Ground disaster monitoring equipment

By using an isolation plate to separate the satellite navigation module and the main control module into two sub-cavities in the disaster monitoring equipment and connecting them through an isolation channel, the problem of antenna crosstalk in the equipment is solved, and the integration and stability of the equipment are improved.

CN223565897UActive Publication Date: 2025-11-18SANLI VIDEO FREQUENCY SCI & TECH SHENZHEN
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Patent Information

Application Number
CN202422798953.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-15
Publication Date
2025-11-18
Estimated Expiration
2034-11-15

AI Technical Summary

Technical Problem

Crosstalk exists between the camera and the antenna components of the satellite navigation system in the disaster monitoring equipment, resulting in poor equipment integration and complicated installation.

Method used

The equipment is divided into two sub-cavities using an isolation plate. The satellite navigation module and the main control module are respectively located in different sub-cavities and connected by an isolation channel. The isolation plate and the isolation channel are used to shield high-frequency antenna crosstalk. The main control module and the satellite navigation module are connected by a guide post.

Benefits of technology

It effectively shields the crosstalk of high-frequency antennas in the satellite navigation module, improves the integration and installation stability of the equipment, and ensures accurate positioning capabilities.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses ground disaster monitoring equipment, which comprises an upper shell, a lower shell, an isolation plate, a satellite navigation module and a main control module, the upper shell and the lower shell are covered to form an accommodating cavity; the isolation plate is arranged between the upper shell and the lower shell and divides the accommodating cavity into a first sub-cavity and a second sub-cavity; the satellite navigation module is arranged in the first sub-cavity, and the main control module is arranged in the second sub-cavity; the isolation plate is provided with an isolation channel, and the satellite navigation module is connected with the master control module through the isolation channel. The isolation plate is arranged between the upper shell and the lower shell, the satellite navigation module and the main control module are respectively arranged in different sub-cavities, the isolation channel is arranged on the isolation plate, and the satellite navigation module and the main control module are connected through the isolation channel, so that crosstalk shielding of a high-frequency antenna in the satellite navigation module is realized, and the interference of the satellite navigation module and the main control module is reduced. The problem that a high-frequency antenna in a satellite navigation module is influenced by electronic equipment in a main control module and cannot be accurately positioned is solved, and the integration level of the equipment is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of monitoring technology, in particular to a ground disaster monitoring device. BACKGROUND

[0002] The ground disaster monitoring device is usually composed of a camera and a satellite navigation system, which utilizes the camera to monitor the area in real time, takes pictures at fixed time intervals to monitor the changes in the pictures, obtains the position coordinates of the area where changes occur, and then transmits the change information to the user end through a satellite navigation system such as the Beidou satellite system (BDS) to realize real-time monitoring of key areas in areas without people or network.

[0003] However, due to the crosstalk between the antenna components in the satellite navigation system and the camera mainboard, the device has poor functional integration, so each component needs to be installed separately, which ultimately makes it more troublesome to install and arrange the entire system. CONTENT OF THE UTILITY MODEL

[0004] The technical problem to be solved by the present application is to provide a ground disaster monitoring device that solves the crosstalk between modules in the monitoring device and improves the integration of the device.

[0005] To solve the above technical problems, the technical scheme adopted by the present application is:

[0006] A ground disaster monitoring device, comprising an upper shell, a lower shell, an isolation plate, a satellite navigation module, and a main control module; the upper shell and the lower shell are combined to form a containing cavity; the isolation plate is arranged between the upper shell and the lower shell, separating the containing cavity into a first sub-cavity and a second sub-cavity; the satellite navigation module is arranged in the first sub-cavity, and the main control module is arranged in the second sub-cavity; the isolation plate is provided with an isolation channel, and the satellite navigation module and the main control module are connected through the isolation channel.

[0007] Further, the main control module includes a lead column; the lead column passes through the isolation channel and is connected with the satellite navigation module.

[0008] Further, the main control module includes at least one fixing frame; the fixing frame is arranged on the inner wall of the lower shell; the fixing frame is provided with at least two cameras.

[0009] Further, the outer wall of the lower shell is provided with a positioning protrusion; the outer wall of the upper shell is provided with a positioning notch arranged opposite to the positioning protrusion.

[0010] Further, the lower shell is provided with a support block near one side of the upper shell; the isolation plate is arranged on the support block.

[0011] Further, the lower shell is provided with a locking protrusion near the end face of the upper shell, and the locking protrusion is provided with a fixing hole for connecting with the upper shell.

[0012] Further, the locking protrusion is arranged inside the end face of the lower shell, and the isolation plate is provided with a recess corresponding to the locking hole protrusion.

[0013] Further, the lower shell is provided with a sealing groove on the end face near the upper shell.

[0014] Further, the sealing groove is arranged around the inside of the end face of the lower shell, and the locking protrusion is arranged outside the sealing groove.

[0015] Further, the fixing assembly is further included, the fixing assembly comprises a fixing support and a locking mechanism, one end of the fixing support is connected with the upper shell or the lower shell, the other end of the fixing support is connected with the locking mechanism, and the locking mechanism is used for connecting with an external structure.

[0016] The utility model discloses beneficial effect lies in: through setting up the isolation plate between the upper shell and the lower shell, and setting up satellite navigation module and main control module in different sub -cavity respectively, simultaneously setting up the isolation passage on the isolation plate, through the isolation passage, satellite navigation module and main control module are connected, thereby through the isolation plate and the isolation passage, satellite navigation module and main control module are effectively isolated, realize the cross talk shielding of high -frequency antenna in satellite navigation module, solve the problem that high -frequency antenna in satellite navigation module is influenced by electronic equipment in main control module, lead to the problem of unable accurate positioning, improve the integration of equipment. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is the explosion map of a ground disaster monitoring equipment in the utility model embodiment;

[0018] Figure 2 It is the assembly schematic view of the lower shell and the isolation plate of a ground disaster monitoring equipment in the utility model embodiment;

[0019] Figure 3 It is Figure 1 It is the structure enlarged view of the A part;

[0020] Figure 4 It is the internal structure schematic view of the lower shell of a ground disaster monitoring equipment in the utility model embodiment;

[0021] Figure 5 It is the installation schematic view of a ground disaster monitoring equipment in the utility model embodiment;

[0022] Label explanation:

[0023] 1, the upper shell; 11, positioning gap; 2, the lower shell; 21, positioning lug; 22, support block; 23, locking lug; 24, sealing groove; 3, isolation plate; 31, isolation channel; 4, satellite navigation module; 5, main control module; 51, lead column; 52, fixed frame; 53, camera; 6, fixed assembly; 61, fixed strut; 62, locking mechanism; 7, stand. DETAILED DESCRIPTION

[0024] To illustrate the technical content of the utility model, the purposes and effects achieved, the following will be described in conjunction with the embodiments and the accompanying drawings.

[0025] Please refer to Figure 1 A ground disaster monitoring device, comprising an upper shell, a lower shell, an isolation plate, a satellite navigation module and a main control module; the upper shell and the lower shell are combined to form a containing cavity; the isolation plate is arranged between the upper shell and the lower shell, and separates the containing cavity into a first sub-cavity and a second sub-cavity; the satellite navigation module is arranged in the first sub-cavity, and the main control module is arranged in the second sub-cavity; the isolation plate is provided with an isolation channel, and the satellite navigation module and the main control module are connected through the isolation channel.

[0026] From the above description, the utility model has the beneficial effects that: by arranging the isolation plate between the upper shell and the lower shell, and arranging the satellite navigation module and the main control module in different sub-cavities, and arranging the isolation channel on the isolation plate, the satellite navigation module and the main control module are connected through the isolation channel, so that the satellite navigation module and the main control module are effectively isolated through the isolation plate and the isolation channel, the cross-talk shielding of the high-frequency antenna in the satellite navigation module is realized, the problem that the high-frequency antenna in the satellite navigation module is affected by the electronic equipment in the main control module and cannot be accurately positioned is solved, and the integration of the device is improved.

[0027] Further, the main control module comprises a lead column; the lead column passes through the isolation channel and is connected with the satellite navigation module.

[0028] From the above description, the main control module is connected with the satellite navigation module in the form of a lead column, which improves the stability of the connection between the main control module and the satellite navigation module.

[0029] Further, the main control module comprises at least one fixed frame; the fixed frame is arranged on the inner wall of the lower shell; and the fixed frame is provided with at least two cameras.

[0030] From the above description, by arranging the fixed frame in the lower shell and arranging multiple groups of cameras on the same fixed frame, the problem of tolerance accumulation caused by independent installation of multiple cameras can be avoided.

[0031] Further, the outer wall of the lower shell is provided with a positioning protrusion; the outer wall of the upper shell is provided with a positioning notch opposite to the positioning protrusion.

[0032] From the above description, by respectively setting the positioning protrusion on the lower shell and the positioning notch on the upper shell, the positioning and installation between the upper shell and the lower shell can be effectively realized based on the positioning cooperation between the positioning protrusion and the positioning notch.

[0033] Further, the lower shell is provided with a support block near one side of the upper shell; the isolation plate is arranged on the support block.

[0034] From the above description, by setting the support block in the lower shell, the isolation plate can be effectively supported, and the stability of the internal structure of the equipment is improved.

[0035] Further, the lower shell is provided with a locking protrusion near the end face of the upper shell, and the locking protrusion is provided with a fixing hole for connecting with the upper shell.

[0036] From the above description, by setting the locking protrusion on the lower shell and the fixing hole in the locking protrusion, the lower shell and the upper shell can be fixedly connected through screws and other structures, and the stability of the equipment is improved.

[0037] Further, the locking protrusion is arranged on the inner side of the end face of the lower shell; and the isolation plate is provided with a recess corresponding to the locking hole protrusion.

[0038] From the above description, by arranging the locking protrusion on the inner side of the end face of the lower shell, the locking protrusion not only can be connected with the upper shell, but also can be matched with the recess area on the isolation plate to realize the positioning and installation of the isolation plate.

[0039] Further, the lower shell is provided with a sealing groove on the end face near the upper shell.

[0040] From the above description, by setting the sealing groove on the lower shell, the sealing property of the equipment can be improved.

[0041] Further, the sealing groove is arranged around the inner side of the end face of the lower shell, and the locking protrusion is arranged on the outer side of the sealing groove.

[0042] From the above description, by arranging the locking protrusion on the outer side of the sealing groove, the influence of the locking protrusion on the sealing property of the equipment can be avoided, so that the sealing property of the equipment is improved.

[0043] Further, a fixing assembly is further included; the fixing assembly includes a fixing support rod and a locking mechanism; one end of the fixing support rod is connected with the upper shell or the lower shell; the other end of the fixing support rod is connected with the locking mechanism; and the locking mechanism is used for being connected with an external structure.

[0044] As can be known from the above description, the fixing support rod and the locking mechanism are arranged as the fixing assembly, so that the whole device can be fixedly installed on a stand column or other structure through the locking mechanism, and the monitoring of the scene is realized.

[0045] The ground disaster monitoring device can be applied to the scene of monitoring mountain collapse, landslide, debris flow, ground subsidence and other ground disasters, and the following will be described through a specific embodiment.

[0046] Embodiment one

[0047] Please refer to Figure 1 A ground disaster monitoring device includes an upper shell 1, a lower shell 2, an isolation plate 3, a satellite navigation module 4 and a main control module 5; wherein the satellite navigation module 4 can be a Beidou module, or a satellite navigation system module such as a global positioning system (GPS), GLONASS and Galileo system; the upper shell 1 and the lower shell 2 are combined to form a containing cavity; the isolation plate 3 is arranged between the upper shell 1 and the lower shell 2, and separates the containing cavity to form a first sub-cavity and a second sub-cavity; the satellite navigation module 4 is arranged in the first sub-cavity, and the main control module 5 is arranged in the second sub-cavity; the isolation plate 3 is provided with an isolation channel 31, and the satellite navigation module 4 and the main control module 5 are connected through the isolation channel 31.

[0048] In this embodiment, the main control module 5 is arranged in the second sub-cavity formed by the lower shell 2 and the isolation plate 3, and the satellite navigation module 4 is arranged in the first sub-cavity formed by the upper shell 1 and the isolation plate 3; and in order to meet the 5G demand, the upper shell 1 is made of a non-metallic material. At the same time, the main control module 5 includes a lead column 51; the lead column 51 passes through the isolation channel 31 to realize the mutual electrical connection of the main control board of the main control module 5 and the satellite navigation module 4. If the main control module 5 and the satellite navigation module 4 are connected only by punching the isolation plate 3, a certain crosstalk will still be generated, and the crosstalk problem of the high-frequency antenna in the satellite navigation module can be effectively solved by further arranging an isolation pipeline.

[0049] Please refer to Figure 1 and Figure 2The outer wall of the lower shell 2 is provided with a positioning protrusion 21; the outer wall of the upper shell 1 is provided with a positioning notch 11 opposite to the positioning protrusion 21; at the same time, the end face of the lower shell 2 close to the upper shell 1 is provided with a locking protrusion 23, and the locking protrusion 23 is provided with a fixing hole for connecting with the upper shell 1; that is, the positioning protrusion 21 of the outer wall of the lower shell 2 is matched with the positioning notch 11 of the upper shell 1 for pre-fixing, so that the upper shell 1 and the lower shell 2 are conveniently positioned by the locking protrusion 23 for screw locking.

[0050] The side of the lower shell 2 close to the upper shell 1 is also provided with a support block 22, and the isolation plate 3 is arranged on the support block 22; and the locking protrusion 23 is arranged on the inner side of the end face of the lower shell 2; the isolation plate 3 is provided with a recess corresponding to the locking hole protrusion; as shown in Figure 1 each locking protrusion 23 corresponds to a support block 22, and when the isolation plate 3 is arranged on the support block 22, the recess and the locking protrusion 23 realize the positioning of the isolation plate 3; at the same time, the positioning block and the isolation plate 3 can also be provided with a positioning hole, and a positioning column is arranged on the end face of the upper shell 1, so as to improve the stability of the connection of the upper shell 1, the isolation plate 3 and the lower shell 2. Please refer to Figure 3 The end face of the lower shell 2 close to the upper shell 1 is provided with a sealing groove 24; and the sealing groove 24 is arranged around the inner side of the end face of the lower shell 2, and the locking protrusion 23 is arranged on the outer side of the sealing groove 24; that is, the screw fastening part is isolated from the internal components, so as to improve the sealing of the internal structure; at the same time, the isolation degree between the upper shell 1 and the lower shell 2 is further improved by arranging the sealing groove 24, so as to improve the effect of the high-frequency antenna on the cross-talk shielding in the satellite navigation module.

[0051] Please refer to Figure 4 The main control module 5 includes at least one fixing frame 52; the fixing frame 52 is arranged on the inner wall of the lower shell 2; the fixing frame 52 is provided with at least two cameras 53; at the same time, the inner wall of the lower shell 2 is provided with a camera hole, so that the camera 53 can monitor the external environment through the camera hole. As shown in Figure 2As shown, two sets of fixing frames 52 are included in the embodiment, which are respectively arranged in the lower shell 2, and two cameras 53 are arranged on each fixing frame 52; by fixing two or more adjacent cameras 53 on the same fixing frame 52, the tolerance accumulation problem caused by independent installation of multiple cameras 53 can be avoided; if different cameras 53 are independently installed without using a shared fixing frame 52, the assembled cameras 53 will have a slight tilt in different directions, which will cut off more non-public parts when splicing images later. At the same time, the number of fixing frames 52 can be adjusted according to different lower shell 2 structures and camera 53 installation requirements, for example, in order to facilitate assembly, two cameras 53 are installed on two fixing frames 52 in the embodiment; in other embodiments, for example, without considering the convenience of assembly, four cameras 53 can be arranged on the same fixing frame 52. For example, if six cameras 53 need to be arranged, three cameras 53 can be arranged on each of the two fixing frames 52; if the total number of cameras 53 is even, half of the total number of cameras 53 is arranged on each fixing frame 52, and if the total number of cameras 53 is odd, one more camera 53 is arranged on one fixing frame 52 according to the internal arrangement structure.

[0052] Please refer to Figure 5 The fixing assembly 6 also includes a fixing support 61 and a locking mechanism 62; one end of the fixing support 61 is connected with the upper shell 1 or the lower shell 2; the other end of the fixing support 61 is connected with the locking mechanism 62; the locking mechanism 62 is used to connect with external structures, for example, the entire device is fixed with a stand 7 through the locking mechanism 62; in other scenarios, the entire device can also be connected with a tower and other facilities through the locking mechanism 62; according to different use scenarios, the specific installation structure and installation method of the locking mechanism 62 can be adjusted.

[0053] The above description is only an embodiment of the present application, and does not limit the patent scope of the present application, and any equivalent transformation or direct or indirect application in related technical fields based on the content of the present application specification and drawings is also included in the patent protection scope of the present application.

Claims

1. A ground disaster monitoring apparatus characterized by comprising: The application relates to a satellite navigation device, which comprises an upper shell, a lower shell, an isolation plate, a satellite navigation module and a main control module. The upper shell and the lower shell are combined to form a containing cavity. The isolation plate is arranged between the upper shell and the lower shell, and separates the containing cavity into a first sub-cavity and a second sub-cavity. The satellite navigation module is arranged in the first sub-cavity, and the main control module is arranged in the second sub-cavity. The isolation plate is provided with an isolation channel, and the satellite navigation module and the main control module are connected through the isolation channel.

2. The ground disaster monitoring apparatus according to claim 1, wherein The main control module comprises a lead wire column. The lead wire column passes through the isolation channel and is connected with the satellite navigation module.

3. The ground disaster monitoring apparatus according to claim 1, wherein The main control module comprises at least one fixing frame. The fixing frame is arranged on the inner wall of the lower shell. The fixing frame is provided with at least two cameras.

4. The ground disaster monitoring apparatus according to claim 1, wherein The outer wall of the lower shell is provided with a positioning protrusion. The outer wall of the upper shell is provided with a positioning notch which is arranged opposite to the positioning protrusion.

5. The ground disaster monitoring apparatus according to claim 1, wherein The lower shell is provided with a supporting block near one side of the upper shell. The isolation plate is arranged on the supporting block.

6. The ground disaster monitoring apparatus according to claim 1, wherein The lower shell is provided with a locking protrusion on the end face near the upper shell, and the locking protrusion is provided with a fixing hole for connecting with the upper shell.

7. The ground hazard monitoring device of claim 6, wherein, The locking protrusion is arranged on the inner side of the end face of the lower shell. The isolation plate is provided with a recess corresponding to the locking protrusion.

8. The ground hazard monitoring device of claim 7, wherein, The lower shell is provided with a sealing groove on the end face near the upper shell.

9. The ground hazard monitoring device of claim 8, wherein, The sealing groove is arranged around the inner side of the end face of the lower shell, and the locking protrusion is arranged on the outer side of the sealing groove.

10. The ground hazard monitoring device of claim 1, wherein, The application further comprises a fixing assembly. The fixing assembly comprises a fixing support and a locking mechanism. One end of the fixing support is connected with the upper shell or the lower shell. The other end of the fixing support is connected with the locking mechanism. The locking mechanism is used for connecting with an external structure.