Monitoring equipment based on artificial intelligence

By integrating insect sucking, insect killing, heat dissipation and protection mechanisms on the camera, the problems of mosquitoes affecting monitoring clarity and heat dissipation are solved, the service life is extended and the cleaning process is simplified, achieving efficient monitoring and maintenance.

CN120751222APending Publication Date: 2025-10-03HUBEI UNIV OF EDUCATION
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Patent Information

Application Number
CN202510793319.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-13
Publication Date
2025-10-03

AI Technical Summary

Technical Problem

Existing security cameras easily attract mosquitoes when monitoring at night, affecting the lighting effect and monitoring clarity. They also lack heat dissipation and protective measures, resulting in a shortened service life and difficulty in cleaning.

Method used

An insect sucking mechanism, an insect killing mechanism, a lighting mechanism, a heat dissipation mechanism and a protective mechanism are installed on the camera body. Mosquitoes are attracted to the power grid and killed by a fan, the fan is used to dissipate heat, and the lens is quickly cleaned through a detachable transparent protective film.

Benefits of technology

Effectively kill mosquitoes, ensure monitoring clarity, extend camera life, simplify lens cleaning process, and improve user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of intelligent monitoring equipment, in particular to monitoring equipment based on artificial intelligence, which comprises a camera body, an insect suction mechanism and a lighting mechanism, the insect suction mechanism and the lighting mechanism are mounted on the camera body, an insect killing mechanism is mounted on the insect suction mechanism, and the insect killing mechanism is connected with the lighting mechanism; when the bulb is used for illumination at night, the bulb is started through the controller, the bulb can attract mosquitoes, after the bulb is powered on, the second wire is connected with a power source through the first wire, the multiple obliquely-arranged fans located on the mounting block can blow air into the exhaust duct, negative pressure is generated to suck air when the fans are close to the end of the camera, and the mosquitoes can be attracted to the power grid. After the second wire is connected with the power source, the third wire is also connected with the power source, the power grid is powered on at the moment, the multiple fans are started and the power grid is powered on when the bulb illuminates, the fans attract mosquitoes at the lens to the power grid when the bulb illuminates, the mosquitoes are killed, the situation that the mosquitoes gather to affect illumination is avoided, and monitoring of the camera body is clearer.
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Description

Technical Field

[0001] The present invention relates to the technical field of intelligent monitoring equipment, in particular to a monitoring equipment based on artificial intelligence. Background Art

[0002] Artificial intelligence monitoring equipment generally refers to cameras, which belong to the security field. It combines artificial intelligence technology (such as computer vision, deep learning, big data analysis, etc.) with traditional monitoring systems to realize intelligent analysis, early warning and response to monitoring scenes. The monitoring of cameras involves optical imaging, signal acquisition, data transmission, intelligent analysis, storage and playback and other links. Through adjustable focus lenses (such as electric zoom lenses), the light of the target scene is focused onto the surface of the image sensor to form a clear image. The storage system inside the camera stores the collected information on the storage card or cloud storage. It is wirelessly connected to the camera through some smart devices such as mobile phones. When connected, it can be connected through APP for remote monitoring and viewing.

[0003] However, some current security cameras have lighting components to assist in monitoring scenes in an area. The lighting can be turned on when there is an intrusion at night or the user needs lighting for a long time. When the lighting assists the camera for monitoring at night, it is easy to attract mosquitoes to chase the light (the light emitted by the camera lighting). There is no insect repellent or insecticide component, which not only affects the lighting effect of the user, but also mosquitoes always gather in front of the camera, resulting in unclear monitoring by the surveillance camera, which is not conducive to the investigation of events during playback; surveillance cameras are generally used throughout the year without stopping, and there is no heat dissipation component on the camera body. Long-term monitoring can easily cause the body parts to heat up, which not only easily causes recording jams during use, but also easily reduces its service life; the camera is generally protected by a piece of transparent glass for the lens, and the camera is generally installed at a high place. Dust is easily stained on the glass, which is not convenient to wipe. When there is a lot of dust, it will also block the camera's monitoring line of sight, which is not conducive to clear recording within the area. Summary of the Invention

[0004] In response to the problems in the prior art, the present invention provides a monitoring device based on artificial intelligence.

[0005] The technical solution adopted by the present invention to solve its technical problems is: a monitoring device based on artificial intelligence, including a camera body, a sucker mechanism and a lighting mechanism installed on the camera body, the sucker mechanism is equipped with an insecticidal mechanism, and the insecticidal mechanism is connected to the lighting mechanism; the sucker mechanism includes a fixed shell, the bottom of the camera body is fixedly connected to the fixed shell, the end of the fixed shell is welded with an arc-shaped structure and an air guide shell with an inclined opening, an exhaust duct is provided inside the fixed shell, a mounting block is welded inside the air guide shell, a fan is installed on the mounting block, the fan is installed parallel to the top of the air guide shell, and an exhaust port connected to the exhaust duct is opened on the mounting block; the insecticidal mechanism includes an electric grid, and the top of the air guide shell is provided with an electric grid.

[0006] Specifically, a plurality of fans are provided on the mounting block, and the plurality of fans are arranged in a linear array, and the plurality of fans are connected in series.

[0007] Specifically, the insecticidal mechanism also includes a second wire, which is installed on the camera body and electrically connected to the fan. A third wire is electrically connected to the second wire, which is electrically connected to the power grid, and the power grid and the fan are arranged in parallel.

[0008] Specifically, the insecticide mechanism further includes two side plates, and the two side plates are welded to the outer sides of the air guide shell. The two side plates are rotatably connected to a rotating shaft, and the opposite ends of the two rotating shafts are fixedly connected to the power grid.

[0009] Specifically, the lighting mechanism includes a controller, which is installed inside the camera body. The controller is electrically connected to wire 1. A light bulb is installed on the side of the camera body. The wire 1 is electrically connected to the light bulb, and the wire 2 is electrically connected to wire 1.

[0010] Specifically, the camera body is provided with a heat dissipation mechanism, which includes an inspection plate and ventilation holes. The side of the camera body is mounted with an inspection plate by bolts, and a plurality of ventilation holes are equidistantly provided on the inspection plate.

[0011] Specifically, the heat dissipation mechanism also includes heat dissipation holes. The bottom of the camera body is provided with a plurality of heat dissipation holes in a rectangular array. The heat dissipation holes are connected to the exhaust duct. The inner wall of the fixed shell at the bottom of the heat dissipation holes is tilted.

[0012] Specifically, a vibration mechanism is installed on the mounting block, and the vibration mechanism includes a rotating rod, which is rotatably connected to the mounting block with a rotating rod located at the bottom of the fan, and two groups of blades are welded to the rotating rod relative to each other, and two driving disks are keyed to the rotating rod, and multiple arc-shaped grooves are equidistantly provided on the outer sides of the two driving disks. Two sliding rods are connected to the mounting block for relative sliding, and the bottoms of the two sliding rods with arc-shaped bottoms respectively conflict with the outer sides of the two driving disks, and the tops of the two sliding rods are inclined. The tops of the two sliding rods are fixedly connected to insulating rods, and the insulating rods conflict with the bottom of the power grid.

[0013] Specifically, the camera body is provided with a protective mechanism, which includes two mounting slots, and two mounting slots are symmetrically provided on the side of the camera body about the bulb, and sealing plates are installed on the two mounting slots by bolts, and the inner bottom of the mounting slot on the left side of the camera body is rotatably connected to a rotating shell, and a clamping plate is slidably connected to the rotating shell, and a clamping plate is rotatably connected to the inner top of the camera body, and the centers of the opposite surfaces of the two clamping plates are welded with a clamping column, a spring 2 is clamped between the rotating shell and the clamping plate, and a fixing cylinder sleeved on the outside of the two clamping columns is clamped between the two clamping plates, and a transparent protective film is wrapped around the fixing cylinder, and an insertion rod is slidably connected to the left side of the camera body, and a spring 1 is clamped between the insertion rod and the camera body, and a roller is rotatably connected to the transparent protective film at the end of the insertion rod, and a motor is installed at the inner bottom of the mounting slot on the left side of the camera body, and the output end of the motor is key-connected to the limit plate, and a winding rod is welded on the limit plate, and a clamping groove is provided at the center of the winding rod, and two studs passing through the clamping groove are threadedly connected to the winding rod.

[0014] Specifically, the camera body is provided with a mounting mechanism, and the mounting mechanism includes a base, the base is fixedly connected to a connecting seat via a pin, and the bottom of the connecting seat is fixedly connected to the mounting seat via a screw.

[0015] The beneficial effects of the present invention are:

[0016] 1. The present invention describes an artificial intelligence-based monitoring device, wherein an insect sucking mechanism is installed at the bottom of the camera body, an insect killing mechanism is installed on the insect sucking mechanism, and the insect killing mechanism is connected to the lighting mechanism. When the camera body is used for monitoring at night or the lighting mechanism needs to be illuminated for a long time, the light bulb is started by the controller, and the lighting of the light bulb will attract mosquitoes. When the light bulb is powered on, the second wire is also connected to the power supply by the first wire. At this time, multiple obliquely arranged fans on the mounting block will blow air into the exhaust duct, so that negative pressure suction is generated near the end of the camera, which is conducive to sucking mosquitoes to the power grid. After the second wire is connected to the power supply, the third wire is also connected to the power supply, and the power grid is energized at this time, and finally multiple fans are started and the power grid is energized when the light bulb is illuminated. Then, when the light bulb is illuminated, the fan will suck the mosquitoes at the lens to the power grid, which is conducive to killing mosquitoes, avoiding mosquito gathering and affecting lighting, and making the monitoring of the camera body clearer.

[0017] 2. The artificial intelligence-based monitoring device described in the present invention has a heat dissipation mechanism on the camera body. When the lighting is used for auxiliary monitoring at night, the fan is also working. While the fan is sucking mosquitoes at the lens at the end of the camera body toward the power grid, the wind exhausted by the fan will blow toward the inside of the exhaust duct. Since the exhaust duct is connected to the heat dissipation holes at the bottom of the camera body, the cold air exhausted by the fan will be transported to the inside of the camera body, thereby dissipating heat for the parts inside the camera body, avoiding jamming due to excessive temperature during monitoring, and increasing the service life of the camera body.

[0018] 3. The artificial intelligence-based monitoring device described in the present invention has a vibration mechanism installed on the mounting block. While providing illumination, sucking out insects and killing insects, the fan can not only suck out insects but also dissipate heat inside the camera body. Moreover, the fan will blow the two sets of blades to rotate when working, thereby driving the two drive disks to rotate when the rotating rod rotates. Since the bottoms of the two sliding rods on the mounting block are in conflict with the drive disk, and since a plurality of grooves are provided on the outer side of the drive disk, the two sliding rods are shaken during rotation, thereby enabling the two sliding rods to move back and forth. The insulating rods on the sliding rods will vibrate the power grid with a small amplitude, which will not affect the monitoring of the camera (the angle between the power grid and the air guide shell in the figure is too large to show the internal structure, and the actual vibration angle is very small), which is conducive to shaking off the mosquitoes killed by the power grid to avoid affecting the air intake.

[0019] 4. The artificial intelligence-based monitoring equipment described in the present invention has a protective mechanism installed on the camera body, which clamps the fixed tube by two clamping plates, and the transparent protective film on the outside of the fixed tube is resisted by a roller to prevent the transparent protective film from loosening, and one end of the transparent protective film is clamped to the clamping groove on the winding rod by a stud. At this time, the transparent protective film between the fixed tube and the winding rod is in a taut state to protect the lens part of the camera body. When the transparent protective film in front of the lens is contaminated and seriously affects the monitoring, the motor can be controlled to rotate to pull the transparent protective film, and the clean transparent protective film on the fixed tube is moved to the front of the lens, which is conducive to quickly cleaning the stains in front of the lens and making the monitoring clearer. There is no need to wipe the lens at a high place. The transparent protective film can be pulled many times, and when the transparent protective film on the fixed tube is pulled, the fixed tube can be disassembled, and the transparent protective film on the winding rod can be pulled out for one-time cleaning and reuse. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present invention will be further described below with reference to the accompanying drawings and examples.

[0021] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0022] Figure 2 This is a schematic diagram of the connection structure of the camera body, the fixing housing and the exhaust duct of the present invention;

[0023] Figure 3 This is a schematic diagram of the connection structure of the air guide housing, the mounting block and the fan of the present invention;

[0024] Figure 4 This is a schematic diagram of the connection structure of the air guide shell, side plates, rotating shaft and power grid of the present invention;

[0025] Figure 5 This is a schematic diagram of the connection structure of the power grid, sliding rods and insulating rods of the present invention;

[0026] Figure 6 This is a schematic diagram of the connection structure of the mounting block, the rotating rod and the blades of the present invention;

[0027] Figure 7 This is a schematic diagram of the connection structure of the blades, the rotating rod and the exhaust port of the present invention;

[0028] Figure 8 This is a schematic diagram of the connection structure of the mounting block, the fan and the second wire of the present invention;

[0029] Figure 9 Schematic diagram of the connection structure of the rotating rod, the driving plate and the sliding rod of the present invention;

[0030] Figure 10 Schematic diagram of the connection structure of the camera body, sealing plate and transparent protective film of the present invention;

[0031] Figure 11 This is a schematic diagram of the connection structure of the camera body, the insertion rod and the clamping plate of the present invention;

[0032] Figure 12 Schematic diagram of the connection structure of the splint, the fixing tube and the transparent protective film of the present invention;

[0033] Figure 13 It is a schematic diagram of the connection structure of the motor, winding rod and clamping groove of the present invention.

[0034] In the figure: 1. Camera body; 2. Mounting mechanism; 201. Mounting base; 202. Screw; 203. Connecting base; 204. Base; 205. Pin; 3. Insect sucking mechanism; 301. Fixing shell; 302. Air guide shell; 303. Mounting block; 304. Exhaust duct; 305. Fan; 306. Exhaust vent; 4. Heat dissipation mechanism; 401. Access panel; 402. Ventilation hole; 403. Heat dissipation hole; 5. Lighting mechanism; 501. Controller; 502. Wire 1; 503. Light bulb; 6. Insect killing mechanism; 601. Power grid; 602. Wire 2; 60 3. Rotating shaft; 604. Side plate; 605. Wire three; 7. Protective mechanism; 701. Sealing plate; 702. Rotating shell; 703. Clamping plate; 704. Transparent protective film; 705. Inserting rod; 706. Roller; 707. Motor; 708. Limiting plate; 709. Winding rod; 710. Stud; 711. Spring one; 712. Fixing cylinder; 713. Clamping column; 714. Spring two; 715. Clamping groove; 716. Mounting groove; 8. Vibrating mechanism; 801. Rotating rod; 802. Sliding rod; 803. Insulating rod; 804. Blade; 805. Drive disk. DETAILED DESCRIPTION

[0035] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0036] like Figures 1-13As shown, the present invention relates to an artificial intelligence-based monitoring device, comprising a camera body 1, an insect-sucking mechanism 3 and a lighting mechanism 5 installed on the camera body 1, wherein the insect-sucking mechanism 3 is provided with an insect-killing mechanism 6, and the insect-killing mechanism 6 is connected to the lighting mechanism 5; the insect-sucking mechanism 3 comprises a fixed shell 301, the bottom of the camera body 1 is fixedly connected to the fixed shell 301, the end of the fixed shell 301 is welded with an arc-shaped structure and an air guide shell 302 with an inclined opening, an exhaust duct 304 is provided inside the fixed shell 301, and the interior of the air guide shell 302 is welded with an air guide shell 302 with an arc-shaped structure and an inclined opening. The mounting block 303 is connected, and a fan 305 is installed on the mounting block 303. The fan 305 is installed parallel to the top of the air guide shell 302, and an exhaust port 306 connected to the exhaust duct 304 is opened on the mounting block 303; the insecticide mechanism 6 includes an electric grid 601, and an electric grid 601 is provided on the top of the air guide shell 302; there are multiple fans 305 on the mounting block 303, and the multiple fans 305 are arranged in a linear array, and the multiple fans 305 are connected in series; the insecticide mechanism 6 also includes a wire 2 602, and the wire is installed on the camera body 1 The second conductor 602 is electrically connected to the fan 305, and the second conductor 602 is electrically connected to the third conductor 605, and the third conductor 605 is electrically connected to the power grid 601, and the power grid 601 and the fan 305 are arranged in parallel; the insecticide mechanism 6 also includes two side plates 604, and the outer sides of the air guide shell 302 are welded with two side plates 604 relative to each other, and the two side plates 604 are rotatably connected to the rotating shaft 603, and the opposite ends of the two rotating shafts 603 are fixedly connected to the power grid 601; the lighting mechanism 5 includes a controller 501 The camera body 1 has a controller 501 installed inside, and the controller 501 is electrically connected to a wire 1 502. A light bulb 503 is installed on the side of the camera body 1, and the wire 1 502 is electrically connected to the light bulb 503, and the wire 2 602 is electrically connected to the wire 1 502. The camera body 1 is provided with a mounting mechanism 2, and the mounting mechanism 2 includes a base 204, and the base 204 is fixedly connected to a connecting seat 203 via a pin 205. The bottom of the connecting seat 203 is fixedly connected to the mounting seat 201 via a screw 202.When installing the camera body 1, the base 204 at the bottom of the camera body 1 is fixedly connected to the connecting seat 203 through the pin 205, and the connecting seat 203 and the base 204 can be rotated, which is convenient for adjusting the angle of the camera body 1 to monitor the designated area. The connecting seat 203 is fixedly connected to the mounting seat 201 through the screw 202, and the mounting seat 201 can be rotated, and the direction of the camera body 1 can be adjusted to make the monitoring area more ideal. Then, a hole is drilled in the wall using a drilling device, and the mounting seat 201 is fixed to the wall with bolts to complete the installation. The camera body 1 is connected to the wall. Connect the power supply to monitor (the working principle of the camera body is roughly: image acquisition, signal processing, encoding compression, data transmission, storage management, display and playback through the lens). When monitoring at night, the monitoring brightness is changed by the light bulb 503 or when the light bulb 503 is used to illuminate the monitoring area, the controller 501 can control the light bulb 503 to connect the power supply to achieve lighting. The light bulb lighting will attract mosquitoes. When the light bulb is powered on, the wire 2 602 is also connected to the power supply by the wire 1 502. At this time, the multiple inclined fans 305 located on the mounting block 303 will blow air into the exhaust duct 304. When it is close to the end of the camera body 1, negative pressure suction is generated. The arc-shaped wind guide shell 302 at the end of the fixed shell 301 is conducive to sucking mosquitoes near the camera body 1, and cooperates with the tilted fan 305 to suck mosquitoes onto the power grid 601. After the wire 2 602 is connected to the power supply, the wire 3 605 is also connected to the power supply. At this time, the power grid 601 is energized, and finally when the light bulb 503 is illuminated, multiple fans 305 are started and the power grid 601 is energized. Then, when the light bulb 503 is illuminated, the fan 305 sucks the mosquitoes at the lens toward the power grid 601, which is conducive to killing the mosquitoes. (The working principle of the power grid 601 is similar to that of the power grid 601. Mosquito swatter principle: 1. Voltage conversion and boosting: The DC output of the battery is converted to high-frequency AC through an oscillating circuit, and then boosted to hundreds of volts by a transformer. 2. Voltage doubling and rectification: A triple voltage circuit composed of diodes and capacitors superimposes the voltage to a range of 2000-3000V. 3. Grid 601 killing: The charged metal mesh creates a potential difference, which triggers an arc discharge when mosquitoes come into contact, causing an instantaneous short circuit and killing the target. Although the voltage of the electric mosquito swatter is extremely high, the operating current is only 2-5mA, and the upper limit of the safe current for human use is 10mA. This prevents mosquitoes from gathering and affecting lighting, and facilitates clearer monitoring of the camera body 1.

[0037] Specifically, such as Figure 2As shown, the camera body 1 is provided with a heat dissipation mechanism 4, and the heat dissipation mechanism 4 includes an inspection plate 401 and ventilation holes 402. The side of the camera body 1 is installed with an inspection plate 401 by bolts, and a plurality of ventilation holes 402 are equidistantly provided on the inspection plate 401; the heat dissipation mechanism 4 also includes heat dissipation holes 403, and the bottom of the camera body 1 is provided with a plurality of heat dissipation holes 403 in a rectangular array, and the heat dissipation holes 403 are connected to the exhaust duct 304, and the inner wall of the fixed shell 301 at the bottom of the heat dissipation hole 403 is inclined; the fan 305 sucks mosquitoes at the end lens of the camera body toward the power grid 601 while blowing The wind exhausted by the fan 305 will blow toward the inside of the exhaust duct 304. Since the exhaust duct 304 is connected to the heat dissipation holes 403 at the bottom of the camera body 1, the cold air exhausted by the fan 305 will be transported to the inside of the camera body 1, thereby dissipating the heat of the parts inside the camera body 1, avoiding jamming due to excessive temperature during monitoring, and increasing the service life of the camera body 1. When the fan 305 is not working, the heat inside the camera body 1 can be dissipated through the ventilation holes 402 on the inspection plate 401, or through the cavities at the air guide shell 302 and the fixed shell 301. During maintenance, the bolts on the inspection plate 401 can be removed.

[0038] Specifically, such as Figure 3 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 and Figure 9As shown, a vibration mechanism 8 is installed on the mounting block 303, and the vibration mechanism 8 includes a rotating rod 801. The mounting block 303 is rotatably connected to the rotating rod 801 located at the bottom of the fan 305. Two sets of blades 804 are relatively welded on the rotating rod 801. Two driving disks 805 are keyed to the rotating rod 801. The outer sides of the two driving disks 805 are equidistantly provided with a plurality of arc-shaped grooves. Two sliding rods 802 are relatively slidably connected to the mounting block 303. The bottoms of the two sliding rods 802 with arc-shaped bottoms respectively conflict with the outer sides of the two driving disks 805. The tops of the two sliding rods 802 are tilted. The tops of the two sliding rods 802 are fixedly connected to the insulating rods 803, and the insulating rods 803 conflict with the bottom of the power grid 601. While lighting, sucking insects, and killing insects, the fan 305 can suck insects and dissipate heat inside the camera body 1, and the fan When 305 is working, it will blow the two sets of blades 804 on the rotating rod 801 to rotate, thereby realizing that the rotating rod 801 drives the two driving disks 805 to rotate. Since the bottom of the two sliding bars 802 on the mounting block 303 is in conflict with the driving disk 805, and since the outer side of the driving disk 805 is provided with multiple grooves and the bottom arc structure of the sliding bar 802, the two sliding bars 802 are shaken when the driving disk 805 rotates, thereby realizing that the two sliding bars 802 can be lifted and lowered back and forth, and the insulating rod 803 located on the sliding bar 802 will vibrate the power grid 601, and the amplitude is not large, which does not affect the monitoring of the camera (the angle between the power grid 601 and the air guide shell 302 in the figure is too large to show the internal structure of the air guide shell 302. The actual vibration angle is very small, that is, it is in a state of being in contact with the top of the air guide shell 302), which is conducive to shaking off the mosquitoes killed by the power grid 601 to avoid sticking to the power grid 601 and affecting the air intake.

[0039] Specifically, such as Figure 1 、 Figure 2 、 Figure 10 、 Figure 11 、 Figure 12 and Figure 13As shown, the camera body 1 is provided with a protective mechanism 7, and the protective mechanism 7 includes two mounting grooves 716. Two mounting grooves 716 are symmetrically provided on the side of the camera body 1 with respect to the bulb 503. A sealing plate 701 is installed on the two mounting grooves 716 by bolts. The inner bottom of the mounting groove 716 on the left side of the camera body 1 is rotatably connected to a rotating shell 702, and a splint 703 is slidably connected to the rotating shell 702. The inner top of the camera body 1 is rotatably connected to a splint 703, and a clamping column 713 is welded at the centers of the opposite surfaces of the two splints 703. A spring 714 is clamped between the rotating shell 702 and the splint 703, and a sleeve is clamped between the two splints 703. A fixed cylinder 712 is located outside the two clamping columns 713, and a transparent protective film 704 is wrapped around the fixed cylinder 712. A plug rod 705 is slidably connected to the left side of the camera body 1. A spring 711 is clamped between the plug rod 705 and the camera body 1. A roller 706 that is rotatably connected to the end of the plug rod 705 and is rollingly connected to the transparent protective film 704 is located. A motor 707 is installed at the inner bottom of the mounting slot 716 on the left side of the camera body 1. The output end of the motor 707 is keyed to a limit plate 708. A winding rod 709 is welded to the limit plate 708. A clamping groove 715 is provided at the center of the winding rod 709. Two studs 710 that pass through the clamping groove 715 are threadedly connected to the winding rod 709.When the locking cam 712 is in the unlocking state, the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the master lock 710 is locked. The lens portion of the camera body 1 is protected in a taut state. When the transparent protective film 704 in front of the lens is contaminated and seriously affects monitoring, the motor 707 can be controlled to rotate and pull the transparent protective film 704, moving the clean transparent protective film 704 on the fixed cylinder 712 to the front of the lens. This facilitates quick cleaning of stains in front of the lens, making monitoring clearer and eliminating the need to wipe the lens from high places. The transparent protective film 704 can be pulled multiple times. After the transparent protective film 704 on the fixed cylinder 712 is pulled, the fixed cylinder 712 can be removed and the transparent protective film 704 on the winding rod 709 can be pulled out for cleaning and reuse. After the transparent protective film 704 is installed, the transparent protective film 704 between the two mounting grooves 716 is attached to the lens. The two sealing plates 701 are fixed to the camera body 1 with bolts to protect and retract the transparent protective film 704.

[0040] When the present invention is used, first, when installing the camera body 1, the base 204 at the bottom of the camera body 1 is fixedly connected to the connecting seat 203 through the pin 205, and the connecting seat 203 and the base 204 can be rotated, which is convenient for adjusting the angle of the camera body 1 to achieve monitoring of the specified area. The connecting seat 203 is fixedly connected to the mounting seat 201 through the screw 202, and the mounting seat 201 can be rotated, and the direction of the camera body 1 can also be adjusted to make the monitoring area more ideal. Then, a hole is drilled in the wall by a drilling device, and the mounting seat 201 is fixed to the wall by bolts to complete the installation. Connect the camera body 1 to the power supply for monitoring (the working principle of the camera body is roughly as follows: image acquisition, signal processing, coding compression, data transmission, storage management, display and playback through the lens). When monitoring at night, the monitoring brightness is changed by the light bulb 503 or when the light bulb 503 is used to illuminate the monitoring area, the controller 501 can be used to control the light bulb 503 to connect to the power supply to achieve lighting. The light bulb lighting will attract mosquitoes. When the light bulb is powered on, the wire 2 602 is also connected to the wire 1 502. At this time, the multiple inclined fans 305 on the mounting block 303 will blow air into the exhaust duct 304. When the air is blown from the outside, negative pressure suction is generated near the end of the camera body 1. The arc-shaped wind guide shell 302 at the end of the fixed shell 301 is conducive to sucking mosquitoes near the camera body 1, and cooperates with the tilted fan 305 to suck mosquitoes onto the power grid 601. After the wire 2 602 is connected to the power supply, the wire 3 605 is also connected to the power supply. At this time, the power grid 601 is energized, and finally when the bulb 503 is illuminated, multiple fans 305 are started and the power grid 601 is energized. Then, when the bulb 503 is illuminated, the fan 305 sucks the mosquitoes at the lens toward the power grid 601, which is conducive to killing the mosquitoes. (The working principle of the power grid 601 is similar to The principle of the electric mosquito swatter is as follows: 1. Voltage conversion and boosting: The direct current output of the battery is converted to high-frequency alternating current through an oscillating circuit, and then boosted to hundreds of volts by a transformer. 2. Voltage doubling and rectification: A triple voltage circuit composed of diodes and capacitors is used to superimpose the voltage to a range of 2000-3000V. 3. Grid 601 killing: The charged metal mesh creates a potential difference, which triggers an arc discharge when mosquitoes come into contact, causing an instantaneous short circuit and killing the target. Although the electric mosquito swatter has an extremely high voltage, its operating current is only 2-5mA, and the upper limit of the safe current for humans is 10mA. This prevents mosquitoes from gathering and affecting lighting, and facilitates clearer monitoring of the camera body 1.

[0041] Then, while the fan 305 sucks the mosquitoes at the lens end of the camera body toward the electric grid 601, the wind exhausted by the fan 305 will blow toward the inside of the exhaust duct 304. Since the exhaust duct 304 is connected to the heat dissipation holes 403 at the bottom of the camera body 1, the cold wind exhausted by the fan 305 will be transported to the inside of the camera body 1, thereby dissipating heat for the parts inside the camera body 1, avoiding jamming due to excessive temperature during monitoring, and increasing the service life of the camera body 1. When the fan 305 is not working, the heat inside the camera body 1 can be dissipated through the ventilation holes 402 on the access panel 401, or through the cavities at the air guide shell 302 and the fixed shell 301. The bolts on the access panel 401 can be removed for maintenance.

[0042] Then, while lighting, sucking insects and killing insects, the fan 305 can suck insects and dissipate heat inside the camera body 1. When the fan 305 is working, it will blow the two sets of blades 804 on the rotating rod 801 to rotate, thereby realizing that when the rotating rod 801 rotates, the two driving disks 805 are driven to rotate. Since the bottoms of the two sliding rods 802 on the mounting block 303 are in conflict with the driving disk 805, and since the outer side of the driving disk 805 is provided with multiple grooves and the bottom arc structure of the sliding rod 802, the driving disk 805 is driven to rotate. The two slide bars 802 vibrate, thereby enabling the two slide bars 802 to move back and forth. The insulating rods 803 located on the slide bars 802 will vibrate the power grid 601, but the amplitude is not large, which does not affect the monitoring of the camera (the excessive angle between the power grid 601 and the air guide housing 302 in the figure is to show the internal structure of the air guide housing 302. The actual vibration angle is very small, that is, the power grid 601 is in contact with the top of the air guide housing 302). This helps to shake off the mosquitoes killed by the power grid 601 and prevent them from sticking to the power grid 601 and affecting the air intake.

[0043] When the locking cam 712 is in the unlocking state, the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, and the locking cam 712 is in the unlocking state, 4 is in a taut state to protect the lens part of the camera body 1. When the transparent protective film 704 in front of the lens is contaminated and seriously affects monitoring, the motor 707 can be controlled to rotate to pull the transparent protective film 704, and the clean transparent protective film 704 on the fixed cylinder 712 can be moved to the front of the lens, which is conducive to quickly cleaning the stains in front of the lens, making the monitoring clearer and eliminating the need to wipe the lens at a high place. The transparent protective film 704 can be pulled many times, and when the transparent protective film 704 on the fixed cylinder 712 is pulled, the fixed cylinder 712 can be disassembled, and the transparent protective film 704 on the winding rod 709 can be pulled out for one-time cleaning and reuse. After the transparent protective film 704 is installed, the transparent protective film 704 between the two installation grooves 716 is in contact with the lens, and the two sealing plates 701 are fixed to the camera body 1 by bolts to protect and retract the transparent protective film 704.

[0044] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0045] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A monitoring device based on artificial intelligence, characterized in that: The invention comprises a camera body (1), an insect sucking mechanism (3) and an illumination mechanism (5) installed on the camera body (1); an insect killing mechanism (6) is installed on the insect sucking mechanism (3); and the insect killing mechanism (6) is connected to the illumination mechanism (5); The insect sucking mechanism (3) comprises a fixed shell (301), the bottom of the camera body (1) is fixedly connected to the fixed shell (301), the end of the fixed shell (301) is welded with an air guide shell (302) with an arc structure and an inclined opening, an exhaust duct (304) is provided inside the fixed shell (301), a mounting block (303) is welded inside the air guide shell (302), a fan (305) is mounted on the mounting block (303), the fan (305) is mounted parallel to the top of the air guide shell (302), and an exhaust port (306) connected to the exhaust duct (304) is opened on the mounting block (303); the insect killing mechanism (6) comprises an electric grid (601), and the top of the air guide shell (302) is provided with an electric grid (601).

2. The artificial intelligence-based monitoring device according to claim 1, characterized in that: There are multiple fans (305) on the mounting block (303), and the multiple fans (305) are arranged in a linear array, and the multiple fans (305) are connected in series.

3. The artificial intelligence-based monitoring device according to claim 1, characterized in that: The insecticide mechanism (6) further comprises a second conductor (602), the second conductor (602) being installed on the camera body (1), the second conductor (602) being electrically connected to the fan (305), the third conductor (605) being electrically connected to the second conductor (602), the third conductor (605) being electrically connected to the power grid (601), and the power grid (601) and the fan (305) being arranged in parallel.

4. The artificial intelligence-based monitoring device according to claim 1, characterized in that: The insecticide mechanism (6) further comprises two side plates (604), the outer sides of the air guide housing (302) being welded with two side plates (604) facing each other, the two side plates (604) being rotatably connected to a rotating shaft (603), and the opposite ends of the two rotating shafts (603) being fixedly connected to the power grid (601).

5. The artificial intelligence-based monitoring device according to claim 3, characterized in that: The lighting mechanism (5) includes a controller (501), the controller (501) is installed inside the camera body (1), the controller (501) is electrically connected to a wire 1 (502), a light bulb (503) is installed on the side of the camera body (1), the wire 1 (502) is electrically connected to the light bulb (503), and the wire 2 (602) is electrically connected to the wire 1 (502).

6. The artificial intelligence-based monitoring device according to claim 1, characterized in that: The camera body (1) is provided with a heat dissipation mechanism (4), the heat dissipation mechanism (4) comprising an inspection plate (401) and ventilation holes (402), the side of the camera body (1) is mounted with an inspection plate (401) by means of bolts, and the inspection plate (401) is provided with a plurality of ventilation holes (402) at equal intervals.

7. The artificial intelligence-based monitoring device according to claim 6, characterized in that: The heat dissipation mechanism (4) further comprises heat dissipation holes (403). The bottom of the camera body (1) is provided with a plurality of heat dissipation holes (403) in a rectangular array. The heat dissipation holes (403) are connected to the exhaust duct (304). The inner wall of the fixed shell (301) located at the bottom of the heat dissipation holes (403) is arranged at an angle.

8. The artificial intelligence-based monitoring device according to claim 1, characterized in that: A vibration mechanism (8) is installed on the mounting block (303), and the vibration mechanism (8) includes a rotating rod (801). The mounting block (303) is rotatably connected to the rotating rod (801) located at the bottom of the fan (305). Two sets of blades (804) are relatively welded on the rotating rod (801). Two driving disks (805) are key-connected to the rotating rod (801). The outer sides of the two driving disks (805) are equidistantly provided with a plurality of arc-shaped grooves. Two sliding rods (802) are relatively slidably connected to the mounting block (303). The bottoms of the two sliding rods (802) with arc-shaped bottoms respectively contact the outer sides of the two driving disks (805). The tops of the two sliding rods (802) are inclined. The tops of the two sliding rods (802) are fixedly connected to insulating rods (803), and the insulating rods (803) contact the bottom of the power grid (601).

9. The artificial intelligence-based monitoring device according to claim 5, characterized in that: The camera body (1) is provided with a protective mechanism (7), and the protective mechanism (7) includes two mounting grooves (716). Two mounting grooves (716) are symmetrically provided on the side of the camera body (1) with respect to the light bulb (503). A sealing plate (701) is installed on each of the two mounting grooves (716) by bolts. The inner bottom of the mounting groove (716) on the left side of the camera body (1) is rotatably connected to a rotating shell (702). A clamping plate (703) is slidably connected to the rotating shell (702). The inner top of the camera body (1) is rotatably connected to a clamping plate (703). A clamping column (713) is welded at the center of the opposite surfaces of the two clamping plates (703). A spring 2 (714) is clamped between the rotating shell (702) and the clamping plate (703). A sleeve provided on two clamping plates (703) is clamped between the two clamping plates (703). A fixing cylinder (712) is provided on the outside of the clamping column (713), and a transparent protective film (704) is wound on the fixing cylinder (712). The left side of the camera body (1) is slidably connected to a plug rod (705), a spring (711) is clamped between the plug rod (705) and the camera body (1), and a roller (706) is rotatably connected to the end of the plug rod (705) and is rollingly connected to the transparent protective film (704). A motor (707) is installed at the inner bottom of the mounting groove (716) on the left side of the camera body (1), and the output end of the motor (707) is key-connected to a limiting plate (708). A winding rod (709) is welded on the limiting plate (708), and a clamping groove (715) is provided at the center of the winding rod (709). Two studs (710) that pass through the clamping groove (715) are threadedly connected to the winding rod (709).

10. The artificial intelligence-based monitoring device according to claim 1, characterized in that: The camera body (1) is provided with a mounting mechanism (2), the mounting mechanism (2) comprising a base (204), a connecting seat (203) fixedly connected to the base (204) via a pin (205), and a bottom of the connecting seat (203) fixedly connected to the mounting seat (201) via a screw (202).