applied vertically and evenly across the entire width of the material, preventing uneven shear stress that could lead to poor bonding, uneven thickness, or uneven resin distribution in the laminate.

[0033] The production process of this invention is as follows: (1) Unwinding and feeding: The upper and lower unwinding rollers start synchronously under the command of the control system, respectively unfolding the carbon fiber prepreg and the stainless steel ultrathin strip precisely and smoothly. The two are aligned at the meeting point and enter the next stage together with constant tension. (2) Online preheating: The merged multilayer material enters the preheating zone. The non-contact preheating sources set up symmetrically on the upper and lower sides simultaneously radiate or convect heat the material. This stage is the "activation" stage and no adhesion is generated. The prepreg resin softens and the stainless steel plasticity is enhanced, preparing for lamination. (3) Lamination and compaction: This step is divided into two stages and is the core of the whole process. First, the preheated material passes through the pre-compacting roller system 41 to discharge the interlayer gas, so that each layer is initially bonded and precisely guided to the main compaction zone; the material enters the pressing zone of the main compacting roller pair 42. Under high temperature and high pressure, the roller pair uses the embossed texture on its roller surface to forcefully squeeze the material. At this moment, the resin flow and curing, the interface firm bonding and macro embossing are completed in one step. (4) Cooling and molding: The high-temperature laminate with embossed structure immediately enters the water-cooled roller system 51. Through contact with the surface of the water-cooled rollers, the heat is quickly and evenly removed. This stage is the "shaping" process. The resin matrix re-solidifies, permanently fixing the shape and structure after molding and minimizing warping and internal stress. (5) Winding: The fully cooled and shaped fiber-metal laminate with stable dimensions is finally sent to the winding system 6. The upper and lower winding rollers wind it into a large roll under constant tension, producing the final product form - a large roll of structurally and functionally integrated fiber-metal laminate, which is convenient for subsequent storage, transportation and processing. This device realizes the material from roll to roll without interruption. All key processes are completed online sequentially on a production line, which greatly improves production efficiency, product consistency and automation. It is the key to realizing the large-scale industrial production of this type of advanced composite material.

[0034] In this invention, the unwinding system 2, the preheating system 3, the lamination and compaction system 4, the cooling and shaping system 5, and the winding system 6 each consist of upper and lower parts. The preheating system 3, the lamination and compaction system 4, and the cooling and shaping system 5 are each composed of multiple sets of rollers arranged in pairs. The two winding rollers of the winding system 6 are also arranged opposite to each other. This structure is a common existing technology in the processing of steel strips, etc., so it is not described in detail.

[0035] The above description is only a preferred embodiment of the present invention. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. A continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber-reinforced metal laminates, comprising a frame, characterized in that: The frame is equipped with an unwinding system, a preheating system, a laminating and compacting system, a cooling and shaping system, and a winding system, arranged sequentially along the material travel direction. The unwinding system includes an upper unwinding roller and a lower unwinding roller. The roller gap between the upper unwinding roller and the lower unwinding roller is the material inlet. The upper unwinding roller and the lower unwinding roller realize the feeding of stainless steel ultra-thin strip or carbon fiber prepreg. The preheating system includes a preheating roller system and a preheating source. The preheating source is symmetrically arranged above and below at the gap position of the preheating roller system. The preheating source does not contact the material. After the material passes through the preheating system, it forms a laminated material. The lamination and compaction system is provided with a pre-compacting roller system and a main compacting roller pair along the material travel direction. The pre-compacting roller system consists of multiple sets of heated and pressure rollers with smooth surfaces, which are responsible for the preliminary compaction and guidance of the preheated laminated material. The main compacting roller pair consists of two heated and pressure rollers, one above the other. The roller surfaces of the two heated and pressure rollers of the main compacting roller are provided with paired embossed textures to complete the pressing of the laminated material and form a high-temperature laminated material. The cooling and shaping system includes a water-cooled roller system, which consists of multiple rollers with internal cooling media, enabling the high-temperature laminated material to be cooled in a controllable and uniform manner to complete the shaping process. The winding system includes an upper winding roller and a lower winding roller, and the roller gap between the upper winding roller and the lower winding roller is the profile output port; The five systems—unwinding system, preheating system, lamination and compaction system, cooling and shaping system, and winding system—have their upper and lower parts forming the center line of the roll gap on the same center line.

2. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 1, characterized in that: The upper unwinding roller and the lower unwinding roller each include at least one.

3. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 1, characterized in that: The preheating source is an infrared heater or a hot air nozzle.

4. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 1, characterized in that: The main compaction roller pair is a detachable structure, and the embossing shape on the roller surface of the main compaction roller pair can be set as required.

5. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 4, characterized in that: The embossing shapes on the main compaction roller surface include corrugated shapes for forming alternating peaks and troughs, trapezoidal shapes for forming trapezoidal reinforcing ribs, and triangular shapes for forming triangular reinforcing ribs.

6. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 1, characterized in that: The main compaction roller has an integrated heating system that controls the roller surface temperature within the range of 300℃-450℃.

7. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 1, characterized in that: Both the pre-compacting roller system and the main compacting roller pair are equipped with a pressurization system, which provides a linear pressure of 20t-50t.

8. The continuous forming equipment for carbon fiber prepreg-stainless steel ultrathin fiber metal laminate according to claim 1, characterized in that: The temperature and pressure of the upper and lower rollers of the main compaction roller are higher than those of the rollers in the precompacting roller system.

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