Reprocessing device for recycling waste ceramic marmite

By designing a ceramic reprocessing device including box, partition, screen, lifting block and crushing block, the problem of the lack of screening function of existing ceramic crushing devices is solved, automatic screening and efficient crushing of ceramic crushed materials are realized, and recycling rate is improved.

CN120169463AInactive Publication Date: 2025-06-20CHONGQING TIANGE CERAMICS CO LTD
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Patent Information

Application Number
CN202510544530.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-28
Publication Date
2025-06-20
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing ceramic crushing devices lack screening function, resulting in the unqualified size of the ceramic crushed materials requiring manual screening, which affects the recycling efficiency.

Method used

A reprocessing device for recycling waste ceramic casserole is designed, including a box, partition, screen, lifting block and broken block. The vertical reciprocating movement of the lifting block is driven by the driving mechanism, and the broken blocks are crushed to process the ceramic casserole and automatically screened through the screen.

Benefits of technology

Automatic screening of ceramic crushed materials is realized, ensuring that all ceramic crushed materials with unqualified sizes can be further crushed, improving the recycling rate of used ceramic sandwiches, and reducing the cumbersomeness of manual screening.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of crushing, and discloses a waste ceramic marmite recycling reprocessing device which comprises a box body, a feeding port and a discharging port are formed in the box body, a partition plate and a screen are arranged in the box body, and the partition plate is located above the screen; a lifting block is vertically and slidably connected to the partition plate, and a crushing block is arranged at the bottom of the lifting block. Sliding grooves are formed in the positions, located on the two sides of the lifting block, of the partition plate, sliding blocks are slidably connected into the sliding grooves, and pushing blocks are arranged on the sliding blocks and make friction contact with the screen. The driving mechanism is used for driving the lifting block to do vertical reciprocating motion; and the adjusting mechanism is used for adjusting the distance between the two push blocks. According to the scheme, the problem that an existing device does not have the screening function is mainly solved.
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Description

Technical Field

[0001] The present invention relates to the field of crushing technology, and specifically relates to a reprocessing device for recycling waste ceramic casseroles. Background Art

[0002] A ceramic casserole is a ceramic product made by mixing raw materials such as quartz, feldspar, and clay, and is fired at a high temperature. It has characteristics such as air permeability, adsorption, uniform heat transfer, and slow heat dissipation. After a period of use, cracks will appear in the ceramic casserole, resulting in the inability to continue normal use, and thus it is necessary to carry out crushing and recycling treatment on the ceramic casserole. The traditional crushing method is mainly completed manually, but such a crushing method has a high labor intensity for workers and low work efficiency.

[0003] To solve the above problems, a Chinese patent with the publication number CN210585153U discloses a ceramic crushing and rough grinding device, including a housing. There is a feed inlet at the top of the housing and a discharge outlet at the bottom of the housing. Two first rollers are symmetrically arranged inside the housing. A number of groups of vertical teeth are uniformly fixed on the outer wall of the first roller along the longitudinal direction. The vertical teeth include fixed teeth arranged at equal intervals. A second roller is arranged directly below the middle of the two first rollers. A number of groups of longitudinal teeth are uniformly fixed on the outer wall of the second roller along the longitudinal direction. The longitudinal teeth include mating teeth arranged at equal intervals. The mating teeth are misaligned and mated with the fixed teeth, and there is a gap between the mating teeth and the fixed teeth. Using this device can replace manual crushing of ceramics, effectively reducing the labor intensity of workers and improving work efficiency.

[0004] The following problems exist during the actual use of the above ceramic crushing and rough grinding device: After the ceramic is crushed, the obtained materials have different sizes. Therefore, it is necessary to manually screen the materials to select the materials with qualified sizes, and the materials with unqualified sizes need to be crushed again. Such a manual screening method is very cumbersome and affects the recycling efficiency. Summary of the Invention

[0005] The present invention aims to provide a reprocessing device for recycling waste ceramic casseroles to solve the problem that the existing device does not have a screening function.

[0006] To achieve the above object, the present invention adopts the following technical solutions: A reprocessing device for recycling waste ceramic casseroles includes a box body. There are a feed inlet and a discharge outlet on the box body. A partition board and a screen are arranged inside the box body. The partition board is located above the screen. A lifting block is vertically slidably connected to the partition board. A crushing block is arranged at the bottom of the lifting block. Chute grooves are arranged on both sides of the lifting block on the partition board. A slider is slidably connected in the chute groove. A pushing block is arranged on the slider. The pushing block is in frictional contact with the screen. It also includes a driving mechanism for driving the lifting block to reciprocate vertically and an adjusting mechanism for adjusting the distance between the two pushing blocks.

[0007] The principle and advantages of this solution are as follows:

[0008] 1. In this solution, the waste ceramic casserole is put into the box through the feed inlet. The driving mechanism drives the lifting block to move vertically back and forth, and the lifting block drives the crushing block to move vertically back and forth. The crushing block is used to crush the waste ceramic casserole to obtain ceramic fragments. Compared with the prior art, the ceramic fragments with qualified dimensions pass through the screen and fall to the bottom of the box, and finally are discharged from the discharge port; the ceramic fragments with unqualified dimensions remain on the screen and are continuously crushed by the crushing block, so that all the ceramic fragments with unqualified dimensions can be converted into ceramic fragments with qualified dimensions, improving the recycling rate of waste ceramic casseroles.

[0009] 2. In this solution, the adjusting mechanism can make the two pushing blocks decrease and increase, that is, the two pushing blocks move closer and farther away; when the lifting block moves downward, the crushing block moves downward, and the two pushing blocks move away, so as to use the crushing block to crush the waste ceramic casserole; when the lifting block moves upward, the crushing block moves upward, and the two pushing blocks move closer, which can drive the ceramic fragments on the screen to be centered, so that the ceramic fragments are located directly below the crushing block; moreover, when the two pushing blocks move closer, they can also turn the ceramic fragments to promote the screening of the ceramic fragments.

[0010] Furthermore, the driving mechanism is located above the partition plate. The driving mechanism includes a rotating shaft, a vertical groove opened on the inner wall of the box, and a driving part for driving the rotating shaft to rotate. A cam body is coaxially connected to the rotating shaft. A C-shaped block is slidably connected in the vertical groove. The cam body abuts against both ends of the C-shaped block, and the cam body can rotate within the C-shaped block.

[0011] With the above settings, the driving part drives the rotating shaft to rotate, the rotating shaft drives the cam body to rotate, and the cam body drives the lifting block to move vertically back and forth through the C-shaped block.

[0012] Furthermore, a baffle for blocking the chute is provided on the slider, and the baffle is in frictional contact with the bottom of the partition plate.

[0013] With the above settings, during the horizontal reciprocating movement of the slider, the slider drives the baffle to move synchronously, and the baffle is used to always block the chute to prevent the ceramic fragments from splashing through the chute, improving the recycling rate of the ceramic fragments.

[0014] Furthermore, the adjusting mechanism is located above the partition plate. The adjusting mechanism includes cylindrical cams coaxially connected to the rotating shaft on both sides of the cam body. Curve grooves are provided on the cylindrical cams. Adjusting blocks are slidably connected in the curve grooves. The movement directions of the two adjusting blocks are opposite, and the adjusting blocks are fixedly connected to the slider.

[0015] With the above settings, during the rotation of the rotating shaft, the rotating shaft drives the two circular shaft cams to rotate. The cylindrical cam drives the slider to reciprocate horizontally along the chute path through the curve groove and the adjusting block, and the slider drives the pushing block to move synchronously. Since the two adjusting blocks move in opposite directions, the two pushing blocks approach and move away from each other.

[0016] Further, movable blocks are vertically slidably connected to both sides of the lifting block on the partition board. The distance between the two movable blocks is smaller than the distance between the two chutes. A panel is provided at the bottom of the movable block, and a plurality of crushing rods are provided at the bottom of the panel. The crushing rods are vertically slidably connected to the crushing blocks. A linkage mechanism is also included, which drives the movable block to move vertically as the adjusting block moves horizontally.

[0017] With the above settings, during the horizontal movement of the adjusting block, the movable block is driven to move vertically through the linkage mechanism. When the two pushing blocks approach, the crushing block moves upward, the adjusting block moves horizontally toward the cam body, the movable block moves downward, and the movable block drives the crushing rod to move downward through the panel, so that the crushing rod acts on the ceramic fragments, thereby strengthening the crushing effect, shortening the processing time, and improving the work efficiency. When the two pushing blocks move away from each other, the crushing block moves downward, the adjusting block moves horizontally away from the cam body, the movable block moves upward, and the movable block drives the crushing rod to move upward through the panel, so that the crushing rod moves away from the screen.

[0018] Further, the linkage mechanism is located above the partition board. The linkage mechanism includes a transverse block fixedly connected to the adjusting block, a strip-shaped hole opened on the transverse block, an inclined groove is provided in the strip-shaped hole, an auxiliary block is slidably connected in the inclined groove, the auxiliary block is fixedly connected to the movable block, and the movable block can move horizontally and vertically in the strip-shaped hole.

[0019] With the above settings, during the horizontal reciprocating movement of the adjusting block, the adjusting block drives the transverse block to move synchronously. When the two pushing blocks approach, the crushing block moves upward, the adjusting block drives the transverse block to move horizontally toward the cam body, the movable block moves relatively horizontally in the strip-shaped hole, and the movable block will also move downward along the path of the inclined groove through the auxiliary block. The movable block drives the crushing rod to move downward through the panel, so that the crushing rod acts on the ceramic fragments, thereby strengthening the crushing effect, shortening the processing time, and improving the work efficiency. When the two pushing blocks move away from each other, the crushing block moves downward, the adjusting block drives the transverse block to move horizontally away from the cam body, the movable block moves relatively horizontally in the strip-shaped hole, and the movable block will also move upward along the path of the inclined groove through the auxiliary block. The movable block drives the crushing rod to move upward through the panel, so that the crushing rod moves away from the screen.

[0020] Further, an inner groove is provided horizontally inside the screen; cleaning parts are provided on both sides of the box body. The cleaning parts include several cleaning blocks that are horizontally slidably connected to the box body. The cleaning blocks are horizontally slidably connected to the screen. The cleaning blocks extend into the inner groove and can move horizontally in the inner groove; a power mechanism is also included that drives multiple cleaning blocks of the cleaning part to move horizontally simultaneously as the pushing block moves horizontally.

[0021] With the above settings, during the horizontal movement of the pushing block, the power mechanism drives multiple cleaning blocks of the cleaning part to move horizontally simultaneously, and the cleaning blocks can be used to clean the screen to prevent the screen from being blocked.

[0022] Further, the power mechanism includes a power plate and a power block that is horizontally slidably connected to the box body. The cleaning block is fixedly connected to the power plate; one end of the power block is fixedly connected to the pushing block, and one end of the power block is fixedly connected to the power plate.

[0023] With the above settings, during the reciprocating horizontal movement of the pushing block, the pushing block drives the power plate to reciprocate horizontally through the power block, and the power plate drives multiple cleaning blocks to reciprocate horizontally. The cleaning blocks can be used to clean the screen to prevent the screen from being blocked.

[0024] Further, a wall block is provided between the pushing block and the baffle. A side shaft is rotatably connected to the wall block, and a turning block is provided on the side shaft; a turning mechanism for driving the side shaft to rotate is also included.

[0025] With the above settings, the wall block reciprocates horizontally together with the pushing block and the baffle. The wall block drives the side shaft and the turning block to reciprocate horizontally. The turning mechanism drives the side shaft to rotate, and the side shaft drives the turning block, thereby being able to drive the ceramic fragments on the screen to move along the width direction of the box body, realizing the turning treatment of the ceramic fragments, enabling the ceramic fragments to change positions, and further promoting the crushing treatment of the ceramic fragments at different positions; moreover, during the reciprocating horizontal movement of the wall block, the turning block will also change positions in the horizontal direction, expanding the turning range, and thus being able to perform turning treatment on more positions of the ceramic fragments.

[0026] Further, the turning structure includes a support plate fixedly connected to the wall block, a worm coaxially connected to the side shaft, racks located on both sides of the lifting block. A round shaft is rotatably connected to the support plate, and a worm gear and a gear are coaxially connected to the round shaft. The worm gear meshes with the worm; the racks are located between the partition plate and the screen, and the racks mesh with the gear.

[0027] With the above settings, during the reciprocating horizontal movement of the wall block, the wall block drives the worm, the worm gear, and the gear to move synchronously. The rack meshes with the gear to drive the round shaft to rotate reciprocally, the round shaft drives the worm gear to rotate reciprocally, the worm gear meshes with the worm to drive the worm to rotate reciprocally, the worm drives the side shaft to rotate reciprocally, and the side shaft drives the turning block to swing reciprocally, thereby realizing the turning treatment of the ceramic fragments. Description of the Drawings

[0028] Figure 1 This is a schematic structural diagram of an embodiment of a reprocessing device for recycling waste ceramic casseroles according to the present invention;

[0029] Figure 2 For Figure 1 A cross-sectional view in the main viewing direction;

[0030] Figure 3 For Figure 2 An enlarged view of part A in Specific embodiments

[0031] The following is a further detailed description through specific embodiments:

[0032] The reference numerals in the accompanying drawings of the specification include: box body 10, discharge port 11, sealing block 12, partition 20, screen 21, lifting block 22, crushing block 23, sliding groove 24, sliding block 25, pushing block 26, baffle 27, rotating shaft 30, vertical groove 31, cam body 32, C-shaped block 33, motor 34, cylindrical cam 35, adjusting block 36, movable block 40, panel 41, crushing rod 42, transverse block 43, strip hole 44, inclined groove 45, inner groove 50, cleaning block 51, power plate 52, power block 53, wall block 60, side shaft 61, turning block 62, support plate 63, worm 64, rack 65, worm gear 66, gear 67.

[0033] Embodiment

[0034] Basically as shown in the attached Figure 1 、attached Figure 2 、attached Figure 3 shown: A reprocessing device for recycling waste ceramic casseroles includes a box body 10, an inlet and a discharge port 11 are opened on the box body 10, the inlet is arranged on the front side wall of the box body 10, and a sealing block 12 is threadedly connected to the inlet; the discharge port 11 is arranged at the bottom of the box body 10.

[0035] A partition 20 and a screen 21 are fixedly connected inside the box body 10, and the partition 20 is located above the screen 21; a lifting block 22 is vertically slidably connected to the partition 20, and a crushing block 23 is fixedly connected to the bottom of the lifting block 22; sliding grooves 24 are horizontally opened on both sides of the lifting block 22 on the partition 20, sliding blocks 25 are slidably connected in the sliding grooves 24, a pushing block 26 is fixedly connected to the bottom of the sliding block 25, and the pushing block 26 is in frictional contact with the screen 21. A baffle 27 for blocking the sliding groove 24 is fixedly connected to the sliding block 25, and the top of the baffle 27 is in frictional contact with the bottom of the partition 20.

[0036] It further includes a driving mechanism for driving the lifting block 22 to move vertically in a reciprocating manner. The driving mechanism is located above the partition plate 20 and includes a rotating shaft 30, a vertical groove 31 opened on the inner wall of the box body 10, and a driving part for driving the rotating shaft 30 to rotate. A cam body 32 is coaxially connected to the rotating shaft 30. A C-shaped block 33 is slidably connected in the vertical groove 31. The cam body 32 abuts against both ends of the C-shaped block 33, and the cam body 32 can rotate within the C-shaped block 33. The driving part is a motor 34. The motor 34 is fixedly connected to the box body 10, and the output shaft of the motor 34 is coaxially connected to the rotating shaft 30.

[0037] It further includes an adjusting mechanism for adjusting the distance between the two pushing blocks 26. The adjusting mechanism is located above the partition plate 20 and includes cylindrical cams 35 coaxially connected to the rotating shaft 30 and located on both sides of the cam body 32. The two cylindrical cams 35 are symmetrically arranged left and right. A curve groove is opened on the cylindrical cam 35, and an adjusting block 36 is slidably connected in the curve groove. The moving directions of the two adjusting blocks 36 are opposite, and the adjusting block 36 is fixedly connected to the slider 25.

[0038] On both sides of the lifting block 22 on the partition plate 20, movable blocks 40 are vertically slidably connected. The distance between the two movable blocks 40 is smaller than the distance between the two sliding grooves 24. A panel 41 is fixedly connected to the bottom of the movable block 40, and a plurality of crushing rods 42 are fixedly connected to the bottom of the panel 41. The crushing rods 42 are vertically slidably connected to the crushing block 23. It further includes a linkage mechanism for driving the movable block 40 to move vertically as the adjusting block 36 moves horizontally. The linkage mechanism is located above the partition plate 20 and includes a transverse block 43 fixedly connected to the adjusting block 36, a strip-shaped hole 44 opened on the transverse block 43, and an inclined groove 45 opened in the strip-shaped hole 44. An auxiliary block is slidably connected in the inclined groove 45, and the auxiliary block is fixedly connected to the movable block 40. The movable block 40 can move horizontally and vertically in the strip-shaped hole 44. The distance between the two inclined grooves 45 gradually increases from top to bottom.

[0039] An inner groove 50 is horizontally opened in the screen 21. Cleaning parts are provided on both sides of the box body 10. The cleaning parts include a plurality of cleaning blocks 51 slidably connected to the box body 10 horizontally. The cleaning blocks 51 are slidably connected to the screen 21 horizontally, and the cleaning blocks 51 extend into the inner groove 50. The cleaning blocks 51 can move horizontally in the inner groove 50. When the cleaning blocks 51 of the two cleaning parts move towards each other, the cleaning blocks 51 of the two cleaning parts can abut against each other. It further includes a power mechanism for driving the plurality of cleaning blocks 51 of the cleaning part to move horizontally simultaneously as the pushing block 26 moves horizontally. The power mechanism includes a power plate 52 and a power block 53 slidably connected to the box body 10 horizontally. The plurality of cleaning blocks 51 of the cleaning part are all fixedly connected to the power plate 52. One end of the power block 53 is fixedly connected to the pushing block 26, and one end of the power block 53 is fixedly connected to the power plate 52.

[0040] A wall block 60 is fixedly connected between the pushing block 26 and the baffle 27. A side shaft 61 is rotatably connected to the wall block 60. The side shaft 61 is horizontally arranged, and a material turning block 62 is fixedly connected to the side shaft 61. It further includes a material turning mechanism for driving the side shaft 61 to rotate. The material turning structure includes a support plate 63 fixedly connected to the wall block 60, a worm 64 coaxially connected to the side shaft 61, and a rack 65 fixedly connected to the inner wall of the box body 10. A round shaft is rotatably connected to the support plate 63. A worm gear 66 and a gear 67 are coaxially connected to the round shaft. Along the axial direction of the round shaft, the gear 67 is located behind the worm gear 66, that is, the worm gear 66 is closer to the rear side wall inside the box body 10 than the gear 67. The worm gear 66 meshes with the worm 64. The rack 65 is located between the partition plate 20 and the screen 21, and the rack 65 meshes with the gear 67.

[0041] The specific implementation process is as follows:

[0042] During use, the waste ceramic casserole is put into the box body 10 through the feed port, so that the waste ceramic casserole is located between the crushing block 23 and the screen 21, and the feed port is sealed by the sealing block 12.

[0043] Start the motor 34. The output shaft of the motor 34 drives the rotating shaft 30 to rotate. The rotating shaft 30 drives the cam body 32 to rotate. The cam body 32 drives the lifting block 22 to move vertically in a reciprocating manner through the C-shaped block 33. The lifting block 22 drives the crushing block 23 to move vertically in a reciprocating manner, and the waste ceramic casserole is crushed by the crushing block 23 to obtain ceramic fragments. The qualified-sized ceramic fragments pass through the screen 21 and fall to the bottom inside the box body 10, and finally are discharged from the discharge port 11. The unqualified-sized ceramic fragments remain on the screen 21 and are continuously crushed by the crushing block 23.

[0044] During the rotation of the rotating shaft 30, the rotating shaft 30 drives two cylindrical cams to rotate. The cylindrical cam 35 drives the slider 25 to move horizontally in a reciprocating manner along the path of the sliding groove 24 through the curved groove and the adjusting block 36. The slider 25 drives the pushing block 26 to move synchronously. Since the two adjusting blocks 36 move in opposite directions, the two pushing blocks 26 approach and move away from each other.

[0045] When the lifting block 22 moves downward, the crushing block 23 moves downward, and the two pushing blocks 26 move away from each other, so as to use the crushing block 23 to crush the waste ceramic casserole. When the lifting block 22 moves upward, the crushing block 23 moves upward, and the two pushing blocks 26 approach each other, which can drive the ceramic fragments on the screen 21 to be centered, so that the ceramic fragments are located directly below the crushing block 23. Moreover, when the two pushing blocks 26 approach each other, they can also turn the ceramic fragments to promote the screening of the ceramic fragments.

[0046] During the horizontal reciprocating movement of the slider 25, the slider 25 drives the baffle 27 to move synchronously, and the baffle 27 is used to always block the sliding groove 24 to prevent the ceramic fragments from splashing through the sliding groove 24, thereby improving the recycling rate of the ceramic fragments.

[0047] During the horizontal reciprocating motion of the adjusting block 36, the adjusting block 36 drives the transverse block 43 to move synchronously; when the two pushing blocks 26 approach each other, the crushing block 23 moves upward, the adjusting block 36 drives the transverse block 43 to move horizontally in the direction of the cam body 32, the movable block 40 moves horizontally relative to the transverse block 43 within the strip-shaped hole 44, the movable block 40 also moves downward along the path of the inclined groove 45 through the auxiliary block, and the movable block 40 drives the crushing rod 42 to move downward through the panel 41, so that the crushing rod 42 acts on the ceramic fragments, thereby strengthening the crushing effect, shortening the processing time, and improving the working efficiency; when the two pushing blocks 26 move away from each other, the crushing block 23 moves downward, the adjusting block 36 drives the transverse block 43 to move horizontally away from the cam body 32, the movable block 40 moves horizontally relative to the transverse block 43 within the strip-shaped hole 44, the movable block 40 also moves upward along the path of the inclined groove 45 through the auxiliary block, and the movable block 40 drives the crushing rod 42 to move upward through the panel 41, so that the crushing rod 42 moves away from the screen 21.

[0048] During the horizontal reciprocating motion of the pushing block 26, the pushing block 26 drives the power plate 52 to move horizontally back and forth through the power block 53, and the power plate 52 drives a plurality of cleaning blocks 51 to move horizontally back and forth. The cleaning blocks 51 can be used to clean the screen 21 to prevent the screen 21 from being blocked; moreover, when the two pushing blocks 26 approach each other, the cleaning blocks 51 of the two cleaning parts move towards each other, and the cleaning blocks 51 of the two cleaning parts abut against each other, thereby enabling the cleaning blocks 51 to cover a larger area of the screen 21, strengthening the cleaning effect on the screen 21, and preventing the screen 21 from being blocked.

[0049] The wall block 60 moves horizontally back and forth together with the pushing block 26 and the baffle 27. The wall block 60 drives the side shaft 61, the turning block 62, the worm 64, the worm gear 66, and the gear 67 to move horizontally back and forth. The rack 65 meshes with the gear 67 to drive the round shaft to rotate reciprocally, the round shaft drives the worm gear 66 to rotate reciprocally, the worm gear 66 meshes with the worm 64 to drive the worm 64 to rotate reciprocally, the worm 64 drives the side shaft 61 to rotate reciprocally, and the side shaft 61 drives the turning block 62 to swing reciprocally, thereby realizing the turning treatment of the ceramic fragments, enabling the ceramic fragments to change different positions, and further promoting the crushing treatment of the ceramic fragments at different positions; moreover, during the horizontal reciprocating motion of the wall block 60, the turning block 62 also changes its position in the horizontal direction, expanding the turning range, thereby enabling the turning treatment of the ceramic fragments at more positions.

[0050] The above are only embodiments of the present invention, and common general technical solutions and / or features in the solutions are not described in detail herein. It should be noted that for those skilled in the art, without departing from the technical solution of the present invention, several modifications and improvements can be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent. The protection scope claimed in this application shall be subject to the content of its claims, and the specific implementation manners and the like recorded in the specification can be used to interpret the content of the claims.

Claims

1. A reprocessing device for recycling waste ceramic casseroles, comprising a box body, on which a feed inlet and a discharge outlet are provided, characterized in that: A partition and a screen are provided in the box, and the partition is located above the screen; a lifting block is vertically slidably connected to the partition, and a crushing block is provided at the bottom of the lifting block; sliding grooves are provided on both sides of the lifting block on the partition, and a slider is slidably connected in the sliding groove, and a push block is provided on the slider, and the push block is in friction contact with the screen; it also includes a driving mechanism for driving the lifting block to move vertically back and forth and an adjusting mechanism for adjusting the distance between the two push blocks.

2. The recycling device for recycling waste ceramic casserole according to claim 1 is characterized in that: The driving mechanism is located above the partition, and includes a rotating shaft, a vertical groove opened on the inner wall of the box body, and a driving part for driving the rotating shaft to rotate. A cam body is coaxially connected to the rotating shaft, and a C-shaped block is slidably connected in the vertical groove. The cam body abuts against both ends of the C-shaped block, and the cam body can rotate in the C-shaped block.

3. The recycling device for recycling waste ceramic casserole according to claim 2 is characterized in that: A baffle plate for shielding the slide groove is arranged on the slide block, and the baffle plate is in frictional contact with the bottom of the partition plate.

4. The recycling device for recycling waste ceramic casserole according to claim 3 is characterized in that: The adjusting mechanism is located above the partition and includes cylindrical cams coaxially connected to the rotating shaft and located on both sides of the cam body. The cylindrical cams are provided with curved grooves, and adjusting blocks are slidably connected in the curved grooves. The movement directions of the two adjusting blocks are opposite, and the adjusting blocks are fixedly connected to the sliders.

5. The recycling device for recycling waste ceramic casserole pots according to claim 4 is characterized in that: The partition is provided with movable blocks on both sides of the lifting block in vertical sliding connection, and the distance between the two movable blocks is smaller than the distance between the two slide grooves; a panel is provided at the bottom of the movable block, and a plurality of crushing rods are provided at the bottom of the panel, and the crushing rods are vertically slidably connected to the crushing block; and a linkage mechanism is also included which drives the movable block to move vertically as the adjusting block moves horizontally.

6. The recycling device for recycling waste ceramic casserole pots according to claim 5 is characterized in that: The linkage mechanism is located above the partition, and includes a transverse block fixedly connected to the adjustment block, a strip hole opened on the transverse block, an inclined groove is provided in the strip hole, an auxiliary block is slidably connected in the inclined groove, the auxiliary block is fixedly connected to the movable block, and the movable block can move horizontally and vertically in the strip hole.

7. The recycling device for recycling waste ceramic casserole pots according to claim 6 is characterized in that: An inner groove is arranged transversely in the screen; cleaning parts are arranged on both sides of the box body, the cleaning parts include a plurality of cleaning blocks which are connected to the box body in a transverse sliding manner, the cleaning blocks are connected to the screen mesh in a transverse sliding manner, the cleaning blocks extend into the inner groove, and the cleaning blocks can move transversely in the inner groove; and a power mechanism is also included which drives the plurality of cleaning blocks of the cleaning part to move transversely at the same time as the push block moves transversely.

8. The recycling device for recycling waste ceramic casserole pots according to claim 7 is characterized in that: The power mechanism comprises a power plate, a power block connected to the box body in a transverse sliding manner, a cleaning block fixedly connected to the power plate; one end of the power block fixedly connected to the push block, and one end of the power block fixedly connected to the power plate.

9. The recycling device for recycling waste ceramic casserole pots according to claim 8 is characterized in that: A wall block is arranged between the push block and the baffle plate, a side shaft is rotatably connected to the wall block, and a material turning block is arranged on the side shaft; and a material turning mechanism is also included for driving the side shaft to rotate.

10. The recycling device for recycling waste ceramic casserole pots according to claim 9, characterized in that: The material turning structure includes a support plate fixed to the wall block, a worm coaxially connected to the side shaft, and a rack fixed to the inner wall of the box body. A circular shaft is rotatably connected to the support plate, and a worm wheel and a gear are coaxially connected to the circular shaft. The worm wheel is meshed with the worm; the rack is located between the partition and the screen, and the rack is meshed with the gear.

Citation Information

Patent Citations

  • Ceramic crushing and rough grinding device

    CN210585153U