Carbonization shape-righting tool for carbon-carbon plates
By designing a carbonization straightening fixture for carbon-carbon sheets, and utilizing a sliding support rod and graphite pressure plate structure, the problem of bending and deformation of carbon-carbon sheets during the carbonization process was solved. This enabled the simultaneous carbonization and extrusion fixing of multiple sets of carbon sheets, thereby improving the carbonization quality.
Patent Information
- Application Number
- CN202520384597.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-06
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-03-06
AI Technical Summary
Carbon-carbon sheets are prone to bending and deformation during the carbonization process, and it is impossible to carbonize a large number of sheets at the same time.
A carbonization straightening fixture was designed, comprising a sliding support rod, a sliding rod, a graphite pressure plate, and a connecting rod structure. By pushing and pulling the sliding support rod to change the spacing of the graphite pressure plate, the carbon plate material is squeezed and fixed, avoiding deformation, and multiple sets of carbon plates can be processed simultaneously.
It effectively avoids deformation of carbon plates during the carbonization process, facilitates worker handling and carbonization of multiple sets of carbon plates, and improves carbonization quality.
Smart Images

Figure CN223671835U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to carbonization orthopaedic device technical field especially relates to a kind of carbon carbon plate carbonization orthopaedic tool. BACKGROUND
[0002] Carbon carbon plate, namely carbon fiber composite material plate, is a kind of high-performance material, mainly by carbon fiber and resin are compounded by specific process. Carbon fiber has very high strength and modulus, and resin plays the role of bonding and fixing carbon fiber. This material has excellent properties such as light weight, high strength, corrosion resistance, and is widely used in aerospace, automobile manufacturing and sports equipment fields.
[0003] Carbon carbon plate is usually placed on the bearing plate layer by layer during carbonization, and is pushed into the sintering furnace, and carbonization is carried out in high-pressure and high-temperature environment. However, during carbonization, the plate material is often bent and deformed, and a large number of plate materials cannot be carbonized at the same time. Therefore, the utility model is proposed. UTILITY MODEL CONTENT
[0004] The technical problem to be solved by the utility model is to overcome the shortcomings of the prior art, and to provide a carbon carbon plate carbonization orthopaedic tool that can overcome the above problems or at least partially solve the above problems.
[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0006] A carbon carbon plate carbonization orthopaedic tool, comprising a sintering box and a carbon plate material, further comprising: a sliding support rod slidingly connected in the sintering box, a plurality of sliding rods slidingly connected on the sliding support rod; a graphite pressing plate for bearing and extruding the carbon plate material; a third sliding groove is formed on the graphite pressing plate, the sliding rod is slidingly connected in the third sliding groove, a connecting rod is rotatably connected on the sliding rod, every two connecting rods are distributed in a cross shape, and a latch is rotatably connected at the intersection of every two connecting rods; when the sliding support rod away from the side of the sintering box door panel is pushed, the graphite pressing plate is pushed out and the distance between the graphite pressing plates is increased, and when the sliding support rod away from the side of the sintering box door panel is pulled, the graphite pressing plate is pulled into the sintering box and the distance between the graphite pressing plates is reduced.
[0007] Preferably, the top plate and the bottom plate of the sintering box are provided with first sliding grooves and second sliding grooves, and the sliding support rods at both ends are slidingly connected in the first sliding grooves and the second sliding grooves.
[0008] Preferably, a pull rod is fixedly connected on the sliding support rod away from the sintering box door panel, a telescopic air cylinder is fixedly connected in the sintering box, and the output end of the telescopic air cylinder is fixedly connected with the pull rod.
[0009] Preferably, the graphite pressing plate is fixedly connected with a limiting baffle, and a clamping groove is formed in the graphite pressing plate below the limiting baffle.
[0010] Further, the graphite pressing plate is rotatably connected with a rotating push plate, and the rotating push plate is fixedly connected with a push plate.
[0011] Further, the rotating push plate is higher than the push plate, and a limiting platform is formed in the graphite pressing plate to receive the rotating push plate when the rotating push plate is overturned.
[0012] Further, a buffer block is fixedly connected to the sliding rod near the sintering box door plate, and when the sliding rod and the buffer block move towards the sintering box door plate, the buffer block pushes the push plate and the rotating push plate to overturn.
[0013] Preferably, a limiting sliding plate is fixedly connected to the sliding support rod near the sintering box door plate to limit the farthest distance of the sliding support rod.
[0014] Compared with the prior art, the carbon carbon plate carbonization shaping tool has the following beneficial effects:
[0015] 1. The carbon carbon plate carbonization shaping tool can change the distance between the graphite pressing plates while driving the graphite pressing plates in and out of the sintering box, which not only facilitates workers to carry the carbon plate materials, but also can extrude the carbon plate materials to avoid deformation during carbonization.
[0016] 2. The carbon carbon plate carbonization shaping tool can carbonize more carbon plate materials and divide the carbon plate materials into multiple groups for carbonization, thereby improving the carbonization quality.
[0017] 3. The carbon carbon plate carbonization shaping tool can extrude and align the carbon plate materials to avoid misalignment between the carbon plate materials during carbonization.
[0018] The device not involved in the present application can be the same as or realized by the prior art, and the carbon carbon plate carbonization shaping tool can carbonize multiple groups of carbon plate materials at the same time, facilitates workers to carry the carbon plate materials, and can extrude the carbon plate materials to avoid deformation during carbonization. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 A structure schematic view of a carbon carbon plate material carbonization shaping tool is provided in the utility model.
[0020] Figure 2 A structure schematic view of the inside of a carbon carbon plate material carbonization shaping tool is provided in the utility model.
[0021] Figure 3 A carbon carbon plate material carbonization shaping tool is provided in the utility model. Figure 2 A structure schematic view of the enlarged A part in the carbon carbon plate material carbonization shaping tool is provided in the utility model.
[0022] Figure 4 A structure schematic view of the sliding support rod in the carbon carbon plate material carbonization shaping tool is provided in the utility model.
[0023] Figure 5 A structure schematic view of the graphite pressing plate in the carbon carbon plate material carbonization shaping tool is provided in the utility model.
[0024] Figure 6 A bottom structure schematic view of the graphite pressing plate in the carbon carbon plate material carbonization shaping tool is provided in the utility model.
[0025] In the figure: 1, sintering box; 11, first sliding groove; 12, second sliding groove; 2, telescopic air cylinder; 21, pull rod; 3, graphite pressing plate; 31, sliding support rod; 32, third sliding groove; 33, limiting sliding plate; 34, connecting rod; 341, bolt; 35, sliding rod; 36, buffer block; 37, limiting baffle; 38, clamping groove; 39, through hole; 4, carbon plate material; 41, rotating push plate; 42, push plate; 43, limiting platform. DETAILED DESCRIPTION
[0026] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments.
[0027] In the description of the utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the utility model and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the utility model.
[0028] Embodiment 1: refer to Figures 1-6The utility model discloses a carbon carbon plate material carbonization orthopedic frock, including sintering box 1 and carbon plate material 4, still include: the sliding connection of sliding support 31 in sintering box 1, the sliding connection of multiple sliding rods 35 on sliding support 31, graphite pressing plate 3 is used to bear extruding carbon plate material 4, the third sliding groove 32 of graphite pressing plate 3 is seted up, and sliding rod 35 is slidably connected on third sliding groove 32, and the connecting rod 34 of rotating connection is connected on sliding rod 35, and every two connecting rods 34 are cross distribution, and the cross of every two connecting rods 34 is rotatably connected with the bolt 341, when the sliding support 31 of door panel one side away from sintering box 1 is pushed, graphite pressing plate 3 is pushed out and the interval between graphite pressing plate 3 is larger, when the sliding support 31 of door panel one side away from sintering box 1 is pulled, graphite pressing plate 3 is pulled into sintering box 1 inside and the interval between graphite pressing plate 3 is reduced.
[0029] In the utility model, sintering box 1 as prior art, can provide the temperature and inert gas environment of carbon plate material 4 carbonization, and the difference with prior art is that when carbonization is completed, sliding support 31 of door panel one side away from sintering box 1 is pushed, then will drive graphite pressing plate 3 and carbon plate material 4 to slide to outside, when sliding to the farthest distance, the sliding support 31 of door panel one side close to sintering box 1 is limited, and the sliding support 31 of other end will push sliding rod 35 to slide in third sliding groove 32, thereby the interval between two sliding supports 31 is shortened, thereby make connecting rod 34 rotate and lift graphite pressing plate 3, make the interval between graphite pressing plate 3 larger, facilitate worker to take out carbon plate material 4 from graphite pressing plate 3, conversely, when worker stacks carbon plate material 4 to be carbonized on graphite pressing plate 3, by pulling sliding support 31 of door panel one side away from sintering box 1, when pulling back graphite pressing plate 3 and carbon plate material 4 to sintering box 1 inside, still will shorten the interval between graphite pressing plate 3, make graphite pressing plate 3 can extrude carbon plate material 4, ensure that carbon plate material 4 does not appear bending deformation during carbonization, and by setting up multiple graphite pressing plate 3 structure, can simultaneously carbonize extruding operation to multiple carbon plate material 4.
[0030] Embodiment 2: refer to Figures 1-6Similar to Embodiment 1, but with a further improvement: The top and bottom plates of the sintering box 1 are each provided with a first sliding groove 11 and a second sliding groove 12. Sliding support rods 31 at both ends are slidably connected to the first sliding groove 11 and the second sliding groove 12, respectively. A pull rod 21 is fixedly connected to the sliding support rod 31 away from the door panel of the sintering box 1. A telescopic cylinder 2 is fixedly connected inside the sintering box 1, and the output end of the telescopic cylinder 2 is fixedly connected to the pull rod 21. A limit baffle 37 is fixedly connected to the graphite pressure plate 3. A slot 38 is provided below the graphite pressure plate 3, and the shape and position of the slot 38 correspond to those of the limit baffle 37. A rotating push plate 41 is rotatably connected to the graphite pressure plate 3, and a pusher plate 42 is fixedly connected to the rotating push plate 41. When the rotating push plate 41 flips, it pushes the carbon plate material 4 to move and align with the limiting baffle 37. The graphite pressure plate 3 has a through hole 39. The height of the rotating push plate 41 is higher than the height of the push plate 42. The graphite pressure plate 3 has a limiting platform 43, which is used to receive the rotating push plate 41 that has flipped down. A buffer block 36 is fixedly connected to the sliding rod 35 near the door panel of the sintering box 1. When the sliding rod 35 and the buffer block 36 move towards the side near the door panel of the sintering box 1, the buffer block 36 pushes the push plate 42 and the rotating push plate 41 to flip. A limiting slide plate 33 is fixedly connected to the sliding support rod 31 near the door panel of the sintering box 1. The limiting slide plate 33 is used to limit the maximum distance that the sliding support rod 31 can move.
[0031] In this utility model, the first sliding groove 11 and the second sliding groove 12 are T-shaped grooves, such as... Figure 3 As shown, the bottom sides of the T-shaped groove at the position of the second sliding groove 12 extending to the door panel of the sintering box 1 are blocked, forming a vertical sliding groove. This allows the sliding support rod 31 to be pushed out of the sintering box 1 a certain distance, and the limiting slide plate 33 will be blocked by the second sliding groove 12 to complete the limiting, thereby controlling the maximum distance that the sliding support rod 31 can slide. After the limiting slide plate 33 is blocked, the sliding support rod 31 away from the door panel of the sintering box 1 continues to be pushed, and the connecting rod 34 will rotate around the pin 341 to lift the graphite pressure plate 3.
[0032] After the worker places the carbonized sheet 4 onto the graphite pressure plate 3 of each layer, the graphite pressure plate 3 is lowered and pulled back into the sintering box 1 by pulling the sliding support rod 31 away from the door panel of the sintering box 1. Figure 2 As shown, when the sliding support rod 31 near the door panel of the sintering box 1 slides to the leftmost end of the second sliding groove 12, it is stopped. When the sliding support rod 31 away from the door panel of the sintering box 1 continues to be pulled, the pulling force will be converted into pressure between the graphite pressure plates 3, thereby ensuring that the carbon plate material 4 is pressed tightly.
[0033] The telescopic cylinder 2 is arranged in another space in the sintering box 1, so that the influence of high temperature on the telescopic cylinder 2 is reduced, and the output end of the telescopic cylinder 2 is connected with the pull rod 21 to provide pulling force or pushing force to the sliding support rod 31, and in the case that the stroke requirement is different, the telescopic cylinder 2 is replaced by other driving parts;
[0034] The limiting baffle 37 can ensure that the carbon plate materials 4 are regularly aligned when being placed, when the sliding rod 35 is pulled to both sides by the sliding support rod 31, the sliding support rod 31 drives the buffer block 36 to extrude and push the push plate 42 to overturn upwards, so that the rotating push plate 41 overturns to the vertical state, and in the overturning process, the carbon plate materials 4 can be all pushed to the bottom end of the limiting baffle 37, so that the carbon plate materials 4 are all regularly aligned;
[0035] Because the carbon plate materials 4 will have slight volume change in the carbonization process, in order to prevent the limiting baffle 37 and the rotating push plate 41 from hindering the downward stroke of the graphite pressing plate 3, the clamping groove 38 and the through hole 39 are arranged, so that the protruding parts of the rotating push plate 41 and the limiting baffle 37 can be inserted into the through hole 39 and the clamping groove 38;
[0036] When the user uses, first, the telescopic cylinder 2 is controlled to push the graphite pressing plate 3 out of the sintering box 1, when being pushed out, the connecting rod 34 lifts the graphite pressing plate 3, then the user places the carbon plate materials on the graphite pressing plate 3, after all the carbon plate materials 4 are pushed to the limiting baffle 37, the telescopic cylinder 2 is started to pull the graphite pressing plate 3 back into the sintering box 1, in this process, the carbon plate materials 4 are automatically fixed and compressed, and then carbonization can be carried out.
[0037] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited to this, any skilled person in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.
Claims
1. A carbon-carbon plate carbonization orthopedic tool comprising a sintering box (1) and a carbon plate material (4), characterized in that, Also include: The sintering box (1) is slidably connected with a sliding support rod (31), and a plurality of sliding rods (35) are slidably connected on the sliding support rod (31); The graphite pressing plate (3) is used to bear the extrusion of the carbon plate material (4); A third sliding groove (32) is formed on the graphite pressing plate (3), the sliding rod (35) is slidably connected in the third sliding groove (32), a connecting rod (34) is rotatably connected on the sliding rod (35), every two connecting rods (34) are cross-shaped, and a latch (341) is rotatably connected at the intersection of every two connecting rods (34); When the sliding support rod (31) away from the door panel of the sintering box (1) is pushed, the graphite pressing plate (3) is pushed out and the distance between the graphite pressing plates (3) is increased, and when the sliding support rod (31) away from the door panel of the sintering box (1) is pulled, the graphite pressing plate (3) is pulled into the sintering box (1) and the distance between the graphite pressing plates (3) is reduced.
2. A carbon-carbon board carbonization orthopedic tool according to claim 1, characterized in that, The top plate and the bottom plate of the sintering box (1) are provided with first sliding grooves (11) and second sliding grooves (12), and the sliding support rods (31) at both ends are slidably connected in the first sliding grooves (11) and the second sliding grooves (12).
3. The carbon-carbon board carbonization orthopedic tool according to claim 1, wherein, The sliding support rod (31) away from the door panel of the sintering box (1) is fixedly connected with a pull rod (21), and the inside of the sintering box (1) is fixedly connected with a telescopic air cylinder (2), and the output end of the telescopic air cylinder (2) is fixedly connected with the pull rod (21).
4. The carbon-carbon board carbonization orthopedic fixture according to claim 1, wherein, The graphite pressing plate (3) is fixedly connected with a limiting baffle (37), and a clamping groove (38) is formed below the graphite pressing plate (3), and the shape and position of the clamping groove (38) correspond to those of the limiting baffle (37).
5. A carbon-carbon board carbonization orthopedic tool according to claim 4, wherein The graphite pressing plate (3) is rotatably connected with a rotating push plate (41), and the rotating push plate (41) is fixedly connected with a push plate (42), when the rotating push plate (41) is turned over, the carbon plate material (4) is moved to align with the limiting baffle (37), and a through hole (39) is formed in the graphite pressing plate (3).
6. A carbon-carbon board carbonization orthopedic tool according to claim 5, wherein The height of the rotating push plate (41) is higher than that of the push plate (42), a limiting platform (43) is formed on the graphite pressing plate (3), and the limiting platform (43) is used to receive the turned-over rotating push plate (41).
7. A carbon-carbon board carbonization orthopedic tool according to claim 6, characterized in that, The sliding rod (35) close to the door panel of the sintering box (1) is fixedly connected with a buffer block (36), when the sliding rod (35) and the buffer block (36) move towards the side close to the door panel of the sintering box (1), the buffer block (36) pushes the push plate (42) and the rotating push plate (41) to turn over.
8. The carbon-carbon board carbonization orthopedic fixture of claim 1, wherein, The sliding support rod (31) close to the door panel of the sintering box (1) is fixedly connected with a limiting sliding plate (33), and the limiting sliding plate (33) is used to limit the farthest distance of the sliding support rod (31).