Nanometer composite board continuous flattening device
By setting up feeding, centering adjustment, flattening and unloading troughs on the turntable, and combining them with intermittent rotation components, continuous flattening of nanocomposite plates was achieved, solving the problem of low production efficiency in existing devices and improving production efficiency.
Patent Information
- Application Number
- CN202423291862.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing composite board flattening devices can only flatten a single composite board at a time, and the loading and unloading time is relatively long, resulting in low production efficiency.
A continuous flattening device for nanocomposite plates was designed. By setting a feeding groove, centering adjustment groove, flattening groove and unloading groove on a turntable, and combining an intermittent rotation component and a drive component, the continuous flattening process of the composite plate is realized, including the synchronous execution of feeding, alignment, flattening and unloading processes.
It enables continuous flattening of composite panels, saving processing time, improving production efficiency, and avoiding mutual interference between composite panels, thus enhancing production efficiency.
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Figure CN223850081U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to composite board processing equipment technical field, specifically a kind of nanometer composite board continuous flattening device. BACKGROUND
[0002] Nanometer composite board is selected nano particle or nanometer fiber and matrix material (such as polymer, metal, ceramic etc.) are combined to form composite material with special performance, in the preparation process of nanometer composite board often needs following steps: first, need to select matrix material and prepare nano particle, after surface treatment, matrix material and nano particle are mixed and dispersed, finally the mixed material is processed into the plate of required shape by extrusion, injection molding, compression molding etc.
[0003] The existing composite board flattening device can only flatten single composite board each time, and the feeding and discharging of the composite board also need time, resulting in low production efficiency of the composite board.
[0004] Based on this, a nanometer composite board continuous flattening device is provided, which can eliminate the drawbacks of existing devices. UTILITY MODEL CONTENT
[0005] The utility model aims at providing a kind of nanometer composite board continuous flattening device to solve the problems in the background art.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:
[0007] A nanometer composite board continuous flattening device, comprising an operating table, a turntable is rotatably connected to the operating table, an upper fixed plate is provided above the turntable, a flattening assembly is cooperatively provided on the bottom surface of the upper fixed plate, and a moving plate is also cooperatively provided on the bottom surface of the upper fixed plate; an intermittent rotation assembly is provided inside the operating table, and a drive assembly is cooperatively provided on one side of the intermittent rotation assembly.
[0008] Preferably, the turntable comprises a feeding groove, a centering adjustment groove, a flattening groove and a discharging groove, and the feeding groove, the centering adjustment groove, the flattening groove and the discharging groove are circumferentially arrayed on the surface of the turntable.
[0009] Preferably, the operating table comprises an operating plane, an inner mounting groove, a shaft hole, a motor shaft mounting hole, a motor support column, a support plate and a main support column, the inner mounting groove is formed in the bottom of the operating plane, the shaft hole is formed in the operating plane, the motor shaft mounting hole is formed in the bottom surface of the operating plane, a plurality of motor support columns are fixedly connected to the bottom of the operating plane, the support plate is connected to the side of the motor support column away from the operating plane, and a plurality of main support columns are circumferentially arrayed on the bottom surface of the operating plane.
[0010] Preferably, the flattening assembly comprises an I-shaped pressing plate, limiting mounting holes and a first telescopic rod, a plurality of limiting mounting holes are formed on the I-shaped pressing plate, the top of the I-shaped pressing plate is connected with the telescopic end of the first telescopic rod, and the fixed end of the first telescopic rod is connected to the bottom of the upper fixing plate.
[0011] Preferably, the upper fixing plate comprises a circular fixing plate, fixing mounting holes, guide columns, a telescopic rod fixing plate and a second telescopic rod, a plurality of fixing mounting holes are arranged in a circular array on the circular fixing plate, a plurality of guide columns matched with the limiting mounting holes are fixedly connected to the bottom of the circular fixing plate, the bottom surface of the circular fixing plate is further fixedly connected with the telescopic rod fixing plate, and one side of the telescopic rod fixing plate is connected with the fixed end of the second telescopic rod.
[0012] Preferably, the moving plate comprises a micro telescopic rod, slide rails, an I-shaped sliding block, extension columns, a connecting key, a clamping block, a clamping block extension column, a T-shaped sliding groove and a T-shaped extension block, the moving plate is connected to the telescopic end of the second telescopic rod, two slide rails are symmetrically arranged on the side of the moving plate, the upper end of the moving plate is connected with the fixed end of the micro telescopic rod, the telescopic end of the micro telescopic rod is connected with the I-shaped sliding block, two extension columns are fixedly connected to the I-shaped sliding block, the connecting key is rotatably connected to the extension columns, the clamping block extension column is rotatably connected to the end of the connecting key away from the extension columns, the clamping block extension column is fixedly connected to one side of the clamping block, the T-shaped extension block is fixedly connected to the bottom of the moving plate, and the T-shaped sliding groove matched with the T-shaped extension block is formed in the clamping block.
[0013] Preferably, the intermittent rotation assembly comprises an intermittent rotation wheel, contact grooves, a rotating shaft and pull column sliding grooves, a plurality of contact grooves are arranged in a circular array on the intermittent rotation wheel, the rotating shaft matched with the rotating shaft hole is arranged in the intermittent rotation wheel, and a plurality of pull column sliding grooves are arranged in a circular array on the surface of the intermittent rotation wheel.
[0014] Preferably, the driving assembly comprises a motor, a supporting disc, a contact disc, a pull column and a motor shaft, the motor is fixedly connected to the surface of the supporting plate, the output end of the motor is connected with the motor shaft matched with the motor shaft mounting hole, one supporting disc is connected to the end of the motor shaft away from the motor, one contact disc is fixedly connected to the supporting disc, and one pull column is further arranged outside the contact disc.
[0015] Preferably, the shape of the contact disc is matched with the shape of the contact groove, and the pull column and the pull column sliding groove are matched with each other.
[0016] Compared with the prior art, the utility model has the advantages that:
[0017] 1. The utility model discloses a feeding groove, a centering adjusting groove, a flattening groove and a discharging groove are arranged in the rotating disc, so that feeding, alignment, flattening and discharging can be simultaneously carried out during the rotation of the rotating disc, the processing time is fully saved, and the production efficiency is improved, and meanwhile, since each composite board is flattened separately, the composite boards do not affect each other.
[0018] 2. The utility model discloses an intermittent rotation assembly, so that the rotating disc can rotate intermittently, and operation time is reserved for the four processes of feeding, alignment, flattening and discharging. DRAWINGS
[0019] Figure 1 It is a structural schematic view of the utility model.
[0020] Figure 2 It is an internal structure schematic view of the operation table in the utility model.
[0021] Figure 3 It is a schematic view of the cooperation of the rotating disc and the intermittent rotation assembly in the utility model.
[0022] Figure 4 It is a structural schematic view of the centering adjusting assembly in the utility model.
[0023] Figure 5 It is a schematic view of the cooperation of the upper fixed plate and the pressing assembly in the utility model.
[0024] Drawing mark annotation: 100, operation table, 101, operation plane, 102, inner installation groove, 103, rotating shaft hole, 104, motor shaft installation hole, 105, motor support column, 106, support plate, 107, main support column, 200, rotating disc, 201, feeding groove, 202, centering adjusting groove, 203, flattening groove, 204, discharging groove, 300, flattening assembly, 301, I-shaped pressing plate, 302, limit installation hole, 303, first telescopic rod, 400, moving plate, 401, micro telescopic rod, 402, slide rail, 403, I-shaped sliding block, 404, extension column, 405, connecting key, 406, clamping block, 407, clamping block extension column, 408, T-shaped slide groove, 409, T-shaped extension block, 500, upper fixed plate, 501, circular fixed plate, 502, fixed installation hole, 503, guide column, 504, telescopic rod fixed plate, 505, second telescopic rod, 600, driving assembly, 601, motor, 602, support disc, 603, contact disc, 604, pulling column, 605, motor shaft, 700, intermittent rotation assembly, 701, intermittent rotation wheel, 702, contact groove, 703, rotating shaft, 704, pulling column slide groove. DETAILED DESCRIPTION
[0025] In order to make the purpose, technical scheme and advantages of the utility model more clearly, the following will be further described in detail in combination with the drawings and examples.
[0026] In one embodiment, as shown in Figures 1-5 A nanometer composite board continuous flattening device, including operation platform 100, the operation platform 100 is rotatably connected with carousel 200, through the setting of carousel 200, the flattening process of composite board can be carried out separately, one upper fixed plate 500 is arranged above carousel 200, the bottom surface of upper fixed plate 500 is cooperatively provided with one flattening assembly 300, to flatten composite board;The bottom surface of upper fixed plate 500 is also cooperatively provided with moving plate 400;The inside of operation platform 100 is provided with one intermittent rotation assembly 700, and the intermittent rotation assembly 700 is cooperatively provided with drive assembly 600 on one side, to provide power for intermittent rotation assembly 700.
[0027] In one embodiment, as shown in Figure 3 Carousel 200 includes feeding groove 201, centering adjustment groove 202, flattening groove 203 and discharging groove 204, and the feeding groove 201, the centering adjustment groove 202, the flattening groove 203 and the discharging groove 204 are circumferentially arrayed on the surface of carousel 200, and correspond to the feeding, alignment, flattening and discharging processes of composite board respectively, and different slots are provided with operating workers to carry out corresponding processes.
[0028] In one embodiment, as shown in Figure 2 Operation platform 100 includes operation plane 101, inner mounting groove 102, shaft hole 103, motor shaft mounting hole 104, motor support column 105, support plate 106 and main support column 107, the bottom of operation plane 101 is provided with inner mounting groove 102, to reserve space for intermittent rotation assembly 700;Operation plane 101 is provided with a through shaft hole 103, to reserve hole position for shaft 703;The bottom surface of operation plane 101 is provided with motor shaft mounting hole 104, to reserve hole position for motor shaft;The bottom of operation plane 101 is also fixedly connected with a plurality of motor support columns 105, and the side, away from operation plane 101, of motor support column 105 is connected with support plate 106, to support motor 601, and the bottom surface of operation plane 101 is circumferentially arrayed with a plurality of main support columns 107, to provide support for operation platform 100.
[0029] In one embodiment, as shown in Figure 5As shown, the flattening assembly 300 comprises an I-shaped pressing plate 301, a limiting mounting hole 302 and a first telescopic rod 303, a plurality of limiting mounting holes 302 are arranged on the I-shaped pressing plate 301, the top of the I-shaped pressing plate 301 is connected with the telescopic end of the first telescopic rod 303, and the fixed end of the first telescopic rod 303 is connected to the bottom of the upper fixed plate 500, the first telescopic rod 303 is used to drive the flattening assembly 300 to move up and down, so that continuous flattening is realized.
[0030] In one embodiment, as shown in Figure 5 As shown, the upper fixed plate 500 comprises a circular fixed plate 501, a fixed mounting hole 502, a guide column 503, a telescopic rod fixed plate 504 and a second telescopic rod 505, a plurality of fixed mounting holes 502 are arranged on the circular fixed plate 501 in a circumferential array, and the upper fixed plate 500 is fixed by means of threaded connection or welding; a plurality of guide columns 503 matched with the limiting mounting holes 302 are fixedly connected to the bottom of the circular fixed plate 501, and the sliding of the I-shaped pressing plate 301 is guided and limited; the bottom surface of the circular fixed plate 501 is also fixedly connected with the telescopic rod fixed plate 504, one side of the telescopic rod fixed plate 504 is connected with the fixed end of the second telescopic rod 505, and the front and back movement of the moving plate 400 can be controlled through the second telescopic rod 505.
[0031] In one embodiment, as shown in Figure 4 As shown, the moving plate 400 comprises a micro telescopic rod 401, a slide rail 402, an I-shaped slide block 403, an extension column 404, a connecting key 405, a clamping block 406, a clamping block extension column 407, a T-shaped sliding groove 408 and a T-shaped extension block 409, the moving plate 400 is connected to the telescopic end of the second telescopic rod 505, and the moving plate 400 can slide under the driving of the second telescopic rod 505, two slide rails 402 are symmetrically arranged on the side surface of the moving plate 400, the upper end of the moving plate 400 is connected with the fixed end of the micro telescopic rod 401, the telescopic end of the micro telescopic rod 401 is connected with the I-shaped slide block 403, two extension columns 404 are fixedly connected to the I-shaped slide block 403, the connecting key 405 is rotatably connected to the extension columns 404, and the up and down sliding of the slide block 403 can drive the connecting key 405 to rotate around the extension columns 404; the clamping block extension column 407 is rotatably connected to the end of the connecting key 405 away from the extension columns 404, and the clamping block extension column 407 is fixedly connected to one side of the clamping block 406, the cooperation of the connecting key 405 and the clamping block extension column 407 can drive the clamping block 406 to slide left and right, the bottom of the moving plate 400 is fixedly connected with the T-shaped extension block 409, and the T-shaped sliding groove 408 matched with the T-shaped extension block 409 is arranged in the clamping block 406, and is used to limit the sliding of the clamping block 406.
[0032] In one embodiment, as shown in Figure 3As shown, the intermittent rotation assembly 700 comprises an intermittent rotation wheel 701, a contact groove 702, a rotating shaft 703 and a pulling column sliding groove 704, the intermittent rotation wheel 701 is provided with a plurality of contact grooves 702 arranged in a circumferential direction, the intermittent rotation wheel 701 is provided with a rotating shaft 703 matched with the rotating shaft hole 103, and the surface of the intermittent rotation wheel 701 is provided with a plurality of pulling column sliding grooves 704 arranged in a circumferential direction, which reserves space for the sliding of the pulling column 604.
[0033] In one embodiment, as shown in Figure 3 As shown, the driving assembly 600 comprises a motor 601, a support disc 602, a contact disc 603, a pulling column 604 and a motor shaft 605, the motor 601 is fixedly connected to the surface of the support plate 106, the output end of the motor 601 is connected to a motor shaft 605 matched with the motor shaft mounting hole 104, the end of the motor shaft 605 away from the motor 601 is connected to a support disc 602, the support disc 602 is fixedly connected to a contact disc 603, and the outer side of the contact disc 603 is further provided with a pulling column 604.
[0034] In one embodiment, as shown in Figure 3 As shown, the shape of the contact disc 603 is matched with the shape of the contact groove 702, so that the intermittent rotation wheel 701 can be attached to the contact disc 603, the pulling column 604 and the pulling column sliding groove 704 are matched with each other, and the intermittent rotation wheel 701 is rotated by the sliding of the pulling column 604 in the pulling column sliding groove 704.
[0035] Working principle: first, the operator puts the nano composite board into the feeding groove 201, then starts the motor 601 and the second telescopic rod 505, due to the cooperation of the pulling column sliding groove 704 and the pulling column 604, the intermittent rotation wheel 701 starts intermittent rotation, when the composite board is rotated to the centering adjusting groove 202 position by the rotating disc 200, the moving plate 400 moves to the upper side of the centering adjusting groove 202, at this time, the micro telescopic rod 401 is started, the connection key 405 is pulled to adjust the position of the composite board by the cooperation of the I-shaped sliding block 403 and the connection key 405, after the adjustment is completed, the rotating disc 200 continues to rotate, and drives the composite board to move to the flattening groove 203 position, at this time, the first telescopic rod 303 is started, and the composite board is flattened, finally, the rotating disc 200 moves to the discharging groove 204 position, and the discharging process is started, the device can synchronize each process in the process of continuous flattening, and the production efficiency can be effectively improved.
[0036] The above is only a specific embodiment of the present application, but the protection scope of the present application is not limited to this, any person skilled in the art can easily think of changes or replacements within the technical range disclosed in the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A kind of nanocomposite board continuous flattening device, including operation platform (100), the operation platform (100) is rotationally connected with carousel (200), one upper fixed plate (500) is equipped above the carousel (200), the bottom surface of the upper fixed plate (500) is equipped with a flattening assembly (300) in coordination, the bottom surface of the upper fixed plate (500) is also equipped with moving plate (400) in coordination;It is characterized by, The operating platform (100) is internally provided with an intermittent rotation assembly (700), and one side of the intermittent rotation assembly (700) is provided with a driving assembly (600).
2. The nanocomposite sheet continuous flattening device according to claim 1, wherein, The rotating disc (200) comprises a feeding groove (201), a centering adjustment groove (202), a flattening groove (203) and a discharging groove (204), and the feeding groove (201), the centering adjustment groove (202), the flattening groove (203) and the discharging groove (204) are circumferentially arranged on the surface of the rotating disc (200).
3. The nanocomposite sheet continuous flattening device according to claim 1, wherein, The operating platform (100) comprises an operating plane (101), an inner mounting groove (102), a rotating shaft hole (103), a motor shaft mounting hole (104), a motor support column (105), a support plate (106) and a main support column (107), the bottom of the operating plane (101) is provided with the inner mounting groove (102), the operating plane (101) is provided with the penetrating rotating shaft hole (103), the bottom surface of the operating plane (101) is provided with the motor shaft mounting hole (104), the bottom of the operating plane (101) is further fixedly connected with the motor support columns (105), the side, away from the operating plane (101), of the motor support column (105) is connected with the support plate (106), and the bottom surface of the operating plane (101) is circumferentially provided with the main support columns (107).
4. The nanocomposite sheet continuous flattening device according to claim 1, wherein, The flattening assembly (300) comprises an I-shaped pressing plate (301), a limiting mounting hole (302) and a first telescopic rod (303), the I-shaped pressing plate (301) is provided above with the limiting mounting holes (302), the top of the I-shaped pressing plate (301) is connected with the telescopic end of the first telescopic rod (303), and the fixed end of the first telescopic rod (303) is connected to the bottom of the upper fixed plate (500).
5. The nanocomposite sheet continuous flattening device according to claim 4, wherein The upper fixed plate (500) comprises a circular fixed plate (501), a fixed mounting hole (502), a guide column (503), a telescopic rod fixed plate (504) and a second telescopic rod (505), the circular fixed plate (501) is circumferentially provided with the fixed mounting holes (502), the bottom of the circular fixed plate (501) is fixedly connected with the guide columns (503) matched with the limiting mounting holes (302), the bottom surface of the circular fixed plate (501) is further fixedly connected with the telescopic rod fixed plate (504), and one side of the telescopic rod fixed plate (504) is connected with the fixed end of the second telescopic rod (505).
6. The nanocomposite sheet continuous flattening device according to claim 5, wherein The mobile plate (400) comprises a micro telescopic rod (401), a slide rail (402), an I-shaped slide block (403), an extension column (404), a connecting key (405), a clamping block (406), a clamping block extension column (407), a T-shaped slide groove (408) and a T-shaped extension block (409), the mobile plate (400) is connected at the telescopic end of the second telescopic rod (505), two slide rails (402) are symmetrically arranged on the side of the mobile plate (400), the upper end of the mobile plate (400) is connected with the fixed end of the micro telescopic rod (401), the telescopic end of the micro telescopic rod (401) is connected with the I-shaped slide block (403), two extension columns (404) are fixedly connected to the I-shaped slide block (403), the connecting key (405) is rotatably connected to the extension column (404), the clamping block extension column (407) is rotatably connected to the end of the connecting key (405) away from the extension column (404), the clamping block extension column (407) is fixedly connected to one side of the clamping block (406), the T-shaped extension block (409) is fixedly connected to the bottom of the mobile plate (400), and the T-shaped slide groove (408) is arranged in the clamping block (406) and matched with the T-shaped extension block (409).
7. The nanocomposite sheet continuous flattening device according to claim 1, wherein The intermittent rotation assembly (700) comprises an intermittent rotation wheel (701), a contact groove (702), a rotating shaft (703) and a pulling column slide groove (704), a plurality of contact grooves (702) are circumferentially arranged on the intermittent rotation wheel (701), the rotating shaft (703) is arranged in the intermittent rotation wheel (701) and matched with the rotating shaft hole (103), and a plurality of pulling column slide grooves (704) are circumferentially arranged on the surface of the intermittent rotation wheel (701).
8. The nanocomposite sheet continuous flattening device according to claim 1, wherein, The driving assembly (600) comprises a motor (601), a supporting disc (602), a contact disc (603), a pulling column (604) and a motor shaft (605), the motor (601) is fixedly connected to the surface of the supporting plate (106), the output end of the motor (601) is connected with the motor shaft (605) matched with the motor shaft mounting hole (104), one end of the motor shaft (605) away from the motor (601) is connected with the supporting disc (602), the supporting disc (602) is fixedly connected with the contact disc (603), and the outer side of the contact disc (603) is further provided with the pulling column (604).
9. The nanocomposite sheet continuous flattening device according to claim 8, wherein, The shape of the contact disc (603) is matched with the shape of the contact groove (702), and the pulling column (604) and the pulling column slide groove (704) are matched with each other.