A building garbage wind power sorting and recycling device for building construction
The wind-powered sorting and recycling device for construction waste, which uses wind and water power for cleaning, solves the problem of material adhering to the guide plate, achieves efficient separation and cleaning, and improves the recycling efficiency of construction waste and the cleanliness of recycled aggregates.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-26
- Publication Date
- 2026-03-24
AI Technical Summary
In existing construction waste recycling devices, materials tend to stick to the surface of the guide plate, which reduces the material's sliding effect and can even cause accumulation and blockage.
A wind-powered sorting and recycling device for construction waste was designed. The device uses a drive component to control the processing mechanism on the inclined guide plate, which includes a light material screening component and a washing component. Through wind and water cleaning, it separates and removes adhering materials, thereby improving the material sliding efficiency.
It effectively separates wood chips, plastics, and paper, improves the efficiency of construction waste recycling, ensures the cleanliness and quality of recycled aggregates, reduces the risk of clogging, and improves cleaning efficiency.
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Figure CN121402315B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of building construction, specifically to a wind-powered sorting and recycling device for construction waste. Background Technology
[0002] During the demolition and renovation of buildings, a large amount of concrete construction waste is generated. In order to avoid unnecessary waste of resources and promote the rational and in-depth utilization of construction waste, crushing machinery is usually used to crush the waste into granules, which can then be used as filling material in other locations during construction.
[0003] An environmentally friendly civil engineering building material recycling device described in the prior art includes a conveyor belt fixedly connected to a base, a crushing component fixedly connected to the left end of the conveyor belt and driven by the crushing component, a guide plate fixedly connected to the left end of the conveyor belt with its left end located below the crushing component, a guide plate fixedly connected to the right end of a waste screening component fixedly connected to the lower end of the waste screening component fixedly connected to the right end of the conveyor belt, a crushing component and a waste screening component driven by the crushing component, and a waste screening component and a metal separation component driven by the waste screening component.
[0004] While the aforementioned technologies can remove metal from construction waste and transport building materials, thereby improving the efficiency of construction waste recycling and effectively increasing resource utilization, the surface of the guide plate may adhere to materials during use, reducing the material's sliding effect and even leading to material accumulation and blockage. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide a wind-powered sorting and recycling device for construction waste, so as to solve the technical problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A construction waste wind-powered sorting and recycling device includes a recycling bin, a crushing bin on the top and a water storage tank, an inclined guide plate located below the crushing bin, a processing mechanism installed on the inclined guide plate, and a conveyor located at the discharge port of the inclined guide plate. The crushing bin is equipped with crushing equipment for crushing construction waste, and the inclined guide plate is used to guide the crushed construction waste onto the conveyor.
[0008] The processing mechanism consists of a drive assembly, a light material screening assembly, and a rinsing assembly. The rinsing assembly and the light material screening assembly are respectively installed on the drive assembly. The rinsing assembly is used to remove the material adhering to the inclined guide plate. After the rinsing assembly is working, the light material screening assembly is used to blow clean and dry the inclined guide plate. In addition, the light material screening assembly is used to separate wood chips, plastics, and paper when the crushing equipment crushes construction waste.
[0009] Specifically, the driving assembly includes a drive motor, which is fixed to a mounting plate with screws. The mounting plate is fixedly connected to the outer wall of the recycling bin. A drive shaft is connected to the output flange of the drive motor. The drive shaft extends through the mounting plate and the wall of the recycling bin into the interior. An inclined first lead screw and a guide rod are respectively provided on both sides of the inclined guide plate. A parallel rotating shaft and a second lead screw are respectively provided above the drive shaft and the first lead screw. A sprocket is fixedly sleeved on both the drive shaft and the rotating shaft. The two sprockets are connected by a transmission chain.
[0010] Specifically, in this technical solution, the sidewalls of the inclined guide plate are welded with baffles at the discharge port. The two ends of the first lead screw are respectively connected to the drive shaft and the baffle. The two ends of the guide rod are respectively fixedly connected to the baffle and the wall of the recycling box. The rotating shaft is connected to the second lead screw. The end of the second lead screw is rotatably connected to the baffle. The end of the rotating shaft is connected to the inner wall of the recycling box through a support plate.
[0011] Specifically, the light material screening component includes a movable sleeve, which is sleeved on a second lead screw. A fixed plate is welded to the outer wall of the movable sleeve. A fan is embedded in the end of the fixed plate away from the movable sleeve. A first stop and a second stop are welded to both sides of the fixed plate, respectively. The end face of the first stop matches the inner wall of the recycling box, and the end face of the second stop matches the side wall and top wall of the inclined guide plate.
[0012] Specifically, in this technical solution, both sides of the end faces of the first and second blocks are embedded with ball bearings.
[0013] Specifically, the rinsing assembly includes two movable seats, which are respectively sleeved on the first lead screw and the guide rod. A vertical rod is welded to the top of each of the two movable seats. A parallel horizontal rod is provided above the inclined guide plate. Both ends of the horizontal rod are welded to the top of the side walls of the two vertical rods. A water storage cavity is opened inside the horizontal rod. Multiple nozzles communicating with the water storage cavity are evenly provided on the lower surface of the horizontal rod. A telescopic hose communicating with the water storage cavity is provided at one end of the upper surface of the horizontal rod.
[0014] Specifically, in this technical solution, a through hole is provided at the top of one of the vertical rods, and the second lead rod passes through the through hole, wherein the diameter of the through hole is larger than the diameter of the second lead rod.
[0015] Specifically, in this technical solution, a water pump is installed on the inner bottom wall of the water storage tank, and the output port of the water pump is connected to an L-shaped water supply pipe. One end of the L-shaped water supply pipe passes through the bottom wall of the water storage tank and is connected to a telescopic flexible hose.
[0016] Specifically, in this technical solution, the bottom of the crushing box is connected to a feeding pipe, the wall of the recycling box located between the feeding pipe and the inclined guide plate is provided with a through groove, a collection box is provided outside the recycling box, and a collection pipe is provided on the top of the collection box, the collection pipe being connected to the through groove.
[0017] Specifically, in this technical solution, the wall of the recycling bin has a discharge port located at the conveyor, and the inner wall of the recycling bin has a triangular inclined plate welded above the conveyor.
[0018] In summary, the present invention has the following beneficial effects: After the construction waste is crushed by the crushing roller, the waste falls in front of the inclined guide plate through the feeding pipe. The drive component controls the horizontal bar and the movable sleeve to move. The movable sleeve rotates with the second screw. After the first stop block abuts against the inner wall of the recycling box, it moves with the rotation of the second screw, so that the fixed plate becomes vertical and moves to the feeding pipe. The wood chips, plastics and paper in the falling waste are separated and blown into the channel and collection pipe. Thus, through effective separation and cleaning, the recycling efficiency of construction waste is improved. After removing light materials, the cleanliness of the recycled aggregate is higher and the quality is better.
[0019] When there is no need to remove light material waste, the fan can also accelerate the sliding of waste in the inclined guide plate in the initial position. By blowing air towards the inclined guide plate through the operation of the fan, the risk of blockage and accumulation can be reduced.
[0020] It can also use a water pump, telescopic hose and nozzle to rinse the inclined guide plate, and move it under the action of the drive component to ensure thorough rinsing. At this time, the fan can dry the inclined guide plate after rinsing, which can speed up the cleaning efficiency. Attached Figure Description
[0021] Figure 1 This is an isometric schematic diagram of the device of the present invention;
[0022] Figure 2 This is a rear-view isometric schematic diagram of the device of the present invention;
[0023] Figure 3 This is a schematic diagram of the internal structure of the recycling bin of the present invention;
[0024] Figure 4 For the present invention Figure 3 Front view diagram;
[0025] Figure 5 This is an isometric schematic diagram of the processing mechanism of the present invention;
[0026] Figure 6 This is a rear-view isometric schematic diagram of the processing mechanism of the present invention;
[0027] Figure 7 This is a schematic diagram of the driving component of the present invention;
[0028] Figure 8 This is a schematic diagram of the light material screening component of the present invention;
[0029] Figure 9 This is a schematic diagram of the motion structure of the processing mechanism of the present invention.
[0030] Figure Descriptions: 1. Recycling bin; 101. Crushing bin; 1011. Feeding pipe; 1012. Crushing roller; 102. Water storage tank; 1021. Water pump; 1022. L-shaped water supply pipe; 103. Through groove; 104. Collection bin; 1041. Collection pipe; 105. Discharge port; 106. Inclined plate; 2. Inclined guide plate; 3. Conveyor; 4. Processing mechanism; 5. Drive assembly; 501. Drive motor; 5011. Mounting plate; 502. Drive shaft; 5021. First lead screw; 50 3. Baffle; 504. Guide rod; 505. Rotating shaft; 5051. Second lead screw; 5052. Support plate; 507. Sprocket; 5071. Transmission chain; 6. Flushing assembly; 601. Moving seat; 602. Vertical rod; 6021. Perforation; 603. Horizontal rod; 6031. Nozzle; 6032. Telescopic hose; 7. Light material screening assembly; 701. Movable sleeve; 702. Fixed plate; 7021. Fan; 703. First stop block; 704. Second stop block; 705. Ball bearing. Detailed Implementation
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0032] The embodiments of the present invention will now be described.
[0033] In this embodiment, a controller is installed on the side of the recycling bin 1 closest to the human body to control all the internal electrical components, and the tilting guide plate 2 is fixed inside the recycling bin 1 by mounting bracket screws.
[0034] Please see Figures 1-9As shown, a construction waste wind-powered sorting and recycling device includes a recycling bin 1, a crushing bin 101 at the top, a water storage tank 102, an inclined guide plate 2 located below the crushing bin 101, a processing mechanism 4 mounted on the inclined guide plate 2, and a conveyor 3 located at the discharge port of the inclined guide plate 2. The crushing bin 101 is equipped with crushing rollers 1012 for crushing the construction waste, and the inclined guide plate 2 guides the crushed construction waste onto the conveyor 3.
[0035] The bottom of the crushing box 101 is connected to the feeding pipe 1011. The wall of the recycling box 1 between the feeding pipe 1011 and the inclined guide plate 2 is provided with a through groove 103. The outside of the recycling box 1 is provided with a collection box 104. The top of the collection box 104 is provided with a connecting collection pipe 1041. The collection pipe 1041 is connected to the through groove 103. The wall of the recycling box 1 is provided with a discharge port 105 at the conveyor 3. The inner wall of the recycling box 1 is welded with an inclined plate 106 with a triangular cross section above the conveyor 3.
[0036] The processing mechanism 4 consists of a drive assembly 5, a light material screening assembly 7, and a washing assembly 6. The washing assembly 6 and the light material screening assembly 7 are respectively installed on the drive assembly 5. The washing assembly 6 is used to remove the material adhering to the inclined guide plate 2. After the washing assembly 6 is working, the light material screening assembly 7 is used to blow clean and dry the inclined guide plate 2. In addition, the light material screening assembly 7 is used to separate wood chips, plastics, and paper when the crushing roller 1012 crushes construction waste. It should be noted that the crushing roller 1012 in the crushing box 101 adopts existing technology.
[0037] When recycling and crushing construction waste, the staff connects the device to an external power source and starts it through a controller. The construction waste is poured into the crushing box 101, and the crushing roller 1012 rotates to crush the falling construction waste. The crushed waste falls through the feeding pipe 1011 onto the inclined guide plate 2, and then slides to the conveyor 3 for conveying. The inclined plate 106 ensures that the crushed construction waste falls onto the conveyor 3, and the inclined guide plate 2 prevents the material from directly impacting the conveyor belt of the conveyor 3, reducing wear on the conveyor belt. At this time, in order to separate the light material waste, the drive component 5 controls the light material screening component 7 to rotate and move to the feeding pipe 1011. At this time, the light material screening component 7 blows the wood chips, plastics and paper in the falling construction waste into the channel 103, and then into the collection box 104 along the collection pipe 1041 for collection. Thus, through effective separation and cleaning, the recycling efficiency of construction waste is improved. After removing the light materials, the cleanliness of the recycled aggregate is higher and the quality is better.
[0038] It should be noted that when crushing construction waste that does not contain light materials or does not require the separation of light materials, it is only necessary to start the light material screening component 7 in the initial position and control the rotation speed. At this time, a gentle breeze will blow towards the inclined guide plate 2, which can effectively reduce the risk of blockage and accumulation.
[0039] Please see Figures 3-7 As shown, the drive assembly 5 includes a drive motor 501, which is fixed to the mounting plate 5011 by screws. The mounting plate 5011 is fixedly connected to the outer wall of the recycling bin 1. The output end flange of the drive motor 501 is connected to a drive shaft 502. The drive shaft 502 extends through the mounting plate 5011 and the bin wall of the recycling bin 1 to the interior. Inclined first lead screw 5021 and guide rod 504 are respectively provided on both sides of the inclined guide plate 2. Parallel rotating shaft 505 and second lead screw 5051 are respectively provided above the drive shaft 502 and the first lead screw 5021. Sprockets 507 are fixedly sleeved on both the drive shaft 502 and the rotating shaft 505. The two sprockets 507 are connected by a drive chain 5071.
[0040] The side walls of the inclined guide plate 2 are all welded with baffles 503 at the discharge port. The two ends of the first lead screw 5021 are connected to the drive shaft 502 and the baffle 503 respectively. The two ends of the guide rod 504 are fixedly connected to the baffle 503 and the wall of the recycling box 1 respectively. The rotating shaft 505 is connected to the second lead screw 5051. The end of the second lead screw 5051 is rotatably connected to the baffle 503. The end of the rotating shaft 505 is connected to the inner wall of the recycling box 1 through the support plate 5052.
[0041] The drive motor 501 in the drive assembly 5 is working. The output end of the drive motor 501 drives the transmission shaft 502 to rotate. The transmission shaft 502 drives the parallel rotating shaft 505 above to rotate through the sprocket 507 and the transmission chain 5071. This causes the first lead screw 5021 and the second lead screw 5051 to rotate simultaneously. The first lead screw 5021 controls the movement of the installed rinsing assembly 6, and the second lead screw 5051 controls the movement of the installed light material screening assembly 7. The movement can be controlled as needed, such as for light material screening, air drying, or auxiliary material pushing.
[0042] Please see Figures 7-9As shown, the light material screening assembly 7 includes a movable sleeve 701, which is fitted onto the second lead screw 5051. A fixed plate 702 is welded to the outer wall of the movable sleeve 701. A fan 7021 is embedded in the end of the fixed plate 702 away from the movable sleeve 701. A first stop 703 and a second stop 704 are welded to both sides of the fixed plate 702, respectively. The end face of the first stop 703 matches the inner wall of the recycling box 1, and the end face of the second stop 704 matches the side wall and top wall of the inclined guide plate 2. Ball bearings 705 are embedded on both sides of the end faces of the first stop 703 and the second stop 704. It should be noted that the initial position of the light material screening assembly 7 is as follows: Figure 5 As shown, the location for removing lightweight waste is as follows: Figure 9 As shown.
[0043] When light material screening is required, the rotation of the second lead screw 5051 will first drive the sleeved movable sleeve 701 to rotate. At this time, the movable sleeve 701 will drive the fixed plate 702 to deflect. The fixed plate 702 will drive the fan 7021, the first stop 703 and the second stop 704 to move until the fixed plate 702 changes from the original inclination to vertical. Then, the ball 705 embedded in the end face of the first stop 703 will contact the inner wall of the recycling box 1 to restrict the movement. At this time, the fixed plate 702 will move with the rotation of the second lead screw 5051, driving the fan 7021 to move to the feed pipe 1011.
[0044] It should be noted that the second stop 704 is used to cooperate with the inclined guide plate 2 to restrict the rotation of the fixed plate 702, while the ball bearing 705 can ensure smooth movement and reduce friction with the inner wall of the recycling box 1 and the top of the side wall of the inclined guide plate 2, thereby enabling the separation of light materials, rinsing and drying, and auxiliary pushing of materials as needed.
[0045] Please see Figure 5 , Figure 6 , Figure 7 and Figure 8As shown, the rinsing assembly 6 includes two movable seats 601, which are respectively sleeved on the first lead screw 5021 and the guide rod 504. Vertical rods 602 are welded to the top of each of the two movable seats 601. A parallel horizontal rod 603 is provided above the inclined guide plate 2. Both ends of the horizontal rod 603 are welded to the top of the side walls of the two vertical rods 602. A water storage cavity is formed inside the horizontal rod 603. Multiple nozzles 6031 communicating with the water storage cavity are evenly distributed on the lower surface of the horizontal rod 603. One end of the upper surface of 03 is provided with a telescopic hose 6032 that communicates with the water storage chamber. A vertical rod 602 has a through hole 6021 at its top. A second lead screw 5051 passes through the through hole 6021. The diameter of the through hole 6021 is larger than the diameter of the second lead screw 5051. A water pump 1021 is installed on the inner bottom wall of the water storage tank 102. The output port of the water pump 1021 is connected to an L-shaped water supply pipe 1022. One end of the L-shaped water supply pipe 1022 passes through the bottom wall of the water storage tank 102 and is connected to the telescopic hose 6032.
[0046] When the inclined guide plate 2 needs to be cleaned, the rotation of the first lead screw 5021 controls the movement of the installed movable seat 601, which in turn moves the crossbar 603 and another movable seat 601. The other movable seat 601 slides along the guide rod 504. When the crossbar 603 moves to the high position above the inclined guide plate 2, the water pump 1021 starts, sending water from the water storage tank 102 into the water storage chamber in the crossbar 603 through the L-shaped water supply pipe 1022 and the telescopic hose 6032, and spraying it onto the inclined guide plate 2 from multiple nozzles 6031. At this time, the first lead screw 5021 and the second lead screw 5051 work in opposite directions, the crossbar 603 resets, and the fixed plate 702 also resets. After rinsing stops, the fan 7021 starts working. Through the rotation of the first lead screw 5021 and the second lead screw 5051, the fan 7021 can dry the wet inclined guide plate 2, thereby ensuring the thoroughness of rinsing.
[0047] The working principle of this invention is as follows:
[0048] When recycling and crushing construction waste, the staff connects the device to an external power supply and starts it through the controller. The construction waste is poured into the crushing box 101, and the crushing roller 1012 rotates to crush the falling construction waste. The crushed waste falls onto the inclined guide plate 2 through the feeding pipe 1011 and then slides to the conveyor 3 for transportation. At this time, in order to separate the lightweight waste, the drive motor 501 in the drive assembly 5 works. The output end of the drive motor 501 drives the transmission shaft 502 to rotate. The transmission shaft 502 drives the parallel rotating shaft 505 above to rotate through the sprocket 507 and the transmission chain 5071, thereby causing the first lead screw 5021 and the second lead screw 5051 to rotate simultaneously.
[0049] Rotation of the first lead screw 5021 controls the movement of the installed movable seat 601, which in turn moves the crossbar 603 and another movable seat 601. The other movable seat 601 slides along the guide rod 504, and the crossbar 603 moves to a position above the high position of the inclined guide plate 2. Simultaneously, rotation of the second lead screw 5051 first causes the sleeved movable sleeve 701 to rotate. At this time, the movable sleeve 701 causes the fixed plate 702 to deflect. The fixed plate 702 then drives the fan 7021, the first stop block 703, and the second stop block 704 to move. After the fixed plate 702 changes from its original inclination to vertical, the ball bearing 705 embedded in the end face of the first stop 703 will contact the inner wall of the recycling bin 1 to restrict its movement. At this time, the fixed plate 702 will move with the rotation of the second lead screw 5051, driving the fan 7021 to move to the discharge pipe 1011. The drive motor 501 stops working, and the fan 7021 starts to blow the wood chips, plastics and paper in the falling construction waste into the channel 103, and into the collection bin 104 for collection along the collection pipe 1041.
[0050] When cleaning the inclined guide plate 2, the first lead screw 5021 and the second lead screw 5051 control the crossbar 603 and the fixed plate 702 to repeat the above movements, respectively. Then the water pump 1021 starts, and sends the water in the water storage tank 102 into the water storage chamber in the crossbar 603 through the L-shaped water supply pipe 1022 and the telescopic hose 6032, and sprays it onto the inclined guide plate 2 from multiple nozzles 6031. At this time, the first lead screw 5021 and the second lead screw 5051 work in opposite directions, the crossbar 603 resets, and the fixed plate 702 also resets. After rinsing stops, the fan 7021 works. Through the rotation of the first lead screw 5021 and the second lead screw 5051, the fan 7021 can dry the wet inclined guide plate 2.
[0051] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the invention and are not intended to limit it. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the invention, but such modifications, substitutions, and variations are protected by patent law as long as they are within the scope of the claims of the present invention.
Claims
1. A construction waste wind-powered sorting and recycling device, comprising a recycling bin (1), a crushing bin (101) on the inner top and a water storage tank (102), an inclined guide plate (2) located below the crushing bin (101), a processing mechanism (4) disposed on the inclined guide plate (2), and a conveyor (3) located at the discharge port of the inclined guide plate (2), characterized in that, The bottom of the crushing box (101) is connected to the feeding pipe (1011). The wall of the recycling box (1) between the feeding pipe (1011) and the inclined guide plate (2) is provided with a through groove (103). The crushing box (101) is equipped with a crushing roller (1012) for crushing construction waste. The inclined guide plate (2) is used to guide the crushed construction waste onto the conveyor (3). The processing mechanism (4) consists of a drive assembly (5), a light material screening assembly (7), and a rinsing assembly (6). The rinsing assembly (6) and the light material screening assembly (7) are respectively installed on the drive assembly (5). The rinsing assembly (6) is used to remove the adhering material on the inclined guide plate (2). After the rinsing assembly (6) is working, the light material screening assembly (7) is used to blow clean and air dry the inclined guide plate (2). The light material screening assembly (7) is used to separate wood chips, plastics and paper when the crushing roller (1012) crushes construction waste. The drive assembly (5) includes a drive motor (501), which is fixed to the mounting plate (5011) by screws. The mounting plate (5011) is fixedly connected to the outer wall of the recycling bin (1). The output end flange of the drive motor (501) is connected to a drive shaft (502). The drive shaft (502) extends through the mounting plate (5011) and the wall of the recycling bin (1) to the interior. An inclined first lead screw (5021) and a guide rod (504) are respectively provided on both sides of the inclined guide plate (2). A parallel rotating shaft (505) and a second lead screw (5051) are respectively provided above the drive shaft (502) and the first lead screw (5021). A sprocket (507) is fixedly sleeved on both the drive shaft (502) and the rotating shaft (505). The two sprockets (507) are connected by a drive chain (5071). The light material screening assembly (7) includes a movable sleeve (701), which is sleeved on the second lead screw (5051). A fixing plate (702) is welded to the outer wall of the movable sleeve (701). A fan (7021) is embedded in one end of the fixing plate (702) away from the movable sleeve (701). A first stop (703) and a second stop (704) are welded to both sides of the fixing plate (702). The end face of the first stop (703) matches the inner wall of the recycling box (1), and the end face of the second stop (704) matches the side wall and top wall of the inclined guide plate (2).
2. The construction waste wind-powered sorting and recycling device for construction as described in claim 1, characterized in that, The sidewalls of the inclined guide plate (2) are all welded with baffles (503) at the discharge port. The two ends of the first lead screw (5021) are connected to the drive shaft (502) and the baffle (503) respectively. The two ends of the guide rod (504) are fixedly connected to the baffle (503) and the wall of the recycling box (1) respectively. The rotating shaft (505) is connected to the second lead screw (5051). The end of the second lead screw (5051) is rotatably connected to the baffle (503). The end of the rotating shaft (505) is connected to the inner wall of the recycling box (1) through the support plate (5052).
3. The construction waste wind-powered sorting and recycling device for construction as described in claim 1, characterized in that, Both ends of the first stop (703) and the second stop (704) are inlaid with ball bearings (705).
4. A construction waste wind-powered sorting and recycling device for construction work according to claim 1, characterized in that, The rinsing assembly (6) includes two movable seats (601), which are respectively sleeved on the first lead screw (5021) and the guide rod (504). The top of each of the two movable seats (601) is welded with a vertical rod (602). A parallel horizontal rod (603) is provided above the inclined guide plate (2). Both ends of the horizontal rod (603) are welded to the top of the side wall of the two vertical rods (602). A water storage cavity is provided inside the horizontal rod (603). A plurality of nozzles (6031) communicating with the water storage cavity are evenly provided on the lower surface of the horizontal rod (603). A telescopic hose (6032) communicating with the water storage cavity is provided at one end of the upper surface of the horizontal rod (603).
5. A construction waste wind-powered sorting and recycling device for construction work according to claim 4, characterized in that, A through hole (6021) is provided at the top of one of the vertical rods (602), through which the second lead screw (5051) passes. The diameter of the through hole (6021) is larger than the diameter of the second lead screw (5051).
6. A construction waste wind-powered sorting and recycling device for construction work according to claim 4, characterized in that, A water pump (1021) is installed on the inner bottom wall of the water storage tank (102). The output port of the water pump (1021) is connected to an L-shaped water supply pipe (1022). One end of the L-shaped water supply pipe (1022) passes through the bottom wall of the water storage tank (102) and is connected to a telescopic hose (6032).
7. A construction waste wind-powered sorting and recycling device for construction work according to claim 1, characterized in that, The recycling bin (1) is provided with a collection box (104) on the outside. The top of the collection box (104) is provided with a collection pipe (1041) that is connected to the through groove (103).
8. A construction waste wind-powered sorting and recycling device for construction work according to claim 1, characterized in that, The wall of the recycling bin (1) is provided with a discharge port (105) at the conveyor (3), and the inner wall of the recycling bin (1) is welded with a triangular inclined plate (106) above the conveyor (3).
Citation Information
Patent Citations
Small-sized multifunctional air-and-screen cleaner
CN107855281A
Building waste recycled aggregate light substance removing and collecting device
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