Leftover material crushing equipment with compression treatment function

By designing edge material crushing equipment with compression processing function, the transmission structure is used to achieve orderly transfer and crushing of carton raw materials, combined with the structure of the deflector and extrusion block, the problem of manual feeding of materials in existing equipment is solved, and the large area occupied by crushing needs to be frequently cleaned, achieving an efficient and continuous crushing and compacting process.

CN222999350UActive Publication Date: 2025-06-20SICHUAN FUSHENG PAPER CO LTD
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Patent Information

Application Number
CN202422066677.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-26
Publication Date
2025-06-20
Estimated Expiration
2034-08-26

AI Technical Summary

Technical Problem

The existing carton crushing equipment consumes labor costs and requires frequent cleaning of the area after crushing, which hinders production consistency.

Method used

A side material crushing equipment with compression processing function was designed. The transmission structure connecting the vertical frame and the conveying frame was used to realize the orderly transfer and crushing of carton raw materials. Combined with the structure of the deflector plate and the extrusion block, the effective flow diversion and compaction of the crushed materials were achieved.

Benefits of technology

It reduces the cumbersomeness of manual feeding, improves production efficiency, avoids the problem of large area of ​​crushing and frequent cleaning of crushing, and achieves tight compaction of crushing, reducing waste and unnecessary cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of corrugated paper production, in particular to rim charge crushing equipment with a compression treatment function, which comprises a treatment box, a connecting vertical frame is welded on one side of the outer wall of the treatment box, and a conveying rack is welded on one side of the connecting vertical frame. The treatment box is integrally connected with the conveying rack through a connecting vertical frame, the bottom of the treatment box and the bottom of the conveying rack are located at the same horizontal position, and a smashing assembly, a flow guide plate and a compression box are arranged in the treatment box from top to bottom. According to the improved crushing equipment, the tediousness of manually lifting and conveying carton raw materials step by step can be effectively avoided through the synergistic effect between a heavy structure and a heavy structure, the specification of an extrusion block is consistent with the interval specification of the inner wall of a compression box, and therefore when driven by a hydraulic oil cylinder, the extrusion block can move along the inner wall of the compression box to extrude crushed materials and compact the crushed materials; the sustainability of the compression process and the material crushing process are synchronously carried out, a more compact whole is finally formed, and the necessity of frequently extracting internal crushed materials is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of corrugated paper production, in particular to a side material crushing device with a compression treatment function. Background Technique

[0002] Corrugated paper is a plate-like object formed by bonding a facing paper and a corrugated paper with a waveform formed by processing through a corrugating roll. Generally, it is divided into two categories: single corrugated cardboard and double corrugated cardboard. Its production involves multiple steps and processes, such as pulping, forming, gluing, drying, cutting, etc.

[0003] When corrugated paper is produced, recycled waste cartons are usually used as raw materials. Through crushing treatment, the crushing process helps to break the structure of the waste cartons, making the fibers therein easier to separate, and preparing for the subsequent pulping process.

[0004] The inventor found the following problems in the process of implementing the present utility model in the prior art: 1. At present, most carton crushing devices adopt the method of manual feeding, which relatively consumes the steps of processing procedures; 2. After the cartons are crushed, their occupied area is too large, and the crushing box needs to be frequently cleaned, otherwise it is difficult to maintain a continuous material crushing process, which hinders the continuity of production. Content of the Utility Model

[0005] The purpose of the present utility model is to provide a side material crushing device with a compression treatment function to solve the problems of increased labor costs due to manual feeding and too large occupied area after crushing, frequent cleaning, and hindrance to the continuity of production mentioned in the above background technique. To achieve the above purpose, the present utility model provides the following technical solution: A side material crushing device with a compression treatment function, including a processing box, one side of the outer wall of the processing box is welded with a connecting vertical frame, one side of the connecting vertical frame is welded with a conveying frame, the processing box and the conveying frame are integrally connected through the connecting vertical frame, and the bottom of the processing box and the bottom of the conveying frame are located at the same horizontal position. Inside the processing box, a crushing component, a diversion plate, and a compression box are respectively arranged from top to bottom;

[0006] The highest point on the surface of the connecting vertical frame is connected with a cylinder through bolts. The power output end of the cylinder is respectively connected with a moving base through bolts. Fixing bases are respectively arranged below the moving bases, and the fixing bases are welded between the inner walls of the connecting vertical frame. An upper pushing roller is rotatably connected between the moving bases, a lower pushing roller is arranged below the upper pushing roller, and the lower pushing roller is rotatably connected between the fixing bases.

[0007] Belt pulleys are respectively rotatably connected between the inner walls at both ends of the top of the conveying frame, and a number of support rollers rotatably connected to the inner wall of the conveying frame are equidistantly arranged between the belt pulleys.

[0008] The crushing assembly includes a driving bevel gear, a driven bevel gear and a crushing roller. The driving bevel gears are coaxially connected to each other and are respectively meshed and connected to one side of the driven bevel gear. The driving bevel gear and the driven bevel gear are respectively rotatably connected to the cavity on one side of the outer wall of the processing box. The crushing rollers are respectively rotatably connected between the inner walls of the processing box. One end of the crushing roller penetrates through the processing box and is integrally connected to the shaft rod at the axis of the driven bevel gear. The crushing roller is located below the upper pushing roller and the lower pushing roller.

[0009] A pressing block is slidably connected between the inner walls of the compression box. One end of the pressing block is bolted to the power output end of the hydraulic cylinder. The other end of the hydraulic cylinder penetrates through the compression box and the processing box and is bolted to the outer wall of the processing box. The bottom of the compression box is composed of a fixed bottom plate and a movable bottom plate. One end of the movable bottom plate is bolted with an electric push rod. The fixed bottom plate is welded to the compression box as a whole. The movable bottom plate is slidably connected to the bottom of the compression box through the electric push rod.

[0010] Further preferably, the moving base is slidably connected between the inner walls of the connecting vertical frame through a cylinder, and the upper pushing roller forms a lifting structure above the lower pushing roller through the moving base. Synchronous wheels are respectively rotatably connected to the inner parts of one side of the moving base and the fixed base. At the same time, one ends of the upper pushing roller and the lower pushing roller are respectively integrally connected to the corresponding synchronous wheels on one side thereof and form a relative rotational movement.

[0011] Further preferably, the outer parts of the belt pulley and the support roller are surrounded by a conveyor belt. The conveyor belt forms a transmission structure through the belt pulley installed on one side with a stepping motor. The lower pushing roller is attached to one side of the conveyor belt. At the same time, the highest point on the surface of the lower pushing roller and the highest point on the surface of the conveyor belt are located at the same horizontal position. A raw material box with a through structure up and down is bolted between the inner walls at the highest point of the top of the conveyor frame. There is a certain gap between the bottom of the raw material box and the conveyor belt.

[0012] Further preferably, the driving bevel gears are respectively vertically meshed with the driven bevel gears and are symmetrically distributed. The crushing rollers form a relative rotational movement through the driven bevel gears. Crushing blades connected by bolts are distributed in a surrounding manner on the surface of the crushing rollers.

[0013] Further preferably, the highest point of the top surface of the guide plate is parallel to the lower part of the crushing roller, the lowest point of the bottom surface of the guide plate is parallel to the inner wall between one side of the processing box, and the highest point of the top surface of the guide plate and the lowest point of the bottom surface of the guide plate are connected by an inclined plate surface at an angle of 30 degrees.

[0014] Further preferably, the pressing block forms a horizontal transmission structure on the inner wall of the compression box through the hydraulic cylinder, and the compression box forms two cavities through the pressing block and the guide plate on the top of the pressing block.

[0015] Further preferably, a strip-shaped convex block for insertion and connection with the corresponding notch of the fixed bottom plate is provided at the position where the movable bottom plate is attached to the fixed bottom plate, and a notch consistent with the specification of the movable bottom plate is penetrated and opened on one side of the outer wall of the treatment box. The movable bottom plate slides and expands through an electric push rod in the notch on the outer wall of the treatment box and forms an opening and closing structure with the fixed bottom plate. At the same time, the bottom of the treatment box is in a through state.

[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0017] In the present utility model, by arranging a connecting vertical frame and a conveying frame on the top of the treatment box, and combining the transmission structures of the connecting vertical frame and the conveying frame, the carton raw materials are orderly conveyed from the conveying frame to between the upper pushing roller and the lower pushing roller, and then fed into the treatment box through the upper pushing roller and the lower pushing roller. An inclined baffle is arranged on one side of the top of the treatment box, which effectively avoids the collapse of the carton. Through the synergistic effect between various structures, the cumbersome process of manually gradually lifting the carton raw materials can be effectively avoided.

[0018] In the present utility model, the irregular structure of the deflector can effectively prevent the crushed raw materials from falling into the corners, reducing the waste of raw materials. It can specifically guide the crushed materials into the cavity to be processed on one side of the compression box. The specification of the extrusion block is consistent with the inner wall spacing specification of the compression box, so that when it is driven by a hydraulic cylinder, it can move along the inner wall of the compression box to extrude and compact the crushed materials, and the compression process can be carried out synchronously with the crushing process, finally forming a more compact whole and reducing the unnecessary operation of frequently extracting the internal crushed materials. Description of the Drawings

[0019] Figure 1 It is a front view structural schematic diagram of the present utility model;

[0020] Figure 2 It is a structural schematic diagram of the interior of the treatment box of the present utility model;

[0021] Figure 3 It is a sectional structural schematic diagram of the compression box of the present utility model;

[0022] Figure 4 It is a structural schematic diagram of the connecting vertical frame of the present utility model;

[0023] Figure 5 It is a structural schematic diagram of the conveying frame of the present utility model.

[0024] In the figure: 1. Processing box; 2. Connecting vertical frame; 201. Cylinder; 202. Moving base; 203. Fixed base; 204. Upper pushing roller; 205. Lower pushing roller; 206. Synchronous pulley; 3. Conveyor frame; 301. Pulley; 302. Support roller; 303. Raw material box; 4. Crushing assembly; 401. Driving bevel gear; 402. Driven bevel gear; 403. Crushing roller; 5. Deflector; 6. Compression box; 601. Extrusion block; 602. Hydraulic cylinder; 603. Fixed bottom plate; 604. Movable bottom plate; 605. Electric push rod. Detailed implementation mode

[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.

[0026] Please refer to Figures 1 to 5 , the present invention provides a technical solution: a side material crushing device with a compression processing function, including a processing box 1. One side of the outer wall of the processing box 1 is welded with a connecting vertical frame 2. One side of the connecting vertical frame 2 is welded with a conveyor frame 3. The processing box 1 and the conveyor frame 3 are integrally connected through the connecting vertical frame 2, and the bottom of the processing box 1 and the bottom of the conveyor frame 3 are located at the same horizontal position. Inside the processing box 1, a crushing assembly 4, a deflector 5, and a compression box 6 are respectively arranged from top to bottom.

[0027] The highest point on the surface of the connecting vertical frame 2 is connected with a cylinder 201 through bolts. The power output end of the cylinder 201 is respectively connected with a moving base 202 through bolts. Fixed bases 203 are respectively arranged below the moving bases 202. The fixed bases 203 are welded between the inner walls of the connecting vertical frame 2. An upper pushing roller 204 is rotatably connected between the moving bases 202. A lower pushing roller 205 is arranged below the upper pushing roller 204. The lower pushing roller 205 is rotatably connected between the fixed bases 203.

[0028] Between the inner walls at both ends of the top of the conveyor frame 3, pulleys 301 are respectively rotatably connected. A number of support rollers 302 rotatably connected to the inner wall of the conveyor frame 3 are equidistantly arranged between the pulleys 301.

[0029] The crushing assembly 4 includes a driving bevel gear 401, a driven bevel gear 402 and a crushing roller 403. The driving bevel gears 401 are coaxially connected to each other and are respectively meshed and connected to one side of the driven bevel gear 402. The driving bevel gear 401 and the driven bevel gear 402 are respectively rotatably connected to the cavity on one side of the outer wall of the processing box 1. The crushing rollers 403 are respectively rotatably connected between the inner walls of the processing box 1. One end of the crushing roller 403 penetrates through the processing box 1 and is integrally connected to the shaft rod at the axis of the driven bevel gear 402. The crushing roller 403 is located below the upper pushing roller 204 and the lower pushing roller 205.

[0030] A squeezing block 601 is slidably connected between the inner walls of the compression box 6. One end of the squeezing block 601 is bolted to the power output end of the hydraulic cylinder 602. The other end of the hydraulic cylinder 602 penetrates through the compression box 6 and the processing box 1 and is bolted to the outer wall of the processing box 1. The bottom of the compression box 6 is composed of a fixed bottom plate 603 and a movable bottom plate 604. One end of the movable bottom plate 604 is bolted with an electric push rod 605. The fixed bottom plate 603 is welded to the compression box 6 as a whole. The movable bottom plate 604 is slidably connected to the bottom of the compression box 6 through the electric push rod 605.

[0031] In this embodiment, as Figure 4 shown, the moving base 202 is slidably connected between the inner walls of the connecting vertical frame 2 through the cylinder 201, and the upper pushing roller 204 forms a lifting structure above the lower pushing roller 205 through the moving base 202. Synchronous wheels 206 are respectively rotatably connected to the inner parts of one side of the moving base 202 and the fixed base 203. At the same time, one ends of the upper pushing roller 204 and the lower pushing roller 205 are respectively integrally connected to the corresponding synchronous wheels 206 on their one side and form a relative rotational movement; by arranging the connecting vertical frame 2 and the conveying frame 3 on the top of the processing box 1 and combining the transmission structures of the connecting vertical frame 2 and the conveying frame 3, the carton raw materials are orderly conveyed from the conveying frame 3 between the upper pushing roller 204 and the lower pushing roller 205, and according to the setting of the steering drive of the servo motor, the synchronous wheels 206 installed in the moving base 202 and the fixed base 203 correspondingly perform relative movement, so as to achieve the relative rotation of the upper pushing roller 204 and the lower pushing roller 205, and the purpose of pushing the carton is achieved through this relative rotation structure, greatly reducing the cumbersome process of manually putting the cartons step by step. In order to meet the requirements of the production process, by installing the upper pushing roller 204 between the movable bases 202 with adjustable height, the purpose of adjusting the distance between it and the lower pushing roller 205 is achieved, so as to ensure the smooth pushing requirement for cartons with different thicknesses.

[0032] In this embodiment, as Figure 5As shown in the figure, the outer parts of the pulley 301 and the support roller 302 are wrapped by a conveyor belt. The conveyor belt forms a transmission structure through the pulley 301 with a stepping motor installed on one side. The lower pushing roller 205 is attached to one side of the conveyor belt. At the same time, the highest point on the surface of the lower pushing roller 205 and the highest point on the surface of the conveyor belt are located at the same horizontal position. Between the inner walls of the highest points at the top of the conveyor frame 3, there is a raw material box 303 with a through structure up and down, which is connected by bolts. And there is a certain interval between the bottom of the raw material box 303 and the conveyor belt. The internal structure of the conveyor frame 3 serves the purpose of driving the conveyor belt, and then orderly conveys the carton raw materials on the surface to the upper pushing roller 204 and the lower pushing roller 205. The position distribution between it and the lower pushing roller 205 can effectively ensure the accuracy of conveying the carton raw materials to the designated position, avoiding position deviation during the conveying process, providing good preconditions for subsequent crushing. The raw material box 303 can be used to place waste cartons. Its through structure and the interval distance from the conveyor belt enable the waste cartons to fall onto the conveyor belt orderly when stacked inside it, avoiding the chaos and disorder of raw material feeding. At the same time, it greatly liberates human labor, enabling production personnel not to always pay attention to the feeding link and allowing them to engage in the processing of other related links, improving the overall production efficiency.

[0033] In this embodiment, as Figure 2 shown, the driving bevel gears 401 are respectively vertically meshed with the driven bevel gears 402 and are symmetrically distributed. And the crushing rollers 403 form a relative rotational movement through the driven bevel gears 402. And the crushing blades connected by bolts are distributed in a surrounding manner on the surface of the crushing rollers 403. The transmission structure of the driving bevel gears 401 and the driven bevel gears 402 helps to ensure the stability of the transmission of the crushing rollers 403. The relative rotation formed by the crushing rollers 403 through the driven bevel gears 402 can work efficiently and cooperatively, improving the efficiency and effect of carton crushing.

[0034] In this embodiment, as Figure 2 and Figure 3 shown, the highest point on the top surface of the guide plate 5 is parallel to the lower part of the crushing rollers 403, and the lowest point on the bottom surface of the guide plate 5 is parallel to the inner wall on one side of the treatment box 1. And the highest point on the top surface and the lowest point on the bottom surface of the guide plate 5 are connected by an inclined plate surface at an angle of 30 degrees. This irregular structure of the guide plate 5 can effectively prevent the crushed raw materials from falling into the corners, reducing the waste of raw materials, and it can specifically guide the shredded materials into the cavity to be processed on one side of the compression box 6.

[0035] In this embodiment, as Figure 2 and Figure 3As shown in the figure, the extrusion block 601 forms a horizontal transmission structure on the inner wall of the compression box 6 through the hydraulic cylinder 602, and the compression box 6 forms two cavities through the extrusion block 601 and the diversion plate 5 on the top of the extrusion block 601; the specification of the extrusion block 601 is consistent with the inner wall spacing specification of the compression box 6, so that when it is driven by the hydraulic cylinder 602, it can move along the inner wall of the compression box 6 to extrude and compact the shredded materials. The limitation of its specification can ensure that the shredded materials are subjected to uniform and sufficient pressure during the extrusion process, thereby improving the compaction effect, reducing the gaps between the shredded materials, increasing the density of the compacted materials. At the same time, its distribution structure with the diversion plate 5 in the fixed state effectively prevents the shredded materials from entering the wall on the other side of the compression box 6, thus realizing the control of the flow direction of the shredded materials and improving the efficiency and quality of the compression work.

[0036] In this embodiment, as Figure 3 shown, the position where the movable bottom plate 604 is in contact with the fixed bottom plate 603 is provided with a strip-shaped convex block for inserting and connecting with the corresponding notch of the fixed bottom plate 603. And a notch consistent with the specification of the movable bottom plate 604 is penetrated and opened on one side of the outer wall of the processing box 1. And the movable bottom plate 604 slides and expands and contracts through the electric push rod 605 in the notch on the outer wall of the processing box 1 and forms an opening and closing structure with the fixed bottom plate 603. At the same time, the bottom of the processing box 1 is in a through state; the sliding and expanding and contracting structure formed by the driving of the electric push rod 605 on the movable bottom plate 604 improves the convenience of discharging, and its insertion structure with the fixed bottom plate 603 in the closed state effectively reduces the possibility of materials leaking from the joint between the two, ensuring that the materials will not overflow from the gap during the compression process.

[0037] The usage method and advantages of the present utility model: For this edge material crushing equipment with a compression processing function, when in use, the working process is as follows:

[0038] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5As shown, first, the production staff can put the recycled waste cartons into the interior of the raw material box 303 after sorting. The cartons will be distributed in the raw material box 303 in a stacked state. Due to the through structure at the bottom, the bottom carton will fall onto the conveyor belt on the surface of the conveyor frame 3. When the production staff turns on the power, the pulley 301 on one side of the conveyor frame 3 rotates slowly through the stepping motor. Under the structure of the conveyor belt, the other set of pulleys 301 rotates correspondingly. Thus, the conveyor belt drives the cartons on its surface to be transmitted and enter the lower pushing roller 205 in an orderly structure. According to the adjustment of the servo motor controller of the driving synchronous pulley 206 on one side of the moving base 202 and the fixed base 203, the two sets of synchronous pulleys 206 can rotate in different directions, that is, a relative rotation movement is achieved. Through this relative rotation, the purpose of pushing the carton from this side to the lower processing box 1 is realized. And to reduce manual intervention, three pressure sensors (HZC-M1) are arranged at equal angles on different surface areas of the upper pushing roller 204. When the carton is between the upper pushing roller 204 and the lower pushing roller 205 and contacts the upper pushing roller 204, it will generate pressure on it. The pressure sensor detects this pressure value and converts it into an electrical signal and transmits it to the external control system. Then, the control system compares the thickness of the carton with the preset ideal pushing condition. If the carton thickness is too large, the control air cylinder will drive the driving cylinder 201. When the power output end retracts, it will correspondingly pull the moving base 202 to slide on the connecting vertical frame 2, thereby realizing the lifting of the upper pushing roller 204 and increasing the distance from the lower pushing roller 205. On the contrary, the control system will push the upper pushing roller 204 down through the cylinder 201 to reduce the distance, ensuring the effective pushing of the carton. The cartons that enter the interior of the processing box 1 will fall vertically onto the crushing roller 403. Because an inclined baffle is arranged on one side of the top of the processing box 1, the cartons can effectively avoid the phenomenon of collapse. They will lean against one side of the processing box 1 or the side of the rotating lower pushing roller 205 and wait to be processed by the rotating crushing roller 403. Due to the rotation of the driving bevel gear 401, the driven bevel gears 402 meshing with it respectively will drive the two crushing rollers 403 to rotate relatively. This relatively rotating structure exerts forces in opposite directions on the carton, and then has a tearing and squeezing effect on the carton. The carton is subjected to friction and shear forces between the two crushing rollers 403, is continuously involved and broken, gradually decomposes from a larger whole into smaller fragments, and finally falls into the guide plate 5 through the gaps at the bottom of the two continuously rotating crushing rollers 403 and falls into the compression box 6 through the inclined panel of the guide plate 5. At the same time, the extrusion block 601 is driven by the hydraulic cylinder 602 to slide and fit on the inner wall of the compression box 6 and move towards the cavity on this side, and continuously presses the shredded materials. Through continuous extrusion, the gaps between the shredded materials gradually decrease and they are tightly stacked together, and the density of the shredded materials continuously increases until the compaction degree is reached. As the shredded materials after crushing continuously fall into the compression box 6, the extrusion block 601 continuously extrudes the newly fallen shredded materials and the existing shredded materials. This compression process can be carried out synchronously with the shredding process.Finally, a more compact whole is formed, reducing the necessity of frequently extracting internal scraps. After the final processing technology is completed, the movable bottom plate 604 can be driven and pulled by the external electric push rod 605. When it slides and expands, the compressed material in the cavity can fall into the collecting device for receiving through the opened channel.

[0039] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A scrap material crushing device with a compression processing function, comprising a processing box (1), characterized in that: A connecting frame (2) is welded to one side of the outer wall of the processing box (1), and a conveying frame (3) is welded to one side of the connecting frame (2). The processing box (1) is integrally connected to the conveying frame (3) through the connecting frame (2), and the bottom of the processing box (1) and the bottom of the conveying frame (3) are located at the same horizontal position. The interior of the processing box (1) is provided with a crushing assembly (4), a guide plate (5) and a compression box (6) from top to bottom. The highest point of the surface of the connecting frame (2) is connected to a cylinder (201) by bolts, and the power output ends of the cylinder (201) are respectively connected to a mobile base (202) by bolts, and a fixed base (203) is respectively provided below the mobile base (202), and the fixed base (203) is welded between the inner walls of the connecting frame (2), and an upper push roller (204) is rotatably connected between the mobile bases (202), and a lower push roller (205) is provided below the upper push roller (204), and the lower push roller (205) is rotatably connected between the fixed bases (203); Pulleys (301) are rotatably connected between the inner walls at both ends of the top of the conveyor frame (3), and a plurality of support rollers (302) rotatably connected to the inner wall of the conveyor frame (3) are arranged at equal distances between the pulleys (301); The crushing assembly (4) comprises a driving bevel gear (401), a driven bevel gear (402) and a crushing roller (403); the driving bevel gears (401) are coaxially connected and meshed with one side of the driven bevel gear (402); the driving bevel gear (401) and the driven bevel gear (402) are respectively rotatably connected to a cavity on one side of the outer wall of the processing box (1); the crushing roller (403) is respectively rotatably connected to the inner wall of the processing box (1); one end of the crushing roller (403) passes through the processing box (1) and is integrally connected to the shaft at the axis of the driven bevel gear (402); the crushing roller (403) is located below the upper push roller (204) and the lower push roller (205); An extrusion block (601) is slidably connected between the inner walls of the compression box (6), one end of the extrusion block (601) is bolted to the power output end of the hydraulic cylinder (602), the other end of the hydraulic cylinder (602) passes through the compression box (6) and the processing box (1) and is bolted to the outer wall of the processing box (1), the bottom of the compression box (6) is composed of a fixed bottom plate (603) and a movable bottom plate (604), one end of the movable bottom plate (604) is bolted to an electric push rod (605), the fixed bottom plate (603) and the compression box (6) are welded as a whole, and the movable bottom plate (604) is slidably connected to the bottom of the compression box (6) through the electric push rod (605).

2. The edge material crushing device with compression processing function according to claim 1 is characterized in that: The movable base (202) is slidably connected between the inner walls of the connecting stand (2) through the cylinder (201), and the upper push roller (204) forms a lifting structure above the lower push roller (205) through the movable base (202), and the inside of one side of the movable base (202) and the fixed base (203) are respectively rotatably connected with synchronous wheels (206), and at the same time, one end of the upper push roller (204) and the lower push roller (205) are respectively connected in an integral manner with the synchronous wheels (206) arranged corresponding to one side thereof and form relative rotational motion.

3. The edge material crushing device with compression processing function according to claim 1 is characterized in that: The outside of the pulley (301) and the support roller (302) is wrapped with a conveyor belt in a surrounding manner, and the conveyor belt forms a transmission structure through a pulley (301) with a stepper motor installed on one side, and the lower push roller (205) is attached to one side of the conveyor belt, and the highest point of the surface of the lower push roller (205) and the highest point of the surface of the conveyor belt are located at the same horizontal position, and a raw material box (303) with a through structure is connected to the inner wall of the highest point of the top of the conveyor frame (3) by bolts, and the bottom of the raw material box (303) has a certain distance from the conveyor belt.

4. The edge material crushing device with compression processing function according to claim 1 is characterized in that: The driving bevel gears (401) are respectively vertically meshed with the driven bevel gears (402) and are symmetrically distributed, and the crushing rollers (403) are relatively rotated through the driven bevel gears (402), and crushing blades connected by bolts are distributed in a surrounding manner on the surface of the crushing rollers (403).

5. The edge material crushing equipment with compression processing function according to claim 1 is characterized in that: The highest point of the guide plate (5) is parallel to the bottom of the crushing roller (403), and the lowest point of the guide plate (5) is parallel to the inner wall of one side of the processing box (1), and the highest point of the guide plate (5) and the lowest point of the guide plate are connected by an inclined surface at an angle of 30 degrees.

6. The edge material crushing device with compression processing function according to claim 1 is characterized in that: The extrusion block (601) forms a horizontal transmission structure on the inner wall of the compression box (6) through the hydraulic cylinder (602), and the compression box (6) forms two cavities through the extrusion block (601) and the guide plate (5) on the top of the extrusion block (601).

7. The edge material crushing device with compression processing function according to claim 1 is characterized in that: A strip-shaped protrusion for plugging and connecting with the corresponding notch of the fixed bottom plate (603) is provided at the position where the movable bottom plate (604) and the fixed bottom plate (603) are fitted together, and a notch consistent with the specifications of the movable bottom plate (604) is provided through one side of the outer wall of the processing box (1), and the movable bottom plate (604) slides and retracts in the notch of the outer wall of the processing box (1) through the electric push rod (605) and forms an opening and closing structure with the fixed bottom plate (603), and at the same time, the bottom of the processing box (1) is in a through shape.