Continuous pot calendering device

By designing a continuous cookware calendering device with a combination of pushing plate and clamping block motion, the problem of continuous feeding difficulties caused by plate adhesion was solved, realizing continuous feeding of plates and improving feeding efficiency, while avoiding plate deformation.

CN117181828BActive Publication Date: 2026-01-20ANHUI JINHE TECH CO LTD
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Patent Information

Application Number
CN202311366489.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-10-20
Publication Date
2026-01-20
Estimated Expiration
2043-10-20

AI Technical Summary

Technical Problem

In existing technologies, the boards become sticky due to residual oil, making continuous feeding impossible. This results in slow manual feeding speeds and an inability to handle the sticky situation.

Method used

A continuous cookware calendering device was designed, including a calender body, a lifting module and a feeding module. By using the combined movement of a pusher plate and a clamping block, the pusher plate pushes the sheet material and the roller frame blocks the bottom sheet material, while the clamping block clamps and separates the two ends of the sheet material, thus realizing continuous feeding of the sheet material.

Benefits of technology

It enables continuous feeding of boards, avoids the problem of multiple boards being fed at the same time due to board sticking, improves feeding efficiency and avoids board deformation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a continuous pot calendering forming device, which comprises a calendering machine body, a lifting module and a feeding module. The feeding module comprises a roller frame, a driving part one and two auxiliary assemblies. The driving part one is a pneumatic cylinder. One side of the roller frame is provided with a push plate. The other side of the roller frame is provided with a conveying belt. The auxiliary assembly comprises a moving block and a linkage part. One side of the moving block is provided with two clamping blocks. The moving block is movably connected with a first connecting rod inside. One end of the first connecting rod is fixedly connected with the push plate. The top plate is pushed by the movement of the push plate, while the bottom plate is blocked by the roller frame and cannot move. The plate is separated during the feeding process, which avoids the problem that multiple plates are simultaneously fed due to adhesion. Meanwhile, the plate can be continuously fed and conveyed, and the continuous feeding work of the plate is realized.
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Description

TECHNICAL FIELD

[0001] The present application belongs to the technical field of pot production, in particular to a continuous pot calendering forming device. BACKGROUND

[0002] Pots are a general term for various utensils for cooking food or boiling water. Before the production of punch-formed pots, the plate material needs to be calendered by a calendering machine to adjust the thickness of the plate material and make the plate surface more flat.

[0003] In the prior art, manual feeding of the plate material is adopted, which can separate the plate material that is sticky due to the presence of residual oil, and avoid the problem of simultaneous feeding of multiple plate materials. However, manual feeding is slow and needs to handle the sticking condition of the plate material, so it cannot perform continuous feeding work. SUMMARY

[0004] The present application proposes the following technical solution to solve the problem of continuous feeding of plate material due to sticking caused by residual oil in the prior art.

[0005] The continuous pot calendering forming device comprises a calendering machine main body, a lifting module and a feeding module. The feeding module comprises a roller frame, a driving part one and two auxiliary components. One side of the roller frame is provided with a push plate. The driving part one drives the push plate to move back and forth in direction a or in the opposite direction. The other side of the roller frame is provided with a conveying belt. The auxiliary component comprises a moving block and a linkage part. One side of the moving block is provided with two clamping blocks. A first connecting rod is movably inserted into the moving block. One end of the first connecting rod is fixedly connected with the push plate.

[0006] The driving part one drives the push plate to move the plate material lifted by the lifting module in direction a. The plate material at the bottom is blocked by the roller frame and cannot continue to move. The clamping blocks on both sides clamp and move the moving plate material, separate the plate material, and avoid the condition of simultaneous feeding of multiple plate materials caused by sticking of the plate material.

[0007] As a preferred embodiment of the above technical solution, the linkage part comprises an installation plate and two second connecting rods. A limiting groove is formed on the surface of the installation plate. A spring is fixedly connected between the second connecting rod and the moving block. A rolling wheel is arranged at one end of the second connecting rod. The rolling wheel is rotatably connected with the limiting groove. A rotating block is arranged at the other end of the second connecting rod. The rotating block is fixedly connected with the clamping block.

[0008] As a preferred embodiment of the above technical solution, the linkage part further comprises an auxiliary gear and an auxiliary rack. The auxiliary gear is matched with the auxiliary rack. The auxiliary gear is fixedly connected with the rotating block at the same axis. The auxiliary rack is fixedly connected with the installation plate.

[0009] As the preferred technical scheme of the above, the restriction groove is in the shape of a flared end at both ends, and the surface of the moving block is attached to the surface of the restriction groove.

[0010] As the preferred technical scheme of the above, the surface of the clamping block is provided with an anti-skid layer made of rubber.

[0011] As the preferred technical scheme of the above, the lifting module comprises two installation supports and a driving part, the bottom of the installation support is provided with a bearing plate, the two sides of the bearing plate are respectively inserted with a lead screw and a sliding rod, the lead screw is fixedly connected with the output end of the driving part two, and the two ends of the sliding rod are fixedly connected with the installation support.

[0012] The beneficial effects of the present application are as follows:

[0013] The top plate is pushed by the movement of the pushing plate, while the bottom plate is blocked by the roller frame and cannot move, the plates are separated during the feeding process, avoiding the problem of simultaneous feeding of multiple plates due to adhesion, and the plates can be continuously fed and transported, realizing continuous feeding of the plates;

[0014] The linkage part can move the two clamping blocks towards each other when the moving block moves, and the clamping blocks can clamp the plates, thereby simultaneously applying force to both ends of the plates, making the feeding plate more quickly separate from the bottom plate, and avoiding the problem of extrusion deformation of the feeding plate due to single-direction pushing;

[0015] 3. The reverse movement of the two second connecting rods moves the corresponding auxiliary gear to the auxiliary rack working plane, and the auxiliary gear drives the rotating block to rotate to move the clamping block away from the clamping position, avoiding blocking the plate movement position. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 The overall structure of the embodiment is shown;

[0017] Figure 2 The left view of the lifting module in the embodiment is shown;

[0018] Figure 3 The top view of the feeding module in the embodiment is shown;

[0019] Figure 4 The front view of the auxiliary assembly in the embodiment is shown;

[0020] Figure 5 The installation diagram of the second connecting rod in the embodiment is shown.

[0021] In the figure: 10, calender main body; 20, lifting module; 21, mounting bracket; 22, driving part two; 23, bearing plate; 24, screw rod; 25, sliding rod; 30, feeding module; 31, roller frame; 33, push plate; 34, conveying belt; 40, auxiliary assembly; 41, moving block; 42, clamping block; 421, anti-skid layer; 43, linkage part; 431, mounting plate; 432, second connecting rod; 433, limiting groove; 434, spring; 435, rolling wheel; 436, rotating block; 437, auxiliary gear; 438, auxiliary rack; 44, first connecting rod. DETAILED DESCRIPTION

[0022] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme of the present application will be described clearly and completely below in conjunction with the embodiments. EMBODIMENT

[0023] Figures 1-4 In the embodiment, the continuous pot pressing forming device comprises a calender main body 10, a lifting module 20 and a feeding module 30, the feeding module 30 comprises a roller frame 31, a driving part one and two auxiliary assemblies 40, the driving part one is a pneumatic cylinder, one side of the roller frame 31 is provided with a push plate 33, the driving part one drives the push plate 33 to move back and forth in the direction a or the opposite direction a, the other side of the roller frame 31 is provided with a conveying belt 34, the auxiliary assembly 40 comprises a moving block 41 and a linkage part 43, one side of the moving block 41 is provided with two clamping blocks 42, the surface of the clamping block 42 is provided with an anti-skid layer 421, the anti-skid layer 421 is made of rubber, the moving block 41 is movably inserted with a first connecting rod 44 inside, one end of the first connecting rod 44 is fixedly connected with the push plate 33;

[0024] The driving part one drives the push plate 33 to move the plate material lifted by the lifting module 20 in the direction a, the plate material driven at the bottom is blocked by the roller frame 31 and cannot continue to move, the clamping blocks 42 on both sides clamp and drive the moving plate material to move, separate the plate materials, and avoid the situation that multiple plate materials are simultaneously fed due to adhesion of the plate materials.

[0025] When the plate needs to be calendered, the lifting module 20 lifts the plate in the vertical direction, and then the driving member drives the push plate 33 to move the plate at the top, and the plate at the bottom is blocked by the roller frame 31 and cannot continue to move. After the front end of the plate enters the top of the roller frame 31, the clamping blocks 42 on both sides clamp the front end of the plate. The first connecting rod 44 drives the moving block 41 to move along with the movement of the push plate 33, and the clamping blocks 42 move along with the push plate 33 to make the plate at both ends bear force uniformly, avoiding the problem of multiple plates being loaded at the same time due to adhesion. When the push plate 33 moves above the roller frame 31, the clamping blocks 42 release the plate to make it fall onto the conveying belt 34, and the conveying belt 34 conveys the plate to be calendered by the calender main body 10.

[0026] The top plate is pushed by the movement of the push plate 33, and the bottom plate is blocked by the roller frame 31 and cannot move. The plates are separated during the loading process to avoid the problem of multiple plates being loaded at the same time due to adhesion, and the plates can be continuously conveyed to realize continuous loading of the plates.

[0027] Figures 3-5 In the linkage part 43, the mounting plate 431 has a limiting groove 433 formed on the surface, and the second connecting rod 432 is fixedly connected with the spring 434 between the moving block 41 and the second connecting rod 432. One end of the second connecting rod 432 is provided with a rolling wheel 435, and the rolling wheel 435 is rotatably connected with the limiting groove 433. The other end of the second connecting rod 432 is provided with a rotating block 436, and the rotating block 436 is fixedly connected with the clamping block 42.

[0028] The limiting groove 433 is in a flared shape at both ends, and the surface of the moving block 41 is in close contact with the surface of the limiting groove 433.

[0029] When the moving block 41 moves, the moving block 41 is in close contact with the surface of the limiting groove 433 to make the movement more stable. When the rolling wheel 435 enters the middle part of the limiting groove 433 from the flared position at the rear end of the limiting groove 433, the rolling wheel 435 moves the second connecting rod 432 along the surface of the limiting groove 433, and the spring 434 is compressed. The two second connecting rods 432 move towards each other to make the clamping block 42 clamp the surface of the plate. When the moving block 41 moves to the front end of the limiting groove 433, the spring 434 in the compressed state pushes the second connecting rod 432, and the rolling wheel 435 moves along the surface of the limiting groove 433 to make the moving block 41 relatively displace. The clamping block 42 no longer clamps the plate and makes the plate fall freely.

[0030] The linkage part 43 is arranged to move the two clamping blocks 42 towards each other when the moving block 41 moves, so that the clamping blocks 42 can clamp the plate, and then simultaneously apply force to both ends of the plate, so that the upper plate can be separated from the bottom plate more quickly, and the problem of extrusion deformation of the upper plate caused by being pushed in one direction can be avoided.

[0031] Figure 5 In the linkage part 43, the auxiliary gear 437 and the auxiliary rack 438 are further arranged, the auxiliary gear 437 is matched with the auxiliary rack 438, the auxiliary gear 437 is coaxially fixedly connected with the rotating block 436, and the auxiliary rack 438 is fixedly connected with the mounting plate 431.

[0032] After the plate leaves the clamping blocks 42, the second connecting rod 432 continues to move and recontacts the moving block 41 to drive it to continue to move, the auxiliary gear 437 and the auxiliary rack 438 are in contact and rotate, the rotating block 436 rotates to make the clamping blocks 42 leave the clamping position, so as to avoid blocking the moving position of the plate.

[0033] The reverse movement of the two second connecting rods 432 makes the auxiliary gear 437 at the corresponding position move to the working plane of the auxiliary rack 438, so that the auxiliary gear 437 drives the rotating block 436 to rotate to make the clamping blocks 42 leave the clamping position, thereby avoiding blocking the moving position of the plate.

[0034] Figure 2 In the lifting module 20, the mounting bracket 21 and the second driving part 22 are arranged, the second driving part 22 is a forward and reverse motor with a speed reducer, the bottom of the mounting bracket 21 is provided with a bearing plate 23, the two sides of the bearing plate 23 are respectively inserted with a lead screw 24 and a sliding rod 25, the lead screw 24 is fixedly connected with the output end of the second driving part 22, and the two ends of the sliding rod 25 are fixedly connected with the mounting bracket 21.

[0035] After the feeding is completed, the first driving part drives the pushing plate 33 to reset, and then the second driving part 22 drives the lead screw 24 to rotate, so that the bearing plate 23 drives the stacked plates to rise, the sliding rod 25 limits the movement of the bearing plate 23 to make the movement of the bearing plate 23 more stable, and the uppermost plate moves to the pushing position, and then the feeding work can be continued.

[0036] Working principle: before the plate is subjected to calendering treatment, the plate needs to be fed, the forward and reverse motor is started to drive the lead screw 24 to rotate through the speed reducer, the bearing plate 23 drives the stacked plates to rise to the pushing position, and the sliding rod 25 limits the movement of the bearing plate 23 to make the movement of the bearing plate 23 more stable.

[0037] Subsequently, the cylinder starts to drive the push plate 33 to move, and the push plate 33 moves the plate at the top. The plate at the bottom is blocked by the roller frame 31 and cannot continue to move. The first connecting rod 44 contacts the moving block 41 and drives it to move. After the front end of the plate enters the top of the roller frame 31, the rolling wheel 435 enters the middle of the limiting groove 433 from the rear flared position of the limiting groove 433. The rolling wheel 435 moves the second connecting rod 432 along the surface of the limiting groove 433, and the spring 434 is compressed. The two second connecting rods 432 move towards each other, so that the clamping block 42 clamps the surface of the plate. The driving force can be applied to both ends of the plate to drive it to move;

[0038] When the moving block 41 moves to the front end of the limiting groove 433, the spring 434 in the compressed state pushes the second connecting rod 432. The rolling wheel 435 moves along the surface of the limiting groove 433, so that the moving block 41 is relatively displaced. The clamping block 42 no longer clamps the plate and allows the plate to fall freely. The second connecting rod 432 continues to move and recontacts the moving block 41 to drive it to continue to move. The auxiliary gear 437 contacts the auxiliary rack 438 to rotate. The rotating block 436 rotates so that the clamping block 42 leaves the clamping position to avoid blocking the plate from moving.

[0039] The transmission belt 34 starts to transmit the plate. After the plate is subjected to the calendering work by the calendering machine main body 10, it waits for the stamping work.

[0040] The above examples are only used to illustrate the technical solutions of the present application, and are not limited thereto.

Claims

1. A continuous cookware calendering and forming device, comprising a calender body (10), a lifting module (20), and a feeding module (30), wherein the feeding module (30) comprises a roller frame (31), a drive component, and two auxiliary components (40), wherein a push plate (33) is provided on one side of the roller frame (31), and the drive component drives the push plate (33) to reciprocate in the direction of a or the opposite direction of a, and a conveyor belt (34) is provided on the other side of the roller frame (31), characterized in that, The auxiliary component (40) includes a movable block (41) and a linkage part (43). Two gripping blocks (42) are provided on one side of the movable block (41). A first connecting rod (44) is movably inserted inside the movable block (41). One end of the first connecting rod (44) is fixedly connected to the push plate (33). The drive unit drives the push plate (33) to move the plate lifted by the lifting module (20) in the a direction. The plate at the bottom is blocked by the roller frame (31) and will not continue to move. The clamping blocks (42) on both sides clamp the moving plate and drive it to move, separating the plate and avoiding the situation of multiple plates being fed at the same time due to the plates sticking together. The linkage part (43) includes a mounting plate (431) and two second connecting rods (432). The mounting plate (431) has a limiting groove (433) on its surface. A spring (434) is fixedly connected between the second connecting rod (432) and the moving block (41). A rolling wheel (435) is provided at one end of the second connecting rod (432). The rolling wheel (435) is rotatably engaged with the limiting groove (433). A rotating block (436) is provided at the other end of the second connecting rod (432). The rotating block (436) is fixedly connected to the clamping block (42). The linkage part (43) further includes an auxiliary gear (437) and an auxiliary rack (438). The auxiliary gear (437) matches the auxiliary rack (438). The auxiliary gear (437) is coaxially fixedly connected to the rotating block (436). The auxiliary rack (438) is fixedly connected to the mounting plate (431). Both ends of the limiting groove (433) are flared. The surface of the moving block (41) is in contact with the surface of the limiting groove (433). When the rolling wheel (435) enters the middle of the limiting groove (433) from the flared position at the rear end of the limiting groove (433), the rolling wheel (435) moves the second connecting rod (432) along the surface of the limiting groove (433), and the spring (434) is compressed accordingly. The two second connecting rods (432) move towards each other, causing the clamping block (42) to clamp the surface of the plate. When the moving block (41) moves to the front end of the limiting groove (433), the spring, which is in a compressed state, is... (434) Push the second connecting rod (432), and the rolling wheel (435) moves along the surface of the limiting groove (433) so that the moving block (41) is relatively displaced. The clamping block (42) no longer clamps the plate and allows the plate to fall freely. After the plate leaves the clamping block (42), the second connecting rod (432) continues to move and re-contacts the moving block (41) to drive it to continue moving. The auxiliary gear (437) contacts the auxiliary rack (438) and rotates. The rotating block (436) rotates accordingly, causing the clamping block (42) to leave the clamping position, thus avoiding blocking the movement of the plate.

2. The continuous cookware calendering apparatus according to claim 1, characterized in that, The surface of the gripping block (42) is provided with an anti-slip layer (421), which is made of rubber.

3. The continuous cookware calendering apparatus according to claim 1, characterized in that, The lifting module (20) includes a mounting bracket (21) and a second driving component (22). The mounting bracket (21) has a support plate (23) at its bottom. A lead screw (24) and a slide rod (25) are respectively inserted into both sides of the support plate (23). The lead screw (24) is fixedly connected to the output end of the second driving component (22), and both ends of the slide rod (25) are fixedly connected to the mounting bracket (21).

Citation Information

Patent Citations

  • Transporting box feeding device facilitating achievement of automatic production

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