Carbon fiber forming and transferring device
By designing a carbon fiber forming and transfer device including lifting components, movable plates and sliding plates, the problem of low material collection efficiency in the prior art is solved, efficient material collection and rapid storage are achieved, and overall efficiency is improved.
Patent Information
- Application Number
- CN202421971964.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-14
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-08-14
AI Technical Summary
The existing carbon fiber forming and transfer devices are less efficient during the material collection process and need to be entered into the molding tank for continuous handling, resulting in low material collection efficiency.
A carbon fiber forming transfer device including a base, step, lifting assembly, a moving plate, a sliding plate and an electric telescopic rod is designed. Through the first screw, the moving block and the sliding plate are driven horizontally to move the sliding plate, and the sliding plate pulls the placement plate from the forming tank guide plate to the moving plate outside the tank to achieve efficient material collection.
It realizes efficient material collection of workpieces, avoids continuous handling in the tank, improves material collection efficiency, and improves the storage convenience of the device by quickly storing the moving plate.
Smart Images

Figure CN223013951U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of carbon fiber forming and transferring, in particular to a carbon fiber forming and transferring device. Background Art
[0002] A carbon fiber forming tank is a device used for the forming of carbon fiber composite materials, mainly applied to the autoclave forming process. During the processing of workpieces, by putting the workpieces into the forming tank, heating, pressurizing, heat preservation and pressure maintenance, cooling, pressure reduction, and finally taking out of the tank. When sending the workpieces into the forming tank, a transfer device is needed.
[0003] The carbon fiber forming and transferring device is usually made of metal materials, with sufficient strength and stability to support and fix the carbon fiber materials. Its design usually includes two main parts: an internal shipping rack and an external shipping rack. The internal shipping rack: responsible for supporting and fixing the carbon fiber prepreg or preform, ensuring that it does not deform or shift during the heating and pressure forming process. The structure of the internal shipping rack is usually modular designed for easy replacement and maintenance. The external shipping rack: responsible for supporting and fixing the internal shipping rack, providing sufficient support and stability. The external shipping rack often has an adjustable structure to adapt to carbon fiber materials of different sizes and shapes.
[0004] During the process of taking out the workpieces from the forming tank by the existing transfer device, since it is necessary to enter the tank for material taking and continuous handling of the workpieces is required, the material taking efficiency is relatively low. Therefore, a carbon fiber forming and transferring device is proposed for the above problems. Content of the Utility Model
[0005] In order to make up for the deficiencies of the existing technology and solve the problems existing in the existing technology, the utility model proposes a carbon fiber forming and transferring device.
[0006] The technical solution adopted by the present utility model to solve its technical problems is as follows: A carbon fiber forming and transferring device described in the present utility model includes a base. A step is installed on the base. A lifting component is installed on the base, and a moving plate is installed on the lifting component. Multiple groups of first chutes are opened on the moving plate. A moving slot is opened on the moving plate. A first lead screw is rotatably installed on the inner wall of the moving slot. A first stepping motor is installed on the side wall of the moving plate through a machine base. The output shaft of the first stepping motor is fixedly connected to the first lead screw. A moving block is assembled in the moving slot. A sliding plate is installed on the moving block. A placement slot is opened inside the sliding plate. An electric telescopic rod is installed in the placement slot. A push rod is installed on the electric telescopic rod. A fixing frame is installed on the push rod. Five positioning rods are installed on the bottom side of the fixing frame. A card slot is opened in the sliding plate. A rod slot is opened on the inner wall of the card slot. The positioning rods are assembled in the rod slots. A support frame is installed on the base. A forming tank is installed on the support frame. An installation frame is installed on the inner wall of the forming tank. A guiding plate is fixedly installed on the installation frame. A second chute is opened on the guiding plate. A placement plate is placed on the guiding plate. Multiple sliding strips are installed on the bottom side of the placement plate. The sliding strips are assembled in the second chute. A connecting plate is installed on the side wall of the placement plate. Five card holes are opened in the connecting plate. The first lead screw drives the moving block to move horizontally. The moving block drives the sliding plate to move horizontally. The sliding plate moves towards the forming tank until the sliding plate is in contact with the side wall of the placement plate. The sliding plate and the placement plate are fixedly connected by a lock. The sliding plate pulls the placement plate to move from the guiding plate of the forming tank to the moving plate outside the tank. The multiple workpieces placed on the placement plate move out of the tank together with the placement plate, realizing efficient material taking of the workpieces, avoiding continuous handling of the workpieces into the tank, and being beneficial to improving the material taking efficiency.
[0007] Preferably, an assembly slot is opened inside the base. A second lead screw is rotatably installed on the inner wall of the assembly slot. A lifting tube is sleeved outside the second lead screw. Threads are opened on the inner wall of the lifting tube and cooperate with the second lead screw for sliding. The top side of the lifting tube is fixedly connected to the bottom side of the moving plate. A first bevel gear is installed on the outer wall of the second lead screw. A second stepping motor is installed on the inner wall of the assembly slot through a machine base. A second bevel gear is installed on the output shaft of the second stepping motor. The second bevel gear meshes with the first bevel gear. Two guiding slots are opened inside the base. A lifting plate is assembled in the guiding slots. The lifting plate is fixedly connected to the bottom side of the moving plate. By quickly placing the workpiece into the forming tank, then the second lead screw rotates, driving the lifting tube to move vertically downward. The lifting tube drives the moving plate to move vertically downward. At this time, the moving plate is no longer located at the tank door and will not block the tank door, which is beneficial to improving the convenience of device storage.
[0008] The beneficial effects of the present utility model are as follows:
[0009] 1. The utility model drives the moving block to move horizontally through the first lead screw. The moving block drives the sliding plate to move horizontally. The sliding plate moves towards the forming tank until the sliding plate abuts against the side wall of the placing plate. The sliding plate and the placing plate are fixedly connected through a buckle. The sliding plate pulls the placing plate to move from the guide plate of the forming tank to the moving plate outside the tank, and multiple workpieces placed on the placing plate move out of the tank together, realizing efficient material taking of the workpieces, avoiding continuous handling of the workpieces into the tank, and being beneficial to improving the material taking efficiency.
[0010] 2. The utility model quickly places the workpiece into the forming tank. Then, the second lead screw rotates, driving the lifting pipe to move vertically downward. The lifting pipe drives the moving plate to move vertically downward. At this time, the moving plate is no longer located at the tank door and will not block the tank door, which is beneficial to improving the convenience of device storage. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for description in the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0012] Figure 1 is the first perspective three-dimensional structure diagram;
[0013] Figure 2 is the three-dimensional structure diagram of the sliding plate;
[0014] Figure 3 is the three-dimensional structure diagram inside the forming tank;
[0015] Figure 4 is the three-dimensional structure diagram of the placing plate;
[0016] Figure 5 is the three-dimensional structure diagram inside the base.
[0017] In the figure: 1, base; 2, step; 3, moving plate; 4, first chute; 5, moving groove; 6, first lead screw; 7, first stepping motor; 8, moving block; 9, sliding plate; 10, placing groove; 11, electric telescopic rod; 12, push rod; 13, fixed frame; 14, positioning rod; 15, card slot; 16, rod slot; 17, support frame; 18, forming tank; 19, mounting frame; 20, guide plate; 21, second chute; 22, placing plate; 23, sliding strip; 24, connecting plate; 25, card hole; 26, assembly groove; 27, second lead screw; 28, lifting pipe; 29, first bevel gear; 30, second stepping motor; 31, second bevel gear; 32, guide groove; 33, lifting plate. Detailed implementation manners
[0018] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without making creative efforts shall fall within the protection scope of the present utility model.
[0019] Please refer to Figures 1-4As shown in the figure, a carbon fiber forming transfer device includes a base 1, on which a step 2 is installed. A lifting component is installed on the base 1, and a moving plate 3 is installed on the lifting component. Multiple groups of first chutes 4 are formed on the moving plate 3, and a moving groove 5 is formed on the moving plate 3. A first lead screw 6 is rotatably installed on the inner wall of the moving groove 5. A first stepping motor 7 is installed on the side wall of the moving plate 3 through a machine base, and the output shaft of the first stepping motor 7 is fixedly connected to the first lead screw 6. A moving block 8 is assembled in the moving groove 5, and a sliding plate 9 is installed on the moving block 8. A placement groove 10 is formed inside the sliding plate 9, and an electric telescopic rod 11 is installed in the placement groove 10. A push rod 12 is installed on the electric telescopic rod 11, and a fixing frame 13 is installed on the push rod 12. Five positioning rods 14 are installed on the bottom side of the fixing frame 13. A card slot 15 is formed in the sliding plate 9, and a rod slot 16 is formed on the inner wall of the card slot 15. The positioning rods 14 are assembled in the rod slot 16. A support frame 17 is installed on the base 1, and a forming tank 18 is installed on the support frame 17. An installation frame 19 is installed on the inner wall of the forming tank 18, and a guide plate 20 is fixedly installed on the installation frame 19. A second chute 21 is formed on the guide plate 20, and a placement plate 22 is placed on the guide plate 20. Multiple sliding bars 23 are installed on the bottom side of the placement plate 22, and the sliding bars 23 are assembled in the second chute 21. A connecting plate 24 is installed on the side wall of the placement plate 22, and five card holes 25 are formed in the connecting plate 24. During operation, in the process of taking out the workpiece from the forming tank 18 by the existing transfer device, since it is necessary to enter the tank for material taking and continuous handling of the workpiece, the material taking efficiency is relatively low. After the blank is completed, it is placed in the forming tank 18. After heating, pressurizing, heat preservation and pressure holding, cooling, and pressure reduction, finally, the tank is opened. After opening the tank door of the forming tank 18, the lifting component drives the moving plate 3 to move vertically upward. At this time, the height of the moving plate 3 is the same as the height of the guide plate 20, and the first chute 4 on the moving plate 3 and the second chute 21 on the guide plate 20 are in alignment. By operating the first stepping motor 7, the first lead screw 6 driven by it rotates. The first lead screw 6 drives the moving block 8 to move horizontally. The moving block 8 drives the sliding plate 9 to move horizontally. The sliding plate 9 moves towards the forming tank 18 until the sliding plate 9 is in contact with the side wall of the placement plate 22. The connecting plate 24 on the side wall of the placement plate 22 is inserted into the card slot 15 of the sliding plate 9. Then the electric telescopic rod 11 operates, and the push rod 12 on it moves vertically downward. The push rod 12 drives the fixing frame 13 to move vertically downward. The fixing frame 13 drives the five positioning rods 14 to move vertically downward. The positioning rods 14 pass through the card holes 25 of the connecting plate 24, locking the connecting plate 24 and the sliding plate 9 together, realizing the fixed connection between the sliding plate 9 and the placement plate 22;
[0020] After the sliding plate 9 is fixedly connected to the placement plate 22, the first stepping motor 7 operates to drive the first lead screw 6 thereon to rotate in the reverse direction. The first lead screw 6 drives the moving block 8 to move horizontally, and the moving block 8 drives the sliding plate 9 to move horizontally. The sliding plate 9 moves away from the forming tank 18, and the sliding plate 9 pulls the placement plate 22 to move on the moving plate 3. After that, the placement plate 22 moves onto the moving plate 3, and the placement plate 22 continues to move on the moving plate 3. The sliding strip 23 on the bottom side of the placement plate 22 continuously slides on the first chute 4 and the second chute 21, realizing the stable sliding of the placement plate 22. The sliding plate 9 pulls the placement plate 22 to move from the guide plate 20 of the forming tank 18 to the moving plate 3 outside the tank, and the multiple workpieces placed on the placement plate 22 move outside the tank together, realizing the efficient material taking of the workpieces, avoiding continuous handling of the workpieces into the tank, and being beneficial to improving the material taking efficiency.
[0021] Please refer to Figure 5 As shown in the figure, an assembly groove 26 is formed inside the base 1. A second lead screw 27 is rotatably installed on the inner wall of the assembly groove 26. A lifting tube 28 is sleeved around the second lead screw 27. Threads are formed on the inner wall of the lifting tube 28 and the lifting tube 28 is slidably engaged with the second lead screw 27 through the threads. The top side of the lifting tube 28 is fixedly connected to the bottom side of the moving plate 3. A first bevel gear 29 is installed on the outer wall of the second lead screw 27. A second stepping motor 30 is installed on the inner wall of the assembly groove 26 through a machine base. A second bevel gear 31 is installed on the output shaft of the second stepping motor 30. The second bevel gear 31 meshes with the first bevel gear 29. Two guide grooves 32 are formed inside the base 1. A lifting plate 33 is assembled in the guide grooves 32. The lifting plate 33 is fixedly connected to the bottom side of the moving plate 3. During operation, after the existing transfer device finishes loading the workpieces, the device placed at the tank door is likely to affect the closing of the door. Since it cannot be quickly stored, the storage convenience of the device is poor. By placing all the workpieces to be formed on the placement plate 22, then the sliding plate 9 pulls the placement plate 22 to move from the moving plate 3 to the guide plate 20 inside the tank. After that, the sliding plate 9 and the placement plate 22 are unlocked, and the sliding plate 9 moves back onto the moving plate 3, realizing the quick loading of the workpieces and realizing the quick placement of the workpieces into the forming tank 18. After that, the second stepping motor 30 operates to drive the second bevel gear 31 to rotate. The second bevel gear 31 drives the first bevel gear 29 to rotate. The first bevel gear 29 drives the second lead screw 27 to rotate. The second lead screw 27 drives the lifting tube 28 thereon to move vertically downward through the threads. The lifting tube 28 drives the moving plate 3 to move vertically downward. The two lifting plates 33 on the bottom side of the moving plate 3 stably slide in the guide grooves 32. The moving plate 3 moves vertically downward and the moving plate 3 moves onto the base 1. The height of the moving plate 3 decreases. At this time, the moving plate 3 is no longer located at the tank door and will not block the tank door. The forming tank 18 can quickly close the tank door. This structure quickly stores the moving plate 3, avoids affecting the closing of the forming tank 18 door, and is beneficial to improving the storage convenience of the device.
[0022] Working principle: During the process of removing the workpiece from the forming tank 18, the existing transfer device needs to enter the tank for material extraction and continuously transport the workpiece, resulting in low material extraction efficiency. After the blank is completed, it is placed in the forming tank 18. After heating, pressurizing, heat preservation and pressure holding, cooling, and pressure reduction, and finally opening the tank, after opening the tank door of the forming tank 18, the lifting assembly drives the moving plate 3 to move vertically upward. At this time, the height of the moving plate 3 is the same as that of the guide plate 20, and the first chute 4 on the moving plate 3 and the second chute 21 on the guide plate 20 are aligned. By operating the first stepping motor 7, the first lead screw 6 thereon is driven to rotate. The first lead screw 6 drives the moving block 8 to move horizontally. The moving block 8 drives the sliding plate 9 to move horizontally. The sliding plate 9 moves towards the forming tank 18 until the sliding plate 9 abuts against the side wall of the placement plate 22. The connecting plate 24 on the side wall of the placement plate 22 is snapped into the card slot 15 of the sliding plate 9. Then, the electric telescopic rod 11 operates, and the push rod 12 thereon moves vertically downward. The push rod 12 drives the fixing frame 13 to move vertically downward. The fixing frame 13 drives the five positioning rods 14 to move vertically downward. The positioning rods 14 pass through the card holes 25 of the connecting plate 24, locking the connecting plate 24 and the sliding plate 9 together, realizing the fixed connection between the sliding plate 9 and the placement plate 22. After the sliding plate 9 is fixedly connected to the placement plate 22, by operating the first stepping motor 7, the first lead screw 6 thereon is driven to rotate in the reverse direction. The first lead screw 6 drives the moving block 8 to move horizontally. The moving block 8 drives the sliding plate 9 to move horizontally. The sliding plate 9 moves away from the forming tank 18. The sliding plate 9 pulls the placement plate 22 to move on the moving plate 3. Then, the placement plate 22 moves onto the moving plate 3. The placement plate 22 continues to move on the moving plate 3. The sliding strip 23 on the bottom side of the placement plate 22 continuously slides on the first chute 4 and the second chute 21, realizing the stable sliding of the placement plate 22. The sliding plate 9 pulls the placement plate 22 to move from the guide plate 20 of the forming tank 18 to the moving plate 3 outside the tank, and the multiple workpieces placed on the placement plate 22 move out of the tank together with the placement plate 22, realizing the efficient material extraction of the workpiece, avoiding entering the tank to continuously transport the workpiece, and being beneficial to improving the material extraction efficiency. After the existing transfer device finishes loading the workpiece, placing the device at the tank door is likely to affect the closing of the door. Since it cannot be quickly stored, the storage convenience of the device is poor. By placing all the workpieces to be formed on the placement plate 22, then the sliding plate 9 pulls the placement plate 22 to move from the moving plate 3 to the guide plate 20 inside the tank. Then, the sliding plate 9 is unlocked from the placement plate 22, and the sliding plate 9 moves back to the moving plate 3, realizing the quick loading of the workpiece and realizing the quick placement of the workpiece into the forming tank 18;After that, the second stepping motor 30 operates to drive the second bevel gear 31 to rotate. The second bevel gear 31 pushes the first bevel gear 29 to rotate. The first bevel gear 29 drives the second lead screw 27 to rotate. The second lead screw 27 drives the lifting tube 28 thereon to move vertically downward through the thread. The lifting tube 28 drives the moving plate 3 to move vertically downward. The two sets of lifting plates 33 on the bottom side of the moving plate 3 slide stably in the guide groove 32. The moving plate 3 moves vertically downward and moves onto the base 1. The height of the moving plate 3 decreases. At this time, the moving plate 3 is no longer located at the tank door and will not block the tank door. The formed tank 18 can quickly pass through the tank door. This structure quickly stores the moving plate 3, avoiding affecting the closing of the formed tank 18 and facilitating the storage of the device.
[0023] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements fall within the scope of the present invention claimed.
Claims
1. A carbon fiber forming transfer device, characterized in that: The invention comprises a base (1), a step (2) is installed on the base (1), a lifting assembly is installed on the base (1), a movable plate (3) is installed on the lifting assembly, a plurality of first sliding grooves (4) are provided on the movable plate (3), a movable groove (5) is provided on the movable plate (3), a first screw rod (6) is rotatably installed on the inner wall of the movable groove (5), a first stepper motor (7) is installed on the side wall of the movable plate (3) through a machine base, an output shaft of the first stepper motor (7) is fixedly connected to the first screw rod (6), and a movable block is installed in the movable groove (5). (8), a sliding plate (9) is installed on the moving block (8), a placement groove (10) is provided inside the sliding plate (9), an electric telescopic rod (11) is installed in the placement groove (10), a push rod (12) is installed on the electric telescopic rod (11), a fixed frame (13) is installed on the push rod (12), five groups of positioning rods (14) are installed on the bottom side of the fixed frame (13), a card slot (15) is provided in the sliding plate (9), a rod slot (16) is provided on the inner wall of the card slot (15), and the positioning rod (14) is assembled in the rod slot (16).
2. A carbon fiber forming transfer device according to claim 1, characterized in that: A support frame (17) is installed on the base (1), a molding tank (18) is installed on the support frame (17), and a mounting frame (19) is installed on the inner wall of the molding tank (18).
3. A carbon fiber forming transfer device according to claim 2, characterized in that: A guide plate (20) is fixedly mounted on the mounting frame (19), and a second sliding groove (21) is provided on the guide plate (20).
4. A carbon fiber forming transfer device according to claim 3, characterized in that: A placement plate (22) is placed on the guide plate (20), and a plurality of sets of sliding bars (23) are installed on the bottom side of the placement plate (22), and the sliding bars (23) are assembled in the second sliding groove (21).
5. A carbon fiber forming transfer device according to claim 4, characterized in that: A connecting plate (24) is installed on the side wall of the placement plate (22), and five groups of clamping holes (25) are opened in the connecting plate (24).
6. A carbon fiber forming transfer device according to claim 1, characterized in that: The base (1) is provided with an assembly groove (26) inside, and a second screw rod (27) is rotatably mounted on the inner wall of the assembly groove (26). A lifting tube (28) is sleeved on the outer periphery of the second screw rod (27). A thread is provided on the inner wall of the lifting tube (28) and the lifting tube slides with the second screw rod (27) through the thread. The top side of the lifting tube (28) is fixedly connected to the bottom side of the movable plate (3). A first bevel gear (29) is mounted on the outer wall of the second screw rod (27). A second stepping motor (30) is mounted on the inner wall of the assembly groove (26) through a machine base. A second bevel gear (31) is mounted on the output shaft of the second stepping motor (30). The second bevel gear (31) and the first bevel gear (29) are meshed with each other. Two sets of guide grooves (32) are provided inside the base (1). A lifting plate (33) is mounted in the guide groove (32). The lifting plate (33) is fixedly connected to the bottom side of the movable plate (3).