Remote construction monitoring device applied to Internet of Things
The monitoring lens is automatically cleaned by a ratchet ring and brush system driven by a servo motor. Combined with the heat dissipation device and heat conduction plate, the dust, stains and heat accumulation problems of the monitoring device are solved, achieving a clear picture and extending the service life.
Patent Information
- Application Number
- CN202423025763.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-09
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-12-09
AI Technical Summary
The monitoring lens of the monitoring device is easily covered with dust and stains, resulting in unclear images, and the heat generated by the device during use will affect the life of the electronic components.
A servo motor-driven ratchet ring and brush system are used for automatic cleaning, combined with a heat sink and heat conduction plate to dissipate heat, enhancing the stability and safety of the device.
Effectively remove dust and stains from surveillance lenses, reduce the impact of unclear images, and reduce heat accumulation in electronic components through heat dissipation, extending the life of the device and improving stability and safety.
Smart Images

Figure CN223345064U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of construction monitoring, in particular to a remote construction monitoring device applied to the Internet of Things. Background Art
[0002] Monitoring is a device system used to monitor and record the status of a specific area or target. It is widely used in public safety, traffic management, enterprise management and other fields. With the continuous development of science and technology, monitoring is also constantly updated. In the future, monitoring will be more intelligent, networked and integrated.
[0003] The remote construction monitoring device applied to the Internet of Things is composed of sensors, acquisition equipment, cloud platforms, monitoring terminals and other devices. It has functions such as real-time monitoring, remote management, safety management and early warning. It is an efficient and intelligent construction site management tool.
[0004] In the prior art, during the use of the monitoring device, some dust and stains may be attached to the monitoring lens, resulting in unclear monitoring images; therefore, to address the above problem, a remote construction monitoring device applied to the Internet of Things is proposed. Utility Model Content
[0005] In order to make up for the deficiencies of the prior art and solve at least one technical problem raised in the background art, the present invention proposes a remote construction monitoring device applied to the Internet of Things.
[0006] The technical solution adopted by the present invention to solve its technical problems is: the remote construction monitoring device applied to the Internet of Things described in the present invention includes a mounting bracket main body; a servo motor is fixedly connected to the inner side of the top of the mounting bracket main body; a protective shell main body is provided on the mounting bracket main body near the end of the servo motor; a limiting groove is provided inside the protective shell main body; a servo motor is slidably connected inside the limiting groove; the output end of the servo motor is located inside the limiting groove; a monitoring device main body is installed inside the protective shell main body; a ratchet ring is rotatably connected to the middle part of the mounting bracket main body near the end of the servo motor; a pawl main body is installed on the outer side of the mounting bracket main body near the ratchet ring; a brush is installed on the end of the ratchet ring away from the servo motor; a resistance shaft is fixed to the end of the brush away from the ratchet ring; the resistance shaft is rotatably connected to the mounting bracket main body.
[0007] Preferably, a heat conducting plate is installed inside the protective shell body close to the monitoring device body; a hexagonal screw is threaded inside the heat conducting plate; an extrusion spring is fixed to the outside of the hexagonal screw; a heat dissipation device body is fixed to one side of the heat conducting plate; and a heat dissipation hole is opened on the top inner side of the protective shell body.
[0008] Preferably, a thread groove is provided inside the limiting groove; a plum screw is threadedly connected inside the thread groove; and one end of the thread groove is located inside the output end of the servo motor.
[0009] Preferably, a support column is fixedly connected to the top of the resistance shaft; and a rain shield is fixedly connected to the top of the support column.
[0010] Preferably, a plurality of groups of guide ribs are fixedly connected to the top of the rain shield.
[0011] Preferably, a connecting spring is installed inside the pawl body.
[0012] Preferably, a ventilation hole is provided on a side of the heat conducting plate away from the heat dissipation device body.
[0013] The utility model is beneficial in that:
[0014] The utility model describes a remote construction monitoring device applied to the Internet of Things. During the use of the monitoring device, some dust and stains may be attached to the monitoring lens, resulting in unclear monitoring images. Therefore, by using a ratchet ring, when the direction of the monitoring device body needs to be adjusted, the ratchet ring rotates together with the protective shell body. When the monitoring device body needs to be cleaned, the servo motor is reversed so that the ratchet ring drives the brush to remain stationary, and the protective shell body still drives the monitoring device body to rotate, so as to clean the monitoring device body. Regular cleaning of the monitoring device body greatly reduces the influence of stains on the surface of the monitoring device body on the monitoring image.
[0015] The utility model describes a remote construction monitoring device applied to the Internet of Things. During use, the monitoring device body generates heat, and this heat accumulates inside the protective shell body, which will cause the life of the electronic components inside the monitoring device body to be reduced. Therefore, the heat accumulated inside the monitoring device body is guided out through the heat dissipation device body, and then discharged from the inside of the protective shell body through the heat dissipation holes, thereby cooling the monitoring device body and reducing the service life of the monitoring device body due to heat accumulation. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The drawings described herein are used to provide a further understanding of the present invention and constitute a part of this application. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation on the present invention.
[0017] In the attached figure:
[0018] Figure 1 This is a schematic diagram of the three-dimensional structure of the mounting bracket body in the present utility model;
[0019] Figure 2This is a schematic diagram of the three-dimensional cross-sectional structure of the protective shell body in the present utility model;
[0020] Figure 3 This is a schematic diagram of the ratchet ring structure in the present utility model;
[0021] Figure 4 This is a schematic diagram of the main structure of the heat dissipation device in the present utility model;
[0022] Figure 5 for Figure 2 Enlarged view of point A.
[0023] In the figure: 1. Mounting bracket body; 11. Protective shell body; 12. Monitoring device body; 13. Servo motor; 14. Limiting groove; 15. Ratchet ring; 16. Ratchet body; 17. Brush; 18. Resistance shaft; 2. Heat conduction plate; 21. Hexagon screw; 22. Extrusion spring; 23. Heat dissipation device body; 24. Heat dissipation hole; 3. Threaded groove; 31. Torx screw; 4. Support column; 41. Rain shield; 5. Guide bone bar; 6. Connecting spring; 7. Ventilation hole. DETAILED DESCRIPTION
[0024] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0025] like Figure 1-5As shown, a remote construction monitoring device for the Internet of Things includes a mounting bracket body 1; a servo motor 13 is fixedly connected to the inner side of the top of the mounting bracket body 1; a protective shell body 11 is provided on the end of the mounting bracket body 1 close to the servo motor 13; a limiting groove 14 is provided inside the protective shell body 11; the servo motor 13 is slidably connected to the inside of the limiting groove 14; the output end of the servo motor 13 is located inside the limiting groove 14; a monitoring device body 12 is installed inside the protective shell body 11; a ratchet ring 15 is rotatably connected to the middle of the mounting bracket body 1 close to the end of the servo motor 13; a pawl is installed on the outside of the mounting bracket body 1 close to the ratchet ring 15 The main body 16; the ratchet ring 15 is provided with a brush 17 at one end away from the servo motor 13; the brush 17 is fixedly connected with a resistance shaft 18 at one end away from the ratchet ring 15; the resistance shaft 18 is rotatably connected to the mounting bracket main body 1; when working, the mounting bracket main body 1 is installed in the specified position, and then the protective shell main body 11 is placed on the top of the mounting bracket main body 1, and at the same time, the limiting groove 14 inside the mounting bracket main body 1 is connected to the servo motor 13 to realize the connection between the mounting bracket main body 1 and the protective shell main body 11, then the servo motor 13 is driven to start working, and the servo motor 13 drives the monitoring device main body 12 inside the protective shell main body 11 to start rotating through the limiting groove 14. 15 cooperates with the pawl body 16. When the protective shell body 11 starts to rotate in one direction, the protective shell body 11 drives the resistance shaft 18, the brush 17 and the ratchet ring 15 to start rotating, so as to adjust the angle of the monitoring device body 12. When the monitoring device body 12 needs to be cleaned, the servo motor 13 is reversed. Due to the cooperation between the ratchet ring 15 and the pawl body 16, the ratchet ring 15 is stuck on the outside of the mounting bracket body 1. At this time, the brush 17 remains stationary at the top of the protective shell body 11, and then the resistance shaft 18 is subjected to resistance and starts to rotate at the top of the protective shell body 11. When the monitoring device body 12 rotates to the position of the brush 17, the brush 17 presses against the monitoring device body 12. During the use of the monitoring device, some dust and stains may adhere to the monitoring lens, resulting in unclear monitoring images. Therefore, through the use of the ratchet ring 15, when the direction of the monitoring device body 12 needs to be adjusted, the ratchet ring 15 rotates along with the protective shell body 11. When the monitoring device body 12 needs to be cleaned, the servo motor 13 is reversed so that the ratchet ring 15 drives the brush 17 to remain stationary, and the protective shell body 11 still drives the monitoring device body 12 to rotate to clean the monitoring device body 12. Regular cleaning of the monitoring device body 12 greatly reduces the impact of stains on the surface of the monitoring device body 12 on the monitoring image.
[0026] like Figure 2 、 Figure 4-5As shown, a heat conducting plate 2 is installed inside the protective shell body 11 near the monitoring device body 12; a hexagonal screw 21 is threadedly connected to the inside of the heat conducting plate 2; an extrusion spring 22 is fixed to the outside of the hexagonal screw 21; a heat dissipation device body 23 is fixed to one side of the heat conducting plate 2; a heat dissipation hole 24 is opened on the top of the inner side of the protective shell body 11; when working, the heat conducting plate 2 is slid close to the monitoring device body 12, and the protective shell body 11 clamps both sides of the heat conducting plate 2. At this time, the hexagonal screw 21 is rotated to connect the heat conducting plate 2 to the protective shell body 11, so that the heat conducting plate 2 is fixed inside the protective shell body 11. Fixed, this is to drive the heat dissipation device body 23 on one side of the heat conducting plate 2 to work, and discharge the heat inside the protective shell body 11 through the heat dissipation holes 24. The monitoring device body 12 will generate heat during use. This heat accumulates inside the protective shell body 11, which will cause the life of the electronic components inside the monitoring device body 12 to be reduced. Therefore, the heat accumulated inside the monitoring device body 12 is extracted through the heat dissipation device body 23, and then discharged from the inside of the protective shell body 11 through the heat dissipation holes 24, thereby cooling the monitoring device body 12, reducing the service life of the monitoring device body 12 due to heat accumulation.
[0027] like Figure 2 、 Figure 5 As shown, a thread groove 3 is provided inside the limiting groove 14; a plum screw 31 is threadedly connected inside the thread groove 3; one end of the thread groove 3 is located inside the output end of the servo motor 13; when working, the plum screw 31 is brought close to the thread groove 3 inside the servo motor 13, and then the plum screw 31 is rotated to connect the limiting groove 14 with the thread groove 3. After the device is installed, since the working environment of the device may be subject to vibration and strong wind, which may affect the stability between the protective shell body 11 and the mounting bracket body 1, the mounting bracket body 1 is connected to the protective shell body 11 by the plum screw 31, which greatly reduces the impact of vibration and strong wind on the stability of the mounting bracket body 1 and the protective shell body 11.
[0028] like Figure 1-2 As shown, a support column 4 is fixedly connected to the top of the resistance shaft 18; a rain shield 41 is fixedly connected to the top of the support column 4; when working, the support column 4 is installed on the top of the resistance shaft 18, and the rain shield 41 is installed on the top of the support column 4. During use, the device may be used for outdoor operations at a construction site. At this time, extreme situations such as heavy rain or falling rocks may occur in the use scenario, causing damage to the monitoring device body 12, resulting in damage to the monitoring device body 12. Therefore, the top of the monitoring device body 12 is shielded by the rain shield 41, which increases the safety of the monitoring device body 12 in extreme situations.
[0029] like Figure 1-2As shown, a plurality of guide ribs 5 are fixedly connected to the top of the rain shield 41; when in operation, the guide ribs 5 are installed on the top of the rain shield 41. When encountering extreme situations such as heavy rain and falling rocks, the guide ribs 5 not only guide the rainwater but also increase the strength of the rain shield 41, thereby reducing the damage it suffers when encountering falling rocks, and further increasing the safety of the monitoring device body 12 in extreme situations.
[0030] like Figure 3 As shown, a connecting spring 6 is installed inside the pawl body 16; when working, the simplified connecting spring 6 is installed inside the pawl body 16 to pull and reset the pawl body 16. In the process of the ratchet ring 15 rotating around the mounting bracket body 1, the pawl body 16 is continuously reset by the connecting spring 6, thereby increasing the stability and reliability of the ratchet ring 15 during operation.
[0031] like Figure 4 As shown, the heat conducting plate 2 is provided with ventilation holes 7 on the side away from the heat dissipation device body 23; during operation, the use of the ventilation holes 7 can increase the circulation of air between the monitoring device body 12 and the heat conducting plate 2, thereby improving the heat dissipation efficiency of the monitoring device body 12.
[0032] Working principle: install the mounting bracket body 1 at the specified position, and then place the protective shell body 11 on the top of the mounting bracket body 1, and at the same time connect the limiting groove 14 inside the mounting bracket body 1 with the servo motor 13 to realize the connection between the mounting bracket body 1 and the protective shell body 11. At this time, the servo motor 13 is driven to start working, and the servo motor 13 drives the monitoring device body 12 inside the protective shell body 11 to start rotating through the limiting groove 14. Due to the cooperation between the ratchet ring 15 and the pawl body 16, when the protective shell body 11 starts to rotate in one direction, the protective shell body 11 drives the resistance shaft 18, the brush 17 and the ratchet ring 15 to start rotating, thereby realizing the adjustment of the angle of the monitoring device body 12. When the monitoring device body 12 needs to be adjusted When cleaning, the servo motor 13 is reversed. Due to the cooperation between the ratchet ring 15 and the pawl body 16, the ratchet ring 15 is stuck on the outside of the mounting bracket body 1. At this time, the brush 17 remains stationary on the top of the protective shell body 11, and then the resistance shaft 18 is subjected to resistance and begins to rotate on the top of the protective shell body 11. When the monitoring device body 12 rotates to the position of the brush 17, the brush 17 cleans the monitoring device body 12. During the use of the monitoring device, some dust and stains may be attached to the monitoring lens, resulting in unclear monitoring images. Therefore, through the use of the ratchet ring 15, when the direction of the monitoring device body 12 needs to be adjusted, the ratchet ring 15 rotates with the protective shell body 11. When the monitoring device body 12 needs to be cleaned, 2, reverse the servo motor 13, so that the ratchet ring 15 drives the brush 17 to remain stationary, and the protective shell body 11 still drives the monitoring device body 12 to rotate, and cleans the monitoring device body 12. Regular cleaning of the monitoring device body 12 greatly reduces the impact of stains on the surface of the monitoring device body 12 on the monitoring screen, and slides the heat conducting plate 2 close to the monitoring device body 12. The protective shell body 11 clamps both sides of the heat conducting plate 2. At this time, the hexagonal screws 21 are rotated to connect the heat conducting plate 2 with the protective shell body 11 to fix the heat conducting plate 2 inside the protective shell body 11. This drives the heat dissipation device body 23 on one side of the heat conducting plate 2 to work, and discharges the heat inside the protective shell body 11 through the heat dissipation holes 24. The monitoring device body 12 During use, heat is generated. This heat accumulates inside the protective shell body 11, which will reduce the life of the electronic components inside the monitoring device body 12. Therefore, the heat accumulated inside the monitoring device body 12 is extracted through the heat dissipation device body 23 and discharged from the inside of the protective shell body 11 through the heat dissipation holes 24, thereby cooling the monitoring device body 12 and reducing the service life of the monitoring device body 12 due to heat accumulation. The plum screw 31 is placed close to the thread groove 3 inside the servo motor 13, and then the plum screw 31 is rotated to connect the limit groove 14 with the thread groove 3. After the device is installed, the working environment of the device may be subject to vibration and strong wind, which may affect the stability between the protective shell body 11 and the mounting bracket body 1.Therefore, the mounting bracket body 1 and the protective shell body 11 are connected by the plum screw 31, which greatly reduces the impact of vibration and strong wind on the stability of the mounting bracket body 1 and the protective shell body 11. The support column 4 is installed on the top of the resistance shaft 18, and the rain shield 41 is installed on the top of the support column 4. During use, the device may be used for outdoor operations at a construction site. At this time, extreme situations such as heavy rain or falling rocks may occur in the use scenario, causing damage to the monitoring device body 12, resulting in damage to the monitoring device body 12. Therefore, the top of the monitoring device body 12 is shielded by the rain shield 41, which increases the safety of the monitoring device body 12 in extreme situations. The guide bone bar 5 is installed on the top of the rain shield 41. In extreme situations such as heavy rain and falling rocks, the guide bar 5 not only guides rainwater but also increases the strength of the rain shield 41, reducing damage to it from falling rocks and further enhancing the safety of the monitoring device body 12 in extreme situations. The connecting spring 6 is installed inside the pawl body 16, pulling and resetting the pawl body 16. As the ratchet ring 15 rotates around the mounting bracket body 1, the connecting spring 6 continuously resets the pawl body 16, increasing the stability and reliability of the ratchet ring 15 during operation. The use of the ventilation holes 7 can increase air circulation between the monitoring device body 12 and the heat conducting plate 2, improving the heat dissipation efficiency of the monitoring device body 12.
[0033] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements fall within the scope of the present invention as claimed.
Claims
1. A remote construction monitoring device for the Internet of Things, comprising a mounting bracket body (1); characterized in that: A servo motor (13) is fixedly connected to the inner side of the top of the mounting bracket body (1); a protective shell body (11) is provided at one end of the mounting bracket body (1) close to the servo motor (13); a limiting groove (14) is provided inside the protective shell body (11); the servo motor (13) is slidably connected inside the limiting groove (14); the output end of the servo motor (13) is located inside the limiting groove (14); a monitoring device body (12) is installed inside the protective shell body (11); a ratchet ring (15) is rotatably connected to one end of the middle of the mounting bracket body (1) close to the servo motor (13); a pawl body (16) is installed on the outer side of the mounting bracket body (1) close to the ratchet ring (15); a brush (17) is installed at one end of the ratchet ring (15) away from the servo motor (13); a resistance shaft (18) is fixedly connected to the end of the brush (17) away from the ratchet ring (15); the resistance shaft (18) is rotatably connected to the mounting bracket body (1).
2. The remote construction monitoring device for the Internet of Things according to claim 1, characterized in that: A heat conducting plate (2) is installed inside the protective shell body (11) near the monitoring device body (12); a hexagonal screw (21) is threadedly connected to the inside of the heat conducting plate (2); an extrusion spring (22) is fixed to the outside of the hexagonal screw (21); a heat dissipation device body (23) is fixed to one side of the heat conducting plate (2); and a heat dissipation hole (24) is opened on the top of the inner side of the protective shell body (11).
3. The remote construction monitoring device for the Internet of Things according to claim 1, characterized in that: A thread groove (3) is provided inside the limiting groove (14); a plum screw (31) is threadedly connected inside the thread groove (3); and one end of the thread groove (3) is located inside the output end of the servo motor (13).
4. The remote construction monitoring device for the Internet of Things according to claim 1, characterized in that: The top of the resistance shaft (18) is fixedly connected to a support column (4); the top of the support column (4) is fixedly connected to a rain shield (41).
5. The remote construction monitoring device applied to the Internet of Things according to claim 4, characterized in that: A plurality of groups of guide ribs (5) are fixedly connected to the top of the rain shield (41).
6. The remote construction monitoring device for the Internet of Things according to claim 1, characterized in that: A connecting spring (6) is installed inside the pawl body (16).
7. The remote construction monitoring device for the Internet of Things according to claim 2, characterized in that: A ventilation hole (7) is provided on the side of the heat conducting plate (2) away from the heat dissipation device body (23).