Intelligent community security management and control platform and method

By comprehensively applying a monitoring platform and various security systems, and combining tension detection and infrared detection technologies, the problem of low integration in smart community security systems has been solved, achieving efficient and intelligent security management and improving community safety and comfort.

CN117037403BActive Publication Date: 2026-07-24ANHUI TELECOMM ENG
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Patent Information

Application Number
CN202311034649.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-17
Publication Date
2026-07-24
Estimated Expiration
2043-08-17

AI Technical Summary

Technical Problem

The existing smart community security systems have low integration and insufficient information sharing, making them unable to effectively prevent security incidents, especially in "three-no" communities (communities without property management, security, or sanitation) and old communities where theft and security incidents occur frequently.

Method used

By integrating a monitoring platform, video surveillance system, electronic patrol system, access control system, smoke and gas alarm system, and perimeter alarm system, and combining tension detection and infrared detection technologies, the system can monitor and alarm information on key intersections, road sections, vehicles, and pedestrians in the community, thereby improving the intelligence and coordination of the security system.

Benefits of technology

It has enabled diversified and intelligent management of community security, reduced false alarms, improved security control capabilities and efficiency, enhanced residents' sense of security and comfort, and reduced power consumption and disruption to daily life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a smart community security and protection management platform and method, relates to the technical field of community smart security and protection, and the management method is to acquire the monitoring video information of a community key intersection, community key road section patrolling information, collect and store vehicle and pedestrian access control access information, acquire residential fire and gas detection alarm information, and acquire intruder climbing community fence position information through system software in a screen display monitoring terminal of a monitoring platform; the acquisition of the intruder climbing community fence position information is carried out in a manner that a tension detection method is combined with an infrared detection method; the control system starts the infrared detection again according to the signal of the tension detection, so as to detect whether an intruder climbs on the side of the fence above the tension detection position, and further discriminates whether it is a system false alarm.
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Description

Technical Field

[0001] This invention relates to the field of smart security technology, specifically to a smart community security management platform and method. Background Technology

[0002] The concept of a smart community is derived from the combination of building intelligence technology and modern residential communities. Specifically, it refers to establishing a community security and control platform through effective transmission networks, utilizing modern communication network technology, computer technology, automatic control technology, and IC card technology. This platform comprises a comprehensive property management center, security system, information service system, and property management system, enabling the community and each resident to achieve a safe, comfortable, warm, and convenient living environment. In the construction of smart communities, access control, surveillance, and other information sensing and collection devices are mostly installed to ensure community security. However, currently, the integration level of these devices is low, and the degree of information interconnection and sharing is also low, making it difficult to effectively manage the community as a whole. Especially when security incidents occur, investigations can only be conducted by reviewing surveillance footage, failing to prevent future incidents. Particularly problematic are "three-no" communities (communities without property management, security, or sanitation), older communities, and communities without property management or security personnel. These communities are often in a management vacuum, frequently experiencing theft and security incidents. Summary of the Invention

[0003] Based on the background information, one objective of this invention is to provide a smart community security management method, which mainly includes the following steps:

[0004] The system software in the monitoring terminal of the monitoring platform acquires monitoring video information of key intersections in the community, patrol information of key road sections in the community, collects and stores vehicle and pedestrian access control information, acquires smoke and gas detection alarm information in residential buildings, and acquires information on the location of intruders climbing over the community wall. The acquisition of the location information of intruders climbing over the community wall is carried out by combining tension detection method and infrared detection method. The control system activates infrared detection based on the tension detection signal to detect whether there is an intruder climbing on the wall above the side of the tension detection position, and further distinguishes whether it is a false alarm of the system.

[0005] Another objective of this invention is to provide a smart community security management platform, comprising:

[0006] The monitoring platform includes screen monitoring terminals such as video displays, user-end computers, and user-end mobile phones;

[0007] A video surveillance system, which includes multiple video monitors connected to video displays;

[0008] The electronic patrol system includes an electronic patrol card, multiple card readers distributed along the patrol route, and patrol software installed on the user's computer and mobile phone.

[0009] Access control system, which includes access controller, vehicle gate subsystem and pedestrian gate system, the access controller is connected to vehicle registration management system and owner registration management system located in user terminal computer;

[0010] The smoke and gas alarm system includes fire detectors, gas detectors, and a residential alarm control panel installed in the residence. The fire detectors and gas detectors are electrically connected to the residential alarm control panel and connected to the monitoring platform through the residential alarm control panel.

[0011] The perimeter alarm system is installed on the perimeter wall or fence of the community. It includes a tension detection system and an infrared detection system. The tension detection system is activated first, and then the infrared detection system is activated. The infrared detection system is used to detect whether there is an intruder climbing on the wall or fence to the side of the tension detection position, and further to determine whether it is a false alarm of the system.

[0012] Furthermore, the tension detection system includes a control host that is communicatively connected to a monitoring terminal and multiple hollow pillars that are vertically arranged along the perimeter of the wall. The bottom end of each hollow pillar is fixed to the top of the wall. Multiple alloy wires are horizontally arranged between two adjacent hollow pillars. Each alloy wire is equipped with a tension detector and a tension spring. The tension detector is electrically connected to the control host. One end of the tension spring is connected to the hollow pillar, and the other end of the tension spring is connected to one end of the alloy wire. At least one intermediate rod is vertically arranged between two adjacent hollow pillars. The bottom end of the intermediate rod is fixed to the top of the wall, and multiple connectors for threading the alloy wires are provided on the intermediate rod.

[0013] Furthermore, a mounting hole for inserting a tension detector is provided on one side of the hollow support column. The wiring terminal of the tension detector is located on the outside of the hollow support column, and the electrical control terminal of the tension detector is located inside the cavity of the hollow support column.

[0014] Furthermore, a tensioner is provided on each alloy wire.

[0015] Furthermore, an alarm is provided at the top of the hollow support column, which is electrically connected to the control host.

[0016] Furthermore, the infrared detection system includes an upper infrared transmitter and an upper infrared receiver, and a lower infrared transmitter and a lower infrared receiver, which are electrically connected to the control host. The upper infrared transmitter on one hollow column is paired with the upper infrared receiver on the adjacent hollow column, and the lower infrared transmitter on one hollow column is paired with the lower infrared receiver on the adjacent hollow column. The upper infrared transmitter, the upper infrared receiver, the lower infrared transmitter, and the lower infrared receiver are located outside the alloy wire.

[0017] Furthermore, an electrically operated vertical rotating plate is provided on the outer side of the hollow support column, with the inner side of the rotating plate located in the inner cavity of the hollow support column. The upper infrared transmitter and upper infrared receiver are located at the top of the inner side of the rotating plate, and the lower infrared transmitter and lower infrared receiver are located at the bottom of the inner side of the rotating plate. When the infrared detection system is not activated, the upper infrared transmitter, upper infrared receiver, lower infrared transmitter, and lower infrared receiver are located in the inner cavity of the hollow support column.

[0018] Furthermore, a vertical hole is formed in the middle of the side of the hollow pillar located outside the wall. The top of the vertical hole corresponds to the uppermost alloy wire, and the bottom of the vertical hole corresponds to the lowermost alloy wire. A rotating plate adapted to the shape of the vertical hole is installed in the vertical hole. A first and a second horizontally positioned fixing device are respectively provided at the upper and lower ends of the rotating plate located in the inner cavity of the hollow pillar. The upper infrared transmitter and the upper infrared receiver are respectively set at the two ends of the first fixing device, and the lower infrared transmitter and the lower infrared receiver are respectively set at the two ends of the second fixing device. A pair of hinge seats are fixed on the inner wall of the hollow pillar, and the two hinge seats are symmetrically positioned horizontally. At the edge of the middle position of the vertical hole, a rotating shaft is rotatably connected between two hinge seats. The rotating shaft is horizontally placed, with one end of the rotating shaft passing through the corresponding hinge seat and extending to the outside. A driven wheel is fixedly connected to the outer end of the rotating shaft on this side. A motor is installed on the inner wall of the hollow support column opposite to the vertical hole. The motor is electrically connected to the control host. A driving wheel is fixedly connected to the power end of the motor, and the driving wheel and the driven wheel are connected by a transmission belt. A connecting part is fixedly provided at the middle position of one side of the rotating plate located in the inner cavity of the hollow support column. One end of the connecting part is fixedly connected to the middle section of the rotating shaft. Both ends of the rotating plate are provided with arc end faces. The arc end faces are connected to the two ends of the vertical hole and close the hollow support column.

[0019] Furthermore, an upper arc-shaped partition and a lower arc-shaped partition are respectively provided above and below the motor in the inner cavity of the hollow support column. The upper arc-shaped partition and the lower arc-shaped partition are respectively in contact with the arc end faces of the rotating plate at both ends. One side of the upper arc-shaped partition and the lower arc-shaped partition are perpendicularly connected to the inner wall of the hollow support column. The other side of the upper arc-shaped partition and the lower arc-shaped partition are perpendicularly connected to a side partition. The electrical control end of the tension detector is located in the gap between the side partition and the inner wall of the hollow support column.

[0020] Compared with the prior art, the smart community security management method and platform of the present invention have at least the following beneficial effects:

[0021] This invention uses a unified monitoring platform to oversee surveillance videos, patrol information, access control information, information on smoke and gas leaks in residences, and perimeter alarm information from the community walls. It achieves coordinated prevention and control through human, physical, and technological means, making security management measures more diverse, intelligent, and convenient. Furthermore, it utilizes IoT, internet technology, and intelligent security devices to upgrade and transform community security, effectively improving the community's security management capabilities, efficiency, and effectiveness, and greatly enhancing the sense of security and comfort of community residents.

[0022] This invention further improves the perimeter alarm system by employing a combination of tension detection technology and infrared detection technology to achieve perimeter security. The control system activates infrared detection based on the tension detection signal, specifically to detect whether anyone is climbing on the top of the perimeter wall to the side of the tension detection location. This further distinguishes between false alarms and interference from the external environment, objects, or animals, reducing misjudgments by community security personnel. It is efficient and labor-saving, reduces the number of times alarms are used and their lifespan, saves energy consumption, and greatly reduces interference with residents' daily lives. This makes the perimeter alarm system more accurate and intelligent, meeting the requirements of modern smart community security technology. Attached Figure Description

[0023] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0024] Figure 1 This is a structural block diagram of the smart community security management and control platform provided in an embodiment of the present invention;

[0025] Figure 2 yes Figure 1 A simplified three-dimensional structural diagram of the perimeter alarm system described herein (outside the residential area);

[0026] Figure 3 yes Figure 1 A simplified three-dimensional structural diagram of the perimeter alarm system described in the document (inside the residential area);

[0027] Figure 4 yes Figure 2 A split view (front view) of the hollow support column and the rotating plate;

[0028] Figure 5 yes Figure 2A breakdown diagram (rear view) of the hollow support column and rotating plate;

[0029] Figure 6 This is a schematic diagram of the longitudinal section structure of the hollow support cavity in an embodiment of the present invention (the infrared detection system is not enabled);

[0030] Figure 7 This is a schematic diagram of the longitudinal section structure of the hollow support cavity in an embodiment of the present invention (detected by the upper-level infrared detection system);

[0031] Figure 8 This is a schematic diagram of the longitudinal section structure of the hollow support cavity in an embodiment of the present invention (detected by the lower-level infrared detection system);

[0032] Figure 9 This is a schematic diagram of the cross-sectional structure of the hollow support chamber in an embodiment of the present invention;

[0033] Figure 10 This is a three-dimensional state diagram of the infrared detection system when it is activated in an embodiment of the present invention (the dashed lines in the diagram represent the infrared beam connection between the upper infrared transmitter and the upper infrared receiver, and the solid lines represent alloy wires).

[0034] Figure 11 This is a three-dimensional state diagram of the infrared detection system when it is activated in an embodiment of the present invention (the dashed lines in the diagram represent the infrared beam connection between the lower infrared transmitter and the lower infrared receiver, and the solid lines represent alloy wires).

[0035] Explanation of icon numbers:

[0036] 1. Monitoring platform; 2. Video surveillance system; 3. Electronic patrol system; 4. Access control system; 5. Smoke and gas alarm system;

[0037] 6. Perimeter alarm system; 61. Tension detection system; 62. Infrared detection system; 601. Control box; 602. Hollow support column; 603. Alloy wire; 604. Tension detector; 605. Tension spring; 606. Hook; 607. Intermediate rod; 608. Connector; 609. Wire tensioner; 610. Warning sign; 611. Alarm; 612. Upper infrared transmitter; 613. Upper infrared receiver; 614. Lower infrared transmitter; 615. Lower infrared receiver; 616. Vertical hole; 617. Rotating plate; 618. First fixing device; 619. Second fixing device; 620. Hinge; 621. Rotating shaft; 622. Driven wheel; 623. Motor; 624. Driving wheel; 625. Drive belt; 626. Connecting part;

[0038] 7. Fence; 8. Upper curved partition; 9. Lower curved partition; 10. Side partition.

[0039] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0040] 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 a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0041] This invention proposes a smart community security management and control method and platform. Please refer to [link / reference]. Figure 1 As shown, the control method described in this embodiment includes the following steps:

[0042] The system software in the monitoring terminal of the monitoring platform obtains monitoring video information of key intersections in the community, patrol information of key road sections in the community, collects and stores vehicle and pedestrian access control information, obtains smoke and gas detection alarm information in residential buildings, and obtains information on the location of intruders climbing over the community wall.

[0043] The acquisition of the location information of the intruder climbing over the community wall is carried out by combining the tension detection method and the infrared detection method. The control system then activates the infrared detection based on the tension detection signal to detect whether there is an intruder climbing over the wall above the side of the tension detection location, and further distinguishes whether it is a false alarm of the system.

[0044] Based on the above-described smart community security management method, the management platform described in this embodiment includes:

[0045] The monitoring platform 1 includes video monitors, user computers, and user mobile phones as screen monitoring terminals. Security personnel are stationed, managed, and maintained by the platform, and can control and monitor it through the relevant software systems installed on the user computers and user mobile phones.

[0046] Video surveillance system 2 includes multiple video monitors, which are distributed and installed at various important and key entrances and exits, walls, basements, elevators and intersections within the community. The video monitors can transmit the video information they acquire to the monitoring platform for storage via wired communication technologies such as network cables and switches, or they can connect to the monitoring platform via wireless communication technology. Security personnel within the community can manage the video surveillance situation of the community on the monitoring platform.

[0047] The electronic patrol system 3 includes electronic patrol cards carried by security personnel, multiple card readers (i.e., patrol points) distributed along the patrol route, and patrol software installed on user-end computers and user-end mobile phones. The electronic patrol cards can interface with the card readers for feedback and connect to the monitoring platform's user-end computers and user-end mobile phones via wireless communication technology. The patrol software and APP record patrol information, including patrol time, patrol location, and patrol personnel's name and number.

[0048] Access control system 4 mainly includes an access controller, a vehicle barrier gate subsystem, and a pedestrian barrier gate subsystem. The vehicle barrier gate subsystem includes an electric vehicle barrier gate, a license plate recognition camera, and a vehicle sensor connected to the access controller. The access controller is connected to a vehicle registration management system, which pre-collects and stores license plate information. The pedestrian barrier gate subsystem includes an electrically controlled gate and a facial recognition device connected to the access controller. The access controller is connected to a property registration management system, which pre-collects and stores facial features.

[0049] The smoke and gas alarm system 5 includes fire detectors, gas detectors, and a residential alarm host installed in the residence. The fire detectors and gas detectors are electrically connected to the residential alarm host and connected to the monitoring terminal in the monitoring platform through the host, so that community security personnel can be informed of the danger in time and take fire-fighting measures.

[0050] Perimeter alarm system 6, installed on the community wall 7 or fence, includes tension detection system 61 and infrared detection system 62. It is used to prevent and warn intruders from climbing over into the community and transmits the location of any intruders climbing over the fence to the monitoring platform via detection signals. Figures 2-3As shown, in one embodiment of the present invention, the tension detection system includes a control box 601 fixedly installed inside the wall 7 and multiple hollow support columns 602 vertically arranged around the wall 7. The inner cavity of the hollow support column 602 can be used to accommodate electronic components, etc. The control box 601 is equipped with a control host. The control host and the monitoring platform can be connected via wired or wireless communication. Security personnel can view the location of the intruder's crime (specifically, its location on the wall 7) through the "electronic map" monitoring software on the user's computer and mobile phone. The bottom end of the hollow support column 602 is fixedly connected to the top of the wall 7. Multiple alloy wires 603 are arranged horizontally between two adjacent hollow support columns 602 (the number of alloy wires 603 in the figure is 4). Adjacent alloy wires 603 are evenly spaced (the spacing is set at 175mm ± 20mm, and the lowest alloy wire 603 is spaced from the top of the wall 7). The hollow support column 602 has four equally spaced mounting holes vertically arranged on the middle of one side. Each mounting hole houses a tension detector 604. The wiring terminal of the tension detector 604 is located on the outside of the hollow support column 602, while the electrical control terminal is located inside the hollow support column 602. The tension detector 604 is electrically connected to the control host. In operation, when the tension detector 604 detects a change in the tension of a certain alloy wire 603 that reaches the preset alarm requirement, the control host will activate the alarm 611 and transmit the alarm signal to the security monitoring platform. The security personnel on duty can accurately determine the location of the incident through the alarm issued by the security room and the electronic map on the monitoring terminal, and take immediate action.

[0051] It should be noted that the tension detectors 604 on existing tension-type electronic fences are all completely exposed on the outside of the support column, which are easily damaged and affected by the outside world. This embodiment avoids the above-mentioned problems by setting a "hollow support column 602" and its side mounting holes, and placing the tension detectors 604 in the mounting holes, so that its electrical connection end is located in the inner cavity of the hollow support column 602 for protection.

[0052] In this embodiment, four equally spaced tension springs 605 are vertically arranged in the middle of the other side of the hollow support column 602 corresponding to each mounting hole. In use, the tension springs 605 are arranged horizontally. One end of each tension spring 605 is connected to a hook 606 on the side of one hollow support column 602, and the other end is connected to one end of an alloy wire 603. The other end of the alloy wire 603 is connected to the terminal of a tension detector 604 at the same height on the other hollow support column 602, and is positioned between two adjacent hollow supports 602. At least one intermediate rod 607 is provided vertically (two intermediate rods 607 are shown in the figure). The distance between adjacent intermediate rods 607 and the distance between intermediate rods 607 and hollow support column 602 are approximately 2-3.5 meters. The bottom end of the intermediate rod 607 is fixedly connected to the top of the wall 7. Four connectors 608 with equal spacing for alloy wires 603 to pass through are provided vertically on the rod body of the intermediate rod 607. In addition, a tensioner 609 is provided on each alloy wire 603 near the end of the tension spring 605 for tensioning the alloy wire 603.

[0053] In one embodiment of the present invention, a warning sign 610 is provided on one of the alloy wires 603, and an alarm 611 electrically connected to the control host is provided at the top of the hollow support column 602 to warn others not to climb.

[0054] Based on the above, the alloy wire 603 in the perimeter alarm system described in this embodiment is not energized and achieves alarm through tension changes, making it safer than high-voltage electronic fence systems. The aforementioned perimeter alarm system typically includes a hollow support post 602, a middle pole 607, a tension detector 604, an alloy wire 603, an alarm 611, and a control host. In operation, the alloy wire 603 is under a certain tension, generating a reference tension. When someone climbs the fence 7 and exerts force on the taut tension alloy wire 603 (for example, by placing their hand or foot on the tension alloy wire 603, or by arching their body between two adjacent tension alloy wires 603 to cross), the increased tension of the alloy wire 603 is transmitted to the tension sensor. The tension change causes a change in the resistance within the tension sensor, resulting in a larger tension voltage being output to the control host. When the tension voltage received by the control host minus the reference tension voltage reaches the set alarm threshold, the alarm 611 is activated, and an alarm signal is output to the monitoring platform.

[0055] Because the perimeter alarm system of this embodiment is prone to false alarms in actual use, especially under non-human conditions, it can lead to misjudgments by community security personnel. For example, changes in time, ambient temperature, and weather (wind, rain, snow, etc.) can cause changes in the tension of the alloy wire 603 or the reference tension of the tension spring, resulting in false alarms. Furthermore, the presence of animals such as birds, cats, dogs, and snakes climbing onto the tension alloy wire 603, or debris such as branches, leaves, and garbage bags getting caught on it, can also trigger false alarms. Therefore, in another embodiment of the present invention, combined with... Figures 4-9 As shown, each hollow support column 602 is equipped with an infrared detection system for detecting whether anyone is standing on the side of the alloy wire 603 at the top of the wall 7. The infrared detection system includes an upper infrared transmitter 612 and an upper infrared receiver 613 electrically connected to the control host, and a lower infrared transmitter 614 and a lower infrared receiver 615. Figures 10-11 As shown, an upper infrared transmitter 612 on a hollow support column 602 is paired with an upper infrared receiver 613 on an adjacent hollow support column 602, and a lower infrared transmitter 614 on a hollow support column 602 is paired with a lower infrared receiver 615 on an adjacent hollow support column 602. This is used to detect whether anyone is standing or climbing on the wall 7 on the side of the alloy wire 603 between the two hollow support columns 602. Therefore, the infrared detection system described in this embodiment is only activated after the tension detection system is triggered, thereby further identifying whether an intruder is climbing on the wall 7. When the infrared detection system detects an object on the wall 7 on the side of the alloy wire 603, it controls the host to activate the alarm 611 through signal transmission and transmits the alarm signal to the monitoring platform. The security personnel on duty use the terminal software to check the situation and take action.

[0056] To better achieve the above objectives and provide protection for the upper infrared transmitter 612 / upper infrared receiver 613 / lower infrared transmitter 614 / lower infrared receiver 615 when not in use, a vertical hole 616 is provided in the middle of the side of each hollow support column 602 located on the perimeter of the enclosure 7. The top of the vertical hole 616 corresponds to the uppermost alloy wire 603, and the bottom of the vertical hole 616 corresponds to the lowermost alloy wire 603. A rotating plate 617 adapted to the shape of the vertical hole 616 is provided in the vertical hole 616. The rotating plate 617 can close the vertical hole 616. The hollow support column 602 has a first fixing device 618 and a second fixing device 619 horizontally positioned at the upper and lower ends of one side of the rotating plate 617. The aforementioned upper infrared transmitter 612 and upper infrared receiver 613 are respectively located at the two ends of the first fixing device 618, and the lower infrared transmitter 614 and lower infrared receiver 615 are respectively located at the two ends of the second fixing device 619. A pair of hinge seats 620 are fixed on the inner wall of the hollow support column 602. The two hinge seats 620 are symmetrically positioned horizontally at the edge of the middle position of the vertical hole 616, and a rotating hub is rotatably connected between the two hinge seats 620. A shaft 621 is horizontally positioned, with one end of the shaft 621 extending outward through a corresponding hinge seat 620. A driven wheel 622 is fixedly connected to the outer end of the shaft 621 on this side. A motor 623 is fixedly installed on the inner wall of the hollow support column 602 opposite to the vertical hole 616. The motor 623 is electrically connected to the control host. A drive wheel 624 is fixedly connected to the power end of the motor 623, and the drive wheel 624 is connected to the aforementioned driven wheel 622 through a transmission belt 625. A rotating plate 617 located in the inner cavity of the hollow support column 602 is fixedly positioned at the middle of one side. The connecting part 626 is fixedly connected at one end to the middle section of the rotating shaft 621. Both ends of the rotating plate 617 are provided with arc end faces. The arc end faces are connected to the two ends of the vertical hole 616 and seal the hollow support 602. Through the above structural design, this embodiment aims to use the motor 623, pulley drive and rotating shaft 621 to drive the rotating plate 617 to rotate, so that the upper / lower infrared transmitter 614 and receiver rotate with the rotating plate 617, so that the infrared detection system has a certain detection arc θ (the detection arc θ is generally set to 30°) at the upper and lower positions outside the alloy wire 603.

[0057] In this embodiment, see again Figures 6-9As shown, an upper arc-shaped partition 8 and a lower arc-shaped partition 9 are respectively provided above and below the motor 623 in the inner cavity of the hollow support column 602. The upper arc-shaped partition 8 and the lower arc-shaped partition 9 are respectively in contact with the arc-shaped end faces of the rotating plate 617 in the rotating state. One side of the upper arc-shaped partition 8 and the lower arc-shaped partition 9 is perpendicularly connected to the inner wall of the hollow support column 602, and the other side of the upper arc-shaped partition 8 and the lower arc-shaped partition 9 are perpendicularly connected to a partition 10. The tension detector The tail electrical control terminal of 604 is located in the gap between the side partition 10 and the inner wall of the hollow support column 602. Thus, the rotating plate 617, the upper arc-shaped partition 8, the lower arc-shaped partition 9, the side partition 10, and one side wall of the inner cavity of the hollow support column 602 form a chamber to accommodate the devices in the infrared detection system. This facilitates the removal of foreign objects entering through the vertical hole 616 and also prevents them from entering other parts of the inner cavity of the hollow support column 602 and interfering with the normal operation of the perimeter alarm system.

[0058] As described above, the perimeter alarm system in the smart community security management platform of the present invention works as follows: When the alloy wire 603 is touched, the tension detector 604 transmits a signal to the control host. The control host immediately and automatically activates the infrared detection system, that is, it synchronously starts the motors 623 in the hollow pillars 602 on both sides of the tension detector 604. After the motors 623 start, they drive the corresponding rotating plate 617 to rotate rapidly clockwise and counterclockwise via the transmission belt 625. The time to complete this action is about 1 second, and this action is repeated until the alloy wire 603 is no longer touched. During the above actions, the upper infrared transmitter 612 and the upper infrared receiver 613 are used to detect the climbing space above the outside of the alloy wire 603, and the lower infrared transmitter 612 is used to detect the climbing space above the outside of the alloy wire 603. 14 and the lower infrared receiver 615 detect the climbing space below the outer side of the alloy wire 603. If someone is climbing on the outer side of the alloy wire 603 above the wall 7, it will be detected by the infrared detection system. At that time, the control host will activate the alarm 611 and transmit the alarm signal to the monitoring platform of the community security guard. The security personnel can accurately find the location of the wall 7 through the electronic map on the monitoring terminal and then go to investigate. If the touch signal of the alloy wire 603 continues for more than 10 seconds and the infrared detection system does not detect the physical signal, the control host will activate the alarm 611. If the touch signal of the alloy wire 603 does not stop and the alarm 611 is activated for more than 5 seconds, the control host will transmit the alarm signal to the monitoring platform, and the security personnel will go to investigate.

[0059] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly.

[0060] In this invention, unless otherwise explicitly specified and limited, the terms "connection," "fixed," etc., should be interpreted broadly. For example, "fixed" can mean a fixed connection, a detachable connection, or an integral part; it can mean a mechanical connection or an electrical connection; it can mean a direct connection or an indirect connection through an intermediate medium; it can mean the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0061] Furthermore, in this invention, descriptions involving "first," "second," etc., are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. The meaning of "and / at" throughout the text is to include three parallel solutions; taking "A and / or B as an example," it includes solution A, or solution B, or a solution that simultaneously satisfies A and B. Additionally, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this invention.

[0062] The above description is merely a preferred embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural transformations made using the contents of the present invention's specification and drawings under the inventive concept of the present invention, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present invention.

Claims

1. A smart community security management and control platform, characterized in that, Include: The monitoring platform includes screen monitoring terminals such as video displays, user-end computers, and user-end mobile phones; A video surveillance system, which includes multiple video monitors connected to video displays; The electronic patrol system includes an electronic patrol card, multiple card readers distributed along the patrol route, and patrol software installed on the user's computer and mobile phone. Access control system, which includes access controller, vehicle gate subsystem and pedestrian gate system, the access controller is connected to vehicle registration management system and owner registration management system located in user terminal computer; The smoke and gas alarm system includes fire detectors, gas detectors, and a residential alarm control panel installed in the residence. The fire detectors and gas detectors are electrically connected to the residential alarm control panel and connected to the monitoring platform through the residential alarm control panel. The perimeter alarm system is installed on the community wall or fence and includes a tension detection system and an infrared detection system. The tension detection system is activated first, and then the infrared detection system is activated. The infrared detection system is used to detect whether there is an intruder climbing on the wall or fence to the side of the tension detection position, and further to determine whether it is a false alarm of the system. The system software in the monitoring terminal of the monitoring platform acquires monitoring video information of key intersections in the community, patrol information of key road sections in the community, collects and stores vehicle and pedestrian access control information, acquires smoke and gas detection alarm information in residential buildings, and acquires information on the location of intruders climbing over the community wall. The acquisition of the location information of intruders climbing over the community wall is carried out by combining tension detection method and infrared detection method. The control system activates infrared detection based on the tension detection signal to detect whether there is an intruder climbing on the wall above the side of the tension detection position, and further distinguishes whether it is a false alarm of the system. The tension detection system includes a control host that is communicatively connected to a monitoring terminal and multiple hollow pillars that are vertically arranged around the perimeter of the wall. The bottom end of each hollow pillar is fixed to the top of the wall. Multiple alloy wires are horizontally arranged between two adjacent hollow pillars. Each alloy wire is equipped with a tension detector and a tension spring. The tension detector is electrically connected to the control host. One end of the tension spring is connected to the hollow pillar, and the other end of the tension spring is connected to one end of the alloy wire. At least one intermediate rod is vertically arranged between two adjacent hollow pillars. The bottom end of the intermediate rod is fixed to the top of the wall, and multiple connectors for threading the alloy wires are provided on the intermediate rod. The infrared detection system includes an upper infrared transmitter and an upper infrared receiver, and a lower infrared transmitter and a lower infrared receiver, which are electrically connected to the control host. The upper infrared transmitter on one hollow column is paired with the upper infrared receiver on the adjacent hollow column, and the lower infrared transmitter on one hollow column is paired with the lower infrared receiver on the adjacent hollow column. The upper infrared transmitter, upper infrared receiver, lower infrared transmitter, and lower infrared receiver are located outside the alloy wire.

2. The smart community security management platform according to claim 1, characterized in that, A mounting hole for inserting a tension detector is provided on one side of the hollow support column. The wiring terminal of the tension detector is located on the outside of the hollow support column, and the electrical control terminal of the tension detector is located inside the cavity of the hollow support column.

3. The smart community security management platform according to claim 1, characterized in that, Each of the alloy wires is provided with a tensioner.

4. The smart community security management platform according to claim 1, characterized in that, An alarm is installed at the top of the hollow support column, which is electrically connected to the control host.

5. The smart community security management platform according to claim 1, characterized in that, An electrically operated vertical rotating plate is provided on the outer side of the hollow support column. The inner side of the rotating plate is located in the inner cavity of the hollow support column. The upper infrared transmitter and upper infrared receiver are located at the top of the inner side of the rotating plate, and the lower infrared transmitter and lower infrared receiver are located at the bottom of the inner side of the rotating plate. When the infrared detection system is not activated, the upper infrared transmitter, upper infrared receiver, lower infrared transmitter, and lower infrared receiver are located in the inner cavity of the hollow support column.

6. The smart community security management platform according to claim 5, characterized in that, A vertical hole is formed in the middle of the side of the hollow pillar located outside the wall. The top of the vertical hole corresponds to the uppermost alloy wire, and the bottom of the vertical hole corresponds to the lowermost alloy wire. A rotating plate adapted to the shape of the vertical hole is installed in the vertical hole. A first and a second horizontally placed fixing device are respectively installed at the upper and lower ends of one side of the rotating plate located in the cavity of the hollow pillar. The upper infrared transmitter and the upper infrared receiver are respectively installed at the two ends of the first fixing device, and the lower infrared transmitter and the lower infrared receiver are respectively installed at the two ends of the second fixing device. A pair of hinge seats are fixed on the inner wall of the hollow pillar, and the two hinge seats are symmetrically placed horizontally in the vertical hole. At the edge of the space, a rotating shaft is rotatably connected between two hinge seats. The rotating shaft is horizontally placed, with one end of the shaft extending outward through the corresponding hinge seat. A driven wheel is fixedly connected to the outer end of the rotating shaft on this side. A motor is installed on the inner wall of the hollow support column opposite to the vertical hole. The motor is electrically connected to the control host. A driving wheel is fixedly connected to the power end of the motor, and the driving wheel and the driven wheel are connected by a transmission belt. A connecting part is fixedly provided in the middle of one side of the rotating plate located in the inner cavity of the hollow support column. One end of the connecting part is fixedly connected to the middle section of the rotating shaft. Both ends of the rotating plate are provided with arc end faces. The arc end faces are connected to the two ends of the vertical hole and close the hollow support column.

7. The community security management platform according to claim 6, characterized in that, An upper arc-shaped partition and a lower arc-shaped partition are respectively provided above and below the motor in the inner cavity of the hollow support column. The upper arc-shaped partition and the lower arc-shaped partition are respectively in contact with the arc end faces of the rotating plate at both ends. One side of the upper arc-shaped partition and the lower arc-shaped partition are perpendicularly connected to the inner wall of the hollow support column. The other side of the upper arc-shaped partition and the lower arc-shaped partition are perpendicularly connected to a side partition. The electrical control end of the tension detector is located in the gap between the side partition and the inner wall of the hollow support column.

Citation Information

Patent Citations

  • Pull-type anti-theft fence system

    CN203825749U

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    CN204884045U