Glass fiber reinforced plastic solid waste recycling processing equipment

By using a second lifting frame and extrusion plate structure within the cutting groove, combined with rubber ring expansion support, efficient cutting and crushing of fiberglass waste is achieved, solving the problem of easy insertion of the cutting blade in existing technologies, and improving crushing efficiency and equipment utilization efficiency.

CN121017211BActive Publication Date: 2026-04-07JIANGSU OUSHENG FRP MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

In existing technologies, the efficiency of cutting and crushing fiberglass waste is low, especially for fiberglass pipe waste. The cutting blade tends to get stuck in the waste, affecting the efficiency of the cutting blade and the crushing efficiency.

Method used

The waste material is held in place by a second lifting frame in the cutting groove, and the second motor drives the cutting blade to rotate. Combined with the screw and extrusion plate structure, the rubber ring is expanded by an inflation device to support the extrusion plate, stabilizing the waste material and facilitating cutting. Multiple sets of rubber rings and extrusion plates are used to cut the waste material multiple times.

Benefits of technology

It improves the cutting and crushing efficiency of fiberglass waste, avoids the problem of the cutting blade being stuck, and enhances the equipment's utilization efficiency and waste recycling effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of glass fiber reinforced plastic (GFRP) solid waste recycling, in particular to a GFRP solid waste recycling and processing equipment, which comprises a cutting groove, a support rod is fixed to the bottom of the cutting groove, a connecting rod is fixed to the surface of the support rod, a vertical plate is fixed to the end of the connecting rod, a first air cylinder is arranged on the surface of the vertical plate, a first piston rod is arranged at the end of the first air cylinder, a baffle is fixed to the end of the first piston rod, a first lifting frame and a second lifting frame are arranged on the top of the cutting groove; the air enters the inside of the rotating shaft through the rotating ring, the air enters the rubber ring through the air inlet hole, the rubber ring expands after the air injection, the expanded rubber ring is supported in the first extrusion plate, the first extrusion plate and the second extrusion plate are lowered in the lifting groove, the second extrusion plate is supported on the surface of the cut waste after being lowered, the waste is concentrated, and the waste is convenient for being cut by the cutting knife again.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of glass fiber reinforced plastic (GFRP) solid waste recycling, and particularly relates to a glass fiber reinforced plastic solid waste recycling and processing device. BACKGROUND

[0002] Glass fiber reinforced plastic (GFRP), also known as GFRP, is generally a reinforced plastic using glass fiber as a reinforcing material for an unsaturated polyester, epoxy resin and phenolic resin matrix. It is also known as glass fiber reinforced plastic or glass steel, which is different from tempered glass. Due to the use of different types of resins, there are polyester glass steel, epoxy glass steel and phenolic glass steel.

[0003] In the prior art, patent No. CN111923284A, entitled Method for processing glass fiber reinforced plastic solid waste into powder, has the following steps: tearing the whole waste into small pieces of glass fiber reinforced plastic; crushing the small pieces of glass fiber reinforced plastic; using a high-speed centrifugal device to classify the crushed particles of various materials that make up the glass fiber reinforced plastic; using a pressing plate to press the epoxy resin and adhesive separated from the glass fiber reinforced plastic particles on a grinding machine for grinding; screening the ground particles through a screening machine, pre-treating the large pieces of glass fiber reinforced plastic through a shredding machine, and then using a low-speed pulverizer to process the glass fiber reinforced plastic into particles. Different materials in the glass fiber reinforced plastic are separated by a centrifugal device. The resin particles are obtained by pressing and grinding with a pressing plate. Different diameter particles are screened by a screening machine, the glass fiber reinforced plastic can be recycled and processed into particles for repeated use, and the environmental pollution rate is reduced, and the cost is saved.

[0004] However, only cutting blades are used to cut and crush glass fiber reinforced plastic waste, the crushing efficiency is low, and the crushing recovery effect is insufficient, especially for cutting glass fiber reinforced plastic pipe waste. Due to the cutting pressure, the cutting blade is easily inserted into the waste pipe and difficult to shake out, which greatly affects the use efficiency of the cutting blade and further affects the crushing efficiency. SUMMARY

[0005] The purpose of the present application is to provide a glass fiber reinforced plastic solid waste recycling and processing device to solve the problems in the background art.

[0006] To achieve the above purpose, the present application provides the following technical scheme: a glass fiber reinforced plastic solid waste recycling and processing device, comprising:

[0007] The cutting groove is provided with a support rod fixed at the bottom of the cutting groove, a connecting rod fixed at the surface of the support rod, a vertical plate fixed at the end of the connecting rod, a first air cylinder arranged at the surface of the vertical plate, a first piston rod arranged at the end of the first air cylinder, a baffle fixed at the end of the first piston rod, a first lifting frame and a second lifting frame arranged at the top of the cutting groove, a positioning block arranged at the surface of the first lifting frame, a rotating shaft arranged at the surface of the positioning block, a cutting knife fixed at the surface of the rotating shaft, a first extrusion plate and a second extrusion plate arranged at the surface of the second lifting frame.

[0008] Preferably, one end of the first air cylinder is fixed at the surface of the vertical plate, the first air cylinder can drive the first piston rod to move in and out, the baffle moves with the first piston rod, the bottom of the cutting groove is fixed with a limiting groove, the baffle is inserted into the surface of the limiting groove, the baffle can move in the limiting groove, the bottom of the cutting groove is provided with a slot, the baffle is located at the bottom of the slot, and the baffle can shield the slot.

[0009] Preferably, the surface of the cutting groove is fixed with a second air cylinder, the top of the second air cylinder is provided with a second piston rod, the second air cylinder can drive the second piston rod to move up and down, the top of the second piston rod is provided with a second lifting frame, the second lifting frame moves up and down with the second piston rod, the surface of the second lifting frame is fixed with a vertical rod, the vertical rod is provided with a plurality of groups, the top of the vertical rod is fixed with a first lifting frame, and the first lifting frame and the second lifting frame move up and down with the second piston rod.

[0010] Preferably, the surface of the first lifting frame is provided with a through groove, a lead screw is arranged in the through groove, the surface of the first lifting frame is fixed with a first motor, the first motor can drive the lead screw to rotate, the lead screw can rotate in the through groove, the top of the second piston rod is fixed with a U-shaped rod, and the other end of the U-shaped rod is fixed to the surface of the first lifting frame.

[0011] Preferably, the through groove is inserted with a positioning block, the positioning block can move in the through groove, the lead screw is screwed in the inside of the positioning block, the positioning block moves in the through groove with the rotation of the lead screw, the surface of the second lifting frame is provided with a cutting groove, a plurality of groups of cutting grooves are arranged on the surface of the second lifting frame, the surface of the second lifting frame is provided with a lifting groove, the first extrusion plate is inserted into the lifting groove, the first extrusion plate can move up and down in the lifting groove, the bottom of the first extrusion plate is fixed with a second extrusion plate, the second extrusion plate moves up and down with the first extrusion plate, the surface of the second lifting frame is fixed with an L-shaped plate, the L-shaped plate is located at the end of the first extrusion plate, the end of the L-shaped plate is located at the top of the first extrusion plate, the surface of the first extrusion plate is fixed with a limiting piece, the limiting piece moves with the first extrusion plate, and the limiting piece can be supported on the surface of the second lifting frame after the first extrusion plate is lowered.

[0012] Preferably, a second motor is fixed to the surface of the positioning block, and a rotating shaft is provided between the positioning blocks. The second motor can drive the rotating shaft to rotate. A cutting blade is fixed to the surface of the rotating shaft and rotates with the rotating shaft. A rotating ring is sleeved on the surface of the rotating shaft and can rotate on the surface of the rotating shaft. The rotating shaft has an opening on the inner surface of the rotating ring, and the inside of the rotating ring is empty. An air pipe is connected to the surface of the rotating ring, and the other end of the air pipe is connected to an inflation device that can inject air into the air pipe.

[0013] Preferably, the interior of the rotating shaft is hollow, and a rubber ring is fixed on the surface of the rotating shaft. Multiple sets of rubber rings are provided, and the multiple sets of rubber rings are of different sizes. The interior of the rubber ring is hollow, and an air inlet is opened on the surface of the rotating shaft. The air inlet allows the interior of the rotating shaft to communicate with the interior of the rubber ring. After air is injected into the rubber ring, the rubber ring can expand and deform.

[0014] Preferably, the rotating shaft is provided with a transverse shaft inside, which can move laterally within the rotating shaft. One end of the transverse shaft is connected to a pushing device, which drives the transverse shaft to move. A sealing plate is fixed on the surface of the transverse shaft. The sealing plate moves with the transverse shaft and rests against the inner wall of the rotating shaft. The sealing plate can cover and seal the air inlet.

[0015] Preferably, the cutting blade can rotate in the cutting groove on the surface of the second lifting frame, and waste material is placed inside the cutting groove. The rotation of the cutting blade can cut the waste material inside the cutting groove, and the second lifting frame presses down on the surface of the waste material. After the first extrusion plate and the second extrusion plate descend, the second extrusion plate can press down on the surface of the waste material and squeeze the waste material together.

[0016] Preferably, after the rubber ring is inflated and deformed, it can press against the surface of the first extrusion plate, so that the first extrusion plate drives the second extrusion plate to move under the pressure of the rubber ring.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] The second lifting frame proposed in this invention supports the surface of the waste material, stabilizing it inside the cutting groove. A second motor drives a rotating shaft to rotate, which in turn drives a cutting blade to rotate. The cutting blade can rotate within the cutting groove on the surface of the second lifting frame, cutting the waste material. Simultaneously, a first motor drives a lead screw to rotate, causing the top of a positioning block to move within a through slot. This movement of the positioning block moves the rotating shaft, allowing the cutting blade to move within the cutting groove on the surface of the second lifting frame. Gas is injected into an air pipe via an inflation device. A rotating ring is fitted onto the surface of the rotating shaft, allowing air to enter the shaft through the rotating ring and into a rubber ring through an air inlet. The rubber ring expands after being injected with air, supporting the first extrusion plate. This causes the first and second extrusion plates to descend within the lifting groove. After descending, the second extrusion plate supports the surface of the cut waste material, concentrating it for further cutting by the cutting blade. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the structure of the present invention.

[0020] Figure 2 This is a schematic diagram of the structure of the present invention from another perspective.

[0021] Figure 3 This is a schematic diagram of the cutting groove structure of the present invention.

[0022] Figure 4 This is a schematic diagram of the first lifting frame structure of the present invention.

[0023] Figure 5 This is a schematic diagram of the first lifting frame of the present invention from another perspective.

[0024] Figure 6 This is a schematic diagram of the second lifting frame structure of the present invention.

[0025] Figure 7 This is a schematic diagram of the second lifting frame of the present invention from another perspective.

[0026] Figure 8 for Figure 7 Enlarged schematic diagram of the structure at point A in the middle.

[0027] Figure 9 This is a schematic diagram of the cutting blade structure of the present invention.

[0028] Figure 10 This is a schematic diagram of the internal structure of the rotating shaft of the present invention.

[0029] In the diagram: 1. Cutting groove; 2. Support rod; 3. Connecting rod; 4. Vertical plate; 5. Limiting groove; 6. Baffle; 7. First piston rod; 8. First cylinder; 9. Second cylinder; 10. Groove; 11. Second piston rod; 12. First motor; 13. First lifting frame; 14. Lead screw; 15. Through groove; 16. U-shaped rod; 18. Second lifting frame; 19. Limiting piece; 20. Cutting groove on the surface of the second lifting frame 18; 21. L-shaped plate; 22. First extrusion plate; 23. Lifting groove; 24. Vertical rod; 26. Second extrusion plate; 27. Positioning block; 28. Rotating ring; 29. ​​Air pipe; 30. Cutting blade; 31. Second motor; 32. Rotating shaft; 33. Air inlet; 34. Rubber ring; 35. Horizontal movement shaft; 36. Sealing plate. Detailed Implementation

[0030] To make the objectives, technical solutions, and advantages of the present invention clear and complete, the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only some, not all, embodiments of the present invention, and are merely illustrative of the embodiments of the present invention. They are not intended to limit the embodiments of the present invention. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0031] Please see Figures 1 to 10 The present invention provides a technical solution:

[0032] Example 1: A fiberglass solid waste recycling and reuse processing equipment includes: a cutting groove 1, a support rod 2 fixed to the bottom of the cutting groove 1, a connecting rod 3 fixed to the surface of the support rod 2, a vertical plate 4 fixed to the end of the connecting rod 3, a first cylinder 8 disposed on the surface of the vertical plate 4, a first piston rod 7 disposed at the end of the first cylinder 8, a baffle 6 fixed to the end of the first piston rod 7, a first lifting frame 13 and a second lifting frame 18 disposed on the top of the cutting groove 1, a positioning block 27 disposed on the surface of the first lifting frame 13, a rotating shaft 32 disposed on the surface of the positioning block 27, and the rotating shaft 32... A cutting blade 30 is fixed on the surface. A first extrusion plate 22 and a second extrusion plate 26 are provided on the surface of the second lifting frame 18. The second lifting frame 18 supports the surface of the waste material and stabilizes the waste material inside the cutting groove 1. The second motor 31 drives the rotating shaft 32 to rotate. The rotating shaft 32 drives the cutting blade 30 to rotate. The cutting blade 30 can rotate in the cutting groove 20 on the surface of the second lifting frame 18. After the cutting blade 30 rotates, it cuts the waste material. The first motor 12 drives the lead screw 14 to rotate. The rotation of the lead screw 14 causes the top of the positioning block 27 to move in the through groove 15.

[0033] Example 2: Based on Example 1, one end of the first cylinder 8 is fixed to the surface of the upright plate 4. The first cylinder 8 can drive the first piston rod 7 to move telescopically. The baffle 6 moves with the first piston rod 7. The bottom of the cutting groove 1 is fixed with a limiting groove 5. The baffle 6 is inserted into the surface of the limiting groove 5 and can move inside the limiting groove 5. The bottom of the cutting groove 1 is provided with a slot 10. The baffle 6 is located at the bottom of the slot 10 and can cover the slot 10. The first cylinder 8 on the surface of the upright plate 4 drives the first piston rod 7 so that the baffle 6 is located at the bottom of the slot 10, placing the waste material inside the cutting groove 1. The second cylinder 9 drives the second piston rod 11 to descend, so that the first lifting frame 13 and the second lifting frame 18 descend into the interior of the cutting groove 1, so that the second lifting frame 18 supports the surface of the waste material and stabilizes the waste material inside the cutting groove 1.

[0034] A second cylinder 9 is fixed to the surface of the cutting groove 1. A second piston rod 11 is provided on the top of the second cylinder 9. The second cylinder 9 can drive the second piston rod 11 to move up and down. A second lifting frame 18 is provided on the top of the second piston rod 11. The second lifting frame 18 moves up and down with the second piston rod 11. A vertical rod 24 is fixed to the surface of the second lifting frame 18. Multiple sets of vertical rods 24 are provided. A first lifting frame 13 is fixed to the top of the vertical rod 24. The first lifting frame 13 and the second lifting frame 18 both move up and down with the second piston rod 11. The first lifting frame 13 and the second lifting frame 18 descend into the interior of the cutting groove 1, so that the second lifting frame 18 supports the surface of the waste material and stabilizes the waste material inside the cutting groove 1. The second motor 31 drives the rotating shaft 32 to rotate. The rotating shaft 32 drives the cutting blade 30 to rotate. The cutting blade 30 can rotate in the cutting groove 20 on the surface of the second lifting frame 18. After the cutting blade 30 rotates, it cuts the waste material.

[0035] The surface of the first lifting frame 13 has a through groove 15, in which a lead screw 14 is installed. A first motor 12 is fixed to the surface of the first lifting frame 13, and the first motor 12 can drive the lead screw 14 to rotate. The lead screw 14 can rotate in the through groove 15. A U-shaped rod 16 is fixed to the top of the second piston rod 11, and the other end of the U-shaped rod 16 is fixed to the surface of the first lifting frame 13. A positioning block 27 is inserted into the through groove 15 and can move in the through groove 15. The lead screw 14 is screwed inside the positioning block 27. As the lead screw 14 rotates, the positioning block 27 moves in the through groove 15. The surface of the second lifting frame 18 has a cutting groove 20. Multiple sets of cutting grooves 20 are provided on the surface of the second lifting frame 18. A lifting groove 23 is provided on the surface, and a first extrusion plate 22 is inserted into the lifting groove 23. The first extrusion plate 22 can move up and down in the lifting groove 23. A second extrusion plate 26 is fixed to the bottom of the first extrusion plate 22, and the second extrusion plate 26 moves up and down with the first extrusion plate 22. An L-shaped plate 21 is fixed to the surface of the second lifting frame 18. The L-shaped plate 21 is located at the end of the first extrusion plate 22, and the end of the L-shaped plate 21 is located at the top of the first extrusion plate 22. A limiting piece 19 is fixed to the surface of the first extrusion plate 22. The limiting piece 19 moves with the first extrusion plate 22. After the first extrusion plate 22 descends, the limiting piece 19 can abut against the surface of the second lifting frame 18. A second motor 31 is fixed to the surface of the positioning block 27. A positioning block 27 is provided between the positioning blocks 27. A rotating shaft 32 is driven to rotate by a second motor 31. A cutting blade 30 is fixed to the surface of the rotating shaft 32 and rotates with it. A rotating ring 28 is fitted onto the surface of the rotating shaft 32 and can rotate on its surface. An opening is formed in the inner surface of the rotating ring 28, which is hollow. An air pipe 29 is connected to the surface of the rotating ring 28, and the other end of the air pipe 29 is connected to an inflation device that injects air into it. The rotating shaft 32 is hollow inside. Multiple sets of rubber rings 34 with different sizes are fixed to the surface of the rotating shaft 32. An air inlet 33 is formed on the surface of the rotating shaft 32 for air intake. Hole 33 allows the interior of the rotating shaft 32 to communicate with the interior of the rubber ring 34. When air is injected into the rubber ring 34, it expands and deforms. A transverse shaft 35 is installed inside the rotating shaft 32, allowing it to move laterally. One end of the transverse shaft 35 is connected to a pushing device, which drives the transverse shaft 35 to move. A sealing plate 36 is fixed to the surface of the transverse shaft 35, moving with it and pressing against the inner wall of the rotating shaft 32. The sealing plate 36 seals the air inlet 33. The cutting blade 30 rotates within the cutting groove 20 on the surface of the second lifting frame 18. Waste material is placed inside the cutting groove 20, and the rotation of the cutting blade 30 cuts the waste material inside the cutting groove 20.Furthermore, the second lifting frame 18 presses down on the surface of the waste material. After the first extrusion plate 22 and the second extrusion plate 26 descend, the second extrusion plate 26 presses down on the surface of the waste material, squeezing the waste material together. The rubber ring 34, after being inflated and deformed, can support the surface of the first extrusion plate 22, causing the first extrusion plate 22 to move along with the second extrusion plate 26 under the pressure of the rubber ring 34. The rubber ring 34 expands after being injected with air, and the expanded rubber ring 34 supports the first extrusion plate 22, causing the first extrusion plate 22 and the second extrusion plate 26 to descend in the lifting groove 23. After descending, the second extrusion plate 26 supports the surface of the cut waste material, concentrating the waste material for further cutting by the cutting blade 30.

[0036] The first cylinder 8 on the surface of the upright plate 4 drives the first piston rod 7, so that the baffle 6 is located at the bottom of the slot 10, placing the waste material inside the cutting groove 1. The second cylinder 9 drives the second piston rod 11 to descend, so that the first lifting frame 13 and the second lifting frame 18 descend into the cutting groove 1, so that the second lifting frame 18 holds the waste material on the surface, stabilizing the waste material inside the cutting groove 1. The second motor 31 drives the rotating shaft 32 to rotate, and the rotating shaft 32 drives the cutting blade 30 to rotate. The cutting blade 30 can rotate in the cutting groove 20 on the surface of the second lifting frame 18. After the cutting blade 30 rotates, it cuts the waste material. The first motor 12 drives the lead screw 14 to rotate, and the rotation of the lead screw 14 causes the top of the positioning block 27 to move in the through groove 15. The movement of the positioning block 27 drives the rotating shaft 32 to move, so that the cutting blade 30 moves in the cutting groove 20 on the surface of the second lifting frame 18. Gas is injected into the air pipe 29 through the inflation device. In the process, a rotating ring 28 is fitted onto the surface of a rotating shaft 32. Air enters the interior of the rotating shaft 32 through the rotating ring 28 and enters the rubber ring 34 through the air inlet 33. After air is injected into the rubber ring 34, it expands. The expanded rubber ring 34 presses against the first extrusion plate 22, causing the first extrusion plate 22 and the second extrusion plate 26 to descend in the lifting groove 23. After the second extrusion plate 26 descends, it presses against the surface of the cut waste material, concentrating the waste material for further cutting by the cutting blade 30. There are multiple sets of rubber rings 34. The moving transverse shaft 35 drives the sealing plate 36 to move. After the sealing plate 36 moves, it no longer blocks the end of the air inlet 33, allowing air to enter the other rubber rings 34. The rubber rings 34 in each set are of different sizes. When the larger diameter rubber ring 34 contacts the first extrusion plate 22, it allows the second extrusion plate 26 to further extrude the waste material, facilitating further cutting of the waste material by the cutting blade 30.

[0037] Although the illustrative specific embodiments of this application have been described above to enable those skilled in the art to understand this application, this application is not limited to the scope of the specific embodiments. For those skilled in the art, all applications utilizing the concept of this application are protected as long as various variations are within the spirit and scope of this application as defined and determined by the appended claims.

Claims

1. A fiberglass solid waste recycling and reuse processing equipment, characterized in that: include: A cutting groove (1) is provided with a support rod (2) fixed at the bottom of the cutting groove (1), a connecting rod (3) fixed on the surface of the support rod (2), a vertical plate (4) fixed at the end of the connecting rod (3), a first cylinder (8) provided on the surface of the vertical plate (4), a first piston rod (7) provided at the end of the first cylinder (8), a baffle (6) fixed at the end of the first piston rod (7), a first lifting frame (13) and a second lifting frame (18) provided on the top of the cutting groove (1), a positioning block (27) provided on the surface of the first lifting frame (13), a rotating shaft (32) provided on the surface of the positioning block (27), a cutting blade (30) fixed on the surface of the rotating shaft (32), and a first extrusion plate (22) and a second extrusion plate provided on the surface of the second lifting frame (18). (26) A second cylinder (9) is fixed on the surface of the cutting groove (1). A second piston rod (11) is provided on the top of the second cylinder (9). The second cylinder (9) can drive the second piston rod (11) to move up and down. A second lifting frame (18) is provided on the top of the second piston rod (11). The second lifting frame (18) moves up and down with the second piston rod (11). A vertical rod (24) is fixed on the surface of the second lifting frame (18). Multiple sets of vertical rods (24) are provided. A first lifting frame (13) is fixed on the top of the vertical rod (24). The first lifting frame (13) and the second lifting frame (18) both move up and down with the second piston rod (11). A through groove (15) is opened on the surface of the first lifting frame (13). A wire is provided in the through groove (15). A first motor (12) is fixed to the surface of the first lifting frame (13) and the first motor (12) can drive the lead screw (14) to rotate. The lead screw (14) can rotate in the through groove (15). A U-shaped rod (16) is fixed to the top of the second piston rod (11). The other end of the U-shaped rod (16) is fixed to the surface of the first lifting frame (13). A positioning block (27) is inserted into the through groove (15). The positioning block (27) can move in the through groove (15). The lead screw (14) is screwed into the inside of the positioning block (27). As the lead screw (14) rotates, the positioning block (27) moves in the through groove (15). A cutting groove (20) is opened on the surface of the second lifting frame (18). Multiple sets of grooves (20) are provided. A lifting groove (23) is opened on the surface of the second lifting frame (18). A first extrusion plate (22) is inserted into the lifting groove (23). The first extrusion plate (22) can move up and down in the lifting groove (23). A second extrusion plate (26) is fixed at the bottom of the first extrusion plate (22). The second extrusion plate (26) moves up and down with the first extrusion plate (22). An L-shaped plate (21) is fixed on the surface of the second lifting frame (18). The L-shaped plate (21) is located at the end of the first extrusion plate (22), and the end of the L-shaped plate (21) is located at the top of the first extrusion plate (22). A limiting piece (19) is fixed on the surface of the first extrusion plate (22). The limiting piece (19) moves with the first extrusion plate (22).After the first extrusion plate (22) descends, the limiting piece (19) can abut against the surface of the second lifting frame (18). The second motor (31) is fixed on the surface of the positioning block (27). A rotating shaft (32) is arranged between the positioning blocks (27). The second motor (31) can drive the rotating shaft (32) to rotate. A cutting blade (30) is fixed on the surface of the rotating shaft (32). The cutting blade (30) rotates with the rotating shaft (32). A rotating ring (28) is sleeved on the surface of the rotating shaft (32). The rotating ring (28) can rotate on the surface of the rotating shaft (32). The rotating shaft (32) is located on the inner surface of the rotating ring (28). The rotating ring (28) is hollow inside. An air tube (29) is connected to the surface of the rotating ring (28), and the other end of the air tube (29) is connected to an inflation device. The inflation device can inject air into the air tube (29). The rotating shaft (32) is hollow inside, and a rubber ring (34) is fixed to its surface. Multiple sets of rubber rings (34) are provided, each with a different size. The interior of the rubber ring (34) is hollow. An air inlet (33) is provided on the surface of the rotating shaft (32), allowing the interior of the rotating shaft (32) to communicate with the interior of the rubber ring (34). After air is injected into 34), the rubber ring (34) can expand and deform. A transverse shaft (35) is provided inside the rotating shaft (32). The transverse shaft (35) can move laterally in the rotating shaft (32). One end of the transverse shaft (35) is connected to the jacking device. The jacking device drives the transverse shaft (35) to move. A sealing plate (36) is fixed on the surface of the transverse shaft (35). The sealing plate (36) moves with the transverse shaft (35). The sealing plate (36) is held against the inner wall of the rotating shaft (32). The sealing plate (36) can cover and seal the air inlet (33). The cutting blade (30) can be moved to the second lifting frame (18). The cutting blade (30) rotates in the cutting groove (20) on the surface of the cutting blade (1), and waste material is placed inside the cutting groove (1). The cutting blade (30) can cut the waste material inside the cutting groove (1) by rotating. The second lifting frame (18) presses down on the surface of the waste material. After the first extrusion plate (22) and the second extrusion plate (26) descend, the second extrusion plate (26) can press down on the surface of the waste material, squeezing the waste material together. After the rubber ring (34) is inflated and deformed, it can support the surface of the first extrusion plate (22), so that the first extrusion plate (22) drives the second extrusion plate (26) to move under the extrusion of the rubber ring (34).

2. The fiberglass solid waste recycling and reuse processing equipment according to claim 1, characterized in that: One end of the first cylinder (8) is fixed to the surface of the upright plate (4). The first cylinder (8) can drive the first piston rod (7) to move in extension and retraction. The baffle (6) moves with the first piston rod (7). The bottom of the cutting groove (1) is fixed with a limiting groove (5). The baffle (6) is inserted into the surface of the limiting groove (5). The baffle (6) can move inside the limiting groove (5). The bottom of the cutting groove (1) is provided with a slot (10). The baffle (6) is located at the bottom of the slot (10). The baffle (6) can cover the slot (10).

Citation Information

Patent Citations

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    CN111923284A

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    CN116851412A