Cutting device for ceramic machining
By designing a cutting device for ceramic processing, the combined structure of cutting rope and clamping block is used to solve the problem of soil residue after cutting, the cutting efficiency and accuracy are improved, and the quality of ceramic products is ensured.
Patent Information
- Application Number
- CN202510478917.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-16
AI Technical Summary
During the process of ceramic products, the soil left on the metal wire after cutting will cause uneven subsequent cutting, affecting the quality of the ceramic products.
A cutting device for ceramic processing is designed, using a combined structure of cutting rope and clamping block. The cutting rope is driven to rotate through the transmission wheel. The clamping block scrapes and crushes the soil adhered to the cutting rope surface to ensure the cleanliness of the cutting surface.
It improves cutting efficiency and accuracy, avoids the problem of uneven cutting surface caused by soil residue, and ensures the quality of ceramic products.
Smart Images

Figure CN120056259A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of ceramic processing, and specifically to a cutting device for ceramic processing. Background Art
[0002] In the process of ceramic product processing, an extruder plays a crucial role. It is responsible for extruding the mud blank raw materials into regular cylindrical shapes and sending these extruded mud blanks to an external cutting table. In this link, operators need to carry out the next step accurately. They use metal wires as tools and carefully cut these cylindrical mud blanks into multiple mud blocks of the same size and regular shape by manual cutting. This process requires operators to have a high degree of concentration and skilled skills to ensure that the size and quality of each mud block meet the standards, laying a solid foundation for the subsequent processing of ceramic products. A mud blank wire cutting device for ceramic product production disclosed in the publication number CN221912512U completes the cutting task of the mud blank through the movement of the metal wire. However, once the cutting process is over, soil will adhere to the surface of the metal wire. If not cleaned in time, the moisture in the soil will gradually evaporate, resulting in the hardening of the soil. This adhered soil will have a negative impact on the subsequent wire cutting operation, easily causing uneven cutting surfaces of the mud blank, thus having an adverse effect on the quality of subsequent ceramic products; for this reason, the present invention provides a cutting device for ceramic processing. Summary of the Invention
[0003] The purpose of the present invention is to provide a cutting device for ceramic processing to solve the problems raised in the above background art.
[0004] The technical solution of the present invention is: a cutting device for ceramic processing, including a tabletop. Two symmetrical mounting brackets are provided on the top of the tabletop. Motors are fixedly installed on the side walls of the two mounting brackets. Output shafts are fixedly installed at the output ends of the two motors. Transmission wheels are fixedly installed on the outer peripheral walls of the two output shafts. A cutting rope is wound between the two transmission wheels. Two symmetrically arranged fixing blocks are welded on the inner side walls of the two mounting brackets. A ring body is welded on each fixing block. An installation frame is slidably arranged on the outer peripheral wall of each ring body. Two symmetrically arranged clamping blocks are obliquely slidably arranged on the inner circular surface of each installation frame. A slide rail is welded on the back of each clamping block. Two symmetrically arranged slide rods are slidably arranged on the side wall of each installation frame. A limiting rod is welded on one side of each slide rod close to the corresponding clamping block. The eight limiting rods are respectively slidably arranged inside the corresponding slide rails. A circular ring is welded between every two adjacent limiting rods. A first spring is sleeved on the outer peripheral wall of each limiting rod. The eight first springs are respectively connected between the corresponding circular ring and the installation frame. Two symmetrically arranged abutting rods are welded on one side of each circular ring away from the corresponding slide rod. Two symmetrically arranged inclined platform bodies are fixedly installed on the top of the tabletop. The eight clamping blocks arranged are distributed at both ends of the cutting rope. When every two adjacent clamping blocks pull the cutting rope, the cutting rope will be tightened, thereby improving the cutting effect of the cutting rope on the clay blank. The two transmission wheels drive the cutting rope to rotate clockwise. The adjacent two clamping blocks can scrape off the soil with weak adhesion on the surface of the cutting rope. The first electric push rod drives the cutting rope and the abutting rod to move down again. The abutting rod pushes the clamping block to slide obliquely again and clamp on the outer surface of the cutting rope. The adjacent two clamping blocks can scrape off the soil with strong adhesion on the surface of the cutting rope. At the same time, the distance of the subsequent oblique sliding of the clamping block can crush the soil stuck between the adjacent two clamping blocks, so that it can be discharged smoothly.
[0005] Preferably, a cutting table is fixedly installed on the top of the tabletop. A conveying device is arranged on the top of the cutting table. A number of first vertical grooves are equidistantly opened on the top of the cutting table. A number of second vertical grooves are equidistantly opened on the tops of the two inclined platform bodies. When the deflected cutting rope cuts the clay blank, it will enter the corresponding first vertical grooves and second vertical grooves. This makes the set cutting table and inclined platform bodies not affect the cutting operation of the cutting rope. The diameter of the abutting rod is greater than the width of the second vertical groove. This makes the abutting rod not get stuck inside the second vertical groove.
[0006] Preferably, two symmetrically arranged first electric push rods are fixedly installed at the top of the table board. The telescopic ends of the two first electric push rods are fixedly installed with U-shaped frames. Second electric push rods are fixedly installed on the side walls of the two U-shaped frames. The telescopic ends of the two second electric push rods are fixedly installed with racks. Vertical plates are welded to the tops of the two U-shaped frames. Rotating shafts are rotatably connected to the side walls of the two vertical plates, and two mounting frames are respectively welded to the side walls of the corresponding rotating shafts. Gears meshing with the corresponding racks are welded to one side of the two rotating shafts away from the corresponding mounting frames. The steel wire ropes on the upper and lower sides after deflection can cut out two mud cakes of the same size at one time, which improves the cutting rate of the mud cakes to a certain extent; due to the height difference between the cutting ropes on the upper and lower sides after deflection, there is a time difference between the two mud cakes after cutting, and the staff can use this time difference to take away the mud cake at the front end, which avoids the two cut mud cakes sticking together to a certain extent; in addition, the staff can also adjust the deflection angle of the cutting rope according to the actual cutting requirements to quickly cut out mud cakes of various thicknesses.
[0007] Preferably, two symmetrically arranged second springs are wound around the outer ring walls of the four rings, and the eight second springs are respectively connected between the corresponding fixing blocks and the mounting frames. Extension rods are welded to the side walls of the two lower mounting frames. A number of swing rods are equally spaced and welded to the outer peripheral walls of the two lower output shafts. The cooperation of the arranged swing rods and the second springs will intermittently push the extension rods, the mounting frames and the clamping blocks to swing left and right along the ring body. The clamping blocks that swing left and right can clean the surface of the cutting rope in the unclamped area, 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 left lower ring. A telescopic cylinder is slidably arranged inside the outer cylinder. A third spring is connected between the telescopic cylinder and the inner bottom of the outer cylinder.
[0009] Preferably, a first collection box is fixedly installed at the inner bottom of the mounting frame on the right side.
[0010] Preferably, two symmetrically arranged second collection boxes are fixedly installed on the inner side walls of the two lower mounting frames. The soil debris scraped off by the holding blocks will enter the telescopic cylinder and the second collection boxes. The soil debris scraped off by the clamping blocks swinging left and right will enter the first collection boxes at both ends of the inner side walls of the mounting frames, which reduces the pollution of the surrounding environment by the soil debris to a certain extent.
[0011] The present invention provides a cutting device for ceramic processing through improvement. Compared with the prior art, it has the following improvements and advantages: 1. The wire ropes on the upper and lower sides after deflection cooperate with the conveying device to cut out two mud cakes of the same size at a time, which improves the cutting rate of the mud cakes to a certain extent; due to the height difference between the cutting ropes on the upper and lower sides after deflection, there is a time difference between the two mud cakes after cutting, and the staff can use this time difference to take away the mud cake at the front end, which avoids the adhesion of the two mud cakes after cutting to a certain extent; in addition, the staff can also adjust the deflection angle of the cutting rope according to the actual cutting requirements to quickly cut out mud cakes of various thicknesses. 2. The eight clamping blocks are arranged at both ends of the cutting rope. When every two adjacent clamping blocks pull the cutting rope, it will cause the cutting rope to be tightened, thereby improving the cutting effect of the cutting rope on the mud blank. 3. The two driving wheels drive the cutting rope to rotate clockwise. The adjacent two clamping blocks can scrape off the soil with weak adhesion on the surface of the cutting rope; the electric push rod 1 drives the cutting rope and the abutting rod to move down again, and the abutting rod pushes the clamping block to slide obliquely again and clamp on the outer surface of the cutting rope. The adjacent two clamping blocks can scrape off the soil with strong adhesion on the surface of the cutting rope; at the same time, the distance of the subsequent oblique sliding of the clamping block can crush the soil stuck between the two adjacent clamping blocks to make it smoothly discharged. 4. The cooperation of the swing rod and the spring 2 will intermittently push the extension rod, the mounting frame and the clamping block to swing left and right along the ring body. The clamping block swinging left and right can clean the surface of the cutting rope in the unclamped area, which improves the cleaning effect of the clamping block to a certain extent. Brief Description of the Drawings
[0012] The present invention will be further explained below with reference to the drawings and embodiments: Figure 1 is a three-dimensional structural schematic diagram of the present invention; Figure 2 is a structural schematic diagram of the mounting frame of the present invention; Figure 3 is a structural schematic diagram of the driving wheel of the present invention; Figure 4 is a structural schematic diagram of the inclined surface table body of the present invention; Figure 5 is the present invention Figure 4 A partial enlarged structural schematic diagram; Figure 6 is a structural schematic diagram of the swing rod of the present invention; Figure 7 is the present invention Figure 6 B partial enlarged structural schematic diagram; Figure 8 is a structural schematic diagram of the cutting rope of the present invention; Figure 9 is the present invention Figure 8Schematic enlarged view of the C part structure; Figure 10 This is the present invention Figure 8 Schematic enlarged view of the D part structure.
[0013] Explanation of reference numerals in the drawings: 1. Table board; 2. Mounting frame; 3. Motor; 4. Output shaft; 5. Driving wheel; 6. Cutting rope; 7. Fixed block; 8. Ring body; 9. Mounting frame; 10. Clamping block; 11. Slide rail; 12. Slide bar; 13. Limiting rod; 14. Ring; 15. First spring; 16. Abutting rod; 17. Inclined platform; 18. Cutting table; 19. Conveying device; 20. First vertical groove; 21. Second vertical groove; 22. First electric push rod; 23. U-shaped frame; 24. Second electric push rod; 25. Rack; 26. Vertical plate; 27. Rotating shaft; 28. Gear; 29. Second spring; 30. Extension rod; 31. Swing rod; 32. Outer cylinder; 33. Telescopic cylinder; 34. Third spring; 35. First collection box; 36. Second collection box. Detailed implementation manners
[0014] The present invention will be described in detail below. The technical solutions in the embodiments of the present invention are clearly and completely described. 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.
[0015] The present invention provides a cutting device for ceramic processing by improvement. The technical solution of the present invention is as follows: As Figures 1 - 10As shown in the figure, a cutting device for ceramic processing includes a table board 1. A cutting table 18 is fixedly installed on the top of the table board 1. A conveying device 19 is arranged on the top of the cutting table 18. Two symmetrically arranged electric push rods 22 are fixedly installed on the top of the table board 1. The telescopic ends of the two electric push rods 22 are fixedly installed with U-shaped frames 23. Electric push rods 24 are fixedly installed on the side walls of the two U-shaped frames 23. The telescopic ends of the two electric push rods 24 are fixedly installed with racks 25. Vertical plates 26 are welded on the tops of the two U-shaped frames 23. Rotating shafts 27 are rotatably connected to the side walls of the two vertical plates 26. Two symmetrically arranged mounting frames 2 are arranged on the top of the table board 1, and the two mounting frames 2 are respectively welded on the side walls of the corresponding rotating shafts 27. Gears 28 meshing with the corresponding racks 25 are welded on the sides of the two rotating shafts 27 away from the corresponding mounting frames 2. Motors 3 are fixedly installed on the side walls of the two mounting frames 2. Output shafts 4 are fixedly installed at the output ends of the two motors 3. 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. During use, control the electric push rod 24 to drive 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 wheel 5 and the cutting rope 6 to rotate. The upper and lower steel wires after deflection cooperate with the conveying device 19 to cut out two mud cakes of the same size at one time, which improves the cutting rate of the 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. Workers can use this time difference to take away the mud cake at the front end, which avoids the two cut mud cakes sticking together to a certain extent. In addition, workers can also adjust the deflection angle of the cutting rope 6 according to the actual cutting requirements to cut out mud cakes of various thicknesses.
[0016] Further, during cutting, the first electric push rod 22 is set to drive the U-shaped frame 23, the mounting frame 2 and the cutting rope 6 to move downward, and the downward moving cutting rope 6 cuts the clay blank; two fixing blocks 7 are symmetrically welded on the inner side walls of the two mounting frames 2, and a ring body 8 is welded on each fixing block 7. An installation frame 9 is slidably arranged on the outer peripheral wall of each ring body 8. Two symmetric clamping blocks 10 are obliquely slidably arranged on the inner circular surface of each installation frame 9. A slide rail 11 is welded on the back of each clamping block 10. Two symmetric slide rods 12 are slidably arranged on the side wall of each installation frame 9. A limiting rod 13 is welded on one side of each slide rod 12 close to the corresponding clamping block 10. The eight limiting rods 13 are respectively slidably arranged inside the corresponding slide rails 11. A circular ring 14 is welded between every two adjacent limiting rods 13. A first spring 15 is sleeved on the outer peripheral wall of each limiting rod 13, and the eight first springs 15 are respectively connected between the corresponding circular rings 14 and the installation frame 9. Two symmetric abutting rods 16 are welded on one side of each circular ring 14 away from the corresponding slide rod 12. Two symmetric inclined platform bodies 17 are fixedly installed on the top of the table board 1. The mounting frame 2 drives the fixing block 7, the ring body 8, the installation frame 9 and the abutting rod 16 to move downward. As the abutting rod 16 moves downward, the set abutting rod 16 will contact the inclined surface of the inclined platform body 17 and slide downward along the inclined surface. At this time, the set abutting rod 16 pushes the circular ring 14 and the slide rod 12 to slide towards the installation frame 9 under the action of the inclined platform body 17. The set slide rod 12 pushes the limiting rod 13, the slide rail 11 and the clamping block 10 to slide; since the clamping block 10 is obliquely slidably connected with the inner side wall of the installation frame 9, the adjacent two clamping blocks 10 will approach each other when sliding, and then clamp the upper and lower ends of the cutting rope 6; since the diameter of the circular hole opened on the side where the adjacent two clamping blocks 10 approach 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 set clamping block 10 can still move obliquely for a certain distance. The continuously obliquely moving clamping block 10 clamps the upper and lower ends of the cutting rope 6 and pulls the cutting rope 6 to move; the eight set clamping blocks 10 are distributed at both ends of the cutting rope 6. When every two adjacent clamping blocks 10 pull the cutting rope 6, it will cause the cutting rope 6 to be tightened, thereby improving the cutting effect of the cutting rope 6 on the clay blank; among them, a number of first vertical grooves 20 are equally spaced on the top of the cutting table 18, and a number of second vertical grooves 21 are equally spaced on the top of the two inclined platform bodies 17. When the deflected cutting rope 6 cuts the clay blank, it will enter the corresponding first vertical grooves 20 and second vertical grooves 21. This makes the set cutting table 18 and inclined platform body 17 not affect the cutting operation of the cutting rope 6; in addition, the diameter of the abutting rod 16 is larger than the width of the second vertical groove 21, which makes the abutting rod 16 not get stuck inside the second vertical groove 21;After the cutting is completed, the set cutting rope 6 is reset to its initial vertical state. Subsequently, the first electric push rod 22 drives the cutting rope 6 and the abutting rod 16 to move downward again, so that the abutting rod 16 pushes the clamping block 10 to slide obliquely again and makes 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 a clamping force to the cutting rope 6. Subsequently, the set motor 3 drives the output shaft 4 to rotate, the output shaft 4 drives the transmission wheel 5 to rotate, and the two set transmission wheels 5 drive the cutting rope 6 to rotate clockwise. During this process, the adjacent two 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 first electric push rod 22 drives the cutting rope 6 and the abutting rod 16 to move downward again, and the abutting rod 16 pushes the clamping block 10 to slide obliquely again and clamp on the outer surface of the cutting rope 6. It should be noted that the downward movement distance of the abutting rod 16 in this process is less than the downward movement distance of the abutting rod 16 when it is tightened, that is to say, 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 tightened. Subsequently, the set motor 3 drives the cutting rope 6 to rotate clockwise again. During this process, the adjacent two clamping blocks 10 can scrape off the soil with strong adhesion on the surface of the cutting rope 6. At the same time, the distance of the subsequent oblique sliding of the clamping block 10 can crush the soil stuck between the adjacent two clamping blocks 10 and make it discharged smoothly.
[0017] Further, two symmetric second springs 29 are wound around the outer ring walls of the four ring bodies 8, and the eight second springs 29 are respectively connected between the corresponding fixed blocks 7 and the mounting frames 9. Extension rods 30 are welded on the side walls of the two lower mounting frames 9. A plurality of swing rods 31 are equally spaced and welded on the outer peripheral walls of the two lower output shafts 4. The set output shaft 4 drives the plurality of swing rods 31 to rotate. The cooperation of the set swing rods 31 and the second springs 29 will intermittently push the extension rods 30, the mounting frames 9 and the clamping blocks 10 to swing left and right along the ring bodies 8. The clamping blocks 10 that swing left and right can clean the surface of the cutting rope 6 in the unclamped area, which improves the cleaning effect of the clamping blocks 10 to a certain extent.
[0018] Further, an outer cylinder 32 is fixedly installed on the inner circular surface of the left lower ring 14. A telescopic cylinder 33 is slidably arranged inside the outer cylinder 32. A third spring 34 is connected between the telescopic cylinder 33 and the inner bottom of the outer cylinder 32. A first collection box 35 is fixedly installed at the inner bottom of the right mounting frame 2. Two symmetric second collection boxes 36 are fixedly installed on the inner side walls of the two lower mounting frames 9. The soil debris scraped off by the clamping blocks 10 will enter the telescopic cylinder 33 and the second collection boxes 36. The soil debris scraped off by the left and right reciprocating swing of the clamping blocks 10 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 the soil debris to the surrounding environment to a certain extent.
[0019] Working principle: When in use, control the electric push rod two 24 to drive 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 bracket 2 to rotate. The mounting bracket 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 cooperate with the conveying device 19 to cut out two mud cakes of the same size at a time, which improves the cutting rate of the mud cakes to a certain extent; in addition, due to the height difference between the cutting ropes 6 on the upper and lower sides after deflection, there is a time difference between the two mud cakes after cutting, and the operator can use this time difference to take away the mud cake at the front end, which avoids the two cut mud cakes sticking together to a certain extent; in addition, the operator can also adjust the deflection angle of the cutting rope 6 according to the actual cutting requirements to cut out mud cakes of various thicknesses; During cutting, the set electric push rod one 22 drives the U-shaped frame 23, the mounting bracket 2 and the cutting rope 6 to move downward. The downward moving cutting rope 6 cuts the green body; during this process, the set mounting bracket 2 drives the fixed block 7, the ring body 8, the mounting frame 9 and the abutting rod 16 to move downward. As the abutting rod 16 moves downward, the set abutting rod 16 will contact the inclined surface of the inclined surface table body 17 and slide downward along the inclined surface. At this time, the set abutting rod 16 pushes the circular ring 14 and the sliding rod 12 to slide in the direction of the mounting frame 9 under the action of the inclined surface table body 17. The set sliding rod 12 pushes the limiting rod 13, the slide rail 11 and the clamping block 10 to slide; since the clamping block 10 is obliquely slidably connected to the inner side wall of the mounting frame 9, the adjacent two clamping blocks 10 will approach each other when sliding, and then clamp the upper and lower ends of the cutting rope 6; since the diameter of the circular hole opened on the side where the adjacent two clamping blocks 10 approach 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 set clamping block 10 can still move obliquely for a certain distance. The continuously obliquely moving clamping block 10 clamps the upper and lower ends of the cutting rope 6 and pulls the cutting rope 6 to move; the eight set clamping blocks 10 are distributed at both ends of the cutting rope 6. When each adjacent two clamping blocks 10 pull the cutting rope 6, it will cause the cutting rope 6 to be tightened, thereby improving the cutting effect of the cutting rope 6 on the green body; After the cutting is completed, the set cutting rope 6 resets to the initial vertical state. Subsequently, the first electric push rod 22 drives the cutting rope 6 and the abutting rod 16 to move downward again, so that the abutting rod 16 pushes the clamping block 10 to slide obliquely again and makes 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 a clamping force to the cutting rope 6. Subsequently, the set motor 3 drives the output shaft 4 to rotate, the output shaft 4 drives the transmission wheel 5 to rotate, and the two set transmission wheels 5 drive the cutting rope 6 to rotate clockwise. During this process, the adjacent two set 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 first electric push rod 22 drives the cutting rope 6 and the abutting rod 16 to move downward again, and the abutting rod 16 pushes the clamping block 10 to slide obliquely again and clamp on the outer surface of the cutting rope 6. It should be noted that the downward movement distance of the abutting rod 16 in this process is less than the downward movement distance of the abutting rod 16 when it is tightened, that is to say, 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 tightened. Subsequently, the set motor 3 drives the cutting rope 6 to rotate clockwise again. During this process, the adjacent two set clamping blocks 10 can scrape off the soil with strong adhesion on the surface of the cutting rope 6. At the same time, the distance of the subsequent oblique sliding of the clamping block 10 can crush the soil stuck between the adjacent two clamping blocks 10 and make it discharged smoothly. In addition, the set output shaft 4 drives a plurality of swing rods 31 to rotate, and the cooperation of the set swing rods 31 and the second spring 29 will intermittently push the extension rod 30, the mounting frame 9 and the clamping block 10 to swing left and right along the ring body 8. The clamping block 10 that swings left and right can clean the surface of the cutting rope 6 in the unclamped area, which improves the cleaning effect of the clamping block 10 to a certain extent. In addition, the soil debris scraped off by the clamping block 10 will enter the telescopic cylinder 33 and the second collection box 36, and the soil debris scraped off by the left and right reciprocating swing of the clamping block 10 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 the soil debris to the surrounding environment to a certain extent.
[0020] The above description enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but will 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 top (1), characterized in that: Two symmetrical mounting frames (2) are arranged on the top of the table top (1), and motors (3) are fixedly mounted on the side walls of the two mounting frames (2), and output shafts (4) are fixedly mounted on the output ends of the two motors (3), and transmission wheels (5) are fixedly mounted on the outer peripheral walls of the two output shafts (4), and a cutting rope (6) is wound between the two transmission wheels (5). Two symmetrically arranged fixing blocks (7) are welded on the inner side walls of the two mounting frames (2), and a ring body (8) is welded on each of the fixing blocks (7), and a mounting frame (9) is slidably arranged on the outer peripheral wall of each of the ring bodies (8), and two symmetrical clamping blocks (10) are obliquely slidably arranged on the inner circular surface of each of the mounting frames (9), and a slide rail is welded on the back of each of the clamping blocks (10). (11), two symmetrical sliding rods (12) are slidably arranged on the side wall of each installation frame (9), a limiting rod (13) is welded on the side of each sliding rod (12) close to the corresponding clamping block (10), and eight limiting rods (13) are respectively slidably arranged inside the corresponding slide rail (11), a circular ring (14) is welded between each two adjacent limiting rods (13), a spring (15) is sleeved on the outer peripheral wall of each limiting rod (13), and eight springs (15) are respectively connected between the corresponding circular ring (14) and the installation frame (9), and two symmetrical abutting rods (16) are welded on the side of each circular ring (14) away from the corresponding sliding rod (12), and two symmetrical inclined table bodies (17) are fixedly installed on the top of the table board (1).
2. A cutting device for ceramic processing according to claim 1, characterized in that: A cutting table (18) is fixedly mounted on the top of the table top (1), a conveying device (19) is arranged on the top of the cutting table (18), a plurality of vertical grooves (20) are evenly spaced on the top of the cutting table (18), and a plurality of vertical grooves (21) are evenly spaced on the tops of the two inclined table bodies (17).
3. A cutting device for ceramic processing according to claim 1, characterized in that: Two symmetrical electric push rods (22) are fixedly mounted on the top of the table top (1); U-shaped frames (23) are fixedly mounted on the telescopic ends of the tops of the two electric push rods (22); electric push rods (24) are fixedly mounted on the side walls of the two U-shaped frames (23); racks (25) are fixedly mounted on the telescopic ends of the two electric push rods (24); vertical plates (26) are welded on the tops of the two U-shaped frames (23); rotating shafts (27) are rotatably connected on the side walls of the two vertical plates (26); and two mounting frames (2) are respectively welded on the side walls of the corresponding rotating shafts (27); and gears (28) meshing with the corresponding racks (25) are welded on the sides of the two rotating shafts (27) away from the corresponding mounting frames (2).
4. A cutting device for ceramic processing according to claim 1, characterized in that: Two symmetrical springs (29) are wound around the outer ring walls of the four ring bodies (8), and the eight springs (29) are respectively connected between the corresponding fixed blocks (7) and the mounting frames (9). Extension rods (30) are welded to the side walls of the two mounting frames (9) at the bottom, and a plurality of swing rods (31) are welded at equal intervals on the outer peripheral walls of the two output shafts (4) at the bottom.
5. A cutting device for ceramic processing according to claim 1, characterized in that: An outer cylinder (32) is fixedly mounted on the inner surface of the circular ring (14) located on the left side of the lower part, a telescopic cylinder (33) is slidably arranged inside the outer cylinder (32), and a spring three (34) is connected between the telescopic cylinder (33) and the inner bottom of the outer cylinder (32).
6. A cutting device for ceramic processing according to claim 1, characterized in that: A collection box 1 (35) is fixedly mounted on the inner bottom of the mounting frame (2) located on the right side.
7. A cutting device for ceramic processing according to claim 1, characterized in that: Two symmetrical collecting boxes (36) are fixedly mounted on the inner side walls of the two mounting frames (9) located at the lower part.
Citation Information
Patent Citations
Mud blank wire cutting device for ceramic product production
CN221912512U
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