Field multi-scene adaptive integrated monitoring system

By designing an integrated field multi-scene adaptive monitoring system, the existing equipment has solved the problems of single functions, low integration and complex installation, and the multi-scene adaptability and high integration of field video surveillance is achieved, simplifying the installation process and supporting remote monitoring.

CN120201164APending Publication Date: 2025-06-24CHINA GEOLOGICAL SURVEY CHANGSHA NATURAL RESOURCES COMPREHENSIVE SURVEY CENT
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Patent Information

Application Number
CN202510371469.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-27
Publication Date
2025-06-24

AI Technical Summary

Technical Problem

The existing field monitoring equipment has single functions, low integration, and complex installation process, which cannot meet the various field monitoring needs.

Method used

A field multi-scene adaptive integrated monitoring system is designed, including a management terminal, a suitcase, a support column, a first drive component, a lift, a camera, a wireless communication module, a computing module and an uninterruptible power supply. The system integrates a computing module, a wireless communication module and an uninterruptible power supply into the suitcase, and realizes flexible installation and video surveillance of the camera through support columns and lifts.

Benefits of technology

It realizes multi-scene adaptability of field video surveillance, improves system integration and portability, simplifies the installation process, and supports remote monitoring, making it more functional.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of field scene monitoring, in particular to a field multi-scene adaptive integrated monitoring system. During use, the support column is directly embedded into the ground of a field area to be subjected to video monitoring, and the support column is kept vertically arranged; connecting a power supply cable to the power output interface, and connecting a communication cable to the signal transmission interface; an external power supply is electrically connected to the uninterruptible power supply, so that power can be supplied to the calculation module, the wireless communication module and the camera through the uninterruptible power supply; the camera can carry out field video monitoring and sends shot real-time videos to the calculation module, and the calculation module obtains the real-time videos shot by the camera and sends the real-time videos to the management terminal through the wireless communication module. According to the system, the calculation module, the wireless communication module and the uninterruptible power supply are arranged in the suitcase, so that the system is high in integration level and more portable; the installation process is simpler, and the functions are richer.
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Description

Technical Field

[0001] The present invention relates to the technical field of field scene monitoring, and particularly relates to a multi-scene adaptive integrated monitoring system for the field. Background Art

[0002] During the process of field geological exploration work, it is usually necessary to conduct video monitoring on the natural environment and human operation actions in the field (for example, monitoring whether there is a fire in the forest field to achieve fire prevention and control, or monitoring whether the operation actions of field exploration personnel meet the safety operation standards); due to the complex field environment, many challenges are posed to the deployment and use of the monitoring system. In the traditional field environment monitoring solution, there are many and scattered devices, and both installation and transportation are extremely inconvenient; especially in the case of lack of stable power supply and network conditions in the field, the devices are difficult to work continuously and normally. The existing field monitoring devices have single functions, low integration, and complex installation processes, and cannot meet various field monitoring requirements. Summary of the Invention

[0003] The main object of the present invention is to provide a multi-scene adaptive integrated monitoring system for the field, aiming to solve the problems of single function, low integration, and complex installation process of the existing field monitoring devices.

[0004] To achieve the above object, the technical solution proposed by the present invention is:

[0005] A multi-scene adaptive integrated monitoring system for the field, comprising a management terminal, a suitcase, a support column, a first driving component, a lifting seat, a camera, a wireless communication module, a computing module, and an uninterruptible power supply; the uninterruptible power supply, the wireless communication module, and the computing module are all arranged in the suitcase; the suitcase can be sealed and closed or opened; the suitcase is provided with a signal transmission interface, a power input interface, and a power output interface; the uninterruptible power supply is electrically connected to an external power supply through the power input interface; the uninterruptible power supply is used to supply power to the wireless communication module and the computing module; the uninterruptible power supply is electrically connected to the power output interface; the power output interface is used to connect a power supply cable, and the power supply cable is used to supply power to the camera; the camera is connected to the signal transmission interface through a communication cable; the signal transmission interface is communicatively connected to the computing module; the computing module is communicatively connected to the wireless communication module; the first driving component is used to drive the lifting seat to lift relative to the support column; the camera is arranged on the lifting seat; the computing module is used to acquire the real-time video captured by the camera and send the real-time video to the management terminal through the wireless communication module.

[0006] Preferably, the first driving component includes a lead screw and a first motor; the support column is provided with a long waist-shaped hole extending axially; the lead screw is rotatably arranged in the long waist-shaped hole; the lifting seat is threadedly connected to the lead screw; the first motor is arranged on the support column; the first motor is used for driving the lead screw to rotate so as to drive the lifting seat to move up and down relative to the support column, and drive the camera to move up and down relative to the support column; the power supply cable is also used for supplying power to the first motor.

[0007] Preferably, the first driving component further includes a first rotating shaft; the support column is provided with a first inner cavity; the first inner cavity is located on one side of the long waist-shaped hole close to the bottom of the support column; the first rotating shaft is rotatably connected to the support column, and one end of the first rotating shaft is located in the first inner cavity, and the other end of the first rotating shaft is located in the long waist-shaped hole; the end of the first rotating shaft located in the long waist-shaped hole is coaxially connected to the lead screw; the first rotating shaft and the support column share the same central axis; the end of the lead screw away from the first rotating shaft is rotatably connected to the inner top wall of the long waist-shaped hole; the first motor is arranged in the first inner cavity; the output shaft of the first motor is coaxially connected to the first rotating shaft.

[0008] Preferably, the lifting seat includes a first connecting arm, a first cross arm, a second cross arm and a second connecting arm; the first connecting arm and the second connecting arm are parallel and opposite to each other; the first cross arm and the second cross arm are parallel and opposite to each other; both ends of the first cross arm are respectively connected to the first connecting arm and the second connecting arm; both ends of the second cross arm are respectively connected to the first connecting arm and the second connecting arm; the first cross arm and the second cross arm are respectively located on both sides of the support column; the long waist-shaped hole includes a first inner wall and a second inner wall that are parallel and opposite to each other; both the first inner wall and the second inner wall are vertically arranged; the first connecting arm is provided with a threaded hole through it; the lead screw is fitted through the threaded hole; the first connecting arm includes a first outer wall and a second outer wall that are parallel to each other; the first outer wall is slidably and fittingly abutted against the first inner wall; the second outer wall is slidably and fittingly abutted against the second inner wall; the camera is arranged on the second connecting arm.

[0009] Preferably, it further includes a support plate; the first connecting arm, the second connecting arm, the first cross arm and the second cross arm are all horizontally arranged; the support plate is rotatably connected to the second connecting arm; the camera is arranged on the support plate; the rotation axis of the support plate relative to the second connecting arm is parallel to the lead screw.

[0010] Preferably, it further includes a second driving component for driving the support plate to rotate relative to the second connecting arm; the second driving component includes a second rotating shaft, a connecting plate, a locking plate and a spring; the support plate includes a horizontally arranged third outer wall; the second connecting arm includes a horizontally arranged fourth outer wall; the second rotating shaft is vertically connected to the third outer wall; the second rotating shaft rotatably penetrates through the second connecting arm; the third outer wall is in rotational contact with the fourth outer wall; the locking plate is slidably sleeved on the second rotating shaft; the connecting plate is connected to the bottom end of the second rotating shaft; both the connecting plate and the locking plate are below the second connecting arm, and the connecting plate is below the locking plate; the spring is sleeved on the second rotating shaft; one end of the spring is connected to the connecting plate, and the other end of the spring is connected to the locking plate; the spring is always in a compressed state, and the elastic force of the spring causes the locking plate to have a tendency to abut against the second connecting arm; when the locking plate abuts against the second connecting arm, the support plate is fixed relative to the second connecting arm.

[0011] Preferably, the second driving component further includes a first connecting rod, a second connecting rod and a U-shaped rod; one end of the first connecting rod is connected to the side of the locking plate facing away from the second connecting arm; one end of the second connecting rod is connected to the side of the locking plate facing away from the second connecting arm; the first connecting rod and the second connecting rod are symmetric about the second rotating shaft; the first connecting rod slidably penetrates through the connecting plate; the second connecting rod slidably penetrates through the connecting plate; both the first connecting rod and the second connecting rod are perpendicular to the connecting plate; one end of the U-shaped rod is connected to the end of the first connecting rod away from the locking plate; the other end of the U-shaped rod is connected to the end of the second connecting rod away from the locking plate; a rubber layer is provided on the side of the locking plate facing the second connecting arm.

[0012] Preferably, it further includes a ground drilling component; the ground drilling component includes a second motor and a third rotating shaft; a groove is formed at the bottom of the support column; the groove and the central axis of the support column are collinear; a partition is provided in the groove to form a second inner cavity in the groove; the second motor is arranged in the second inner cavity; the third rotating shaft rotatably penetrates through the partition; the third rotating shaft and the support column share the same central axis; one end of the third rotating shaft is in the second inner cavity; the other end of the third rotating shaft extends downward out of the support column; a spiral blade is wound around the third rotating shaft; the spiral blade is on the side of the partition facing away from the second inner cavity; the second motor is used to drive the third rotating shaft to rotate so as to drive the spiral blade to rotate.

[0013] Preferably, it further includes a protective sleeve; the earth-boring assembly further includes a speed reducer disposed in the second inner cavity; the output shaft of the second motor is connected to the input shaft of the speed reducer; the output shaft of the speed reducer is connected to the third rotating shaft; an external thread is provided on the outer wall of the bottom of the support column; an internal thread is provided at the open end of the protective sleeve; the protective sleeve is screwed through the cooperation of the internal thread and the external thread to accommodate the spiral blade; the power supply cable is also used to supply power to the second motor.

[0014] Preferably, the calculation module is further configured to: extract the real-time video sent by the camera to obtain video frame images, and perform image analysis on the video frame images to determine whether there is a fire or smoke in the video frame images. If so, generate a warning message, and send the video frame images with fire or smoke and the warning message to the management terminal.

[0015] Compared with the prior art, the present invention has at least the following beneficial effects:

[0016] The proposed multi-scenario adaptive integrated monitoring system in the wild of the present invention can solve the problems of single function, low integration degree, and complex installation process of existing wild monitoring devices. When using this system, directly embed the support column into the ground of the wild area to be monitored for video, and keep the support column vertically set; then connect the power supply cable to the power output interface, connect the communication cable to the signal transmission interface; and use an external power supply to be electrically connected to the uninterruptible power supply, then the calculation module, wireless communication module, and camera can be powered by the uninterruptible power supply; the camera can perform wild video monitoring and send the captured real-time video to the calculation module. The calculation module obtains the real-time video captured by the camera and sends the real-time video to the management terminal through the wireless communication module. The management personnel can remotely monitor the area to be monitored by observing the management terminal; this system sets the calculation module, wireless communication module, and uninterruptible power supply in the suitcase, with high integration and greater portability; the installation process is also simpler, and it can also perform remote monitoring, with richer functions. Description of the Drawings

[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.

[0018] Figure 1 It is a schematic structural diagram of the suitcase of an embodiment of the multi-scenario adaptive integrated monitoring system in the wild proposed by the present invention;

[0019] Figure 2 Schematic structural diagram of a support column and related components of an embodiment of the outdoor multi-scenario adaptive integrated monitoring system proposed by the present invention;

[0020] Figure 3 For Figure 2 Enlarged detail view of part A in

[0021] Figure 4 Schematic structural diagram of a lifting seat of an embodiment of the outdoor multi-scenario adaptive integrated monitoring system proposed by the present invention.

[0022] Description of reference numerals:

[0023] 110, suitcase; 120, computing module; 130, wireless communication module; 140, uninterruptible power supply; 150, power output interface; 160, signal transmission interface; 170, support column; 180, long waist hole; 190, lead screw; 210, first inner cavity; 220, first rotating shaft; 230, first motor; 240, first connecting arm; 250, second connecting arm; 260, first cross arm; 270, second cross arm; 280, threaded hole; 290, support plate; 310, camera; 320, first inner wall; 330, second inner wall; 340, first outer wall; 350, second outer wall; 360, second inner cavity; 370, partition; 380, second motor; 390, reducer; 410, third rotating shaft; 420, spiral blade; 430, protective sleeve; 440, third outer wall; 450, fourth outer wall; 460, second rotating shaft; 470, locking plate; 480, connecting plate; 490, spring; 510, first connecting rod; 520, second connecting rod; 530, U-shaped rod.

[0024] The realization, functional features and advantages of the objectives of the present invention will be further described with reference to the embodiments and the accompanying drawings. Specific embodiments

[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts shall fall within the protection scope of the present invention.

[0026] It should be noted that all directional indications (such as up, down, left, right, front, back...) in the embodiments of the present invention are only used to explain the relative positional relationship and movement conditions between components in a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.

[0027] In addition, in the present invention, descriptions such as "first" and "second" are for descriptive purposes only, and should not be construed as indicating or implying their relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include at least one of such features. In the description of the present invention, the meaning of "a plurality of" is at least two, such as two, three, etc., unless otherwise specifically defined.

[0028] In the present invention, unless otherwise clearly defined and limited, the terms "connection", "fixation", etc. shall be understood in a broad sense. For example, "fixation" may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and may be the internal communication of two components or the interaction relationship between two components, unless otherwise clearly limited. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0029] In addition, the technical solutions between various embodiments of the present invention can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0030] The present invention provides a multi-scenario adaptive integrated monitoring system for the wild.

[0031] As shown in the attached Figure 1 - attached Figure 4As shown, in an embodiment of a field multi-scenario adaptive integrated monitoring system proposed by the present invention, the field multi-scenario adaptive integrated monitoring system includes a management terminal, a suitcase 110, a support column 170, a first driving component, a lifting seat, a camera 310, a wireless communication module 130 (such as a wireless router), a computing module 120 (such as a processor), and an uninterruptible power supply 140 (i.e., UPS, an uninterruptible power supply containing an energy storage unit (battery), which can access an external power supply to supply power to devices and can continue to supply power to devices uninterruptedly through its own energy storage unit when the external power supply is interrupted); the uninterruptible power supply 140, the wireless communication module 130, and the computing module 120 are all arranged in the suitcase 110; the suitcase 110 can be sealed and closed or opened; the suitcase 110 is provided with a signal transmission interface 160, a power input interface, and a power output interface 150; the uninterruptible power supply 140 is electrically connected to an external power supply through the power input interface; the uninterruptible power supply 140 is used to supply power to the wireless communication module 130 and the computing module 120; the uninterruptible power supply 140 is electrically connected to the power output interface 150; the power output interface 150 is used to connect a power supply cable (not shown), and the power supply cable is used to supply power to the camera 310; the camera 310 is connected to the signal transmission interface 160 through a communication cable (not shown); the signal transmission interface 160 is communicatively connected to the computing module 120; the computing module 120 is communicatively connected to the wireless communication module 130; the first driving component is used to drive the lifting seat to lift relative to the support column 170; the camera 310 is arranged on the lifting seat; the computing module 120 is used to obtain the real-time video captured by the camera 310 and send the real-time video to the management terminal through the wireless communication module 130.

[0032] The proposed multi-scenario adaptive integrated monitoring system for the wild can solve the problems of the existing wild monitoring devices with single functions, low integration, and complex installation processes. When using this system, directly embed the support column 170 into the ground of the wild area to be video-monitored, and keep the support column 170 vertically set. Then connect the power supply cable to the power output interface 150 and the communication cable to the signal transmission interface 160. Electrically connect an external power supply to the uninterruptible power supply 140, and then the uninterruptible power supply 140 can supply power to the computing module 120, the wireless communication module 130, and the camera 310. The camera 310 can then conduct wild video monitoring and send the captured real-time video to the computing module 120. The computing module 120 obtains the real-time video captured by the camera 310 and sends the real-time video to the management terminal through the wireless communication module 130. The management personnel can remotely monitor the area to be monitored by observing the management terminal (for example, observing whether the operation process of wild exploration personnel meets the safety standards). This system sets the computing module 120, the wireless communication module 130, and the uninterruptible power supply 140 in the suitcase 110, with high integration and greater portability. The installation process is also simpler, and it can also conduct remote monitoring, with more abundant functions.

[0033] In addition, the above first driving component includes a lead screw 190 and a first motor 230; the support column 170 is provided with an axially extending long waist hole 180; the lead screw 190 is rotatably arranged in the long waist hole 180; the lifting seat is threadedly connected to the lead screw 190; the first motor 230 is arranged on the support column 170; the first motor 230 is used to drive the lead screw 190 to rotate, so as to drive the lifting seat to lift relative to the support column 170, and drive the camera 310 to lift relative to the support column 170; the power supply cable is also used to supply power to the first motor 230.

[0034] At the same time, the first driving component further includes a first rotating shaft 220; the support column 170 is provided with a first inner cavity 210; the first inner cavity 210 is on the side of the long waist hole 180 close to the bottom of the support column 170; the first rotating shaft 220 is rotatably connected to the support column 170, and one end of the first rotating shaft 220 is in the first inner cavity 210, and the other end of the first rotating shaft 220 is in the long waist hole 180; the end of the first rotating shaft 220 in the long waist hole 180 is coaxially connected to the lead screw 190; the first rotating shaft 220 and the support column 170 share the same central axis; the end of the lead screw 190 away from the first rotating shaft 220 is rotatably connected to the inner top wall of the long waist hole 180; the first motor 230 is arranged in the first inner cavity 210; the output shaft of the first motor 230 is coaxially connected to the first rotating shaft 220.

[0035] Specifically, the above technical solution improves the structure and function of the first driving component. During specific use, the first motor 230 drives the first rotating shaft 220 to rotate, so as to drive the lead screw 190 to rotate, and further drive the lifting seat to vertically lift relative to the support column 170, so as to adjust the vertical height of the camera 310.

[0036] Specifically, the lifting seat includes a first connecting arm 240, a first cross arm 260, a second cross arm 270 and a second connecting arm 250. The first connecting arm 240 and the second connecting arm 250 are parallel to each other and directly opposite. The first cross arm 260 and the second cross arm 270 are parallel to each other and directly opposite. Two ends of the first cross arm 260 are respectively connected to the first connecting arm 240 and the second connecting arm 250. Two ends of the second cross arm 270 are respectively connected to the first connecting arm 240 and the second connecting arm 250. The first cross arm 260 and the second cross arm 270 are respectively on both sides of the support column 170. The long slot 180 includes a first inner wall 320 and a second inner wall 330 that are parallel to each other and directly opposite. Both the first inner wall 320 and the second inner wall 330 are vertically arranged. The first connecting arm 240 is provided with a threaded hole 280 through it. The lead screw 190 is fitted and passed through the threaded hole 280. The first connecting arm 240 includes a first outer wall 340 and a second outer wall 350 that are parallel to each other. The first outer wall 340 is slidably and fittingly abutted against the first inner wall 320. The second outer wall 350 is slidably and fittingly abutted against the second inner wall 330. The camera 310 is arranged on the second connecting arm 250.

[0037] Specifically, through the above technical solution, the structure of the lifting seat is further improved, so that the rotation of the lead screw 190 can drive the lifting seat to vertically lift.

[0038] In addition, the present multi-scenario adaptive integrated monitoring system for the field further includes a support plate 290. The first connecting arm 240, the second connecting arm 250, the first cross arm 260 and the second cross arm 270 are all horizontally arranged. The support plate 290 is rotatably connected to the second connecting arm 250. The camera 310 is arranged on the support plate 290. The rotation axis of the support plate 290 relative to the second connecting arm 250 is parallel to the lead screw 190. In this way, the shooting angle of the camera 310 can be adjusted.

[0039] At the same time, the field multi-scene adaptive integrated monitoring system also includes a second driving component for driving the support plate 290 to rotate relative to the second connecting arm 250; the second driving component includes a second rotating shaft 460, a connecting plate 480, a locking plate 470 and a spring 490; the support plate 290 includes a third outer wall 440 arranged horizontally; the second connecting arm 250 includes a fourth outer wall 450 arranged horizontally; the second rotating shaft 460 is vertically connected to the third outer wall 440; the second rotating shaft 460 is rotatably penetrated in the second connecting arm 250; the third outer wall 440 and the fourth outer wall 450 are rotatably fitted and contacted; the locking plate 470 is slidably sleeved on the second rotating shaft Shaft 460; the connecting plate 480 is connected to the bottom end of the second rotating shaft 460; the connecting plate 480 and the locking plate 470 are both located below the second connecting arm 250, and the connecting plate 480 is located below the locking plate 470; the spring 490 is sleeved on the second rotating shaft 460; one end of the spring 490 is connected to the connecting plate 480, and the other end of the spring 490 is connected to the locking plate 470; the spring 490 is always in a compressed state, and the elastic force of the spring 490 makes the locking plate 470 tend to abut against the second connecting arm 250; when the locking plate 470 abuts against the second connecting arm 250, the support plate 290 is fixed relative to the second connecting arm 250.

[0040] Specifically, the second driving component also includes a first connecting rod 510, a second connecting rod 520 and a U-shaped rod 530; one end of the first connecting rod 510 is connected to the side of the locking plate 470 that is away from the second connecting arm 250; one end of the second connecting rod 520 is connected to the side of the locking plate 470 that is away from the second connecting arm 250; the first connecting rod 510 and the second connecting rod 520 are symmetrical about the second rotating shaft 460; the first connecting rod 510 is slidably penetrated through the connecting plate 480; the second connecting rod 520 is slidably penetrated through the connecting plate 480; the first connecting rod 510 and the second connecting rod 520 are both perpendicular to the connecting plate 480; one end of the U-shaped rod 530 is connected to the end of the first connecting rod 510 away from the locking plate 470; the other end of the U-shaped rod 530 is connected to the end of the second connecting rod 520 away from the locking plate 470; a rubber layer is provided on the side of the locking plate 470 facing the second connecting arm 250.

[0041] Through the above technical solution, the angle of the support plate 290 relative to the second connecting arm 250 can be adjusted or locked; when the angle of the camera 310 needs to be adjusted, the U-shaped rod 530 is held and pulled downward so that the locking plate 470 no longer abuts against the second connecting arm 250. At this time, since the locking plate 470 no longer abuts against the second connecting arm 250, the U-shaped rod 530 can be manually rotated, thereby driving the connecting plate 480 and the second rotating shaft 460 to rotate synchronously, thereby driving the support plate 290 and the camera 310 on the support plate 290 to rotate, thereby achieving the purpose of adjusting the shooting angle of the camera 310; when the camera 310 is adjusted to a suitable angle, the U-shaped rod 530 can be released, and under the action of the spring 490, the locking plate 470 rises again and finally abuts against the second connecting arm 250, thereby locking the position of the support plate 290 and finally fixing the shooting angle of the camera 310.

[0042] In addition, the present field multi-scene adaptive integrated monitoring system also includes a drilling component; the drilling component includes a second motor 380 and a third rotating shaft 410; a groove is opened at the bottom of the support column 170; the groove and the central axis of the support column 170 are colinear; a partition 370 is arranged in the groove so that a second inner cavity 360 is formed in the groove; the second motor 380 is arranged in the second inner cavity 360; the third rotating shaft 410 is rotatably passed through the partition 370; the third rotating shaft 410 and the support column 170 share the central axis; one end of the third rotating shaft 410 is in the second inner cavity 360; the other end of the third rotating shaft 410 extends downward from the support column 170; a spiral blade 420 is arranged around the third rotating shaft 410; the spiral blade 420 is on the side of the partition 370 away from the second inner cavity 360; the second motor 380 is used to drive the third rotating shaft 410 to rotate, so as to drive the spiral blade 420 to rotate.

[0043] At the same time, the present field multi-scenario adaptive integrated monitoring system also includes a protective sleeve 430; the ground drilling assembly also includes a reducer 390 arranged in the second inner cavity 360; the output shaft of the second motor 380 is connected to the input shaft of the reducer 390; the output shaft of the reducer 390 is connected to the third rotating shaft 410; the bottom outer wall of the support column 170 is provided with an external thread; the open end of the protective sleeve 430 is provided with an internal thread; the protective sleeve 430 is screwed together with the internal thread and the external thread to accommodate the spiral blade 420; the power supply cable is also used to power the second motor 380.

[0044] Specifically, through the above technical solution, the support column 170 can be fixed to the ground more conveniently; when in use, the support column 170 is maintained vertically, and the second motor 380 is started to drive the third shaft 410 to rotate, thereby driving the spiral blade 420 to rotate. At this time, the spiral blade 420 is aimed at the ground, and the spiral blade 420 can be easily and labor-savingly drilled into the ground, thereby fixing the entire support column 170.

[0045] In addition, the computing module 120 is further configured to: extract the real-time video sent by the camera 310 to obtain video frame images, and perform image analysis on the video frame images to determine whether there is a fire or smoke in the video frame images. If so, generate a warning message, and send the video frame images with fire or smoke and the warning message to the management terminal; the antenna of the wireless communication module 130 is hermetically penetrated through the suitcase 110; the management terminal includes a display module; the display module is configured to display the real-time video, the warning message, and the video frame images with fire or smoke.

[0046] The technical module analyzes the video frame images to determine whether there is a fire or smoke in the video frame images, so as to achieve the purpose of wildfire prevention and control.

[0047] In an embodiment of the wild multi-scenario adaptive integrated monitoring system proposed by the present invention, the components in the system have the following parameters:

[0048] (1) The suitcase 110: 45 cm in length, 35 cm in height, 35 cm in width, made of materials that are both collision-proof and heat-dissipating, and all module devices inside are fixed.

[0049] (2) The computing module 120: 31.5 cm in length, 24.1 cm in width, 6.5 cm in height, used for data processing and analysis, realizing functions such as behavior analysis and fire point detection, connected to the uninterruptible power supply 140 to obtain power, and connected to the wireless communication module 130 (router) through a network cable for data transmission.

[0050] (3) The camera 310: 32 cm in length, 10 cm in width, 10 cm in height, with the following performance parameters:

[0051] Image sensor: Adopts a high-sensitivity sensor, with a thermal imaging pixel count reaching 1.6 million pixels (160x120), capable of clearly capturing details in the wild environment. Whether in low-light conditions or long-distance scenarios, high-quality video images can be obtained:

[0052] Lens: Equipped with a fixed-focus lens, the angle can be flexibly adjusted according to actual monitoring needs to achieve clear shooting of the wild working area range. Area intrusion detection is supported within the field of view, and a built-in white light and a speaker are provided.

[0053] Night vision function: Has an infrared night vision function, with an infrared lamp irradiation distance of up to 15 meters. In the night or in a dimly lit wild environment, it can automatically switch to the night vision mode to ensure 24-hour uninterrupted monitoring.

[0054] Video encoding format: Supports multiple encoding formats, such as H.264, H.265 and other video encoding formats. The appropriate encoding method can be selected according to the actual network conditions and storage requirements, effectively reducing the data transmission bandwidth and storage space occupancy while ensuring video quality.

[0055] Frame rate: Supports a maximum frame rate output of 60 frames per second, capable of smoothly recording dynamic images, avoiding image stuttering, and providing accurate data support for functions such as behavior analysis. Its power cord is connected to the main power supply, and the network cable is connected to the wireless communication module to transmit the collected data to the computing module for processing.

[0056] (4) Wireless communication module 130 (such as a TP-LINK router): Model: 21 cm long, 9.6 cm wide, 3.5 cm high, and the router antenna is 16 cm long. The router is placed on a specific track, and its antenna can be retracted through the side opening of the suitcase 110 for receiving and transmitting network signals, ensuring the network connection of the monitoring system. It is connected to the computing module 120 and the camera 310 through network cables to achieve data interaction.

[0057] (5) Uninterruptible power supply 140: As the main power supply of this system, it provides power support for the entire system, can continue to supply power to the devices when the external power supply is interrupted, ensuring the continuous operation of the system, and supplies power to the computing module 120, the camera 310 and the wireless communication module 130 through the power cord.

[0058] (6) Various panels: There are corresponding openings on the suitcase 110, including signal transmission interfaces 160, HDMI interfaces, audio interfaces, and VGA interfaces, which are adapted to the requirements of various application scenarios, connect to external network lines, and cooperate with the wireless communication module 130 to optimize network configuration.

[0059] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structural transformation made under the inventive concept of the present invention by using the content of the specification and drawings of the present invention, or any direct / indirect application in other related technical fields, is included in the patent protection scope of the present invention.

Claims

1. A field multi-scene adaptive integrated monitoring system, characterized in that: The device comprises a management terminal, a suitcase, a support column, a first driving component, a lifting seat, a camera, a wireless communication module, a computing module and an uninterruptible power supply; the uninterruptible power supply, the wireless communication module and the computing module are all arranged in the suitcase; the suitcase can be sealed closed or opened; the suitcase is provided with a signal transmission interface, a power input interface and a power output interface; the uninterruptible power supply is electrically connected to an external power supply through the power input interface; the uninterruptible power supply is used to supply power to the wireless communication module and the computing module; the uninterruptible power supply is electrically connected to the power output interface; The power output interface is used to connect a power supply cable, and the power supply cable is used to supply power to the camera; The camera is connected to the signal transmission interface via a communication cable; the signal transmission interface is communicatively connected to the computing module; the computing module is communicatively connected to the wireless communication module; the first driving component is used to drive the lifting seat to rise and fall relative to the support column; the camera is arranged on the lifting seat; the computing module is used to obtain the real-time video taken by the camera, and send the real-time video to the management terminal via the wireless communication module.

2. A field multi-scenario adaptive integrated monitoring system according to claim 1, characterized in that: The first driving component includes a screw and a first motor; the support column is provided with an axially extending long waist hole; the screw is rotatably arranged in the long waist hole; the lifting seat is threadedly connected to the screw; the first motor is arranged on the support column; the first motor is used to drive the screw to rotate, so as to drive the lifting seat to rise and fall relative to the support column, so as to drive the camera to rise and fall relative to the support column; The power supply cable is also used to supply power to the first motor.

3. The field multi-scenario adaptive integrated monitoring system according to claim 2 is characterized in that: The first driving component also includes a first rotating shaft; the support column is provided with a first inner cavity; the first inner cavity is located on the side of the long waist hole close to the bottom of the support column; the first rotating shaft is rotatably connected to the support column, and one end of the first rotating shaft is located in the first inner cavity, and the other end of the first rotating shaft is located in the long waist hole; the end of the first rotating shaft located in the long waist hole is coaxially connected to the screw rod; the first rotating shaft and the support column share a central axis; the end of the screw rod away from the first rotating shaft is rotatably connected to the inner top wall of the long waist hole; the first motor is arranged in the first inner cavity; the output shaft of the first motor is coaxially connected to the first rotating shaft.

4. The field multi-scenario adaptive integrated monitoring system according to claim 3 is characterized in that: The lifting seat includes a first connecting arm, a first cross arm, a second cross arm and a second connecting arm; the first connecting arm and the second connecting arm are parallel to and opposite to each other; the first cross arm and the second cross arm are parallel to and opposite to each other; the two ends of the first cross arm are respectively connected to the first connecting arm and the second connecting arm; the two ends of the second cross arm are respectively connected to the first connecting arm and the second connecting arm; the first cross arm and the second cross arm are respectively located on both sides of the support column; the long waist hole includes a first inner wall and a second inner wall that are parallel to and opposite to each other; the first inner wall and the second inner wall are both vertically arranged; a threaded hole is formed through the first connecting arm; the screw rod is cooperated and penetrated through the threaded hole; the first connecting arm includes a first outer wall and a second outer wall that are parallel to each other; the first outer wall slides and abuts against the first inner wall; the second outer wall slides and abuts against the second inner wall; the camera is arranged on the second connecting arm.

5. The field multi-scenario adaptive integrated monitoring system according to claim 4 is characterized in that: It also includes a support plate; the first connecting arm, the second connecting arm, the first cross arm and the second cross arm are all arranged horizontally; the support plate is rotatably connected to the second connecting arm; the camera is arranged on the support plate; the rotation axis of the support plate relative to the second connecting arm is parallel to the screw rod.

6. A field multi-scenario adaptive integrated monitoring system according to claim 5, characterized in that: The invention also includes a second driving component for driving the support plate to rotate relative to the second connecting arm; the second driving component includes a second rotating shaft, a connecting plate, a locking plate and a spring; the support plate includes a third outer wall arranged horizontally; the second connecting arm includes a fourth outer wall arranged horizontally; the second rotating shaft is vertically connected to the third outer wall; the second rotating shaft is rotatably arranged through the second connecting arm; the third outer wall and the fourth outer wall are rotatably fitted and contacted; the locking plate is slidably sleeved on the second rotating shaft; the connecting plate is connected to the bottom end of the second rotating shaft; the connecting plate and the locking plate are both located below the second connecting arm, and the connecting plate is located below the locking plate; the spring is sleeved on the second rotating shaft; one end of the spring is connected to the connecting plate, and the other end of the spring is connected to the locking plate; the spring is always in a compressed state, and the elastic force of the spring makes the locking plate have a tendency to abut against the second connecting arm; when the locking plate abuts against the second connecting arm, the support plate is fixed relative to the second connecting arm.

7. The field multi-scenario adaptive integrated monitoring system according to claim 6, characterized in that: The second driving component also includes a first connecting rod, a second connecting rod and a U-shaped rod; one end of the first connecting rod is connected to the side of the locking plate away from the second connecting arm; one end of the second connecting rod is connected to the side of the locking plate away from the second connecting arm; the first connecting rod and the second connecting rod are symmetrical about the second rotating axis; the first connecting rod is slidably passed through the connecting plate; the second connecting rod is slidably passed through the connecting plate; the first connecting rod and the second connecting rod are both perpendicular to the connecting plate; one end of the U-shaped rod is connected to the end of the first connecting rod away from the locking plate; the other end of the U-shaped rod is connected to the end of the second connecting rod away from the locking plate; a rubber layer is provided on the side of the locking plate facing the second connecting arm.

8. The field multi-scenario adaptive integrated monitoring system according to claim 1 is characterized in that: It also includes a drilling assembly; the drilling assembly includes a second motor and a third rotating shaft; a groove is opened at the bottom of the support column; the groove and the central axis of the support column are in a colinear line; a partition is arranged in the groove so that a second inner cavity is formed in the groove; the second motor is arranged in the second inner cavity; the third rotating shaft is rotatably passed through the partition; the third rotating shaft and the support column share a central axis; one end of the third rotating shaft is in the second inner cavity; the other end of the third rotating shaft extends downward from the support column; a spiral blade is arranged around the third rotating shaft; the spiral blade is on the side of the partition away from the second inner cavity; the second motor is used to drive the third rotating shaft to rotate, so as to drive the spiral blade to rotate.

9. The field multi-scenario adaptive integrated monitoring system according to claim 8, characterized in that: It also includes a protective sleeve; the drilling assembly also includes a reducer arranged in the second inner cavity; the output shaft of the second motor is connected to the input shaft of the reducer; the output shaft of the reducer is connected to the third rotating shaft; the bottom outer wall of the support column is provided with an external thread; the open end of the protective sleeve is provided with an internal thread; the protective sleeve is screwed together with the external thread through the internal thread to accommodate the spiral blade; the power supply cable is also used to supply power to the second motor.

10. The field multi-scenario adaptive integrated monitoring system according to claim 1, characterized in that: The computing module is also used to extract the real-time video sent by the camera to obtain a video frame image, and perform image analysis on the video frame image to determine whether there is flame or smoke in the video frame image. If so, generate warning information, and send the video frame image with flame or smoke and the warning information to the management terminal.