Monitoring device based on Internet of Things cloud platform for construction site

By using the synergy between rotator and rotating rod in the monitoring device on construction site, combined with the combination of shoe wheels and tracks, the flexible monitoring of the camera and the stable movement of the device on complex terrain is achieved, which solves the problems of monitoring blind spots and terrain adaptability, and improves monitoring comprehensiveness and decision-making support.

CN223090370UActive Publication Date: 2025-07-11北京云晁科技有限公司
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Patent Information

Application Number
CN202421788261.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-07-11
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

The existing construction site monitoring devices have problems such as many blind spots in monitoring, difficulty in flexibly adjusting monitoring locations, and moving on complex terrain.

Method used

The synergistic effect of the first rotator, the first rotary rod, the second rotator and the second rotary rod is adopted, and combined with the combination of load bearing wheels, connecting plates, shoe wheels and tracks, the camera is realized in a flexible monitoring of the camera in different directions and angles. A rectangular arrangement of communication modules, control processor modules, cloud platform interface modules and data analysis modules is set up in the module box, and each module operates in a coordinated manner.

Benefits of technology

It greatly reduces monitoring blind spots, improves the comprehensiveness and accuracy of monitoring, enhances the mobility and adaptability of the device on complex terrain, and provides efficient decision-making support.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the field of construction sites, and discloses a construction site monitoring device based on an Internet of Things cloud platform, which comprises a base, mobile structures are arranged at the centers of two side walls of the base, a support plate is arranged at the front part of the center of the upper end surface of the base, and an operation platform is arranged at the center of the upper end surface of the support plate. A module box is arranged on the rear portion of one side of the upper end face of the operation platform. According to the utility model, through the synergistic effect of the first rotator, the first rotating rod, the second rotator and the second rotating rod, the flexible monitoring of the camera in different directions and angles is realized, the monitoring dead angles are greatly reduced, and the monitoring comprehensiveness and accuracy are improved; the device can stably move on various complex terrains such as mud land, sand land and gravel and is not prone to falling into the soft ground, and the maneuverability and adaptability of the device in severe environments such as construction sites are greatly improved.
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Description

Technical Field

[0001] The utility model relates to the field of construction sites, in particular to a monitoring device based on the Internet of Things cloud platform for construction sites. Background Technique

[0002] The application of the cloud platform monitoring device based on the Internet of Things in construction sites is an important manifestation of the intelligent and informatized development of the modern construction industry. This technology integrates sensors, cameras, wireless communication technologies, etc. into various key links of construction sites to achieve real-time monitoring, data collection, analysis, and remote control of the construction site, thereby improving construction efficiency, ensuring construction safety, and optimizing resource allocation.

[0003] The cameras of the existing monitoring devices for construction sites may only be fixed at a certain position or limited angles for shooting, resulting in a large number of monitoring blind spots and making it difficult to comprehensively obtain the situation of the construction site. They may not have the ability to move freely on complex terrains. In the construction site environment with variable terrains, it is difficult to flexibly adjust the monitoring position and keep up with the construction progress and emergencies in a timely manner. Therefore, the technical personnel in this field provide a monitoring device based on the Internet of Things cloud platform for construction sites to solve the problems raised in the above background technique. Content of the Utility Model

[0004] The purpose of the utility model is to solve the deficiencies existing in the prior art, and a monitoring device based on the Internet of Things cloud platform for construction sites is proposed. Through the coordinated action of the first rotator, the first rotating rod, the second rotator, and the second rotating rod, flexible monitoring of the camera in different directions and angles is realized, greatly reducing the monitoring blind spots and improving the comprehensiveness and accuracy of monitoring. By adopting the combination of load-bearing wheels, connecting plates, track wheels, and crawlers, the device can move smoothly on various complex terrains including muddy land, sandy land, and gravel, and is not easily stuck in soft ground, greatly improving the mobility and adaptability of the device in harsh environments such as construction sites. By arranging a cross partition in the module box, the communication module, the control processor module, the cloud platform interface module, and the data analysis module are arranged in a rectangular shape and the regions are reasonably divided. Each module operates in cooperation to provide efficient decision-making support for the management of construction sites.

[0005] To achieve the above object, the utility model provides the following technical solutions: A monitoring device based on an Internet of Things cloud platform for construction sites, including a base. At the centers of both side walls of the base, moving structures are provided. At a position slightly forward of the center of the upper end surface of the base, a support plate is provided. At the center of the upper end surface of the support plate, an operation platform is provided. At a position slightly rearward of one side of the upper end surface of the operation platform, a module box is provided. Inside the module box, a cloud platform monitoring structure is provided. At a position slightly forward of the center of the upper end surface of the base, a connection block is provided. At the center of the upper end surface of the connection block, an adjustment monitoring structure is provided. At the center of the front end surface of the adjustment monitoring structure, a camera is provided. At a position slightly to one side of the center of the upper end surface of the connection block, a mounting block is provided;

[0006] Through the above technical solutions, through the coordinated action of the first rotator, the first rotating rod, the second rotator and the second rotating rod, flexible monitoring of the camera in different directions and angles is realized, greatly reducing the monitoring blind spots and improving the comprehensiveness and accuracy of monitoring. By adopting the combination of load-bearing wheels, connecting plates, track wheels and tracks, the device can move smoothly on various complex terrains including muddy ground, sandy ground, gravel, etc., and is not easily stuck in soft ground, greatly improving the mobility and adaptability of the device in harsh environments such as construction sites. By setting a cross partition in the module box, the communication module, the control processor module, the cloud platform interface module and the data analysis module are arranged in a rectangular shape and the areas are reasonably divided. Each module operates in cooperation to provide efficient decision-making support for the management of construction sites.

[0007] Further, the two moving structures include two load-bearing wheels, two connecting plates, four track wheels and four tracks. The two load-bearing wheels are respectively arranged at the centers of both side walls of the base. The two connecting plates are respectively arranged at the centers of one side walls of the two load-bearing wheels. The four track wheels are respectively arranged on both sides of the front and rear of the two load-bearing wheels on the base. The four tracks are divided into two groups, and the two groups of tracks are respectively arranged horizontally and sleeved on the outer side walls of the two load-bearing wheels and the four track wheels;

[0008] Through the above technical solutions, when the device needs to move, the load-bearing wheels rotate to drive the tracks to move, and the track wheels assist in maintaining the stable operation of the tracks. The tracks surround the load-bearing wheels and the track wheels, providing sufficient friction, enabling the device to move smoothly on various terrains, including muddy ground, sandy ground, gravel, etc., so that the device is not easily stuck in soft ground in complex terrains such as construction sites and can move stably.

[0009] Further, the cloud platform monitoring structure includes a communication module, a control processor module, a cloud platform interface module, a data analysis module and two partitions. The two partitions are arranged in a cross shape at the center inside the module box. The communication module, the control processor module, the cloud platform interface module and the data analysis module are arranged in a rectangular shape inside the module box;

[0010] Through the above technical solution, in the cloud platform monitoring structure, the communication module is responsible for receiving and sending data, interacting with external devices or networks, and controlling the processor module to process and calculate the collected data and issue control instructions. The cloud platform interface module is used to connect to the cloud platform to achieve data upload and download. The data analysis module analyzes and processes the collected data to extract valuable information. Two partitions are arranged in a cross shape at the center inside the module box to divide the internal space. Each module is arranged in a rectangle within the divided area and operates in cooperation with each other to provide decision-making support for the management of construction sites.

[0011] Further, the adjustment monitoring structure includes a first rotator, a first rotating rod, a second rotator, and a second rotating rod. The first rotator is arranged at the center of one side wall of the connecting block. The first rotating rod is arranged at the output end of the first rotator. The second rotator is arranged at a position above the center of one side wall of the first rotating rod. The second rotating rod is arranged at the output end of the second rotator. The camera is arranged at the center of the front end face of the second rotating rod.

[0012] Through the above technical solution, when the first rotator starts, it drives the first rotating rod to rotate, thereby changing the orientation of the camera. When the second rotator works, it drives the second rotating rod to rotate in the vertical direction to further adjust the vertical angle of the camera. Through the coordinated action of the first rotator and the second rotator, the camera can monitor in different directions and angles. The adjustment monitoring structure with multiple joints greatly improves the flexibility and coverage of monitoring, can capture the situation of construction sites in all directions and at multiple angles, and reduces monitoring blind spots.

[0013] Further, a lighting lamp is provided at the center of the front end face of the mounting block.

[0014] Through the above technical solution, in an environment with dim light, such as at night or in a dim corner of a construction site, the lighting lamp can provide sufficient light for the monitoring device, ensure that the camera can clearly capture the picture, and help improve the monitoring effect and safety.

[0015] Further, the four road wheels are respectively meshed with the four crawlers.

[0016] Through the above technical solution, the meshing of the road wheels and the crawlers makes the entire moving structure more stable and reliable, can effectively prevent the crawlers from falling off or running off track, and improves the passing ability of the device on complex terrains and the smoothness of operation.

[0017] Further, a storage battery is provided at a position behind the center of the lower end face of the operation platform.

[0018] Through the above technical solution, the setting of the storage battery provides an independent power supply for the device, enabling the device to still work properly without external power supply access, increasing the flexibility and portability of the device, and being unrestricted by the position of the fixed power supply.

[0019] The utility model has the following beneficial effects:

[0020] 1. In the utility model, the monitoring device based on the Internet of Things cloud platform for construction sites realizes flexible monitoring of the camera in different directions and angles through the coordinated action of the first rotator, the first rotating rod, the second rotator and the second rotating rod, greatly reducing the monitoring blind spots and improving the comprehensiveness and accuracy of monitoring.

[0021] 2. In the utility model, by adopting the combination of load-bearing wheels, connecting plates, track wheels and crawler belts, the device can move smoothly on various complex terrains including muddy ground, sandy ground, gravel, etc., and is not easy to sink into soft ground, greatly improving the mobility and adaptability of the device in harsh environments such as construction sites.

[0022] 3. In the utility model, by arranging a cross partition in the module box, the communication module, the control processor module, the cloud platform interface module and the data analysis module are arranged in a rectangular shape and the areas are reasonably divided, and each module operates in cooperation to provide efficient decision-making support for the management of construction sites. Description of the Drawings

[0023] Figure 1 is a three-dimensional view of a monitoring device based on the Internet of Things cloud platform for construction sites proposed by the utility model;

[0024] Figure 2 is a three-dimensional view of another perspective of a monitoring device based on the Internet of Things cloud platform for construction sites proposed by the utility model;

[0025] Figure 3 is a front view of a monitoring device based on the Internet of Things cloud platform for construction sites proposed by the utility model;

[0026] Figure 4 is a top cross-sectional view of the module box of a monitoring device based on the Internet of Things cloud platform for construction sites proposed by the utility model.

[0027] Legend Explanation:

[0028] 1. Base; 2. Moving structure; 201. Load-carrying wheel; 202. Connecting plate; 203. Track wheel; 204. Crawler belt; 3. Cloud platform monitoring structure; 301. Communication module; 302. Control processor module; 303. Cloud platform interface module; 304. Data analysis module; 305. Partition board; 4. Lighting lamp; 5. Support plate; 6. Operation platform; 7. Storage battery; 8. Module box; 9. Adjustment monitoring structure; 901. First rotator; 902. First rotating rod; 903. Second rotator; 904. Second rotating rod; 10. Connecting block; 11. Camera; 12. Mounting block. Detailed implementation manners

[0029] 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] Refer to Figures 1-4 , an embodiment provided by the present invention: A monitoring device based on an Internet of Things cloud platform for a construction site, including a base 1. Moving structures 2 are provided at the centers of both side walls of the base 1. A support plate 5 is provided at a position slightly forward of the center of the upper end surface of the base 1. An operation platform 6 is provided at the center of the upper end surface of the support plate 5. A module box 8 is provided at a position slightly rearward of one side of the upper end surface of the operation platform 6. A cloud platform monitoring structure 3 is provided inside the module box 8. A connecting block 10 is provided at a position slightly forward of the center of the upper end surface of the base 1. An adjustment monitoring structure 9 is provided at the center of the upper end surface of the connecting block 10. A camera 11 is provided at the center of the front end surface of the adjustment monitoring structure 9. A mounting block 12 is provided at a position slightly to one side of the center of the upper end surface of the connecting block 10.

[0031] The moving structure 2 provides the ability for the entire device to move, enabling it to be flexibly deployed at different positions on the construction site. The support plate 5 supports the operation platform 6. The cloud platform monitoring structure 3 inside the module box 8 on the operation platform 6 is responsible for data processing, transmission, and interaction with the cloud platform. The adjustment monitoring structure 9 on the connecting block 10 can adjust the angle and direction of the camera 11 to obtain the best monitoring perspective. A lighting lamp 4 is provided at the center of the front end surface of the mounting block 12. In a dim environment, such as at night or in a dim corner of the construction site, the lighting lamp 4 can provide sufficient light for the monitoring device, ensuring that the camera 11 can clearly capture the image, which helps to improve the monitoring effect and safety. A storage battery 7 is provided at a position slightly rearward of the center of the lower end surface of the operation platform 6. The setting of the storage battery 7 provides an independent power source for the device, enabling the device to still work normally without external power supply, increasing the flexibility and portability of the device, and being not restricted by the position of the fixed power source.

[0032] The two moving structures 2 include two load-carrying wheels 201, two connecting plates 202, four track wheels 203 and four crawler belts 204. The two load-carrying wheels 201 are respectively arranged at the centers of the two side walls of the base 1. The two connecting plates 202 are respectively arranged at the centers of one side wall of the two load-carrying wheels 201. The four track wheels 203 are respectively arranged at the front and rear of the two load-carrying wheels 201 on both sides of the base 1. Two of the four crawler belts 204 are in a group, and the two groups of crawler belts 204 are respectively arranged horizontally and sleeved on the outer side walls of the two load-carrying wheels 201 and the four track wheels 203. When the device needs to move, the load-carrying wheels 201 rotate to drive the crawler belts 204 to move, and the track wheels 203 assist in maintaining the stable operation of the crawler belts 204. The crawler belts 204 surround the load-carrying wheels 201 and the track wheels 203, providing sufficient friction force to enable the device to move smoothly on various terrains, including muddy land, sandy land, gravel, etc., so that the device is not easily stuck in soft ground in complex terrains such as construction sites and can move stably. The four track wheels 203 are respectively meshed with the four crawler belts 204. The meshing of the track wheels 203 and the crawler belts 204 makes the entire moving structure 2 more stable and reliable, can effectively prevent the crawler belts 204 from falling off or running off, and improves the passing ability and running smoothness of the equipment in complex terrains.

[0033] The cloud platform monitoring structure 3 includes a communication module 301, a control processor module 302, a cloud platform interface module 303, a data analysis module 304 and two partition plates 305. The two partition plates 305 are arranged in a cross shape at the center inside the module box 8. The communication module 301, the control processor module 302, the cloud platform interface module 303 and the data analysis module 304 are arranged in a rectangular array inside the module box 8. In the cloud platform monitoring structure 3, the communication module 301 is responsible for receiving and sending data and interacting with external devices or networks. The control processor module 302 processes and calculates the collected data and issues control instructions. The cloud platform interface module 303 is used to connect to the cloud platform to realize data upload and download. The data analysis module 304 analyzes and processes the collected data to extract valuable information. The two partition plates 305 are arranged in a cross shape at the center inside the module box 8 to divide the internal space. Each module is arranged in a rectangular array in the divided area and operates in cooperation to provide decision-making support for the management of construction sites.

[0034] The adjustment monitoring structure 9 includes a first rotator 901, a first rotating rod 902, a second rotator 903 and a second rotating rod 904. The first rotator 901 is arranged at the center of one side wall of the connecting block 10. The first rotating rod 902 is arranged at the output end of the first rotator 901. The second rotator 903 is arranged at a position above the center of one side wall of the first rotating rod 902. The second rotating rod 904 is arranged at the output end of the second rotator 903. The camera 11 is arranged at the center of the front end face of the second rotating rod 904. When the first rotator 901 is started, it drives the first rotating rod 902 to rotate, thereby changing the orientation of the camera 11. When the second rotator 903 works, it drives the second rotating rod 904 to rotate in the vertical direction, further adjusting the vertical angle of the camera 11. Through the coordinated action of the first rotator 901 and the second rotator 903, the camera 11 can monitor in different directions and angles. The adjustment monitoring structure 9 with multiple joints greatly improves the flexibility and coverage of monitoring, can capture the situation of the construction site in all directions and at multiple angles, and reduces monitoring blind spots.

[0035] Working principle: When the device needs to move, the load-bearing wheels 201 rotate to drive the crawler 204 to move. The track wheels 203 assist in maintaining the stable operation of the crawler 204. The crawler 204 surrounds the load-bearing wheels 201 and the track wheels 203, providing sufficient friction to enable the device to move smoothly on various terrains, including muddy ground, sandy ground, gravel, etc., so that the device is not easily stuck in soft ground in complex terrains such as construction sites and can move stably. By starting the first rotator 901, it drives the first rotating rod 902 to rotate, thereby changing the orientation of the camera 11. When the second rotator 903 works, it drives the second rotating rod 904 to rotate in the vertical direction, further adjusting the vertical angle of the camera 11. Through the coordinated action of the first rotator 901 and the second rotator 903, the camera 11 can monitor in different directions and angles. The adjustment monitoring structure 9 with multiple joints greatly improves the flexibility and coverage of monitoring, can capture the situation of the construction site in all directions and at multiple angles, and reduces monitoring blind spots. In the cloud platform monitoring structure 3, the communication module 301 is responsible for receiving and sending data, interacting with external devices or networks. The control processor module 302 processes and calculates the collected data and issues control instructions. The cloud platform interface module 303 is used to connect to the cloud platform to realize data upload and download. The data analysis module 304 analyzes and processes the collected data to extract valuable information. The two partition plates 305 are arranged in a cross at the center inside the module box 8, dividing the internal space. Each module is arranged in a rectangle in the divided area and operates in cooperation to provide decision-making support for the management of the construction site.

[0036] Finally, it should be noted that the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A monitoring device based on the Internet of Things cloud platform for construction sites, including a base (1), characterized in that: At the centers of the two side walls of the base (1), moving structures (2) are provided. At a position slightly forward of the center of the upper end face of the base (1), a support plate (5) is provided. At the center of the upper end face of the support plate (5), an operation platform (6) is provided. At a position slightly backward on one side of the upper end face of the operation platform (6), a module box (8) is provided. Inside the module box (8), a cloud platform monitoring structure (3) is provided. At a position slightly forward of the center of the upper end face of the base (1), a connecting block (10) is provided. At the center of the upper end face of the connecting block (10), an adjustment monitoring structure (9) is provided. At the center of the front end face of the adjustment monitoring structure (9), a camera (11) is provided. At a position slightly to one side of the center of the upper end face of the connecting block (10), a mounting block (12) is provided.

2. The monitoring device based on the Internet of Things cloud platform for construction sites according to claim 1, characterized in that: The two moving structures (2) include two load wheels (201), two connecting plates (202), four track wheels (203) and four crawler tracks (204). The two load wheels (201) are respectively arranged at the centers of the two side walls of the base (1). The two connecting plates (202) are respectively arranged at the centers of one side wall of the two load wheels (201). The four track wheels (203) are respectively arranged on both sides of the front and rear of the base (1) of the two load wheels (201). The four crawler tracks (204) are grouped in two, and the two groups of crawler tracks (204) are respectively arranged horizontally and sleeved on the outer side walls of the two load wheels (201) and the four track wheels (203).

3. The monitoring device based on the Internet of Things cloud platform for construction sites according to claim 1, characterized in that: The cloud platform monitoring structure (3) includes a communication module (301), a control processor module (302), a cloud platform interface module (303), a data analysis module (304) and two partition plates (305). The two partition plates (305) are arranged in a cross shape at the center inside the module box (8). The communication module (301), the control processor module (302), the cloud platform interface module (303) and the data analysis module (304) are arranged in a rectangular pattern inside the module box (8).

4. The monitoring device based on the Internet of Things cloud platform for construction sites according to claim 1, characterized in that: The adjustment monitoring structure (9) includes a first rotator (901), a first rotating rod (902), a second rotator (903) and a second rotating rod (904). The first rotator (901) is arranged at the center of one side wall of the connecting block (10). The first rotating rod (902) is arranged on the output end of the first rotator (901). The second rotator (903) is arranged at a position slightly above the center of one side wall of the first rotating rod (902). The second rotating rod (904) is arranged on the output end of the second rotator (903). The camera (11) is arranged at the center of the front end face of the second rotating rod (904).

5. The monitoring device based on the Internet of Things cloud platform for construction sites according to claim 1, characterized in that: At the center of the front end face of the mounting block (12), a lighting lamp (4) is provided.

6. The monitoring device based on the Internet of Things cloud platform for construction sites according to claim 2, characterized in that: The four track wheels (203) and the four crawler tracks (204) are meshed with each other.

7. The monitoring device based on the Internet of Things cloud platform for construction sites according to claim 1, characterized in that: At a position slightly backward of the center of the lower end face of the operation platform (6), a storage battery (7) is provided.