Multifunctional digital node base station

By designing a multifunctional digital node base station and utilizing a lifting pole and adjustable solar panel area, the problem of base station detection and power supply in different environments was solved, achieving flexible detection and efficient power supply.

CN223540637UActive Publication Date: 2025-11-11HANGZHOU HAOLINK INTELLIGENT TECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202423027089.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-09
Publication Date
2025-11-11
Estimated Expiration
2034-12-09

AI Technical Summary

Technical Problem

Existing base station monitoring functions are limited and cannot meet the detection needs in different environments. Furthermore, the power supply components cannot meet the power needs of multiple monitoring devices, resulting in poor monitoring performance.

Method used

The design incorporates a multifunctional digital node base station, including a lifting pole, a top mechanism, a bottom mechanism, and solar panels. By adjusting the area of ​​the lifting pole and solar panels, it can adapt to the detection and power supply requirements of different environments. By combining the characteristics of multiple monitoring components, it can achieve flexible detection and power supply.

Benefits of technology

It meets the detection needs of multiple monitoring devices in different environments, and ensures power supply through adjustable solar panel area, thereby improving monitoring effect and power supply efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a multifunctional digital node base station, and relates to the technical field of engineering construction. Comprising a lifting rod, a top mechanism, a bottom mechanism and a solar assembly, a top fixing frame and a lightning rod in the top mechanism are fixedly arranged at the top end of the lifting rod, and an external collection assembly is arranged on the top fixing frame, used for collecting environment information and comprises a plurality of monitoring pieces; the bottom mechanism comprises a main body cabinet, an energy storage assembly and a communication processing assembly, the bottom end of the lifting rod is connected to the upper end face of the main body cabinet, the energy storage assembly and the communication processing assembly are both arranged in the main body cabinet, the energy storage assembly is electrically connected with the external acquisition assembly and the communication processing assembly, and the communication processing assembly is in communication connection with the external acquisition assembly; the solar assembly is arranged on the main body cabinet, and a solar panel on the solar assembly is adjustable in area and can supply energy to the energy storage assembly. The multifunctional digital node base station can meet the detection requirements in different environments, meet the energy supply requirements of a plurality of monitoring parts, and ensure the monitoring effect.
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Description

Technical Field

[0001] This utility model relates to the field of engineering construction technology, and in particular to a multifunctional digital node base station. Background Technology

[0002] During project construction, base stations are typically used to monitor the surrounding environment. These monitoring devices are usually powered by solar or wind power to ensure continuous monitoring even in environments without electricity. However, existing base station monitoring functions are relatively limited, and monitoring requirements vary depending on the environment. If the number and types of monitoring devices on the base station are increased to meet complex monitoring needs, the different characteristics of each device may cause the same base station to be unable to meet the environmental requirements of each device, resulting in poor monitoring performance. Furthermore, the power supply components may struggle to meet the power demands of various monitoring devices in different environments. Utility Model Content

[0003] The purpose of this invention is to provide a multifunctional digital node base station that can meet the detection needs in different environments and the power supply needs of multiple monitoring devices, thus ensuring the monitoring effect.

[0004] To achieve this objective, the present invention adopts the following technical solution:

[0005] Multifunctional digital node base station, including:

[0006] The lifting mast;

[0007] The top mechanism includes a top mounting frame, a lightning rod, and an external acquisition component. The top mounting frame and the lightning rod are both fixedly mounted on the top of the lifting mast. The external acquisition component is mounted on the top mounting frame and is used to collect environmental information. The external acquisition component includes multiple monitoring components.

[0008] The bottom mechanism includes a main cabinet, an energy storage component, and a communication processing component. The bottom end of the lifting rod is fixedly installed on the upper surface of the main cabinet. The energy storage component and the communication processing component are both installed inside the main cabinet. The energy storage component is electrically connected to both the external acquisition component and the communication processing component. The communication processing component is communicatively connected to the external acquisition component.

[0009] A solar panel is installed on the main cabinet. The area of ​​the solar panel on the solar panel is adjustable. The solar panel can supply energy to the energy storage component.

[0010] As a further technical solution, the lifting rod includes multiple connecting rods that are raised and lowered sequentially, with at least one of the upper connecting rods being rotatably connected to the lower connecting rod, so that the upper connecting rod rotates relative to the lower connecting rod along the circumference of the lifting rod.

[0011] And / or, the top fixing bracket is rotatably connected to the top end of the lifting rod along the circumference of the lifting rod.

[0012] As a further technical solution, the multifunctional digital node base station also includes a connection component, and the solar panel is angle-adjustably mounted on one side of the main cabinet through the connection component.

[0013] As a further technical solution, the connecting assembly includes a rotating connector and a telescopic link. The upper end of the solar panel is rotatably connected to the main cabinet through the rotating connector. The two ends of the telescopic link are respectively rotatably connected to the main cabinet and the lower end of the solar panel. The telescopic link can extend and retract to allow the solar panel to rotate, thereby changing the angle between the solar panel and the horizontal plane.

[0014] As a further technical solution, the plurality of solar panels are configured as a first solar panel and a second solar panel, wherein the first solar panel is disposed on the main cabinet and the second solar panel is movably disposed on the first solar panel.

[0015] As a further technical solution, the solar module also includes a connecting auxiliary component, which has an opening in its receiving cavity, the opening of which is located on the side wall of the connecting auxiliary component.

[0016] The connecting auxiliary component is connected to the main cabinet, the first solar panel is fixedly disposed on the side of the connecting auxiliary component away from the main cabinet, and the second solar panel is movably disposed in the receiving cavity.

[0017] As a further technical solution, the solar module also includes a guide rail, which is disposed on the side wall of the receiving cavity, and the second solar panel is slidably connected to the guide rail;

[0018] A limiting member is provided on the side wall of the connecting auxiliary member corresponding to the opening of the accommodating cavity, and the limiting member can limit the second solar panel to be located in the accommodating cavity.

[0019] As a further technical solution, the connecting auxiliary component is provided with two accommodating cavities, and the openings of the two accommodating cavities are respectively provided on two adjacent or opposite side walls of the connecting auxiliary component.

[0020] As a further technical solution, the solar module also includes multiple connecting hinges, and two second solar panels are provided. The two second solar panels are connected to the first solar panel by offset rotation through the corresponding connecting hinges.

[0021] As a further technical solution, the bottom mechanism also includes multiple casters and multiple positioning components, with the multiple casters and multiple positioning components being spaced apart on the lower end face of the main cabinet.

[0022] Compared with existing technologies, the multifunctional digital node base station provided by this utility model has the following technical advantages:

[0023] 1. Since multiple monitoring components are mounted on the top of the lifting rod via a top fixing frame, the corresponding monitoring components are activated to monitor the environment when different monitoring needs arise in different environments. Furthermore, the lifting rod is adjusted according to the characteristics of the corresponding monitoring components during operation to ensure that the environment in which the top fixing frame is located meets the working environment requirements of the corresponding monitoring components, thereby guaranteeing the detection effect.

[0024] 2. Since the solar modules are installed in the main cabinet and the area of ​​the solar panels on the solar modules is adjustable, during the testing process, the area of ​​the solar panels on the solar modules can be changed according to the number of monitoring devices in operation and the characteristics of the corresponding monitoring devices in operation, so that the energy converted by the solar modules can meet the energy supply needs of the corresponding monitoring devices. Attached Figure Description

[0025] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments of this utility model 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 the content of the embodiments of this utility model and these drawings without creative effort.

[0026] Figure 1 This is a structural schematic diagram of the multifunctional digital node base station under working conditions provided in this embodiment of the utility model;

[0027] Figure 2 This is a schematic diagram of the structure of the multifunctional digital node base station in the non-working state provided by this utility model embodiment.

[0028] In the picture:

[0029] 100. Lifting boom;

[0030] 200. Top mechanism; 210. Top mounting bracket; 220. Lightning rod;

[0031] 300. Bottom mechanism; 310. Main cabinet; 320. Casters; 330. Positioning assembly; 331. Positioning cylinder; 332. Positioning column;

[0032] 400. Solar module; 410. First solar panel; 420. Second solar panel; 430. Connecting auxiliary component; 440. Limiting component;

[0033] 500. Connecting assembly; 510. Rotating connector; 520. Telescopic link. Detailed Implementation

[0034] Before explaining any implementation of this application in detail, it should be understood that this application is not limited to its application to the structural details and component arrangements set forth in the following description or shown in the above drawings.

[0035] In this application, the terms "comprising," "including," "having," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.

[0036] In this application, the term "and / or" describes the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent three cases: A existing alone, A and B existing simultaneously, and B existing alone. Additionally, the character " / " in this application generally indicates that the preceding and following related objects have an "and / or" relationship.

[0037] In this application, the terms "connection," "combination," "coupling," and "installation" can refer to direct connection, combination, coupling, or installation, or indirect connection, combination, coupling, or installation. For example, a direct connection refers to two parts or components being connected together without the need for an intermediary, while an indirect connection refers to two parts or components each being connected to at least one intermediary, with the connection achieved through the intermediary. Furthermore, "connection" and "coupling" are not limited to physical or mechanical connections or couplings, but can also include electrical connections or couplings.

[0038] In this application, those skilled in the art will understand that relative terms (e.g., “about,” “approximately,” “basically,” etc.) used in conjunction with quantities or conditions are to include the values ​​and have the meaning indicated by the context. For example, such relative terms include at least the degree of error associated with the measurement of a particular value, tolerances associated with the particular value due to manufacturing, assembly, use, etc. Such terms should also be considered as disclosing a range defined by the absolute values ​​of the two endpoints. Relative terms may refer to a certain percentage (e.g., 1%, 5%, 10% or more) of the indicated value. Numerical values ​​not using relative terms should also be disclosed as specific values ​​with tolerances. Furthermore, “basically” when expressing relative angular relationships (e.g., substantially parallel, substantially perpendicular) may refer to a certain degree (e.g., 1 degree, 5 degrees, 10 degrees or more) added to or subtracted from the indicated angle.

[0039] In this application, those skilled in the art will understand that the function performed by a component can be performed by one component, multiple components, one part, or multiple parts. Similarly, the function performed by a part can also be performed by one part, one component, or a combination of multiple parts.

[0040] In this application, the directional terms "upper," "lower," "left," "right," "front," and "rear" are used to describe the orientation and positional relationships shown in the accompanying drawings and should not be construed as limiting the embodiments of this application. Furthermore, in the context, it should be understood that when an element is mentioned as being connected "upper" or "lower" to another element, it can be directly connected to the other element "upper" or "lower," or indirectly connected through an intermediate element. It should also be understood that directional terms such as upper side, lower side, left side, right side, front side, and rear side not only represent positive orientation but can also be understood as lateral orientation. For example, "below" can include directly below, lower left, lower right, lower front, and lower rear.

[0041] Specific combination Figure 1 and Figure 2As shown, the multifunctional digital node base station (hereinafter referred to as the base station) provided in this embodiment can monitor and transmit various messages in the environment, thereby meeting the detection needs in different environments and the power supply needs of multiple monitoring devices, ensuring the monitoring effect. Specifically, the base station includes a lifting pole 100, a top mechanism 200, a bottom mechanism 300, and a solar panel 400. The top mechanism 200 includes a top mounting frame 210, a lightning rod 220, and an external acquisition component. The top mounting frame 210 and the lightning rod 220 are both fixedly installed at the top of the lifting pole 100. The external acquisition component is installed on the top mounting frame 210 and is used to collect environmental information. The external acquisition component includes multiple monitoring devices. The bottom mechanism 300 includes a main cabinet 310, an energy storage component, and a communication processing component. The bottom end of the lifting pole 100 is fixedly installed on the upper surface of the main cabinet 310. The energy storage component and the communication processing component are both installed inside the main cabinet 310. The energy storage component is electrically connected to both the external acquisition component and the communication processing component. The communication processing component is communicatively connected to the external acquisition component. The solar panel 400 is installed on the main cabinet 310. The area of ​​the solar panel on the solar panel 400 is adjustable, and the solar panel 400 can supply energy to the energy storage component.

[0042] Since multiple monitoring components are mounted on the top of the lifting rod 100 via the top fixing frame 210, the corresponding monitoring components can be activated to detect the environment when facing different monitoring needs in different environments. Furthermore, the lifting rod 100 can be adjusted according to the characteristics of the corresponding monitoring components in the working state so that the environment in which the top fixing frame 210 is located can meet the working environment requirements of the corresponding monitoring components, thereby ensuring the detection effect.

[0043] Since the solar module 400 is installed in the main cabinet 310 and the area of ​​the solar panel on the solar module 400 is adjustable, during the testing process, the area of ​​the solar panel on the solar module 400 can be changed according to the number of monitoring devices in working state and the characteristics of the corresponding monitoring devices in working state, so that the energy converted by the solar module 400 can meet the energy supply requirements of the corresponding monitoring devices.

[0044] In addition, since a lightning rod 220 is installed at the top of the lifting pole 100, the lightning rod 220 can attract lightning and conduct the lightning current into the ground, thereby protecting the entire base station from lightning damage. To enhance the strength of the top mounting bracket 210 and thus improve its support for external acquisition components, in this embodiment, the top mounting bracket 210 is made of a rigid material. The lifting pole 100 is raised and lowered using an air pump (not shown in the figure), which is located inside the main cabinet 310. The air pump is configured according to existing technology and is not specifically limited here. To ensure the strength and stability of the lifting pole 100, the outer peripheral wall of the lifting pole 100 is anodized to achieve rust prevention. The overall material of the lifting pole 100 is high-strength aluminum alloy, so that the lifting pole 100 can maintain its support effect on the top mounting bracket 210 in windy environments.

[0045] In this embodiment, multiple monitoring devices include, but are not limited to, video surveillance PTZ cameras, RFID (Radio Frequency Identification) devices, environmental monitoring equipment, Wi-Fi signal base stations, audible and visual alarms, and speaker columns, to facilitate the collection of different information from the environment. The energy storage components in the main cabinet 310 include, but are not limited to, a power supply controller, battery packs, and electrical processing boxes, while the communication processing components include, but are not limited to, an edge gateway server and network equipment. The battery pack stores the electrical energy converted by the solar panel 400, and includes at least one primary power supply and one backup power supply. The power supply controller can automatically switch between the primary and backup power supplies and control the electrical input and stable output of various voltages and currents from the solar panel 400. The edge gateway server is compatible with the access of various external devices and can be used to achieve offline use, offline data storage, local device linkage, and data upload upon network access. The network equipment can be plugged in and switched as needed, supporting 4G / 5G networks and satellite networks to facilitate the collection and transmission of information from multiple monitoring devices.

[0046] Preferably, the lifting rod 100 includes multiple connecting rods arranged in a sequentially ascending and descending manner, with at least one upper connecting rod rotatably connected to a lower connecting rod, allowing the upper connecting rod to rotate relative to the lower connecting rod along the circumference of the lifting rod 100. This arrangement allows the upper connecting rod to be rotated axially along the lifting rod 100, changing the relative circumferential position between the upper and lower connecting rods, thereby altering the orientation of the monitoring components mounted on the top mounting bracket 210. Thus, during base station operation, the orientation of the monitoring component can be changed by rotating the upper connecting rod according to its characteristics in the operating state, further improving the detection effect. In other embodiments, the top mounting bracket 210 can also be directly configured to rotatably connect to the top of the lifting rod 100 along its circumference.

[0047] Preferably, the multi-functional digital node base station also includes a connection component 500, and the solar panel 400 is angle-adjustably mounted on one side of the main cabinet 310 via the connection component 500. With this configuration, during base station operation, the angle of the solar panel 400 can be adaptively changed by adjusting the connection component 500 according to the sun's position, so that the electrical energy provided by the solar panel 400 can meet the base station's power supply needs.

[0048] Specifically, the connecting component 500 includes a rotating connector 510 and a telescopic link 520. The upper end of the solar panel 400 is rotatably connected to the main cabinet 310 through the rotating connector 510. The two ends of the telescopic link 520 are rotatably connected to the main cabinet 310 and the lower end of the solar panel 400, respectively. The telescopic link 520 can extend and retract to allow the solar panel 400 to rotate, thereby changing the angle between the solar panel 400 and the horizontal plane.

[0049] Combination Figure 2 As shown, when it is necessary to change the angle between the solar panel 400 and the horizontal plane, the solar panel 400 can be rotated around the rotating connector 510. By setting the telescopic link 520, during the adjustment of the angle between the solar panel 400 and the horizontal plane, on the one hand, the telescopic link 520 can be adjusted to assist the solar panel 400 in rotating around the rotating connector 510 more effectively; on the other hand, after the angle of the solar panel 400 is adjusted, the telescopic link 520 restricts the relative position of the solar panel 400 and the main cabinet 310, preventing the solar panel 400 from falling back under its own weight and affecting the power supply effect to the base station. The rotating connector 510 can be a hinge, a rotating shaft, etc., and is not specifically limited here.

[0050] The number of solar panels 400 can be increased or decreased as appropriate according to the actual situation. In this embodiment, a set of solar panels 400 is set on the main cabinet 310 as an example for illustration.

[0051] Preferably, multiple solar panels are configured as a first solar panel 410 and a second solar panel 420. The first solar panel 410 is mounted on the main cabinet 310, and the second solar panel 420 is movably mounted on the first solar panel 410. In this way, by adjusting the relative positions of the first solar panel 410 and the second solar panel 420, the overall area of ​​the solar panels can be changed, thereby meeting the power supply requirements of the corresponding monitoring components under different environments.

[0052] Specifically, the solar module 400 also includes a connecting auxiliary component 430, which has an open receiving cavity located on its side wall. The connecting auxiliary component 430 is connected to the main cabinet 310. A first solar panel 410 is fixedly mounted on the side of the connecting auxiliary component 430 facing away from the main cabinet 310, and a second solar panel 420 is movably mounted in the receiving cavity. This configuration allows for several advantages. First, during base station operation, the second solar panel 420 can be directly pulled out of the receiving cavity to meet the base station's power requirements. Furthermore, the area of ​​the second solar panel 420 extending out of the receiving cavity can be adaptively adjusted according to the actual intensity of sunlight in the environment. Second, during base station relocation, the second solar panel 420 can be retracted into the receiving cavity to protect it and reduce the risk of damage during transport.

[0053] To facilitate the removal or repositioning of the second solar panel 420 from the receiving cavity, in this embodiment, the solar module 400 further includes a guide rail disposed on the side wall of the receiving cavity. The second solar panel 420 is slidably connected to the guide rail to improve the convenience of pulling out the second solar panel 420.

[0054] Furthermore, a limiting member 440 is provided on the side wall of the connecting auxiliary member 430 corresponding to the opening of the receiving cavity. The limiting member 440 can limit the second solar panel 420 within the receiving cavity. The limiting member 440 is elongated and rotatably mounted on the second solar panel 420 corresponding to the opening of the receiving cavity. After the second solar panel 420 is retracted into the receiving cavity, the limiting member 440 is rotated so that the limiting member 440 abuts against the second solar panel 420, preventing the second solar panel 420 from extending out of the receiving cavity on its own.

[0055] In other embodiments, the limiting member 440 can also be configured as an elastic member, disposed on the side wall of the receiving cavity and near the opening end of the receiving cavity. The second solar panel 420 is provided with a corresponding snap-fit ​​groove to the elastic member. After the second solar panel 420 is pulled out of the receiving cavity, the elastic member is compressed by force. When the second solar panel 420 is retracted into the receiving cavity, the snap-fit ​​groove is opposite to the elastic member. At this time, the elastic member is no longer under force and begins to rebound autonomously and snaps into the snap-fit ​​groove, thereby limiting the relative position of the second solar panel 420 in the receiving groove.

[0056] To further improve the energy supply effect of the solar module 400, in this embodiment, the connecting auxiliary member 430 is provided with two accommodating cavities, each containing a movably mounted second solar panel 420. The openings of the two accommodating cavities are respectively located on two adjacent or opposite side walls of the connecting auxiliary member 430 to avoid the two second solar panels 420 blocking each other during use, thus preventing poor energy supply from the solar module 400. In other embodiments, the number of accommodating cavities in the connecting auxiliary member 430 can be increased to three or four as needed, with the openings of each cavity facing outwards in a staggered manner.

[0057] In some other embodiments, the solar panel 400 further includes multiple connecting hinges, and two second solar panels 420 are provided. Both second solar panels 420 are rotatably connected to the first solar panel 410 via corresponding connecting hinges. By providing connecting hinges, the second solar panels 420 are movably connected to the first solar panel 410, thereby ensuring the power supply effect. When the base station needs to be transferred, the two second solar panels can be folded up.

[0058] Preferably, the bottom mechanism 300 further includes multiple casters 320 and multiple positioning components 330, all of which are spaced apart on the lower end face of the main cabinet 310. During base station transport, the multiple casters 320 enhance the ease of transport; after the base station is transported to its destination, the multiple positioning components 330 place it on a horizontal surface, thus preventing the transported base station from shifting independently under the action of the multiple casters 320.

[0059] Taking one of the positioning components 330 as an example, the positioning component 330 includes a positioning cylinder 331 and a positioning post 332. The positioning cylinder 331 is fixedly installed on the lower end face of the main cabinet 310, and the positioning post 332 is inserted into the positioning cylinder 331. By changing the distance between the positioning post 332 and the positioning cylinder 331, the distance between the lower end face of the main cabinet 310 and the horizontal plane can be changed. When the overall height of the positioning component 330 is less than the height of the casters 320, the base station can be moved using multiple casters 320. After the base station is moved to its destination, the distance between the positioning cylinder 331 into which the positioning post 332 is inserted is adjusted so that the multiple casters 320 are suspended in the air, thereby positioning the base station at its destination to ensure the effectiveness of the base station. Furthermore, to limit the relative position between the positioning cylinder 331 and the positioning post 332 after adjustment, the positioning post 332 is threadedly connected to the positioning cylinder 331; or, multiple positioning screw holes are provided along the axial direction on the side wall of the positioning cylinder 331. After the positioning cylinder 331 and the positioning post 332 are adjusted, an adjusting screw is inserted into the positioning screw hole and tightened so that the adjusting screw abuts against the positioning post 332. In this embodiment, four casters 320 and four positioning components 330 are provided at each of the four corners of the main cabinet 310. In other embodiments, the number of casters 320 and four positioning components 330 can be increased or decreased as appropriate according to the actual situation, and no specific limitation is made here.

[0060] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make various obvious changes, readjustments, and substitutions without departing from the protection scope of this utility model. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.

Claims

1. A multi-functional digital node base station, characterized in that, include: Lifting boom (100); The top mechanism (200) includes a top fixing frame (210), a lightning rod (220), and an external acquisition component. The top fixing frame (210) and the lightning rod (220) are both fixedly installed at the top of the lifting rod (100). The external acquisition component is installed on the top fixing frame (210) and is used to collect environmental information. The external acquisition component includes multiple monitoring components. The bottom mechanism (300) includes a main cabinet (310), an energy storage component, and a communication processing component. The bottom end of the lifting rod (100) is fixedly installed on the upper surface of the main cabinet (310). The energy storage component and the communication processing component are both installed inside the main cabinet (310). The energy storage component is electrically connected to both the external acquisition component and the communication processing component. The communication processing component is communicatively connected to the external acquisition component. A solar panel (400) is installed in the main cabinet (310). The area of ​​the solar panel on the solar panel (400) is adjustable. The solar panel (400) can supply energy to the energy storage component.

2. The multifunctional digital node base station according to claim 1, characterized in that, The lifting rod (100) includes multiple connecting rods arranged in a sequentially lifting manner, with at least one of the upper connecting rods being rotatably connected to the lower connecting rod, so that the upper connecting rod rotates relative to the lower connecting rod along the circumference of the lifting rod (100). And / or, the top fixing bracket (210) is rotatably connected to the top end of the lifting rod (100) along the circumference of the lifting rod (100).

3. The multifunctional digital node base station according to claim 1, characterized in that, The multifunctional digital node base station also includes a connection component (500), and the solar panel (400) is angle-adjustably mounted on one side of the main cabinet (310) via the connection component (500).

4. The multifunctional digital node base station according to claim 3, characterized in that, The connecting assembly (500) includes a rotating connector (510) and a telescopic link (520). The upper end of the solar panel (400) is rotatably connected to the main cabinet (310) through the rotating connector (510). The two ends of the telescopic link (520) are respectively rotatably connected to the main cabinet (310) and the lower end of the solar panel (400). The telescopic link (520) can extend and retract to allow the solar panel (400) to rotate, thereby changing the angle between the solar panel (400) and the horizontal plane.

5. The multifunctional digital node base station according to claim 1, characterized in that, The solar module (400) includes a first solar panel (410) and a second solar panel (420), wherein the first solar panel (410) is disposed on the main cabinet (310), and the second solar panel (420) is movably disposed on the first solar panel (410).

6. The multifunctional digital node base station according to claim 5, characterized in that, The solar module (400) further includes a connecting auxiliary member (430), which has an opening in the receiving cavity, the opening of which is located on the side wall of the connecting auxiliary member (430). The connecting auxiliary component (430) is connected to the main cabinet (310), the first solar panel (410) is fixedly disposed on the side of the connecting auxiliary component (430) away from the main cabinet (310), and the second solar panel (420) is movably disposed in the accommodating cavity.

7. The multifunctional digital node base station according to claim 6, characterized in that, The solar module (400) also includes a guide rail disposed on the side wall of the receiving cavity, and the second solar panel (420) is slidably connected to the guide rail; A limiting member (440) is provided on the side wall of the connecting auxiliary member (430) corresponding to the opening of the accommodating cavity. The limiting member (440) can limit the second solar panel (420) to be located in the accommodating cavity.

8. The multifunctional digital node base station according to claim 6, characterized in that, The connecting auxiliary member (430) is provided with two accommodating cavities, and the openings of the two accommodating cavities are respectively provided on two adjacent or opposite side walls of the connecting auxiliary member (430).

9. The multifunctional digital node base station according to claim 5, characterized in that, The solar module (400) also includes multiple connecting hinges, and two second solar panels (420) are provided. The two second solar panels (420) are connected to the first solar panel (410) by offset rotation through the corresponding connecting hinges.

10. The multifunctional digital node base station according to claim 1, characterized in that, The bottom mechanism (300) also includes a plurality of casters (320) and a plurality of positioning components (330), wherein the plurality of casters (320) and the plurality of positioning components (330) are all spaced apart on the lower end face of the main cabinet (310).