Intelligent beam yard management platform production intelligent system

By combining a smart beam yard management platform with dust monitoring and a rotary lifting device, the problem of the inability to adjust the water output and range of the dust suppression equipment in the precast beam yard in real time has been solved, achieving efficient dust suppression and water conservation.

CN116659580BActive Publication Date: 2026-01-06CCCC SECOND PUBLIC BUREAU NO 7 ENG CO LTD
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Patent Information

Application Number
CN202310634427.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-31
Publication Date
2026-01-06
Estimated Expiration
2043-05-31

AI Technical Summary

Technical Problem

The existing dust suppression equipment in precast beam yards cannot adjust the water output and spraying interval in real time according to temperature and humidity, and the dust suppression range is limited, resulting in low dust suppression efficiency.

Method used

The intelligent beam yard management platform is adopted, combined with dust monitors, noise monitors, BIM platform and GPS/4G network, to monitor and calculate the water output required for spraying in real time, and expand the dust suppression range through visual positioning module and rotating lifting device.

Benefits of technology

It enables real-time adjustment of spray volume based on temperature and humidity, expanding the dust suppression range, improving dust suppression efficiency, and reducing water waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the field of smart beam yard technology, specifically a smart beam yard management platform production intelligent system, including a visual positioning module, a production progress control module, a construction environment monitoring module, a BIM platform, and a smart beam yard platform. The visual positioning module includes a camera, and the construction environment monitoring module includes a noise monitor and a dust monitor, controlling dust suppression equipment to spray water at a specified output for dust reduction. In this smart beam yard management platform production intelligent system, the dust monitor monitors the construction environment of the precast beam yard. When dust or PM2.5 levels exceed the standard, the dust monitor transmits the monitored data to the BIM platform and the smart beam yard platform via a GPS / 4G network transmission module for data exchange. The monitored data is then combined with the day's temperature and humidity to calculate the required water output for spraying, reducing water waste.
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Description

Technical Field

[0001] This invention relates to the field of intelligent beam yard technology, and in particular to an intelligent production system for a management platform. Background Technology

[0002] In recent years, the Internet of Things (IoT) technology has been unleashing a digital revolution in the physical environment. More and more IoT smart devices are being applied to construction projects. The digitization, online operation, and intelligentization of traditional equipment such as surveillance cameras, access control gates, intelligent tensioning and grouting equipment, and RFID are inevitable trends. The resulting big data makes traditional processing methods ineffective. Furthermore, the construction process in precast beam yards generates a large amount of dust, requiring regular cleaning and timed dust suppression. Currently, dust suppression in precast beam yards is typically carried out on a daily, timed, and quantitative basis, making it impossible to control the water output and spraying intervals of the dust suppression equipment based on the day's temperature and humidity. Moreover, the existing dust suppression equipment has a limited dust suppression range, reducing efficiency. Therefore, a management platform-based intelligent production system is designed. Summary of the Invention

[0003] To address the technical problems of existing precast beam yards where dust suppression is typically carried out on a daily, timed, and quantitative basis, making it impossible to control the water output and spraying intervals of the dust suppression equipment based on the day's temperature and humidity, and where the existing dust suppression equipment has a small dust suppression range, thus reducing dust suppression efficiency, this invention proposes a smart beam yard management platform for intelligent production system.

[0004] This invention proposes an intelligent beam yard management platform production intelligent system, including a visual positioning module, a production progress control module, a construction environment monitoring module, a BIM platform, and an intelligent beam yard platform. The visual positioning module includes a camera. The production progress control module includes video surveillance installed in the beam yard construction area. It uses AI to identify and analyze workers' rebar tying, formwork installation, and concrete pouring processes in real time. By identifying the percentage of progress completed in each process, it notifies the next process to prepare. The construction environment monitoring module includes a noise monitor and a dust monitor, and controls dust suppression equipment to spray dust at a specified water output.

[0005] The dust suppression equipment is used to spray water to suppress dust in the precast beam yard, thereby reducing dust pollution and ensuring air quality. The dust suppression equipment includes a dust suppression tower, the inner wall of which has a lifting chamber for installing a rotary lifting device, and the top of the rotary lifting device is equipped with a spray device for suppressing dust in the precast beam yard.

[0006] Preferably, the noise monitor and the dust monitor exchange data with the BIM platform and the smart beam yard platform through a GPS / 4G network transmission module. When dust or PM2.5 exceeds the standard, the exchanged data is combined with the temperature and humidity of the day to calculate the required water output for spraying.

[0007] The above technical solution enables the monitoring of the construction environment of the precast beam yard using a dust monitoring instrument. When dust or PM2.5 exceed the standard, the dust monitoring instrument transmits the monitored data to the BIM platform and the smart beam yard platform via a GPS / 4G network transmission module for data exchange. The monitored data is then combined with the temperature and humidity of the day to calculate the required water output for spraying.

[0008] Preferably, the rotary lifting device includes a drive port formed in the bottom wall of the lifting cavity, a forward and reverse motor installed on the inner wall of the drive port, a connecting platform fixedly connected to the main shaft end face of the forward and reverse motor, a drive screw fixedly connected to the upper surface of the connecting platform, a lifting column threadedly connected to the outer surface of the drive screw, a guide groove distributed in a ring array on the inner side wall of the lifting cavity, and a guide block fixedly connected to the lower peripheral side of the lifting column, which slidably inserts into the inner wall of the guide groove.

[0009] The above technical solution enables the drive screw to rotate via a forward and reverse motor. Because the guide block and guide groove cooperate, the lifting column cannot rotate, thereby controlling the lifting column to move upward.

[0010] Preferably, a first diversion ring is fixedly sleeved on the outer surface of the dust suppression tower, and a water inlet pipe is fixedly connected to the inner wall of the first diversion ring. The inner top wall of the first diversion ring has a sleeve interface arranged in a ring array and extending through to the upper surface of the dust suppression tower. A rotary motor is installed on the upper inner wall of the lifting column, and a rotary table is provided at the top of the lifting column and fixedly sleeved with the surface of the main shaft of the rotary motor.

[0011] The above technical solution allows water from the precast beam yard's water storage tank to be drained into the first diversion ring via an inlet pipe, and the rotating table is driven to rotate by a rotary motor.

[0012] Preferably, a second diversion ring is fixedly connected to the lower outer periphery of the rotary table, and a sealing ring is rotatably sleeved on the inner wall of the lower end of the second diversion ring. A drain pipe that is movably sleeved with the inner wall of the sleeve interface is fixedly sleeved on the inner wall of the sealing ring.

[0013] The above technical solution ensures that the rotation of the rotary table does not hinder the continuous water supply of the drain pipe through the cooperation of the second diversion ring and the sealing ring.

[0014] Preferably, the inner top wall of the second diverter ring is provided with a confluence groove that extends through to the inner wall of the rotary table, and the inner wall of the rotary table is provided with a confluence cavity that communicates with the confluence groove. The upper end of the confluence cavity extends through to the upper surface of the rotary table, and a diverter cylinder is fixedly sleeved on the upper inner wall of the confluence cavity.

[0015] The above technical solution enables the water in the second diversion ring to be discharged into the diversion cavity through the manifold, and then flow into the diversion cylinder.

[0016] Preferably, the spraying device includes four storage slots formed on the upper surface of the rotating platform. Electric telescopic rods are installed on both inner walls of the storage slots via hinged seats. A diversion hose is fixedly connected to the inner wall of the diversion cylinder. Multiple connecting plates arranged in a linear array are provided on the inner bottom wall of the storage slots. Each pair of adjacent connecting plates is movably hinged by a pin. The lower surface of the first connecting plate is fixedly connected to the inner bottom surface of the storage slot.

[0017] The above technical solution allows for the storage of the diversion hose within the cylinder, and when not in use, multiple connecting plates are rolled up to form a ring.

[0018] Preferably, the lower surface of the diversion hose is fixedly connected to the upper surface of the connecting plate, the inner bottom wall of the diversion hose is provided with a spray nozzle that extends through to the lower surface of the connecting plate, the inner wall of the spray nozzle is fixedly fitted with a nozzle, the upper surface of the connecting plate is fixedly connected with a connecting post, and every two adjacent connecting posts are connected by a hinge component, the hinge component is formed by a first hinge rod and a second hinge rod hinged to each other.

[0019] The above technical solution enables the diversion hose to unfold as the connecting plate unfolds, and the connection between every two adjacent connecting plates is achieved through the hinge component.

[0020] Preferably, a butyl rubber guide rail is fixedly connected to one side surface of the connecting column, a transition block is fixedly connected to the end of the electric telescopic rod, and a sliding sleeve that slides against the outer surface of the guide rail is installed on the inner wall of the transition block via a bearing. A traction rope is fixedly connected to the upper surface of one of the connecting plates.

[0021] The above technical solution allows the last connecting plate to be pulled by a traction rope, preventing the connecting plate from extending too far and breaking during rotation, and also making it easier to store the connecting plate.

[0022] Preferably, the inner wall of the rotary table is provided with a drive cavity, and four sets of transmission rods are installed on the inner wall of the drive cavity through bearings. Both ends of each transmission rod are fixedly sleeved with bevel gears, and the bevel gears at the adjacent ends of every two transmission rods mesh with each other. A dual-axis motor is installed in the middle of one of the transmission rods, and the end of the traction rope is fixedly connected to the middle of the transmission rod.

[0023] The above technical solution enables the rotational force to be transmitted to the transmission rods via a dual-axis motor, and the synchronous movement of the four transmission rods is controlled by the meshing of bevel gears.

[0024] The beneficial effects of this invention are as follows:

[0025] 1. The dust monitoring instrument monitors the construction environment of the precast beam yard. When dust or PM2.5 exceeds the standard, the dust monitoring instrument transmits the monitored data to the BIM platform and the smart beam yard platform through the GPS / 4G network transmission module for data exchange. The monitored data is then combined with the temperature and humidity of the day to calculate the amount of water required for spraying, thereby reducing water waste.

[0026] 2. By setting up a lifting device, the forward and reverse motor drives the drive screw to rotate. Because the guide block and the guide groove cooperate, the lifting column cannot rotate, thus controlling the lifting column to only move straight up and down, thereby adjusting the height of the rotating table.

[0027] 3. By setting up a spraying device, the dual-axis motor starts and controls the transmission rod to loosen and release the traction rope. In conjunction with the sliding sleeve at the end of the electric telescopic rod, the connecting plate is controlled to unfold or rewind on the guide rail. Water is sprayed out from the nozzle. At the same time, the rotary motor controls the rotary table to rotate. The centrifugal force generated during the rotation causes the water sprayed from the nozzle to spread outward, increasing the spraying range and improving dust suppression efficiency. Attached Figure Description

[0028] Figure 1 This is a schematic diagram of an intelligent beam yard management platform production intelligent system proposed in this invention;

[0029] Figure 2 This is a three-dimensional view of the drive screw structure of the intelligent beam yard management platform production intelligent system proposed in this invention;

[0030] Figure 3 This is a three-dimensional view of the rotary table structure of the intelligent beam yard management platform production intelligent system proposed in this invention;

[0031] Figure 4 This is a three-dimensional view of the drive cavity structure of an intelligent production system for a smart beam yard management platform proposed in this invention;

[0032] Figure 5This is a three-dimensional view of the transmission rod structure of an intelligent production system for a smart beam yard management platform proposed in this invention;

[0033] Figure 6 This is a three-dimensional view of the electric telescopic pole structure of the intelligent beam yard management platform production intelligent system proposed in this invention;

[0034] Figure 7 This is a three-dimensional view of the connecting plate structure of the intelligent beam yard management platform production intelligent system proposed in this invention;

[0035] Figure 8 This is a three-dimensional view of the sliding sleeve structure of an intelligent production system for a smart beam yard management platform proposed in this invention;

[0036] Figure 9 This is a system block diagram of an intelligent beam yard management platform production intelligent system proposed in this invention.

[0037] In the diagram: 1. Dust suppression equipment; 2. Dust suppression tower; 3. Lifting chamber; 31. Forward and reverse motor; 32. Connecting platform; 33. Drive screw; 34. Lifting column; 35. Guide groove; 36. Guide block; 37. First diversion ring; 38. Water inlet pipe; 39. Socket; 310. Rotary motor; 311. Rotary table; 312. Second diversion ring; 313. Sealing ring; 314. Drain pipe; 315. Combination groove; 31 6. Manifold; 317. Diverter cylinder; 4. Collection trough; 41. Electric telescopic rod; 42. Diverter hose; 43. Connecting plate; 44. Spray nozzle; 45. Spray head; 46. Connecting column; 47. First hinge rod; 48. Second hinge rod; 49. Guide rail; 410. Transition block; 411. Sliding sleeve; 412. Traction rope; 413. Drive chamber; 414. Transmission rod; 415. Bevel gear; 416. Dual-axis motor. Detailed Implementation

[0038] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0039] Reference Figures 1-9 A smart beam yard management platform production intelligent system includes a visual positioning module, a production progress control module, a construction environment monitoring module, a BIM platform, and a smart beam yard platform. The visual positioning module includes a camera. The production progress control module includes video surveillance installed in the beam yard construction area. It uses AI to identify and analyze workers' rebar tying, formwork installation, and concrete pouring processes in real time. By identifying the percentage of progress completed in each process, it notifies the next process to prepare for entry. The construction environment monitoring module includes a noise monitor and a dust monitor, and controls the dust suppression equipment 1 to spray dust with a specified amount of water.

[0040] Noise and dust monitors exchange data with the BIM platform and smart beam yard platform via GPS / 4G network transmission modules. When dust or PM2.5 levels exceed the standard, the exchanged data is combined with the day's temperature and humidity to calculate the required water output for spraying. The dust monitor can monitor the construction environment of the precast beam yard. When dust or PM2.5 levels are detected to exceed the standard, the dust monitor transmits the monitored data to the BIM platform and smart beam yard platform via GPS / 4G network transmission modules for data exchange. The monitored data is then combined with the day's temperature and humidity to calculate the required water output for spraying, thereby reducing water waste.

[0041] like Figures 1-2 As shown, the dust suppression equipment 1 is used to spray water to suppress dust in the precast beam yard, thereby reducing dust pollution and ensuring air quality. The dust suppression equipment 1 includes a dust suppression tower 2. The inner wall of the dust suppression tower 2 is provided with a lifting chamber 3 for installing a rotary lifting device. The top of the lifting device is equipped with a spraying device for suppressing dust in the precast beam yard.

[0042] like Figures 1-5 As shown, the rotary lifting device includes a drive port on the bottom wall of the lifting cavity 3. To drive the lifting column 34 to rise or fall, a reversible motor 31 is installed on the inner wall of the drive port. Furthermore, to drive the drive screw 33 to rotate, a connecting platform 32 is fixedly connected to the spindle end face of the reversible motor 31, and a drive screw 33 is fixedly connected to the upper surface of the connecting platform 32. Furthermore, to drive the lifting column 34, the lifting column 34 is threadedly connected to the outer surface of the drive screw 33. To control the lifting column 34 to rise and fall under the drive of the drive screw 33, guide grooves 35 arranged in a ring array are provided on the inner side wall of the lifting cavity 3. A guide block 36 is fixedly connected to the lower circumferential side of the lifting column 34 and slides into the inner wall of the guide groove 35. The reversible motor 31 can drive the drive screw 33 to rotate. Since the guide block 36 cooperates with the guide groove 35, the lifting column 34 cannot rotate, thereby controlling the lifting column 34 to move upward.

[0043] To transfer water from the storage tank to the rotating platform 311, a first diversion ring 37 is fixedly sleeved on the outer surface of the dust suppression tower 2, and a water inlet pipe 38 is fixedly connected to the inner wall of the first diversion ring 37. Furthermore, a ring-shaped array of sleeve interfaces 39 is formed on the inner top wall of the first diversion ring 37 and extends through to the upper surface of the dust suppression tower 2. Further, to drive the rotating platform 311, a rotary motor 310 is installed on the upper inner wall of the lifting column 34, and a rotating platform 311 is fixedly sleeved on the top of the lifting column 34 and connected to the main shaft surface of the rotary motor 310. Water from the precast beam yard storage tank can be discharged to the first diversion ring 311 through the water inlet pipe 38. Inside 7, the rotating table 311 is driven to rotate by the rotating motor 310. In order not to obstruct the flow of water during the rotation of the rotating table 311, a second diverting ring 312 is fixedly connected to the lower outer surface of the rotating table 311, and a sealing ring 313 is rotatably sleeved on the inner wall of the lower end of the second diverting ring 312. In order to introduce water in the sleeve interface 39 into the second diverting ring 312, a drain pipe 314 is fixedly sleeved on the inner wall of the sealing ring 313 and movably sleeved on the inner wall of the sleeve interface 39. The cooperation between the second diverting ring 312 and the sealing ring 313 can ensure that the rotating table 311 does not obstruct the continuous water supply of the drain pipe 314 during the rotation.

[0044] Furthermore, in order to collect the water in the second diversion ring 312, a collection groove 315 is provided on the inner top wall of the second diversion ring 312, which extends through to the inner wall of the rotating platform 311. A collection cavity 316 communicating with the collection groove 315 is provided on the inner wall of the rotating platform 311, so that the upper end of the collection cavity 316 extends through to the upper surface of the rotating platform 311. A diversion cylinder 317 is fixedly sleeved on the upper inner wall of the collection cavity 316, so that the water in the second diversion ring 312 can be discharged into the collection cavity 316 through the collection groove 315, and then flow into the diversion cylinder 317.

[0045] By setting up a lifting device, the forward and reverse motor 31 drives the drive screw 33 to rotate. Since the guide block 36 cooperates with the guide groove 35, the lifting column 34 cannot rotate, thus controlling the lifting column 34 to only move straight up and down, thereby adjusting the height of the rotary table 311.

[0046] like Figures 1-7As shown, the spraying device includes four storage slots 4 formed on the upper surface of the rotating platform 311. In order to control the state of the connecting plates 43, electric telescopic rods 41 are installed on both sides of the inner wall of the storage slots 4 via hinge seats. In order to spray the water inside the diversion cylinder 317 evenly, a diversion hose 42 is fixedly connected to the inner wall of the diversion cylinder 317. In order to support the diversion hose 42, multiple connecting plates 43 arranged in a linear array are provided on the inner bottom wall of the storage slots 4. Furthermore, in order to connect adjacent connecting plates 43, each pair of adjacent connecting plates 43 is movably hinged by a pin, and the lower surface of the first connecting plate 43 is fixedly connected to the inner bottom surface of the storage slots 4. The diversion hose 42 can be stored in the storage slots 4. When the diversion hose 42 is not in use, the multiple connecting plates 43 are rolled up to form a ring.

[0047] To support the diversion hose 42, the lower surface of the diversion hose 42 is fixedly connected to the upper surface of the connecting plate 43. Furthermore, to ensure uniform spraying, a spray nozzle 44 is provided on the inner bottom wall of the diversion hose 42, extending to the lower surface of the connecting plate 43, and a nozzle 45 is fixedly sleeved on the inner wall of the spray nozzle 44. Furthermore, to further support the connecting plate 43, a connecting post 46 is fixedly connected to the upper surface of the connecting plate 43, and a hinge component connects every two adjacent connecting posts 46. The hinge component is formed by the mutual hinge of a first hinge rod 47 and a second hinge rod 48, which allows the diversion hose 42 to unfold as the connecting plate 43 unfolds, and the connection between every two adjacent connecting plates 43 is achieved through the hinge component.

[0048] To support and guide the connecting plate 43, a butyl rubber guide rail 49 is fixedly connected to one side surface of the connecting column 46, and a transition block 410 is fixedly connected to the end of the electric telescopic rod 41. The inner wall of the transition block 410 is fitted with a sliding sleeve 411 that slides against the outer surface of the guide rail 49 via a bearing. Furthermore, a traction rope 412 is fixedly connected to the upper surface of one of the connecting plates 43, which can pull the last connecting plate 43 to prevent the connecting plate 43 from extending too far and breaking during rotation, and to facilitate the storage of the connecting plate 43.

[0049] To simultaneously control the synchronous movement of the four transmission rods 414, a drive cavity 413 is provided on the inner wall of the rotary table 311, and four sets of transmission rods 414 are installed on the inner wall of the drive cavity 413 via bearings. Furthermore, bevel gears 415 are fixedly sleeved at both ends of each transmission rod 414, so that the bevel gears 415 at the adjacent ends of every two transmission rods 414 mesh with each other. In order to drive the transmission rods 414, a dual-axis motor 416 is installed in the middle of one of the transmission rods 414, so that the end of the traction rope 412 is fixedly connected to the middle of the transmission rod 414. The rotational force can be transmitted to the transmission rod 414 through the dual-axis motor 416, and the synchronous movement of the four transmission rods 414 can be controlled by the meshing of the bevel gears 415.

[0050] By setting up a spraying device, the dual-axis motor 416 starts, controlling the transmission rod 414 to release the traction rope 412. In conjunction with the sliding sleeve 411 at the end of the electric telescopic rod 41 sliding on the guide rail 49, the connecting plate 43 is unfolded or retracted. Water is sprayed out from the nozzle 45. At the same time, the rotary motor 310 controls the rotary table 311 to rotate. The centrifugal force generated during rotation causes the water sprayed from the nozzle 45 to spread outward, increasing the spraying range and improving dust suppression efficiency.

[0051] Working principle: During use, the dust monitoring instrument monitors the construction environment of the precast beam yard. When dust or PM2.5 levels exceed the standard, the dust monitoring instrument transmits the monitored data to the BIM platform and the smart beam yard platform via the GPS / 4G network transmission module for data exchange. The monitored data is then combined with the day's temperature and humidity to calculate the required water output for spraying, controlling the dust suppression equipment 1 to start. The water inlet pipe 38 sequentially pumps water from the precast beam yard's water storage tank through the first... The flow ring 37, sleeve interface 39, drain pipe 314, confluence groove 315, and confluence cavity 316 flow into the diverter cylinder 317. The dual-shaft motor 416 starts and controls the transmission rod 414 to release the traction rope 412. At the same time, the electric telescopic rod 41 controls the sliding sleeve 411 to slide on the guide rail 49, so that the connecting plate 43 unfolds and water sprays out from the nozzle 45. At the same time, the rotary motor 310 controls the rotary table 311 to rotate, so that the water sprayed from the nozzle 45 spreads outward and increases the spray range.

[0052] If the dust is severe, the rotary table 311 can be raised to increase the water output. When the rotary table 311 is raised, the forward and reverse motor 31 drives the drive screw 33 to rotate. Since the guide block 36 and the guide groove 35 cooperate, the lifting column 34 cannot rotate, thereby controlling the lifting column 34 to move upward. At the same time, the drain pipe 314 moves within the sleeve interface 39, thereby completing the adjustment of the height of the rotary table 311.

[0053] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A smart beam yard management platform production intelligent system, characterized in that: It comprises a visual positioning module, a production progress control module, a construction environment monitoring module, a BIM platform and a smart beam yard platform, the visual positioning module comprises a camera, the production progress control module comprises a video monitoring device installed in the beam yard construction area, which can identify and analyze the steel bar binding process, formwork installation process and concrete pouring process of workers in real time through AI, identify the percentage of process completion and notify the next process preparation, the construction environment monitoring module comprises a noise monitor and a dust monitor, and controls the dust falling device (1) to spray dust falling with specified water output; The dust falling device (1) is used for watering and dust falling in the precast beam yard, thereby reducing dust pollution and protecting air quality, the dust falling device (1) comprises a dust falling tower (2), an inner wall of the dust falling tower (2) is provided with a lifting cavity (3) for installing a rotating lifting device, and a top of the rotating lifting device is provided with a spraying device for dust falling in the precast beam yard; The rotating lifting device comprises a driving port formed in the inner bottom wall of the lifting cavity (3), an inner wall of the driving port is provided with a forward and reverse motor (31), a main shaft end surface of the forward and reverse motor (31) is fixedly connected with a connecting table (32), an upper surface of the connecting table (32) is fixedly connected with a driving screw (33), an outer surface of the driving screw (33) is threadedly connected with a lifting column (34), an inner side wall of the lifting cavity (3) is provided with a plurality of guide grooves (35) arranged in an annular array, a lower end circumferential surface of the lifting column (34) is fixedly connected with a guide block (36) slidably inserted into the inner wall of the guide groove (35), an outer surface of the dust falling tower (2) is fixedly sleeved with a first shunt ring (37), an inner wall of the first shunt ring (37) is fixedly connected with a water inlet pipe (38), an inner top wall of the first shunt ring (37) is provided with a plurality of sleeving openings (39) arranged in an annular array and penetrating through the upper surface of the dust falling tower (2), an upper end inner wall of the lifting column (34) is provided with a rotating motor (310), and a top end of the lifting column (34) is provided with a rotating table (311) fixedly sleeved with a main shaft surface of the rotating motor (310). The spraying device comprises four receiving grooves (4) opened on the upper surface of the rotating table (311), both side inner walls of the receiving groove (4) are provided with an electric telescopic rod (41) through a hinged seat, the inner wall of the shunt cylinder (317) is fixedly connected with a shunt hose (42), the inner bottom wall of the receiving groove (4) is provided with a plurality of connection plates (43) arranged in a linear array, every two adjacent connection plates (43) are hingedly connected through a pin shaft, the lower surface of the first connection plate (43) is fixedly connected with the inner bottom surface of the receiving groove (4), the lower surface of the shunt hose (42) is fixedly connected with the upper surface of the connection plate (43), the inner bottom wall of the shunt hose (42) is provided with a spraying port (44) penetrating through the lower surface of the connection plate (43), the inner wall of the spraying port (44) is fixedly sleeved with a spray head (45), the upper surface of the connection plate (43) is fixedly connected with a connecting column (46), every two adjacent connecting columns (46) are connected through a hinged part, and the hinged part is hingedly connected with each other through a first hinged rod (47) and a second hinged rod (48); One side surface of the connecting column (46) is fixedly connected with a guide rail (49) made of butyl rubber, the tail end of the electric telescopic rod (41) is fixedly connected with a transition block (410), the inner wall of the transition block (410) is provided with a sliding sleeve (411) slidingly sleeved with the outer surface of the guide rail (49) through a bearing, the upper surface of one of the connection plates (43) is fixedly connected with a traction rope (412), the inner wall of the rotating table (311) is provided with a driving cavity (413), the inner wall of the driving cavity (413) is provided with four groups of transmission rods (414) through bearings, both ends of the transmission rod (414) are fixedly sleeved with bevel gears (415), the bevel gears (415) at adjacent ends of every two transmission rods (414) are meshed with each other, the middle part of one of the transmission rods (414) is provided with a double-shaft motor (416), and the tail end of the traction rope (412) is fixedly connected with the middle part of the transmission rod (414). 2.The intelligent production system of a smart beam yard management platform according to claim 1, characterized in that: The noise monitor and the dust monitor exchange data with the BIM platform and the intelligent beam yard platform through a GPS / 4G network transmission module, and when the dust or PM2.5 exceeds the standard, the exchanged data is combined with the air temperature and humidity of the day to calculate the required water output for spraying. 3.The intelligent production system of a smart beam yard management platform according to claim 1, characterized in that: The outer peripheral lower surface of the rotating table (311) is fixedly connected with a second shunt ring (312), the lower end inner wall of the second shunt ring (312) is rotatably sleeved with a sealing ring (313), and the inner wall of the sealing ring (313) is fixedly sleeved with a drain pipe (314) movably sleeved with the inner wall of the sleeve port (39). 4.The intelligent production system of a smart beam yard management platform according to claim 3, characterized in that: The inner top wall of the second shunt ring (312) is provided with a confluence groove (315) penetrating into the inner wall of the rotating table (311), the inner wall of the rotating table (311) is provided with a confluence cavity (316) in communication with the confluence groove (315), the upper end of the confluence cavity (316) penetrates into the upper surface of the rotating table (311), and the inner wall of the upper end of the confluence cavity (316) is fixedly sleeved with a shunt cylinder (317).

Citation Information

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