Big data monitoring device for intelligent security community

By introducing a spray mechanism and auxiliary support mechanism into the smart security community monitoring device, the problems of dust and bird droppings corrosion on the device surface are solved, ensuring the stability and image quality of the device in harsh weather and extending the device's lifespan.

CN121815103APending Publication Date: 2026-04-07ANHUI TELECOMM ENG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-23
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

After prolonged use, existing smart security community monitoring devices suffer from reduced measurement accuracy and equipment corrosion due to dust and bird droppings accumulating on the casing. Dust accumulation on the lenses also affects image quality, and the devices become unstable in inclement weather.

Method used

A big data monitoring device for smart security communities was designed, which includes a spray mechanism for automatically cleaning the surface of the monitoring body, an auxiliary support mechanism for stabilizing the column and cleaning the lens, and a multi-functional support and cleaning system through an electric slider and a telescopic rod. The position of the support plate can be adjusted by combining the electric slider and the telescopic rod to ensure the stability of the device in inclement weather.

Benefits of technology

It effectively prevents dust and impurities from adhering, improves the measurement accuracy and image quality of the monitoring device, enhances the stability of the device in harsh weather, extends the device's lifespan, and improves security.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of monitoring devices, and particularly discloses a big data monitoring device for an intelligent security community, which comprises a plurality of monitoring bodies and a stand column, the outer wall of the stand column is provided with a fixed rod, the top end of the fixed rod is provided with a plurality of fixed seats, and the plurality of monitoring bodies are connected with the fixed seats through arranged mounting mechanisms. A spraying mechanism and a shielding mechanism are arranged on the side, close to the monitoring bodies, of the top plate, and an auxiliary supporting mechanism is arranged on the outer wall of the stand column. According to the invention, when impurities are attached to the surfaces of the monitoring bodies, the surfaces of the plurality of monitoring bodies can be automatically washed through the arranged spraying mechanism, so that the problem that a large amount of impurities such as dust are attached to the surfaces of the monitoring bodies to affect the use of the monitoring bodies is avoided; the lenses of the plurality of monitoring bodies can be cleaned in cooperation with related parts of the auxiliary supporting mechanism, the picture shooting quality of the monitoring bodies is further improved, and therefore the monitoring device can be better used conveniently.
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Description

Technical Field

[0001] This invention relates to the field of monitoring device technology, specifically to a big data monitoring device for smart security communities. Background Technology

[0002] Smart security communities are a new type of community model that utilizes next-generation information technologies such as the Internet of Things, cloud computing, and artificial intelligence, combined with smart devices and platforms, to provide intelligent, digital, and networked solutions for community management and services. Its core focus is on improving security, comfort, convenience, and energy efficiency, thereby enhancing residents' sense of well-being and belonging. When monitoring public areas within the community, such as entrances, main roads, and parking lots, relevant monitoring devices are needed to monitor abnormal behaviors in real time, such as objects being thrown from heights, electric vehicles entering elevators, and people loitering, thereby improving the security level of these public areas.

[0003] In existing technologies, monitoring devices used in smart security communities inevitably accumulate dust and bird droppings on their outer casings due to prolonged exposure to the external environment. Because these devices are typically installed at high heights, regular manual cleaning is difficult, leading to significant dust and other contaminant buildup. Dust covering environmental sensors reduces measurement accuracy; acidic or alkaline bird droppings corrode the casing, causing metal parts to rust or plastic parts to become brittle; and dust, oil, or water stains on the lens surface directly result in blurred images, reduced contrast, and even halos or ghosting. All of these factors shorten the lifespan of the monitoring devices and increase their failure rate over extended use. Summary of the Invention

[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a big data monitoring device for smart security communities.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A smart security community big data monitoring device includes multiple monitoring units and a column. The outer wall of the column is equipped with a fixing rod, and the top of the fixing rod is equipped with multiple fixing seats. The multiple monitoring units are connected to the fixing seats through a set installation mechanism. The top of the column is equipped with a top plate. The side of the top plate near the multiple monitoring units is equipped with a spray mechanism and a shielding mechanism. The outer wall of the column is equipped with an auxiliary support mechanism for supporting and fixing itself and the multiple monitoring units.

[0007] Optionally, the installation mechanism includes a base, the monitoring body is installed on the top of the base, the base has two rectangular slots inside, and the inside of the two rectangular slots is connected to a limit block by a spring. The fixed seat has a limit slot inside that matches the two limit blocks.

[0008] Optionally, a base plate is installed at the bottom of the column, and the base plate is threadedly connected to a sleeve cast inside the cement base by multiple bolts. Multiple insertion holes are opened at the top of the cement base.

[0009] Optionally, the spraying mechanism includes two spray pipes, one end of which is rotatably connected to the outer wall of the top plate near the multiple monitoring bodies, and torsion springs are fitted on the rotating parts of the two spray pipes and the top plate.

[0010] Optionally, the outer walls of both nozzles are equipped with multiple nozzles facing the monitoring body. The column has a cavity inside, and a first water pipe is inserted into the cavity. The top of the first water pipe extends into the top plate and connects to two second water pipes. The ends of the two second water pipes away from the first water pipe extend into the corresponding nozzles. A toggle plate is installed on the outer walls of both nozzles away from the monitoring body.

[0011] Optionally, the shielding mechanism includes a U-shaped plate installed on the outer wall of the top plate near the side of the multiple monitoring bodies, a foldable shielding curtain installed inside the U-shaped plate, and a rectangular plate installed at the end of the shielding curtain away from the U-shaped plate.

[0012] Optionally, guide rails are installed at the top of both nozzles, and guide grooves are opened inside both guide rails. A guide block that slides back and forth inside the two guide grooves is installed at the bottom of the rectangular plate.

[0013] Optionally, the auxiliary support mechanism includes two first sliding grooves opened on the outer wall of the column, each of the two first sliding grooves is equipped with a first slider, and the ends of the two first sliders away from the first sliding grooves are jointly equipped with a sliding sleeve. The outer wall of the sliding sleeve is provided with an arc-shaped groove, and two electric sliders are installed inside the arc-shaped groove.

[0014] Optionally, each of the two electric sliders has a rotating seat rotatably mounted at the end away from the arc groove, and a first rotating block is rotatably mounted inside each of the two rotating seats. The ends of the two first rotating blocks away from the rotating seats are connected to a support plate through two first electric telescopic rods. The outer walls of the two support plates that are close to each other are provided with grooves, and multiple second rotating blocks are rotatably mounted inside each of the two grooves.

[0015] Optionally, each of the multiple second rotating blocks has a mounting plate connected to its end away from the rotating part via a second electric telescopic rod. Each of the mounting plates has a protrusion and a soft pad installed on its outer wall away from the second electric telescopic rod. Each of the two support plates has two third electric telescopic rods installed inside its end away from the first rotating block. Each of the telescopic ends of the two third electric telescopic rods has a plug installed.

[0016] The beneficial effects of this invention are:

[0017] 1. In this invention, when there are many impurities on the surface of multiple monitoring bodies, the spray mechanism can automatically wash the surface of multiple monitoring bodies to avoid the problem of dust and other impurities adhering to the surface of the monitoring bodies and affecting their use. With the help of the auxiliary support mechanism, the lenses of multiple monitoring bodies can be cleaned to further improve the image shooting quality of the monitoring bodies, thereby facilitating real-time monitoring of public areas inside the community.

[0018] 2. In this invention, if the monitoring device shakes during use in windy weather, the auxiliary support mechanism can help limit and fix the column. Furthermore, by moving and adjusting the two electric sliders inside the arc-shaped groove, the two support plates can be rotated to be directly above other sockets, which facilitates auxiliary limiting of the column in different positions. This avoids the risk of the unstable column shifting or even tipping over in windy weather, thus improving the protection of the entire monitoring device.

[0019] 3. In this invention, if the column itself does not sway, the use state of the relevant components of the auxiliary support mechanism can be changed so that the multiple second electric telescopic rods, together with the mounting plate, can have the effect of auxiliary clamping and fixing, thereby improving the stability of the multiple monitoring bodies when used in severe weather such as strong winds.

[0020] 4. In this invention, if the surrounding plant branches and leaves obstruct the lens parts of multiple monitoring units during use, the relevant components of the auxiliary support mechanism can be controlled to push the two support plates upward to push away the plant branches and leaves spreading around the multiple monitoring units, thereby avoiding affecting the use of the monitoring units. Attached Figure Description

[0021] To facilitate understanding by those skilled in the art, the present invention will be further described below with reference to the accompanying drawings.

[0022] Figure 1 This is a schematic diagram of the overall structure of a big data monitoring device for smart security communities proposed in this invention;

[0023] Figure 2 This is a schematic diagram of the auxiliary support mechanism in use according to the present invention;

[0024] Figure 3 This is a schematic diagram of another usage state of the auxiliary support mechanism in this invention;

[0025] Figure 4 This is a schematic diagram of the structure of the present invention excluding the auxiliary support mechanism and the cement base;

[0026] Figure 5 This is a schematic diagram of the structure in this invention where multiple monitoring bodies are separated from the fixed base;

[0027] Figure 6 This is a schematic diagram of the connecting mechanism in this invention;

[0028] Figure 7 This is a schematic diagram of the spraying mechanism in this invention;

[0029] Figure 8 This is a cross-sectional view of the top plate in this invention;

[0030] Figure 9 This is a schematic diagram of the shielding mechanism in this invention;

[0031] Figure 10 This is a schematic diagram of the auxiliary support mechanism in this invention;

[0032] Figure 11 This is a schematic diagram of the structure of the electric slider and support plate in this invention;

[0033] Figure 12 This is a schematic diagram of the groove and multiple second electric telescopic rods in this invention;

[0034] Figure 13 This is a schematic diagram of the structure of the mounting plate, protrusion, and pad in this invention.

[0035] In the diagram: 1. Cement base; 2. Column; 3. Fixing rod; 4. Fixing seat; 5. Monitoring body; 6. Top plate; 7. Spray pipe; 8. Sliding sleeve; 9. Support plate; 10. Insertion hole; 11. Base plate; 12. Bolt; 13. First sliding groove; 14. First rotating block; 15. Base; 16. Cavity; 17. Rectangular groove; 18. Spring; 19. Limiting block; 20. Guide rail; 21. Guide groove; 22. Spray head; 23. First water pipe; 24. 25. Actuating plate; 26. Second water pipe; 27. U-shaped plate; 28. Screen curtain; 29. ​​Rectangular plate; 20. Guide block; 31. First slider; 32. Arc groove; 33. Electric slider; 34. First electric telescopic rod; 35. Groove; 36. Limiting groove; 37. Rotating seat; 38. Third electric telescopic rod; 39. Insert rod; 40. Second electric telescopic rod; 41. Soft pad; 42. Second rotating block; 43. Mounting plate; 44. Protrusion. Detailed Implementation

[0036] The technical solution of the present invention will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0037] Reference Figures 1-13 A smart security community big data monitoring device includes multiple monitoring bodies 5 and a column 2. The outer wall of the column 2 is equipped with a fixing rod 3, and the top of the fixing rod 3 is equipped with multiple fixing seats 4. The multiple monitoring bodies 5 are connected and installed to the fixing seats 4 through a set installation mechanism. The top of the column 2 is equipped with a top plate 6. The side of the top plate 6 near the multiple monitoring bodies 5 is equipped with a spray mechanism and a shielding mechanism. The outer wall of the column 2 is equipped with an auxiliary support mechanism for supporting and fixing itself and the multiple monitoring bodies 5.

[0038] As a technical optimization of the present invention, the installation mechanism includes a base 15, with the monitoring body 5 mounted on top of the base 15. The base 15 has two rectangular slots 17 inside, each connected to a limiting block 19 via a spring 18. The fixed base 4 has a limiting groove 35 inside, which matches the two limiting blocks 19. When installing the monitoring body 5 inside the fixed base 4, first ensure that the positions of the two limiting blocks 19 are on the same straight line as the two limiting grooves 35. Then, manually press the monitoring body 5 downwards, causing the two limiting blocks 19 to be compressed. With the elastic contraction of the two springs 18, the two limiting blocks 19 briefly enter the corresponding rectangular slots 17 until they move downwards to a position flush with the corresponding limiting grooves 35. At this point, the two limiting blocks 19 are no longer compressed and elastically reset with the help of the corresponding springs 18, allowing them to smoothly insert into the corresponding limiting grooves 35. This completes the quick connection and limiting of the base 15 and the fixed base 4, thereby achieving the effect of quickly installing the monitoring body 5 on top of the fixed base 4.

[0039] As a technical optimization of the present invention, a base plate 11 is installed at the bottom of the column 2. The base plate 11 is threadedly connected to a sleeve cast inside the cement base 1 by multiple bolts 12. Multiple insertion holes 10 are opened on the top of the cement base 1. Multiple sleeves with internal threads are pre-cast inside the cement base 1. After aligning the multiple holes inside the base plate 11 with the multiple sleeves inside the cement base 1, multiple bolts 12 are sequentially passed through the holes of the base plate 11 and threadedly connected to the sleeves, so that the column 2 and other components can be installed on the top of the cement base 1 for stable use.

[0040] As an optimized technical solution of the present invention, the spraying mechanism includes two spray pipes 7. One end of each spray pipe 7 is rotatably connected to the outer wall of the top plate 6 near the multiple monitoring bodies 5. Torsion springs are fitted onto the rotating parts of both spray pipes 7 and the top plate 6. The torsion springs at the rotatable connection points of the two spray pipes 7 and the top plate 6 allow the two spray pipes 7 to rotate synchronously upwards and downwards when subjected to an upward or downward thrust. After the thrust disappears, the two spray pipes 7 automatically and elastically return to their horizontal position thanks to the elasticity of the torsion springs.

[0041] As a technical optimization of the present invention, multiple nozzles 22 facing the monitoring body 5 are installed on the outer walls of both nozzles 7. A cavity 16 is opened inside the column 2, and a first water pipe 23 is inserted into the cavity 16. The top end of the first water pipe 23 extends into the top plate 6 and connects to two second water pipes 25. The ends of the two second water pipes 25 away from the first water pipe 23 extend into the corresponding nozzles 7. A toggle plate 24 is installed on the outer wall of both nozzles 7 away from the monitoring body 5. After the entire device is put into use, the output end of the externally preset water spraying equipment is connected to the bottom end of the first water pipe 23, so that cleaning water can be transported through the first water pipe 23 to the two second water pipes 25 and the corresponding nozzles 7, and sprayed outward through the multiple nozzles 22 onto the surfaces of multiple monitoring bodies 5 to wash away impurities attached to the surfaces of multiple monitoring bodies 5.

[0042] As a technical optimization of the present invention, the shielding mechanism includes a U-shaped plate 26 installed on the outer wall of the top plate 6 near the side of the multiple monitoring bodies 5, a foldable shielding curtain 27 installed inside the U-shaped plate 26, and a rectangular plate 28 installed at the end of the shielding curtain 27 away from the U-shaped plate 26.

[0043] As a technical optimization of the present invention, guide rails 20 are installed at the top of both nozzles 7, and guide grooves 21 are opened inside both guide rails 20. Guide blocks 29 that slide back and forth inside the two guide grooves 21 are installed at the bottom of the rectangular plate 28. Since the rectangular plate 28 at the end of the curtain 27 away from the U-shaped plate 26 is slidably connected to the two guide grooves 21 by means of the two guide blocks 29 at the bottom, the guide blocks 29 located inside the two guide grooves 21 can slide downwards in the same manner after the two nozzles 7 are rotated downwards and tilted, and pull the folded curtain 27 to slide downwards and unfold; after the two nozzles 7 are rotated upwards and tilted in the same manner, the two guide blocks 29 can slide downwards in the direction close to the top plate 6 inside the corresponding guide grooves 21, so that the unfolded curtain 27 slides back to its original position.

[0044] As a technical optimization of the present invention, the auxiliary support mechanism includes two first sliding grooves 13 opened on the outer wall of the column 2. A first slider 30 is installed inside each of the two first sliding grooves 13. A sliding sleeve 8 is installed at the end of each of the two first sliders 30 away from the first sliding groove 13. An arc-shaped groove 31 is opened on the outer wall of the sliding sleeve 8, and two electric sliders 32 are installed inside the arc-shaped groove 31. A linear motor is pre-installed inside each of the two first sliding grooves 13. The two linear motors can drive the two first sliders 30 to move up and down inside the corresponding first sliding groove 13, thereby driving the sliding sleeve 8 to move up and down on the surface of the column 2 for adjustment. Two arc-shaped motors (ring linear motors) are pre-installed inside the arc-shaped groove 31. The two electric sliders 32 can move and adjust inside the arc-shaped groove 31 with the help of the corresponding arc-shaped motors.

[0045] As a technical optimization of the present invention, a rotating seat 36 is rotatably installed at the end of each of the two electric sliders 32 away from the arc groove 31. A first rotating block 14 is rotatably installed inside each of the two rotating seats 36. A support plate 9 is connected to the end of each of the two first rotating blocks 14 away from the rotating seat 36 through two first electric telescopic rods 33. A groove 34 is opened on the outer wall of the side of the two support plates 9 that are close to each other. A plurality of second rotating blocks 41 are rotatably installed inside each of the two grooves 34. Each of the two electric sliders 32 has a first driving device pre-installed inside. The output ends of the two first driving devices are respectively connected to their corresponding rotating seats 36, thereby driving the two rotating seats 36 to rotate and adjust. Each of the two rotating seats 36 has a second driving device pre-installed on one side of its outer wall. The output ends of the two second driving devices are respectively connected to the rotating parts of one end of the corresponding first rotating block 14, thereby driving the two first rotating blocks 14 to rotate and adjust inside the corresponding rotating seats 36. The telescopic ends of the two first electric telescopic rods 33 can drive the support plate 9 to telescopically adjust during the telescopic process. Each of the two support plates 9 has a plurality of third driving devices pre-installed on one side of its outer wall. The output ends of the plurality of third driving devices are respectively connected to the rotating parts of one end of the corresponding second rotating block 41, thereby driving the plurality of second rotating blocks 41 to rotate and adjust together inside the groove 34.

[0046] As a technical optimization of the present invention, each of the multiple second rotating blocks 41 has a mounting plate 42 connected to its end away from the rotating part via a second electric telescopic rod 39. Each of the mounting plates 42 has a protrusion 43 and a soft pad 40 installed on its outer wall away from the second electric telescopic rod 39. Each of the two support plates 9 has two third electric telescopic rods 37 installed inside its end away from the first rotating block 14. Each of the telescopic ends of the two third electric telescopic rods 37 has a plug 38 installed. As the multiple second rotating blocks 41 rotate and adjust within the groove 34, the multiple second electric telescopic rods 39, the mounting plate 42, and the soft pad 40 can rotate and adjust together. Each of the multiple second rotating blocks 41 has a pre-installed fourth driving device, the output ends of which are connected to their corresponding second electric telescopic rods 39, thereby enabling the multiple second electric telescopic rods 39 and the mounting plate 42 to rotate and adjust together. During the telescopic process of the two third electric telescopic rods 37, the telescopic ends can drive the corresponding plug 38 to extend and retract together.

[0047] In this embodiment, after the entire monitoring device is installed at a designated location in the community, a control box is set up around the pillar 2 to manage the multiple monitoring units 5 and other components requiring power. The control box is equipped with a power management system that provides a stable power supply to the connected devices and components and distributes power appropriately. Furthermore, the control box provides a data transmission interface to ensure that monitoring data can be transmitted to the central control system in real time and stably. The central control system can also remotely control the control box to achieve precise control over the multiple monitoring units 5 and other related components.

[0048] In this invention, when using the device, the user first drills holes in the area where the monitoring device needs to be installed within the community. After placing the cement base 1 inside the holes, the user reinforces the area around the cement base 1 with concrete. After the concrete dries and hardens, the user first ensures that the positions of the limiting blocks 19 of the multiple bases 15 are aligned with the limiting grooves 35. Then, the user manually presses down on the multiple monitoring bodies 5 in sequence, causing the two limiting blocks 19 inside the base 15 to be squeezed. With the elastic contraction of the two springs 18, the two limiting blocks 19 briefly enter the corresponding rectangular grooves 17 until they move down to a position flush with the corresponding limiting grooves 35. At this point, the two limiting blocks 19 are no longer squeezed and are elastically reset by the corresponding springs 18, causing the two limiting blocks 19 to be inserted into the corresponding limiting grooves 35. This completes the quick connection and limiting of the base 15 and the fixed seat 4, thereby achieving the effect of quickly installing multiple monitoring bodies 5 on the top of the corresponding fixed seat 4.

[0049] After installing multiple monitoring units 5 inside the corresponding fixed bases 4, the base plate 11 at the bottom of the column 2 can be connected to multiple pre-set sleeve threads inside the cement base 1 through multiple bolts 12, and the control lines of the multiple monitoring units 5 can be laid, so that the multiple monitoring units 5 can be put into use and monitor the security of the community in real time. By integrating multi-dimensional data resources and using intelligent analysis technology, the level of refinement and intelligence of community management can be significantly improved, while enhancing residents' sense of security and quality of life.

[0050] Because the multiple monitoring units 5 have good waterproof and dustproof performance, they can be used for a long time in the external environment. However, after a lot of impurities similar to bird droppings adhere to the surface of the multiple monitoring units 5, it will inevitably affect the heat dissipation and corrosion resistance of their own shells. At this time, the external preset water spray equipment can be activated to deliver cleaning water to the inside of the two spray pipes 7 through the first water pipe 23 and the two second water pipes 25 in sequence. The water is then sprayed outwards onto the surface of the multiple monitoring units 5 through multiple nozzles 22 to wash away the impurities adhering to the surface of the multiple monitoring units 5, maintain the cleanliness of the multiple monitoring units 5 during use, and indirectly improve the service life of the multiple monitoring units 5.

[0051] At the same time, dust and other impurities adhering to the lens glass surfaces of multiple monitoring units 5 can affect the quality of the images they capture. Figure 3 As shown, at night or during other idle times, the two rotating seats 36 can be controlled to drive the corresponding first rotating blocks 14 and support plates 9 to rotate upwards towards the multiple monitoring bodies 5 to a horizontal state. With the help of the two first sliders 30, they move upwards within the corresponding first sliding grooves 13, causing the sliding sleeves 8 and the two adjusted support plates 9, along with other components, to move upwards to positions close to the front and rear ends of the multiple monitoring bodies 5. This allows the multiple second rotating blocks 41 near the lens areas of the multiple monitoring bodies 5 to rotate and adjust within their corresponding grooves 34, thereby driving the multiple second electric telescopic rods 39, mounting plates 42, and soft pads. The multiple soft pads 40 rotate and extend together, so that after rotating and extending, they are respectively positioned in front of the lenses of the multiple monitoring bodies 5. Then, the telescopic ends of the multiple second electric telescopic rods 39 are controlled to extend together, causing the multiple soft pads 40 to slightly abut against the lens glass of the corresponding monitoring body 5. The multiple second electric telescopic rods 39 and the soft pads 40 are controlled to rotate, so that the multiple rotating soft pads 40 can clean the lens glass of the multiple monitoring bodies 5 respectively. With the cleaning water sprayed onto the surface of the monitoring body 5 by the multiple nozzles 22, the cleaning effect on the impurities on the lens glass surface can be improved, so that the image quality of the multiple monitoring bodies 5 can be guaranteed.

[0052] To detach multiple monitoring units 5 from the top of multiple fixed seats 4 for disassembly and maintenance, the above steps can be repeated. Using the two first sliders 30, the sliding sleeve 8, two horizontal support plates 9, and other components move upwards to a position close to the base 15. Then, control the multiple second rotating blocks 41 inside the two grooves 34 to rotate and extend, ensuring that the multiple mounting plates 42 and multiple limiting blocks 19 are on the same horizontal plane. Next, control the extension ends of the multiple extended second electric telescopic rods 39 to extend together, pushing the multiple mounting plates 42 towards a position close to the base 15 until the multiple soft pads 40 are all in contact with the outer wall of the corresponding fixed seat 4. As the extension ends of the multiple second electric telescopic rods 39 continue to extend, the multiple soft pads 40 deform under pressure, and the protrusions 43 inside the soft pads 40 slowly enter the corresponding limiting grooves 35, thus... Figure 6 The arc surface at the bottom of the limiting block 19 is pushed to push the limiting block 19 to retract completely into the corresponding rectangular groove 17. This maintains the state of the two support plates 9 and the multiple second electric telescopic rods 39. When the staff moves the ladder to a position close to the multiple monitoring bodies 5, the two limiting blocks 19 inside the multiple bases 15 are retracted into the corresponding rectangular grooves 17. This allows the staff to directly remove the monitoring bodies 5 from inside the fixed base 4, making it convenient for the staff to quickly disassemble and remove the multiple monitoring bodies 5 from inside the fixed base 4, thus improving the maintenance efficiency of the multiple monitoring bodies 5.

[0053] The monitoring device installed on top of the concrete base 1, when exposed to severe weather such as strong winds, utilizes an SCA620-EF8H1A accelerometer sensor pre-installed inside the column 2 to monitor whether the column 2 sways in strong winds. If the column 2 itself sways, then... Figure 2 As shown, after the two rotating seats 36 drive the two support plates 9 to rotate to a vertical position, the two first sliders 30 are controlled to move downwards inside the corresponding first grooves 13, driving the two vertical support plates 9 to move downwards together until the bottom ends of the two support plates 9 abut against the top of the cement base 1. Then, the telescopic ends of the two third electric telescopic rods 37 are controlled to extend together, pushing the insertion rod 38 into the insertion hole 10 opened at the top of the cement base 1. At this time, the auxiliary support mechanism can have the effect of auxiliary limiting and fixing the column 2. And by adjusting the movement of the two electric sliders 32 inside the arc groove 31, the two support plates 9 can be driven to rotate directly above other insertion holes 10, which is convenient for auxiliary limiting of the column 2 in different positions, avoiding the risk of the column 2, which has its own instability, shifting or even tipping over in windy weather, thus improving the protection effect of the entire monitoring device.

[0054] If the column 2 itself does not wobble, to ensure the safety of multiple monitoring units 5 when used on top of the fixing rod 3, the steps of cleaning the lenses of the multiple monitoring units 5 described above can be repeated. The two horizontal support plates 9 are moved and adjusted to the front and rear sides of the multiple monitoring units 5. The multiple second electric telescopic rods 39 inside the two grooves 34 are controlled to rotate and extend outwards together, and the telescopic ends of the multiple second electric telescopic rods 39 are controlled to extend together, causing the multiple mounting plates 42 to tightly abut against the connection points between the multiple monitoring units 5 and the base 15. This provides auxiliary clamping and fixing for the multiple monitoring units 5, improving their stability in adverse weather conditions such as strong winds. Because the second electric telescopic rods 39, in conjunction with the mounting plates 42, clamp and fix the monitoring units 5 near the base 15, they will not obstruct the lenses of the monitoring units 5.

[0055] Furthermore, if, during the use of multiple monitoring units 5, the surrounding plants grow too densely and obstruct the lens area of ​​the multiple monitoring units 5, the two rotating seats 36 can be controlled to drive the two support plates 9 to rotate upwards to a vertical state, and the telescopic ends of the corresponding two first electric telescopic rods 33 can be extended upwards to push the two support plates 9 upwards, thereby pushing away the spreading plants around the multiple monitoring units 5 and avoiding affecting the use of the monitoring units 5.

[0056] If there are some vine-like plants on the ground near the monitoring device, in order to prevent these plants from attaching to the surface of the column 2 and spreading upwards, thus affecting the use of the monitoring body 5, after such plants are found on the ground, the two first rotating blocks 14 can be controlled to rotate horizontally inside the corresponding rotating seats 36, and the two first sliders 30 can be controlled to slide downwards inside the corresponding first sliding grooves 13. This will cause the two horizontal support plates 9 to move downwards to a position close to the cement base 1. The two electric sliders 32 can be controlled to move and adjust inside the arc-shaped grooves 31, which will cause the two support plates 9 to move synchronously, pushing the plants close to the column 2 to a position away from the column 2, thereby reducing the adverse effects of such plants on the use of the monitoring device.

[0057] In winter when there is snowfall or in summer when the sun is strong, to prevent snow accumulation on the tops of multiple monitoring units 5 and to avoid strong sunlight affecting the real-time shooting operation of the monitoring unit 5's lens, the two first sliders 30 can be controlled to move upward within the corresponding first slide grooves 13, thereby moving the two support plates 9 upward together to below the two nozzles 7. The two rotating seats 36 are then controlled to rotate the two support plates 9 upward together until the ends of the two support plates 9 away from the first rotating block 14 rotate upward to a position higher than the nozzles 7. Then, one of the second rotating blocks 41 inside the two grooves 34 is controlled to drive the corresponding second electric telescopic rod 39 and mounting plate 42 to rotate outward and extend, so that the extended second electric telescopic rod 39 and mounting plate 42 are respectively located on the two actuating plates 24. Above, as the two rotating seats 36 drive the two first rotating blocks 14 and the support plate 9 to rotate downwards and reset, the extended second electric telescopic rod 39 and the mounting plate 42 can push the two toggle plates 24 downwards, causing the two nozzles 7 to rotate downwards and tilt. The guide block 29 located inside the two guide grooves 21 can slide downwards towards the lower end and cause the shielding curtain 27 to unfold. Then, the two rotating seats 36 can be controlled to slowly rotate upwards again, causing the two support plates 9 to rotate to a horizontal state. This allows the two nozzles 7 to reset to a horizontal state by means of the elastic reset of the corresponding two torsion springs. At this time, the shielding curtain 27, which is unfolded at the top of the two nozzles 7, can provide shielding and protection for multiple monitoring bodies 5, ensuring that the multiple monitoring bodies 5 can be used in snowy and sunny weather.

[0058] When it is necessary to control the retraction and reset of the shielding curtain 27, the above steps can be repeated after the two horizontal support plates 9 are located below the two nozzles 7. This causes one of the second rotating blocks 41 inside the two grooves 34 to drive the corresponding second electric telescopic rod 39 and mounting plate 42 to rotate outward and extend. As the two support plates 9 move upward, the rotated and extended second electric telescopic rod 39 and mounting plate 42 can push the two toggle plates 24 upward, causing the unfolded shielding curtain 27 to retract towards the lower end, thereby releasing the shielding curtain 27 from the shielding and protection effect on the multiple monitoring bodies 5.

[0059] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A big data monitoring device for smart security communities, comprising multiple monitoring units (5) and a support column (2), characterized in that, The outer wall of the column (2) is equipped with a fixing rod (3), and the top of the fixing rod (3) is equipped with multiple fixing seats (4). Multiple monitoring bodies (5) are connected to the fixing seats (4) through the installation mechanism. The top of the column (2) is equipped with a top plate (6). The top plate (6) is equipped with a spraying mechanism and a shielding mechanism on the side close to the multiple monitoring bodies (5). The outer wall of the column (2) is equipped with an auxiliary support mechanism for supporting and fixing itself and the multiple monitoring bodies (5).

2. The big data monitoring device for smart security communities according to claim 1, characterized in that, The installation mechanism includes a base (15), the monitoring body (5) is installed on the top of the base (15), the base (15) has two rectangular slots (17) inside, and the interior of the two rectangular slots (17) is connected to limit blocks (19) by springs (18). The interior of the fixed seat (4) is provided with limit slots (35) that are adapted to the two limit blocks (19).

3. The big data monitoring device for smart security communities according to claim 1, characterized in that, The bottom end of the column (2) is equipped with a base plate (11), which is connected to the sleeve cast inside the cement base (1) by multiple bolts (12). Multiple insertion holes (10) are opened on the top of the cement base (1).

4. The big data monitoring device for smart security communities according to claim 1, characterized in that, The spraying mechanism includes two spray pipes (7), one end of each spray pipe (7) is rotatably connected to the outer wall of the top plate (6) near the multiple monitoring bodies (5), and torsion springs are fitted on the rotating parts of the two spray pipes (7) and the top plate (6).

5. The big data monitoring device for smart security communities according to claim 4, characterized in that, The outer walls of the two nozzles (7) are each equipped with a plurality of nozzles (22) facing the monitoring body (5). The column (2) has a cavity (16) inside. A first water pipe (23) is inserted into the cavity (16). The top of the first water pipe (23) extends to the top plate (6) and is connected to two second water pipes (25). The ends of the two second water pipes (25) away from the first water pipe (23) extend into the corresponding nozzles (7). The outer walls of the two nozzles (7) away from the monitoring body (5) are each equipped with a toggle plate (24).

6. The big data monitoring device for smart security communities according to claim 4, characterized in that, The shielding mechanism includes a U-shaped plate (26) installed on the outer wall of the top plate (6) near the side of the multiple monitoring bodies (5), a foldable shielding curtain (27) installed inside the U-shaped plate (26), and a rectangular plate (28) installed at the end of the shielding curtain (27) away from the U-shaped plate (26).

7. A big data monitoring device for smart security communities according to claim 6, characterized in that, The top ends of the two nozzles (7) are each equipped with a guide rail (20), and the interior of the two guide rails (20) is provided with a guide groove (21). The bottom end of the rectangular plate (28) is equipped with a guide block (29) that slides back and forth inside the two guide grooves (21).

8. The big data monitoring device for smart security communities according to claim 1, characterized in that, The auxiliary support mechanism includes two first sliding grooves (13) opened on the outer wall of the column (2). A first slider (30) is installed inside each of the two first sliding grooves (13). A sliding sleeve (8) is installed at the end of the two first sliders (30) away from the first sliding groove (13). An arc groove (31) is opened on the outer wall of the sliding sleeve (8). Two electric sliders (32) are installed inside the arc groove (31).

9. A big data monitoring device for smart security communities according to claim 8, characterized in that, Two electric sliders (32) are rotatably mounted with a rotating seat (36) at the end away from the arc groove (31). A first rotating block (14) is rotatably mounted inside the two rotating seats (36). The ends of the two first rotating blocks (14) away from the rotating seats (36) are connected to a support plate (9) through two first electric telescopic rods (33). A groove (34) is opened on the outer wall of the side of the two support plates (9) that are close to each other. Multiple second rotating blocks (41) are rotatably mounted inside the two grooves (34).

10. A big data monitoring device for smart security communities according to claim 9, characterized in that, Each of the second rotating blocks (41) has a mounting plate (42) connected to its end away from the rotating part via a second electric telescopic rod (39). Each of the mounting plates (42) has a protrusion (43) and a soft pad (40) installed on the outer wall of its side away from the second electric telescopic rod (39). Each of the two support plates (9) has two third electric telescopic rods (37) installed inside its end away from the first rotating block (14). Each of the two third electric telescopic rods (37) has a plug (38) installed at its telescopic end.