An IoT-based intelligent monitoring system

By designing an IoT-based intelligent monitoring system, the system dynamically adjusts the shading structure using components such as motor drives and elastic rods, solving the problem of direct sunlight affecting camera shooting and achieving flexible shading of sunlight to ensure monitoring effectiveness.

CN116192905BActive Publication Date: 2025-10-28HEBEI CHENRUISHENG NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202310208582.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-03-07
Publication Date
2025-10-28
Estimated Expiration
2043-03-07

AI Technical Summary

Technical Problem

Direct sunlight can affect the image quality of surveillance cameras, and current technology cannot effectively solve this problem by adjusting the aperture size.

Method used

An IoT-based intelligent monitoring system was designed, comprising a monitoring module, a wireless network module, and an IoT server. The monitoring module connects to the IoT server via the wireless network module to achieve remote monitoring. An adjustable shading structure, such as a front cover and a rear cover, is set in the monitoring module. Components such as motor drive and elastic rods are used to dynamically adjust the shading to prevent direct sunlight.

Benefits of technology

It effectively prevents direct sunlight from affecting the camera's shooting effect, and achieves flexible blocking of sunlight from different positions to ensure that the monitoring effect is not affected.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to a monitoring device, and more specifically, an intelligent monitoring system based on the Internet of Things (IoT). It includes a monitoring terminal, a monitoring module, a wireless network module, and an IoT server. The monitoring module is equipped with a wireless network module connected to the IoT server via the Internet, and the IoT server is connected to the monitoring terminal via the Internet. The monitoring module includes a base and a camera, with the camera positioned at the front of the base. The monitoring module also includes a fixing strip fixed to the lower rear side of the base, with screw holes at both ends. Sliding grooves are provided on both sides of the base, and a rear cover is slidably connected to the two sliding grooves. The monitoring module can prevent excessive sunlight from affecting the image capture.
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Description

Technical Field

[0001] This invention relates to a monitoring device, and more specifically to an intelligent monitoring system based on the Internet of Things. Background Technology

[0002] The Internet of Things (IoT) is an information carrier based on the internet, traditional telecommunications networks, etc., that connects all ordinary physical objects that can be independently addressed into an interconnected network. The IoT uses advanced identification technologies to convert the status of all objects into various parameters, and then achieves information sharing through the internet, forming a network that connects everything. Monitoring equipment is an important means of acquiring information in the IoT; however, if the sun shines directly on the camera of a monitoring device, the monitoring effect will be degraded, and simply adjusting the aperture size cannot solve this problem. Summary of the Invention

[0003] To overcome the shortcomings of existing technologies, this invention provides an intelligent monitoring system based on the Internet of Things, the beneficial effect of which is that the monitoring module can prevent excessive sunlight from affecting the shooting.

[0004] An IoT-based intelligent monitoring system includes a monitoring terminal, a monitoring module, a wireless network module, and an IoT server. The monitoring module is equipped with a wireless network module, which is connected to the IoT server via the Internet. The IoT server is connected to the monitoring terminal via the Internet.

[0005] The monitoring module includes a base and a camera, with the camera located at the front of the base.

[0006] The monitoring module also includes a fixing strip, which is fixed to the lower rear part of the block base, and screw holes are provided at both ends of the fixing strip.

[0007] The block base has sliding grooves on both sides, and the back cover is slidably connected to the two sliding grooves. Attached Figure Description

[0008] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0009] Figure 1 This is a schematic diagram of an IoT-based intelligent monitoring system.

[0010] Figure 2 Schematic diagram of the monitoring module Figure 1 ;

[0011] Figure 3 Schematic diagram of the monitoring module Figure 2 ;

[0012] Figure 4 Schematic diagram of the monitoring module Figure 3 ;

[0013] Figure 5 Schematic diagram of the monitoring module Figure 4 ;

[0014] Figure 6 Schematic diagram of the block base structure Figure 1 ;

[0015] Figure 7 Schematic diagram of the block base structure Figure 2 ;

[0016] Figure 8 Schematic diagram of the back cover structure Figure 1 ;

[0017] Figure 9 Schematic diagram of the back cover structure Figure 2 ;

[0018] Figure 10 Schematic diagram of the front cover Figure 1 ;

[0019] Figure 11 Schematic diagram of the front cover Figure 2 ;

[0020] Figure 12 Schematic diagram of the portal frame structure Figure 1 ;

[0021] Figure 13 Schematic diagram of the portal frame structure Figure 2 .

[0022] In the diagram: Block base 101; Camera 102; Slide groove 103; Telescopic rod 104; Fixing strip 105;

[0023] Rear cover 201; Friction wheel 202; Stop block 203; Arc groove 204; Boss 205; Motor I206;

[0024] Front cover 301; Arc-shaped slide bar 302; Pin 303; Bracket 304; Elastic rod I 305; Protruding shaft 306; Elastic rod II 307; Fixing base 308; Side plate 309; Slot 310; Gear ring 311; Motor II 312; Gear 313;

[0025] 401. Portal frame; 402. Rubber sheet; 403. Hollow cylinder; 404. Telescopic pole II; 405. Right angle frame; 406. Round pole; 407. Semi-cylinder. Detailed Implementation

[0026] like Figure 1 As shown, this example demonstrates how sunlight can be prevented from affecting the shooting results.

[0027] Since the IoT-based intelligent monitoring system includes a monitoring terminal, a monitoring module, a wireless network module, and an IoT server, the monitoring module is equipped with a wireless network module, which is connected to the IoT server via the Internet. The IoT server is connected to the monitoring terminal via the Internet. The monitoring images obtained by the monitoring module are transmitted to the IoT server through the wireless network module, and the IoT server then transmits the monitoring images to the monitoring terminal. Remote monitoring can be achieved through the monitoring terminal. The monitoring module can block sunlight to prevent sunlight from affecting the shooting effect.

[0028] like Figure 6-7 As shown, this example demonstrates how camera 102 can be used to capture and monitor a location.

[0029] Since the monitoring module includes a base 101 and a camera 102, the camera 102 is mounted on the base 101, and the monitoring location can be photographed and monitored through the camera 102.

[0030] like Figure 6-7 As shown, this example can achieve the effect of fixing the fixing strip 105 and the block base 101 to the wall.

[0031] Since the monitoring module also includes a fixing strip 105, the fixing strip 105 is connected to the lower rear part of the block base 101 by screws. Both ends of the fixing strip 105 are provided with screw holes, and screws can be inserted into both screw holes, so that the fixing strip 105 and the block base 101 can be fixed to the wall.

[0032] like Figure 6-9 As shown, this example can achieve the effect of protecting the block base 101 and the camera 102.

[0033] Since both sides of the block base 101 are provided with sliding grooves 103, the back cover 201 is slidably connected to the two sliding grooves 103. The back cover 201 can slide along the direction of the sliding grooves 103, and the back cover 201 can protect the block base 101 and the camera 102.

[0034] like Figure 6-9 As shown, this example can achieve the effect of adjusting the position of the back cover 201.

[0035] Since a telescopic rod I104 is connected to the block base 101 by screws, and the movable end of the telescopic rod I104 is connected to the rear cover 201 by screws, the extension and retraction of the telescopic rod I104 can drive the rear cover 201 to slide back and forth relative to the block base 101, thereby adjusting the position of the rear cover 201.

[0036] like Figure 6-11 As shown, this example can achieve the effect of preventing direct sunlight from affecting the operation of camera 102.

[0037] Since the front cover 301 is slidably connected to the two slide grooves 103, and the front cover 301 is located in front of the rear cover 201, when it is not necessary to block the upper side of the camera 102, the front cover 301 slides to the upper side of the block base 101. When it is necessary to block the upper side of the camera 102, the front cover 301 is driven to slide forward, so that the front cover 301 blocks the top of the camera 102, thereby preventing direct sunlight from affecting the operation of the camera 102.

[0038] like Figure 6-11 As shown, this example can achieve the effect of blocking sunlight coming from different positions.

[0039] Since a boss 205 is welded to the upper front of the back cover 201, and an arc-shaped groove 204 is provided on the front side of the boss 205, and a stop block 203 is connected to the front side of the arc-shaped groove 204 by screws, and an arc-shaped slide rod 302 is welded to the upper side of the front cover 301, the arc-shaped slide rod 302 is slidably connected to the arc-shaped groove 204. After the front cover 301 slides forward to block the camera 102, the arc-shaped slide rod 302 slides on the arc-shaped groove 204, and the front cover 301 can be adjusted to block the camera 102 at an angle above it. The position of the front cover 301 can be adjusted as needed to block sunlight from different positions.

[0040] like Figure 8 As shown, this example can achieve the effect of driving the arc-shaped slider 302 to slide along an arc-shaped trajectory on the arc-shaped groove 204.

[0041] Because the upper side of the back cover 201 is connected to the motor I206 by screws, and the output shaft of the motor I206 is connected to the friction wheel 202 by screws, the friction wheel 202 and the arc-shaped slide bar 302 are driven by friction, and the motor I206 drives the friction wheel 202 to rotate. When the friction wheel 202 rotates, it drives the arc-shaped slide bar 302 to slide on the arc-shaped groove 204 in an arc-shaped trajectory.

[0042] like Figure 10-13 As shown, this example can achieve the effect of blocking light around the entire perimeter of camera 102.

[0043] Since both sides of the front of the front cover 301 are welded with convex shafts 306, the upper parts of the two side plates 309 are rotatably connected to the two convex shafts 306 respectively. The outer sides of the two side plates 309 are connected to the fixing seats 308 by screws. The two ends of the portal frame 401 are slidably connected to the two fixing seats 308 respectively. The semi-cylinder 407 is connected to the middle of the portal frame 401 by screws. The two fixing seats 308 are each welded with elastic rods II 307. The other ends of the two elastic rods II 307 are respectively welded to the two ends of the portal frame 401. The two elastic rods II 307 provide a force to the portal frame 401 towards the two side plates 306. 9. The sliding force causes the semi-cylinder 407 to approach the two side plates 309. The two side plates 309 can rotate around the two convex shafts 306, thereby adjusting the position of the semi-cylinder 407. The semi-cylinder 407, the two side plates 309, and the front cover 301 block light around the camera 102. When the semi-cylinder 407 is not needed, the two side plates 309 can be rotated upwards, allowing the semi-cylinder 407 to slide onto the upper side of the front cover 301 through its outer arc surface. At this time, due to the elastic force of the two elastic rods II 307, the semi-cylinder 407 will be tightly attached to the upper side of the front cover 301.

[0044] like Figure 2-13 As shown, this example can achieve the effect of driving the semi-cylinder 407 to rotate about the axis of the convex shaft 306.

[0045] Because the right side of the front cover 301 is connected to the motor II 312 by screws, the output shaft of the motor II 312 is connected to the gear 313 by screws, and the right side plate 309 is connected to the gear ring 311 by screws. The gear 313 meshes with the gear ring 311 for transmission. The motor II 312 drives the gear 313 to rotate, and the gear 313 drives the gear ring 311 and the two side plates 309 to rotate around the axis of the convex shaft 306, thereby driving the semi-cylinder 407 to rotate around the axis of the convex shaft 306.

[0046] The left-side panel 309 has multiple slots 310 arranged in a ring around the convex shaft 306. The left side of the front cover 301 is connected to a bracket 304 by screws. The front part of the bracket 304 is slidably connected to a pin 303, which is inserted into one of the slots 310. One end of the elastic rod I 305 is welded to the bracket 304, and the other end of the elastic rod I 305 is welded to the pin 303.

[0047] like Figure 2-13 As shown, this example can achieve the effect of making the side plate 309 stable and fixed after rotation.

[0048] The elastic rod I305 provides elastic force to the pin 303, allowing the pin 303 to be inserted into one of the slots 310. The pin 303 is held in the slot 310, which makes the side plate 309 stable after rotation. If the side plate 309 is driven to rotate with great force, the end of the pin 303 is blade-shaped, allowing the pin 303 to slide out of the current slot 310 and insert into another slot 310.

[0049] The rubber sheet 402 is arc-shaped, and the middle part of the rubber sheet 402 is bonded to the middle of the outer side of the semi-cylinder 407. The middle part of the portal frame 401 is connected to the hollow cylinder 403 by screws. Both ends of the hollow cylinder 403 are slidably connected to right-angle frames 405. Both right-angle frames 405 are welded with round rods 406. Both right-angle frames 405 are driven to slide by telescopic rod II 404. The two round rods 406 are located at both ends of the inner side of the rubber sheet 402.

[0050] like Figure 2-13 As shown, this example can achieve the effect of blocking light over a larger area.

[0051] The two telescopic rods II404 can drive the two right-angle brackets 405 to slide, which in turn drives the two round rods 406 to slide, so that the two round rods 406 press against the inner ends of the rubber sheet 402. Normally, the rubber sheet 402 is pressed against the outside of the semi-cylinder 407, so that the rubber sheet 402 gradually straightens from a curved shape, expanding the blocking area of ​​the rubber sheet 402 and achieving a larger area of ​​light blocking.

Claims

1. An intelligent monitoring system based on the Internet of Things (IoT), comprising a monitoring terminal, a monitoring module, a wireless network module, and an IoT server, characterized in that: The monitoring module is equipped with a wireless network module, which is connected to the Internet of Things (IoT) server via the Internet. The IoT server is connected to the monitoring terminal via the Internet. The monitoring module includes a base (101) and a camera (102), with the camera (102) located at the front of the base (101); The monitoring module also includes a fixing strip (105), which is fixed to the lower rear part of the block base (101). Both ends of the fixing strip (105) are provided with screw holes. The block base (101) is provided with sliding grooves (103) on both sides, and the rear cover (201) is slidably connected to the two sliding grooves (103); A telescopic rod I (104) is fixedly connected to the block base (101), and the movable end of the telescopic rod I (104) is fixed to the rear cover (201); The front cover (301) is slidably connected to two slide grooves (103), and the front cover (301) is located in front of the rear cover (201).

2. The intelligent monitoring system based on the Internet of Things according to claim 1, characterized in that: A boss (205) is fixed on the upper front side of the rear cover (201). An arc-shaped groove (204) is provided on the front side of the boss (205). A stop block (203) is fixed on the front side of the arc-shaped groove (204). An arc-shaped slide rod (302) is fixed on the upper side of the front cover (301). The arc-shaped slide rod (302) is slidably connected to the arc-shaped groove (204).

3. The intelligent monitoring system based on the Internet of Things according to claim 2, characterized in that: A motor I (206) is fixed on the upper side of the rear cover (201), and a friction wheel (202) is fixed on the output shaft of the motor I (206). The friction wheel (202) and the arc-shaped slide rod (302) are driven by friction.

4. The intelligent monitoring system based on the Internet of Things according to claim 3, characterized in that: The front cover (301) has convex shafts (306) fixed on both sides of the front part. The upper parts of the two side plates (309) are rotatably connected to the two convex shafts (306). The outer sides of the two side plates (309) are fixed with fixed seats (308). The two ends of the portal frame (401) are slidably connected to the two fixed seats (308). The semi-cylinder (407) is fixed in the middle of the portal frame (401). The two fixed seats (308) are fixed with elastic rods II (307). The other ends of the two elastic rods II (307) are fixed to the two ends of the portal frame (401).

5. The intelligent monitoring system based on the Internet of Things according to claim 4, characterized in that: A motor II (312) is fixed on the right side of the front cover (301), a gear (313) is fixed on the output shaft of the motor II (312), and a gear ring (311) is fixed on the side plate (309) on the right side. The gear (313) meshes with the gear ring (311) for transmission.

6. The intelligent monitoring system based on the Internet of Things according to claim 5, characterized in that: The side plate (309) on the left side is provided with multiple slots (310) in a ring. The multiple slots (310) are located around the convex shaft (306). The left side of the front cover (301) is connected to a bracket (304) by screws. The front part of the bracket (304) is slidably connected to a pin (303). The pin (303) is inserted into one of the slots (310). One end of the elastic rod I (305) is welded to the bracket (304), and the other end of the elastic rod I (305) is welded to the pin (303).

7. The intelligent monitoring system based on the Internet of Things according to claim 6, characterized in that: The rubber sheet (402) is arc-shaped, and the middle part of the rubber sheet (402) is bonded to the middle of the outer side of the semi-cylinder (407). The middle part of the portal frame (401) is connected to the hollow cylinder (403) by screws. Both ends of the hollow cylinder (403) are slidably connected to the right angle frame (405). Both right angle frames (405) are welded with round rods (406). Both right angle frames (405) are driven to slide by the telescopic rod II (404). The two round rods (406) are located at the two ends of the inner side of the rubber sheet (402).

Citation Information

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