Anti-intrusion intelligent photovoltaic monitoring device
Patent Information
- Application Number
- CN202311504395.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-13
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2043-11-13
AI Technical Summary
[0004]针对现有技术在实际使用中该装置的主要用于当外来人员对安防门的锁芯进行破坏时对门进行阻挡固定,但在现实中不止破坏锁芯撬锁这一种方法来非法打开安防门,而该装置无法在未触发锁芯压力传感器的情况下对安防门进行阻挡固定来避免外来人员的擅自闯入,不利于用户日常使用的不足,本发明提供了一种防闯入智能光伏监控装置,具备在光伏板提供电源支持监控探头进行监控的条件下对安防门进行阻挡避免安防门前端的人通过撬锁等方式打开安防门后直接闯入到工厂等设施的内部造成不可弥补的损失,保证装置对工厂等设施的安全防盗效果,阴雨天仍可较为准确进行监控提升装置适用性等优点
[0014]1、该防闯入智能光伏监控装置,通过一种防闯入智能光伏监控装置,包括安防门、门框、监控探头及第一调控装置,所述安防门在门框内仅能拉开无法推开,人像数据库内事先将可进入的人员的脸部进行登记上传,在工厂等设施安装此装置后,利用控制处理中心将监控探头开启对安防门面前的景象进行监控,在有人靠近时监控探头将探测到的人脸数据传输至控制处理中心内部的人像数据库进行对比,如若拍摄的人像不在人像数据库内,控制处理中心控制第一调控装置内部的第一电机开启,第一电机开启使得第一转动轴顺时针进行转动,第一转动轴转动带动活动板转动,活动板转动带动活动杆进行顺时针转动,活动杆转动过程中由滑槽板对活动杆的运动进行限定,同时活动杆在转动过程中推动滑槽板做左右往复直线运动,滑槽板移动带动滑动板移动,导向套用于对滑动板的移动进行导向保证滑动板的移动保持一条直线,滑动板移动时滑动板顶部的齿槽移动带动齿轮进行转动的同时滑动板将挡板通过通孔从第一调控装置内部伸出对安防门的右侧表面进行阻挡,齿轮转动辅助滑动板将挡板从第一调控装置内部推出,提升装置的运转及阻挡效率,挡板伸出后对安防门右侧表面抵靠后使得仅能拉开的安防门拉开受阻无法继续拉动,避免安防门前端的人通过撬锁等方式打开安防门后直接闯入到工厂等设施的内部造成不可弥补的损失,保证装置对工厂等设施的安全防盗效果,便于用户使用。
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Figure CN117489249B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of photovoltaic security device technology, specifically to an intrusion-proof intelligent photovoltaic monitoring device. Background Technology
[0002] With the continuous development of society and the continuous improvement of people's living standards, the application scenarios of security monitoring equipment are becoming more and more widespread. At present, security doors and their supporting surveillance cameras are widely used, which can better protect users' property and privacy while preventing unauthorized entry by outsiders and improving the security of factories or indoor spaces.
[0003] Publication No. CN213990851U discloses an integrated intelligent security video surveillance device, including a security door. A door frame is connected to the outer side of the security door. A card reader is connected to the middle of the right front side of the security door. A control box is connected to the middle of the upper end of the door frame. A monitoring probe is connected to the front of the control box. Support rods are connected to both sides of the front of the control box and the monitoring probe. A first motor is connected to the left rear end of the control box. A support plate is connected to the middle of the control box. This device can drive a locking rod through the door frame and insert it into the interior of the security door, thereby preventing forced unauthorized entry and facilitating the cleaning of the monitoring probe. However, in actual use, this device is mainly used to block and fix the door when outsiders damage the lock cylinder. But in reality, there are other methods besides damaging the lock cylinder to illegally open the security door. This device cannot block and fix the security door without triggering the lock cylinder pressure sensor to prevent unauthorized entry, which is not conducive to daily use. Summary of the Invention
[0004] In practical use, existing devices are mainly used to block and secure security doors when unauthorized personnel damage the lock cylinder. However, in reality, there are other methods besides breaking the lock cylinder to illegally open security doors. Furthermore, these devices cannot block and secure security doors without triggering the lock cylinder pressure sensor, thus failing to prevent unauthorized entry and hindering daily use. This invention provides an anti-intrusion intelligent photovoltaic monitoring device. This device, powered by photovoltaic panels and supported by monitoring probes, can block security doors, preventing unauthorized entry into factories and other facilities by prying or other means, thus ensuring the device's security and anti-theft effectiveness. It also offers advantages such as relatively accurate monitoring even in rainy weather, enhancing its applicability.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an anti-intrusion intelligent photovoltaic monitoring device, comprising: a security door, a door frame, a top plate, a handle, a monitoring probe, a through slot, an adjusting bracket, a first mounting plate, a photovoltaic panel, a storage box, a controller, connecting pipelines, a second mounting plate, transmission wires, a hydraulic cylinder, a hydraulic rod, a fixing plate, a guide plate, a first control device, a through hole, a first motor, a first rotating shaft, a movable plate, a movable rod, a sliding plate, a toothed groove, a guide sleeve, a support column, a gear, a first shaft, a baffle, a second control device, a placement slot, a second motor, a second rotating shaft, a worm gear, a worm wheel, a second shaft, a screw, a push rod, an internal threaded hole, a connecting rod, a backing plate, and a base plate.
[0006] The positions and connections of the above structures are as follows: An anti-intrusion intelligent photovoltaic monitoring device includes a security door, a door frame, a monitoring probe, and a first control device. The security door is rotatably connected to the outer surface of the door frame, and the security door is located inside the door frame. A top plate is fixedly connected to the top front end of the door frame, a first mounting plate is fixedly connected to the front end of the top plate, an adjusting bracket is fixedly connected to the front end of the first mounting plate, and a monitoring probe is rotatably connected to the top of the adjusting bracket. The monitoring probe is externally connected to a control processing center, which internally stores a human image database. Two first control devices are fixedly connected to one side surface of the door frame. Each first control device has a through hole at the end near the security door. A first motor is fixedly connected inside the first control device, and the front output end of the first motor... A first rotating shaft is fixedly connected. A movable plate is fixedly connected to the end of the first rotating shaft furthest from the first motor. The first rotating shaft is located on the bottom rear end of the movable plate. A movable rod is fixedly connected to the top front end of the movable plate. A sliding groove plate, adapted to the movable rod, is provided at the end of the movable rod furthest from the movable plate. The movable rod is slidably connected inside the sliding groove plate. A sliding plate is fixedly connected to the end of the sliding groove plate near the through hole. A guide sleeve is provided at the end of the sliding groove plate near the through hole. Support columns are fixedly connected to the top and bottom rear ends of the guide sleeve. The guide sleeve is fixedly connected inside a first control device via the support columns. The sliding plate is sleeved inside the guide sleeve. Several toothed grooves are formed on the top of the end of the sliding plate near the through hole. A first shaft is rotatably connected to the end of the first control device near the toothed grooves. A gear matching the tooth groove is fixedly connected to the outer surface of the first shaft near the tooth groove. The gear meshes with the sliding plate through the first shaft and the tooth groove. A baffle matching the through hole is fixedly connected to the end of the sliding plate near the through hole. The baffle is rectangular and, when extended, fits tightly against the front right side surface of the security door. The security door can only be pulled open, not pushed open, within the door frame. The facial images of people who can enter are pre-registered and uploaded to the facial image database. After this device is installed in facilities such as factories, the monitoring probe is activated by the control processing center to monitor the scene in front of the security door. When someone approaches, the monitoring probe transmits the detected facial data to the facial image database inside the control processing center for comparison. If the captured image is not in the facial image database, the control processing center controls the second... The first motor inside the control device is turned on, causing the first rotating shaft to rotate clockwise. This rotation drives a movable plate to rotate, which in turn drives a movable rod to rotate clockwise. During rotation, a sliding plate limits the movement of the movable rod. Simultaneously, the movable rod pushes the sliding plate in a reciprocating linear motion. The movement of the sliding plate moves the sliding plate, and a guide sleeve guides the movement of the sliding plate, ensuring it remains in a straight line. As the sliding plate moves, the teeth on its top move, causing a gear to rotate. Simultaneously, the sliding plate extends a baffle through a through-hole from inside the first control device, blocking the right side surface of the security door. The rotation of the gear assists the sliding plate in pushing the baffle out of the first control device.The improved operating and blocking efficiency of the device is enhanced by the baffle extending and pressing against the right side surface of the security door, thus preventing the door from being pulled open further.
[0007] Preferably, the monitoring probe has a through groove on its front top surface that extends into the probe's interior. A photovoltaic panel is fixedly connected to the top of the probe, and a connecting pipeline is fixedly connected to the right side surface of the photovoltaic panel. A controller is fixedly connected to the end of the connecting pipeline away from the photovoltaic panel, and a storage box is fixedly connected to the bottom of the controller. A second mounting plate is fixedly connected to the rear end of the storage box, which is then fixedly connected to the front end of the top plate via the second mounting plate. A transmission wire is fixedly connected to the output end of the storage box near the monitoring probe, and the end of the transmission wire near the monitoring probe is fixedly connected to the monitoring probe. The storage box is electrically connected to the control processing center. When this device is installed, the photovoltaic panel on top of the monitoring probe can generate electricity by photovoltaic reaction with direct sunlight from outside the factory or other facilities, in conjunction with the controller and connecting pipeline. This electricity is then stored in the storage box, and the stored electricity provides power to the monitoring probe, the first control device, the second control device, and the control processing center.
[0008] Preferably, hydraulic cylinders are fixedly connected to the outer surfaces of both the left and right ends of the front end of the monitoring probe. A hydraulic rod is differentially connected to the output end of the front end of the hydraulic cylinder. A guide plate is sleeved inside the through groove. A fixing plate is fixedly connected to the front end of the hydraulic rod on both sides near the guide plate. The rear end of the fixing plate is fixedly connected to the front surface of the guide plate. The hydraulic cylinder is electrically connected to the control processing center. On rainy days, the user can start the hydraulic cylinder through the control processing center. The start of the hydraulic cylinder pushes the hydraulic rod out of the hydraulic cylinder and moves it forward continuously. The movement of the hydraulic rod drives the fixing plate to push. The fixing plates on both sides push the guide plate to extend out of the monitoring probe through the through groove. Grooves are opened on both sides of the top of the guide plate. At this time, the extended guide plate shields the top of the monitoring probe and guides the rainwater to flow down the grooves on both sides of the guide plate.
[0009] Preferably, a handle is fixedly connected to the right front surface of the security door, and a second control device is fixedly connected to both the left and right ends of the bottom front side of the security door. The second control device is electrically connected to the control processing center to ensure the normal operation of the device.
[0010] Preferably, a second motor is fixedly connected inside the second control device. A second rotating shaft is fixedly connected to the right output end of the second motor. A worm gear is fixedly connected to the end of the second rotating shaft away from the second motor. A worm wheel adapted to the worm gear is provided at the top of the worm gear. A second shaft is fixedly connected to the bottom of the worm wheel. The second shaft is rotatably connected to the bottom inside the second control device. The worm gear and the worm wheel are meshed together. When this device is installed on the outside of equipment such as in a factory, and the image of the person in front of the security door captured by the monitoring probe is not in the image database, the control process controls the second motor to turn on. The second motor turns on and drives the second rotating shaft to rotate. The rotation of the second rotating shaft drives the worm gear to rotate. The rotation of the worm gear drives the worm wheel to rotate through the second shaft.
[0011] Preferably, a screw is fixedly connected to the surface of the worm gear away from the worm, and a push rod is provided at the end of the screw away from the worm gear. The end of the push rod near the screw has an internal threaded hole adapted to the screw. The push rod is threadedly connected to the screw through the internal threaded hole. The rotation of the worm gear drives the screw to rotate. The rotation of the screw drives the push rod to move upward through the internal threaded hole. The upward movement of the push rod drives the connecting rod and the abutment plate to extend out of the placement slot at the top of the second control device and continue to move to the bottom front end of the security door. During the movement, the two protrusions at the concave rear end of the abutment plate are tightly fitted to the bottom front end of the security door, blocking the rotational movement of the security door from the bottom.
[0012] Preferably, a connecting rod is fixedly connected to the rear end of the push rod, and a backing plate is fixedly connected to the end of the connecting rod away from the push rod. The backing plate is set in a concave shape, and when the backing plate is extended, the two protrusions in the concave shape are tightly fitted to the bottom front end of the security door. The top of the second control device is provided with a placement groove that matches the shape of the backing plate, the connecting rod, and the push rod.
[0013] Preferably, a base plate is fixedly connected between the right side surface of the left second control device and the corresponding surface of the right second control device. A wear-resistant layer is fixedly connected to the top of the base plate. The base plate and the second control device are used as a threshold under normal circumstances. When the device is operating normally and blocking the security door, the base plate connects the second control devices on both sides to form a whole and blocks the bottom of the security door. Beneficial effects
[0014] 1. This anti-intrusion intelligent photovoltaic monitoring device includes a security door, a door frame, a monitoring probe, and a first control device. The security door can only be pulled open, not pushed open, from within the door frame. A facial database pre-registers and uploads the faces of people who can enter. After installing this device in facilities such as factories, the control processing center activates the monitoring probe to monitor the scene in front of the security door. When someone approaches, the monitoring probe transmits the detected facial data to the facial database inside the control processing center for comparison. If the captured image is not in the database, the control processing center activates the first motor inside the first control device. The activation of the first motor causes the first rotating shaft to rotate clockwise. The rotation of the first rotating shaft drives the movable plate to rotate, which in turn drives the movable rod to rotate clockwise. During the rotation of the movable rod, a sliding plate... The movement of the movable rod is limited, and during its rotation, the movable rod pushes the sliding plate to make a reciprocating linear motion. The movement of the sliding plate drives the sliding plate to move. The guide sleeve is used to guide the movement of the sliding plate to ensure that the movement of the sliding plate remains in a straight line. When the sliding plate moves, the toothed groove at the top of the sliding plate moves, driving the gear to rotate. At the same time, the sliding plate extends the baffle through the through hole from inside the first control device to block the right side surface of the security door. The rotation of the gear assists the sliding plate to push the baffle out of the first control device, improving the operation and blocking efficiency of the device. After the baffle extends, it abuts against the right side surface of the security door, making the security door, which can only be pulled open, unable to be pulled further. This prevents people at the front of the security door from opening the security door by prying the lock or other means and directly entering the interior of the factory or other facilities, causing irreparable damage. This ensures the security and anti-theft effect of the device on the factory and other facilities and is convenient for users to use.
[0015] 2. This anti-intrusion intelligent photovoltaic monitoring device activates a hydraulic cylinder via a control processing center. The hydraulic cylinder pushes a hydraulic rod forward, causing it to move continuously. This movement of the hydraulic rod drives a fixed plate, which in turn pushes a guide plate through a slot, extending from the inside of the monitoring probe. The guide plate has grooves on both sides of its top. The extended guide plate shields the top of the monitoring probe and directs rainwater down through the grooves on both sides, preventing rainwater from accumulating at the front lens of the probe and causing blurry images. This ensures the device can accurately detect and photograph people outside the security door even in rainy weather, improving its applicability and ease of use for users.
[0016] 3. This anti-intrusion intelligent photovoltaic monitoring device has a screw fixedly connected to the surface of the end of the worm gear away from the worm. A push rod is set at the end of the screw away from the worm gear. The end of the push rod near the screw has an internal threaded hole that matches the screw. The push rod is threadedly connected to the screw through the internal threaded hole. The rotation of the worm gear drives the screw to rotate. The rotation of the screw drives the push rod to move upward through the internal threaded hole. The upward movement of the push rod causes the connecting rod and the abutment plate to extend from the placement slot at the top of the second control device and continue to move to the bottom front side of the security door. During the movement, the two protrusions at the concave rear end of the abutment plate are tightly fitted to the bottom front side of the security door, blocking the rotational movement of the security door from the bottom. This prevents outsiders from opening the security door by prying the lock or other means and directly breaking in, ensuring the security and anti-theft of facilities such as factories inside the device, and facilitating user operation. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the external structure of an anti-intrusion intelligent photovoltaic monitoring device according to the present invention; Figure 2 This is a schematic diagram of the monitoring probe structure of an anti-intrusion intelligent photovoltaic monitoring device according to the present invention; Figure 3 This is a schematic diagram of the rear structure of the monitoring probe of an anti-intrusion intelligent photovoltaic monitoring device according to the present invention; Figure 4 This is a schematic diagram of the guide plate structure of an anti-intrusion intelligent photovoltaic monitoring device according to the present invention; Figure 5 This is a schematic diagram of the first control device of an anti-intrusion intelligent photovoltaic monitoring device according to the present invention; Figure 6 This is a schematic diagram of the internal structure of the first control device of the anti-intrusion intelligent photovoltaic monitoring device of the present invention; Figure 7 This is a schematic diagram of the second control device of the anti-intrusion intelligent photovoltaic monitoring device of the present invention; Figure 8 This is a schematic diagram of the internal structure of the second control device of the anti-intrusion intelligent photovoltaic monitoring device of the present invention.
[0018] In the diagram: 1. Security door; 10. Door frame; 11. Top plate; 12. Handle; 2. Monitoring probe; 20. Through slot; 21. Adjustment bracket; 210. First mounting plate; 22. Photovoltaic panel; 23. Storage box; 230. Controller; 231. Connecting pipeline; 24. Second mounting plate; 25. Transmission wire; 26. Hydraulic cylinder; 27. Hydraulic rod; 270. Fixing plate; 28. Guide plate; 3. First control device; 30. Through hole; 300. First motor; 31. First rotating shaft 32. Movable plate; 320. Movable rod; 33. Slide plate; 34. Sliding plate; 340. Gear groove; 35. Guide sleeve; 350. Support column; 36. Gear; 360. First shaft; 37. Baffle; 4. Second control device; 40. Placement slot; 41. Second motor; 410. Second rotating shaft; 42. Worm; 43. Worm wheel; 430. Second shaft; 44. Screw; 45. Push rod; 450. Internal threaded hole; 46. Connecting rod; 47. Abutment plate; 48. Base plate. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. 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. Example 1
[0020] Please see Figure 1-8An anti-intrusion intelligent photovoltaic monitoring device includes a security door 1, a door frame 10, a monitoring probe 2, and a first control device 3. The security door 1 is rotatably connected to the outer surface of the door frame 10, and the security door 1 is located inside the door frame 10. A top plate 11 is fixedly connected to the top front end of the door frame 10, and a first mounting plate 210 is fixedly connected to the front end of the top plate 11. An adjusting bracket 21 is fixedly connected to the front end of the first mounting plate 210, and the monitoring probe 2 is rotatably connected to the top of the adjusting bracket 21. The monitoring probe 2 is externally connected to a control processing center, which internally stores a human image database. Two first control devices 3 are fixedly connected to one side surface of the door frame 10. Each first control device 3 has a through hole 30 at the end near the security door 1. A first motor 300 is fixedly connected inside the control device 3. A first rotating shaft 31 is fixedly connected to the front output end of the first motor 300. A movable plate 32 is fixedly connected to the end of the first rotating shaft 31 away from the first motor 300. The first rotating shaft 31 is located on the bottom rear end of the movable plate 32. A movable rod 320 is fixedly connected to the top front end of the movable plate 32. A sliding groove plate 33 adapted to the movable rod 320 is provided at the end of the movable rod 320 away from the movable plate 32. The movable rod 320 is slidably connected inside the sliding groove plate 33. A sliding plate 34 is fixedly connected to the end of the sliding groove plate 33 near the through hole 30. A guide sleeve 35 is provided at the end of the sliding groove plate 33 near the through hole 30. Supports are fixedly connected to the top and bottom rear ends of the guide sleeve 35. A support column 350 and a guide sleeve 35 are fixedly connected inside the first control device 3 via the support column 350. A sliding plate 34 is sleeved inside the guide sleeve 35. Several toothed grooves 340 are provided on the top of the end of the sliding plate 34 near the through hole 30. A first shaft 360 is rotatably connected to the end of the first control device 3 near the toothed grooves 340. A gear 36 adapted to the toothed grooves 340 is fixedly connected to the outer surface of the end of the first shaft 360 near the toothed grooves 340. The gear 36 meshes with the sliding plate 34 via the first shaft 360 and the toothed grooves 340. A baffle 37 adapted to the through hole 30 is fixedly connected to the end of the sliding plate 34 near the through hole 30. The baffle 37 is rectangular and fits tightly against the front right side surface of the security door 1 when extended. The security door 1 can only be pulled open, not pushed open, within the door frame 10. The facial images of people allowed to enter are pre-registered and uploaded to the facial image database. After this device is installed in facilities such as factories, the control processing center activates the monitoring probe 2 to monitor the scene in front of the security door 1. When someone approaches, the monitoring probe 2 transmits the detected facial data to the facial image database inside the control processing center for comparison. If the captured image is not in the database, the control processing center activates the first motor 300 inside the first control device 3. The activation of the first motor 300 causes the first rotating shaft 31 to rotate clockwise. The rotation of the first rotating shaft 31 drives the movable plate 32 to rotate, which in turn drives the movable rod 320 to rotate clockwise.During the rotation of the movable rod 320, the movement of the movable rod 320 is limited by the slide plate 33. At the same time, the movable rod 320 pushes the slide plate 33 to make a reciprocating linear motion. The movement of the slide plate 33 drives the sliding plate 34 to move. The guide sleeve 35 is used to guide the movement of the sliding plate 34 to ensure that the movement of the sliding plate 34 remains in a straight line. When the sliding plate 34 moves, the toothed groove 340 at the top of the sliding plate 34 moves, driving the gear 36 to rotate. At the same time, the sliding plate 34 pushes the baffle 37 through the through hole 30 from the first control device. The internal extension of gear 36 blocks the right side surface of security door 1. Gear 36 rotates the auxiliary sliding plate 34, pushing the baffle 37 out of the first control device 3, improving the device's operation and blocking efficiency. After the baffle 37 extends, it abuts against the right side surface of security door 1, preventing the door from being pulled open further. This prevents people at the front of security door 1 from opening it by prying or other means and directly entering the factory or other facilities, causing irreparable damage. This ensures the device's security and anti-theft effect on the factory and other facilities, and facilitates user operation. Example 2
[0021] Please see Figure 1-6 Further, based on Embodiment 1, a through groove 20 is formed on the top surface of the front end of the monitoring probe 2, extending into the interior of the monitoring probe 2. A photovoltaic panel 22 is fixedly connected to the top of the monitoring probe 2, and a connecting pipeline 231 is fixedly connected to the right side surface of the photovoltaic panel 22. A controller 230 is fixedly connected to the end of the connecting pipeline 231 away from the photovoltaic panel 22. A battery storage box 23 is fixedly connected to the bottom of the controller 230, and a second mounting plate 24 is fixedly connected to the rear end of the battery storage box 23. The battery storage box 23 is fixedly connected to the front end of the top plate 11 via the second mounting plate 24. The output end of the battery storage box 23 near the monitoring probe 2 is fixedly connected to the front end of the top plate 11. A transmission wire 25 is fixedly connected to the monitoring probe 2 at one end. The storage box 23 is electrically connected to the control processing center. When installing this device, the photovoltaic panel 22 on the top of the monitoring probe 2 can generate electricity by photovoltaic reaction with the controller 230 and the connecting pipeline 231, and store the electricity in the storage box 23. The electricity stored in the storage box 23 provides power support for the monitoring probe 2, the first control device 3, the second control device 4 and the control processing center, reducing resource consumption during use, making it green and environmentally friendly, and ensuring the normal operation of the device.
[0022] Hydraulic cylinders 26 are fixedly connected to the outer surfaces of both ends of the front end of the monitoring probe 2. Hydraulic rods 27 are differentially connected to the front output ends of the hydraulic cylinders 26. A guide plate 28 is sleeved inside the through groove 20. Fixing plates 270 are fixedly connected to the front ends of the hydraulic rods 27 on the side closest to the guide plate 28. The rear ends of the fixing plates 270 are fixedly connected to the front surface of the guide plate 28. The hydraulic cylinders 26 are electrically connected to the control processing center. In rainy weather, the user can activate the hydraulic cylinders 26 through the control processing center. Activation of the hydraulic cylinders 26 pushes the hydraulic rods 27 out of the hydraulic cylinders 26 and allows them to move forward continuously. The movement of the pressure rod 27 drives the fixed plate 270 to push. The fixed plates 270 on both sides push the guide plate 28 to extend from the inside of the monitoring probe 2 through the through groove 20. The top of the guide plate 28 has grooves on both sides. At this time, the extended guide plate 28 blocks the top of the monitoring probe 2 and guides the rainwater to flow down the grooves on both sides of the guide plate 28. This prevents rainwater from accumulating at the front lens of the monitoring probe 2 and causing the image to be blurry. This ensures that the device can still accurately detect whether people outside the security door 1 can enter in rainy weather, improving the applicability of the device and making it easier for users to use.
[0023] A handle 12 is fixedly connected to the front right side surface of the security door 1. A second control device 4 is fixedly connected to both the left and right ends of the bottom front side of the security door 1. The second control device 4 is electrically connected to the control processing center to ensure the normal operation of the device. Example 3
[0024] Please see Figure 1-8 Furthermore, based on Embodiment 2, a second motor 41 is fixedly connected inside the second control device 4. A second rotating shaft 410 is fixedly connected to the right output end of the second motor 41. A worm gear 42 is fixedly connected to the end of the second rotating shaft 410 away from the second motor 41. A worm wheel 43 adapted to the worm gear 42 is provided at the top of the worm gear 42. A second shaft 430 is fixedly connected to the bottom of the worm wheel 43. The second shaft 430 is rotatably connected to the bottom inside the second control device 4, and the worm gear 42 meshes with the worm wheel 43. When this device is installed on the outside of equipment such as in a factory, and the image of a person at the front of the security door 1 captured by the monitoring probe 2 is not in the image database, the control process activates the second motor 41. The activation of the second motor 41 drives the second rotating shaft 410 to rotate, which in turn drives the worm gear 42 to rotate. The rotation of the worm gear 42, through the second shaft 430, drives the worm wheel 43 to rotate, providing power for the device to raise the abutment plate 47 to abut against the security door 1 to prevent unauthorized personnel from entering, thus ensuring the normal operation of the device.
[0025] A screw 44 is fixedly connected to the end of the worm gear 43 away from the worm 42. A push rod 45 is provided at the end of the screw 44 away from the worm gear 43. An internal threaded hole 450 adapted to the screw 44 is opened at the end of the push rod 45 near the screw 44. The push rod 45 is threadedly connected to the screw 44 through the internal threaded hole 450. The rotation of the worm gear 43 drives the screw 44 to rotate. The rotation of the screw 44 drives the push rod 45 to move upward through the internal threaded hole 450. The upward movement of the push rod 45 drives the connecting rod 46 and the abutment plate 47 to extend out of the placement slot 40 at the top of the second control device 4 and continue to move to the front bottom side of the security door 1. During the movement, the two protrusions at the concave rear end of the abutment plate 47 are tightly fitted to the front bottom side of the security door 1, blocking the rotational movement of the security door 1 from the bottom. This prevents outsiders from opening the security door 1 by prying or other means and directly breaking in, ensuring the security and anti-theft of facilities such as factories inside the device, and facilitating user use.
[0026] A connecting rod 46 is fixedly connected to the rear end of the push rod 45. A backing plate 47 is fixedly connected to the end of the connecting rod 46 away from the push rod 45. The backing plate 47 is set in a concave shape, and when the backing plate 47 is extended, the two concave protrusions fit tightly against the bottom front end of the security door 1. The top of the second control device 4 is provided with a placement groove 40 that matches the shape of the backing plate 47, the connecting rod 46, and the push rod 45, which is used to block the security door 1 and ensure the normal operation of the device.
[0027] A base plate 48 is fixedly connected between the right side surface of the left second control device 4 and the corresponding surface of the right second control device 4. A wear-resistant layer is fixedly connected to the top of the base plate 48. The base plate 48 and the second control device 4 are normally used as a threshold. When the device is operating normally and blocking the security door 1, the base plate 48 connects the two second control devices 4 to form a whole to block the bottom of the security door 1, improves its blocking effect, ensures the normal operation of the device, and facilitates user use.
[0028] It should be noted that: Embodiment 1 and Embodiment 3 are independent embodiments but with different implementation methods. Both can block the security door 1 under the condition that the photovoltaic panel 22 provides power to support the monitoring probe 2 for monitoring, so as to prevent people in front of the security door 1 from opening the security door 1 by means of prying or other means and directly breaking into the interior of the factory or other facilities, causing irreparable damage. This ensures the security and anti-theft effect of the device on the factory or other facilities and is convenient for users to use. The two can be replaced by each other.
[0029] Working principle: The photovoltaic panel 22 on top of the monitoring probe 2 can generate electricity by activating photovoltaic reaction with direct sunlight from outside the factory or other facilities, in conjunction with the controller 230 and connecting pipeline 231. The controller 230 ensures the stability of photovoltaic power generation and storage. The generated electricity is transmitted to the storage tank 23 through the connecting pipeline 231 for storage. The electricity stored in the storage tank 23 provides power support for the monitoring probe 2, the first control device 3, the second control device 4, and the control processing center, reducing resource consumption during use and making it environmentally friendly. The security door 1 is installed inside the door frame 10 using existing technology with external hardware components such as door bolts, so that it can only be opened by pulling. The security door 1 is opened, and the facial images of people who can enter are pre-registered and uploaded to the facial image database. After this device is installed in facilities such as factories, the monitoring probe 2 is activated by the control processing center to monitor the scene in front of the security door 1. When someone approaches, the monitoring probe 2 transmits the detected facial data to the facial image database inside the control processing center for comparison. If the captured image is not in the facial image database, the control processing center controls the first motor 300 inside the first control device 3 to be activated. The activation of the first motor 300 causes the first rotating shaft 31 to rotate clockwise. The rotation of the first rotating shaft 31 drives the movable plate 32 to rotate, and the rotation of the movable plate 32 drives the movable rod 32 to rotate. The movable rod 320 rotates clockwise. During this rotation, the sliding plate 33 limits the movement of the movable rod 320. Simultaneously, the movable rod 320 pushes the sliding plate 33 in a reciprocating linear motion. The movement of the sliding plate 33 drives the sliding plate 34 to move. The guide sleeve 35 guides the movement of the sliding plate 34, ensuring it remains in a straight line. As the sliding plate 34 moves, the toothed groove 340 at the top of the sliding plate 34 moves, driving the gear 36 to rotate. Simultaneously, the sliding plate 34 extends the baffle 37 through the through hole 30 from inside the first control device 3, blocking the right side surface of the security door 1. The gear 36 rotates to assist the sliding plate 34. Pushing the baffle 37 out of the first control device 3 makes the linear motion structure of the sliding plate 34 pushing the baffle 37 out more compact, avoiding the baffle 37 being misaligned with the through hole 30 when the security door 1 is pulled open by outsiders due to a large external force, which would cause the device to fail to reset, thus improving the operation and blocking efficiency of the device. After the baffle 37 extends out and abuts against the right side surface of the security door 1, the security door 1, which can only be pulled open, is blocked and cannot be pulled further, preventing people at the front of the security door 1 from opening the security door 1 by prying the lock or other means and directly entering the interior of the factory or other facilities, causing irreparable damage, and ensuring the security and anti-theft effect of the device on the factory and other facilities. On rainy days, the user can activate the hydraulic cylinder 26 through the control processing center. The activation of the hydraulic cylinder 26 pushes the hydraulic rod 27 out of the hydraulic cylinder 26 and moves it forward continuously. The movement of the hydraulic rod 27 drives the fixed plate 270 to move. The fixed plates 270 on both sides drive the guide plate 28 to move. The guide plate 28 moves and extends out of the monitoring probe 2 through the through groove 20. The top two sides of the guide plate 28 are provided with grooves. At this time, the extended guide plate 28 shields the top of the monitoring probe 2 and guides the rainwater to flow down the grooves on both sides of the guide plate 28, avoiding the rainwater from accumulating at the front lens of the monitoring probe 2 and causing the image to be blurry. This ensures that the device can still accurately detect whether people outside the security door 1 can enter in rainy weather, thus improving the applicability of the device. When this device is installed on the outside of equipment such as in a factory, and the image of a person at the front of the security door captured by the monitoring probe 2 is not in the image database, the control process activates the second motor 41. The activation of the second motor 41 drives the second rotating shaft 410 to rotate. The rotation of the second rotating shaft 410 drives the worm gear 42 to rotate. The rotation of the worm gear 42 drives the worm wheel 43 to rotate via the second shaft 430. The rotation of the worm wheel 43 drives the screw 44 to rotate. The rotation of the screw 44 drives the push rod 45 to move upward through the internal thread hole 450. The upward movement of the push rod 45 causes the connecting rod 46 and the abutment plate 47 to extend out of the placement slot 40 at the top of the second control device 4 and continue to move. The device moves to the bottom front of the security door 1. During the movement, the two protrusions at the concave rear end of the abutment plate 47 fit tightly against the bottom front of the security door 1, blocking the rotational movement of the security door 1 from the bottom. This prevents outsiders from opening the security door 1 by prying or other means and directly entering, ensuring the security and anti-theft performance of facilities such as factories inside the device. The base plate 48 and the second control device 4 are normally used as a threshold. When the device is operating normally and blocking the security door 1, the base plate 48 connects the second control devices 4 on both sides to form a whole to block the bottom of the security door 1, improving its blocking effect and making it easier for users to use.
[0030] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An anti-intrusion intelligent photovoltaic monitoring device, comprising a security door (1), a door frame (10), a monitoring probe (2), and a first control device (3), characterized in that: The security door (1) is rotatably connected to a door frame (10) on its outer surface. The security door (1) is located inside the door frame (10). A top plate (11) is fixedly connected to the top front end of the door frame (10). A first mounting plate (210) is fixedly connected to the front end of the top plate (11). An adjusting bracket (21) is fixedly connected to the front end of the first mounting plate (210). A monitoring probe (2) is rotatably connected to the top of the adjusting bracket (21). The monitoring probe (2) is externally connected to a control processing center. The control processing center records a human image database. Two first control devices (3) are fixedly connected to one side of the front end of the door frame (10). A control device (3) has a through hole (30) at one end near the security door (1). A first motor (300) is fixedly connected inside the first control device (3). A first rotating shaft (31) is fixedly connected to the front output end of the first motor (300). A movable plate (32) is fixedly connected to the end of the first rotating shaft (31) away from the first motor (300). The first rotating shaft (31) is located on the bottom rear end of the movable plate (32). A movable rod (320) is fixedly connected to the top front end of the movable plate (32). A fitting is provided at the end of the movable rod (320) away from the movable plate (32). The sliding plate (33) is equipped with a movable rod (320) which is slidably connected inside the sliding plate (33). A sliding plate (34) is fixedly connected to one end of the sliding plate (33) near the through hole (30). A guide sleeve (35) is provided at one end of the sliding plate (33) near the through hole (30). A support column (350) is fixedly connected to the top and bottom sides of the rear end of the guide sleeve (35). The guide sleeve (35) is fixedly connected to the inside of the first control device (3) through the support column (350). The sliding plate (34) is sleeved inside the guide sleeve (35). Several openings are provided at the top of one end of the sliding plate (34) near the through hole (30). The first control device (3) has a tooth groove (340) and a first shaft (360) rotatably connected to one end of the tooth groove (340). The outer surface of the first shaft (360) near the tooth groove (340) is fixedly connected to a gear (36) that is compatible with the tooth groove (340). The gear (36) meshes with the sliding plate (34) through the first shaft (360) and the tooth groove (340). The sliding plate (34) is fixedly connected to a baffle (37) that is compatible with the through hole (30) at one end. The baffle (37) is rectangular and fits tightly against the front right surface of the security door (1) when it extends. A through groove (20) is provided on the top surface of the front end of the monitoring probe (2). The through groove (20) extends into the interior of the monitoring probe (2). A photovoltaic panel (22) is fixedly connected to the top of the monitoring probe (2). A connecting pipeline (231) is fixedly connected to the right side surface of the photovoltaic panel (22). A controller (230) is fixedly connected to the end of the connecting pipeline (231) away from the photovoltaic panel (22). A storage box (23) is fixedly connected to the bottom of the controller (230). A second mounting plate (24) is fixedly connected to the rear end of the storage box (23). The storage box (23) is fixedly connected to the front end of the top plate (11) through the second mounting plate (24). A transmission wire (25) is fixedly connected to the output end of the storage box (23) near the monitoring probe (2). The end of the transmission wire (25) near the monitoring probe (2) is fixedly connected to the monitoring probe (2). The storage box (23) is electrically connected to the control processing center.
2. The anti-intrusion intelligent photovoltaic monitoring device according to claim 1, characterized in that: Hydraulic cylinders (26) are fixedly connected to the outer surfaces of the left and right ends of the front end of the monitoring probe (2). Hydraulic rods (27) are differentially connected to the front output end of the hydraulic cylinders (26). A guide plate (28) is sleeved inside the through groove (20). A fixing plate (270) is fixedly connected to the front end of the hydraulic rods (27) on both sides near the guide plate (28). The rear end of the fixing plate (270) is fixedly connected to the front surface of the guide plate (28). The hydraulic cylinder (26) is electrically connected to the control processing center.
3. The anti-intrusion intelligent photovoltaic monitoring device according to claim 1, characterized in that: A handle (12) is fixedly connected to the right front surface of the security door (1), and a second control device (4) is fixedly connected to both the left and right ends of the bottom front side of the security door (1). The second control device (4) is electrically connected to the control processing center.
4. The anti-intrusion intelligent photovoltaic monitoring device according to claim 3, characterized in that: The second control device (4) is internally fixedly connected to a second motor (41). The output end of the second motor (41) is fixedly connected to a second rotating shaft (410). The end of the second rotating shaft (410) away from the second motor (41) is fixedly connected to a worm (42). The top of the worm (42) is provided with a worm wheel (43) that is compatible with the worm (42). The bottom of the worm wheel (43) is fixedly connected to a second shaft (430). The second shaft (430) is rotatably connected to the bottom side of the inside of the second control device (4). The worm (42) and the worm wheel (43) are meshed together.
5. The anti-intrusion intelligent photovoltaic monitoring device according to claim 4, characterized in that: A screw (44) is fixedly connected to the surface of the end of the worm gear (43) away from the worm (42). A push rod (45) is provided at the end of the screw (44) away from the worm gear (43). An internal threaded hole (450) adapted to the screw (44) is opened at the end of the push rod (45) near the screw (44). The push rod (45) is threadedly connected to the screw (44) through the internal threaded hole (450).
6. The anti-intrusion intelligent photovoltaic monitoring device according to claim 5, characterized in that: The rear end of the push rod (45) is fixedly connected to a connecting rod (46), and the end of the connecting rod (46) away from the push rod (45) is fixedly connected to a backing plate (47). The backing plate (47) is set in a concave shape, and when the backing plate (47) is extended, the two concave protrusions fit tightly against the bottom front end of the security door (1). The top of the second control device (4) is provided with a placement groove (40) that matches the shape of the backing plate (47), the connecting rod (46), and the push rod (45).
7. The anti-intrusion intelligent photovoltaic monitoring device according to claim 6, characterized in that: A base plate (48) is fixedly connected between the right side surface of the second control device (4) and the corresponding surface of the right second control device (4), and a wear-resistant layer is fixedly connected to the top of the base plate (48).
Citation Information
Patent Citations
Integrated intelligent security and protection video monitoring equipment
CN213990851U
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