High-performance carbon fiber reinforced structure laid through rolling
The rolling and laying technology combining separating rollers and heating elements solves the problem of unstable bonding of carbon fiber sheets, enabling rapid and stable bonding and crack repair of carbon fiber sheets, and improving the durability and load-bearing capacity of components.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI HUILI BUILDING STRUCTURE REINFORCEMENT ENG
- Filing Date
- 2025-03-27
- Publication Date
- 2026-04-10
AI Technical Summary
In existing carbon fiber reinforcement technologies, carbon fiber plates are difficult to adhere stably to building surfaces, resulting in insufficient strength and failure to repair and heal cracks, which affects the durability and load-bearing capacity of components.
By employing a combination of a separating roller structure and heating elements, the carbon fiber board adhesive is stably exposed and heated through roller laying. Combined with the automatic bonding of lifting components and extrusion rollers, the stable adhesion between the carbon fiber board and the building surface is ensured.
It improves the processing and bonding stability of carbon fiber sheets, reduces the workload of workers, and enables rapid and stable bonding of carbon fiber sheets, repairing and suppressing cracks in building components.
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Figure CN224106960U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to carbon fiber reinforcing technical field especially through rolling laying's high performance carbon fiber reinforcing structure. BACKGROUND
[0002] Carbon fiber reinforcing refers to adopting high performance adhesive to paste carbon fiber cloth / strip on the surface of building structure component, makes both work together, improves the bearing capacity of structure component, reaches the purpose of reinforcing and reinforcing building. Generally, carbon fiber reinforcing does not exert prestress, although it can improve the bearing capacity of component, but it cannot repair and heal the crack of component, and the strength of carbon fiber cloth / strip cannot be fully exerted, resulting in strength waste. After exerting prestress on carbon fiber during carbon fiber reinforcing process, carbon fiber has exerted considerable strength before component bears load, which greatly improves the utilization rate of high strength of carbon fiber, and inhibits and even repairs the deformation and cracking of component.
[0003] The Chinese patent with publication number CN216239889U discloses a novel high-performance carbon fiber reinforcing structure laid by rolling, comprising a beam and a column, a support wheel locking device, a guide wheel locking device and a force applying wheel locking device are arranged on the beam, the support wheel locking device, the guide wheel locking device and the force applying wheel locking device correspondingly have a support wheel, a guide wheel and a force applying wheel, the support wheel, the guide wheel and the force applying wheel constitute a related performance wheel, and a clamp is arranged on the outer side of the related performance wheel. After reinforcing the existing beam body, the existing cracks in the beam body can be repaired and healed, thereby solving the problem that the existing carbon fiber reinforcing usually does not exert prestress, when the reinforced existing component has cracks, the ordinary carbon fiber without exerting prestress can improve the bearing capacity of the component, but it cannot repair and heal the cracks, and the existence of cracks will affect the durability and bearing capacity of the component.
[0004] However, the above-mentioned disclosed scheme has the following disadvantages: the above-mentioned scheme realizes the effect of reinforcing the building by pasting the carbon fiber plate on the outer surface of the building, but the above-mentioned device is not convenient for pasting the carbon fiber plate on the outer surface of the building during use, which increases the pasting difficulty. SUMMARY
[0005] This section aims to outline some aspects of the embodiments of the utility model and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract of the specification and the utility model name to avoid obscuring the purpose of this section, the abstract of the specification and the utility model name, and such simplifications or omissions cannot be used to limit the scope of the utility model.
[0006] The utility model discloses a high -performance carbon fiber reinforcing structure of rolling laying is provided for the technical problem of prior art, the utility model discloses a device can effectively improve the processing of carbon fiber plate and the stability of laminating, and then realizes the quick processing effect of the device, and the device has the separation roller structure and can ensure the stable adhesion of carbon fiber plate.
[0007] The utility model discloses a high -performance carbon fiber reinforcing structure of rolling laying, including base and its bottom is connected with a plurality of ground peg, base top is connected with elevating parts, and elevating parts are connected with feeding parts, and elevating parts one side is connected with extrusion parts.
[0008] Through adopting the above technical scheme, the base and the ground peg can be combined to facilitate the fixing of the device in an outdoor environment, prevent the device from tilting, and the elevating parts can be used to realize the effect of automatic uniform speed lifting and sliding, so that the automatic laminating effect of the device is realized, and the working strength of the staff is reduced.
[0009] Preferably, the elevating parts include a motor bracket connected with the base, a rotating motor connected with the motor bracket, a driving bevel gear connected with the output end of the rotating motor, and a driven bevel gear meshingly connected with the driving bevel gear.
[0010] Through the above technical scheme, the driving bevel gear can effectively improve the rotation transmission stability of the device, and the combination of the threaded rod and the bevel gear can realize the rotation transmission stability of the threaded rod driven by the motor of the device.
[0011] Preferably, the base top is connected with a sliding rod, the base top is rotatably connected with a threaded rod, the outer arc surface of the threaded rod is connected with the driven bevel gear, the sliding rod is slidably connected with a lifting piece, the lifting piece is threadedly connected with the threaded rod, and the top of the threaded rod is rotatably connected with a lifting blocking piece.
[0012] Through the above technical scheme, the structure of the lifting blocking piece can prevent the device from excessive lifting.
[0013] Preferably, the feeding parts include an electric telescopic rod connected with the bottom of the lifting piece, a transmission piece connected with the telescopic end of the electric telescopic rod, a sliding plate connected with one end of the transmission piece, the sliding plate slidably connected with the lifting piece, a rotating bracket connected with the sliding plate, a raw material roller rotatably connected with the rotating bracket, a connecting bracket rotatably connected with the outer side surface of the rotating bracket, and a separation roller rotatably connected with the connecting bracket.
[0014] Through the above technical scheme, the combination of the separation roller and the raw material roller can remove the wrapping on the surface of the carbon fiber plate during the discharging process, so that the carbon fiber plate back glue is exposed, and the laminating stability is ensured.
[0015] Preferably, the lifting piece is provided with a sliding through slot on the side, the top of the lifting piece is provided with a limiting groove, the top of the lifting piece is vertically provided with a heating groove, the sliding plate is connected with a connecting rod, the other end of the connecting rod is connected with a heating piece, the heating piece is located above the heating groove, the heating groove is in communication with the limiting groove, and the heating piece is in sliding connection with the top of the lifting piece.
[0016] By adopting the technical scheme, the structure that the heating piece faces the limiting groove can heat the back glue surface of the carbon fiber plate to melt the back glue and improve the viscosity.
[0017] Preferably, the extrusion component comprises an extrusion sliding support connected with the side of the lifting piece, the extrusion sliding support is provided with a connecting column in sliding connection with the inner wall of the sliding through slot, the other end of the connecting column is connected with the sliding plate, the extrusion sliding support is connected with a rotating extrusion support, the outer side of the rotating extrusion support is connected with a spring support, the side of the spring support is connected with a spring, the other end of the spring is connected with a sliding piece, and the sliding piece is rotatably connected with a rotating shaft.
[0018] By adopting the technical scheme, the rotating shaft can improve the sliding stability of the extrusion roller, so that the extrusion roller is fully in contact with the wall surface for extrusion, and the stable fitting processing of the device is ensured.
[0019] Preferably, the rotating extrusion support is provided with a transmission groove, the inner wall of the transmission groove is in sliding connection with the rotating shaft, and the rotating shaft is rotatably connected with an extrusion roller.
[0020] By adopting the technical scheme, the extrusion roller can realize the automatic fitting effect, and the structure of the spring and the sliding piece enables the extrusion roller to automatically fit the side surface of the wall.
[0021] In summary, the utility model discloses at least one beneficial effect as follows:
[0022] The device realizes the automatic fitting processing effect of the carbon fiber plate by automatic lifting and sliding and the elastic sliding mode of the extrusion roller, and compared with the traditional device, the device can reduce the working strength of the staff. BRIEF DESCRIPTION OF DRAWINGS
[0023] In order to more clearly illustrate the technical scheme of the embodiments of the utility model, the following will briefly introduce the drawings needed to be used in the embodiment description, and obviously, the drawings in the following description are only some embodiments of the utility model, and for those skilled in the art, other drawings can also be obtained according to these drawings without paying creative labor.
[0024] Fig. 1As an embodiment of the utility model discloses a high -performance carbon fiber reinforcing structure through rolling laying's front view,
[0025] Fig. 2 As an embodiment of the utility model discloses a high -performance carbon fiber reinforcing structure through rolling laying's front view,
[0026] Fig. 3 As an embodiment of the utility model discloses a high -performance carbon fiber reinforcing structure through rolling laying's front view,
[0027] Reference Signs: 1, base, 2, ground nail, 3, lifting component, 301, motor support,
[0028] 302, rotating motor, 303, driving bevel gear, 304, driven bevel gear, 305, threaded rod,
[0029] 306, sliding rod, 307, lifting piece, 308, lifting blocking piece, 4, feeding component, 401,
[0030] motor telescopic rod, 402, transmission piece, 403, sliding plate, 404, rotating support, 405, original
[0031] material roller, 406, connecting support, 407, separating roller, 408, connecting rod, 409, heating piece,
[0032] 410, sliding through slot, 411, limit recess, 412, heating recess, 5, extruding component, 501,
[0033] extruding sliding support, 502, rotating extruding support, 503, spring support, 504, spring,
[0034] 505, sliding piece, 506, rotating shaft, 507, transmission recess, 508, extruding roller. DETAILED DESCRIPTION
[0035] The following will be combined with the Figs. 1-3 The utility model discloses further detailedly.
[0036] Embodiment one
[0037] As Figs. 1-3 shown, in order to be able to solve the present problem, the utility model discloses a kind of high-performance carbon fiber reinforcing structure through rolling laying, including base 1 and its bottom is connected with several ground nails 2, base 1 top is connected with lifting component 3, lifting component 3 is connected with feeding component 4, lifting component 3 another side is connected with extruding component 5.
[0038] The lifting component 3 comprises a motor support 301 connected with the base 1, a rotating motor 302 connected with the motor support 301, a driving bevel gear 303 connected with the output end of the rotating motor 302, and a driven bevel gear 304 connected with the driving bevel gear 303.
[0039] The base 1 is connected with a sliding rod 306 at the top, and a threaded rod 305 is rotatably connected with the base 1 at the top, the outer arc surface of the threaded rod 305 is connected with the driven bevel gear 304, the sliding rod 306 is slidably connected with a lifting piece 307, the lifting piece 307 is threadedly connected with the threaded rod 305, and a lifting blocking piece 308 is rotatably connected with the top of the threaded rod 305.
[0040] The feeding component 4 comprises an electric telescopic rod 401 connected with the bottom of the lifting piece 307, a transmission piece 402 connected with the telescopic end of the electric telescopic rod 401, a sliding plate 403 connected with one end of the transmission piece 402, the sliding plate 403 being slidably connected with the lifting piece 307, a rotating support 404 connected with the sliding plate 403, a raw material roller 405 rotatably connected with the rotating support 404, a connecting support 406 rotatably and dampingly connected with the outer side of the rotating support 404, and a separating roller 407 rotatably connected with the connecting support 406.
[0041] The lifting piece 307 is provided with a sliding groove 410 penetrating through the side surface, the lifting piece 307 is provided with a limiting groove 411 penetrating through the top side surface, a heating groove 412 is vertically arranged on the top of the lifting piece 307, a connecting rod 408 is connected with the sliding plate 403, a heating piece 409 is connected with the other end of the connecting rod 408, the heating piece 409 is located directly above the heating groove 412, the heating groove 412 is through-connected with the inside of the limiting groove 411, and the heating piece 409 is slidably connected with the top of the lifting piece 307.
[0042] The specific working principle is that the use stability of the carbon fiber plate is realized by the device, the device is fixedly installed in an outdoor environment through the combination of the base 1 and the ground nail 2 when the device is used, the rotating stability of the threaded rod 305 is realized through the starting of the rotating motor 302 to drive the bevel gear combination, the lifting piece 307 is driven by the threaded rod 305 to slide up and down, and the lifting transmission stability of the device is realized through the sliding of the sliding rod 306 and the lifting piece 307.
[0043] During the lifting and sliding of the lifting piece 307, the raw material roller 405 is rotated to output the carbon fiber plate outward, the limiting groove 411 limits the output of the carbon fiber plate, and the protective film attached to the back surface of the carbon fiber plate is removed when the carbon fiber plate passes through the separating roller 407, so that the back adhesive is exposed, facilitating subsequent adhesion and bonding, the heating piece 409 is arranged in the heating groove 412 to heat the back adhesive to improve its adhesion, and the carbon fiber plate back adhesive is in elastic contact with the wall surface under the elastic extrusion of the extrusion roller 508, so that the adhesion effect of the device is realized.
[0044] Embodiment two
[0045] As Figs. 1-3 shown, in order to solve the existing problems, based on the same idea as in the above embodiment one, the high-performance carbon fiber reinforcing structure laid by rolling further comprises: the extrusion component 5 comprises an extrusion sliding support 501 connected to the side of the lifting piece 307, the extrusion sliding support 501 is provided with a connecting column which is in sliding connection with the inner wall of the sliding channel 410, and the other end of the connecting column is connected with the sliding plate 403, the extrusion sliding support 501 is connected with a rotating extrusion support 502, the outer side of the rotating extrusion support 502 is connected with a spring support 503, the side of the spring support 503 is connected with a spring 504, the other end of the spring 504 is connected with a sliding piece 505, and the sliding piece 505 is rotatably connected with a rotating shaft 506.
[0046] The rotating extrusion support 502 is provided with a transmission groove 507, the inner wall of the transmission groove 507 is in sliding connection with the rotating shaft 506, and the rotating shaft 506 is rotatably connected with an extrusion roller 508.
[0047] The specific working principle is: the device can effectively improve the adhesion efficiency and accuracy of the carbon fiber plate, and compared with the manual adhesion processing method, the device can remove the wrapping film of the back adhesive of the carbon fiber plate before adhesion, so as to ensure the adhesion stability of the carbon fiber plate.
[0048] The above are preferred embodiments of the present application, which do not limit the protection scope of the present application, therefore: any equivalent changes made on the structure, shape and principle of the present application should be covered within the protection scope of the present application.
Claims
1. A high-performance carbon fiber reinforced structure laid by rolling, comprising a base (1) and a plurality of ground nails (2) connected to the bottom of the base, characterized in that, The base (1) top is connected with lifting component (3), lifting component (3) is connected with feeding component (4), lifting component (3) other side is connected with extrusion component (5);Wherein, feeding component (4) includes electric telescopic rod (401), electric telescopic rod (401) telescopic end is connected with transmission part (402), transmission part (402) one end is connected with sliding plate (403), sliding plate (403) is connected with rotating support (404), rotating support (404) is rotatably connected with raw material roller (405), rotating support (404) outside surface is rotatably damped and connected with connecting support (406), connecting support (406) is rotatably connected with separation roller (407).
2. A high performance carbon fibre reinforced structure laid by rolling according to claim 1, characterised in that, The lifting component (3) includes a motor bracket (301) connected to the base (1), the motor bracket (301) is connected with a rotating motor (302), the output end of the rotating motor (302) is connected with a driving bevel gear (303), the driving bevel gear (303) is connected with a driven bevel gear (304).
3. A high performance carbon fibre reinforced structure laid by rolling according to claim 2, characterised in that, The base (1) top is connected with sliding rod (306), base (1) top rotatably connected with threaded rod (305), threaded rod (305) outer arc surface is connected with the driven bevel gear (304), the sliding rod (306) is slidably connected with a lifting member (307), the lifting member (307) is threadedly connected with the threaded rod (305), and the threaded rod (305) top is rotatably connected with a lifting blocking member (308).
4. A high performance carbon fibre reinforced structure laid by rolling according to claim 3, wherein, The lifting member (307) side is provided with a sliding groove (410), the lifting member (307) top side is provided with a through limiting groove (411), and the lifting member (307) top is vertically provided with a heating groove (412). The sliding plate (403) is connected with a connecting rod (408), one end of the connecting rod (408) is connected with a heating element (409), the heating element (409) is located above the heating groove (412), the heating groove (412) and the limiting groove (411) are through, the heating element (409) is slidably connected with the lifting member (307), and the sliding plate (403) is slidably connected with the lifting member (307).
5. A high performance carbon fibre reinforced structure laid by rolling according to claim 4, characterised in that, The extrusion component (5) includes an extrusion sliding support (501) connected to the side of the lifting member (307), the extrusion sliding support (501) is provided with a connecting column, the connecting column is slidably connected with the inner wall of the sliding groove (410), the other end of the connecting column is connected with the sliding plate (403), the extrusion sliding support (501) is connected with a rotating extrusion support (502), the rotating extrusion support (502) is connected with a spring support (503) on the outer side, the spring support (503) is connected with a spring (504) on the side, the other end of the spring (504) is connected with a sliding element (505), and the sliding element (505) is rotatably connected with a rotating shaft (506).
6. A high performance carbon fibre reinforced structure laid by rolling according to claim 5, wherein, The rotating extrusion support (502) is provided with a transmission groove (507), and the inner wall of the transmission groove (507) is slidably connected with the rotating shaft (506). The rotating shaft (506) is rotatably connected with an extrusion roller (508).
Citation Information
Patent Citations
Novel high-performance carbon fiber reinforced structure laid through rolling
CN216239889U