A remote sensing monitoring device

CN224607387UActive Publication Date: 2026-08-07AERIAL PHOTOGRAMMETRY & REMOTE SENSING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
AERIAL PHOTOGRAMMETRY & REMOTE SENSING CO LTD
Filing Date
2025-10-16
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

本申请的目的在于,针对上述现有技术中的不足,提供一种遥感监测装置,以解决支撑座的承载面较大导致携带与运输不便的问题

Benefits of technology

本申请提供一种遥感监测装置,包括支撑座和遥感仪器;支撑座包括支撑组件和折叠组件,遥感仪器设置于支撑组件的顶部,折叠组件设置于支撑组件的旁侧;折叠组件包括支撑板和固定件,固定件固定至支撑组件的侧壁,支撑板的一端与固定件活动连接。通过支撑板相对于固定件运动,使得支撑板的板面配合支撑组件的顶部支撑于遥感仪器底部;通过驱动支撑板的另一端使得支撑板朝向靠近支撑组件的侧壁面运动,支撑板由展开状态切换至折叠状态,减小了支撑座承载面的承载面积,提高了支撑座在运输过程中的便携性。

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Abstract

The application provides a remote sensing monitoring device, and relates to the technical field of remote sensing monitoring, which comprises a support seat and a remote sensing instrument; the support seat comprises a support assembly and a folding assembly; the remote sensing instrument is arranged on the top of the support assembly; and the folding assembly is arranged beside the support assembly; the folding assembly comprises a support plate and a fixing piece; the fixing piece is fixed to the side wall of the support assembly; and one end of the support plate is movably connected with the fixing piece. The support plate is moved relative to the fixing piece, so that the plate surface of the support plate is supported on the bottom of the remote sensing instrument in cooperation with the top of the support assembly; the other end of the support plate is driven to move towards the side wall surface of the support assembly, the support plate is switched from an unfolded state to a folded state, the bearing area of the bearing surface of the support seat is reduced, and the portability of the support seat during transportation is improved.
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Description

Technical Field

[0001] This application relates to the field of remote sensing monitoring technology, and more specifically, to a remote sensing monitoring device. Background Technology

[0002] Remote sensing monitoring devices are sophisticated equipment that detects the characteristics of targets over long distances using non-contact methods. They utilize sensors to receive electromagnetic wave signals reflected or radiated by targets, employing multi-spectral sensing technologies such as optical, infrared, and microwave sensors to achieve real-time dynamic monitoring of large areas, including the Earth's surface environment, weather changes, and resource distribution. These devices typically consist of a high-resolution imaging system, a signal processing unit, and a data analysis platform, possessing all-weather, multi-scale observation capabilities. They are widely used in fields such as agricultural yield estimation, disaster early warning, environmental monitoring, national defense reconnaissance, and urban planning, providing precise spatial geographic information support for scientific decision-making.

[0003] The support base of the remote sensing monitoring device supports the remote sensing instrument. In order to ensure the stability of the support, the support base usually needs to provide a large bearing surface to place the main unit. However, this large bearing surface often brings a series of inconveniences to the support base during carrying and transportation. Utility Model Content The purpose of this application is to provide a remote sensing monitoring device to address the shortcomings of the prior art, thereby solving the problem of inconvenience in carrying and transporting due to the large bearing surface of the support base.

[0004] To achieve the above objectives, the technical solutions adopted in the embodiments of this application are as follows: In one aspect of this application, a remote sensing monitoring device is provided, including a support base and a remote sensing instrument. The support base includes a support assembly and a folding assembly. The top of the support assembly supports the bottom of the remote sensing instrument, and the folding assembly is disposed beside the support assembly. The folding assembly includes a support plate and a fixing member. The fixing member is fixed to the side wall of the support assembly, and one end of the support plate is movably connected to the fixing member. When the support plate is in the unfolded state, the plate surface of the support plate cooperates with the top of the support assembly to support the bottom of the remote sensing instrument. The other end of the support plate is driven to move towards the side wall surface close to the support assembly, so that the support plate switches from the unfolded state to the folded state.

[0005] Optionally, one end of the support plate is rotatably connected to the fixing member; the folding assembly also includes a locking block with a first shaft, the fixing member is provided with a first receiving hole that movably engages with the first shaft, the locking block and the fixing member are connected by an elastic member, and the support plate is provided with a protrusion and a receiving groove; the first shaft passes through the first receiving hole and engages with the receiving groove so that the support plate is kept in the unfolded state; the locking block is driven to move the first shaft relative to the first receiving hole to disengage from the receiving groove, and the other end of the support plate is driven to switch to the folded state so that the support plate is kept in the folded state by the protrusion abutting against the first shaft.

[0006] Optionally, the locking block also includes a second shaft. The fixing member is provided with a second receiving hole that is movably engaged with the second shaft. The extension direction of the second receiving hole is set at an angle to the extension direction of the first receiving hole. When the support plate is engaged with the first shaft, the locking block is driven to move the second shaft relative to the second receiving hole, so that the first shaft is disengaged from the receiving groove and the engagement is released. Optionally, the support assembly includes a support member and a base. The top of the support member is supported on the bottom of the remote sensing instrument. The bottom of the support member is rotatably connected to the base. When the support member is in the first position, it is locked to the base. After the support member is unlocked from the base, the support member can be driven to rotate and switch between the first position and the second position.

[0007] Optionally, the support component includes a support block, a support column, and a rotating block in sequence along the extension direction from the remote sensing instrument to the support base. The fixing component is fixed to the side wall of the support block, the top of the support block is supported on the bottom of the remote sensing instrument, the support block is detachably connected to the upper end of the support column, and the lower end of the support column is detachably connected to the rotating block. Optionally, the support includes several support columns that are detachably connected. A limiting block is fixedly provided at each support column and at the connection between the support column and the support block. Fasteners are fixed to each support column and the connection between the support column and the support block via the limiting blocks. Optionally, the remote sensing monitoring device includes a limiting cable and a cable nail, and a fixing ring is fixedly installed on the outer wall of several support columns. One end of the limiting cable is connected to the fixing ring and the other end is connected to the cable nail; a reinforcing block is installed inside the support block and several support columns. Optionally, the base includes a substrate and a fixed stage fixedly disposed on the upper surface of the substrate. The fixed stage includes a cavity and an opening communicating with the cavity. The rotating block is located in the cavity and is rotatably connected to the fixed stage. A through hole communicating with the cavity is provided on a side wall away from the opening. A locking member is fixedly connected to the rotating block and the fixed stage through the through hole. Optionally, a handle and a rod are fixedly provided on the upper and lower surfaces of the substrate, respectively. The handle is located on the side of the fixing platform and is used to fix or release the fixing base via the rod. Optionally, the remote sensing instrument includes a main unit, a speaker, and a sensor. The main unit is fixedly mounted on a support base, the speaker is fixedly mounted on two opposite sides of the main unit, and the sensor is fixedly mounted on another opposite side of the main unit. A top plate is provided on the top of the main unit, and an electromagnetic plate is provided on the upper surface of the top plate. The electromagnetic plate, the speaker, and the sensor are electrically connected to the main unit.

[0008] The beneficial effects of this application include: This application provides a remote sensing monitoring device, including a support base and a remote sensing instrument. The support base includes a support assembly and a folding assembly. The remote sensing instrument is disposed on top of the support assembly, and the folding assembly is disposed beside the support assembly. The folding assembly includes a support plate and a fixing member. The fixing member is fixed to the side wall of the support assembly, and one end of the support plate is movably connected to the fixing member. By moving the support plate relative to the fixing member, the surface of the support plate mates with the top of the support assembly to support the bottom of the remote sensing instrument. By driving the other end of the support plate, the support plate moves towards the side wall of the support assembly, switching the support plate from an unfolded state to a folded state. This reduces the bearing area of ​​the support base and improves the portability of the support base during transportation. Attached Figure Description

[0009] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0010] Figure 1 This is a schematic diagram of the overall structure of a remote sensing monitoring device provided in an embodiment of this application; Figure 2 This is one of the partial structural schematic diagrams of a remote sensing monitoring device provided in an embodiment of this application; Figure 3 An exploded view of the folding assembly provided in the embodiments of this application; Figure 4 This is a structural schematic diagram of the folded state of the folding component provided in the embodiments of this application; Figure 5 A cross-sectional view of the support block and support column provided in an embodiment of this application; Figure 6 This is a second partial structural schematic diagram of a remote sensing monitoring device provided in an embodiment of this application.

[0011] Icons: 100 - Remote sensing monitoring device; 110 - Support base; 120 - Support assembly; 121 - Support component; 1211 - Support block; 1212 - Support column; 1213 - Rotating block; 122 - Base; 1221 - Base plate; 1222 - Fixing platform; 1222a - Chamber; 1222b - Opening; 1222c - Through hole; 1223 - Handle; 1224 - Insert rod; 123 - Limiting block; 124 - Fastener; 125 - Fixing ring; 126 - Reinforcing block; 12 7-Locking component; 130-Folding assembly; 131-Support plate; 1311-Protrusion; 1312-Receiving groove; 132-Fixing component; 1321-First receiving hole; 1322-Second receiving hole; 133-Card block; 1331-First shaft; 1332-Second shaft; 134-Elastic component; 140-Limiting cable; 150-Pull cable pin; 160-Remote sensing instrument; 161-Main unit; 162-Speaker; 163-Sensor; 164-Top plate; 165-Electromagnetic plate. Detailed Implementation

[0012] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. The components of the embodiments of this application described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.

[0013] Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of the application. It should be noted that, unless otherwise specified, the various features in the embodiments of this application can be combined with each other, and the combined embodiments are still within the protection scope of this application.

[0014] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0015] In the description of this application, it should be noted that the terms "upper," "lower," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product is in use. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. In addition, the terms "first," "second," and "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0016] Furthermore, terms such as "horizontal" and "vertical" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," not that the structure must be completely horizontal, but can be slightly tilted.

[0017] In the description of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "set up," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0018] One aspect of the embodiments of this application, such as Figures 1 to 4 As shown, a remote sensing monitoring device 100 is provided, including a support base 110 and a remote sensing instrument 160. The support base 110 includes a support assembly 120 and a folding assembly 130. The top of the support assembly 120 is supported on the bottom of the remote sensing instrument 160, and the folding assembly 130 is disposed on the side of the support assembly 120. The folding assembly 130 includes a support plate 131 and a fixing member 132. The fixing member 132 is fixed to the side wall of the support assembly 120, and one end of the support plate 131 is movably connected to the fixing member 132. When the support plate 131 is in the unfolded state, the plate surface of the support plate 131 cooperates with the top of the support assembly 120 to support the bottom of the remote sensing instrument 160. The other end of the support plate 131 is driven to move toward the side wall surface close to the support assembly 120, so that the support plate 131 switches from the unfolded state to the folded state.

[0019] Specifically, such as Figure 1 As shown, the remote sensing monitoring device 100 includes a support base 110 and a remote sensing instrument 160. The support base 110 supports the remote sensing instrument 160 for remote sensing monitoring operations. In the prior art, because the support base 110 needs to provide a large bearing surface to support the remote sensing instrument 160, the support base 110 is large in size, making it inconvenient to carry and transport. Therefore, in this application, the support base 110 includes a support component 120 and a folding component 130, that is, the support component 120 and the folding component 130 together support the remote sensing instrument 160. Specifically, as... Figure 2As shown, the folding assembly 130 is disposed beside the support assembly 120, and the top of the support assembly 120 is used to support the bottom of the remote sensing instrument 160. The folding assembly 130 includes a support plate 131 and a fixing member 132. The fixing member 132 is fixedly disposed on the side wall of the support assembly 120, and one end of the support plate 131 is movably connected to the fixing member 132. By moving the support plate 131 relative to the fixing member 132, the support plate 131 can have two states: an unfolded state and a folded state. Figure 2 The support plate 131 is shown in its unfolded state; as shown Figure 4 The support plate 131 is shown in a folded state.

[0020] When the remote sensing instrument 160 needs to perform remote sensing monitoring operations, it is fixedly mounted on the top of the support assembly 120. Simultaneously, the surface of the support plate 131, in conjunction with the top of the support assembly 120, supports the bottom of the remote sensing instrument 160. At this time, the support plate 131 is in an unfolded state. Thus, in addition to the support assembly 120 supporting a small area of ​​the bottom of the remote sensing instrument 160, the surface of the unfolded support plate 131 supports other areas of the bottom of the remote sensing instrument 160 (such as the remaining area), ensuring sufficient support for the remote sensing instrument 160 during remote sensing monitoring operations. When the remote sensing instrument 160 completes its remote sensing monitoring operation, the other end of the support plate 131 is driven to move towards the side wall of the support assembly 120, causing the support plate 131 to switch from an unfolded state to a folded state. This allows the support base 110 to change its structural shape by folding when no load is required, causing the support plate 131 to retract relative to the support assembly 120, preventing the support base 110 from becoming excessively large in certain directions. The bearing surface of the support base 110 is formed by the bearing surface of the support component 120 and the bearing surface of the support plate 131. When the support plate 131 is switched from the unfolded state to the folded state, it is equivalent to the bearing surface of the support plate 131 being switched from the supported state to the non-supported state, which reduces the support area of ​​the support surface of the support base 110 and improves the portability of the support base 110 during transportation.

[0021] In some embodiments, the support plate 131 and the fixing member 132 can be movably connected by a hinge, a pivot, or a rotating shaft; the specific connection is not limited. When a hinge or rotating shaft connection is used, the support plate 131 can be positioned by a pin or bolt when it is in the unfolded state. When a hinge connection is used, the support plate 131 and the fixing member 132 can use a hinge with a locking function, so that the support plate 131 is locked when it is in the unfolded state.

[0022] In some embodiments, the number of folding components 130 can be one, two, three, or four. The specific number can be determined based on the area of ​​the bearing surface of the remote sensing instrument 160, and is not limited thereto. For example, Figure 2 As shown, two folding components 130 are respectively disposed on opposite side walls of the support component 120.

[0023] In some embodiments, the remote sensing instrument 160 and the support assembly 120 can be fixedly connected by a snap-fit ​​connection, a rope connection, or a key connection, and the specific method is not limited.

[0024] Optionally, such as Figure 3 and Figure 4 As shown, one end of the support plate 131 is rotatably connected to the fixing member 132; the folding assembly 130 also includes a locking block 133 having a first shaft 1331, the fixing member 132 is provided with a first receiving hole 1321 that is movably engaged with the first shaft 1331, the locking block 133 and the fixing member 132 are connected by an elastic member 134, and the support plate 131 is provided with a protrusion 1311 and a receiving groove 1312; the first shaft 1331 passes through the first receiving hole 1321 and is engaged with the receiving groove 1312 so that the support plate 131 is kept in the unfolded state; the locking block 133 is driven to move the first shaft 1331 relative to the first receiving hole 1321 to disengage from the receiving groove 1312, and the other end of the support plate 131 is driven to switch to the folded state so that the support plate 131 is kept in the folded state by the protrusion 1311 abutting against the first shaft 1331.

[0025] Specifically, the folding assembly 130 also includes a locking block 133, on which a first shaft 1331 is provided. A first receiving hole 1321 is provided on the fixing member 132, and the first shaft 1331 is movably engaged with the first receiving hole 1321. The side of the fixing member 132 near the locking block 133 is connected to the locking block 133 via an elastic member 134, for example, a tension spring. One end of the support plate 131 is rotatably connected to the fixing member 132, and a protrusion 1311 and a receiving groove 1312 are provided at the end of the support plate 131 rotatably connected to the fixing member 132. The first shaft 1331 passes through the first receiving hole 1321 and engages with the receiving groove 1312. Through the action of the elastic member 134, the support plate 131 is kept in the unfolded state. The first shaft 1331 passes through the first receiving hole 1321 and abuts against the protrusion 1311, so that the support plate 131 is kept in the folded state.

[0026] When the remote sensing instrument 160 needs to perform remote sensing monitoring operations, the remote sensing instrument 160 is fixedly mounted on the top of the support assembly 120. At this time, the first shaft 1331 is engaged with the receiving groove 1312 to prevent the support plate 131 from rotating toward the fixing member 132, so that the support plate 131 is kept in the unfolded state. The plate surface of the support plate 131, together with the top of the support assembly 120, supports the bottom of the remote sensing instrument 160. When the remote sensing instrument 160 completes the remote sensing monitoring operation, by driving the locking block 133, for example by pulling the locking block 133 downward, the first shaft 1331 moves relative to the first receiving hole 1321, that is, moves towards the bottom of the hole. The first shaft 1331 is disengaged from the receiving groove 1312, and the support plate 131 moves towards the fixing member 132. At the same time, the first shaft 1331 moves along the side wall of the protrusion 1311 to the top of the protrusion 1311. Under the tension of the elastic member 134, the locking block 133 and the support plate 131 abut against the protrusion 1311 through the first shaft 1331, so that the support plate 131 switches from the unfolded state to the folded state.

[0027] When the support plate 131 needs to be switched from a folded state to an unfolded state, by driving the support plate 131 away from the other end rotatably connected to the fixing member 132, the first shaft 1331 moves along the side wall of the protrusion 1311 and into the receiving groove 1312 under the action of the elastic member 134. At this time, the first shaft 1331 engages with the receiving groove 1312, keeping the support plate 131 in the unfolded state. The setting of the first receiving hole 1321 facilitates the movement of the first shaft 1331 along the extension direction of the receiving hole. At the same time, it allows the first shaft 1331 to move along the side wall of the protrusion 1311 to the top of the protrusion 1311 or along the top of the protrusion 1311 into the receiving groove 1312, which is beneficial to the stability of the support plate 131 when switching from the unfolded state to the folded state or from the folded state to the unfolded state.

[0028] In some embodiments, the support plate 131 and the fixing member 132 are rotatably connected by a hinge or a rotating shaft; the specific connection is not limited. Figure 4 As shown, the support plate 131 and the fixing member 132 are connected by a rotating shaft.

[0029] Optionally, such as Figure 3 and Figure 4 As shown, the locking block 133 also includes a second shaft 1332. The fixing member 132 is provided with a second receiving hole 1322 that is movably engaged with the second shaft 1332. The extension direction of the second receiving hole 1322 is set at an angle to the extension direction of the first receiving hole 1321. When the support plate 131 is engaged with the first shaft 1331, the locking block 133 is driven to move the second shaft 1332 relative to the second receiving hole 1322, so that the first shaft 1331 is disengaged from the receiving groove 1312 and the engagement is released. Specifically, the locking block 133 is also provided with a second shaft 1332, and the fixing member 132 is provided with a second receiving hole 1322. The second shaft 1332 and the second receiving hole 1322 are movably engaged. The second receiving hole 1322 is set at an angle to the extending direction of the first receiving hole 1321, such as... Figure 3 As shown, the first receiving hole 1321 extends vertically, while the second receiving hole 1322 extends at an angle to the vertical direction. When the support member 121 is in the unfolded state, the first shaft 1331 engages with the receiving groove 1312. Driven by the locking block 133, the second shaft 1332 moves along the extension direction of the second receiving hole 1322, while the first shaft 1331 moves along the extension direction of the first receiving hole 1321, thus disengaging the first shaft 1331 from the receiving groove 1312. The arrangement of the second shaft 1332 and the second receiving hole 1322 ensures the driving direction of the locking block 133. For example, by pressing the locking block 133, the second shaft 1332 moves along the extension direction of the second receiving groove 1312, and the first shaft 1331 disengages from the receiving groove 1312.

[0030] Optionally, such as Figure 1 As shown, the support assembly 120 includes a support member 121 and a base 122. The top of the support member 121 is supported on the bottom of the remote sensing instrument 160. The bottom of the support member 121 is rotatably connected to the base 122. When the support member 121 is in the first position, it is locked with the base 122. After the support member 121 is unlocked from the base 122, the support member 121 can be driven to rotate and switch between the first position and the second position.

[0031] Specifically, the support assembly 120 includes a support member 121 and a base 122. The support member 121 is disposed on the upper surface of the base 122 and rotatably connected to the base 122. The other end of the support member 121, away from the base 122, is used to support the bottom of the remote sensing instrument 160. When the remote sensing instrument 160 is performing remote sensing monitoring operations, the remote sensing instrument 160 is positioned on top of the support member 121. At this time, the support member 121 is in a first position and locked to the base 122. It should be noted that the first position is the direction in which the support member 121 extends vertically. When the remote sensing instrument 160 completes the remote sensing monitoring operation and needs to be removed from the top of the support member 121, the lock between the support member 121 and the base 122 is released, and the support member 121 is driven to rotate from the first position to a second position. The second position is the direction in which the support member 121 extends horizontally, facilitating the assembly and disassembly of the remote sensing instrument 160.

[0032] Optionally, such as Figure 1 and Figure 2As shown, the support member 121 includes a support block 1211, a support column 1212 and a rotating block 1213 in sequence along the extension direction from the remote sensing instrument 160 to the support base 110. The fixing member 132 is fixed to the side wall of the support block 1211. The top of the support block 1211 is supported on the bottom of the remote sensing instrument 160. The upper end of the support block 1211 is detachably connected to the support column 1212, and the lower end of the support column 1212 is detachably connected to the rotating block 1213.

[0033] Specifically, the support component 121 includes a support block 1211, a support column 1212, and a rotating block 1213, which are arranged sequentially along the extension direction from the remote sensing instrument 160 to the support base 110. A fixing member 132 is fixedly disposed on the side wall of the support block 1211 to allow the support plate 131 to rotate relative to the fixing member 132 and switch between an unfolded state and a folded state, or vice versa. The top of the support block 1211 supports the bottom of the remote sensing instrument 160, the bottom of the support block 1211 is detachably connected to the upper end of the support column 1212, and the lower end of the support column 1212 is detachably connected to the rotating block 1213. The detachable connection of the support block 1211, support column 1212, and rotating block 1213 facilitates the carrying and transportation of the support component 121.

[0034] In some implementations, the detachable connection can be a direct threaded connection or a bolted connection, and there is no limitation on this. Optionally, such as Figure 1 , Figure 5 and Figure 6 As shown, the support member 121 includes a plurality of support columns 1212, which are detachably connected. A limiting block 123 is fixedly provided at each support column 1212 and at the connection between the support column 1212 and the support block 1211. Fasteners 124 are fixed to each support column 1212 and the support column 1212 and the support block 1211 respectively via the limiting blocks 123. Specifically, the support component 121 includes several support columns 1212. It should be noted that "several support columns 1212" refers to two or more support columns 1212; the specific number can be set according to the specific remote sensing monitoring height of the remote sensing instrument 160, and is not limited here. The several support columns 1212 are detachably connected, for example, by threaded connections. A limiting block 123 is fixedly installed on the outer wall of each support column 1212 connection point, and fasteners 124 fix two adjacent support columns 1212 via the limiting blocks 123. A limiting block 123 is also fixedly installed at the connection point between the support column 1212 and the support block 1211, and fasteners 124 fix the support column 1212 and the support block 1211 via the limiting blocks 123. Reinforcing plates are also provided at the connections of the limiting blocks 123 with the support columns 1212 and the support blocks 1211, respectively, to reinforce the connections between the limiting blocks 123 and the support columns 1212 and the support blocks 1211. In addition to the threaded connections between the support columns 1212 and between the support columns 1212 and the support blocks 1211, fasteners 124 are also provided to further improve the stability of the connection.

[0035] In some implementations, the fastener 124 may be a stud, quick-release pin, or snap fastener, and the specific type is not limited.

[0036] Optionally, such as Figure 1 , Figure 5 and Figure 6 As shown, the remote sensing monitoring device 100 includes a limiting cable 140 and a cable nail 150. The outer walls of several support columns 1212 are respectively fixed with fixing rings 125. One end of the limiting cable 140 is connected to the fixing ring 125 and the other end is connected to the cable nail 150. The support block 1211 and several support columns 1212 are provided with reinforcing blocks 126 inside. Specifically, the remote sensing monitoring device 100 also includes a limiting cable 140 and a tie rod 150, and fixing rings 125 are fixedly installed on the outer walls of several support columns 1212. It should be noted that two or more fixing rings 125 can be installed on each support column 1212, and the fixing rings 125 on each support column 1212 can be positioned at the same height or different heights around the outer wall of the support column 1212. One end of the limiting cable 140 is connected to the fixing ring 125, and the other end is connected to the tie rod 150. The support block 1211 and the several support columns 1212 have a hollow internal structure, and the bending stiffness and strength of the support block 1211 and the several support columns 1212 can be improved by installing reinforcing blocks 126 inside.

[0037] When the remote sensing instrument 160 needs to perform remote sensing monitoring operations, the remote sensing instrument 160 is fixedly mounted on the top of the support block 1211, and the drive support 121 is in the first position and locked with the base 122. At this time, one end of the limiting cable 140 is connected to the fixing ring 125 and the other end is connected to the cable pin 150. By inserting the end of the cable pin 150 away from the limiting cable 140 into the ground, the stability of the support 121 during the remote sensing monitoring operation of the remote sensing instrument 160 is improved, and the support 121 is prevented from affecting the monitoring accuracy of the remote sensing instrument 160 due to wind.

[0038] In some implementations, the reinforcing block 126 can be a straight reinforcing block 126, a cross reinforcing block 126, or a star-shaped reinforcing block 126, and the specific type is not limited.

[0039] Optionally, such as Figure 1 and Figure 6 As shown, the base 122 includes a base plate 1221 and a fixing stage 1222 fixedly disposed on the upper surface of the base plate 1221. The fixing stage 1222 includes a cavity 1222a and an opening 1222b communicating with the cavity 1222a. The rotating block 1213 is located in the cavity 1222a and is rotatably connected to the fixing stage 1222. A through hole 1222c communicating with the cavity 1222a is provided on a side wall away from the opening 1222b. The locking member 127 is fixedly connected to the rotating block 1213 and the fixing stage 1222 through the through hole 1222c. Specifically, the base 122 includes a base plate 1221 and a fixing platform 1222, with the fixing platform 1222 fixedly disposed on the upper surface of the base plate 1221. The fixing platform 1222 includes a chamber 1222a and an opening 1222b communicating with the chamber 1222a. A rotating block 1213 is disposed within the chamber 1222a, and a rotating shaft is disposed within the chamber 1222a. A through hole is disposed on the rotating block 1213, and the rotating shaft rotatably engages with the through hole to achieve a rotatable connection between the support member 121 and the base 122. A through hole 1222c communicating with the chamber 1222a is disposed on the side wall of the fixing platform 1222 away from the opening 1222b. A locking member 127 is fixedly connected to the rotating block 1213 and the fixing platform through the through hole 1222c, and the locking member 127 locks the support member 121 to the base 122 when it is in the first position.

[0040] When the remote sensing instrument 160 needs to perform remote sensing monitoring operations, it is fixedly mounted on the top of the support member 121. The support member 121 is driven to rotate from the second position to the first position through the opening 1222b and the rotational cooperation of the through hole and the rotating shaft. At this time, the rotating block 1213 is locked by the locking member 127 through the through hole 1222c. That is to say, the support member 121 is kept in the first position. Then, the support member 121 is reinforced by the cable nail 150, thereby ensuring the stability of the support assembly 120 and further ensuring the accuracy of the monitoring by the remote sensing instrument 160.

[0041] In some implementations, the locking element 127 may be a screw, bolt, or quick-release pin, and there is no specific limitation.

[0042] Optionally, such as Figure 6 As shown, a handle 1223 and a rod 1224 are fixedly provided on the upper and lower surfaces of the substrate 1221, respectively. The handle 1223 is located on the side of the fixed platform 1222 and is used to fix or release the fixed base 122 via the rod 1224. Specifically, handles 1223 are fixedly mounted on the fixed platform 1222 on both sides opposite to the opening 1222b to prevent interference from the handles 1223 when the support member 121 is switched from the first position to the second position. When it is necessary to fix the base 122 to the ground, the driving force of driving the handle 1223 toward the ground causes the insertion rod 1224 to be inserted into the ground to fix the base 122; the driving force of driving the handle 1223 away from the ground causes the insertion rod 1224 to be pulled out of the ground to release the fixation of the base 122.

[0043] In some implementations, the number of insertion rods 1224 may be three or more, and the specific number is not limited.

[0044] Optionally, such as Figure 2 As shown, the remote sensing instrument 160 includes a main unit 161, a speaker 162, and a sensor 163. The main unit 161 is fixedly mounted on the support base 110. The speaker 162 is fixedly mounted on two opposite side walls of the main unit 161. The sensor 163 is fixedly mounted on another opposite side wall of the main unit 161. A top plate 164 is provided on the top of the main unit 161. An electromagnetic plate 165 is provided on the upper surface of the top plate 164. The electromagnetic plate 165, the speaker 162, and the sensor 163 are electrically connected to the main unit 161.

[0045] Specifically, the remote sensing instrument 160 includes a main unit 161, a speaker 162, and a sensor 163. A top plate 164 is installed on the top of the main unit 161, which protects the main unit 161 from damage caused by falling objects and extreme weather, ensuring its safe operation. An electromagnetic plate 165 is installed on the upper surface of the top plate 164. The electromagnetic plate 165, speaker 162, and sensor 163 are electrically connected to the main unit 161. A power supply is installed inside the main unit 161 to power itself, the electromagnetic plate 165, speaker 162, and sensor 163. The electromagnetic plate 165 can sense whether any living organisms are on the top of the main unit 161 and transmit this information to the main unit 161. The main unit 161 then drives the speaker 162 to emit a sound to repel any organisms, preventing them from interfering with the remote sensing instrument 160 and ensuring its stable operation. The sensor 163 can sense information about the external environment and store this information within the main unit 161.

[0046] In some implementations, sensor 163 can be an optical sensor 163, a thermal infrared sensor 163, or a radar, and the specific choice depends on the type of operation; no limitation is made here. When sensor 163 is an optical sensor 163, it can acquire image information in different bands; when sensor 163 is a thermal infrared sensor 163, it can detect the thermal infrared radiation of objects on the ground; when sensor 163 is a radar, it can be used for topographic mapping, marine monitoring, and disaster monitoring.

[0047] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A remote sensing monitoring device, characterized in that, Includes support base and remote sensing instruments; The support base includes a support assembly and a folding assembly. The top of the support assembly is supported on the bottom of the remote sensing instrument, and the folding assembly is disposed on the side of the support assembly. The folding assembly includes a support plate and a fastener, the fastener being fixed to the side wall of the support assembly, and one end of the support plate being movably connected to the fastener; When the support plate is in the unfolded state, the surface of the support plate, in conjunction with the top of the support assembly, supports the bottom of the remote sensing instrument; the other end of the support plate is driven to move toward the side wall of the support assembly, so that the support plate switches from the unfolded state to the folded state.

2. The remote sensing monitoring device as described in claim 1, characterized in that, One end of the support plate is rotatably connected to the fixing member; The folding assembly further includes a locking block with a first axis. The fixing member is provided with a first receiving hole that movably engages with the first axis. The locking block is connected to the fixing member via an elastic member. The support plate is provided with a protrusion and a receiving groove. The first axis passes through the first receiving hole and engages with the receiving groove to keep the support plate in the unfolded state. The locking block is driven to move the first axis relative to the first receiving hole to disengage from the receiving groove. The other end of the support plate is driven to switch to the folded state so that the support plate is kept in the folded state by the protrusion abutting against the first axis.

3. The remote sensing monitoring device as described in claim 2, characterized in that, The locking block also includes a second shaft. The fixing member is provided with a second receiving hole that is movably engaged with the second shaft. The extension direction of the second receiving hole is set at an angle to the extension direction of the first receiving hole. When the support plate is engaged with the first shaft, the locking block is driven to move the second shaft relative to the second receiving hole, so that the first shaft is disengaged from the receiving groove and the locking is released.

4. The remote sensing monitoring device according to any one of claims 1 to 3, characterized in that, The support assembly includes a support member and a base. The top of the support member is supported on the bottom of the remote sensing instrument. The bottom of the support member is rotatably connected to the base. When the support member is in a first position, it is locked to the base. After the support member is unlocked from the base, it can be driven to rotate between the first position and the second position.

5. The remote sensing monitoring device as described in claim 4, characterized in that, The support component includes a support block, a support column, and a rotating block in sequence along the extension direction from the remote sensing instrument to the support base. The fixing component is fixed to the side wall of the support block. The top of the support block is supported on the bottom of the remote sensing instrument. The support block is detachably connected to the upper end of the support column, and the lower end of the support column is detachably connected to the rotating block.

6. The remote sensing monitoring device as described in claim 5, characterized in that, The support member includes a plurality of support columns, which are detachably connected. A limiting block is fixedly provided at each support column and at the connection between the support column and the support block. Fasteners are fixed to each support column and the connection between the support column and the support block via the limiting blocks.

7. The remote sensing monitoring device as described in claim 6, characterized in that, The remote sensing monitoring device includes a limiting cable and a pull cable nail. The outer walls of several of the support columns are respectively fixed with fixing rings. One end of the limiting cable is connected to the fixing ring and the other end is connected to the pull cable nail. The support block and the interior of the several support columns are provided with reinforcing blocks.

8. The remote sensing monitoring device as described in claim 5, characterized in that, The base includes a base plate and a fixed platform fixedly disposed on the upper surface of the base plate. The fixed platform includes a cavity and an opening communicating with the cavity. The rotating block is located in the cavity and is rotatably connected to the fixed platform. A through hole communicating with the cavity is provided on a side wall away from the opening. A locking member is fixedly connected to the rotating block and the fixed platform through the through hole.

9. The remote sensing monitoring device as described in claim 8, characterized in that, A handle and a rod are fixedly provided on the upper and lower surfaces of the substrate, respectively. The handle is located on the side of the fixing platform and is used to fix or release the base via the rod.

10. The remote sensing monitoring device according to any one of claims 1 to 3, characterized in that, The remote sensing instrument includes a main unit, a speaker, and a sensor. The main unit is fixedly mounted on the support base. The speaker is fixedly mounted on two opposite side walls of the main unit. The sensor is fixedly mounted on another opposite side wall of the main unit. A top plate is provided on the top of the main unit. An electromagnetic plate is provided on the upper surface of the top plate. The electromagnetic plate, the speaker, and the sensor are electrically connected to the main unit.