Ceramic roller press conveying integrated device

By designing an integrated ceramic roller pressing and conveying equipment, the problems of cleaning adhesive impurities during ceramic roller production and surface damage during transportation have been solved, achieving safe transportation and all-round cleaning, and improving cleaning efficiency and quality.

CN117446463BActive Publication Date: 2025-11-18BEIJING JUNSHAN SURFACE TECH ENG
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Patent Information

Application Number
CN202311603086.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-28
Publication Date
2025-11-18
Estimated Expiration
2043-11-28

AI Technical Summary

Technical Problem

During the production of ceramic rollers, adhesive impurities are difficult to remove, and surface damage is easily caused during transportation. Existing equipment cannot effectively clean and protect the surface of ceramic rollers.

Method used

An integrated ceramic roller pressing and conveying device was designed, comprising a conveying component, a brushing component, and a buffer ramp. The conveying component transports the ceramic rollers separately, the brushing component cleans the surface of the ceramic rollers from all angles, and the buffer ramp slows down the rolling speed and prevents collisions.

Benefits of technology

It enables safe transportation and all-round cleaning of ceramic rollers, avoids surface damage, improves cleaning efficiency and quality, and ensures the integrity of ceramic rollers.

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Abstract

The present application relates to the field of ceramic roller production and transportation, and particularly relates to a ceramic roller pressing and conveying integrated device. The device comprises a main frame, a placing assembly, a conveying assembly, a brushing assembly and a buffer slope. The brushing assembly and the conveying assembly are cooperated to effectively brush the surface of the ceramic roller in all directions while conveying. The composite brush plate arranged in the brushing assembly can be self-adaptively adjusted to the surface of the ceramic roller with different diameters, thereby improving the universality of the device. The composite brush plate moves synchronously with each ceramic roller, thereby accurately brushing each ceramic roller during the movement and improving the cleaning efficiency and quality to a certain extent. The conveying assembly can convey the ceramic rollers separately, thereby avoiding the surface damage caused by the collision between the ceramic rollers. The wiping brush plate arranged on the conveying assembly can clean and brush the side surface of the ceramic roller, thereby realizing the comprehensive cleaning of the ceramic roller in cooperation with the brushing assembly.
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Description

Technical Field

[0001] This invention relates to the field of ceramic roller production and transportation, specifically to an integrated ceramic roller pressing and conveying equipment. Background Technology

[0002] As a high-temperature resistant material, ceramics have high hardness and their surface can remain smooth for a long time without sticking to stainless steel, making them very suitable for stainless steel production lines. The most advanced method for manufacturing ceramic rollers is to first produce ceramic fiber sheets before manufacturing the ceramic rollers, and then press a certain number of ceramic fiber sheets into ceramic rollers with the help of an adhesive.

[0003] However, the production process of ceramic rollers may present some problems: 1. Adhesives are added during the production of ceramic rollers. Excess adhesives and other impurities may adhere to the surface of the ceramic rollers during pressing. Stainless steel has low strength and is relatively soft. If these impurities adhere to the surface of the ceramic rollers, it may cause defects in the surface of the produced stainless steel. Currently, there are no machines on the market that can specifically clean such impurities. Manual cleaning is time-consuming, labor-intensive, and cannot guarantee complete cleaning. 2. Rollers made of ceramic materials may be at risk of collision during transportation during production, resulting in surface defects. Once the surface of the ceramic roller is dented, the entire ceramic roller may be scrapped. Therefore, a machine is needed that can safely transport ceramic rollers during production and clean the surface of the finished ceramic rollers. Summary of the Invention

[0004] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is: an integrated ceramic roller pressing and conveying device, including a main frame, the main frame including two structural plates arranged in a front-to-back mirror arrangement, a bottom plate is provided on the lower side of the two structural plates, a top plate is provided on the upper side of the two structural plates, a stacking component is provided on the left side of the main frame, a conveying component is installed between the two structural plates of the main frame, a brushing component is installed on the lower side of the top plate and above the conveying component, and a buffer slope is installed on the main frame and on the right side of the conveying component.

[0005] The conveying assembly includes a conveyor belt installed between two structural plates. The conveyor belt moves in a left-right direction. Multiple support members arranged in a mirror image are connected to both the front and rear sides of the conveyor belt. Each support member includes a connecting rod connected to the conveyor belt on one side. The connecting rod is U-shaped and has a lever on its right side. The section away from the conveyor belt is hollow and has a support fork slidably connected inside. The support fork is Y-shaped and has a support spring between it and the connecting rod. A positioning hole is provided on the side of the support fork closest to the conveyor belt. A compression spring is provided in the positioning hole. One end of the compression spring is connected to the support fork, and the other end is connected to a brush plate.

[0006] The brushing assembly includes a groove block disposed on the lower side of the top plate and above the conveying assembly. A T-shaped groove is provided on the lower side of the groove block, and an irregular cavity is provided above the T-shaped groove. The T-shaped groove and the irregular cavity are connected. A T-shaped block is slidably connected to the T-shaped groove. A through hole is provided on the T-shaped block from top to bottom. A guide rod is slidably connected in the through hole. The part of the guide rod on the upper side of the T-shaped block is connected to an upper spring. The upper end of the guide rod abuts against the upper side of the irregular cavity. The part of the guide rod on the lower side of the T-shaped block is an elastic telescopic structure. A return spring is provided in the T-shaped groove at the right end of the T-shaped block. One end of the return spring is connected to the right side of the T-shaped block, and the other end is connected to the groove block. A composite brush plate is provided at the lower end of the guide rod. A rubber support plate is provided inside the two structural plates and below the composite brush plate. A rubber plate is provided below the rubber support plate.

[0007] As a preferred embodiment of the present invention, the erection assembly includes two erection ramps arranged in a front-to-back mirror configuration, which are respectively connected to the sides of two structural plates of the main frame. The right ends of the two erection ramps are provided with arc-shaped ramps. A blocking cylinder is provided on the lower side of the top plate above the intersection of the arc-shaped ramp and the erection ramp. The piston rod of the blocking cylinder faces downward and a blocking plate is provided on the piston rod.

[0008] As a preferred embodiment of the present invention, the groove on the side of the support fork away from the support spring is semi-circular, and multiple freely rolling steel balls are embedded in the inner side of the groove.

[0009] As a preferred embodiment of the present invention, the composite brush plate includes a fixed brush plate connected to the lower end of the guide rod, and movable brush plates are hinged to the left and right sides of the fixed brush plate. A limiting protrusion is provided at the hinge point between the two to prevent the movable brush plates from swinging downward at an excessive angle. A contact rod is provided at the front and rear ends of the fixed brush plate. The contact rod is arranged in an inverted L-shape. The contact rod contacts the aforementioned actuating rod during the operation of the conveyor belt to synchronously transmit the power of the conveyor belt to the composite brush plate.

[0010] As a preferred embodiment of the present invention, the buffer slope includes a supporting slope, a plurality of buffer pits are provided on the supporting slope, a buffer spring is provided in the buffer pit, one end of the buffer spring is connected to the bottom of the buffer pit, and a buffer plate is connected to the other end. The buffer plate is horizontally provided at the opening of the buffer pit, and one end of the buffer plate near the supporting slope is hinged to the front and rear sides of the buffer pit, and a portion of its other end extends out of the supporting slope to form a protrusion.

[0011] As a preferred embodiment of the present invention, the upper side of the irregular cavity is provided with two upward recesses on the left and right sides, the left recess being slightly shallower than the right recess, and the two recesses being separated by a raised horizontal section, and the overall length of the irregular cavity is less than the interval length between the two support members.

[0012] As a preferred embodiment of the present invention, the left end of the rubber support plate is an inclined surface, which is arranged with the left side higher than the right side, and the right end of the inclined surface is a horizontal surface, with a rubber friction pad provided on the lower side of the horizontal surface.

[0013] As a preferred embodiment of the present invention, the brush plate has a chamfer on the side away from the conveyor belt.

[0014] The beneficial effects of the present invention are as follows: First, the conveying component of the present invention can transport ceramic rollers separately, avoiding surface damage caused by collision between ceramic rollers. In addition, the conveying component of the present invention is also equipped with a brush plate, which can clean and brush the sides of the ceramic rollers. With the brush and wiping component, the ceramic rollers can be thoroughly cleaned.

[0015] Second, the brushing component and conveying component of this invention work together to effectively brush the surface of the ceramic rollers in all directions during transportation. The composite brush plate inside the brushing component can adaptively adjust to the surface of ceramic rollers of different diameters. At the same time, the composite brush plate can move synchronously with the ceramic rollers and rotate during the movement, so as to thoroughly clean the rotating ceramic rollers, which improves the versatility of this invention. Furthermore, the composite brush plate moves synchronously with each ceramic roller, and can precisely brush each ceramic roller during the movement, which improves cleaning efficiency and cleaning quality to a certain extent.

[0016] Third, the stacking component of this invention can cooperate with the conveying component to separate multiple parallel ceramic rollers to prevent them from colliding with each other and causing surface damage; and the buffer slope of this invention can reduce the rolling speed of the washed ceramic rollers to prevent them from colliding with each other or hitting other objects and causing surface damage when they roll down. Attached Figure Description

[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0018] Figure 1 This is a schematic diagram of the structure of the present invention.

[0019] Figure 2 This is a schematic diagram of the structure after removing part of the top plate and the stacking components of the present invention.

[0020] Figure 3 yes Figure 2 Enlarged view of point I.

[0021] Figure 4 yes Figure 2 Enlarged view of section II.

[0022] Figure 5 yes Figure 2 Enlarged view of section III.

[0023] Figure 6 yes Figure 3 Enlarged view of section IV.

[0024] Figure 7 This is a schematic diagram of the composite brush plate and guide rod of the present invention.

[0025] Figure 8 This is a structural schematic diagram of the support component of the present invention.

[0026] Figure 9 yes Figure 8 Enlarged view of point V.

[0027] Figure 10 This is a schematic diagram showing the installation position of the rubber support plate.

[0028] In the diagram: 1. Main frame; 11. Structural plate; 12. Base plate; 13. Top plate; 2. Erection assembly; 21. Erection scaffold; 211. Arc-shaped inclined surface; 22. Blocking cylinder; 221. Blocking plate; 3. Conveying assembly; 31. Conveyor belt; 32. Support component; 321. Connecting rod; 322. Support fork; 323. Compression spring; 324. Brush plate; 325. Steel ball; 326. Support spring; 33. Actuating rod; 4. Brush assembly; 41. Groove block; 411. T-shaped chute; 412. Irregular cavity; 42. T-shaped block; 43. Guide rod; 44. Top spring; 45. Reset spring; 46. Composite brush plate; 461. Fixed brush plate; 462. Movable brush plate; 463. Limiting protrusion; 464. Bumper rod; 47. Rubber support plate; 471. Rubber friction pad; 5. Buffer slope; 51. Support slope; 511. Buffer pit; 52. Buffer spring; 53. Buffer plate. Detailed Implementation

[0029] The embodiments of the present invention are described in detail below. The embodiments described below are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention. Where specific techniques or conditions are not specified in the embodiments, they shall be performed in accordance with the techniques or conditions described in the literature in the art or in accordance with the product manual.

[0030] See Figure 1 A ceramic roller pressing and conveying integrated device includes a main frame 1, which includes two structural plates 11 arranged in a front-to-back mirror arrangement. A bottom plate 12 is provided on the lower side of the two structural plates 11, and a top plate 13 is provided on the upper side of the two structural plates 11. A stacking component 2 is provided on the left side of the main frame 1, and a conveying component 3 is installed between the two structural plates 11 of the main frame 1. A brushing component 4 is installed on the lower side of the top plate 13 and above the conveying component 3. A buffer ramp 5 is installed on the main frame 1 and on the right side of the conveying component 3.

[0031] The conveying component 3 of this invention can transport ceramic rollers separately, avoiding surface damage caused by collisions between them. The conveying component 3 is also equipped with a brush plate 324 for cleaning the sides of the ceramic rollers. Combined with the brushing component 4, it can thoroughly clean the ceramic rollers. The brushing component 4 and the conveying component 3 work together to effectively brush the surface of the ceramic rollers from all directions during transport. The composite brush plate 46 within the brushing component 4 can adaptively adjust to the surface of ceramic rollers of different diameters, improving the versatility of this invention. The stacking component 2 can cooperate with the conveying component 3 to separate multiple parallel ceramic rollers, preventing collisions and surface damage. Furthermore, the buffer slope 5 reduces the rolling speed of the washed ceramic rollers, preventing collisions or excessive speeds that could cause surface damage.

[0032] See Figure 1 The erection assembly 2 includes two erection inclined frames 21 arranged in a front-to-back mirror configuration, which are respectively connected to the upper sides of the two structural plates 11 of the main frame 1. The right end of each of the two erection inclined frames 21 is provided with an arc-shaped inclined surface 211. A blocking cylinder 22 is provided on the lower side of the top plate 13 above the intersection of the arc-shaped inclined surface 211 and the erection inclined frame 21. The piston rod of the blocking cylinder 22 faces downward and a blocking plate 221 is provided on the piston rod.

[0033] During transportation, rows of ceramic rollers first enter the equipment from the leftmost end of the inclined frame 21. The two ends of the core of the first ceramic roller on the right end contact the arc-shaped inclined surface 211. At the same time, the blocking cylinder 22 extends and drives the blocking plate 221 to extend downward, separating the first ceramic roller on the right end from the second ceramic roller on the right end. Simultaneously, the conveying component 3 starts and takes the first ceramic roller on the right end away. Then, the blocking cylinder 22 drives the blocking plate 221 to retract. Because the ceramic roller on the inclined surface is pressed downward, the original second ceramic roller on the right end will move forward to the arc-shaped inclined surface 211. Then, the blocking cylinder 22 extends and drives the blocking plate 221 to extend downward, separating the original second ceramic roller on the right end from the ceramic roller on its left. The above process is repeated continuously.

[0034] See Figure 2 , Figure 5 , Figures 8-9The conveying assembly 3 includes a conveyor belt 31 installed between two structural plates 11. The conveyor belt 31 moves in a left-right direction. Multiple mirror-arranged support members 32 are connected to both the front and rear sides of the conveyor belt 31. Each support member 32 includes a connecting rod 321 connected to the conveyor belt 31 on one side. The connecting rod 321 is U-shaped, with a lever 33 on its right side. The section of the connecting rod 321 away from the conveyor belt 31 is hollow, and a support fork 322 is slidably connected inside it. The support fork 322 is Y-shaped. A support spring 326 is provided between the support fork 322 and the connecting rod 321. A positioning hole is provided on the side of the support fork 322 near the conveyor belt 31. A compression spring 323 is provided in the positioning hole. One end of the compression spring 323 is connected to the support fork 322, and the other end is connected to a brush plate 324. The groove on the side of the support fork 322 away from the support spring 326 is semi-circular, and multiple freely rolling steel balls 325 are embedded in the inside of the groove. The side of the brush plate 324 away from the conveyor belt 31 is chamfered.

[0035] The conveying component 3 of this invention can cooperate with the stacking component 2 to separate multiple parallel ceramic rollers, effectively preventing the parallel ceramic rollers from colliding with each other and causing surface damage. The conveying component 3 of this invention can transport ceramic rollers separately, avoiding the collision between ceramic rollers and causing surface damage. In addition, the conveying component 3 of this invention is also provided with a brush plate 324, which can clean and brush the sides of the ceramic rollers. With the brushing component 4, the ceramic rollers can be thoroughly cleaned.

[0036] It should be noted that the overall height of the arc-shaped inclined surface 211 is slightly lower than that of the support fork 322, in order to prevent the ceramic roller from falling off when the support fork 322 drives the ceramic roller on the arc-shaped inclined surface 211.

[0037] Specifically, when the first ceramic roller enters the arc-shaped inclined surface 211, the conveyor belt 31 drives the support members 32 on both sides to start rotating clockwise. When the support fork 322 rotates to the position of the left end of the arc-shaped inclined surface 211, the two ends of the ceramic roller core enter the groove of the support fork 322 with the movement of the conveyor belt 31. At the same time, since the side of the brush plate 324 away from the conveyor belt 31 is chamfered, the compression spring 323 starts to compress when the two ends of the ceramic roller core enter the groove of the support fork 322, pressing the brush plate 324 tightly against the side wall of the ceramic roller. Then the ceramic roller moves to the right as the support fork 322 leaves the arc-shaped inclined surface 211.

[0038] See Figures 2-3 , Figure 10The brushing assembly 4 includes a groove block 41 disposed on the lower side of the top plate 13 and above the conveying assembly 3. A T-shaped slide groove 411 is provided on the lower side of the groove block 41, and an irregular cavity 412 is provided above the T-shaped slide groove 411. The T-shaped slide groove 411 communicates with the irregular cavity 412. A T-shaped block 42 is slidably connected to the T-shaped slide groove 411. A through hole is provided on the T-shaped block 42 from top to bottom. A guide rod 43 is slidably connected in the through hole. The part of the guide rod 43 located on the upper side of the T-shaped block 42 is connected to an upper spring 44. The upper end of the guide rod 43 abuts against the upper side of the irregular cavity 412. On the surface, the portion of the guide rod 43 located below the T-shaped block 42 is an elastic telescopic structure; a return spring 45 is provided in the T-shaped groove 411 at the right end of the T-shaped block 42, one end of the return spring 45 is connected to the right side of the T-shaped block 42, and the other end is connected to the groove block 41; a composite brush plate 46 is provided at the lower end of the guide rod 43, and a rubber support plate 47 is provided inside the two structural plates 11 and below the composite brush plate 46. The left end of the rubber support plate 47 is an inclined surface, with the inclined surface arranged to be higher on the left and lower on the right, and the right end of the inclined surface is a horizontal surface. A rubber friction pad 471 is provided below the horizontal surface.

[0039] See Figure 3 The upper side of the irregular cavity 412 is provided with two trapezoidal depressions, one on the left and one on the right. The left depression is slightly shallower than the right one. A raised horizontal section is provided between the two depressions. The overall length of the irregular cavity 412 is less than the interval length between the two support members 32.

[0040] See Figure 3 , Figures 6-7 The composite brush plate 46 includes a fixed brush plate 461 connected to the lower end of the guide rod 43. Movable brush plates 462 are hinged to the left and right sides of the fixed brush plate 461. Limiting protrusions 463 are provided at the hinge points to prevent the movable brush plates 462 from swinging downwards at an excessive angle. The fixed brush plate 461 is provided with a contact rod 464 at both the front and rear ends. The contact rod 464 is arranged in an inverted L shape. The contact rod 464 contacts the aforementioned actuating rod 33 during the operation of the conveyor belt 31, and synchronously transmits the power of the conveyor belt 31 to the composite brush plate 46.

[0041] The brushing component 4 and the conveying component 3 of this invention work together to effectively brush the surface of the ceramic roller in all directions while transporting it. The composite brush plate 46 set in the brushing component 4 can adaptively adjust to the surface of ceramic rollers of different diameters, which improves the universality of this invention. The composite brush plate 46 moves synchronously with each ceramic roller, and can accurately brush each ceramic roller during the movement, which improves cleaning efficiency and cleaning quality to a certain extent.

[0042] Specifically, when the ceramic roller moves to the right along with the support fork 322 and reaches the left inclined surface of the rubber support plate 47, the left inclined surface of the rubber support plate 47 begins to press down on both sides of the ceramic roller core. The elastic telescopic structure between the support fork 322 and the connecting rod 321 begins to compress until it reaches the horizontal part of the rubber support plate 47. At this time, due to the large friction of the rubber friction pad 471, the support spring 326 between the support fork 322 and the connecting rod 321 ensures that the ceramic roller is always in tight contact with the rubber friction pad 471. Driven by the conveyor belt 31, the ceramic roller begins to rotate. When the ceramic roller starts to rotate, the brush plate 324, which is in close contact with the side wall of the ceramic roller, begins to move relative to the ceramic roller, thereby starting to brush the side wall of the ceramic roller. At this time, the conveyor belt 31 continues to move to the right until the contact rod 464 contacts the toggle rod 33, and the brushing assembly 4 begins to work.

[0043] When the contact rod 464 contacts the actuating rod 33, the actuating rod 33 transmits power to the T-block 42. The T-block 42 drives the guide rod 43 to move to the right. At the same time, the T-block 42 begins to compress the return spring 45. Since the upper side of the irregular cavity 412 has two upward recesses on the left and right, and a raised horizontal section between the two recesses, when the upper end of the guide rod 43 moves to the right to the raised horizontal section between the two recesses, the guide rod 43 drives the composite brush plate 46 to move downward, so that the composite brush plate 46 contacts the surface of the lower ceramic roller. The movable brush plate 462 and the guide rod 43 adapt to the radius of the ceramic roller, and at the same time compress the upper spring 44. Since the ceramic roller is constantly rotating, the brush bristles contact the surface of the lower ceramic roller. The brushing begins, and the ceramic roller and composite brush plate 46 move synchronously to the right under the action of the actuating rod 33 and the contact rod 464. When the upper end of the guide rod 43 contacts the deeper recess on the right end of the irregular cavity 412, the upper spring 44 drives the contact rod 464 on the composite brush plate 46 to move upward through the guide rod 43. At the moment when the contact rod 464 and the actuating rod 33 are disengaged, the reset spring 45 bounces the T-block 42 back to its initial position. Since the overall length of the irregular cavity 412 is less than the interval length between the two support members 32, the next ceramic roller has not yet arrived after the T-block 42 is bounced back to its original position. When the next ceramic roller arrives, its corresponding actuating rod 33 contacts the contact rod 464, thus starting a new cycle.

[0044] See Figure 2 , Figure 4The buffer slope 5 includes a supporting slope 51, on which a plurality of buffer pits 511 are provided. A buffer spring 52 is provided in the buffer pit 511. One end of the buffer spring 52 is connected to the bottom of the buffer pit 511, and the other end is connected to a buffer plate 53. The buffer plate 53 is horizontally arranged at the opening of the buffer pit 511. One end of the buffer plate 53 near the supporting slope 51 is hinged to the front and rear sides of the buffer pit 511, and a portion of its other end extends out of the supporting slope 51 to form a protrusion.

[0045] The buffer slope 5 provided in this invention can reduce the rolling speed of the ceramic rollers that have been washed, so as to prevent the ceramic rollers from colliding with each other or hitting other objects and causing surface damage due to excessive rolling speed.

[0046] Specifically, when the ceramic roller is transported to the end of the conveyor belt 31, the support fork 322 starts to rotate, and the ceramic roller on it falls onto the support slope 51 of the buffer slope 5 and begins to roll downward. When it rolls onto the part of the buffer plate 53 that extends out of the support slope 51, the buffer plate 53 rotates downward, and at the same time the buffer spring 52 is compressed to absorb part of the kinetic energy of the ceramic roller, so as to reduce the rolling speed of the ceramic roller. After the ceramic roller passes through multiple buffer springs 52, it falls into the subsequent collection device.

[0047] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention, which are still covered within the protection scope of the present invention.

Claims

1. A ceramic roller pressing and conveying integrated device, comprising a main frame (1), the main frame (1) comprising two structural plates (11) arranged in a front-to-back mirror configuration, a bottom plate (12) being provided on the lower side of the two structural plates (11), and a top plate (13) being provided on the upper side of the two structural plates (11), characterized in that, A stacking assembly (2) is provided on the left side of the main frame (1), a conveying assembly (3) is installed between the two structural plates (11) of the main frame (1), a brush assembly (4) is installed on the underside of the top plate (13) and above the conveying assembly (3), and a buffer ramp (5) is installed on the main frame (1) and to the right of the conveying assembly (3). The conveying assembly (3) includes a conveyor belt (31) installed between two structural plates (11). The conveyor belt (31) moves in a left-right direction. Multiple support members (32) arranged in a mirror image are connected to both the front and rear sides of the conveyor belt (31). Each support member (32) includes a connecting rod (321) connected to the conveyor belt (31) on one side. The connecting rod (321) is U-shaped and has a lever (33) on its right side. The connecting rod (321) is away from the conveyor belt (31). One section of the support fork (322) is hollow and has a support fork (322) slidably connected inside. The support fork (322) is Y-shaped. A support spring (326) is provided between the support fork (322) and the connecting rod (321). A positioning hole is provided on the side of the support fork (322) near the conveyor belt (31). A compression spring (323) is provided in the positioning hole. One end of the compression spring (323) is connected to the positioning hole of the support fork (322), and a brush plate (324) is connected to the other end. The brushing assembly (4) includes a groove (41) disposed on the lower side of the top plate (13) and above the conveying assembly (3). A T-shaped slide groove (411) is provided on the lower side of the groove (411), and an irregular cavity (412) is provided above the T-shaped slide groove (411). The T-shaped slide groove (411) communicates with the irregular cavity (412). A T-shaped block (42) is slidably connected to the T-shaped slide groove (411). A through hole is provided on the T-shaped block (42) from top to bottom. A guide rod (43) is slidably connected inside the through hole. The part of the guide rod (43) located on the upper side of the T-shaped block (42) is connected to an upper... The top spring (44) and the upper end of the guide rod (43) rest on the upper side of the irregular cavity (412). The part of the guide rod (43) located on the lower side of the T-shaped block (42) is an elastic telescopic structure. A return spring (45) is provided in the T-shaped groove (411) at the right end of the T-shaped block (42). One end of the return spring (45) is connected to the right side of the T-shaped block (42), and the other end is connected to the groove block (41). A composite brush plate (46) is provided at the lower end of the guide rod (43). A rubber support plate (47) is provided inside the two structural plates (11) and located on the lower side of the composite brush plate (46).

2. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The erection assembly (2) includes two erection ramps (21) arranged in a front-to-back mirror configuration, which are respectively connected to the upper sides of the two structural plates (11) of the main frame (1). The right end of each of the two erection ramps (21) is provided with an arc-shaped ramp (211). A blocking cylinder (22) is provided on the lower side of the top plate (13) above the intersection of the arc-shaped ramp (211) and the erection ramp (21). The piston rod of the blocking cylinder (22) faces downward and a blocking plate (221) is provided on the piston rod.

3. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The groove on the side of the support fork (322) away from the support spring (326) is semi-circular, and multiple freely rolling steel balls (325) are embedded inside the groove.

4. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The composite brush plate (46) includes a fixed brush plate (461) connected to the lower end of the guide rod (43). The fixed brush plate (461) is hinged to the left and right sides with movable brush plates (462). The hinge is provided with a limit protrusion (463) and a torsion spring. The limit protrusion (463) is used to prevent the movable brush plate (462) from swinging downward at an excessive angle. The fixed brush plate (461) is provided with a contact rod (464) at both ends. The contact rod (464) is arranged in an inverted L shape. The contact rod (464) contacts the actuating rod (33) during the operation of the conveyor belt (31) and synchronously transmits the power of the conveyor belt (31) to the composite brush plate (46).

5. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The buffer slope (5) includes a supporting slope (51), and multiple buffer pits (511) are provided on the supporting slope (51). A buffer spring (52) is provided in the buffer pit (511). One end of the buffer spring (52) is connected to the bottom of the buffer pit (511), and the other end is connected to a buffer plate (53). The buffer plate (53) is horizontally arranged at the opening of the buffer pit (511). One end of the buffer plate (53) near the supporting slope (51) is hinged to the front and rear sides of the buffer pit (511), and a portion of its other end extends out of the supporting slope (51) to form a protrusion.

6. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The upper side of the irregular cavity (412) is provided with two upward recesses on the left and right sides, and the left recess is slightly shallower than the right recess. A raised horizontal section is provided between the two recesses, and the overall length of the irregular cavity (412) is less than the interval length between the two support members (32).

7. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The left end of the rubber support plate (47) is an inclined plane, which is arranged with the left side higher than the right side. The right end of the inclined plane is a horizontal plane, and a rubber friction pad (471) is provided on the lower side of the horizontal plane.

8. The integrated ceramic roller pressing and conveying equipment according to claim 1, characterized in that, The side of the brush plate (324) away from the conveyor belt (31) is chamfered.

Citation Information

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