A recycling and reuse device for waste concrete solid waste

By designing a waste concrete recycling and reuse device for multi-stage transmission crushing, rodent plate grinding and slider collection, the problems of high costs and environmental pollution in the existing technology are solved, and efficient recycling and reuse of waste concrete is achieved.

CN119771592BActive Publication Date: 2025-06-13HUNAN HENGKE HOUSING IND CO LTD
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Patent Information

Application Number
CN202510196997.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-06-13
Estimated Expiration
2045-02-21

AI Technical Summary

Technical Problem

In the prior art, the recycling and reuse devices for waste concrete have problems such as high costs and environmental pollution, and have failed to effectively solve the problem of recycling and recycling of waste concrete.

Method used

A waste concrete recycling device including crushing parts, grinding parts and collection parts is designed. The crushing parts realize efficient crushing of materials through a multi-stage transmission system. The grinding parts further grind the materials through the rod plate structure. The collection parts realize efficient collection of materials through the slider and final structure, and reduce dust flying through dust guns and wind tanks.

Benefits of technology

The device can efficiently crush and grind waste concrete, achieving effective recycling and reuse, reducing costs and reducing environmental pollution.

✦ Generated by Eureka AI based on patent content.

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Abstract

A recycling and reuse device for waste concrete solid waste, which relates to the technical field of recycling of solid waste, includes a mobile frame. A bottom frame is fixedly connected to the bottom of the mobile frame. A feeding plate is fixedly connected to the surface of the mobile frame at the end away from the bottom frame. An auxiliary control plate is fixedly connected to the inner wall of the feeding plate close to the mobile frame. An aggregate box is arranged on the surface of the bottom frame close to the mobile frame. The number of the auxiliary control plates is two, and the two auxiliary control plates are symmetrically distributed on the surface of the feeding plate. It also includes a crushing component, a grinding component and a collection component. By using the present invention, it can well realize the crushing, grinding and collection treatment of waste concrete solid waste, and at the same time can avoid environmental pollution caused by problems such as dust flying.
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Description

Technical Field

[0001] The invention relates to the technical field of solid waste recycling equipment, in particular to a recycling and reuse device for waste concrete solid waste. Background Art

[0002] Because natural sand and gravel are non-renewable resources, with the continuous exploitation of natural sand and gravel and the increasingly stringent requirements for environmental protection, the supply of natural sand and gravel aggregates is insufficient to meet the demand, which has an adverse impact on the construction industry. The recycling of waste concrete solid waste is to use the waste concrete blocks as recycled coarse and fine aggregates for concrete or as raw materials for cement after crushing, screening and pulverizing.

[0003] The amount of waste concrete generated by the renovation of old buildings and highway bridges around the world is increasing day by day. These waste concrete are often directly used for low-value utilization such as landfill without being treated. The recycling and reuse devices in the existing technology mainly crush, screen and pulverize solid waste, which not only consumes a lot of money, but also causes environmental pollution due to dust flying during transportation and stacking. Therefore, the recycling and reuse of waste concrete has become one of the hot topics of global research. Summary of the invention

[0004] The purpose of the present invention is to provide a device for recycling and reusing waste concrete solid waste to solve the problems raised in the above background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention is a recycling and reuse device for waste concrete solid waste, comprising a mobile frame, wherein the bottom of the mobile frame is fixedly connected to a bottom frame, a surface of the mobile frame away from one end of the bottom frame is fixedly connected to a feed plate, an inner wall of the feed plate close to the mobile frame is fixedly connected to an auxiliary control board, a surface of the bottom frame close to the mobile frame is provided with a collection box, two auxiliary control boards are provided, and the two auxiliary control boards are symmetrically distributed on the surface of the feed plate, and further comprising:

[0007] A crushing component, the crushing component comprises an output shaft, the surface of the output shaft is connected to an output belt in a transmission manner, and the inner wall of the output belt away from the output shaft is connected to a transmission shaft in a rotation manner;

[0008] A grinding component, the grinding component comprises an output tooth plate, the surface of the output tooth plate is meshedly connected with a transmission tooth plate, the inner wall of the transmission tooth plate is fixedly connected with a tooth plate vertical shaft, and the surface of the tooth plate vertical shaft close to the transmission tooth plate is fixedly connected with grinding teeth;

[0009] A collecting component, the collecting component includes a reciprocating slider, a collecting rotating shaft is rotatably connected to the inner wall of the reciprocating slider, and a collecting pressing shaft is fixedly connected to the surface of the collecting rotating shaft on the side away from the reciprocating slider.

[0010] Further, a telescopic control box plate is provided on the inner wall of the moving vehicle frame close to the aggregate box, a dust removal water gun is provided on the surface of the moving vehicle frame close to the feeding plate, an engine is fixedly connected to the surface of the bottom frame close to the feeding plate, and a control board is fixedly connected to the surface of the bottom frame close to the dust removal water gun.

[0011] Further, the crushing component includes a periodic rotating plate, a periodic rotating column is fixedly connected to the end face of the periodic rotating plate, a pull rod is rotatably connected to the surface of the periodic rotating column, a sliding column is rotatably connected to the inner wall of the pull rod at the end away from the periodic rotating column, a sliding column groove plate is slidably connected to the surface of the sliding column on the side away from the pull rod, a bidirectional rotating pull rod is fixedly connected to the surface of the sliding column close to the sliding column groove plate, the surface of the transmission shaft close to the output belt is rotatably connected to the inner wall of the moving vehicle frame, and the end face of the transmission shaft at the end away from the output belt is fixedly connected to the end face of the periodic rotating plate at the end away from the periodic rotating column. The surface of the transmission shaft penetrates through the inner wall of the moving vehicle frame to the inner wall on the output belt side and is rotatably connected to the inner wall of the moving vehicle frame.

[0012] Further, a crushing tooth column is rotatably connected to the inner wall of the bidirectional rotating pull rod at the end away from the sliding column groove plate, a crushing tooth is fixedly connected to the end face of the crushing tooth column at the end away from the bidirectional rotating pull rod, a reset spring is fixedly connected to the inner wall of the feeding plate close to the crushing tooth, an auxiliary crushing tooth is fixedly connected to the surface of the crushing tooth close to the crushing tooth column, the number of the crushing tooth columns is two, and the two crushing tooth columns are symmetrically distributed with respect to the inner wall of the feeding plate. The surface of the crushing tooth is slidably connected to the inner wall of the feeding plate, the number of the reset springs is four, the four reset springs are divided into two groups, and the number of each group is two. The two groups of reset springs are symmetrically distributed with respect to the inner wall of the feeding plate.

[0013] Further, a periodic push column is rotatably connected to the surface of the auxiliary control board close to the auxiliary crushing tooth, a sieve plate fixing plate is fixedly connected to the inner wall of the feeding plate close to the periodic push column, a vibrating sieve plate is slidably connected to the inner wall of the sieve plate fixing plate, and the number of the sieve plate fixing plates is two. The two sieve plate fixing plates are symmetrically distributed with respect to the inner wall of the feeding plate.

[0014] Further, the grinding component includes a driving rotating plate, a grinding rotating column is fixedly connected to the end face of the driving rotating plate, a feeding fan plate is fixedly connected to the surface of the transmission shaft on the side away from the grinding rotating column, the inner wall of the output toothed plate is fixedly connected to the surface of the output shaft, the number of the transmission toothed plates is two, and the two transmission toothed plates are symmetrically distributed on the surface of the moving vehicle frame. The end face of the toothed plate vertical shaft near the transmission toothed plate is rotatably connected to the inner wall of the moving vehicle frame. The number of the grinding teeth is two, and the two grinding teeth are equidistantly distributed along the surface of the toothed plate vertical shaft. The inner wall of the driving rotating plate is fixedly connected to the surface of the transmission shaft. The number of the grinding rotating columns is four, and the four grinding rotating columns are symmetrically distributed with the center of the surface of the driving rotating plate as the center. The number of the feeding fan plates is three, and the three feeding fan plates are symmetrically distributed with the center of the surface of the transmission shaft as the center.

[0015] Further, the surface of the output shaft on the side away from the output toothed plate is drivingly connected with an auxiliary conveyor belt. A pressurizing fan column is rotatably connected to the inside of the auxiliary conveyor belt on the side away from the output shaft. A pressurizing fan plate is fixedly connected to the surface of the pressurizing fan column. A cross plate is rotatably connected to the end face of the pressurizing fan column on the side away from the pressurizing fan plate. The number of the pressurizing fan columns is two, and the two pressurizing fan columns are symmetrically distributed with the surface of the cross plate as the center. The surface of the cross plate near the pressurizing fan plate is clamped with the surface of the feeding plate.

[0016] Further, the collecting component includes a dust removing fan plate. A guiding plate shaft is rotatably connected to the inner wall of the dust removing fan plate. A connecting pressing shaft is fixedly connected to the surface of the guiding plate shaft on the side away from the dust removing fan plate. A guiding plate is fixedly connected to the surface of the guiding plate shaft on the side away from the connecting pressing shaft. The number of the collecting rotating shafts is six. The six collecting rotating shafts are divided into two groups, and the number of each group is three. Two of the collecting rotating shafts are symmetrically distributed with the center of the surface of the reciprocating slider as the center. The number of the guiding plate shafts is six. The six guiding plate shafts are divided into two groups, and the number of each group is three. The two groups of guiding plate shafts are symmetrically distributed with the center of the inside of the dust removing fan plate as the center. The surface of the collecting pressing shaft is in contact with the surface of the connecting pressing shaft. The number of the guiding plates is three, and the three guiding plates are symmetrically distributed with the surface of the guiding plate shaft as the center. The end face of the dust removing water gun is fixedly connected to the surface of the dust removing fan plate.

[0017] Further, a wind direction box is fixedly connected to the surface of the dust removing fan plate on the side away from the reciprocating slider. A wind direction rotating shaft is rotatably connected to the inner wall of the wind direction box. A wind direction fan plate is fixedly connected to the surface of the wind direction rotating shaft near the wind direction box. An air guiding opening is formed in the inner wall of the wind direction box near the wind direction rotating shaft. The number of the wind direction rotating shafts is two, and the two wind direction rotating shafts are symmetrically distributed with the surface of the wind direction box as the center.

[0018] The present invention has the following beneficial effects:

[0019] When the present invention is in use, after the device is installed, inside the crushing component, the material enters the device through the feeding plate. At the same time, the engine is started to drive the output shaft to rotate. The output shaft will drive the output belt for transmission, and the output belt will drive the transmission shaft on the inner wall at the other end to rotate. When the transmission shaft rotates, it will drive the periodic rotating plate to rotate, and the periodic rotating plate will drive the periodic rotating column to rotate periodically. When the periodic rotating column runs, it will drive the pull rod on its surface to run, and the pull rod will drive the sliding column to slide along the inner wall of the sliding column groove plate. When the sliding column runs, it will drive the two-way rotating pull rod on its surface to run. Through periodic operation, the two-way rotating pull rod will drive the crushing tooth column to run, and the crushing tooth column will drive the crushing teeth to run back and forth along the inner wall of the feeding plate to crush the material entering the device. When the crushing teeth run to a certain position, they will collide with the reset spring. The reset spring, through the reaction force generated by itself, assists in resetting the crushing teeth, enabling them to crush better and return to their original positions. At the same time, when the crushing teeth run, they will drive the auxiliary crushing teeth to run, and the auxiliary crushing teeth will further crush the material crushed by the crushing teeth to enable better recycling. Meanwhile, the auxiliary control plate is started to drive the periodic push column to run, and the periodic push column will continuously collide with the vibrating sieve plate, causing the vibrating sieve plate to vibrate continuously to screen the material falling into it. The material that cannot fall will be vibrated to contact the auxiliary crushing teeth and continue to be crushed.

[0020] When the present invention is in use, inside the grinding component, when the output shaft runs, it will drive the output tooth plate to run. Through the meshing action on the surface, the output tooth plate will drive the transmission tooth plate to run, and the transmission tooth plate will drive the tooth plate vertical shaft to rotate along the inner wall of the moving vehicle frame. When the tooth plate vertical shaft runs, it will drive the grinding teeth to run, and the grinding teeth will grind the crushed material to enable better processing and recycling. Meanwhile, when the transmission shaft runs, it will drive the transmission rotating plate to run, and the transmission rotating plate will drive the grinding rotating column to run, and the grinding rotating column will grind the crushed material entering it to enable better collection. Meanwhile, the transmission shaft will drive the material pushing fan plate to run, and the material pushing fan plate will guide and collect the material to promote the grinding and collection of the material. Meanwhile, when the output shaft runs, it will drive the auxiliary conveyor belt to run, and the auxiliary conveyor belt will drive the pressurizing fan column to rotate along the inner wall of the cross plate. At the same time, the pressurizing fan column will drive the pressurizing fan plate to run, and the pressurizing fan plate will pressurize the inside of the device to prevent the dust generated during the operation of the device from flying out. At the same time, the dust removal water gun is started to clean the dust in the device.

[0021] When the present invention is in use, inside the collection component at this time, the control board starts, driving the reciprocating slider to slide back and forth cyclically along the inner wall of the control board. At the same time, it drives the collection rotating shaft to rotate. The collection rotating shaft will drive the collection pressing shaft to operate. The collection pressing shaft will collect the ground material and make it enter the aggregate box. At the same time, when the collection pressing shaft operates, it will drive the connection pressing shaft to operate. The connection pressing shaft will drive the guide plate shaft to rotate along the inner wall of the dust removal fan plate. At the same time, when the guide plate shaft operates, when it drives the guide plate to operate, the guide plate will further assist in collecting the ground material and collecting it into the aggregate box. At the same time, the wind direction rotating shaft drives the wind direction fan plate to rotate along the inner wall of the wind direction box, causing the dust generated inside the device to fly out of the device and operate together with the dust removal fan plate to assist the device in dust treatment.

[0022] Of course, it is not necessary for any product implementing the present invention to simultaneously achieve all the above-mentioned advantages. Brief Description of the Drawings

[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0024] Figure 1 Schematic diagram of the overall structure of the present invention;

[0025] Figure 2 Cross-sectional view of the overall structure of the present invention;

[0026] Figure 3 Cross-sectional view of the crushing component structure of the present invention;

[0027] Figure 4 Cross-sectional view of the vibrating sieve plate structure of the present invention;

[0028] Figure 5 Schematic diagram of the grinding component structure of the present invention;

[0029] Figure 6 For the present invention Figure 5 Enlarged view of part A;

[0030] Figure 7 Schematic diagram of the collection component structure of the present invention;

[0031] Figure 8 Rear view of the cross-section of the collection component structure of the present invention.

[0032] In the drawings, the list of components represented by each reference numeral is as follows:

[0033] In the figure: 1. Crushing component; 2. Grinding component; 3. Collection component; 4. Engine; 5. Control panel; 6. Auxiliary control panel; 7. Mobile frame; 8. Bottom frame; 9. Feeding plate; 10. Dust removal water gun; 11. Aggregate box; 12. Telescopic control box plate; 21. Output shaft; 22. Output belt; 23. Transmission shaft; 24. Periodic rotating plate; 25. Periodic rotating column; 26. Pull rod; 27. Sliding column; 28. Slide column groove plate; 29. Bidirectional rotating pull rod; 30. Crushing tooth column; 31. Crushing tooth; 32. Return spring; 33. Auxiliary crushing tooth; 34. Periodic push column; 35. Vibration sieve plate; 36. Sieve plate fixing plate; 41. Output tooth plate; 42. Transmission tooth plate; 43. Tooth plate vertical shaft; 44. Grinding tooth; 45. Transmission rotating plate; 46. Grinding rotating column; 47. Pushing fan plate; 48. Auxiliary conveyor belt; 49. Pressing fan column; 50. Pressing fan plate; 51. Cross plate; 61. Reciprocating slider; 62. Collection rotating shaft; 63. Collection pressing shaft; 64. Dust removal fan plate; 65. Guide plate shaft; 66. Connecting pressing shaft; 67. Guide plate; 68. Wind direction box; 69. Wind direction rotating shaft; 70. Wind direction fan plate; 71. Air guide port. Detailed implementation manners

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0035] Please refer to Figure 1 - Figure 8 As shown in the figure, the present invention is a recycling and reuse device for waste concrete solid waste, including a mobile frame 7. A bottom frame 8 is fixedly connected to the bottom of the mobile frame 7. A feeding plate 9 is fixedly connected to the surface of one end of the mobile frame 7 away from the bottom frame 8. An auxiliary control panel 6 is fixedly connected to the inner wall of the feeding plate 9 close to the mobile frame 7. An aggregate box 11 is arranged on the surface of the bottom frame 8 close to the mobile frame 7. The number of the auxiliary control panels 6 is two, and the two auxiliary control panels 6 are symmetrically distributed on the surface of the feeding plate 9. It further includes:

[0036] A crushing component 1. The crushing component 1 includes an output shaft 21. When the engine 4 is started, it drives the output shaft 21 to rotate. The output shaft 21 will drive the output belt 22 to transmit. The output shaft 21 is drivingly connected to the output belt 22 on its surface. The output belt 22 will drive the transmission shaft 23 on the inner wall of the other end to rotate. The transmission shaft 23 is rotatably connected to the inner wall of the output belt 22 away from the output shaft 21. When the transmission shaft 23 rotates, it will drive the periodic rotating plate 24 to rotate;

[0037] The grinding component 2 includes an output toothed plate 41. When the output shaft 21 operates, it drives the output toothed plate 41 to operate. Through surface meshing, the output toothed plate 41 drives the transmission toothed plate 42 to operate. The surface of the output toothed plate 41 is meshed and connected to the transmission toothed plate 42. Then the transmission toothed plate 42 drives the vertical shaft of the toothed plate 43 to rotate along the inner wall of the moving vehicle frame 7. The inner wall of the transmission toothed plate 42 is fixedly connected to the vertical shaft of the toothed plate 43. When the vertical shaft of the toothed plate 43 operates, it drives the grinding teeth 44 to operate. The surface of the vertical shaft of the toothed plate 43 close to the transmission toothed plate 42 is fixedly connected to the grinding teeth 44. The grinding teeth 44 grind the crushed materials so that the materials can be better processed and recycled.

[0038] The collection component 3 includes a reciprocating slider 61. When the control board 5 is activated, it drives the reciprocating slider 61 to perform reciprocating periodic sliding along the inner wall of the control board 5, and at the same time drives the collection rotating shaft 62 to rotate. The inner wall of the reciprocating slider 61 is rotatably connected to the collection rotating shaft 62. Then the collection rotating shaft 62 drives the collection pressing shaft 63 to operate. The surface of the collection rotating shaft 62 far from the reciprocating slider 61 is fixedly connected to the collection pressing shaft 63. The collection pressing shaft 63 collects the ground materials and makes them enter the aggregate box 11.

[0039] On the inner wall of the moving vehicle frame 7 close to the aggregate box 11, there is a telescopic control box plate 12. On the surface of the moving vehicle frame 7 close to the feed plate 9, there is a dust removal water gun 10. On the surface of the bottom frame 8 close to the feed plate 9, an engine 4 is fixedly connected. On the surface of the bottom frame 8 close to the dust removal water gun 10, a control board 5 is fixedly connected.

[0040] The crushing component 1 includes a periodic rotating plate 24. The periodic rotating plate 24 drives the periodic rotating column 25 to perform periodic rotation. The end face of the periodic rotating plate 24 is fixedly connected to the periodic rotating column 25. When the periodic rotating column 25 operates, it drives the pull rod 26 on its surface to operate. The surface of the periodic rotating column 25 is rotatably connected to the pull rod 26. Then the pull rod 26 drives the sliding column 27 to slide along the inner wall of the sliding column groove plate 28. The inner wall of the end of the pull rod 26 far from the periodic rotating column 25 is rotatably connected to the sliding column 27. When the sliding column 27 operates, it drives the double - direction rotating pull rod 29 on its surface to operate. The surface of the sliding column 27 far from the pull rod 26 slides on the sliding column groove plate 28. The surface of the sliding column 27 close to the sliding column groove plate 28 is fixedly connected to the double - direction rotating pull rod 29. The surface of the transmission shaft 23 close to the output belt 22 is rotatably connected to the inner wall of the moving vehicle frame 7. The end face of the end of the transmission shaft 23 far from the output belt 22 is fixedly connected to the end face of the periodic rotating plate 24 far from the periodic rotating column 25. The surface of the transmission shaft 23 penetrates through the inner wall of the moving vehicle frame 7 to the inner wall on the output belt 22 side and is rotatably connected to the inner wall of the moving vehicle frame 7.

[0041] A crushing tooth column 30 is rotatably connected to the inner wall of one end of the bidirectional rotating pull rod 29 away from the sliding column groove plate 28. By means of periodic operation, the bidirectional rotating pull rod 29 drives the crushing tooth column 30 to operate, and the crushing tooth column 30 drives the crushing teeth 31 to run back and forth along the inner wall of the feeding plate 9 to crush the materials entering the device. A crushing tooth 31 is fixedly connected to the end face of one end of the crushing tooth column 30 away from the bidirectional rotating pull rod 29. A return spring 32 is fixedly connected to the inner wall of the feeding plate 9 on the side close to the crushing tooth 31. When the crushing tooth 31 runs to a certain position, it will collide with the return spring 32. The return spring 32 uses the reaction force generated by itself to assist in resetting the crushing tooth 31, enabling it to crush better and return to its original position. At the same time, when the crushing tooth 31 runs, it drives the auxiliary crushing tooth 33 to run, and the auxiliary crushing tooth 33 further crushes the materials crushed by the crushing tooth 31 to enable better recycling. An auxiliary crushing tooth 33 is fixedly connected to the surface of the crushing tooth 31 on the side close to the crushing tooth column 30. The number of the crushing tooth columns 30 is set to two, and the two crushing tooth columns 30 are symmetrically distributed along the inner wall of the feeding plate 9. The surface of the crushing tooth 31 is slidably connected to the inner wall of the feeding plate 9. The number of the return springs 32 is set to four. The four return springs 32 are divided into two groups, and the number of each group is two. The two groups of return springs 32 are symmetrically distributed along the inner wall of the feeding plate 9.

[0042] A periodic push column 34 is rotatably connected to the surface of the auxiliary control plate 6 on the side close to the auxiliary crushing tooth 33. When the auxiliary control plate 6 is started, it drives the periodic push column 34 to operate, and the periodic push column 34 continuously collides with the vibrating sieve plate 35, enabling the vibrating sieve plate 35 to vibrate continuously to screen the materials falling into it. The materials that cannot fall are vibrated to contact the auxiliary crushing tooth 33 for continuous crushing. A sieve plate fixing plate 36 is fixedly connected to the inner wall of the feeding plate 9 on the side close to the periodic push column 34. The vibrating sieve plate 35 is slidably connected to the inner wall of the sieve plate fixing plate 36. The number of the sieve plate fixing plates 36 is set to two, and the two sieve plate fixing plates 36 are symmetrically distributed along the inner wall of the feeding plate 9.

[0043] The grinding component 2 includes a transmission rotating plate 45. When the transmission shaft 23 runs, the transmission rotating plate 45 will be driven to run, and the transmission rotating plate 45 will drive the grinding rotating column 46 to run. The grinding rotating column 46 will grind the crushed materials entering therein so that they can be better collected. The end face of the transmission rotating plate 45 is fixedly connected to the grinding rotating column 46. The surface of the transmission shaft 23 away from the grinding rotating column 46 is fixedly connected to the push fan plate 47. The transmission shaft 23 will drive the push fan plate 47 to run, and the push fan plate 47 will guide and collect the materials, promote the grinding and collection of the materials, and the inner wall of the output tooth plate 41 is fixedly connected to the surface of the output shaft 21. There are two transmission tooth plates 42, which are symmetrically distributed on the surface of the mobile frame 7. The end face of the tooth plate vertical shaft 43 close to one end of the transmission tooth plate 42 is rotatably connected to the inner wall of the mobile frame 7. There are two grinding teeth 44, which are equidistantly distributed along the surface of the tooth plate vertical shaft 43. The inner wall of the transmission rotating plate 45 is fixedly connected to the surface of the transmission shaft 23. There are four grinding rotating columns 46, which are symmetrically distributed around the surface center of the transmission rotating plate 45. There are three pushing fan plates 47, which are symmetrically distributed around the surface center of the transmission shaft 23.

[0044] The surface transmission of the output shaft 21 away from the output tooth plate 41 is connected with an auxiliary conveyor belt 48. When the output shaft 21 is running, the auxiliary conveyor belt 48 will be driven to run, and the auxiliary conveyor belt 48 will drive the pressurizing fan column 49 to rotate along the inner wall of the cross plate 51. The internal rotation of the auxiliary conveyor belt 48 away from the output shaft 21 is connected with the pressurizing fan column 49, and the pressurizing fan column 49 will drive the pressurizing fan plate 50 to run. The pressurizing fan plate 50 will pressurize the inside of the device to prevent the dust generated when the device is running from flying out. At the same time, the dust removal water gun 10 is started to clean the dust from the device. The surface of the pressurizing fan column 49 is fixedly connected with the pressurizing fan plate 50, and the end face of the pressurizing fan column 49 away from one end of the pressurizing fan plate 50 is rotatably connected with the cross plate 51. There are two pressurizing fan columns 49, and the two pressurizing fan columns 49 are symmetrically distributed on the surface of the cross plate 51. The surface of the cross plate 51 close to the pressurizing fan plate 50 is snapped with the surface of the feed plate 9.

[0045] The collection component 3 includes a dust removal fan plate 64. When the collection pressing shaft 63 operates, it drives the connection pressing shaft 66 to operate. The connection pressing shaft 66 drives the guide plate shaft 65 to rotate along the inner wall of the dust removal fan plate 64. The inner wall of the dust removal fan plate 64 is rotatably connected to the guide plate shaft 65. The surface of the guide plate shaft 65 away from the dust removal fan plate 64 is fixedly connected to the connection pressing shaft 66. The surface of the guide plate shaft 65 away from the connection pressing shaft 66 is fixedly connected to the guide plate 67. When the guide plate shaft 65 operates, it drives the guide plate 67 to operate. The guide plate 67 further helps to collect and process the ground materials and collect them into the aggregate box 11. The number of collection rotating shafts 62 is set to six. The six collection rotating shafts 62 are divided into two groups, and the number of each group is three. Two collection rotating shafts 62 are symmetrically distributed about the center of the surface of the reciprocating slider 61. The number of guide plate shafts 65 is set to six. The six guide plate shafts 65 are divided into two groups, and the number of each group is three. The two groups of guide plate shafts 65 are symmetrically distributed about the inner center of the dust removal fan plate 64. The surface of the collection pressing shaft 63 is in contact with the surface of the connection pressing shaft 66. The number of guide plates 67 is three. The three guide plates 67 are symmetrically distributed about the surface of the guide plate shaft 65. The end face of the dust removal water gun 10 is fixedly connected to the surface of the dust removal fan plate 64.

[0046] The surface of the dust removal fan plate 64 away from the reciprocating slider 61 is fixedly connected to a wind direction box 68. The wind direction rotating shaft 69 drives the wind direction fan plate 70 to rotate along the inner wall of the wind direction box 68, so that the dust generated in the device flies out of the device and operates together with the dust removal fan plate 64 to assist the device in dust treatment. The inner wall of the wind direction box 68 is rotatably connected to the wind direction rotating shaft 69. The surface of the wind direction rotating shaft 69 close to the wind direction box 68 is fixedly connected to the wind direction fan plate 70. The inner wall of the wind direction box 68 close to the wind direction rotating shaft 69 is provided with an air guide opening 71. The number of wind direction rotating shafts 69 is two. The two wind direction rotating shafts 69 are symmetrically distributed about the surface of the wind direction box 68.

[0047] During use, after installing the device in the present invention, materials enter the device through the feeding plate 9 within the crushing component 1. At the same time, the engine 4 is started, driving the output shaft 21 to rotate. The output shaft 21 will drive the output belt 22 for transmission, and the output belt 22 will drive the transmission shaft 23 on the inner wall at the other end to rotate. When the transmission shaft 23 rotates, it will drive the periodic rotating plate 24 to rotate, and the periodic rotating plate 24 will drive the periodic rotating column 25 to perform periodic rotation. When the periodic rotating column 25 operates, it will drive the pull rod 26 on its surface to operate, and the pull rod 26 will drive the sliding column 27 to slide along the inner wall of the sliding column groove plate 28. When the sliding column 27 operates, it will drive the two-way rotating pull rod 29 on its surface to operate. Through periodic operation, the two-way rotating pull rod 29 will drive the crushing tooth column 30 to operate, and the crushing tooth column 30 will drive the crushing teeth 31 to reciprocate along the inner wall of the feeding plate 9 to crush the materials entering the device. When the crushing teeth 31 run to a certain position, they will collide with the reset spring 32. The reset spring 32, through the reaction force generated by itself, assists in resetting the crushing teeth 31, enabling them to better perform crushing and return to their original positions. At the same time, when the crushing teeth 31 operate, they will drive the auxiliary crushing teeth 33 to operate, and the auxiliary crushing teeth 33 will further crush the materials crushed by the crushing teeth 31 to enable better recycling. Meanwhile, the auxiliary control plate 6 is started, driving the periodic push column 34 to operate. The periodic push column 34 will continuously collide with the vibrating sieve plate 35, causing the vibrating sieve plate 35 to vibrate continuously to screen the materials falling into it. The materials that cannot fall will be vibrated to contact the auxiliary crushing teeth 33 and continue to be crushed.At this time, inside the grinding component 2, when the output shaft 21 operates, it will drive the output toothed plate 41 to operate. Through surface meshing, the output toothed plate 41 will drive the transmission toothed plate 42 to operate. The transmission toothed plate 42 will then drive the vertical shaft of the toothed plate 43 to rotate along the inner wall of the moving vehicle frame 7. When the vertical shaft of the toothed plate 43 operates, it will drive the grinding teeth 44 to operate, and the grinding teeth 44 will grind the crushed material so that the material can be better processed and recycled inside the collection component 3 at this time. When the control board 5 is activated, it will drive the reciprocating slider 61 to slide back and forth along the inner wall of the control board 5. At the same time, when the transmission shaft 23 operates, it will drive the transmission rotating plate 45 to operate. The transmission rotating plate 45 will then drive the grinding rotating column 46 to operate, and the grinding rotating column 46 will grind the crushed material entering it so that it can be better collected. At the same time, the transmission shaft 23 will drive the material pushing fan plate 47 to operate, and the material pushing fan plate 47 will guide and collect the material, promoting the grinding and collection of the material. At the same time, when the output shaft 21 operates, it will drive the auxiliary conveyor belt 48 to operate. The auxiliary conveyor belt 48 will drive the pressurizing fan column 49 to rotate along the inner wall of the cross plate 51. At the same time, the pressurizing fan column 49 will drive the pressurizing fan plate 50 to operate, and the pressurizing fan plate 50 will pressurize the inside of the device to prevent dust generated during the operation of the device from flying out. At the same time, the dust removal water gun 10 is activated to clean the dust of the device. The reciprocating slider 61 performs reciprocating periodic sliding operation and drives the collection rotating shaft 62 to rotate at the same time. The collection rotating shaft 62 will drive the collection pressing shaft 63 to operate, and the collection pressing shaft 63 will collect the ground material and make it enter the aggregate box 11. At the same time, when the collection pressing shaft 63 operates, it will drive the connecting pressing shaft 66 to operate. The connecting pressing shaft 66 will drive the guide plate shaft 65 to rotate along the inner wall of the dust removal fan plate 64. At the same time, when the guide plate shaft 65 operates, it will drive the guide plate 67 to operate. The guide plate 67 will further assist in the collection and processing of the ground material and collect it into the aggregate box 11. At the same time, the wind direction rotating shaft 69 drives the wind direction fan plate 70 to rotate along the inner wall of the wind direction box 68, causing the dust generated inside the device to fly out of the device and operate together with the dust removal fan plate 64 to assist the device in dust treatment.

[0048] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, according to the content of this specification, many modifications and changes can be made. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the present invention, so that those skilled in the relevant technical fields can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A recycling and reuse device for waste concrete solid waste, comprising a mobile frame (7), the bottom of the mobile frame (7) being fixedly connected to a bottom frame (8), a surface of the mobile frame (7) at one end away from the bottom frame (8) being fixedly connected to a feed plate (9), an inner wall of the feed plate (9) close to the mobile frame (7) being fixedly connected to an auxiliary control board (6), a surface of the bottom frame (8) close to the mobile frame (7) being provided with a collection box (11), two auxiliary control boards (6) being provided, and the two auxiliary control boards (6) being symmetrically distributed on the surface of the feed plate (9), characterized in that: Also includes: A crushing component (1), the crushing component (1) comprising an output shaft (21), the surface of the output shaft (21) being drivingly connected to an output belt (22), and the inner wall of the output belt (22) on a side away from the output shaft (21) being rotatably connected to a transmission shaft (23); A grinding component (2), the grinding component (2) comprising an output tooth plate (41), the inner wall of the output tooth plate (41) being fixedly connected to the surface of the output shaft (21), the surface of the output tooth plate (41) being meshingly connected to a transmission tooth plate (42), the inner wall of the transmission tooth plate (42) being fixedly connected to a tooth plate vertical shaft (43), and the surface of the tooth plate vertical shaft (43) close to the transmission tooth plate (42) being fixedly connected to grinding teeth (44); A collecting component (3), the collecting component (3) comprising a reciprocating slider (61), the inner wall of the reciprocating slider (61) being rotatably connected to a collecting shaft (62), the surface of the collecting shaft (62) being fixedly connected to a collecting pressing shaft (63) on a side away from the reciprocating slider (61); a dust removal water gun (10) being provided on a surface of the movable frame (7) close to the feed plate (9), a control panel (5) being fixedly connected to a surface of the bottom frame (8) close to the dust removal water gun (10), the reciprocating slider (61) being slidably connected to the inner wall of the control panel (5); The crushing component (1) also includes a periodic rotating plate (24), the end surface of which is fixedly connected to a periodic rotating column (25), the surface of which is rotatably connected to a pull rod (26), the inner wall of the pull rod (26) at one end away from the periodic rotating column (25) is rotatably connected to a sliding column (27), the surface of the sliding column (27) at one side away from the pull rod (26) is slidably connected to a sliding column slot plate (28), and the sliding column (27) is close to the sliding column slot plate (28). The surface of the side is rotatably connected with a bidirectional rotatable pull rod (29); the surface of the transmission shaft (23) close to the output belt (22) is rotatably connected to the inner wall of the moving frame (7); the end surface of the transmission shaft (23) away from the output belt (22) is fixedly connected to the end surface of the periodic rotating plate (24) away from the periodic rotating column (25); the surface of the transmission shaft (23) passes through the inner wall of the moving frame (7) to the inner wall of the output belt (22) and is rotatably connected to the inner wall of the moving frame (7); The inner wall of the bidirectional rotating pull rod (29) at one end away from the sliding column groove plate (28) is rotatably connected to a crushing tooth column (30), and the end surface of the crushing tooth column (30) at one end away from the bidirectional rotating pull rod (29) is fixedly connected to a crushing tooth (31). The inner wall of the feed plate (9) on the side close to the crushing tooth (31) is fixedly connected to a return spring (32), and the surface of the crushing tooth (31) on the side close to the crushing tooth column (30) is fixedly connected to an auxiliary crushing tooth (33). There are two crushing tooth columns (30), and the two crushing tooth columns (30) are symmetrically distributed on the inner wall of the feed plate (9). The surface of the crushing tooth (31) is slidably connected to the inner wall of the feed plate (9). There are four return springs (32), and the four return springs (32) are divided into two groups, and the number of each group is two. The two groups of return springs (32) are symmetrically distributed on the inner wall of the feed plate (9); The surface of the auxiliary control plate (6) on the side close to the auxiliary crushing teeth (33) is rotatably connected to a periodic push column (34), the inner wall of the feed plate (9) on the side close to the periodic push column (34) is fixedly connected to a screen plate fixing plate (36), the inner wall of the screen plate fixing plate (36) is slidably connected to a vibrating screen plate (35), and the number of the screen plate fixing plates (36) is set to two, and the two screen plate fixing plates (36) are symmetrically distributed on the inner wall of the feed plate (9).

2. The device for recycling and reusing waste concrete solid waste according to claim 1, characterized in that: A telescopic control box plate (12) is provided on the inner wall of the movable frame (7) on the side close to the material collecting box (11), and an engine (4) is fixedly connected to the surface of the bottom frame (8) on the side close to the material feeding plate (9).

3. The device for recycling and reusing waste concrete solid waste according to claim 2 is characterized in that: The grinding component (2) comprises a transmission rotating plate (45), the end face of which is fixedly connected to a grinding rotating column (46), the surface of the transmission shaft (23) on the side away from the grinding rotating column (46) is fixedly connected to a material pushing fan plate (47), two transmission tooth plates (42) are provided, the two transmission tooth plates (42) are symmetrically distributed on the surface of the moving frame (7), the end face of the tooth plate vertical shaft (43) close to one end of the transmission tooth plate (42) is rotatably connected to the inner wall of the moving frame (7), The number of the grinding teeth (44) is two, and the two grinding teeth (44) are equidistantly distributed along the surface of the tooth plate vertical shaft (43); the inner wall of the transmission rotating plate (45) is fixedly connected to the surface of the transmission shaft (23); the number of the grinding rotating columns (46) is four, and the four grinding rotating columns (46) are symmetrically distributed around the surface center of the transmission rotating plate (45); the number of the pushing fan plates (47) is three, and the three pushing fan plates (47) are symmetrically distributed around the surface center of the transmission shaft (23).

4. The device for recycling and reusing waste concrete solid waste according to claim 3 is characterized by: The surface of the output shaft (21) away from the output tooth plate (41) is transmission-connected to an auxiliary conveyor belt (48), the internal part of the auxiliary conveyor belt (48) away from the output shaft (21) is rotationally connected to a pressurizing fan column (49), the surface of the pressurizing fan column (49) is fixedly connected to a pressurizing fan plate (50), the end surface of the pressurizing fan column (49) away from the pressurizing fan plate (50) is rotationally connected to a transverse plate (51), the number of the pressurizing fan columns (49) is two, the two pressurizing fan columns (49) are symmetrically distributed on the surface of the transverse plate (51), and the surface of the transverse plate (51) close to the pressurizing fan plate (50) is snap-fitted to the surface of the feed plate (9).

5. The device for recycling and reusing waste concrete solid waste according to claim 4, characterized in that: The collecting component (3) comprises a dust removal fan plate (64), the inner wall of the dust removal fan plate (64) is rotatably connected to a guide plate shaft (65), the surface of the guide plate shaft (65) away from the dust removal fan plate (64) is fixedly connected to a connecting pressure shaft (66), the surface of the guide plate shaft (65) away from the connecting pressure shaft (66) is fixedly connected to a guide plate (67), the number of the collecting rotating shafts (62) is six, the six collecting rotating shafts (62) are divided into two groups, and the number of each group is three, and the two collecting rotating shafts (62) are connected to a reciprocating slider (61) The guide plate shafts (65) are symmetrically distributed about the center of the surface of the guide plate shaft (65); the number of the guide plate shafts (65) is six; the six guide plate shafts (65) are divided into two groups, and the number of each group is three; the two groups of guide plate shafts (65) are symmetrically distributed about the inner center of the dust removal fan plate (64); the surface of the collecting pressure shaft (63) is in contact with the surface of the connecting pressure shaft (66); the number of the guide plates (67) is three; the three guide plates (67) are symmetrically distributed about the center of the surface of the guide plate shaft (65); and the end face of the dust removal water gun (10) is fixedly connected to the surface of the dust removal fan plate (64).

6. The device for recycling and reusing waste concrete solid waste according to claim 5, characterized in that: The surface of the dust removal fan plate (64) away from the reciprocating slider (61) is fixedly connected to a wind direction box (68), the inner wall of the wind direction box (68) is rotatably connected to a wind direction shaft (69), the surface of the wind direction shaft (69) close to the wind direction box (68) is fixedly connected to a wind direction fan plate (70), the inner wall of the wind direction box (68) close to the wind direction shaft (69) is provided with an air guide port (71), the number of the wind direction shafts (69) is two, and the two wind direction shafts (69) are symmetrically distributed on the surface of the wind direction box (68).

Citation Information

Patent Citations

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