Cutting device for ceramic machining

By designing a cutting device for ceramic processing, and utilizing the combination of wire rope deflection and clamping blocks, the problem of soil adhesion affecting the cutting surface was solved, achieving efficient cutting and cleaning, and improving cutting speed and quality.

CN120056259BActive Publication Date: 2026-03-24SHANDONG TMMT GRP CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

During the ceramic product processing, when metal wire cuts clay blanks, the clay easily adheres to and hardens, affecting the flatness of the cut surface and the quality of subsequent products, and making cleaning difficult.

Method used

A cutting device for ceramic processing was designed, which uses a deflecting steel wire rope in conjunction with a conveying device. The clamping block and the abutment rod work together to tighten the cutting rope and scrape off the soil. The cleaning is carried out by the reciprocating motion of the swing arm and the spring, and the integrated collection box collects the soil debris.

Benefits of technology

It improves the cutting speed of mud cakes, avoids mud cake sticking, enhances the cutting effect, improves the quality of the cut surface, and reduces environmental pollution.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120056259B_ABST
    Figure CN120056259B_ABST
Patent Text Reader

Abstract

The application relates to the technical field of ceramic processing, in particular to a cutting device for ceramic processing, which comprises a table plate, two symmetrical mounting frames are arranged on the top of the table plate, motors are fixedly installed on the side walls of the two mounting frames, output shafts are fixedly installed at the output ends of the two motors, transmission wheels are fixedly installed on the outer circumferential walls of the two output shafts, a cutting rope is arranged around the two transmission wheels, two fixed blocks are symmetrically welded on the inner side walls of the two mounting frames, a ring body is welded on each fixed block, the adjacent two clamping blocks can scrape off the soil with weak adhesion force on the surface of the cutting rope, the electric push rod drives the cutting rope and the abutting rod to move downward again, the abutting rod drives the clamping blocks to slide obliquely again and clamp the outer surface of the cutting rope, and the adjacent two clamping blocks can scrape off the soil with strong adhesion force on the surface of the cutting rope.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of ceramic processing technology, specifically a cutting device for ceramic processing. Background Technology

[0002] In the processing of ceramic products, the extruder plays a crucial role. It is responsible for extruding raw clay into regular cylindrical shapes and then sending these extruded clay blanks to an external cutting table. At this stage, operators need to perform the next step with precision. They use metal wire as a tool to carefully cut these cylindrical clay blanks into multiple clay blocks of the same size and regular shape by hand. This process requires operators to have a high degree of concentration and skill to ensure that the size and quality of each clay block meet the standards, laying a solid foundation for subsequent ceramic product processing. CN221912512U discloses a clay blank wire cutting device for ceramic product production. When operating this device, the cutting task of the clay blank is completed by the movement of a metal wire. However, once the cutting process is finished, soil adheres to the surface of the metal wire. If it is not cleaned in time, the moisture in the soil will gradually evaporate, causing the soil to harden. The attached soil can negatively impact subsequent wire cutting operations, easily causing unevenness on the cut surface of the clay blank, thus adversely affecting the quality of subsequent ceramic products; therefore, the present invention provides a cutting device for ceramic processing. Summary of the Invention

[0003] The purpose of this invention is to provide a cutting device for ceramic processing to solve the problems mentioned in the background art.

[0004] The technical solution of the present invention is: a cutting device for ceramic processing, comprising a table, two symmetrical mounting brackets on the top of the table, motors fixedly mounted on the side walls of the two mounting brackets, output shafts fixedly mounted on the output ends of the two motors, transmission wheels fixedly mounted on the outer peripheral walls of the two output shafts, a cutting rope wound between the two transmission wheels, two symmetrically arranged fixing blocks welded to the inner side walls of the two mounting brackets, a ring welded to each fixing block, a mounting frame slidably arranged on the outer peripheral wall of each ring, two symmetrically arranged clamping blocks obliquely slidably arranged on the inner circular surface of each mounting frame, a slide rail welded to the back of each clamping block, two symmetrically arranged sliding rods slidably arranged on the side wall of each mounting frame, a limit rod welded to the side of each sliding rod near the corresponding clamping block, and eight limit rods slidably arranged inside the corresponding slide rails, a circular ring welded between each pair of adjacent limit rods, and each of the eight limit rods being further arranged in a specific manner. Each of the eight springs is fitted on the outer periphery of the limiting rod, and each spring is connected between the corresponding ring and the mounting frame. Two symmetrical abutment rods are welded to the side of each ring away from the corresponding sliding rod. Two symmetrical inclined platforms are fixedly installed on the top of the table. Eight clamping blocks are distributed at both ends of the cutting rope. When two adjacent clamping blocks pull the cutting rope, it tightens the rope, thus improving the cutting effect on the clay. Two transmission wheels drive the cutting rope to rotate clockwise, and two adjacent clamping blocks can scrape away soil with weak adhesion on the surface of the cutting rope. An electric push rod then moves the cutting rope and abutment rods downwards again, and the abutment rods push the clamping blocks to slide obliquely and clamp them on the outer surface of the cutting rope. Two adjacent clamping blocks can scrape away soil with strong adhesion on the surface of the cutting rope. Simultaneously, the subsequent oblique sliding distance of the clamping blocks crushes the soil stuck between two adjacent clamping blocks, allowing it to be discharged smoothly.

[0005] Preferably, a cutting table is fixedly installed on the top of the table, and a conveying device is provided on the top of the cutting table. Several vertical grooves I are equally spaced on the top of the cutting table, and several vertical grooves II are equally spaced on the top of the two inclined platforms. When the deflected cutting rope cuts the clay blank, it will enter the corresponding vertical groove I and vertical groove II. This ensures that the cutting table and inclined platforms will not affect the cutting operation of the cutting rope. The diameter of the abutment rod is larger than the width of the vertical groove II, which prevents the abutment rod from getting stuck inside the vertical groove II.

[0006] Preferably, two symmetrical electric push rods are fixedly installed on the top of the table. A U-shaped frame is fixedly installed at the top telescopic end of each of the two electric push rods. Electric push rods are fixedly installed on the side walls of each of the two U-shaped frames. A rack is fixedly installed at the telescopic end of each of the two electric push rods. A vertical plate is welded to the top of each of the two U-shaped frames. A rotating shaft is rotatably connected to the side wall of each of the two vertical plates. Two mounting brackets are welded to the side wall of the corresponding rotating shaft. A gear that meshes with the corresponding rack is welded to the side of each rotating shaft away from the corresponding mounting bracket. The deflected upper and lower wire ropes can cut two mud cakes of the same size in a single operation, which improves the cutting speed of the mud cakes to some extent. Because of the height difference between the upper and lower cutting ropes after deflection, there is a time difference between the two mud cakes after cutting. The worker can use this time difference to remove the mud cake at the front end, which to some extent prevents the two mud cakes from sticking together after cutting. In addition, the worker can adjust the deflection angle of the cutting ropes according to actual cutting needs to quickly cut mud cakes of various thicknesses.

[0007] Preferably, two symmetrical springs are wound around the outer ring wall of each of the four rings, and eight springs are respectively connected between the corresponding fixing block and the mounting frame. Extension rods are welded to the side walls of the two mounting frames at the bottom, and several swing rods are welded at equal intervals to the outer peripheral walls of the two output shafts at the bottom. The swing rods and springs work together to intermittently push the extension rods, mounting frames and clamping blocks to swing back and forth along the ring body. The clamping blocks that swing back and forth can clean the surface of the cutting rope in the area that is not clamped, which improves the cleaning effect of the clamping blocks to a certain extent.

[0008] Preferably, an outer cylinder is fixedly installed on the inner circular surface of the ring located on the lower left side, and a telescopic cylinder is slidably arranged on the inner side of the outer cylinder, with a spring connecting the telescopic cylinder and the bottom of the inner side of the outer cylinder.

[0009] Preferably, a collection box is fixedly installed on the bottom inner side of the mounting bracket located on the right side.

[0010] Preferably, two symmetrical collection boxes are fixedly installed on the inner sidewalls of the two mounting frames located at the bottom. The soil debris scraped off by the retaining block will enter the telescopic cylinder and the collection box 2. The soil debris scraped off by the clamping block swinging left and right will enter the collection box 1 at both ends of the inner sidewall of the mounting frame. This measure reduces the pollution of soil debris to the surrounding environment to a certain extent.

[0011] This invention provides an improved cutting device for ceramic processing, which has the following improvements and advantages compared with the prior art:

[0012] 1. The deflected upper and lower wire ropes, in conjunction with the conveying device, can cut two mud cakes of the same size in a single operation, which improves the cutting speed to some extent. Due to the height difference between the upper and lower cutting ropes after deflection, there is a time difference between the two mud cakes after cutting. Workers can use this time difference to remove the mud cake at the front, which prevents the two mud cakes from sticking together after cutting to some extent. In addition, workers can adjust the deflection angle of the cutting rope according to the actual cutting needs, so as to quickly cut mud cakes of various thicknesses.

[0013] 2. The eight clamping blocks are distributed at both ends of the cutting rope. When each pair of adjacent clamping blocks pulls the cutting rope, it will cause the cutting rope to tighten, thereby improving the cutting effect of the cutting rope on the clay blank.

[0014] 3. The two drive wheels drive the cutting rope to rotate clockwise, and the two adjacent clamping blocks can scrape off the soil with weak adhesion on the surface of the cutting rope; the electric push rod then drives the cutting rope and the abutment rod to move down again, and the abutment rod pushes the clamping blocks to slide obliquely and clamp them on the outer surface of the cutting rope. The two adjacent clamping blocks can scrape off the soil with strong adhesion on the surface of the cutting rope; at the same time, the subsequent oblique sliding distance of the clamping blocks can crush the soil stuck between the two adjacent clamping blocks and discharge it smoothly.

[0015] 4. The combination of the swing arm and spring will intermittently push the extension rod, mounting frame and clamping block to swing back and forth along the ring. The clamping block swinging back and forth can clean the surface of the cutting rope in the area it is not clamped, which improves the cleaning effect of the clamping block to a certain extent. Attached Figure Description

[0016] The present invention will be further explained below with reference to the accompanying drawings and embodiments:

[0017] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0018] Figure 2 This is a schematic diagram of the mounting bracket structure of the present invention;

[0019] Figure 3 This is a schematic diagram of the transmission wheel structure of the present invention;

[0020] Figure 4 This is a schematic diagram of the inclined platform structure of the present invention;

[0021] Figure 5 This is the present invention. Figure 4 Enlarged schematic diagram of part A;

[0022] Figure 6 This is a schematic diagram of the pendulum structure of the present invention;

[0023] Figure 7 This is the present invention. Figure 6 Enlarged schematic diagram of section B structure;

[0024] Figure 8 This is a schematic diagram of the cutting rope structure of the present invention;

[0025] Figure 9 This is the present invention. Figure 8 Enlarged schematic diagram of section C;

[0026] Figure 10 This is the present invention. Figure 8 An enlarged schematic diagram of the D-section structure.

[0027] Explanation of reference numerals in the attached figures:

[0028] 1. Tabletop; 2. Mounting frame; 3. Motor; 4. Output shaft; 5. Transmission wheel; 6. Cutting rope; 7. Fixing block; 8. Ring body; 9. Mounting frame; 10. Clamping block; 11. Slide rail; 12. Slide rod; 13. Limiting rod; 14. Circular ring; 15. Spring 1; 16. Abutment rod; 17. Inclined platform; 18. Cutting table; 19. Conveying device; 20. Vertical groove 1; 21. Vertical groove 2; 22. Electric push rod 1; 23. U-shaped frame; 24. Electric push rod 2; 25. Rack; 26. Vertical plate; 27. Rotating shaft; 28. Gear; 29. ​​Spring 2; 30. Extension rod; 31. Swing rod; 32. Outer cylinder; 33. Telescopic cylinder; 34. Spring 3; 35. Collection box 1; 36. Collection box 2. Detailed Implementation

[0029] The present invention will now be described in detail, and the technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0030] This invention provides an improved cutting device for ceramic processing. The technical solution of this invention is as follows:

[0031] like Figures 1-10As shown, a cutting device for ceramic processing includes a table 1, a cutting table 18 fixedly mounted on the top of the table 1, a conveying device 19 mounted on the top of the cutting table 18, two symmetrical electric push rods 22 fixedly mounted on the top of the table 1, U-shaped frames 23 fixedly mounted on the top telescopic ends of the two electric push rods 22, electric push rods 24 fixedly mounted on the side walls of the two U-shaped frames 23, racks 25 fixedly mounted on the telescopic ends of the two electric push rods 24, vertical plates 26 welded to the top of the two U-shaped frames 23, and rotating shafts 27 rotatably connected to the side walls of the two vertical plates 26, two symmetrical mounting brackets 2 on the top of the table 1, and the two mounting brackets 2 are respectively welded to the side walls of the corresponding rotating shafts 27, gears 28 that mesh with the corresponding racks 25 are welded to the side of the two rotating shafts 27 away from the corresponding mounting brackets 2, motors 3 fixedly mounted on the side walls of the two mounting brackets 2, and output shafts 4 fixedly mounted on the output ends of the two motors 3. Two transmission wheels 5 are fixedly installed on the outer peripheral walls of the two output shafts 4. A cutting rope 6 is wound between the two transmission wheels 5. In use, the control electric push rod 24 drives the rack 25 to slide. The sliding rack 25 drives the gear 28 to rotate. The gear 28 drives the rotating shaft 27 and the mounting frame 2 to rotate. The mounting frame 2 drives the transmission wheels 5 and the cutting rope 6 to rotate. The steel wire ropes on the upper and lower sides after deflection, together with the conveying device 19, can cut two mud cakes of the same size at a time, which improves the cutting speed of mud cakes to a certain extent. In addition, due to the height difference between the upper and lower cutting ropes 6 after deflection, there is a time difference between the two mud cakes after cutting. The operator can use this time difference to remove the mud cake at the front end, which avoids the two mud cakes sticking together after cutting to a certain extent. In addition, the operator can also adjust the deflection angle of the cutting rope 6 according to the actual cutting needs to cut mud cakes of various thicknesses.

[0032] Furthermore, during cutting, the electric push rod 22 drives the U-shaped frame 23, the mounting frame 2, and the cutting rope 6 to move downwards, and the downward-moving cutting rope 6 cuts the clay blank. Two symmetrically arranged fixing blocks 7 are welded to the inner walls of both mounting frames 2. Each fixing block 7 has a ring 8 welded to it. Each ring 8 has a mounting frame 9 slidably arranged on its outer peripheral wall. Each mounting frame 9 has two symmetrically arranged clamping blocks 10 slidably arranged on its inner circular surface. Each clamping block 10 has a slide rail 11 welded to its back. Each mounting frame 9 has two symmetrically arranged sliding rods 12 slidably arranged on its side wall. Each sliding rod 12 has a limit rod 13 welded to the side closest to the corresponding clamping block 10, and the eight limit rods 13 are slidably arranged. Inside the corresponding slide rail 11, a ring 14 is welded between every two adjacent limit rods 13. A spring 15 is fitted on the outer peripheral wall of each limit rod 13, and eight springs 15 are respectively connected between the corresponding ring 14 and the mounting frame 9. Two symmetrical abutment rods 16 are welded to the side of each ring 14 away from the corresponding slide rod 12. Two symmetrical inclined platforms 17 are fixedly installed on the top of the table 1. The mounting bracket 2 drives the fixing block 7, ring 8, mounting frame 9 and abutment rods 16 to move down. As the abutment rods 16 move down, they will contact the inclined surface of the inclined platform 17 and slide down along the inclined surface. At this time, the abutment rods 16 are pushed by the inclined platform 17. The ring 14 and the slide rod 12 slide towards the mounting frame 9. The slide rod 12 pushes the limiting rod 13, the slide rail 11, and the clamping block 10 to slide. Because the clamping block 10 is obliquely slidably connected to the inner wall of the mounting frame 9, adjacent clamping blocks 10 will move closer to each other during sliding, thus clamping the upper and lower ends of the cutting rope 6. Because the diameter of the circular hole on the side where the two adjacent clamping blocks 10 are close to each other is smaller than the diameter of the cutting rope 6, after the clamping block 10 contacts the outer surface of the cutting rope 6, the clamping block 10 can still move obliquely a certain distance. The clamping block 10 that continues to move obliquely clamps the upper and lower ends of the cutting rope 6 and pulls the cutting rope 6 to move. The eight clamping blocks are provided. Blocks 10 are distributed at both ends of the cutting rope 6. When two adjacent clamping blocks 10 pull the cutting rope 6, the cutting rope 6 will be tightened, thereby improving the cutting effect of the cutting rope 6 on the clay blank. The top of the cutting table 18 is provided with several vertical grooves 20 at equal intervals, and the tops of the two inclined platforms 17 are provided with several vertical grooves 21 at equal intervals. When the deflected cutting rope 6 cuts the clay blank, it will enter the corresponding vertical grooves 20 and 21. This ensures that the cutting table 18 and the inclined platforms 17 will not affect the cutting operation of the cutting rope 6. In addition, the diameter of the abutment rod 16 is larger than the width of the vertical groove 21. This ensures that the abutment rod 16 will not get stuck inside the vertical groove 21.After cutting is completed, the cutting rope 6 returns to its initial vertical position. Then, the electric push rod 22 moves the cutting rope 6 and the abutment rod 16 downwards again, causing the abutment rod 16 to push the clamping block 10 to slide obliquely and contact the outer surface of the cutting rope 6. It should be noted that at this time, the clamping block 10 only contacts the outer surface of the cutting rope 6 and does not apply clamping force. Subsequently, the motor 3 drives the output shaft 4 to rotate, which in turn drives the transmission wheel 5 to rotate. The two transmission wheels 5 cause the cutting rope 6 to rotate clockwise. During this process, the two adjacent clamping blocks 10 can scrape away the loosely adhered soil on the surface of the cutting rope 6. After a period of time, the electric push rod 22... The cutting rope 6 and the abutment rod 16 are moved downwards again, and the abutment rod 16 pushes the clamping block 10 to slide obliquely and clamp onto the outer surface of the cutting rope 6. It should be noted that the downward movement distance of the abutment rod 16 during this process is less than the downward movement distance of the abutment rod 16 when it is taut; that is, the clamping force of the clamping block 10 on the cutting rope 6 at this time is less than the clamping force of the clamping block 10 on the cutting rope 6 when it is taut. Subsequently, the motor 3 drives the cutting rope 6 to rotate clockwise again. During this process, the two adjacent clamping blocks 10 can scrape off the soil with strong adhesion to the surface of the cutting rope 6. At the same time, the subsequent oblique sliding distance of the clamping block 10 can crush the soil stuck between the two adjacent clamping blocks 10, allowing it to be smoothly discharged.

[0033] Furthermore, two symmetrical springs 29 are wound around the outer ring wall of each of the four ring bodies 8, and eight springs 29 are respectively connected between the corresponding fixing block 7 and the mounting frame 9. Extension rods 30 are welded to the side walls of the two mounting frames 9 at the bottom. Several swing rods 31 are welded at equal intervals to the outer peripheral walls of the two output shafts 4 at the bottom. The output shafts 4 drive the swing rods 31 to rotate. The swing rods 31 and the springs 29 work together to intermittently push the extension rods 30, the mounting frames 9 and the clamping blocks 10 to swing back and forth along the ring body 8. The clamping blocks 10 swinging back and forth can clean the surface of the cutting rope 6 in the area not clamped, which improves the cleaning effect of the clamping blocks 10 to a certain extent.

[0034] Furthermore, an outer cylinder 32 is fixedly installed on the inner circular surface of the ring 14 located on the lower left. A telescopic cylinder 33 is slidably installed inside the outer cylinder 32. A spring 34 connects the telescopic cylinder 33 and the bottom of the inner side of the outer cylinder 32. A collection box 35 is fixedly installed on the bottom of the inner side of the mounting frame 2 located on the right. Two symmetrical collection boxes 36 are fixedly installed on the inner side walls of the two mounting frames 9 located at the lower part. The soil debris scraped off by the clamping block 10 will enter the telescopic cylinder 33 and the collection box 36. The soil debris scraped off by the clamping block 10 swinging back and forth will enter the collection boxes 35 at both ends of the inner side wall of the mounting frame 9. This measure reduces the pollution of soil debris to the surrounding environment to a certain extent.

[0035] Working principle: During use, the electric push rod 24 drives the rack 25 to slide, the sliding rack 25 drives the gear 28 to rotate, the gear 28 drives the rotating shaft 27 and the mounting frame 2 to rotate, and the mounting frame 2 drives the transmission wheel 5 and the cutting rope 6 to rotate. The steel wire ropes on the upper and lower sides after deflection, together with the conveying device 19, can cut two mud cakes of the same size in one go, which improves the cutting speed of mud cakes to a certain extent. In addition, due to the height difference between the upper and lower cutting ropes 6 after deflection, there is a time difference between the two mud cakes after cutting. The operator can use this time difference to remove the mud cake at the front end, which avoids the two mud cakes sticking together after cutting to a certain extent. In addition, the operator can also adjust the deflection angle of the cutting rope 6 according to the actual cutting needs to cut mud cakes of various thicknesses.

[0036] During cutting, the electric push rod 22 drives the U-shaped frame 23, the mounting frame 2, and the cutting rope 6 to move downwards, and the moving cutting rope 6 cuts the clay blank. During this process, the mounting frame 2 drives the fixing block 7, the ring 8, the mounting frame 9, and the abutment rod 16 to move downwards. As the abutment rod 16 moves downwards, it contacts the inclined surface of the inclined platform 17 and slides downwards along the inclined surface. At this time, the abutment rod 16, under the action of the inclined platform 17, pushes the ring 14 and the sliding rod 12 to slide towards the mounting frame 9. The sliding rod 12 pushes the limiting rod 13, the slide rail 11, and the clamping block 10 to slide. Due to the gap between the clamping block 10 and the inner wall of the mounting frame 9... The oblique sliding connection allows two adjacent clamping blocks 10 to move closer to each other during sliding, thus clamping the upper and lower ends of the cutting rope 6. Since the diameter of the circular hole on the side where two adjacent clamping blocks 10 move closer to each other is smaller than the diameter of the cutting rope 6, after the clamping block 10 contacts the outer surface of the cutting rope 6, the clamping block 10 can still move obliquely a certain distance. The clamping block 10 that continues to move obliquely clamps the upper and lower ends of the cutting rope 6 and pulls the cutting rope 6 to move. The eight clamping blocks 10 are distributed at both ends of the cutting rope 6. When each pair of adjacent clamping blocks 10 pulls the cutting rope 6, it will cause the cutting rope 6 to tighten, thereby improving the cutting effect of the cutting rope 6 on the clay blank.

[0037] After cutting is completed, the cutting rope 6 returns to its initial vertical position. Then, the electric push rod 22 drives the cutting rope 6 and the abutment rod 16 to move downwards again, causing the abutment rod 16 to push the clamping block 10 to slide obliquely and make the clamping block 10 contact the outer surface of the cutting rope 6. It should be noted that at this time, the clamping block 10 only contacts the outer surface of the cutting rope 6 and does not apply clamping force to the cutting rope 6. Subsequently, the motor 3 drives the output shaft 4 to rotate, the output shaft 4 drives the transmission wheel 5 to rotate, and the two transmission wheels 5 drive the cutting rope 6 to rotate. The cutting rope 6 rotates clockwise; during this process, the two adjacent clamping blocks 10 can scrape off the soil with weak adhesion on the surface of the cutting rope 6; after a period of time, the electric push rod 12 drives the cutting rope 6 and the abutment rod 16 to move downwards again, and the abutment rod 16 pushes the clamping block 10 to slide obliquely and clamp it on the outer surface of the cutting rope 6; it should be noted that the downward movement distance of the abutment rod 16 during this process is less than the downward movement distance of the abutment rod 16 when it is taut, that is to say, the clamping force of the clamping block 10 on the cutting rope 6 at this time is less than that of the clamping block 10 when it is taut. The clamping force of the cutting rope 6 is 0; subsequently, the motor 3 drives the cutting rope 6 to rotate clockwise again. During this process, the two adjacent clamping blocks 10 can scrape off the soil with strong adhesion on the surface of the cutting rope 6; at the same time, the subsequent oblique sliding distance of the clamping blocks 10 can crush the soil stuck between the two adjacent clamping blocks 10, allowing it to be discharged smoothly; in addition, the output shaft 4 drives several swing rods 31 to rotate, and the swing rods 31 and the spring 29 will intermittently push the extension rod 30. The mounting frame 9 and the clamping block 10 swing back and forth along the ring 8. The clamping block 10, swinging back and forth, can clean the surface of the cutting rope 6 in the area it does not clamp, which improves the cleaning effect of the clamping block 10 to a certain extent. In addition, the dirt and debris scraped off by the clamping block 10 will enter the telescopic cylinder 33 and the second collection box 36. The dirt and debris scraped off by the clamping block 10 swinging back and forth will enter the first collection box 35 at both ends of the inner side wall of the mounting frame 9, which reduces the pollution of dirt and debris to the surrounding environment to a certain extent.

[0038] The foregoing description enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the invention. Therefore, the invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A cutting device for ceramic processing, comprising a table (1), characterized in that: The tabletop (1) has two symmetrical mounting brackets (2) on its top. Motors (3) are fixedly mounted on the side walls of the two mounting brackets (2). Output shafts (4) are fixedly mounted on the output ends of the two motors (3). Transmission wheels (5) are fixedly mounted on the outer peripheral walls of the two output shafts (4). A cutting rope (6) is wound between the two transmission wheels (5). Two symmetrically arranged fixing blocks (7) are welded to the inner side walls of the two mounting brackets (2). A ring (8) is welded to each fixing block (7). A mounting frame (9) is slidably arranged on the outer peripheral wall of each ring (8). Two symmetrical clamping blocks (10) are obliquely slidably arranged on the inner circular surface of each mounting frame (9). A slide rail is welded to the back of each clamping block (10). (11) Two symmetrical sliding rods (12) are slidably arranged on the side wall of each mounting frame (9). Each sliding rod (12) is welded with a limit rod (13) on the side near the corresponding clamping block (10). The eight limit rods (13) are slidably arranged inside the corresponding slide rail (11). A ring (14) is welded between each two adjacent limit rods (13). A spring (15) is sleeved on the outer peripheral wall of each limit rod (13). The eight springs (15) are connected between the corresponding ring (14) and the mounting frame (9). Two symmetrical abutment rods (16) are welded on the side of each ring (14) away from the corresponding sliding rod (12). Two symmetrical inclined platform bodies (17) are fixedly installed on the top of the table (1). The tabletop (1) is fixedly equipped with two symmetrical electric push rods (22). The telescopic ends of the two electric push rods (22) are fixedly equipped with U-shaped frames (23). The side walls of the two U-shaped frames (23) are fixedly equipped with electric push rods (24). The telescopic ends of the two electric push rods (24) are fixedly equipped with racks (25). The top of the two U-shaped frames (23) is welded with vertical plates (26). The side walls of the two vertical plates (26) are rotatably connected with rotating shafts (27). The two mounting brackets (2) are respectively welded to the side walls of the corresponding rotating shafts (27). The side of the two rotating shafts (27) away from the corresponding mounting brackets (2) is welded with gears (28) that mesh with the corresponding racks (25).

2. The cutting device for ceramic processing according to claim 1, characterized in that: A cutting table (18) is fixedly installed on the top of the table (1). A conveying device (19) is provided on the top of the cutting table (18). Several vertical grooves (20) are opened at equal intervals on the top of the cutting table (18). Several vertical grooves (21) are opened at equal intervals on the tops of the two inclined table bodies (17).

3. The cutting device for ceramic processing according to claim 1, characterized in that: Two symmetrical springs (29) are wound around the outer ring wall of each of the four ring bodies (8), and eight springs (29) are respectively connected between the corresponding fixing block (7) and the mounting frame (9). Extension rods (30) are welded to the side walls of the two mounting frames (9) located at the bottom, and several swing rods (31) are welded at equal intervals on the outer peripheral walls of the two output shafts (4) located at the bottom.

4. The cutting device for ceramic processing according to claim 1, characterized in that: An outer cylinder (32) is fixedly installed on the inner circular surface of the ring (14) located on the lower left side. A telescopic cylinder (33) is slidably arranged inside the outer cylinder (32). A spring (34) is connected between the telescopic cylinder (33) and the bottom of the inner side of the outer cylinder (32).

5. A cutting device for ceramic processing according to claim 1, characterized in that: A collection box (35) is fixedly installed on the bottom inner side of the mounting bracket (2) located on the right side.

6. The cutting device for ceramic processing according to claim 1, characterized in that: Two symmetrical collection boxes (36) are fixedly installed on the inner sidewalls of the two mounting frames (9) located at the bottom.

Citation Information

Patent Citations

  • Mud blank wire cutting device for ceramic product production

    CN221912512U

  • Horizontal cutting device for autoclaved aerated concrete product production

    CN112476741A

  • Cutting device and aerated concrete cutting process

    CN114953135A