A slicing device for processing ceramic green body sheets

By controlling the springback and vibration of the cutting line through a push and auxiliary mechanism, and utilizing threaded rod damping and circular misalignment support, the problem of cracking caused by stress concentration on the cutting line is solved, thereby improving the slicing integrity and efficiency of ceramic green sheets.

CN120735154BActive Publication Date: 2025-10-31JIANGSU KASI MEITE CASTING TECH
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Patent Information

Application Number
CN202511257841.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-04
Publication Date
2025-10-31
Estimated Expiration
2045-09-04

AI Technical Summary

Technical Problem

When cutting ceramic green bodies, stress concentration caused by changes in flexibility and hardness along the cutting line can easily lead to edge chipping and cracking, affecting the integrity and efficiency of the cut.

Method used

By employing a push mechanism and an auxiliary mechanism, the springback and jitter of the cutting line are controlled through limiting components and moving components. The helical resistance of the threaded rod and the misalignment support of the circle reduce tension changes and vibrations, thereby enhancing the stability of the cutting line.

Benefits of technology

It improves the integrity and efficiency of the slicing process, reduces edge chipping and cracking, enhances the flatness and processing accuracy of the cut surface, and ensures the continuity and stability of the slices.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of ceramic processing technology and discloses a slicing device for processing ceramic green sheets, comprising a main body with a support plate fixedly connected to the top of the main body. The invention utilizes the sliding of a spring shaft within the threaded groove on the surface of a threaded rod to create mechanical damping, thereby limiting the resetting speed of the cutting wire during straightening and resetting. The buffer formed by the helical resistance of the threads on the surface of the threaded rod reduces the tension changes caused by the instantaneous resetting after the cutting wire cuts the material, which can lead to stress concentration at the material edges, resulting in breakage or cracking. This improves the integrity of the material during and after slicing and enhances the slicing efficiency.
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Description

Technical Field

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

[0002] When slicing ceramic green sheets with diamond wire, the cutting wire has a certain degree of flexibility while the ceramic green sheet also has a certain degree of hardness. When the cutting wire moves to cut a relatively hard and thick cylindrical green sheet, the cutting wire will experience slight bending and tension changes during the cutting process. When the cutting wire reaches the edge of the green sheet, it is easy for the cutting wire to be in a taut state instantly after cutting the green sheet. This can easily lead to stress concentration at the edge of the ceramic green sheet, resulting in chipping or cracking, which affects the integrity of the green sheet and the slicing efficiency. Summary of the Invention

[0003] The purpose of this invention is to provide a slicing device for processing ceramic green blanks, so as to solve the problems mentioned in the background art.

[0004] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:

[0005] This invention relates to a slicing device for processing ceramic green blanks, comprising a main body, a support plate fixedly connected to the top of the main body, and further comprising;

[0006] The pushing mechanism is installed on the side wall of the bearing plate to reduce the rapid rebound of the cutting structure inside the main body when cutting materials;

[0007] An auxiliary mechanism is installed inside the push mechanism to prevent the cutting mechanism from shaking during cutting.

[0008] When the material is placed on top of the main body, it is cut by the cutting structure inside the main body, and the rapid rebound and shaking of the cutting mechanism are controlled by the pushing mechanism and auxiliary mechanism during the cutting process.

[0009] Furthermore, the main body includes:

[0010] The drive component is mounted on top of the main body via a connector;

[0011] The placement component is mounted on the side wall of the drive component via a pusher.

[0012] The connector includes a motor fixedly connected to the top of the main body, the output end of the motor rotating through the side wall of the support plate, and a drive wheel fixedly connected to the output end of the motor;

[0013] The pushing component includes a placement plate fixedly connected to the side wall of the support plate, an electric push rod is fixedly connected to the side wall of the placement plate, and an adjustment frame is slidably connected to the output end of the electric push rod.

[0014] Furthermore, the actuating mechanism includes an inclined frame bolted to the side wall of the bearing plate, and the actuating mechanism also includes:

[0015] The limiting component is installed inside the tilting frame;

[0016] The active component is installed on the side wall of the limiting component.

[0017] Furthermore, the auxiliary mechanism includes a long plate disposed inside the inclined frame, and the auxiliary mechanism also includes:

[0018] The elastic component is installed on the side wall of the long plate;

[0019] A rotating assembly is mounted inside the tilting frame via an auxiliary component.

[0020] A movable component is mounted on the side wall of the rotating component;

[0021] The rotating assembly includes two limiting rings disposed inside the inclined frame. A rotating ring is slidably connected to the side wall of the limiting ring, and a circle is fixedly connected to the outer surface of the rotating ring.

[0022] Furthermore, the drive assembly includes a driven wheel rotatably connected to the side wall of the support plate, the outer surface of the driven wheel is fitted with a cutting line, and the drive wheel is connected to the driven wheel through the cutting line;

[0023] The placement assembly includes an electric actuator 2 that is slidably connected to the right side of the adjustment frame, and the bottom of the electric actuator 2 is fixedly connected to the side wall of the placement plate.

[0024] Furthermore, the limiting component includes a threaded rod fixedly connected to the inner wall of the front of the inclined frame, a sliding ring slidably connected to the outer surface of the threaded rod, and a spring shaft slidably passing through the outer surface of the sliding ring;

[0025] A spring ring is rotatably connected to the side wall of the sliding ring. The spring end of the spring ring is fixedly connected to the side wall of the inclined frame, and the elastic end of the spring shaft is fixedly connected to the outer surface of the sliding ring.

[0026] Furthermore, the movable component includes a second spring ring rotatably connected to the side of the sliding ring away from the first spring ring;

[0027] A cylindrical tube is fixedly connected to the end of the spring ring away from the sliding ring, and a C-shaped bracket is fixedly connected to the end of the cylindrical tube away from the spring shaft;

[0028] A circular hole is provided in the middle of the C-shaped frame, and the circular hole extends through to the side wall of the cylindrical tube;

[0029] The C-shaped frame has a fixed internal connection with a fixing rod, and the outer surface of the fixing rod has two rectangular grooves.

[0030] Furthermore, the long plate is fixedly connected to the side wall of the threaded rod;

[0031] The elastic component includes a rotating rod rotatably connected to the left and right sides of the long plate, with a rotating ball rotatably connected to the end of the rotating rod away from the long plate;

[0032] An auxiliary spring is rotatably connected to the side wall of the rotating rod, with the end of the auxiliary spring away from the rotating rod connected to the side wall of the long plate.

[0033] Furthermore, the two limiting rings are rotatably connected to the outer surface of the fixed rod;

[0034] An arc-shaped block is fixedly connected to the inner wall of the circle;

[0035] The arc-shaped blocks on the inner walls of the two circles are arranged symmetrically.

[0036] Furthermore, the movable component includes a right-angled plate slidably connected inside the rectangular groove, a tension spring fixedly connected to the side wall of the right-angled plate, the end of the tension spring away from the right-angled plate being fixedly connected to the inner wall of the rectangular groove, and a ball bearing rotatably connected to the side wall of the right-angled plate.

[0037] The present invention has the following beneficial effects:

[0038] 1. This invention, through the limiting component and the movable component, compresses the spring ring and squeezes the spring shaft through the inclined surface of the inner wall when the C-shaped frame is resetting. When the spring shaft is squeezed, it slides downward and inserts into the threaded groove on the surface of the threaded rod. At the same time, when the cutting line continues to reset and pushes the C-shaped frame to slide, the sliding of the spring shaft in the threaded groove on the surface of the threaded rod can form mechanical damping, thereby limiting the reset speed of the cutting line straightening and resetting. The buffer formed by the helical resistance of the thread on the surface of the threaded rod can reduce the stress concentration and cracking of the material edge caused by the instantaneous reset after the cutting line cuts the material, thereby improving the integrity of the material during and after slicing and the slicing efficiency of the material.

[0039] 2. This invention, through the driving component and the rotating component, and the inclined arrangement between the rotating rod and the long plate, enables the two rotating rods to push the circles to tilt in opposite directions, resulting in a vertically misaligned state between the contact surfaces of the two circles and the cutting line, as shown in the figure. At this time, the relatively misaligned contact surfaces of the two circles, when in contact with the cutting line, can form a misaligned support on the surface of the cutting line. By forming a downward misaligned support on the surface of the cutting line, the vibration caused by the contact and rotation of the circles during the cyclic rotation of the cutting line can be reduced. The vertically misaligned support on the cutting line can reduce the occurrence of wavy defects on the cut surface of the material due to vibration generated during cutting, thereby improving the flatness of the cut surface and enhancing the subsequent processing accuracy.

[0040] 3. In this invention, through the rotating assembly, during the subsequent rotation of the cutting line, the two circles alternately support and contact the surface of the cutting line through the contact between the arc-shaped block and the rotating rod. This ensures that even after one circle separates from the cutting line, the other circle remains in contact with the surface of the cutting line. This alternating contact between the two circles and the cutting line reduces the risk of excessive sliding resistance between the cutting line and the misaligned circles during continuous rapid rotation, which could lead to cutting line breakage. This ensures the continuity and stability of the slicing process while improving slicing efficiency.

[0041] 4. In this invention, through the rotating component and the driving component, when one of the circles and the arc-shaped block on the inner wall are reset after being supported by the rotating rod, the right-angle plate will reset under the release of the elastic potential energy of the tension spring. When the circle deflects and tilts again, the tilted circle will drive the right-angle plate to support the surface of the cutting line. By supporting the side wall of the cutting line with the movement of the circle, the situation of the circle hitting the cutting line during the deflection movement can be reduced. By supporting the cutting line, the situation of the circle hitting the cutting line during the movement can be reduced, which will cause lateral vibration of the cutting line during cutting. This further enhances the stability of the cutting line when it is cut at an angle, and also enhances the subsequent slicing efficiency.

[0042] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0043] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0044] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0045] Figure 2 This is a schematic diagram of the overall partial cross-sectional structure of the present invention;

[0046] Figure 3 For the present invention Figure 2 Enlarged view of point A in the middle;

[0047] Figure 4 This is a schematic diagram of the actuation mechanism of the present invention;

[0048] Figure 5 This is a schematic diagram of the limiting component of the present invention;

[0049] Figure 6 For the present invention Figure 5 Enlarged view of point B in the middle;

[0050] Figure 7 This is an exploded view of the active components of the present invention;

[0051] Figure 8 This is a schematic diagram of the auxiliary mechanism of the present invention;

[0052] Figure 9 This is a schematic diagram of the rotating component of the present invention;

[0053] Figure 10 This is a schematic diagram of the rotating component of the present invention after it has moved.

[0054] The attached diagram lists the components represented by each number as follows:

[0055] In the diagram: 1. Main body; 101. Support plate; 11. Drive assembly; 111. Motor; 112. Drive wheel; 113. Driven wheel; 114. Cutting line; 12. Placement assembly; 121. Placement plate; 122. Electric actuator one; 123. Electric actuator two; 124. Adjustment frame; 2. Pushing mechanism; 201. Inclined frame; 21. Restriction assembly; 211. Threaded rod; 212. Sliding ring; 213. Spring shaft; 22. Movable assembly; 221. Cylindrical tube; 222. C-shaped frame; 223. Fixed rod; 3. Auxiliary mechanism; 301. Long plate; 31. Elastic assembly; 311. Rotating rod; 312. Rotating ball; 32. Rotating assembly; 321. Limiting ring; 322. Rotating ring; 323. Circle; 324. Arc block; 33. Moving assembly; 331. Right angle plate. Detailed Implementation

[0056] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. 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.

[0057] Please see Figure 1 - Figure 10 As shown, the present invention is a slicing device for processing ceramic green blanks, including a main body 1, a support plate 101 fixedly connected to the top of the main body 1, and further comprising;

[0058] The pushing mechanism 2 is installed on the side wall of the bearing plate 101 to reduce the rapid rebound of the cutting structure in the main body 1 when cutting materials;

[0059] Auxiliary mechanism 3 is installed inside the push mechanism 2 to prevent the cutting mechanism from shaking during cutting;

[0060] When the material is placed on top of the main body 1, it is cut by the cutting structure inside the main body 1. During the cutting process, the rapid rebound and shaking of the cutting mechanism are controlled by the pushing mechanism 2 and the auxiliary mechanism 3.

[0061] Entity 1 includes:

[0062] Drive component 11 is mounted on the top of main body 1 via a connector;

[0063] Placement component 12 is mounted on the side wall of drive component 11 via a pusher;

[0064] The connector includes a motor 111 fixedly connected to the top of the main body 1. The output end of the motor 111 rotates through to the side wall of the support plate 101. The output end of the motor 111 is fixedly connected to a drive wheel 112.

[0065] The pusher includes a placement plate 121 fixedly connected to the side wall of the support plate 101. An electric push rod 122 is fixedly connected to the side wall of the placement plate 121. An adjustment frame 124 is slidably connected to the output end of the electric push rod 122. First, the cutting line 114 is installed on the outer surface of the drive wheel 112 and the driven wheel 113. Then, the tilting frame 201 is installed on the side wall of the support plate 101.

[0066] The pushing mechanism 2 includes an inclined frame 201 bolted to the side wall of the bearing plate 101, and the pushing mechanism 2 also includes:

[0067] Restriction component 21 is installed inside the tilt frame 201;

[0068] Active component 22 is mounted on the side wall of limiting component 21.

[0069] The auxiliary mechanism 3 includes a long plate 301 disposed inside the inclined frame 201, and the auxiliary mechanism 3 also includes:

[0070] Elastic component 31 is installed on the side wall of the long plate 301;

[0071] Rotating component 32 is mounted inside the tilting frame 201 via an auxiliary component;

[0072] The movable component 33 is mounted on the side wall of the rotating component 32;

[0073] The rotating assembly 32 includes two limiting rings 321 disposed inside the inclined frame 201. A rotating ring 322 is slidably connected to the side wall of the limiting ring 321, and a circle 323 is fixedly connected to the outer surface of the rotating ring 322.

[0074] The drive assembly 11 includes a driven wheel 113 rotatably connected to the side wall of the support plate 101. The outer surface of the driven wheel 113 is fitted with a cutting line 114. The drive wheel 112 is connected to the driven wheel 113 through the cutting line 114.

[0075] The placement assembly 12 includes an electric push rod 123 that is slidably connected to the right side of the adjustment frame 124. The bottom of the electric push rod 123 is fixedly connected to the side wall of the placement plate 121. After the operator adjusts the size of the adjustment frame 124, the material to be cut is placed inside the adjustment frame 124, and then the motor 111 is started.

[0076] The limiting component 21 includes a threaded rod 211 fixedly connected to the inner wall of the front of the inclined frame 201, a sliding ring 212 slidably connected to the outer surface of the threaded rod 211, and a spring shaft 213 slidably passing through the outer surface of the sliding ring 212.

[0077] A spring ring 1 is rotatably connected to the side wall of the sliding ring 212. The spring end of the spring ring 1 is fixedly connected to the side wall of the inclined frame 201. The elastic end of the spring shaft 213 is fixedly connected to the outer surface of the sliding ring 212. When the cutting line 114 bends due to changes in tension during the cutting process, the spring ring 221 inside the cylindrical tube 221 will push the cylindrical tube 221 to drive the C-shaped frame 222 to slide. At the same time, the spring ring 1 on the sliding ring 212 will also push the sliding ring 212 to slide on the surface of the threaded rod 211.

[0078] The movable component 22 includes a second spring ring rotatably connected to the side of the sliding ring 212 away from the first spring ring;

[0079] A cylindrical tube 221 is fixedly connected to the end of the spring ring away from the sliding ring 212, and a C-shaped bracket 222 is fixedly connected to the end of the cylindrical tube 221 away from the spring shaft 213.

[0080] A circular hole is provided in the middle of the C-shaped frame 222, and the circular hole extends through to the side wall of the cylindrical tube 221;

[0081] The C-shaped frame 222 is internally fixedly connected to a fixed rod 223. The outer surface of the fixed rod 223 has two rectangular grooves. When the second spring ring pushes the cylindrical tube 221 and the C-shaped frame 222 to slide, the side wall of the spring shaft 213 will separate from the cylindrical tube 221. At this time, the spring shaft 213 will not slide on the threaded groove on the surface of the threaded rod 211. Then, when the second spring ring pushes the sliding ring 212, the sliding ring 212 can slide quickly on the surface of the threaded rod 211.

[0082] The long plate 301 is fixedly connected to the side wall of the threaded rod 211;

[0083] The elastic component 31 includes a rotating rod 311 rotatably connected to the left and right sides of the long plate 301, and a rotating ball 312 rotatably connected to the end of the rotating rod 311 away from the long plate 301.

[0084] An auxiliary spring is rotatably connected to the side wall of the rotating rod 311. The end of the auxiliary spring away from the rotating rod 311 is connected to the side wall of the long plate 301. By the inclined arrangement between the rotating rod 311 and the long plate 301, when the two rotating rods 311 push the circles 323 to tilt in opposite directions, the contact surfaces of the two circles 323 and the cutting line 114 are in a state of vertical length misalignment.

[0085] Two limiting rings 321 are rotatably connected to the outer surface of the fixed rod 223;

[0086] An arc-shaped block 324 is fixedly connected to the inner wall of circle 323;

[0087] The arc-shaped blocks 324 on the inner walls of the two circles 323 are arranged symmetrically.

[0088] The movable component 33 includes a right-angle plate 331 slidably connected inside the rectangular groove. A tension spring is fixedly connected to the side wall of the right-angle plate 331. The end of the tension spring away from the right-angle plate 331 is fixedly connected to the inner wall of the rectangular groove. A ball is rotatably connected to the side wall of the right-angle plate 331. Since the two circles 323 are in contact with the surface of the cutting line 114, when the cutting line 114 rotates in a cycle, it will drive the two circles 323 to rotate synchronously. The long plate 301 is fixed to the side wall of the threaded rod 211.

[0089] In use, firstly, the cutting wire 114 is installed on the outer surface of the drive wheel 112 and the driven wheel 113. Then, the tilting frame 201 is installed on the side wall of the support plate 101. After that, the operator adjusts the size of the adjusting frame 124 and places the material to be cut inside the adjusting frame 124. Then, the motor 111 is started. When the motor 111 is working, it will drive the cutting wire 114 to rotate rapidly through the drive wheel 112. When the cutting wire 114 rotates rapidly, the electric push rod 122 is started. When the electric push rod 122 is working, it will drive the adjusting frame 124 and the material to slide. When the material slides, it will come into contact with the cutting wire 114. At this time, the cutting wire 114 will slice the material as it moves.

[0090] When the cutting wire 114 bends due to tension changes during the cutting process, the second spring ring inside the cylindrical cylinder 221 pushes the cylindrical cylinder 221 to slide the C-shaped frame 222. Simultaneously, the first spring ring on the sliding ring 212 pushes the sliding ring 212 to slide on the surface of the threaded rod 211. When the second spring ring pushes the cylindrical cylinder 221 and the C-shaped frame 222 to slide, the side wall of the spring shaft 213 separates from the cylindrical cylinder 221. At this time, the spring shaft 213 will not slide on the threaded groove on the surface of the threaded rod 211. Therefore, when the second spring ring pushes the sliding ring 212, the sliding ring 212 can slide quickly on the surface of the threaded rod 211. When the first spring ring pushes the cylindrical cylinder 221 and the C-shaped frame 222... During sliding, the C-shaped frame 222 slides, causing the two circles 323 to contact the surface of the cutting line 114 via the fixed rod 223. Simultaneously, when the two circles 323 slide to the opening at the bottom of the inclined frame 201, they rotate downwards, allowing more of their surfaces to contact the surface of the cutting line 114. When the cutting line 114 cuts to the edge of the material, it resets and becomes taut. During this reset, the cutting line 114 pushes the circles 323 and the C-shaped frame 222 back to their original positions. When the C-shaped frame 222 resets, it compresses the spring ring and, through the inclined surface of the inner wall of the cylindrical tube 221, presses against the surface of the spring shaft 213. The inclined surface... Figure 6 As shown, after the surface of the spring shaft 213 is compressed, it slides downward and inserts into the threaded groove on the surface of the threaded rod 211. At the same time, when the cutting line 114 continues to reset and pushes the C-shaped frame 222 to slide, the sliding of the spring shaft 213 in the threaded groove on the surface of the threaded rod 211 can form mechanical damping, which can limit the reset speed of the cutting line 114 to straighten and reset. The buffer formed by the helical resistance of the thread on the surface of the threaded rod 211 can reduce the stress concentration and cracking of the material edge caused by the instantaneous reset of the cutting line 114 after cutting the material, thereby improving the integrity of the material during and after slicing and the slicing efficiency of the material.

[0091] Since the two circles 323 are in contact with the surface of the cutting line 114, when the cutting line 114 rotates in a cycle, it will drive the two circles 323 to rotate synchronously. Since the long plate 301 is fixed to the side wall of the threaded rod 211, when the C-shaped frame 222 pushes the two circles 323 to slide through the fixed rod 223, the inner wall of the fixed rod 223 will be blocked by the rotating rod 311. Then, when the circles 323 continue to slide, the inner wall of the circles 323 will squeeze the rotating rod 311, causing the rotating rod 311 to rotate. Since the rotating rod 311 and the long plate 301 are inclined, when the inner wall of the circles 323 pushes the rotating rod 311 to produce... When the rotating rod 311 rotates, the rotation of the rotating rod 311 pushes the corner of the inner wall of the circle 323, causing the two circles 323 to rotate in opposite directions on the limiting ring 321 via the rotating ring 322. At this time, the circle 323 will be tilted on the surface of the fixed rod 223. At the same time, when the rotation of the rotating rod 311 pushes the corner of the circle 323, causing the circle 323 to tilt, the tilting arrangement between the rotating rod 311 and the long plate 301 allows the two rotating rods 311 to push the circle 323 to tilt in opposite directions, resulting in a vertical misalignment between the contact surfaces of the two circles 323 and the cutting line 114. Figure 10 As shown, when the relatively misaligned contact surfaces of the two rotating components 32 come into contact with the cutting line 114, they can form a misaligned support on the surface of the cutting line 114. By forming a downward misaligned support on the surface of the cutting line 114, the vibration caused by the contact and rotation of the circle 323 during the cyclic rotation of the cutting line 114 can be reduced. By providing a vertically misaligned support for the cutting line 114, the wavy defects on the cut surface of the material caused by the vibration generated during the cutting of the material by the cutting line 114 can be reduced, thereby improving the flatness of the material cut surface and improving the subsequent processing accuracy.

[0092] Since the surface of circle 323 is in contact with the surface of cutting line 114, when cutting line 114 rotates in a cycle, it will drive the two circles 323 to rotate synchronously. Because the arc-shaped blocks 324 on the inner walls of the two circles 323 are symmetrically distributed, when the rotation of cutting line 114 drives the rotation of circle 323, the rotation of circle 323 will drive the arc-shaped blocks 324 to rotate synchronously. When circle 323 drives the arc-shaped blocks 324 to the side wall of rotating rod 311, one arc-shaped block 324 will be supported by rotating rod 311 and reset, causing its outer surface to separate from the contact surface of cutting line 114. The other arc-shaped block 324, without being pushed by rotating rod 311, will still be in contact with the surface of cutting line 114. Subsequently, during the rotation of the cutting line 114, the two circles 323 will alternately support and contact the surface of the cutting line 114 through the contact between the arc block 324 and the rotating rod 311. This allows one circle 323 to separate from the cutting line 114 while the other circle 323 remains in contact with the surface of the cutting line 114. The alternating contact between the two circles 323 and the cutting line 114 reduces the risk of excessive sliding resistance between the cutting line 114 and the misaligned circle 323 during the cyclic rotation of the cutting line 114 in the contact area between the two circles 323. This reduces the possibility of the cutting line 114 breaking during subsequent rapid cycles, ensuring the continuity and stability of the slicing process while improving slicing efficiency.

[0093] When the rotating rod 311 rotates under the sliding of the circle 323, it will rotate to an approximately horizontal state and then stop rotating. When the circle 323 deflects under the push of the rotating rod 311, the deflection of the circle 323 will push the side wall of the right-angle plate 331, causing the right-angle plate 331 to tilt synchronously with the tilt of the sliding ring 212. When the right-angle plate 331 is tilted, the side wall of the right-angle plate 331 will cause the ball bearings to cover the surface of the cutting line 114. When one of the circles 323 and the arc-shaped block 324 on the inner wall are reset after being supported by the rotating rod 311, the right-angle plate 331 will be in the elasticity of the tension spring. The potential energy is released and the circle 323 is reset. When the circle 323 deflects and tilts again, the tilted circle 323 will drive the right-angle plate 331 to support the surface of the cutting line 114. By supporting the side wall of the cutting line 114 with the movement of the circle 323, the impact of the circle 323 on the cutting line 114 during the deflection movement can be reduced. By supporting the cutting line 114, the impact of the circle 323 on the cutting line 114 during the movement can be reduced, which will cause the cutting line 114 to vibrate laterally during cutting. This further enhances the stability of the cutting line 114 when it is cut at an angle and improves the efficiency of subsequent slicing.

[0094] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A slicing device for processing ceramic green blanks, comprising a main body (1), wherein a support plate (101) is fixedly connected to the top of the main body (1), characterized in that, Also includes; The pushing mechanism (2) is installed on the side wall of the bearing plate (101) to reduce the rapid rebound of the cutting structure in the main body (1) when cutting materials; An auxiliary mechanism (3) is installed inside the pushing mechanism (2) to prevent the cutting mechanism from shaking during cutting. When the material is placed on top of the main body (1), the material is cut by the cutting structure inside the main body (1), and the rapid rebound and shaking phenomenon of the cutting mechanism is controlled by the pushing mechanism (2) and the auxiliary mechanism (3) during the cutting process; The pushing mechanism (2) includes an inclined frame (201) bolted to the side wall of the bearing plate (101), and the pushing mechanism (2) further includes: A limiting component (21) is installed inside the tilting frame (201); An active component (22) is mounted on the side wall of the limiting component (21); The limiting component (21) includes a threaded rod (211) fixedly connected to the inner wall of the front of the inclined frame (201), and a sliding ring (212) is slidably connected to the outer surface of the threaded rod (211), and a spring shaft (213) is slidably passed through the outer surface of the sliding ring (212). The sliding ring (212) is rotatably connected to a spring ring, the spring end of the spring ring is fixedly connected to the side wall of the inclined frame (201), and the elastic end of the spring shaft (213) is fixedly connected to the outer surface of the sliding ring (212). The movable component (22) includes a second spring ring rotatably connected to the side of the sliding ring (212) away from the first spring ring; A cylindrical tube (221) is fixedly connected to one end of the spring ring away from the sliding ring (212), and a C-shaped frame (222) is fixedly connected to one end of the cylindrical tube (221) away from the spring shaft (213). A circular hole is provided in the middle of the C-shaped frame (222), and the circular hole extends through to the side wall of the cylindrical tube (221); The C-shaped frame (222) is internally fixedly connected to a fixing rod (223), and the outer surface of the fixing rod (223) has two rectangular grooves. When the C-shaped bracket (222) is reset, it will compress the spring ring and press the surface of the spring shaft (213) through the inclined surface of the inner wall of the cylindrical tube (221). After the surface of the spring shaft (213) is pressed, it will slide down and insert into the thread groove on the surface of the threaded rod (211).

2. The slicing device for processing ceramic green bodies according to claim 1, characterized in that: The main body (1) includes: A drive assembly (11) is mounted on top of the main body (1) via a connector; Placement component (12), which is mounted on the side wall of drive component (11) by a pusher; The connector includes a motor (111) fixedly connected to the top of the main body (1), the output end of the motor (111) rotatably penetrates to the side wall of the support plate (101), and the output end of the motor (111) is fixedly connected to a drive wheel (112). The pusher includes a placement plate (121) fixedly connected to the side wall of the support plate (101), and an electric push rod (122) is fixedly connected to the side wall of the placement plate (121). An adjustment frame (124) is slidably connected to the output end of the electric push rod (122).

3. The slicing device for processing ceramic green bodies according to claim 2, characterized in that: The auxiliary mechanism (3) includes a long plate (301) disposed inside the inclined frame (201), and the auxiliary mechanism (3) further includes: An elastic component (31) is mounted on the side wall of the long plate (301); Rotating assembly (32), which is mounted inside the tilting frame (201) by means of an auxiliary component; A movable component (33) is mounted on the side wall of the rotating component (32); The rotating assembly (32) includes two limiting rings (321) disposed inside the inclined frame (201), and a rotating ring (322) is slidably connected to the side wall of the limiting ring (321), and a circle (323) is fixedly connected to the outer surface of the rotating ring (322).

4. The slicing device for processing ceramic green bodies according to claim 3, characterized in that: The drive assembly (11) includes a driven wheel (113) rotatably connected to the side wall of the support plate (101). The outer surface of the driven wheel (113) is fitted with a cutting line (114). The drive wheel (112) is connected to the driven wheel (113) through the cutting line (114). The placement assembly (12) includes an electric push rod two (123) slidably connected to the right side of the adjustment frame (124), and the bottom of the electric push rod two (123) is fixedly connected to the side wall of the placement plate (121).

5. The slicing device for processing ceramic green bodies according to claim 4, characterized in that: The long plate (301) is fixedly connected to the side wall of the threaded rod (211); The elastic component (31) includes a rotating rod (311) rotatably connected to the left and right sides of the long plate (301), and a rotating ball (312) is rotatably connected to one end of the rotating rod (311) away from the long plate (301). An auxiliary spring is rotatably connected to the side wall of the rotating rod (311), and the end of the auxiliary spring away from the rotating rod (311) is connected to the side wall of the long plate (301). By tilting the rotating rod (311) and the long plate (301), when the two rotating rods (311) push the circle (323) to tilt in opposite directions, the contact surfaces of the two circles (323) and the cutting line (114) are in a state of vertical length misalignment.

6. The slicing device for processing ceramic green bodies according to claim 5, characterized in that: The two limiting rings (321) are rotatably connected to the outer surface of the fixed rod (223); An arc-shaped block (324) is fixedly connected to the inner wall of the circle (323); The arc-shaped blocks (324) on the inner walls of the two circles (323) are arranged symmetrically.

7. A slicing device for processing ceramic green bodies according to claim 6, characterized in that: The moving component (33) includes a right-angle plate (331) slidably connected inside the rectangular groove. A tension spring is fixedly connected to the side wall of the right-angle plate (331). The end of the tension spring away from the right-angle plate (331) is fixedly connected to the inner wall of the rectangular groove. A ball bearing is rotatably connected to the side wall of the right-angle plate (331).

Citation Information

Patent Citations

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