Energy-saving device for fiber separation of corrugated paper packaging waste
By designing multiple sets of fan blades and filter structures, the problem of insufficient contact area of fan blades in the fiber dissociation device for corrugated paper packaging waste was solved, achieving low-energy and high-efficiency fiber dissociation and improving the quality and purity of fibers.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG XIASHA RONGCHENG PACKING CO LTD
- Filing Date
- 2025-06-25
- Publication Date
- 2026-05-26
AI Technical Summary
In existing corrugated paper packaging waste fiber disintegration devices, the contact area of a single fan blade during crushing is limited, resulting in the equipment operating at high load for extended periods and increasing energy consumption.
It adopts a multi-stage fan blade and filter structure, and drives the fan blade to rotate through a motor-driven rotating column. Combined with the design of electric push rod and sliding column, it achieves stable sliding and rotation. With the help of transmission components and vibration components, it improves fiber dissociation efficiency and energy utilization.
It reduces energy consumption in the fiber dissociation process, shortens the crushing time, and improves fiber quality and purity.
Smart Images

Figure CN224272676U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of corrugated paper technology, and in particular to an energy-saving device for fiber dissociation from corrugated paper packaging waste. Background Technology
[0002] During the corrugated paper production process, scraps are generated when cutting large rolls of base paper into various sizes of cardboard. After purchasing goods, consumers usually discard the corrugated paper boxes. After fulfilling their functions of transportation and sales, these boxes have no practical use for consumers and become part of urban waste.
[0003] With the rapid development of e-commerce and logistics, the amount of corrugated cardboard packaging waste is growing rapidly. If this waste is directly landfilled, it will occupy a large amount of land resources. Furthermore, corrugated cardboard degrades slowly in the natural environment, which may cause long-term pollution to soil and groundwater. By treating it with a fiber dissociation energy-saving device, the waste can be transformed into reusable fibers, thereby greatly reducing the amount of waste going to landfills.
[0004] A search revealed that publication number CN219897748U discloses a pulp fiber dissociation device, comprising a base, a lifting structure, and a mixing tank. The lifting structure and the mixing tank are mounted on the base. The mixing tank contains a connecting rod and an arc-shaped stirring blade. The connecting rod is connected to a motor on the lifting structure, which drives the connecting rod to rotate, thereby adjusting the clockwise rotation speed of the arc-shaped stirring blade. The arc-shaped stirring blade has three blunt blades, the concave shape of which faces the mixing tank. These blunt blades reduce fiber cutting. The mixing tank wall is equipped with four arc-shaped baffles, arranged symmetrically in pairs around the connecting rod, with the concave shape of the baffles facing opposite to that of the arc-shaped stirring blades. This pulp fiber dissociation device improves the dissociation effect.
[0005] In existing technologies, energy-saving devices for fiber separation of corrugated paper packaging waste typically use a single fan blade for crushing. However, this results in a limited contact area between the fan blade and the corrugated paper, requiring repeated operation to fully crush the corrugated paper. This leads to prolonged high-load operation of the equipment, resulting in increased energy consumption. Utility Model Content
[0006] To overcome the above shortcomings, this utility model provides an energy-saving device for fiber dissociation of corrugated paper packaging waste. It aims to solve the problem that in the prior art, when a single fan blade is crushed, the contact area between the fan blade and the corrugated paper is limited, which requires repeated operation to fully crush the corrugated paper. This leads to the equipment operating at high load for a long time, resulting in increased energy consumption.
[0007] To achieve the above objectives, this utility model adopts the following technical solution: an energy-saving device for fiber separation of corrugated paper packaging waste, comprising a separation tank body, a motor fixedly connected to the upper surface of the separation tank body, a rotating column fixedly installed at the output end of the motor, the outer wall of the rotating column rotatably connected to the inner wall of the separation tank body, a fan blade fixedly connected to the outer wall of the rotating column, an electric push rod fixedly connected to the inner bottom wall of the separation tank body, a sliding column fixedly installed at the output end of the electric push rod, the outer wall of the sliding column slidably connected to the inner wall of the rotating column, a rotating block rotatably connected to the top of the sliding column, a rotating rod rotatably connected to the inner wall of the rotating block, a filter screen rotatably connected to the outer wall of the rotating rod, a connecting rod rotatably connected to the inner wall of the filter screen, the outer wall of the connecting rod fixedly connected to the inner wall of the rotating column, the outer wall of the filter screen slidably connected to the inner wall of the rotating column, and a transmission component provided on the inner wall of the separation tank body.
[0008] The above technical solution involves pouring corrugated paper into the dissociation tank. Starting the motor drives the rotating column to rotate, simultaneously rotating six sets of fan blades. This allows the fan blades to achieve complete fiber dissociation with low energy consumption. An electric push rod fixed to the inner wall of the dissociation tank pushes a sliding column against the inner wall of the rotating column. The rotating column's rotation against the inner wall of the dissociation tank ensures stable sliding and prevents it from falling off. As the sliding column slides, it pushes a rotating block to slide synchronously. The rotating block's rotation against the inner wall of the sliding column ensures stable sliding and rotation. The rotating block drives a rotating rod, which in turn rotates the filter screen against the inner wall of the connecting rod. The connecting rod is fixed to the inner wall of the rotating column, allowing the filter screen to rotate while simultaneously opening or retracting stably.
[0009] As a further description of the above technical solution:
[0010] The transmission assembly includes a transmission pipe, the outer wall of which is fixedly connected to the inner wall of the dissociation tank body. The inner wall of the dissociation tank body is provided with a wear-resistant liner, the inner wall of which is opened on the outer wall of the transmission pipe. A collection box is fixedly connected to the right outer wall of the transmission pipe, and a vibration assembly is provided on the inner wall of the collection box.
[0011] The above technical solution involves installing a transmission pipe on the inner wall of the dissociation tank body and the wear-resistant liner, enabling the transmission pipe to stably transport corrugated paper. The fan blades rotating on the inner wall of the wear-resistant liner can stably clean the wear-resistant liner. The corrugated paper is then transported through the transmission pipe to the inside of the collection box, allowing it to fall into the connecting block, thus achieving the effect of stably screening impurities in the corrugated paper.
[0012] As a further description of the above technical solution:
[0013] The vibration assembly includes a hollow block, the lower surface of which is fixedly connected to the inner wall of the collection box. A guide rod is fixedly connected to the inner wall of the hollow block, and a guide block is slidably connected to the outer wall of the guide rod. The outer wall of the guide block is slidably connected to the outer wall of the hollow block.
[0014] The above technical solution involves installing hollow blocks onto the inner wall of the collection box, allowing the guide blocks to slide on the outer wall of the guide rod when the filter plate vibrates. The guide rod is fixed to the inner wall of the hollow blocks, enabling the guide blocks to slide stably and allowing the second motor to drive stably.
[0015] As a further description of the above technical solution:
[0016] The inner wall of the guide block is fixedly connected to a second motor, and the output end of the second motor is fixedly provided with a rotating plate. The outer wall of the rotating plate is slidably connected to the inner wall of the hollow block, and the outer wall of the rotating plate is rotatably connected to a first slider. The outer wall of the first slider is slidably connected to the inner wall of the hollow block.
[0017] The above technical solution works as follows: while the guide block slides, it drives the second motor to slide synchronously. Then, the second motor is started to drive the rotating plate to rotate on the inner wall of the first slider, which can make the rotating plate rotate stably. The rotating plate will also drive the first slider to slide on the inner wall of the hollow block, which can make the first slider slide stably.
[0018] As a further description of the above technical solution:
[0019] The outer wall of the rotating plate is rotatably connected to a transmission rod, and the inner wall of the transmission rod is rotatably connected to a slider two. The outer wall of the slider two is slidably connected to the inner wall of the hollow block.
[0020] The above technical solution involves rotating the transmission rod via a rotating plate, which pulls slider two to slide on the inner wall of the hollow block. This allows slider one and slider two to slide synchronously. Slider one drives the guide plate to slide, while slider two drives the filter plate to slide, thus achieving stable vibration of the guide plate and the filter plate.
[0021] As a further description of the above technical solution:
[0022] Springs are provided on both the left and right sides of slider one, and the outer wall of the spring is fixedly connected to the inner wall of the hollow block. Both ends of slider two are fixedly connected to the outer wall of the spring, and a filter assembly is provided on the outer wall of slider two.
[0023] The above technical solution involves a transmission rod that rotates on the outer wall of the rotating plate, connecting slider one and slider two so that they can slide synchronously during rotation. Springs are fixed on both the left and right sides of slider one and slider two, and the springs are fixed to the inner wall of the hollow block, which enables slider one and slider two to achieve a stable reset vibration effect.
[0024] As a further description of the above technical solution:
[0025] The filter assembly includes a connecting block, the inner wall of which is fixedly connected to the outer wall of the slider two, a filter plate is fixedly connected to the outer wall of the connecting block, and a telescopic rod is rotatably connected to the inner wall of the filter plate.
[0026] The above technical solution achieves a stable transmission effect by using slider two to drive the connecting block to slide, which in turn drives the filter plate to slide. By using a telescopic rod to connect the filter plate and the guide plate, both can achieve a stable vibration effect. Furthermore, the telescopic rod can extend and retract to allow the guide plate to achieve a stable extension vibration effect.
[0027] As a further description of the above technical solution:
[0028] The outer wall of the telescopic rod is rotatably connected to a guide plate. The lower surface of the guide plate is fixedly connected to the upper surface of slider one. A groove is provided on the lower surface of the guide plate. The inner wall of the groove is slidably connected to the outer wall of slider two. The outer wall of the guide plate is slidably connected to the inner wall of the collection box.
[0029] The above technical solution achieves the following: the guide plate is driven to slide by slider one, and the chute slides synchronously. The connecting block slides on the outer wall of slider two, which can prevent the guide plate from falling off and allow the guide plate to slide on the inner wall of the collection box, thus achieving a stable discharge effect.
[0030] This utility model has the following beneficial effects:
[0031] 1. In this utility model, the starting motor drives the rotating column to rotate while simultaneously driving the fan blades to rotate synchronously. When the starting electric push rod pushes the rotating block to slide, it drives the rotating rod to rotate, causing the rotating rod to drive the filter screen to rotate on the inner wall of the connecting rod. The fan blades can reduce the energy consumption of the fiber dissociation process, and the filter screen can collect floating fibers, thereby shortening the crushing time.
[0032] 2. In this utility model, when the starting motor drives the rotating plate to rotate, the rotating plate will drive the transmission rod to rotate further. This causes the transmission rod to pull the slider two to slide, and at the same time, it drives the connecting block to slide. The connecting block pulls the filter plate to vibrate, and at the same time, it drives the telescopic rod to rotate. The telescopic rod will drive the slide groove to slide. The filter plate can separate these impurities from the fibers, thereby improving the quality and purity of the fibers. Attached Figure Description
[0033] Figure 1 This is a perspective view of the energy-saving device for fiber dissociation in corrugated paper packaging waste proposed in this utility model;
[0034] Figure 2 This is a partial structural diagram of the fan blade of the energy-saving device for fiber dissociation in corrugated paper packaging waste proposed in this utility model;
[0035] Figure 3 This is a partial structural diagram of the rotating block of the energy-saving device for fiber dissociation in corrugated paper packaging waste proposed in this utility model;
[0036] Figure 4 This is a partial structural diagram of the rotating plate of the energy-saving device for fiber dissociation in corrugated paper packaging waste proposed in this utility model;
[0037] Figure 5 This is a partial structural diagram of the telescopic rod of the energy-saving device for fiber dissociation in corrugated paper packaging waste proposed in this utility model.
[0038] Legend:
[0039] 1. Dissociation tank body; 11. Motor 1; 12. Rotating column; 13. Fan blade; 14. Electric push rod; 15. Sliding column; 16. Rotating block; 17. Rotating rod; 18. Filter screen; 19. Connecting rod; 2. Transmission assembly; 21. Transmission pipe; 22. Wear-resistant liner; 23. Collection box; 3. Vibration assembly; 31. Hollow block; 32. Guide rod; 33. Guide block; 34. Motor 2; 35. Rotating plate; 36. Transmission rod; 37. Slider 1; 38. Spring; 39. Slider 2; 4. Filter assembly; 41. Connecting block; 42. Slide groove; 43. Guide plate; 44. Telescopic rod; 45. Filter plate. Detailed Implementation
[0040] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0041] Reference Figure 1 , Figure 2 and Figure 3This utility model provides an embodiment of an energy-saving device for fiber separation of corrugated paper packaging waste, comprising a separation tank body 1, a motor 11 fixedly connected to the upper surface of the separation tank body 1, a rotating column 12 fixedly installed at the output end of the motor 11, the outer wall of the rotating column 12 rotatably connected to the inner wall of the separation tank body 1, a fan blade 13 fixedly connected to the outer wall of the rotating column 12, an electric push rod 14 fixedly connected to the inner bottom wall of the separation tank body 1, a sliding column 15 fixedly installed at the output end of the electric push rod 14, the outer wall of the sliding column 15 slidably connected to the inner wall of the rotating column 12, a rotating block 16 rotatably connected to the top of the sliding column 15, and a rotating block 16 rotatably connected to the inner wall of the rotating block 16. A filter screen 18 is rotatably connected to the outer wall of a rod 17, and a connecting rod 19 is rotatably connected to the inner wall of the filter screen 18. The outer wall of the connecting rod 19 is fixedly connected to the inner wall of the rotating column 12, and the outer wall of the filter screen 18 is slidably connected to the inner wall of the rotating column 12. A transmission assembly 2 is provided on the inner wall of the dissociation tank body 1. The transmission assembly 2 includes a transmission pipe 21. The outer wall of the transmission pipe 21 is fixedly connected to the inner wall of the dissociation tank body 1. A wear-resistant liner 22 is provided on the inner wall of the dissociation tank body 1. The inner wall of the wear-resistant liner 22 is opened on the outer wall of the transmission pipe 21. A collection box 23 is fixedly connected to the right outer wall of the transmission pipe 21. A vibration assembly 3 is provided on the inner wall of the collection box 23.
[0042] Specifically, after the pretreatment unit is poured into the body 1 of the dissociation tank, the motor 11 is started to drive the rotating column 12 to rotate, which in turn drives the fan blade 13 to rotate synchronously. The fan blade 13 rotates on the inner wall of the wear-resistant liner 22. The wear-resistant liner 22 is installed on the inner wall of the dissociation tank body 1, which allows the wear-resistant liner 22 to achieve a stable cleaning effect. When the corrugated paper is cut to a suitable density, the electric push rod 14 fixed on the inner wall of the dissociation tank body 1 is activated to push the sliding column 15 to slide on the inner wall of the rotating column 12. This prevents the rotating column 12 from shifting and allows the sliding column 15 to achieve a stable sliding effect. The sliding column 15 pushes... As the rotating block 16 slides, it drives the rotating rod 17 to rotate synchronously. The rotating rod 17 pushes the filter screen 18 to rotate on the inner wall of the connecting rod 19, enabling the filter screen 18 to achieve a stable opening and retraction effect. The connecting rod 19 drives the filter screen 18 to rotate, while the rotating block 16 rotates on the outer wall of the sliding column 15, enabling the filter screen 18 to achieve a stable collection of floating corrugated paper. After the corrugated paper fibers are decomposed, the transmission pipe 21 discharges the corrugated paper into the collection box 23. The fan blades 13 can reduce the energy consumption of the fiber dissociation process, and the filter screen 18 can collect the floating fibers, thus shortening the crushing time.
[0043] Reference Figure 1 , Figure 4 and Figure 5The vibration assembly 3 includes a hollow block 31. The lower surface of the hollow block 31 is fixedly connected to the inner wall of the collection box 23. A guide rod 32 is fixedly connected to the inner wall of the hollow block 31. A guide block 33 is slidably connected to the outer wall of the guide rod 32. The outer wall of the guide block 33 is slidably connected to the outer wall of the hollow block 31. A second motor 34 is fixedly connected to the inner wall of the guide block 33. A rotating plate 35 is fixedly installed at the output end of the second motor 34. The outer wall of the rotating plate 35 is slidably connected to the inner wall of the hollow block 31. A rotating plate 35 is rotatably connected to the outer wall of the rotating plate 35. Slider 1 37, the outer wall of slider 1 37 is slidably connected to the inner wall of hollow block 31, the outer wall of rotating plate 35 is rotatably connected to transmission rod 36, the inner wall of transmission rod 36 is rotatably connected to slider 2 39, the outer wall of slider 2 39 is slidably connected to the inner wall of hollow block 31, springs 38 are provided on both the left and right sides of slider 1 37, the outer wall of spring 38 is fixedly connected to the inner wall of hollow block 31, the left and right ends of slider 2 39 are fixedly connected to the outer wall of spring 38, and filter assembly 4 is provided on the outer wall of slider 2 39;
[0044] Specifically, after the corrugated paper is discharged into the filter plate 45, the second motor 34 drives the rotating plate 35 to rotate on the inner wall of the first slider 37. The rotating plate 35 drives the transmission rod 36 to rotate, pushing and pulling the second slider 39 at the same time, achieving a linkage sliding effect. When the second slider 39 slides, it compresses the spring 38, which in turn drives the first slider 37 to compress the spring 38 synchronously. The spring 38 is fixed on the inner wall of the hollow block 31, allowing the first slider 37 and the second slider 39 to slide synchronously and achieve a vibration effect. When the first slider 37 slides, it drives the second motor 34 and the guide block 33 to slide synchronously on the outer wall of the guide rod 32. The guide rod 32 is fixed on the inner wall of the hollow block 31, allowing the guide block 33 to achieve a stable sliding effect. The first slider 37 can separate these impurities from the fibers, thereby improving the quality and purity of the fibers.
[0045] Reference Figure 4 and Figure 5 The filter assembly 4 includes a connecting block 41, the inner wall of which is fixedly connected to the outer wall of the second slider 39, a filter plate 45 fixedly connected to the outer wall of the connecting block 41, a telescopic rod 44 rotatably connected to the inner wall of the filter plate 45, a guide plate 43 rotatably connected to the outer wall of the telescopic rod 44, the lower surface of the guide plate 43 fixedly connected to the upper surface of the first slider 37, a groove 42 provided on the lower surface of the guide plate 43, the inner wall of the groove 42 slidably connected to the outer wall of the second slider 39, and the outer wall of the guide plate 43 slidably connected to the inner wall of the collection box 23.
[0046] Specifically, the connecting block 41 is driven to slide by the second slider 39, causing the connecting block 41 to drive the filter plate 45 to vibrate synchronously, which can achieve the effect of stable separation of impurities. The guide plate 43 is driven to slide by the first slider 37, causing the guide plate 43 to slide on the outer wall of the second slider 39, which can prevent the guide plate 43 from falling off. The telescopic rod 44, which rotates on the inner wall of the guide plate 43, is connected to the telescopic rod 44, so that the filter plate 45 vibrates and drives the guide plate 43 to vibrate synchronously, allowing the guide plate 43 to slide on the inner wall of the collection box 23, achieving the effect of stable material discharge. Furthermore, the telescopic rod 44 connects the filter plate 45 and the guide plate 43, which can prevent the filter plate 45 from falling off.
[0047] Working principle: When this device is needed, the baled waste paper is transferred to the inside of the disintegration tank body 1. The wear-resistant liner 22 is then installed on the inner wall of the disintegration tank body 1. The motor 11 is started to drive the rotating column 12 to rotate on the inner wall of the disintegration tank body 1. This rotating column 12 drives the fan blade 13 to rotate on the inner wall of the wear-resistant liner 22, achieving a stable cleaning effect on the inner wall of the wear-resistant liner 22. After the fan blade 13 gradually separates the corrugated paper fibers, the electric push rod 14 is activated to push the sliding column 15 to slide on the inner wall of the rotating column 12. Simultaneously, the sliding column 15 drives the rotating block 16 to slide. The rotating block 16 drives the rotating rod 17 to rotate, enabling the rotating rod 17 to rotate stably. The rotating rod 17 drives the filter screen 18 to rotate, which in turn drives the connecting rod 19 to rotate. The connecting rod 19 is fixed to the inner wall of the rotating column 12, enabling the filter screen 18 to open or retract stably. The connecting rod 19 drives the filter screen 18 to rotate, which in turn drives the rotating block 16 to rotate on the outer wall of the sliding column 15, enabling the filter screen 18 to collect the corrugated paper stably. After the corrugated paper is fully decomposed, it will be transferred to the inside of the collection box 23 through the transmission pipe 21.
[0048] After the corrugated paper is poured into the filter plate 45, the motor 2 34 is started to drive the rotating plate 35 to rotate on the inner wall of the slider 1 37. The rotating plate 35 drives the transmission rod 36 to rotate and pull the slider 2 39 to slide synchronously. This allows the slider 1 37 and the slider 2 39 to achieve a stable sliding effect. When the slider 1 37 and the slider 2 39 slide, the spring 38 will be compressed. The spring 38 is fixed on the inner wall of the hollow block 31, which allows the slider 1 37 and the slider 2 39 to achieve a stable vibration effect. When the slider 1 37 slides, it will drive the guide block 33 fixed on the outer wall of the motor 2 34 to slide synchronously. The guide block 33 slides on the outer wall of the guide rod 32, which is fixed on the inner wall of the hollow block 31, which allows the guide block 33 to achieve a stable sliding effect.
[0049] The sliding block 41, driven by the second slider 39, simultaneously vibrates the filter plate 45, enabling it to stably screen impurities. The filter plate 45 then rotates the telescopic rod 44, which in turn rotates the guide plate 43. The guide plate 43, fixed to the upper surface of the first slider 37, ensures stable vibration for material discharge. The guide plate 43 drives the chute 42 to slide against the outer wall of the second slider 39, preventing it from detaching. This device not only reduces energy consumption during fiber dissociation but also allows the filter screen 18 to collect floating fibers, shortening the crushing time. Furthermore, it separates impurities from the fibers, improving fiber quality and purity.
[0050] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. Energy-saving device for fiber dissociation of corrugated paper packaging waste, including a dissociation tank body (1), characterized in that: On the upper surface of the dissociation tank body (1), a first motor (11) is fixedly connected. The output end of the first motor (11) is fixedly provided with a rotating column (12). The outer wall of the rotating column (12) is rotationally connected to the inner wall of the dissociation tank body (1). The outer wall of the rotating column (12) is fixedly connected with a fan blade (13). On the inner bottom wall of the dissociation tank body (1), an electric push rod (14) is fixedly connected. The output end of the electric push rod (14) is fixedly provided with a sliding column (15). The outer wall of the sliding column (15) is slidably connected to the inner wall of the rotating column (12). The top end of the sliding column (15) is rotationally connected with a rotating block (16). The inner wall of the rotating block (16) is rotationally connected with a rotating rod (17). The outer wall of the rotating rod (17) is rotationally connected with a filter screen (18). The inner wall of the filter screen (18) is rotationally connected with a connecting rod (19). The outer wall of the connecting rod (19) is fixedly connected to the inner wall of the rotating column (12). The outer wall of the filter screen (18) is slidably connected to the inner wall of the rotating column (12). A transmission component (2) is provided on the inner wall of the dissociation tank body (1).
2. The energy-saving device for fiber dissociation of corrugated paper packaging waste according to claim 1, wherein: The transmission component (2) includes a transmission pipe (21). The outer wall of the transmission pipe (21) is fixedly connected to the inner wall of the dissociation tank body (1). A wear-resistant lining plate (22) is provided on the inner wall of the dissociation tank body (1). The inner wall of the wear-resistant lining plate (22) is provided on the outer wall of the transmission pipe (21). The right outer wall of the transmission pipe (21) is fixedly connected with a collection box (23). A vibration component (3) is provided on the inner wall of the collection box (23).
3. The energy-saving device for fiber dissociation of corrugated paper packaging waste according to claim 2, wherein: The vibration component (3) includes a hollow block (31). The lower surface of the hollow block (31) is fixedly connected to the inner wall of the collection box (23). A guide rod (32) is fixedly connected to the inner wall of the hollow block (31). A guide block (33) is slidably connected to the outer wall of the guide rod (32). The outer wall of the guide block (33) is slidably connected to the outer wall of the hollow block (31).
4. The energy-saving device for fiber dissociation of corrugated paper packaging waste according to claim 3, wherein: A second motor (34) is fixedly connected to the inner wall of the guide block (33). The output end of the second motor (34) is fixedly provided with a rotating plate (35). The outer wall of the rotating plate (35) is slidably connected to the inner wall of the hollow block (31). The outer wall of the rotating plate (35) is rotationally connected with a first slider (37). The outer wall of the first slider (37) is slidably connected to the inner wall of the hollow block (31).
5. The energy-saving device for fiber dissociation of corrugated paper packaging waste according to claim 4, wherein: The outer wall of the rotating plate (35) is rotationally connected with a transmission rod (36). The inner wall of the transmission rod (36) is rotationally connected with a second slider (39). The outer wall of the second slider (39) is slidably connected to the inner wall of the hollow block (31).
6. The fiber dissociation energy-saving device for corrugated paper packaging waste according to claim 5, wherein: Spring (38) is provided on both the left and right sides of the first slider (37). The outer wall of the spring (38) is fixedly connected to the inner wall of the hollow block (31). Both the left and right ends of the second slider (39) are fixedly connected to the outer wall of the spring (38). A filter component (4) is provided on the outer wall of the second slider (39).
7. The energy-saving device for fiber dissociation of corrugated paper packaging waste according to claim 6, wherein: The filtering component (4) includes a connecting block (41), the inner wall of the connecting block (41) is fixedly connected to the outer wall of the second slider (39), the outer wall of the connecting block (41) is fixedly connected to a filter plate (45), and a telescopic rod (44) is rotatably connected to the inner wall of the filter plate (45).
8. The fiber dissociation energy-saving device for corrugated paper packaging waste according to claim 7, characterized in that: The outer wall of the telescopic rod (44) is rotatably connected to a guide plate (43), the lower surface of the guide plate (43) is fixedly connected to the upper surface of the first slider (37), a chute (42) is provided on the lower surface of the guide plate (43), the inner wall of the chute (42) is slidably connected to the outer wall of the second slider (39), and the outer wall of the guide plate (43) is slidably connected to the inner wall of the collection box (23).