Crushing device for glass processing

By designing a crushing device for glass processing including a stirring dispersion assembly and a cleaning plate, the problems of uneven distribution of raw material particles and high maintenance costs in the prior art are solved, and the effects of efficient screening and low maintenance costs are achieved.

CN120054692APending Publication Date: 2025-05-30江苏金奥玻璃科技有限公司
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Patent Information

Application Number
CN202510426443.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

When used in the existing glass processing crushing device, the size of the crushed raw material particles is unevenly distributed, which can easily lead to raw material accumulation and local blockage, affecting the screening efficiency, and the remaining unscreened or undischarged raw materials inside the device are inconvenient to clean up, increasing maintenance costs.

Method used

A crushing device for glass processing including a crushing assembly, a sorting cylinder, a stirring dispersion assembly and a screening mesh is designed. The rotary shaft in the dispersion assembly drives the first dispersion plate to rotate and the glass frit scattered on the screening net; at the same time, the rotary shaft drives the first cleaning plate and the second cleaning plate to stir and clean the raw materials to ensure uniform dispersion and effective cleaning of the raw materials.

Benefits of technology

By evenly dispersing raw materials, the device avoids local blockage and screening pressure concentration caused by raw materials, improves screening efficiency, and reduces maintenance costs through an effective cleaning mechanism.

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Abstract

The invention provides a smashing device for glass processing, and relates to the technical field of glass processing, the smashing device comprises a smashing assembly, a sorting cylinder, a stirring and dispersing assembly and a screening net, the sorting cylinder is arranged on the lower portion of the smashing assembly, and the screening net is arranged in the sorting cylinder; the stirring and dispersing assembly comprises a rotating shaft and a first dispersing plate located in the sorting cylinder, the rotating shaft penetrates through the screening net, the first dispersing plate is arranged on the rotating shaft and located above the screening net, and the first dispersing plate is driven by the rotating shaft to rotate so as to disperse glass materials scattered on the screening net. And raw materials crushed by the crushing assembly and falling into the sorting cylinder are flapped and dispersed through the stirring and dispersing assembly, local blockage or screening pressure concentration caused by raw material concentration is avoided, and the screening efficiency is improved. The device is reasonable in structure, high in crushing and screening efficiency and low in maintenance cost.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass processing, and particularly relates to a crushing device for glass processing. Background Art

[0002] Glass has the characteristics of transparency and hardness, and widely exists in people's lives as a common decoration. Therefore, the production and processing of glass is particularly important. The raw materials used in the glass production and processing process need to be crushed before being used in glass production.

[0003] In the prior art, when the crushing device for glass processing is in use, the crushed raw materials have uneven particle size distribution and concentrate on the screening net, which easily leads to the accumulation of raw materials, causing local blockage or concentrated screening pressure and affecting the screening efficiency. Moreover, after the raw materials are sorted through the screening net, the raw materials remaining inside the device that are not screened or discharged are not convenient to clean, increasing the maintenance cost. There is an urgent need for a crushing device for glass processing to solve the above problems. Summary of the Invention

[0004] Aiming at the deficiencies of the prior art, the purpose of the present invention is to provide a crushing device for glass processing to solve the problems raised in the above background art. The structure of the present invention is reasonable, with high crushing and screening efficiency and low maintenance cost.

[0005] In order to achieve the above purpose, the present invention is implemented through the following technical solutions: A crushing device for glass processing, comprising: A crushing component, a sorting cylinder, a stirring and dispersing component, and a screening net, wherein, The sorting cylinder is arranged below the crushing component, and a screening net is arranged inside the sorting cylinder; The stirring and dispersing component includes a rotating shaft and a first dispersing plate located inside the sorting cylinder. The rotating shaft penetrates through the screening net, and the first dispersing plate is arranged on the rotating shaft and above the screening net. The first dispersing plate is configured to be driven by the rotating shaft to rotate to disperse the glass material falling on the screening net.

[0006] Further, a crushing box is also arranged at the top of the sorting cylinder, and the crushing component is arranged inside the crushing box; A diversion groove is opened on the lower side of the inner wall of the crushing box. The lower side of the inner wall of the diversion groove is circular and matches the inner wall of the sorting cylinder. A second dispersing plate located inside the crushing box is arranged on the side wall of the rotating shaft. A conical head is arranged at the top of the rotating shaft. The top of the rotating shaft is located below the crushing component. A driving motor connected to the rotating shaft is arranged at the bottom of the sorting cylinder.

[0007] Further, the shape of the screening mesh is a frustum of a cone. A connecting ring is embedded inside the screening mesh. The side wall of the rotating shaft matches the inner wall of the connecting ring. A frustum plate is arranged on the lower side of the inner wall of the sorting cylinder. A second cleaning plate that fits the surface of the frustum plate is arranged on the side wall of the rotating shaft. A first cleaning plate that fits the surface of the screening mesh is arranged on the side wall of the rotating shaft; Material taking plates are arranged at positions on the side wall of the sorting cylinder corresponding to the frustum plate and the screening mesh. The rotating shaft penetrates through the frustum plate.

[0008] Further, the material taking plate includes a first arc plate and a second arc plate. Second arc grooves are formed at positions on the side wall of the sorting cylinder corresponding to the frustum plate and the screening mesh. First arc grooves are formed at positions on the inner wall of the sorting cylinder corresponding to the frustum plate and the screening mesh. The second arc grooves communicate with the first arc grooves. The first arc plate is arranged inside the first arc groove. The second arc plate is arranged inside the second arc groove. One side of the first arc groove close to the inner wall of the sorting cylinder matches the inner wall of the sorting cylinder; The lower side of the inner wall of the first arc groove is flush with the lower end of the arc surface of the frustum plate or the lower end of the arc surface of the screening mesh.

[0009] Further, a guiding plate is arranged on the side wall of the rotating shaft below each material taking plate. A guiding groove is formed at the top of the guiding plate. The lower side of the inner wall of the guiding groove is an inclined surface that slopes downward.

[0010] Further, a feeding channel is arranged at the top of the crushing box. A dust suppression assembly for collecting dust generated by crushing glass raw materials is arranged inside the feeding channel.

[0011] Further, the dust suppression assembly includes a pair of dust suction plates embedded on the inner walls of opposite sides of the feeding channel. A plurality of dust suction holes are formed on one side of the pair of dust suction plates close to each other. A dust suction box is arranged on the side wall of the feeding channel. Flow guiding pipes respectively communicating with the pair of dust suction plates are arranged on opposite side walls of the dust suction box. A filter screen is arranged inside the dust suction box above the flow guiding pipes. An air suction fan is arranged at the top of the dust suction box.

[0012] Further, a sealing door is arranged on the side wall of the dust suction box below the flow guiding pipe. A dust collection box is arranged on the side wall of the sealing door inside the dust suction box. A shielding net for blocking the dust suction holes is arranged on the side wall of the dust suction plate.

[0013] Further, the crushing assembly includes a pair of crushing rollers rotatably arranged inside the crushing box. A crushing motor connected to the pair of crushing rollers is arranged on the side wall of the crushing box.

[0014] Further, a support frame is provided at the bottom of the sorting cylinder, and a through hole for avoiding the driving motor is provided at the top of the support frame.

[0015] The beneficial effects achieved by the present invention with the above structure are as follows: In the present invention, the rotation of the rotating shaft in the stirring and dispersing assembly drives the first dispersing plate to rotate, dispersing the raw materials falling into the sorting cylinder from the crushing assembly, ensuring that the raw materials are evenly dispersed inside the sorting cylinder, avoiding local blockage of the screening mesh or concentration of screening pressure caused by the concentration of raw materials, and improving the screening efficiency; The rotation of the rotating shaft drives the first cleaning plate to move along the surface of the screening mesh and the second cleaning plate to rotate along the conical plate, and the lower side of the inner wall of the first arc groove is flush with the lower end of the arc surface of the conical plate or the lower end of the arc surface of the screening mesh, facilitating the stirring of the raw materials on the surfaces of the conical plate and the screening mesh and flowing out from the first arc groove and the second arc groove, facilitating the cleaning of the raw materials, avoiding raw material residue, and improving the efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] By reading the following detailed description of non-limiting embodiments with reference to the accompanying drawings, other features, objects, and advantages of the present invention will become more apparent: Figure 1 FIG. 1 is a perspective view of a glass processing crushing device according to an embodiment of the present invention; Figure 2 FIG. 2 is a sectional perspective view of a glass processing crushing device according to an embodiment of the present invention; Figure 3 FIG. 3 is a front sectional perspective view of a glass processing crushing device according to an embodiment of the present invention; Figure 4 FIG. 4 is a sectional perspective view of a glass processing crushing device from another perspective according to an embodiment of the present invention; Figure 5 FIG. 5 is a perspective view of the stirring and dispersing assembly in a glass processing crushing device according to an embodiment of the present invention; Figure 6 FIG. 6 is a perspective view of the connection between the guide plate and the material taking plate in a glass processing crushing device according to an embodiment of the present invention; Figure 7 FIG. 7 is a perspective view of the connection between the sealing door and the dust collecting box in a glass processing crushing device according to an embodiment of the present invention; In the figure: 1. Crushing box; 1001. Flow guiding groove; 2. Crushing assembly; 21. Crushing motor; 22. Crushing roller; 3. Dust suppression assembly; 31. Dust suction box; 32. Flow guiding pipe; 33. Suction fan; 34. Dust suction plate; 341. Dust suction hole; 342. Shielding net; 35. Filter screen; 36. Sealing door; 37. Ash collection box; 4. Feeding channel; 5. Sorting cylinder; 51. First arc groove; 52. Second arc groove; 6. Material taking plate; 61. First arc plate; 62. Second arc plate; 7. Material guiding plate; 71. Material guiding groove; 8. Support frame; 9. Stirring and dispersing assembly; 91. Driving motor; 92. Rotating shaft; 93. First dispersing plate; 94. Second dispersing plate; 941. Conical head; 10. Frustum plate; 11. Screening net; 111. Connecting ring; 12. First cleaning plate; 13. Second cleaning plate. Detailed implementation manners

[0017] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific implementation manners.

[0018] As Figure 1 shown, an embodiment of the present invention provides a crushing device for glass processing, including: A crushing assembly 2, a sorting cylinder 5, a stirring and dispersing assembly 9 and a screening net 11. Among them, The sorting cylinder 5 is arranged below the crushing assembly 2, and a screening net 11 is arranged inside the sorting cylinder 5; the stirring and dispersing assembly 9 includes a rotating shaft 92 and a first dispersing plate 93 located inside the sorting cylinder 5. The rotating shaft 92 penetrates through the screening net 11, and the first dispersing plate 93 is arranged on the rotating shaft 92 and above the screening net 11. The first dispersing plate 93 is configured to be driven by the rotating shaft 92 to rotate to disperse the glass material falling on the screening net 11. This design drives the rotating shaft 92 to rotate through the operation of the driving motor 91 in the stirring and dispersing assembly 9, and the rotating shaft 92 drives the first dispersing plate 93 to rotate, so as to pat and disperse the raw materials crushed by the crushing assembly 2 and falling into the sorting cylinder 5. The raw materials are evenly dispersed into the sorting cylinder 5, avoiding local blockage of the screening net 11 or concentration of screening pressure caused by the concentration of raw materials, and improving the screening efficiency.

[0019] Referring to Figure 2 、 Figure 3 and Figure 4 , it also includes a crushing box 1 arranged at the top of the sorting cylinder 5, and the crushing assembly 2 is arranged inside the crushing box 1; A diversion groove 1001 is provided on the lower side of the inner wall of the crushing box 1. The lower side of the inner wall of the diversion groove 1001 is circular and matches the inner wall of the sorting cylinder 5. A second dispersion plate 94 located inside the crushing box 1 is provided on the side wall of the rotating shaft 92. A conical head 941 is arranged at the top of the rotating shaft 92. The top of the rotating shaft 92 is located below the crushing assembly 2. A driving motor 91 connected to the rotating shaft 92 is arranged at the bottom of the sorting cylinder 5. The shapes of the first dispersion plate 93 and the second dispersion plate 94 are both square, and the length of the first dispersion plate 93 is less than the length of the second dispersion plate 94. This design facilitates the complete falling of the raw materials crushed by the crushing assembly 2 into the sorting cylinder 5 through the diversion groove 1001; the crushed raw materials are initially dispersed by the second dispersion plate 94, and then the crushed raw materials are secondarily dispersed by the first dispersion plate 93 to improve the uniformity of dispersion.

[0020] Refer to Figure 2 、 Figure 3 and Figure 5 As shown in, the shape of the screening mesh 11 is a frustum of a cone. A connecting ring 111 is embedded inside the screening mesh 11. The side wall of the rotating shaft 92 matches the inner wall of the connecting ring 111. A frustum plate 10 is arranged on the lower side of the inner wall of the sorting cylinder 5. A second cleaning plate 13 that fits the surface of the frustum plate 10 is arranged on the side wall of the rotating shaft 92. A first cleaning plate 12 that fits the surface of the screening mesh 11 is arranged on the side wall of the rotating shaft 92. Material taking plates 6 are arranged at positions on the side wall of the sorting cylinder 5 corresponding to the frustum plate 10 and the screening mesh 11. The rotating shaft 92 penetrates through the frustum plate 10. This design drives the first cleaning plate 12 to rotate along the surface of the screening mesh 11 and the second cleaning plate 13 to rotate along the frustum plate 10 through the rotating shaft 92, stirs the raw materials, speeds up the screening speed of the raw materials, and improves the screening efficiency; sealing bearings are arranged at the joints of the connecting ring 111 and the frustum plate 10 with the rotating shaft 92 respectively, and the upper end surfaces of the sealing bearings are flush with the upper end surface of the connecting ring 111 or the upper end surface of the frustum plate 10 respectively, and the upper end surface of the connecting ring 111 is flush with the upper end surface of the screening mesh 11; the first cleaning plate 12 and the second cleaning plate 13 have the same specifications and both include a horizontal part and an inclined part. The horizontal part and the inclined part are fixedly connected. The lower end surface of the horizontal part fits the upper end surface of the screening mesh 11 or the frustum plate 10, and the lower end surface of the inclined part fits the arc surface of the screening mesh 11 or the arc surface of the frustum plate 10, ensuring sufficient stirring of the raw materials on the screening mesh 11 and the frustum plate 10, and at the same time facilitating the stirring of the raw materials on the screening mesh 11 and the frustum plate 10 to flow out from the first arc groove 51 and the second arc groove 52 to avoid raw material residue.

[0021] Refer to Figure 2 、 Figure 4 and Figure 6, the material taking plate 6 includes a first arc plate 61 and a second arc plate 62. Second arc grooves 52 are formed at positions on the side wall of the sorting cylinder 5 corresponding to the frustum plate 10 and the screening mesh 11, and first arc grooves 51 are formed at positions on the inner wall of the sorting cylinder 5 corresponding to the frustum plate 10 and the screening mesh 11. The second arc grooves 52 communicate with the first arc grooves 51. The first arc plate 61 is arranged inside the first arc groove 51, and the second arc plate 62 is arranged inside the second arc groove 52. One side of the first arc groove 51 close to the inner wall of the sorting cylinder 5 matches the inner wall of the sorting cylinder 5; the lower side of the inner wall of the first arc groove 51 is flush with the lower end of the arc surface of the frustum plate 10 or the lower end of the arc surface of the screening mesh 11. This design connects the first arc groove 51 with the first arc plate 61 and the second arc groove 52 with the second arc plate 62, facilitating the installation of the material taking plate 6; by driving the first cleaning plate 12 to rotate along the surface of the screening mesh 11 and the second cleaning plate 13 to rotate along the frustum plate 10 through the rotating shaft 92, and the lower side of the inner wall of the first arc groove 51 is flush with the lower end of the arc surface of the frustum plate 10 or the lower end of the arc surface of the screening mesh 11, it is convenient to stir the raw materials on the surfaces of the frustum plate 10 and the screening mesh 11 and flow out from the first arc groove 51 and the second arc groove 52, facilitating the cleaning of the raw materials, avoiding raw material residues, and reducing maintenance costs.

[0022] Refer to Figure 1 and Figure 6 , a guide plate 7 is provided on the side wall of the rotating shaft 92 and is located below each material taking plate 6. A guide groove 71 is formed at the top of the guide plate 7, and the lower side of the inner wall of the guide groove 71 is an inclined surface sloping downward. This design facilitates the guiding and conveying of raw materials through the guide plate 7 and the guide groove 71.

[0023] Refer to Figure 1 , Figure 2 and Figure 7 , a feed channel 4 is provided at the top of the crushing box 1, and a dust suppression component 3 for collecting dust generated from crushing glass raw materials is arranged inside the feed channel 4; the dust suppression component 3 includes a pair of dust suction plates 34 embedded on the opposite inner walls of the feed channel 4. A plurality of dust suction holes 341 are formed on one side of the pair of dust suction plates 34 close to each other. A dust suction box 31 is arranged on the side wall of the feed channel 4. Flow guide pipes 32 respectively communicating with the pair of dust suction plates 34 are arranged on the opposite side walls of the dust suction box 31. A filter screen 35 is arranged inside the dust suction box 31 and is located above the flow guide pipes 32. An air suction fan 33 is arranged at the top of the dust suction box 31. This design works through the air suction fan 33 in the dust suppression component 3, and the dust suction holes 341 generate suction to absorb the dust generated from crushing raw materials. The dust follows the wind and enters the inside of the dust suction box 31, and remains inside the dust suction box 31 under the action of the filter screen 35, avoiding the dust escaping from the feed channel 4 and being inhaled by the staff, and improving the safety of use.

[0024] Refer to Figure 3 and Figure 7, a sealing door 36 is provided on the side wall of the dust collection box 31 below the diversion pipe 32. A dust collection box 37 located inside the dust collection box 31 is provided on the side wall of the sealing door 36. A shielding net 342 for blocking the dust suction holes 341 is provided on the side wall of the dust suction plate 34. This design facilitates the collection and cleaning of dust through the sealing door 36 and the dust collection box 37.

[0025] Referring to Figure 2 and Figure 3 , the crushing assembly 2 includes a pair of crushing rollers 22 rotatably arranged inside the crushing box 1. A crushing motor 21 connected to the pair of crushing rollers 22 is provided on the side wall of the crushing box 1. This design drives the crushing rollers 22 to rotate by the operation of the crushing motor 21 in the crushing assembly 2 to crush the raw materials.

[0026] Referring to Figure 1 and Figure 3 , a support frame 8 is provided at the bottom of the sorting cylinder 5. A through hole for avoiding the driving motor 91 is provided at the top of the support frame 8. This improves the rationality of this design.

[0027] Referring to Figures 1 - 7 , as an embodiment of the present invention: when it is necessary to crush glass raw materials, the staff sends the raw materials into the feeding channel 4, and drives the crushing rollers 22 to rotate by the operation of the crushing motor 21 in the crushing assembly 2 to crush the raw materials; at the same time, by the operation of the suction fan 33 in the dust suppression assembly 3, the dust suction holes 341 generate suction to absorb the dust generated by the crushed raw materials. The dust follows the wind into the dust collection box 31. Under the action of the filter screen 35, the dust stays inside the dust collection box 31, avoiding the dust from escaping from the feeding channel 4 and being inhaled by the staff, and improving the safety of use.

[0028] By the operation of the driving motor 91 in the stirring and dispersing assembly 9, the rotating shaft 92 is driven to rotate. The rotation of the rotating shaft 92 drives the first dispersing plate 93 and the second dispersing plate 94 to rotate. The rotation of the second dispersing plate 94 initially disperses the crushed raw materials, and the raw materials enter the sorting cylinder 5 along the diversion groove 1001; then the first dispersing plate 93 further disperses the raw materials falling inside the sorting cylinder 5, improving the uniformity of the raw material dispersion, avoiding the raw materials from concentrating to cause local blockage or concentrated screening pressure, and improving the screening efficiency; while the rotating shaft 92 rotates, it drives the first cleaning plate 12 along the surface of the screening mesh 11 and the second cleaning plate 13 along the conical plate 10 to stir the raw materials, accelerating the screening speed of the raw materials and improving the screening efficiency.

[0029] When it is necessary to take out the screened raw materials, the material taking plate 6 is removed from the sorting cylinder 5. By making the lower side of the inner wall of the first arc-shaped groove 51 flush with the lower end of the arc surface of the frustum plate 10 or the lower end of the arc surface of the screening mesh 11, the rotation of the rotating shaft 92 drives the first cleaning plate 12 to rotate along the surface of the screening mesh 11 and the second cleaning plate 13 to rotate along the frustum plate 10, stirring the raw materials on the surfaces of the frustum plate 10 and the screening mesh 11 to separate them from the inside of the sorting cylinder 5 and flow out from the first arc-shaped groove 51 and the second arc-shaped groove 52 and fall into the inside of the material guiding groove 71 of the material guiding plate 7, which is convenient for cleaning the raw materials, avoiding raw material residues and reducing the maintenance cost.

[0030] The foregoing has shown and described the basic principles, main features and advantages of the present invention. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, in any regard, the embodiments should be regarded as exemplary and non-restrictive. In addition, it should be understood that although this specification is described according to the embodiments, not every embodiment only contains an independent technical solution. This narrative manner of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A pulverizing device for glass processing, characterized in that: include: A pulverizing component (2), a sorting cylinder (5), a stirring and dispersing component (9) and a screening net (11), wherein: The sorting cylinder (5) is arranged at the lower part of the pulverizing assembly (2), and a screening net (11) is arranged inside the sorting cylinder (5); The stirring and dispersing assembly (9) comprises a rotating shaft (92) and a first dispersing plate (93) located inside the sorting cylinder (5); the rotating shaft (92) is arranged to pass through the sieve net (11); the first dispersing plate (93) is arranged on the rotating shaft (92) and is located above the sieve net (11); the first dispersing plate (93) is configured to be driven by the rotating shaft (92) to rotate so as to disperse the glass material falling on the sieve net (11).

2. The glass processing pulverizing device according to claim 1, characterized in that: It also comprises a crushing box (1) arranged on the top of the sorting cylinder (5), and the crushing assembly (2) is arranged inside the crushing box (1); A guide groove (1001) is provided on the lower side of the inner wall of the crushing box (1); the lower side of the inner wall of the guide groove (1001) is circular and matches the inner wall of the sorting barrel (5); a second dispersion plate (94) located inside the crushing box (1) is provided on the side wall of the rotating shaft (92); a conical head (941) is provided on the top of the rotating shaft (92); the top of the rotating shaft (92) is located below the crushing assembly (2); and a driving motor (91) connected to the rotating shaft (92) is provided on the bottom of the sorting barrel (5).

3. The glass processing pulverizing device according to claim 2, characterized in that: The screening net (11) is in the shape of a truncated cone, a connecting ring (111) is embedded inside the screening net (11), the side wall of the rotating shaft (92) matches the inner wall of the connecting ring (111), a truncated cone plate (10) is arranged on the lower side of the inner wall of the sorting cylinder (5), a second cleaning plate (13) which is in contact with the surface of the truncated cone plate (10) is arranged on the side wall of the rotating shaft (92), and a first cleaning plate (12) which is in contact with the surface of the screening net (11) is arranged on the side wall of the rotating shaft (92); A material taking plate (6) is provided at positions on the side wall of the sorting barrel (5) corresponding to the truncated cone plate (10) and the screening net (11), and the rotating shaft (92) passes through the truncated cone plate (10).

4. The glass processing pulverizing device according to claim 3, characterized in that: The material taking plate (6) comprises a first arc plate (61) and a second arc plate (62); a second arc groove (52) is provided at a position of the side wall of the sorting barrel (5) corresponding to the truncated plate (10) and the screening net (11); a first arc groove (51) is provided at a position of the inner wall of the sorting barrel (5) corresponding to the truncated plate (10) and the screening net (11); the second arc groove (52) is connected to the first arc groove (51); the first arc plate (61) is arranged inside the first arc groove (51); the second arc plate (62) is arranged inside the second arc groove (52); and a side of the first arc groove (51) close to the inner wall of the sorting barrel (5) matches the inner wall of the sorting barrel (5); The lower side of the inner wall of the first arc-shaped groove (51) is flush with the lower end of the arc surface of the truncated table plate (10) or the lower end of the arc surface of the screening net (11).

5. The glass processing pulverizing device according to claim 3, characterized in that: A material guide plate (7) is provided on the side wall of the rotating shaft (92) and is located below each of the material taking plates (6). A material guide groove (71) is provided on the top of the material guide plate (7). The lower side of the inner wall of the material guide groove (71) is a downwardly inclined slope.

6. The glass processing pulverizing device according to claim 2, characterized in that: A feed channel (4) is arranged on the top of the pulverizing box (1), and a dust suppression component (3) for collecting dust generated by pulverizing glass raw materials is arranged inside the feed channel (4).

7. The glass processing pulverizing device according to claim 6, characterized in that: The dust suppression assembly (3) comprises a pair of dust suction plates (34) embedded in the inner walls on opposite sides of the feed channel (4); a plurality of dust suction holes (341) are provided on the sides of the pair of dust suction plates (34) close to each other; a dust suction box (31) is provided on the side walls of the feed channel (4); guide pipes (32) respectively connected to the pair of dust suction plates (34) are provided on the opposite side walls of the dust suction box (31); a filter screen (35) located above the guide pipe (32) is provided inside the dust suction box (31); and a suction fan (33) is provided on the top of the dust suction box (31).

8. The glass processing pulverizing device according to claim 7, characterized in that: The side wall of the dust collection box (31) is provided with a sealing door (36) located below the air guide pipe (32), the side wall of the sealing door (36) is provided with a dust collection box (37) located inside the dust collection box (31), and the side wall of the dust collection plate (34) is provided with a shielding net (342) for shielding the dust collection hole (341).

9. The glass processing pulverizing device according to claim 1, characterized in that: The pulverizing assembly (2) comprises a pair of pulverizing rollers (22) rotatably arranged inside the pulverizing box (1), and a pulverizing motor (21) connected to the pair of pulverizing rollers (22) is arranged on a side wall of the pulverizing box (1).

10. The glass processing pulverizing device according to claim 1, characterized in that: A support frame (8) is provided at the bottom of the sorting cylinder (5), and a through hole for the drive motor (91) to avoid is opened at the top of the support frame (8).

Citation Information

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