Recycling device for fiber recycled concrete waste
By designing a device including a crusher, a cutting frame, a filter mesh and a rotating plate, the problem of inaccurate waste filtration in the prior art is solved, the sufficient crushing and screening of waste is achieved, and the overall utilization rate and product quality of waste are improved.
Patent Information
- Application Number
- CN202510200977.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the filtration process, the existing fiber recycled concrete waste recycling device has a waste flow rate that is too fast due to the inclination of the filter plate, which cannot achieve accurate filtration, resulting in the mixing of particles of different particle sizes, which reduces the overall utilization rate of the waste and affects product quality and performance.
A device including a crusher, a cutting frame, a filter mesh and a rotating plate is designed. The crushing roller is driven by a servo motor to rotate and crush the crushing roller, and the rotating plate is rotated on the surface of the filter mesh to screen the waste. The unfinished waste is transported to the storage box through a feeding hopper for repeated crushing to ensure that the waste is fully crushed and screened.
It improves the screening efficiency and accuracy of waste, ensures the consistent size of waste particles in the storage box, reduces the cumbersome and time consumption of manual operation, and effectively avoids filter clogging, and improves the overall crushing and utilization rate.
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Figure CN119926565A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of waste recycling, in particular to a waste recycling device for fiber regeneration concrete. Background Art
[0002] Fiber recycled concrete is a new type of environmentally friendly building material that combines waste fiber materials and recycled aggregates. It has been widely used in modern buildings. This type of concrete will produce a lot of waste when used, so it is necessary to use recycling equipment to crush and screen it and convert it into reusable recycled aggregates, which can be reused in the production of fiber recycled concrete, which not only reduces production costs but also realizes the recycling of resources.
[0003] At present, a municipal waste crushing device is disclosed in the patent announcement number "CN210146095U". When crushing waste, the crushed concrete can be screened through a triangular screen, so that the different sizes of waste can be divided, and the overall utilization rate of waste can be improved. However, after specific use and comparison with the existing technology, the following defects still exist:
[0004] Since the two sides of the filter plate are inclined, the waste particles are more affected by gravity, causing the waste to flow faster on the filter plate, which will result in the filter plate being unable to accurately filter the waste. It is easy to cause waste particles of different particle sizes to mix together, reducing the overall utilization rate of the waste. The mixing of particles of different sizes also requires additional processing of the waste, and when the unevenly screened waste is used to produce new building materials, it is easy to affect the quality and performance of the product.
[0005] Therefore, the present invention proposes a fiber recycled concrete waste recycling device to make up for and improve the deficiencies of the prior art. Summary of the invention
[0006] In view of the defects existing in the prior art, the present invention provides a device for recycling fiber-regenerated concrete waste, which can effectively solve the above-mentioned technical problems.
[0007] The technical implementation scheme of the present invention is: a device for recycling fiber recycled concrete waste, comprising a crusher, the upper surface of the crusher is connected through a lower hopper, the bottom of the crusher is detachably connected to a storage box, one side of the top of the crusher is fixedly connected to a servo motor, the output end of the servo motor is fixedly connected to a transmission gear, the outer surface of the transmission gear is meshed with another transmission gear, one side of the two transmission gears are fixedly connected to a crushing roller, the other ends of the crushing rollers are rotatably connected to the inner side of the lower hopper, the lower surface of the top of the crusher is connected through a feeding frame, the inner side of the bottom of the crusher is connected through a lower feeding frame, the inner side of the lower feeding frame is detachably connected to a filter screen, and the lower feeding frame has a The upper surface is fixedly connected with a connecting frame, the outer surface of the servo motor output shaft is fixedly connected with a transmission wheel, the outer surface of the transmission wheel is transmission-connected with a transmission belt, the outer surface of the transmission belt passes through the upper surface of the crusher, the bottom of the transmission belt is transmission-connected to the outer surface of another transmission wheel, one end of the other transmission wheel is fixedly connected with a first bevel gear, one end of the first bevel gear is rotatably connected to the inner side of the crusher, the outer surface of the first bevel gear is meshed with a second bevel gear, the lower surface of the second bevel gear is rotatably connected to the upper surface of the discharge frame, the lower surface of the second bevel gear is fixedly connected with a rotating plate, the lower surface of the rotating plate is attached to the upper surface of the filter screen, and the outer surface of the discharge frame is fixedly connected with a feeding hopper.
[0008] More preferably, one side of the crusher is fixedly connected to an electric slide rail, both sides of the electric slide rail are slidably connected to sliders, a storage frame is rotatably connected between the sides of the sliders that are close to each other, one side of the top of the storage frame is arc-shaped, one side of one of the sliders is rotatably connected to a rotating gear, one side of the rotating gear is fixedly connected to one side of the storage frame, one side of the top of the crusher is fixedly connected to a support rod, the top of the support rod is fixedly connected to a fixed rack, the upper surface of the top of the electric slide rail is fixedly connected to a guide rod, the outer surface of the guide rod is slidably connected to one end of the storage frame, a plurality of limit rods are fixedly connected to one side of the crusher, and a rotating part is rotatably connected between the ends of the limit rods that are close to each other.
[0009] More preferably, the outer surface of the rotating gear is meshed with one side of the fixed rack.
[0010] More preferably, a return torsion spring is fixedly sleeved on the outer surface of one of the sliders, the other end of the return torsion spring is fixedly connected to one side of the rotating gear, and the outer surfaces of the ends of the limiting rods that are close to each other are fixedly sleeved with return torsion springs, and the sides of the return torsion springs that are close to each other are fixedly connected to both sides of the rotating member.
[0011] More preferably, one side of the upper surface of the storage frame is press-fitted with the lower surface of the rotating member.
[0012] More preferably, an extrusion piece is fixedly connected to the upper surface of one of the sliders, a connecting cover is fixedly connected to the upper surface of one side of the feeding hopper, a closing frame is slidably connected to the inner side of the connecting cover, a transmission frame is slidably connected to the upper surface of the closing frame, and one side of the transmission frame is rotatably connected to one side of the outer surface of the crusher.
[0013] More preferably, one side of the top of the extrusion piece is snap-fitted with one end of the transmission frame.
[0014] More preferably, a connecting torsion spring is fixedly sleeved on the outer surface of one side of the transmission frame, and the other end of the connecting torsion spring is fixedly connected to one side of the outer surface of the crusher.
[0015] More preferably, the outer surface of the connecting frame is fixedly connected to multiple support members, the side of the support members close to each other is rotatably connected to a reciprocating screw, the top of the reciprocating screw passes through the top support member and is fixedly connected to a rotating rod, the top of the rotating rod is fixedly connected to a driven gear, the outer surface of the driven gear is meshed with a gear ring, the top of the gear ring is fixedly connected to the lower surface of the second bevel gear, the outer surface of the reciprocating screw is threadedly connected to a threaded sleeve, and the outer surface of the threaded sleeve is fixedly connected to a dredging frame.
[0016] More preferably, the upper surface of the dredging frame is extrusion-fitted with the lower surface of the filter screen.
[0017] Compared with the prior art, the present invention has the following advantages:
[0018] 1. The present invention can screen the concrete on the surface of the filter screen when the rotating plate rotates, so that the crushed waste can be fully screened, and the incompletely crushed waste can be transported to the inside of the feeding hopper to avoid the incompletely crushed waste from piling up or clogging on the filter screen, thereby improving the screening efficiency and accuracy and keeping the particle size of the concrete waste inside the storage box consistent.
[0019] 2. When the storage frame is driven upward by the slider, the present invention can pour the incompletely crushed waste inside the storage frame back into the lower hopper, thereby performing repeated crushing, so that the waste can be more fully crushed, the overall crushing degree of the waste is improved, and the incompletely crushed waste can be automatically sent back into the lower hopper, which can reduce the tediousness and time consumption of manual operation.
[0020] 3. When the slider moves upward, the present invention can prompt the closing frame to move downward to block the outlet of the feeding hopper, so that the incompletely crushed waste can be temporarily stored inside the feeding hopper to prevent the waste from continuously flowing out, thereby avoiding the waste from falling on the ground, and allowing the incompletely crushed waste to be fully collected.
[0021] 4. The present invention can cause the threaded sleeve to drive the dredging frame to move up and down reciprocatingly when the reciprocating screw rotates, thereby effectively cleaning the blockage on the filter screen, allowing waste to pass more smoothly and quickly, and avoiding blockage of the filter screen to reduce the filtering efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0023] Figure 2 It is a sectional view of the three-dimensional structure of the blanking frame, the transmission belt, the first bevel gear and other parts of the present invention.
[0024] Figure 3 It is a sectional view of the three-dimensional structure of the material receiving frame, material unloading frame, material feeding hopper and other components of the present invention.
[0025] Figure 4 It is a sectional view of the three-dimensional structure of the second bevel gear, the filter screen, the rotating plate and other components of the present invention.
[0026] Figure 5 It is a schematic diagram of the three-dimensional structure of the feeding hopper, filter screen, rotating plate and other components of the present invention.
[0027] Figure 6 It is a schematic diagram of the three-dimensional structure of the material unloading frame and the material feeding hopper of the present invention.
[0028] Figure 7 It is a schematic diagram of the three-dimensional structure of components such as the electric guide rail, the slider and the storage frame of the present invention.
[0029] Figure 8 It is a schematic diagram of the three-dimensional structure of the electric slide rail, storage frame and guide rod of the present invention.
[0030] Fig. 9 It is a schematic diagram of the three-dimensional structure of the storage frame, fixed rack, support rod and other components of the present invention.
[0031] Fig.10 It is a schematic diagram of the three-dimensional structure of the storage frame, rotating gear, return torsion spring and other components of the present invention.
[0032] Fig.11 It is a schematic diagram of the three-dimensional structure of the limiting rod, the rotating member, the return torsion spring and other components of the present invention.
[0033] Fig.12 It is a three-dimensional structural schematic diagram of the extrusion parts, transmission parts and closed frame parts of the present invention.
[0034] Fig.13 It is a schematic diagram of the three-dimensional structure of the closing frame, the connecting cover, the connecting torsion spring and other components of the present invention.
[0035] Fig.14It is a schematic diagram of the three-dimensional structure of the reciprocating screw rod, support member, threaded sleeve and other components of the present invention.
[0036] Fig.15 It is a schematic diagram of the three-dimensional structure of the rotating rod, driven gear, gear ring and other components of the present invention.
[0037] The markings of the components in the attached drawings are as follows: 1-crusher, 11-feeding hopper, 12-servo motor, 13-storage box, 14-transmission gear, 15-crushing roller, 16-feeding frame, 17-connecting frame, 18-feeding frame, 19-transmission belt, 191-transmission wheel, 110-first bevel gear, 111-second bevel gear, 112-feeding hopper, 113-filter screen, 114-rotating plate, 2-electric slide rail, 21-slider, 22 -storage frame, 23-fixed rack, 24-support rod, 25-rotating gear, 26-return torsion spring, 27-guide rod, 28-limit rod, 29-rotating member, 211-reset torsion spring, 3-extrusion member, 31-transmission frame, 32-closing frame, 33-connecting cover, 34-connecting torsion spring, 4-reciprocating screw, 41-support member, 411-rotating rod, 412-driven gear, 413-tooth ring, 42-threaded sleeve, 43-dredging frame. DETAILED DESCRIPTION
[0038] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0039] The present invention will be further described below in conjunction with the embodiments.
[0040] Embodiments of the present invention
[0041] refer to Figures 1 to 6As shown, a fiber-regenerated concrete waste recycling device includes a crusher 1, the upper surface of the crusher 1 is connected with a lower hopper 11, the lower hopper 11 is used to assist concrete waste to enter the interior of the crusher 1, the bottom of the crusher 1 is detachably connected with a storage box 13, the storage box 13 is used to collect the crushed waste, one side of the top of the crusher 1 is fixedly connected with a servo motor 12, the output end of the servo motor 12 is fixedly connected with a transmission gear 14, the servo motor 12 is used to drive the transmission gear 14 to rotate simultaneously, the outer surface of the transmission gear 14 is meshed with another transmission gear 14, when the transmission gear 14 rotates, it is used to drive the other transmission gear 14 to rotate simultaneously, and the left sides of the two transmission gears 14 are fixedly connected with crushing rollers 15, and the transmission gears 15 are fixedly connected to the left sides of the two transmission gears 14. The wheel 14 is used to drive the crushing roller 15 to rotate simultaneously. The left ends of the crushing rollers 15 are rotatably connected to the inner side of the lower hopper 11. The sides of the crushing rollers 15 that are close to each other are used to crush the waste. The lower surface of the top of the crusher 1 is connected through a feeding frame 16, and the feeding frame 16 is used to transmit the waste. The inner side of the bottom of the crusher 1 is connected through a lower frame 18. The inner side of the lower frame 18 is detachably connected to a filter screen 113, and the filter screen 113 is used to screen the crushed waste. The upper surface of the lower frame 18 is fixedly connected to a connecting frame 17. The outer surface of the output shaft of the servo motor 12 is fixedly connected to a transmission wheel 191. The output shaft of the servo motor 12 is used to drive the transmission wheel 191 to rotate simultaneously. The outer surface of the transmission wheel 191 is transmission-connected The outer surface of the transmission belt 19 passes through the upper surface of the crusher 1. The bottom transmission of the transmission belt 19 is connected to another transmission wheel 191. When the output end of the servo motor 12 rotates, the two transmission wheels 191 are driven to rotate simultaneously through the transmission belt 19. The right end of the bottom transmission wheel 191 is fixedly connected with the first bevel gear 110. The right end of the first bevel gear 110 is rotatably connected to the inner side of the right end of the crusher 1. The transmission wheel 191 is used to drive the first bevel gear 110 to rotate simultaneously. The outer surface of the first bevel gear 110 is meshed with the second bevel gear 111. The lower surface of the second bevel gear 111 is rotatably connected to the upper surface of the unloading frame 18. When the first bevel gear 110 rotates, it is used to drive the second bevel gear 111 to rotate simultaneously. The lower surface of the second bevel gear 111 A rotating plate 114 is fixedly connected, and the second bevel gear 111 is used to drive the rotating plate 114 to rotate simultaneously. The lower surface of the rotating plate 114 is in contact with the upper surface of the filter screen 113. The rotating plate 114 is used to stir the waste on the upper surface of the filter screen 113. The outer surface of the unloading frame 18 is fixedly connected with a feeding hopper 112, and the feeding hopper 112 is used to transport the waste that is not completely crushed. When the rotating plate 114 is driven by the second bevel gear 111 to rotate on the upper surface of the filter screen 113, the waste on the upper surface of the filter screen 113 can be crushed, so that the waste can be fully screened, and the incompletely crushed waste can be transported to the inner side of the feeding hopper 112, so as to avoid the incompletely crushed waste from accumulating or clogging on the filter screen 113, thereby improving the screening efficiency and accuracy.
[0042] refer to Figures 7 to 11 As shown, a fiber recycling concrete waste recycling device is provided. An electric slide rail 2 is fixedly connected to the rear side of the bottom of the crusher 1. Slide blocks 21 are slidably connected to the inside of both sides of the electric slide rail 2. The electric slide rail 2 is used to drive the slide blocks 21 to slide up and down. A storage frame 22 is rotatably connected between the sides of the slide blocks 21 that are close to each other. The slide block 21 is used to drive the storage frame 22 to move simultaneously. The storage frame 22 is used to collect and transport the waste that is not completely crushed. The rear side of the top of the storage frame 22 is in an arc shape. The right end of the left slide block 21 is rotatably connected to a rotating gear 25. The slider 21 is used to drive the rotating gear 25 to move simultaneously. The rear side of the top of the crusher 1 is fixedly connected to a support rod 24. The top of the support rod 24 is fixedly connected to a fixed rack 23. The outer surface of the rotating gear 25 meshes with the front side of the fixed rack 23. The rotating gear 25 is used to fit and rotate with the rear side of the fixed rack 23. The right side of the rotating gear 25 is fixedly connected to the left side of the storage frame 22. When the storage frame 22 rotates, it is used to drive the storage frame 22 to flip simultaneously. The outer surface of the left slider 21 is fixedly sleeved with a return torsion spring 26. The right end of the return torsion spring 26 is fixed to the left side of the storage frame 22. The guide rod 27 is fixedly connected to the left side of the rotating gear 25, and the return torsion spring 26 is used to improve the stability of the storage frame 22 when the rotating gear 25 drives the storage frame 22 to rotate. The upper surface of the left side of the top of the electric slide rail 2 is fixedly connected to the guide rod 27, and the outer surface of the guide rod 27 is slidably connected to the left end of the storage frame 22. The guide rod 27 is used to improve the stability of the storage frame 22 when it rises. When the storage frame 22 is driven to move upward by the slider 21, the waste that is not completely crushed inside the storage frame 22 can be poured back into the lower hopper 11, so as to perform repeated crushing, so that the waste can be more fully crushed, and the crushing efficiency is improved. In order to improve the overall crushing efficiency, two limiting rods 28 are fixedly connected to the left side of the crusher 1, and a rotating member 29 is rotatably connected between the ends of the limiting rods 28 that are close to each other. The lower surface of the rotating member 29 is extruded with the arc-shaped portion on the rear side of the top of the storage frame 22, and the rotating member 29 is used to block the outlet at the rear end of the feeding hopper 112. The outer surfaces of the ends of the limiting rods 28 that are close to each other are fixedly sleeved with a reset torsion spring 211, and the sides of the reset torsion springs 211 that are close to each other are fixedly connected to the two sides of the rotating member 29, and the reset torsion springs 211 are used to drive the rotating member 29 to reset and swing.
[0043] refer to Fig.12 and Fig.13As shown, a fiber-regenerated concrete waste recycling device is provided, wherein the upper surface of the left slider 21 is fixedly connected with an extrusion member 3, and the left slider 21 is used to drive the extrusion member 3 to move simultaneously, and the upper surface of the rear side of the feeding hopper 112 is fixedly connected with a connection cover 33, and the inner side of the connection cover 33 is slidably connected with a closing frame 32, and the closing frame 32 is used to block the outlet of the rear side of the feeding hopper 112, and the upper surface of the closing frame 32 is slidably connected with a transmission frame 31, and the front side of the transmission frame 31 is rotatably connected to the rear side of the outer surface of the crusher 1, and the transmission frame 31 is used to drive the closing frame 3 2 slides up and down, the outer surface of the front side of the transmission frame 31 is fixedly sleeved with a connecting torsion spring 34, the front end of the connecting torsion spring 34 is fixedly connected to the rear side of the outer surface of the crusher 1, and the connecting torsion spring 34 is used to drive the right end of the transmission frame 31 to swing downward, and the left side of the top of the extrusion member 3 is engaged with the left end of the transmission frame 31. When the extrusion member 3 moves upward, the closing frame 32 will move downward to cover the outlet at the rear end of the feeding hopper 112, so that the waste that is not completely crushed can be temporarily stored in the feeding hopper 112 to prevent the waste from continuously flowing out, thereby preventing the waste from falling on the ground.
[0044] refer to Fig.14 and Fig.15 As shown, a fiber recycling concrete waste recycling device, the outer surface of the connecting frame 17 is fixedly connected to two support members 41, the support members 41 are rotatably connected to the side close to each other with a reciprocating screw rod 4, the top of the reciprocating screw rod 4 passes through the top support member 41, and the top is fixedly connected to a rotating rod 411, the rotating rod 411 is used to drive the reciprocating screw rod 4 to rotate simultaneously, the top of the rotating rod 411 is fixedly connected to a driven gear 412, the driven gear 412 is used to drive the rotating rod 411 to rotate simultaneously, the outer surface of the driven gear 412 is meshed with a gear ring 413, the gear ring 413 is used to drive the driven gear 412 to rotate simultaneously, and the upper surface of the gear ring 413 is fixed It is fixedly connected to the lower surface of the second bevel gear 111, and the second bevel gear 111 is used to drive the gear ring 413 to rotate simultaneously. The outer surface of the reciprocating screw rod 4 is threadedly connected with a threaded sleeve 42, and the reciprocating screw rod 4 is used to drive the threaded sleeve 42 to reciprocate up and down on the outer surface of the reciprocating screw rod 4. The outer surface of the threaded sleeve 42 is fixedly connected with a dredging frame 43, and the threaded sleeve 42 is used to drive the dredging frame 43 to move simultaneously. The upper surface of the dredging frame 43 is squeezed and matched with the lower surface of the filter screen 113. When the dredging frame 43 moves upward, it can effectively clean the blockage on the filter screen 113, so that the waste can pass more smoothly and quickly, and avoid blockage of the filter screen 113 to reduce the filtration efficiency.
[0045] The complete working principle and steps of the above embodiment are as follows:
[0046] refer to Figures 1 to 6 As shown, when the waste recycling device is in the initial state, the servo motor 12 is in the off state;
[0047] When using the device to recycle concrete waste, first pour the waste from the inside of the lower hopper 11 and start the servo motor 12. At this time, the output end of the servo motor 12 will drive the transmission gear 14 to rotate simultaneously. When the transmission gear 14 rotates, it will drive another transmission gear 14 to rotate toward the side close to each other. When the two transmission gears 14 rotate toward the side close to each other, they will drive the crushing roller 15 to rotate simultaneously. At this time, when the crushing roller 15 rotates toward the side close to each other, it can crush the waste and transport the waste from the inside of the feeding frame 16 to the filter screen 113. When the output shaft of the servo motor 12 rotates, it will drive the transmission belt 19 to rotate simultaneously through the transmission wheel 191. When the transmission wheel 19 rotates, it will drive the first bevel gear 110 in the crusher 1 through the transmission wheel 191 at the bottom. The left side of the interior rotates simultaneously, and when the first bevel gear 110 rotates, it will drive the second bevel gear 111 to rotate simultaneously, and when the second bevel gear 111 rotates on the upper surface of the connecting frame 17, it will drive the rotating plate 114 to rotate simultaneously. At this time, the rotating plate 114 can rotate on the upper surface of the filter screen 113 to filter the waste on the upper surface of the filter screen 113, so that the fine waste can pass through the bottom of the filter screen 113, and the crushed waste can be fully screened. When there is incompletely crushed waste, the rotating plate 114 can drive the waste from the upper surface of the filter screen 113 to the inside of the feeding hopper 112, so that the feeding hopper 112 can discharge the incompletely crushed waste, avoiding the incompletely crushed waste from accumulating or clogging on the filter screen 113, thereby improving the screening efficiency and accuracy.
[0048] refer to Figures 7 to 11 As shown, when the waste recycling device is in the initial state, the electric slide rail 2 is in the closed state, the slider 21 is slidably connected to the bottom of the inner side of the electric slide rail 2, the outer surface of the rotating gear 25 has not yet engaged with the rear side of the fixed rack 23, and the return torsion spring 26 and the reset torsion spring 211 are in a naturally relaxed state;
[0049] When the shredded waste is screened, the incompletely shredded waste can flow from the rear side of the feed hopper 112 into the inner side of the storage frame 22. When the storage frame 22 is filled with waste, the electric slide rail 2 can be started to drive the slider 21 to slide upward. When the slider 21 slides upward, it drives the storage frame 22 to slide at the same time. When the storage frame 22 slides upward, it fits the lower surface of the filter screen 113 and drives the filter screen 113 to flip counterclockwise. When the filter screen 113 flips counterclockwise, it can block the outlet on the rear side of the feed hopper 112 and drive the reset torsion spring 211 to rotate to the stored force state. When the outer surface then slides upward, it will drive the rotating gear 25 to slide at the same time. As the left side of the storage frame 22 slides out from the outer surface of the guide rod 27, the outer surface of the rotating gear 25 can engage with the outer surface of the fixed rack 23 and prompt the rotating gear 25 to rotate counterclockwise. When the rotating gear 25 rotates counterclockwise, it will drive the return torsion spring 26 to rotate to the power storage state, and when the rotating gear 25 rotates counterclockwise, it will also drive the storage frame 22 to flip over at the same time. When the storage frame 22 flips counterclockwise, the waste that is not completely crushed inside the storage frame 22 will be poured back into the lower hopper 11 for repeated crushing, so that the waste can be more fully crushed and the overall crushing degree of the waste can be improved.
[0050] When the storage frame 22 finishes dumping the waste, the electric slide rail 2 can drive the storage frame 22 to slide downward through the slider 21, and when the storage frame 22 slides downward, it will drive the rotating gear 25 to slide at the same time, and when the rotating gear 25 slides downward, it will engage with the fixed rack 23, prompting the rotating gear 25 to drive the storage frame 22 to flip clockwise, and when the storage frame 22 flips clockwise, it will prompt the return torsion spring 26 to return to the initial state, and the return torsion spring 26 can prevent the rotating gear 25 from rotating again when the rotating gear 25 is disengaged from the fixed rack 23. When the slider 21 drives the storage frame 22 to reset, the return torsion spring 211 in the power storage state can drive the rotating part 29 to flip clockwise, so that the waste that is not completely crushed can be re-transported to the interior of the storage frame 22.
[0051] refer to Figure 12 to Figure 13 As shown, the connecting torsion spring 34 is in a force storage state, and the right side of the top of the extrusion member 3 is attached to the left end of the transmission frame 31;
[0052] When the slider 21 moves upward, the slider 21 on the left side can drive the extrusion piece 3 to move at the same time. When the extrusion piece 3 moves upward, the right side of the top of the extrusion piece 3 will be disengaged from the left side of the transmission frame 31. At this time, the connecting torsion spring 34 in the power storage state will drive the transmission frame 31 to swing counterclockwise. When the transmission frame 31 swings counterclockwise, the left end of the transmission frame 31 will swing upward, and the right end of the transmission frame 31 will drive the closing frame 32 to move downward. When the closing frame 32 moves downward on the inner side of the connecting cover 33, the outlet at the rear end of the feeding hopper 112 can be blocked, so that the incompletely crushed waste can be temporarily stored inside the feeding hopper 112 to prevent the waste from continuing to flow out, thereby preventing the waste from falling on the ground, so that the incompletely crushed waste can be fully collected.
[0053] As the left slider 21 drives the extrusion member 3 to move downward, the right side of the top of the extrusion member 3 will fit against the left end of the transmission frame 31 again and drive the left end of the transmission frame 31 to swing downward. When the left end of the transmission frame 31 swings downward, the connecting torsion spring 34 will be prompted to return to the stored force state. As the left end of the connecting torsion spring 34 moves downward, the right end of the connecting torsion spring 34 will drive the closing frame 32 to move upward. When the closing frame 32 moves upward on the inner side of the connecting cover 33, the closing frame 32 will be prompted to disengage from blocking the outlet at the rear end of the feeding hopper 112, so that the waste can be discharged again.
[0054] refer to Figure 14 to Figure 15 As shown, as the lower hopper 11 rotates, the gear ring 413 is driven to rotate simultaneously, and the gear ring 413 is driven to rotate simultaneously, and the driven gear 412 is driven to rotate simultaneously, and the driven gear 412 is driven to rotate simultaneously, and the rotating rod 411 is driven to rotate simultaneously, and the rotating rod 411 is driven to rotate simultaneously on the side of the support 41 that is close to each other, and the reciprocating screw 4 is driven to rotate simultaneously when the reciprocating screw 4 rotates, and the threaded sleeve 42 is driven to move up and down on the outer surface of the reciprocating screw 4 when the reciprocating screw 4 rotates, and the unblocking frame 43 is driven to move simultaneously when the threaded sleeve 42 moves up and down, and the unblocking frame 43 can effectively clean the blockage on the filter screen 113 when it moves up and down, so that the waste can pass more smoothly and quickly, and avoid the blockage of the filter screen 113 and reduce the filtering efficiency.
[0055] Although the present disclosure has been shown and described with reference to specific exemplary embodiments of the present disclosure, it should be understood by those skilled in the art that various changes in form and details may be made to the present disclosure without departing from the spirit and scope of the present disclosure as defined by the appended claims and their equivalents. Therefore, the scope of the present disclosure should not be limited to the above-mentioned embodiments, but should be determined not only by the appended claims, but also by the equivalents of the appended claims.
Claims
1. A fiber-regenerated concrete waste recycling device, comprising a crusher (1), the upper surface of the crusher (1) is connected to a lower hopper (11), the bottom of the crusher (1) is detachably connected to a storage box (13), one side of the top of the crusher (1) is fixedly connected to a servo motor (12), the output end of the servo motor (12) is fixedly connected to a transmission gear (14), the outer surface of the transmission gear (14) is meshed with another transmission gear (14), one side of the two transmission gears (14) are fixedly connected to a crushing roller (15), the other ends of the crushing rollers (15) are rotatably connected to the inner side of the lower hopper (11), the lower surface of the top of the crusher (1) is connected to a feeding frame (16), and the characteristics are: The inner side of the bottom of the crusher (1) is connected to a feed frame (18) through and through, the inner side of the feed frame (18) is detachably connected to a filter screen (113), the upper surface of the feed frame (18) is fixedly connected to a connection frame (17), the outer surface of the output shaft of the servo motor (12) is fixedly connected to a transmission wheel (191), the outer surface of the transmission wheel (191) is transmission-connected to a transmission belt (19), the outer surface of the transmission belt (19) passes through the upper surface of the crusher (1), the bottom of the transmission belt (19) is transmission-connected to the outer surface of another transmission wheel (191), and the other transmission wheel (191) is fixedly connected to the outer surface of the output shaft of the servo motor (12). One end of the wheel (191) is fixedly connected to a first bevel gear (110), one end of the first bevel gear (110) is rotatably connected to the inner side of the crusher (1), the outer surface of the first bevel gear (110) is meshed with a second bevel gear (111), the lower surface of the second bevel gear (111) is rotatably connected to the upper surface of a feed frame (18), the lower surface of the second bevel gear (111) is fixedly connected to a rotating plate (114), the lower surface of the rotating plate (114) is in contact with the upper surface of a filter screen (113), and the outer surface of the feed frame (18) is fixedly connected to a feeding hopper (112).
2. A fiber-regenerated concrete waste recycling device according to claim 1, characterized in that: One side of the crusher (1) is fixedly connected to an electric slide rail (2), and both sides of the electric slide rail (2) are slidably connected to sliders (21), and a storage frame (22) is rotatably connected between the sides of the sliders (21) that are close to each other. One side of the top of the storage frame (22) is in an arc shape, and one side of one of the sliders (21) is rotatably connected to a rotating gear (25), and one side of the rotating gear (25) is fixedly connected to one side of the storage frame (22). One side of the top of the crusher (1) is fixedly connected to a support rod (24), and the top of the support rod (24) is fixedly connected to a fixed rack (23). The upper surface of the top of the electric slide rail (2) is fixedly connected to a guide rod (27), and the outer surface of the guide rod (27) is slidably connected to one end of the storage frame (22). One side of the crusher (1) is fixedly connected to a plurality of limiting rods (28), and a rotating member (29) is rotatably connected between the ends of the limiting rods (28) that are close to each other.
3. A fiber-regenerated concrete waste recycling device according to claim 2, characterized in that: The outer surface of the rotating gear (25) is meshed with one side of the fixed rack (23).
4. A fiber-regenerated concrete waste recycling device according to claim 3, characterized in that: one A return torsion spring (26) is fixedly sleeved on the outer surface of the slider (21), and the other end of the return torsion spring (26) is fixedly connected to one side of the rotating gear (25). The outer surfaces of the ends of the limiting rods (28) that are close to each other are fixedly sleeved with return torsion springs (211), and the sides of the return torsion springs (211) that are close to each other are fixedly connected to two sides of the rotating member (29).
5. A fiber-regenerated concrete waste recycling device according to claim 4, characterized in that: One side of the upper surface of the storage frame (22) is pressed and matched with the lower surface of the rotating member (29).
6. A fiber-regenerated concrete waste recycling device according to claim 5, characterized in that: one The upper surface of the slider (21) is fixedly connected to an extrusion piece (3), the upper surface of one side of the feed hopper (112) is fixedly connected to a connection cover (33), the inner side of the connection cover (33) is slidably connected to a closing frame (32), the upper surface of the closing frame (32) is slidably connected to a transmission frame (31), and one side of the transmission frame (31) is rotatably connected to one side of the outer surface of the crusher (1).
7. A fiber-regenerated concrete waste recycling device according to claim 6, characterized in that: One side of the top of the extrusion piece (3) is snap-fitted with one end of the transmission frame (31).
8. A fiber-regenerated concrete waste recycling device according to claim 7, characterized in that: A connecting torsion spring (34) is fixedly sleeved on the outer surface of one side of the transmission frame (31), and the other end of the connecting torsion spring (34) is fixedly connected to one side of the outer surface of the crusher (1).
9. A fiber-regenerated concrete waste recycling device according to claim 8, characterized in that: The outer surface of the connection frame (17) is fixedly connected to a plurality of support members (41); a reciprocating screw rod (4) is rotatably connected to one side of the support members (41) that are close to each other; the top of the reciprocating screw rod (4) passes through the support member (41) at the top and is fixedly connected to a rotating rod (411); the top of the rotating rod (411) is fixedly connected to a driven gear (412); the outer surface of the driven gear (412) is meshed with a toothed ring (413); the top of the toothed ring (413) is fixedly connected to the lower surface of the second bevel gear (111); the outer surface of the reciprocating screw rod (4) is threadedly connected to a threaded sleeve (42); the outer surface of the threaded sleeve (42) is fixedly connected to a dredging frame (43).
10. A fiber-regenerated concrete waste recycling device according to claim 9, characterized in that: The upper surface of the dredging frame (43) is extruded and matched with the lower surface of the filter screen (113).
Citation Information
Patent Citations
Municipal waste crushing device
CN210146095U