Unmanned aerial vehicle landing site management console
By designing a drone take-off and landing site control console that integrates meteorological monitoring, photography, and wireless network connection components, the problems of low integration and low installation efficiency in existing technologies have been solved, achieving high integration and efficient installation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HANGZHOU DUOYI INNOVATION TECHNOLOGY CO LTD
- Filing Date
- 2025-04-14
- Publication Date
- 2026-05-29
Smart Images

Figure CN224304252U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of control console technology, and in particular to a control console for a drone take-off and landing site. Background Technology
[0002] The drone take-off and landing site management platform is a comprehensive management system designed to achieve efficient management and safe monitoring of drone take-off and landing sites through automation technology. Its main functions include real-time monitoring, remote control, and data analysis, significantly improving the operational efficiency and safety of drone take-off and landing sites.
[0003] A drone takeoff and landing site management platform consists of various modules (e.g., monitoring modules, control modules) to perform different functions and ensure the normal takeoff and landing of drones. However, existing drone takeoff and landing site management platforms often have modules that are scattered and have low integration. Furthermore, most modules require fixed installation. If a drone takeoff and landing management platform needs to be temporarily installed in large conference venues, security sites, or law enforcement sites, fixing all the necessary equipment would waste a significant amount of time and result in low installation efficiency.
[0004] In the process of realizing this utility model, the inventors discovered that the prior art has at least the following problems:
[0005] Existing drone take-off and landing control platforms have low integration levels and low installation efficiency. Utility Model Content
[0006] The purpose of this utility model is to provide a drone take-off and landing control station to solve the technical problems of low integration and low installation efficiency in existing drone take-off and landing control platforms. The various technical effects of the preferred technical solutions provided by this utility model are detailed below.
[0007] To achieve the above objectives, the present invention provides the following technical solution:
[0008] This utility model provides a drone take-off and landing site control console, which includes: a base, a support component, a multi-functional integrated component, and a control box;
[0009] The support assembly is erected on the base and is fixedly connected to the base;
[0010] The multifunctional integrated component is detachably connected to the support component and is used to collect data within the take-off and landing area where the control station is located.
[0011] The control box is located above the base and is fixedly connected to the base; the control box is electrically connected to the multi-functional integrated component and is used to supply power to the multi-functional integrated component.
[0012] The multi-functional integrated component includes a meteorological monitoring component, a camera component, a wireless network connection component, and a radio signal receiving component; the wireless network connection component is used to provide network access to the take-off and landing area where the control station is located; the meteorological monitoring component, the camera component, and the radio signal receiving component are respectively used to collect meteorological data, monitoring data, and radio signal data within the take-off and landing area where the control station is located.
[0013] As an optional implementation, the support assembly includes a support pole and multiple brackets; the support pole is fixedly connected to the base; the multiple brackets are located on top of the support pole and are detachably connected to the support pole, and the multiple brackets are used to support the meteorological monitoring component, the imaging component, the wireless network connection component, and the radio signal receiving component.
[0014] As an optional implementation, the support pole includes a mounting rod and a connecting rod; one end of the mounting rod is fixedly connected to the base, and the other end of the mounting rod is movably connected to the connecting rod via a pivot, wherein the connecting rod can rotate and / or fold on the mounting rod under the action of the pivot.
[0015] As an optional implementation, the connecting rod includes a standard section and a fixed section, the standard section being height-extendable, and the fixed section being used to support the plurality of brackets.
[0016] As an optional implementation, the bracket includes a device mounting plate and multiple arm supports; the device mounting plate is used to support the wireless network connection component; the multiple arm supports are used to support the meteorological monitoring component, the imaging component, and the radio signal receiving component.
[0017] As an optional implementation, the control box further includes a main control box and an expansion box; the main control box is electrically connected to the meteorological monitoring component, the imaging component, the wireless network connection component, and the radio signal receiving component respectively; the expansion box is electrically connected to the main control box and is used to expand the functions of the main control box.
[0018] As an optional implementation, the main control box includes a cooling fan and a network interface. The cooling fan is used to dissipate the heat generated by the main control box during operation, and the network interface is used to connect to an external network or transmit information from the main control box to an external device.
[0019] As an optional implementation, the control console further includes a loudspeaker component, which is detachably connected to the support component and electrically connected to the control box.
[0020] As an optional implementation, the control console further includes a lightning protection component, which is located at the top of the support component and is detachably connected to the support component.
[0021] As an optional implementation, the meteorological monitoring component includes a wind speed sensor, a wind direction sensor, a rainfall sensor, a temperature sensor, a humidity sensor, and a barometric pressure sensor.
[0022] Implementing one of the above-described technical solutions of this utility model has the following advantages or beneficial effects:
[0023] The UAV take-off and landing site control console described in this utility model includes a base, a support component, a multi-functional integrated component, and a control box. The support component, the multi-functional integrated component, and the control box are all mounted on the base and can perform their respective functions on the base. The multi-functional integrated component includes a meteorological monitoring component, a shooting component, a wireless network connection component, and a radio signal receiving component. These components are all supported by the support component, and all are centrally located on the support component. The high degree of integration reduces the number of devices on site, as well as the number of connecting cables and supporting facilities between devices, saving site space and construction costs. Furthermore, when installing the control console in locations requiring temporary installation of UAV take-off and landing site control consoles, such as large conference venues, security sites, or law enforcement sites, it can save installation time, improve installation efficiency, and reduce labor costs. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. In the drawings:
[0025] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0026] Figure 2 This is a schematic diagram showing the overall structure of an embodiment of this utility model.
[0027] Figure 3 This is a schematic diagram of the connecting rod and the mounting rod after folding in an embodiment of this utility model.
[0028] In the diagram: 1. Base; 2. Support assembly; 21. Support pole; 211. Mounting rod; 212. Rotating shaft; 213. Connecting rod; 214. Standard section; 215. Fixed section; 22. Equipment mounting plate; 23. Arm bracket; 3. Meteorological monitoring assembly; 4. Imaging assembly; 5. Wireless network connection assembly; 51. Router; 6. Radio signal receiving assembly; 61. Remote identification signal receiving device; 62. ADS-B signal receiving device; 7. Control box; 71. Main control box; 711. Cooling fan; 712. Network interface; 713. Socket; 72. Expansion box; 8. Public address assembly; 9. Lightning protection assembly. Detailed Implementation
[0029] To make the objectives, technical solutions, and advantages of this utility model clearer, various exemplary embodiments described below will be referenced to the accompanying drawings, which form part of the exemplary embodiments, illustrating various exemplary embodiments that may be adopted to implement this utility model. Unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this disclosure. It should be understood that they are merely examples of processes, methods, and apparatuses consistent with some aspects of this utility model disclosed as detailed in the appended claims, and other embodiments may be used, or structural and functional modifications may be made to the embodiments listed herein without departing from the scope and spirit of this utility model.
[0030] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "lateral," etc., indicate the orientation or positional relationship based on the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the referred element must have a specific orientation, or be constructed and operated in a specific orientation. The terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. The term "multiple" means two or more. The terms "connected" and "linked" should be interpreted broadly, for example, they can be fixed connections, detachable connections, integral connections, mechanical connections, electrical connections, communication connections, direct connections, indirect connections through an intermediate medium, and can be the internal connection of two elements or the interaction relationship between two elements. The term "and / or" includes any and all combinations of one or more of the related listed items. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0031] To illustrate the technical solution described in this utility model, specific embodiments are described below, showing only the parts related to the embodiments of this utility model.
[0032] Example:
[0033] like Figure 1 As shown, this utility model provides a UAV take-off and landing field control station, including: a base 1, a support component 2, a multi-functional integrated component, and a control box 7; the support component 2 is erected on the base 1 and fixedly connected to the base 1; the multi-functional integrated component is detachably connected to the support component 2 and is used to collect data within the take-off and landing area where the control station is located; the control box 7 is located above the base 1 and fixedly connected to the base 1; the control box 7 is electrically connected to the multi-functional integrated component and is used to provide power and network to the multi-functional integrated component; wherein, the multi-functional integrated component includes a meteorological monitoring component 3, a shooting component 4, a wireless network connection component 5, and a radio signal receiving component 6; the wireless network connection component 5 is used to provide network for the take-off and landing area where the control station is located; the meteorological monitoring component 3, the shooting component 4, and the radio signal receiving component 6 are respectively used to collect meteorological data, monitoring data, and radio signal data within the take-off and landing area where the control station is located.
[0034] In this embodiment, the UAV take-off and landing site control console includes a base 1, a support component 2, a multi-functional integrated component, and a control box 7. The support component 2, the multi-functional integrated component, and the control box 7 are all mounted on the base 1 and can perform their respective functions on the base 1. The multi-functional integrated component includes a meteorological monitoring component 3, a camera component 4, a wireless network connection component 5, and a radio signal receiving component 6. All of these components are supported by the support component 2. The multi-functional integrated component is centrally located on the support component 2, and all components perform their respective functions on the same support component 2, resulting in a high degree of integration. This reduces the number of devices on the site, as well as the number of connecting cables and supporting facilities between devices, saving site space and construction costs. Furthermore, when installing the control console in locations requiring temporary installation of UAV take-off and landing site control consoles, such as large conference venues, security sites, or law enforcement sites, it can save installation time, improve installation efficiency, and reduce labor costs.
[0035] Specifically, the multifunctional integrated component in this embodiment includes a meteorological monitoring component 3, a camera component 4, a wireless network connection component 5, and a radio signal receiving component 6. The meteorological monitoring component 3 is used to monitor the weather in the takeoff and landing area where the control station is located and to collect meteorological data.
[0036] Furthermore, the meteorological monitoring component 3 may include a wind speed sensor, a wind direction sensor, a rainfall sensor, a temperature sensor, a humidity sensor, and a barometric pressure sensor. These sensors are used to acquire wind speed data, wind direction data, rainfall data, temperature data, humidity data, and barometric pressure data for the take-off and landing area where the control station is located, respectively. It should be noted that, in addition to the aforementioned sensors, the meteorological monitoring component may also be equipped with other sensors related to meteorological monitoring, such as radiation sensors and visibility meters.
[0037] The imaging component 4 is used to provide comprehensive monitoring of the take-off and landing area where the control station is located, reducing the risks of drone operations. Specifically, the imaging component 4 can be configured as a dual-light camera (visible light camera and infrared camera) and an event camera, which can be set to focus on the air and / or the ground, enabling comprehensive monitoring of the airspace traffic situation in the take-off and landing area where the control station is located, thus reducing the risks of drone operations. The dual-light camera can be a standard high-definition camera, a high-angle camera, or a wide-angle camera.
[0038] Furthermore, multiple different types of dual-light cameras can be flexibly installed according to different site layouts and actual monitoring needs to enhance the high-definition image acquisition capability of the shooting component 4 and achieve wide-angle coverage, so as to ensure real-time capture of the dynamics of personnel and equipment in the take-off and landing area as well as the trajectory of aircraft in the airspace, thus safeguarding drone operations and improving the safety of drone operations.
[0039] The wireless network connection component 5 provides network coverage to the take-off and landing area where the control station is located. In this embodiment, the wireless network connection component 5 may include an outdoor WiFi component (e.g., a wireless 4G / 5G router 51, a wireless bridge, and an outdoor AP). The 4G / 5G router 51 provides network coverage for the devices, meeting signal coverage within a 170-meter diameter range and supporting wired direct connection to ensure stable network access. In normal scenarios, the outdoor WiFi component can provide convenient network access for nearby drone ground stations and image transmission equipment, meeting data transmission needs. In situations requiring high network stability, such as large-scale security events, it can switch to wired direct connection mode to ensure uninterrupted data transmission. The wireless bridge is used to communicate with another wireless bridge connected to a broadband network to transmit network, video, and digital data signals.
[0040] The radio signal receiving component 6 is used to acquire radio signal data from the takeoff and landing area where the control station is located, in order to obtain flight data of UAVs and manned aircraft within that area. The radio signal receiving component 6 includes a remote identification signal receiving device 61 and an ADS-B signal receiving device 62. The remote identification signal receiving device and the ADS-B signal receiving device 62 are used to acquire flight data of UAVs and manned aircraft, respectively, to track their dynamics in real time. The flight data includes, but is not limited to, latitude, longitude, altitude, heading, and speed.
[0041] Below, we will combine Figure 1-3 The drone take-off and landing site control console in this embodiment is described in detail.
[0042] As an optional implementation method, such as Figure 1 As shown, the base 1 serves as a support base, directly contacting the ground and supporting the support assembly 2, the multi-functional integrated assembly, and the control box 7. In this embodiment, the base 1 can be made of stainless steel, specifically 304 stainless steel. A base 1 made of 304 stainless steel has a robust structure and is waterproof and rustproof, providing a stable foundation for the entire control console and ensuring its stability during installation.
[0043] As an optional implementation method, such as Figure 2-3 As shown, the support assembly 2 includes a support pole 21 and multiple brackets; the support pole 21 is fixedly connected to the base 1; the multiple brackets are located on the top of the support pole 21 and are detachably connected to the support pole 21, and the multiple brackets are used to support the meteorological monitoring assembly 3, the shooting assembly 4, the wireless network connection assembly 5 and the radio signal receiving assembly 6.
[0044] Specifically, the support pole 21 is fixedly connected to the base 1, and multiple brackets are located on top of the support pole 21 to support the meteorological monitoring component 3, the imaging component 4, the wireless network connection component 5, and the radio signal receiving component 6. More specifically, the number of meteorological monitoring components 3, imaging components 4, wireless network connection components 5, and radio signal receiving components 6 used varies depending on the application scenario. In larger areas, to improve the accuracy of data collection, the number of these components can be increased as needed. When increasing the number of these components, the number of brackets will be adjusted accordingly to match the number of meteorological monitoring components 3, imaging components 4, wireless network connection components 5, and radio signal receiving components 6, thus supporting the added components and ensuring their stable operation.
[0045] And, as Figure 1 As shown, the meteorological monitoring component 3, the imaging component 4, the wireless network connection component 5, and the radio signal receiving component 6 are all mounted on the supporting pole 21 via brackets. The brackets and supporting pole 21 are detachable, giving the entire control station greater flexibility and convenience. When the control station is transported to remote areas for installation, the meteorological monitoring component 3, the imaging component 4, the wireless network connection component 5, and the radio signal receiving component 6 can be disassembled, reducing the size and weight of each component, facilitating transportation and storage, saving transportation costs, and ensuring that the components are not damaged during transportation. When not in use, the control station is also easy to store, saving storage space. Furthermore, this disassembled and assembled structure in this embodiment can adapt to the control needs of takeoff and landing fields of different sizes and complexities, and is applicable to various takeoff and landing field control systems.
[0046] like Figure 3As shown, the support pole 21 includes a mounting rod 211 and a connecting rod 213. One end of the mounting rod 211 is fixedly connected to the base 1, and the other end of the mounting rod 211 is movably connected to the connecting rod 213 via a pivot 212. The connecting rod 213 can rotate and / or fold on the mounting rod 211 under the action of the pivot 212. Specifically, the support pole 21 includes two parts: the mounting rod 211 and the connecting rod 213. A pivot 212 is provided between the mounting rod 211 and the connecting rod 213. That is, the mounting rod 211 and the connecting rod 213 are connected by the pivot 212. The pivot 212 allows the connecting rod 213 to rotate and / or fold on the mounting rod 211, providing a rotation and inverting function, which can adapt to complex scenarios such as typhoons. For example, before a typhoon arrives, the equipment can be laid down to a safe position to avoid damage, and after the typhoon passes, it can be quickly restored to an upright state for use. It should be noted that in this embodiment, the connecting rod 213 can be folded 90° on the mounting rod 211 under the action of the rotating shaft 212.
[0047] like Figure 2 As shown, the connecting rod 213 includes a standard section 214 and a fixed section 215. The standard section 214 can be height-extended, and the fixed section 215 is used to support multiple brackets. Specifically, the connecting rod 213 is divided into two parts: one is the standard section 214, which is directly connected to the mounting rod 211 via a pivot 212, and the other is the fixed section 215, which is connected to the standard section 214. The length of the standard section 214 can be adjusted according to actual usage requirements to extend its height.
[0048] like Figure 2 As shown, the bracket includes a device mounting plate 22 and multiple arm supports 23; the device mounting plate 22 is used to support the wireless network connection component 5; the multiple arm supports 23 are used to support the meteorological monitoring component 3, the imaging component 4, and the radio signal receiving component 6. Specifically, the bracket is used to support the multi-functional integrated module, and the bracket includes multiple supports.
[0049] In this embodiment, as Figure 1-2As shown, the support system includes an equipment mounting plate 22 and an arm support 23. The equipment mounting plate 22 is located at the top of the fixed section 215 and supports the wireless network connection component 5, ensuring its normal operation. The arm support 23 supports the meteorological monitoring component 3, the imaging component 4, and the radio signal receiving component 6. Since the meteorological monitoring component 3, the imaging component 4, and the radio signal receiving component 6 can be adjusted according to the actual application scenario, the arm support 23 can be increased according to the number of meteorological monitoring component 3, the imaging component 4, the radio signal receiving component 6, or other functional components added as needed. This allows for the installation of more equipment on the control station, such as more sensors and cameras, enabling the system to monitor a wider area and further improving the performance and scalability of the control station.
[0050] It should be noted that since the standard section 214 in the connecting rod 213 can be replaced according to the actual situation, if the height of the standard section 214 is increased, the height of the main body will be increased, and the control console can obtain a better field of vision and signal coverage.
[0051] In this embodiment, the support pole 21 is a pole-type design, the height of which and the support structure can be expanded according to actual conditions, facilitating the addition of equipment. Furthermore, the pole-type design is optimized for fluid dynamics, effectively reducing wind resistance and minimizing the impact of strong winds on the control station. Simultaneously, supports can be added to the support pole 21 to conveniently install various functional modules, such as additional imaging components 4, signal enhancement devices, etc., depending on the actual situation.
[0052] As an optional implementation method, such as Figure 2-3 As shown, the control box 7 also includes a main control box 71 and an expansion box 72. The main control box 71 is electrically connected to the meteorological monitoring component 3, the imaging component 4, the wireless network connection component 5, and the radio signal receiving component 6, respectively. The expansion box 72 is electrically connected to the main control box 71 and is used to expand the functions of the main control box 71. Specifically, the main control box 71 can be electrically connected to the meteorological monitoring component 3, the imaging component 4, the wireless network connection component 5, and the radio signal receiving component 6 to provide power and network access to them. The main control box 71 centrally manages the electrical components, enabling the corresponding components to perform their respective operations, and centrally controls and manages the multi-functional integrated components. In addition, the control console in this embodiment can also be equipped with a switch and a power supply component. The power supply component can be connected to the main control box through the switch to achieve other functions. The specific functions implemented are not specifically limited in this embodiment.
[0053] The expansion box 72 is connected to the main control box 71 and is used to expand the functions of the main control box 71. The expansion box 72 reserves space for future functional upgrades of the main control box 71, such as integrating photovoltaic energy storage equipment to realize emergency power supply in the event of a power outage.
[0054] like Figure 3 As shown, the main control box 71 includes a cooling fan 711 and a network interface 712. The cooling fan 711 dissipates heat generated by the main control box 71 during operation, and the network interface 712 is used to connect to an external network or transmit information from the main control box 71 to external devices. Specifically, the heat dissipation system within the main control box 71 dissipates heat generated by the electronic components within the main control box 71 during operation, ensuring that the temperature of the entire main control box 71 remains stable during operation. The network interface 712 facilitates connection between the main control box 71 and external devices. Furthermore, the main control box 71 also includes a socket 713, which can be connected to an external power supply device.
[0055] It should be noted that the protection level of the control box 7 reaches IP55. The IP55 protection level of the control box 7 can ensure that the electronic components inside the main control box 71 are protected from dust, water splashes and other damage, and can extend the service life of the control box 7.
[0056] As an optional implementation method, such as Figure 1 As shown, the control console also includes a loudspeaker component 8, which is detachably connected to the support component 2 and electrically connected to the control box 7. Specifically, the loudspeaker component 8 is detachably connected to the fixing section 215 of the support pole 21. Furthermore, the loudspeaker component 8 is also electrically connected to the main control box 71, which supplies it with power. The loudspeaker component 8 can be connected to the control center to issue warnings and maintain order in the take-off and landing area where the control console is located. In this embodiment, the loudspeaker component 8 is actually a megaphone.
[0057] As an optional implementation method, such as Figure 1 As shown, the control console also includes a lightning protection component 9, which is located at the very top of the support component 2 and is detachably connected to the support component 2. Specifically, the lightning protection component 9 is located at the very top of the support component 2 and is connected to the equipment mounting plate 22. In this embodiment, the lightning protection component 9 can be a lightning rod, which also includes a grounding wire. The lightning rod, through a brief discharge and lightning attraction effect, quickly conducts the high voltage of the lightning to the ground through the grounding wire, preventing direct lightning strikes from damaging the control console or causing a fire.
[0058] The embodiment is merely a special case and does not indicate that this utility model is implemented in such a way.
[0059] The above description is merely a preferred embodiment of the present utility model. Those skilled in the art will understand that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of the present utility model. Furthermore, under the teachings of the present utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the present utility model. Therefore, the present utility model is not limited to the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application are within the protection scope of the present utility model.
Claims
1. A drone take-off and landing site control console, characterized in that, include: Base (1), support assembly (2), multi-functional integrated assembly and control box (7); The support component (2) is erected on the base (1) and is fixedly connected to the base (1); The multi-functional integrated component is detachably connected to the support component (2) and is used to collect data within the take-off and landing area where the control station is located; The control box (7) is located above the base (1) and is fixedly connected to the base (1); the control box (7) is electrically connected to the multi-functional integrated component and is used to supply power to the multi-functional integrated component. The multi-functional integrated component includes a meteorological monitoring component (3), an imaging component (4), a wireless network connection component (5), and a radio signal receiving component (6); the wireless network connection component (5) is used to provide network access to the take-off and landing area where the control station is located; the meteorological monitoring component (3), the imaging component (4), and the radio signal receiving component (6) are respectively used to collect meteorological data, monitoring data, and radio signal data in the take-off and landing area where the control station is located.
2. The UAV take-off and landing site control console according to claim 1, characterized in that, The support assembly (2) includes a support pole (21) and multiple brackets; the support pole (21) is fixedly connected to the base (1); the multiple brackets are located on the top of the support pole (21) and are detachably connected to the support pole (21), and the multiple brackets are used to support the meteorological monitoring assembly (3), the shooting assembly (4), the wireless network connection assembly (5) and the radio signal receiving assembly (6).
3. The UAV take-off and landing site control console according to claim 2, characterized in that, The support pole (21) includes a mounting rod (211) and a connecting rod (213); one end of the mounting rod (211) is fixedly connected to the base (1), and the other end of the mounting rod (211) is movably connected to the connecting rod (213) through a pivot (212). The connecting rod (213) can rotate and / or fold on the mounting rod (211) under the action of the pivot (212).
4. The UAV take-off and landing site control console according to claim 3, characterized in that, The connecting rod (213) includes a standard section (214) and a fixed section (215), the standard section (214) being height-extendable, and the fixed section (215) being used to support the plurality of brackets.
5. The UAV take-off and landing site control console according to claim 2, characterized in that, The support includes a device mounting plate (22) and multiple arm supports (23); the device mounting plate (22) is used to support the wireless network connection component (5); the multiple arm supports (23) are used to support the meteorological monitoring component (3), the shooting component (4) and the radio signal receiving component (6).
6. The UAV take-off and landing site control console according to claim 1, characterized in that, The control box (7) also includes a main control box (71) and an expansion box (72); the main control box (71) is electrically connected to the meteorological monitoring component (3), the shooting component (4), the wireless network connection component (5) and the radio signal receiving component (6) respectively; the expansion box (72) is electrically connected to the main control box (71) and is used to expand the functions of the main control box (71).
7. The UAV take-off and landing site control console according to claim 6, characterized in that, The main control box (71) includes a cooling fan (711) and a network interface (712). The cooling fan (711) is used to dissipate the heat generated by the main control box (71) during operation, and the network interface (712) is used to connect to an external network or transmit information from the main control box (71) to an external device.
8. The UAV take-off and landing site control console according to claim 1, characterized in that, The control console also includes a loudspeaker component (8), which is detachably connected to the support component (2) and electrically connected to the control box (7).
9. The UAV take-off and landing site control console according to claim 1, characterized in that, The control console also includes a lightning protection component (9), which is located at the top of the support component (2) and is detachably connected to the support component (2).
10. The UAV take-off and landing site control console according to claim 1, characterized in that, The meteorological monitoring component (3) includes a wind speed sensor, a wind direction sensor, a rainfall sensor, a temperature sensor, a humidity sensor, and a barometric pressure sensor.