Sealing element machining equipment

By designing a seal processing equipment including a vibrating plate loader, feeding device and processing device, the existing equipment is not intelligent enough and inefficient, and integrated production of loading, processing and unloading is realized, and the overall production efficiency is improved.

CN120190658APending Publication Date: 2025-06-24GUANGDONG LSH INTELLICENCE CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510620701.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-06-24

AI Technical Summary

Technical Problem

The existing seal processing equipment is not intelligent enough to achieve integrated production of loading, processing and unloading. The loading, unloading and processing efficiency of materials is low, and there is a lack of coordination between loading and unloading.

Method used

A seal processing equipment including a vibrating disk loader, a feeding device and a processing device are designed. The vibrating disk loader vibrates the material to the feeding device, and the feeding device transmits the material to the processing device. The processing device includes an X-axis moving device, a Z-axis moving device, a clamping device, a processing tool and a rotating station to realize the automatic loading, processing and unloading of the material.

Benefits of technology

The intelligent production of seal processing equipment has been realized, the loading, processing and unloading efficiency of materials has been improved, and the organic coordination of loading and unloading of materials has been formed, which has improved the overall production efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120190658A_ABST
    Figure CN120190658A_ABST
Patent Text Reader

Abstract

The invention relates to processing equipment, and particularly discloses sealing element processing equipment which is characterized in that a material can be placed on a vibration disc feeding machine, the vibration disc feeding machine can vibrate the material, the material is vibrated and conveyed to a feeding device, the feeding device conveys the material to the rear end from the front end, and the material on the feeding device is conveyed to the rear end from the front end to the rear end. A to-be-machined material is clamped by the second material clamping device, the second material clamping device clamps the to-be-machined material and places the to-be-machined material on the rotating station, the rotating station drives the to-be-machined material to rotate, when the material rotates, the machining tool can machine the material, after machining is completed, the first material clamping device clamps the machined material, and meanwhile, the first material clamping device clamps the to-be-machined material and places the to-be-machined material on the rotating station. The first clamping device can clamp one to-be-machined material, the second clamping device can clamp the other to-be-machined material, then the first clamping device clamps the machined material into the discharging frame, and meanwhile the second clamping device places the clamped to-be-machined material on the rotating station.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a processing device, and particularly to a sealing member processing device. Background Art

[0002] A sealing member is a common sealing component. By setting a sealing member between two objects, substances such as water and air can be isolated, preventing the outflow of liquids such as water or the overflow of substances such as air, thus avoiding unnecessary troubles.

[0003] In the process of processing sealing members, processing devices are often used. Existing sealing member processing devices often have the following defects: 1. They are not intelligent enough and cannot achieve integrated production of feeding, processing, and discharging; 2. The feeding, discharging, and placing of materials on the processing station for processing are all carried out by the same loading and unloading device, resulting in low efficiency and no formation of the cooperation of loading and unloading. Summary of the Invention

[0004] The purpose of the present invention is to provide a sealing member processing device to solve the problems existing in the prior art.

[0005] According to one aspect of the present invention, there is provided a sealing member processing device, including a vibrating bowl feeder, a feeding device, and a processing device. The vibrating bowl feeder is arranged on one side of the feeding device. The vibrating bowl feeder outputs materials to the feeding device, the feeding device transports the materials to the processing device, and the processing device processes the materials. The processing device includes an X-axis moving device, a Z-axis moving device, a first clamping device, a second clamping device, a processing tool, and a rotating station. The Z-axis moving device is connected to the X-axis moving device. The X-axis moving device can drive the Z-axis moving device to move along the X-axis direction. The first clamping device, the second clamping device, and the processing tool are all arranged on the Z-axis moving device. The Z-axis moving device drives the first clamping device, the second clamping device, and the processing tool to move up and down synchronously. The second clamping device can clamp the material to be processed on the feeding device and place the material to be processed on the rotating station. The rotating station drives the material to be processed to rotate, and the processing tool processes the material on the rotating station. The first clamping device can clamp the processed material on the rotating station.

[0006] In some embodiments, the rotating station includes a first motor and a rotating disk. The first motor is connected to the rotating disk. The first motor can drive the rotating disk to rotate. The rotating disk is provided with a clamping groove, and the material to be processed can be clamped in the clamping groove.

[0007] In some embodiments, a plurality of communication holes are provided at the clamping groove of the rotating disk. An air suction and blowing device is further arranged on the rotating station. The air suction and blowing device is connected to the communication holes. The air suction and blowing device can perform air suction and blowing through the communication holes and suck or blow up the material on the rotating station.

[0008] In some embodiments, the first material clamping device includes a first material clamping motor and a first three-jaw chuck. The first material clamping motor is connected to the first three-jaw chuck through a belt. The first material clamping motor can drive the first three-jaw chuck to clamp and loosen. The second material clamping device includes a second material clamping motor and a second three-jaw chuck. The second material clamping motor is connected to the second three-jaw chuck through a belt. The second material clamping motor can drive the second three-jaw chuck to clamp and loosen.

[0009] In some embodiments, the X-axis moving device includes an X-axis motor, an X-axis lead screw, an X-axis nut, and an X-axis fixed seat. The X-axis motor is arranged on the X-axis fixed seat. The X-axis lead screw is connected to the X-axis motor. The X-axis nut is matched with the X-axis lead screw. The X-axis nut is also connected to the Z-axis moving device.

[0010] In some embodiments, the Z-axis moving device includes a Z-axis motor, a Z-axis lead screw, a Z-axis nut, and a Z-axis fixed seat. The Z-axis motor is arranged on the Z-axis fixed seat. The Z-axis lead screw is connected to the Z-axis motor. The Z-axis nut is matched with the Z-axis lead screw. A moving seat is further connected to the Z-axis nut. The first material clamping device, the second material clamping device, and the processing tool are all arranged on the moving seat.

[0011] In some embodiments, a shock absorption device is further included. The moving seat includes a first moving plate and a second moving plate. The first moving plate is connected to the Z-axis nut. The shock absorption device is arranged between the first moving plate and the second moving plate. The first material clamping device and the second material clamping device are both arranged on the second moving plate. The processing tool is arranged on the first moving plate.

[0012] In some embodiments, the shock absorption device includes a shock absorption spring, a guide post, and a first fixed column. The first fixed column is arranged on the first moving plate. The guide post passes through the first fixed column and is connected to the second moving plate. The shock absorption spring is sleeved on the guide post, and the shock absorption spring is located between the second moving plate and the first fixed column.

[0013] In some embodiments, the processing tool includes a connecting column, a blade seat, and a blade. The connecting column is connected to the first moving plate. The blade seat is connected to the connecting column. The blade is arranged on the blade seat, and the blade seat holds the blade.

[0014] In some embodiments, the feeding device includes a feeding motor, a conveyor belt, and a feeding rack. The feeding motor is arranged on the feeding rack. The conveyor belt is connected to the feeding motor. The feeding motor can drive the conveyor belt to convey.

[0015] In some embodiments, a blocking baffle is arranged at the end of the conveyor belt. The blocking baffle forms a V-shaped structure. The conveyor belt conveys the material to the V-shaped structure.

[0016] In some embodiments, a screening component is provided at the front end of the conveyor belt. The screening component includes a screening cylinder and a screening baffle. The screening cylinder is provided on the feeding rack, and the screening baffle is connected to the output end of the screening cylinder. The screening baffle forms a passage cavity, and the passage cavity has a structure that is narrower at the bottom and wider at the top.

[0017] The beneficial effects of the present invention are as follows: The present invention can place the materials on the vibrating disk feeder. The vibrating disk feeder can vibrate the materials and transfer the vibrated materials to the feeding device. The feeding device transfers the materials from the front end to the rear end. The materials on the feeding device are clamped by the second clamping device. The second clamping device clamps the materials to be processed and places them on the rotating station. The rotating station drives the materials to be processed to rotate. When the materials rotate, the processing tool can process the materials. After the processing is completed, the first clamping device clamps the processed materials. At the same time, the second clamping device can clamp another material to be processed. Then the first clamping device clamps the processed materials into the blanking frame, and at the same time, the second clamping device places the clamped materials to be processed on the rotating station. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a schematic structural diagram of a sealing member processing device according to an embodiment of the present invention;

[0019] Figure 2 is a partial structural diagram of the vibrating disk feeder of the sealing member processing device shown in FIG. 1;

[0020] Figure 3 is Figure 1 a schematic structural diagram of the X-axis moving device of the sealing member processing device shown in FIG.

[0021] Figure 4 is Figure 1 a schematic structural diagram of the Z-axis moving device of the sealing member processing device shown in FIG.

[0022] Figure 5 is Figure 1 a partial structural diagram of the sealing member processing device shown in FIG.

[0023] Figure 6 is Figure 1 a schematic structural diagram of the screening component of the sealing member processing device shown in FIG.

[0024] Figure 7 is Figure 1 a schematic structural diagram of the rotating station of the sealing member processing device shown in FIG.

[0025] Figure 8 is Figure 7 a schematic top view structural diagram of the rotating station shown in FIG.

[0026] In the figure, 1 - vibrating bowl feeder; 2 - feeding device; 21 - feeding motor; 22 - conveyor belt; 221 - blocking baffle; 23 - feeding rack; 3 - processing device; 31 - X-axis moving device; 311 - X-axis motor; 312 - X-axis lead screw; 313 - X-axis nut; 314 - X-axis fixed seat; 32 - Z-axis moving device; 321 - Z-axis motor; 322 - Z-axis lead screw; 323 - Z-axis nut; 324 - Z-axis fixed seat; 325 - moving seat; 3251 - first moving plate; 3252 - first connecting seat; 33 - first clamping device; 331 - first clamping motor; 332 - first three-jaw chuck; 34 - second clamping device; 35 - processing tool; 351 - connecting column; 352 - blade seat; 353 - blade; 36 - rotating station; 361 - first motor; 362 - rotating disk; 3621 - card slot; 3622 - through hole; 363 - air suction and blowing device; 4 - shock absorption device; 41 - shock absorption spring; 42 - guide post; 43 - first fixed column; 44 - second fixed column; 45 - guiding column; 5 - screening component; 51 - screening cylinder; 52 - screening baffle; 521 - recess. Detailed implementation manners

[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this invention belongs. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments, and are not intended to limit the present invention. The term "and / or" used herein includes any and all combinations of one or more of the related listed items.

[0029] As Figures 1 to 8 shown, the present invention discloses a sealing member processing device, including a vibrating bowl feeder 1, a feeding device 2 and a processing device 3.

[0030] In this embodiment, the vibrating bowl feeder 1 is installed on the right side of the feeding device 2. The vibrating bowl feeder 1 outputs the to-be-processed materials to the feeding device 2, and the feeding device 2 transports the to-be-processed materials to the processing device 3, and the processing device 3 processes the materials.

[0031] The structure of the processing device 3 will be described in detail below. The specific structure of the processing device 3 in this embodiment is as follows: The processing device 3 includes an X-axis moving device 31, a Z-axis moving device 32, a first clamping device 33, a second clamping device 34, a processing tool 35, and a rotating station 36.

[0032] The Z-axis moving device 32 is connected to the X-axis moving device 31. The X-axis moving device 31 can drive the Z-axis moving device 32 to move along the X-axis direction. Therefore, through the X-axis moving device 31, the Z-axis moving device 32 can be driven to move horizontally. The first clamping device 33, the second clamping device 34, and the processing tool 35 can all be installed on the Z-axis moving device 32. The Z-axis moving device 32 drives the first clamping device, the second clamping device 34, and the processing tool 35 to move up and down (i.e., move in the vertical direction). Therefore, the up and down moving directions and displacements of the first clamping device 33, the second clamping device 34, and the processing tool 35 can be the same. Of course, in other embodiments, there can also be two Z-axis moving devices 32. The first clamping device 33 and the second clamping device 34 are installed on one of the Z-axis moving devices 32, and the processing tool 35 is installed on the other Z-axis moving device 32. When the second clamping device 34 is activated, the second clamping device 34 can clamp the material on the feeding device 2 and place the material on the rotating station 36. The rotating station 36 drives the material to rotate, and the processing tool 35 processes the material on the rotating station 36. The first clamping device 33 can clamp the processed material on the rotating station 36 and take out the material from the rotating station 36.

[0033] The structure of the rotating station 36 in this embodiment is as follows: The rotating station 36 includes a first motor 361 and a rotating disk 362. The first motor 361 is connected to the rotating disk 362. When the first motor 361 is activated, the first motor 361 can drive the rotating disk 362 to rotate. In order to be able to clamp the material on the rotating disk 362, a clamping groove 3621 can be integrally formed on the rotating disk 362. The material to be processed can be clamped in the clamping groove 3621. When the rotating disk 362 rotates, the rotating disk 362 can drive the material to be processed to rotate together. In this way, the processing tool 35 can cut the material and perform circular processing.

[0034] In this embodiment, as Figure 7 and Figure 8As can be seen, multiple communication holes 3622 are integrally formed at the card slot 3621 of the rotating disk 362. An air suction and blowing device 363 is also provided at the rotating station 36. The air suction and blowing device 363 is connected to the communication holes 3622. The air suction and blowing device 363 may include an air pump and a pipeline. The air pump is connected to the communication holes 3622 through the pipeline. Therefore, air suction and blowing can be performed through the communication holes 3622, and the materials on the rotating station 36 can be sucked or blown up. For example: when the materials are placed on the rotating disk 362, the air suction and blowing device 363 can suck air, and the materials can be firmly adsorbed on the rotating disk 362. When the processing device 3 processes the materials, the materials will not move and affect the processing effect. After the processing is completed, the air suction and blowing device 363 can blow air, blowing the materials upward to the second material clamping device 34. The second material clamping device 34 clamps and then drops the materials, taking the materials out of the rotating station 36.

[0035] The structure of the first material clamping device 33 in this embodiment is as follows. The first material clamping device 33 includes a first material clamping motor 331 and a first three-jaw chuck 332. The first material clamping motor 331 is connected to the first three-jaw chuck 332 through a belt. The first material clamping motor 331 can drive the first three-jaw chuck 332 to clamp and loosen. In this way, the first three-jaw chuck 332 can clamp and loosen the materials for loading and unloading.

[0036] Similarly, the structure of the second material clamping device 34 in this embodiment is the same as that of the first material clamping device 33. The second material clamping device 34 includes a second material clamping motor and a second three-jaw chuck. The second material clamping motor is connected to the second three-jaw chuck through a belt. The second material clamping motor can drive the second three-jaw chuck to clamp and loosen. The second three-jaw chuck can clamp and loosen the materials for loading and unloading.

[0037] The structure of the X-axis moving device 31 will be described in detail below. In this embodiment, the X-axis moving device 31 includes an X-axis motor 311, an X-axis lead screw 312, an X-axis nut 313, and an X-axis fixed seat 314. The X-axis motor 311 can be fixedly installed on the X-axis fixed seat 314. The X-axis lead screw 312 is connected to the X-axis motor 311. The X-axis nut 313 is engaged with the X-axis lead screw 312. A moving seat can be installed on the X-axis nut 313. Through the moving seat, the X-axis nut 313 is also connected to the Z-axis moving device 32. When the X-axis motor 311 is started, the X-axis motor 311 can drive the X-axis lead screw 312 to rotate. The X-axis lead screw 312 can drive the X-axis nut 313 to move. The X-axis nut 313 then drives the Z-axis moving device 32 to move. Therefore, the Z-axis moving device 32 can move along with the X-axis nut 313, that is Figure 1 the Z-axis moving device 32 in it can move left and right along with the X-axis nut 313.

[0038] The structure of the Z-axis moving device 32 will be described in detail below. In this embodiment, the Z-axis moving device 32 includes a Z-axis motor 321, a Z-axis lead screw 322, a Z-axis nut 323, and a Z-axis fixed seat 324. The Z-axis motor 321 is installed on the Z-axis fixed seat 324. The Z-axis lead screw 322 is connected to the Z-axis motor 321. The Z-axis nut 323 is engaged with the Z-axis lead screw 322. A moving seat 325 is also connected to the Z-axis nut 323. The first clamping device, the second clamping device 34, and the processing tool 35 can all be installed on the moving seat 325. When the Z-axis motor 321 is started, the Z-axis motor 321 can drive the Z-axis lead screw 322 to rotate. The Z-axis lead screw 322 can drive the Z-axis nut 323 to move. The Z-axis nut 323 is connected to the moving seat 325. Therefore, the moving seat 325 can move along with the Z-axis nut 323, that is, the first clamping device 33, the second clamping device 34, and the processing tool 35 can all move along with the Z-axis nut 323.

[0039] In order to ensure that the first clamping device 33 and the second clamping device 34 will not have rigid contact with the corresponding components during the clamping and unclamping processes, the present invention further provides a shock-absorbing device 4. The moving seat 325 includes a first moving plate 3251 and a second moving plate 3252. The first moving plate 3251 is connected to the Z-axis nut 323. The shock-absorbing device 4 is installed between the first moving plate 3251 and the second moving plate 3252. The first clamping device 33 and the second clamping device 34 are installed on the second moving plate 3252. The processing tool 35 is installed on the first moving plate 3251. The Z-axis nut 323 can drive the first moving plate 3251 to move up and down. Therefore, the processing tool 35 will also move up and down along with the Z-axis nut 323. The first moving plate 3251 is connected to the second moving plate 3252. The second moving plate 325 follows the first moving plate 3251 to move up and down. The first clamping device 33 and the second clamping device 34 located on the second moving plate 3252 move up and down synchronously.

[0040] The structure of the shock-absorbing device 4 will be described in detail below. The shock-absorbing device 4 in this embodiment includes a shock-absorbing spring 41, a guide post 42, and a first fixed column 43. The first fixed column 43 is fixedly installed on the first moving plate 3251. The guide post 42 passes through the first fixed column 43 and is connected to the second moving plate 3252. At the same time, the second moving plate 3252 can move along the first fixed column 43. The first fixed column 43 can also pass through the second moving plate 3252. A step is installed at the bottom of the first fixed column 43. The width of the step is greater than the width of the through hole of the first fixed column 43 passing through the second moving plate 3252. Therefore, the second moving plate 3252 will not break away from the first fixed column 43. The shock-absorbing spring 41 is sleeved on the guide post 42 and from Figure 5As can be seen, the shock-absorbing spring 41 is located between the second moving plate 3252 and the first fixed column 43. Since the first material clamping device 33 and the second material clamping device 34 are installed on the second moving plate 3252, during the loading and unloading process of the first material clamping device 33 and the second material clamping device 34, the shock-absorbing spring 41 can play a shock-absorbing role and prevent rigid contact with the corresponding components.

[0041] The structure of the processing tool 35 will be described in detail below. As Figure 1 shown, the processing tool 35 in this embodiment includes a connecting column 351, a blade seat 352, and a blade 353. The connecting column 351 is connected to the first moving plate 3251, the blade seat 352 is connected to the connecting column 351, and the blade 353 can be fixedly installed on the blade seat 352. The blade seat 352 holds the blade 353. The Z-axis moving device 32 and the X-axis moving device 31 can drive the processing tool 35 to move to the position to be cut and processed, and process the material.

[0042] In this embodiment, the feeding device 2 includes a feeding motor 21, a transmission belt 22, and a feeding frame 223. The feeding motor 21 is installed on the feeding frame 223, and the transmission belt 22 is connected to the feeding motor 21. When the feeding motor 21 is started, the feeding motor 21 can drive the transmission belt 22 to transmit through a transmission wheel. The material to be processed can follow the transmission belt 22 to be transmitted, so that the material is transmitted from the right end of the transmission belt 22 to the left end of the transmission belt 22.

[0043] In this embodiment, a blocking baffle 221 can be installed at the end of the transmission belt 22. The blocking baffle 221 forms a V-shaped structure, and the transmission belt 22 transmits the material to the V-shaped structure. The V-shaped structure can play a role in blocking the material to be processed and prevent the material to be processed from falling from the end of the transmission belt 22.

[0044] In this embodiment, a screening component 5 can be installed at the front end of the transmission belt 22. The screening component 5 includes a screening cylinder 51 and a screening baffle 52. The screening cylinder 51 is installed on the feeding frame 223, and the screening baffle 52 is connected to the output end of the screening cylinder 51. The screening baffle 52 forms a passage cavity, and the passage cavity has a structure that is narrow at the bottom and wide at the top. Since when processing the material, one surface of the material is processed, it is necessary to set the surface to be processed facing up. When the surface to be processed of the material faces up, the width of the upper end surface of the material is greater than the width of the lower end surface. The passage cavity fits the size of the surface to be processed of the material facing up. The surface to be processed passes through the screening baffle 52 facing up. When the surface to be processed faces down, the screening cylinder 51 will push the material out.

[0045] In the present invention, the material to be processed can be placed on the vibratory bowl feeder 1. The vibratory bowl feeder 1 vibrates the material to be processed and conveys the vibrated material to the feeding device 2. The feeding device 2 conveys the material to be processed from the front end to the rear end. The material to be processed on the feeding device 2 is clamped by the second clamping device 34. The second clamping device 34 clamps the material to be processed and places it on the rotating station 36. The rotating station 36 drives the material to be processed to rotate. When the material rotates, the processing tool 35 can process the material. After the processing is completed, the first clamping device 33 clamps the processed material. At the same time, the second clamping device 34 can clamp another material to be processed. The second clamping device 34 places the clamped material to be processed on the rotating station 36. By setting the first clamping device 33 and the second clamping device 34 to move synchronously, while the already processed material can be clamped by the first clamping device 33, the next material to be processed can be synchronously clamped by the second clamping device 34, saving processing time.

[0046] The present invention is not limited to the above optional embodiments. Any person can obtain other various forms of products under the inspiration of the present invention. However, no matter what changes are made in its shape or structure, as long as the technical solutions fall within the scope defined by the claims of the present invention, they are all within the protection scope of the present invention.

Claims

1. A sealing component processing equipment, characterized in that: The invention comprises a vibrating plate loader (1), a feeding device (2) and a processing device (3), wherein the vibrating plate loader (1) is arranged on one side of the feeding device (2), the vibrating plate loader (1) outputs materials to the feeding device (2), the feeding device (2) transfers the materials to the processing device (3), and the processing device (3) processes the materials. The processing device (3) comprises an X-axis moving device (31), a Z-axis moving device (32), a first material clamping device (33), a second material clamping device (34), a processing tool (35) and a rotating station (36); the Z-axis moving device (32) is connected to the X-axis moving device (31); the X-axis moving device (31) can drive the Z-axis moving device (32) to move along the X-axis direction; the first material clamping device (33), the second material clamping device (34) and the processing tool (35) are all arranged on the Z-axis moving device (32); the Z-axis moving device (32) drives the first material clamping device (33), the second material clamping device (34) and the processing tool (35) to move up and down synchronously; The second clamping device (34) can clamp the material to be processed on the feeding device (2) and place the material to be processed on the rotating station (36). The rotating station (36) drives the material to be processed to rotate, and the processing tool (35) processes the material on the rotating station (36). The first clamping device can clamp the processed material on the rotating station (36).

2. The seal processing equipment according to claim 1, characterized in that: The rotating station (36) comprises a first motor (361) and a rotating disk (362). The first motor (361) is connected to the rotating disk (362). The first motor (361) can drive the rotating disk (362) to rotate. The rotating disk (362) is provided with a clamping groove (3621), and the material to be processed can be clamped in the clamping groove (3621).

3. The seal processing equipment according to claim 2, characterized in that: A plurality of connecting holes (3622) are provided at the slot (3621) of the rotating disk (362), and a suction and blowing device (363) is also provided on the rotating station (36). The suction and blowing device (363) is connected to the connecting holes (3622). The suction and blowing device (363) can perform suction and blowing through the connecting holes (3622) to suck or blow up the material on the rotating station (36).

4. The seal processing equipment according to claim 3, characterized in that: The first clamping device (33) comprises a first clamping motor (331) and a first three-jaw chuck (332); the first clamping motor (331) is connected to the first three-jaw chuck (332) via a belt, and the first clamping motor can drive the first three-jaw chuck (332) to clamp and release; the second clamping device (34) comprises a second clamping motor and a second three-jaw chuck; the second clamping motor is connected to the second three-jaw chuck via a belt, and the second clamping motor can drive the second three-jaw chuck to clamp and release.

5. The seal processing equipment according to claim 4, characterized in that: The X-axis moving device (31) comprises an X-axis motor (311), an X-axis screw rod (312), an X-axis nut (313) and an X-axis fixing seat (314); the X-axis motor (311) is arranged on the X-axis fixing seat (314); the X-axis screw rod (312) is connected to the X-axis motor (311); the X-axis nut (313) cooperates with the X-axis screw rod (312); the X-axis nut (313) is also connected to the Z-axis moving device (32); the Z-axis moving device (32) comprises a Z-axis motor (321 ), a Z-axis screw rod (322), a Z-axis nut (323) and a Z-axis fixed seat (324), a Z-axis motor (321) is arranged on the Z-axis fixed seat (324), the Z-axis screw rod (322) is connected to the Z-axis motor (321), the Z-axis nut (323) is matched with the Z-axis screw rod (322), a moving seat (325) is also connected to the Z-axis nut (323), and the first clamping device (33), the second clamping device (34) and the processing tool (35) are all arranged on the moving seat (325).

6. The seal processing equipment according to claim 5, characterized in that: The invention also includes a shock absorbing device (4), wherein the movable seat (325) includes a first movable plate (3251) and a second movable plate (3252), wherein the first movable plate (3251) is connected to the Z-axis nut (323), the shock absorbing device (4) is arranged between the first movable plate (3251) and the second movable plate (3252), the first clamping device (33) and the second clamping device (34) are both arranged on the second movable plate (3252), and the processing tool (35) is arranged on the first movable plate (3251), the shock absorbing device (4) includes a shock absorbing spring (41), a guide column (42) and a first fixed column (43), the first fixed column (43) is arranged on the first movable plate (3251), the guide column (42) passes through the first fixed column (43) and is connected to the second movable plate (3252), the shock absorbing spring (41) is sleeved on the guide column (42), and the shock absorbing spring (41) is located between the second movable plate (3252) and the first fixed column (43).

7. The seal processing equipment according to claim 6, characterized in that: The processing tool (35) comprises a connecting column (351), a blade seat (352) and a blade (353); the connecting column (351) is connected to the first movable plate (3251); the blade seat (352) is connected to the connecting column (351); the blade (353) is arranged on the blade seat (352); and the blade seat (352) clamps the blade (353).

8. The seal processing equipment according to claim 7, characterized in that: The feeding device (2) comprises a feeding motor (21), a conveyor belt (22) and a feeding frame (223); the feeding motor (21) is arranged on the feeding frame (223); the conveyor belt (22) is connected to the feeding motor (21); and the feeding motor (21) can drive the conveyor belt (22) to perform transmission.

9. The seal processing equipment according to claim 8, characterized in that: A blocking baffle (221) is provided at the end of the conveyor belt (22), the blocking baffle (221) forms a V-shaped structure, and the conveyor belt (22) conveys the material to the V-shaped structure.

10. The seal processing equipment according to claim 9, characterized in that: A screening component (5) is provided at the front end of the conveyor belt (22), and the screening component (5) comprises a screening cylinder (51) and a screening baffle (52). The screening cylinder (51) is provided on the feeding rack (223), and the screening baffle (52) is connected to the output end of the screening cylinder (51). The screening baffle (52) forms an aisle cavity, and the aisle cavity is a structure that is narrow at the bottom and wide at the top.