Positioning base station
The design of the detachable bracket body and mounting components solves the problem of repeated disassembly and assembly of RTK base stations damaging the mounting surface, thus simplifying the installation process and improving stability.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- SHENZHEN MAMMOTION INNOVATION CO LTD
- Filing Date
- 2026-01-20
- Publication Date
- 2026-07-30
AI Technical Summary
Repeated installation and removal of existing RTK base stations can damage the mounting surface, leading to inconvenience in installation and structural stability issues.
The design features a detachable bracket body and mounting components, employing threaded connections and a sliding locking structure to simplify the installation process and suit various installation environments.
It reduces maintenance time and costs, improves installation flexibility and stability, avoids damage to the mounting surface, and simplifies multiple installation operations.
Smart Images

Figure CN2026073732_30072026_PF_FP_ABST
Abstract
Description
Positioning base station
[0001] This application claims priority to Chinese Patent Application No. 202520175403.3, filed on January 24, 2025, entitled “Positioning Base Station”, the entire contents of which are incorporated herein by reference. Technical Field
[0002] This application relates to the field of positioning equipment technology, and more specifically, to a positioning base station. Background Technology
[0003] RTK (Real-Time Kinematic) is a measurement and positioning method that can achieve centimeter-level positioning accuracy in real time in the field. RTK fixed base stations can implement carrier phase differential technology to provide high-precision real-time positioning services.
[0004] Some existing RTK base stations are mounted to building walls or lawns using fasteners such as screws. When users need to remove the RTK base station, the fasteners must be removed from the wall or lawn, and when users want to redeploy the RTK base station, the fasteners must be driven back into the wall or lawn. After repeating this process several times, it will damage the wall or lawn, affecting not only the structural stability of the wall or lawn, but also requiring the search for a new installation point to avoid the damaged area, causing inconvenience to subsequent installation work. Summary of the Invention
[0005] In view of this, this application provides a positioning base station to solve the problem that repeated installation and removal of the positioning base station will damage the mounting surface.
[0006] One embodiment of this application provides a positioning base station, which includes a support body, a receiver, and a mounting component. The receiver is disposed on the support body. The receiver is used to receive signals. The mounting component and the support body are detachably connected. One side of the mounting component is configured to be fixedly connected to a mounting surface.
[0007] When installing a positioning base station, first fix the mounting components and mounting surface together, then connect the bracket body to the mounting components. When the positioning base station needs to be removed, simply detach the bracket body from the mounting components; when the user needs to reinstall it later, simply reattach the bracket body to the mounting components. This detachable connection design of the mounting components and bracket body simplifies the installation process and reduces maintenance time and costs. Furthermore, the bracket body and mounting components can be designed to suit different installation environments, allowing for customized installation methods and application in various settings. They can also be further designed as standard parts for easy replacement and maintenance, with the bracket body able to mount different receivers and the mounting components suitable for most installation environments. The bracket body can even be designed with a detachable connection to different mounting components, further enhancing the installation flexibility of the positioning base station.
[0008] In some embodiments of this application, the bracket body includes a second mating portion. The second mating portion is located at the bottom of the bracket body. The mounting component includes a bottom mounting base. The bottom mounting base includes a second mounting portion. The second mounting portion and the second mating portion are detachably connected.
[0009] When the mounting surface is the ground, the second mating part at the bottom of the bracket body and the second mounting part of the base mount are detachably connected. When the user needs to remove the positioning base station, for example, to clean or repair it, the bracket body and the base mount can be separated without damaging the ground due to the installation and removal of the positioning base station. This also makes it convenient for users to install the positioning base station multiple times without having to relocate and find a suitable installation location based on the original mounting surface.
[0010] In some embodiments of this application, the second mating part and the second mounting part are connected by a threaded structure.
[0011] The detachable connection between the second mating part and the second mounting part is a threaded connection. This allows the bracket body and the bottom mounting base to be installed or separated simply by rotation, making the assembly and disassembly process simple and quick. Furthermore, thread processing is easy to standardize for production, which helps reduce manufacturing costs. To further reduce the difficulty of assembly and disassembly during implementation, the axial direction of the thread can be set to be the same as the vertical direction, and the height direction of the entire bracket body can also be the same as the vertical direction.
[0012] In some embodiments of this application, the second mating part is provided with a connecting stud. The second mounting part is provided with a threaded seat. The threaded seat is provided with an internal threaded hole. The connecting stud and the internal threaded hole are threadedly connected.
[0013] During installation, simply connect the connecting stud to the internal threaded hole on the threaded seat. The connecting stud will eventually be located inside the threaded seat, thus fixing the bracket body and the base mounting seat relatively.
[0014] In some embodiments of this application, the second mating part is provided with a mounting groove along the axial direction of the connecting stud. The connecting stud is connected to the bottom wall of the mounting groove. Along the axial direction of the connecting stud, the projection of the mounting groove covers the projection of the threaded seat.
[0015] In this way, the connecting stud is located within the mounting groove, and at least a portion of its length is covered by the axial dimension of the bracket body. This reduces the increase in the axial dimension of the bracket body caused by the connecting stud. Simultaneously, at least a portion of the threaded seat is located within the mounting groove, allowing the connection between the connecting stud and the threaded seat to withstand greater axial loads, further improving the connection strength between the base mounting and the bracket body.
[0016] In some embodiments of this application, the length of the threaded seat along the axial direction of the connecting stud is less than or equal to the depth of the mounting groove.
[0017] The entire threaded seat is fully accommodated within the mounting groove, which helps reduce the shaking or displacement of the positioning base station under external forces. During threaded connections, the mounting groove provides a positioning reference for the threaded seat, facilitating alignment between the connecting stud and the threaded seat.
[0018] In some embodiments of this application, the bracket body includes a first mating portion. The first mating portion is located on the side of the bracket body. The mounting member includes a side mounting seat. The side mounting seat includes a first mounting portion. The first mounting portion and the first mating portion are detachably connected.
[0019] When the mounting surface is a wall, the detachable connection point with the mounting bracket is located on the side of the main bracket body. This allows for wall mounting of the positioning base station without altering the installation positions of other components on the main bracket body, providing users with more installation options. When the positioning base station needs to be removed from the wall, the user simply separates the main bracket body from the side mounting bracket, leaving the side mounting bracket on the wall for future reinstallation and deployment of the positioning base station.
[0020] In some embodiments of this application, the first mating part is slidably fitted to the first mounting part, and sliding the first mating part relative to the first mounting part in a disengagement direction allows the first mating part to disengage from the first mounting part. When the first mating part slides relative to the first mounting part to the locking position, it restricts the relative displacement between the first mating part and the first mounting part.
[0021] When it is necessary to separate the bracket body and the side mounting base, the first mating part slides in the disengagement direction, allowing the bracket body and the side mounting base to separate. During installation, when the first mating part slides to the locking position, it no longer slides relative to the first mounting part. Using a sliding method to assemble and disassemble the bracket body and the side mounting base eliminates the need for additional tools, thus improving efficiency. The design of the assembly and disassembly structure between the bracket body and the side mounting base based on the principles of sliding and locking helps reduce manufacturing costs and simplifies user operation.
[0022] In some embodiments of this application, the first mating part is provided with a slider. The first mounting part is provided with a groove. The groove extends in the opposite direction of the disengagement direction. The slider is slidable within the groove. The groove includes an open end. The open end is configured to allow the slider to slide out of the groove. The first mounting part and / or the bracket body are provided with a limiting structure. The limiting structure is configured to restrict the slider from sliding to the locking position and then continuing to slide in the opposite direction of the disengagement direction.
[0023] The slider slides into the groove along the open end. After sliding to the locking position, the limiting structure prevents the slider from sliding further relative to the groove. When the slider slides in the release direction, the limiting structure no longer restricts the slider, allowing it to slide out of the groove from the open end. The operation is simple, and the connection is stable and reliable.
[0024] In some embodiments of this application, the first mounting portion is further provided with a guide groove. The guide groove is connected to the open end. The slider slides along the guide groove into the slide groove and is slidably connected to the slide groove.
[0025] The guide groove, which is connected to the open end of the slide, can help the user quickly position the slider close to the open end. The bracket body can move along the guide groove to cooperate smoothly with the slide, further fixing the bracket body and the side mounting base relatively.
[0026] In some embodiments of this application, the sidewall of the slide is provided with a stop. The stop is configured to prevent the stop slider from disengaging from the slide in a direction perpendicular to the bottom wall of the slide.
[0027] The stop design restricts the slider to slide only in the release direction and the reverse direction, reducing unnecessary lateral force wear on the slider and groove, thereby extending the service life of the side mount and the first mating part. The stop also effectively prevents the slider from falling out of the groove, improving the stability of the connection between the bracket body and the side mount.
[0028] In some embodiments of this application, the positioning base station further includes a solar panel and a battery. The solar panel is disposed on a support body. The support body has a hollow cavity. The battery is built into the cavity. The battery and the solar panel are connected to receive electrical energy output by the solar panel.
[0029] By placing the battery within the cavity of the bracket body, the internal space of the bracket body is made efficient, saving the additional space required for the battery to be installed on the back side of the solar panel. This also helps reduce the impact of the external environment on the battery, thus extending its lifespan. Furthermore, since the bracket body is the component connected to the mounting surface, the battery's weight helps to bring the center of gravity of the entire positioning base station closer to the connection point between the bracket body and the mounting surface, thereby improving the stability of the positioning base station installation. Attached Figure Description
[0030] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation on the scope.
[0031] Figure 1 is a schematic diagram of the structure of a positioning base station provided in an embodiment of this application;
[0032] Figure 2 is a schematic diagram of the structure in the embodiment where the bottom mounting base and the side mounting base are separated from the main body of the bracket;
[0033] Figure 3 is a schematic diagram of the structure of the support body provided in an embodiment of this application;
[0034] Figure 4 is a structural schematic diagram of a bottom mounting base provided in an embodiment of this application;
[0035] Figure 5 is a schematic diagram of the structure of a side mounting base provided in an embodiment of this application;
[0036] Figure 6 is a schematic diagram of the battery installation in the embodiment.
[0037] The reference numerals in the accompanying drawings are as follows: 200, positioning base station; 1, bracket body; 100, cavity; 14, second mating part; 141, connecting stud; 142, mounting groove; 15, first mating part; 151, slider; 1511, limiting protrusion; 2, solar panel; 3, battery; 4, receiver; 5, mounting part; 501, bottom mounting base; 51, second mounting part; 511, threaded seat; 5111, internal threaded hole; 512, ground nail; 502, side mounting base; 52, first mounting part; 521, sliding groove; 5211, open end; 5212, closed end; 5213, stop part; 522, guide groove. Detailed Implementation
[0038] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0039] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the application.
[0040] In the description of this application, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are 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. Therefore, they should not be construed as limitations on this application.
[0041] Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be interpreted as indicating or implying relative importance.
[0042] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intervening component present. When a component is considered to be "located" on another component, it can be directly located on the other component or there may be an intervening component present.
[0043] The term “and / or” as used herein includes any and all combinations of one or more of the related listed items.
[0044] In this application, the relatively fixed arrangement of the two does not mean that they are not detachable, but rather that the relatively fixed arrangement of the two can move together when the positioning base station is in use.
[0045] An embodiment of this application provides a positioning base station, which includes a support body, a receiver, and a mounting component. The receiver is disposed on the support body. The receiver is used to receive signals. The mounting component and the support body are detachably connected. One side of the mounting component is configured to be fixedly connected to a mounting surface.
[0046] When installing a positioning base station, first fix the mounting components and mounting surface together, then connect the bracket body to the mounting components. When the positioning base station needs to be removed, simply detach the bracket body from the mounting components; when the user needs to reinstall it later, simply reattach the bracket body to the mounting components. This detachable connection design of the mounting components and bracket body simplifies the installation process and reduces maintenance time and costs. Furthermore, the bracket body and mounting components can be designed to suit different installation environments, allowing for customized installation methods and application in various settings. They can also be further designed as standard parts for easy replacement and maintenance, with the bracket body able to mount different receivers and the mounting components suitable for most installation environments. The bracket body can even be designed with a detachable connection to different mounting components, further enhancing the installation flexibility of the positioning base station.
[0047] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0048] Please refer to Figures 1 and 2. One embodiment of this application provides a positioning base station 200, which includes a support body 1, a receiver 4, and a mounting component 5. The receiver 4 is disposed on the support body 1. The receiver 4 is used to receive signals. The mounting component 5 is detachably connected to the support body 1. One side of the mounting component 5 is configured to be fixedly connected to a mounting surface.
[0049] When installing the positioning base station 200, first fix the mounting component 5 to the mounting surface, and then connect the bracket body 1 to the mounting component 5. When the positioning base station 200 needs to be removed, simply separate the bracket body 1 from the mounting component 5; when the user needs to reinstall it later, simply reinstall and fix the bracket body 1 to the mounting component 5. This detachable connection design of the mounting component 5 and the bracket body 1 simplifies the installation process and reduces maintenance time and costs. Furthermore, the bracket body 1 and mounting component 5 can be designed according to different installation environments, allowing for customized installation methods and enabling their application in various environments. They can also be further designed as standard parts that are easy to replace and maintain; the bracket body 1 can mount different receivers 4, and the mounting component 5 can be used in most installation environments. The bracket body 1 can even be designed as a structure that can be detachably connected to different mounting components 5, further improving the installation flexibility of the positioning base station 200.
[0050] In some embodiments, the bracket body 1 includes a second mating portion 14. The second mating portion 14 is located at the bottom of the bracket body 1. The mounting member 5 includes a bottom mounting base 501. The bottom mounting base 501 includes a second mounting portion 51. The second mounting portion 51 and the second mating portion 14 are detachably connected.
[0051] When the mounting surface is the ground, the second mating part 14 at the bottom of the bracket body 1 and the second mounting part 51 of the bottom mounting base 501 are detachably connected. When the user needs to remove the positioning base station 200, for example, to clean or repair it, the bracket body 1 and the bottom mounting base 501 can be separated without damaging the ground due to the installation and removal of the positioning base station 200. This also facilitates the user's repeated installation of the positioning base station 200 without needing to reposition and find a suitable installation location based on the original mounting surface. Understandably, when the mounting surface is the ground, the part of the positioning base station 200 closest to the ground is the bottom, or in other words, the lowest point of the positioning base station 200 in the vertical direction is generally the bottom.
[0052] Please refer to Figures 2 to 4. In some embodiments, the second mating part 14 and the second mounting part 51 are connected by a threaded structure.
[0053] The detachable connection between the second mating part 14 and the second mounting part 51 is a threaded connection. This allows the bracket body 1 and the bottom mounting base 501 to be installed or separated by rotation, making the assembly and disassembly process simple and quick. Furthermore, thread processing is easy to standardize for production, which helps reduce manufacturing costs. In practice, to further reduce the difficulty of assembly and disassembly, the axial direction of the thread can be set to be the same as the vertical direction, and the height direction of the entire bracket body 1 can also be the same as the vertical direction.
[0054] In some embodiments, the second mating part 14 is provided with a connecting stud 141. The second mounting part 51 is provided with a threaded seat 511. The threaded seat 511 is provided with an internal threaded hole 5111. The connecting stud 141 and the internal threaded hole 5111 are threadedly connected.
[0055] During installation, simply thread the connecting stud 141 into the internal threaded hole 5111 on the threaded seat 511. The connecting stud 141 will eventually be located inside the threaded seat 511, thus fixing the bracket body 1 and the bottom mounting base 501 relatively.
[0056] In some embodiments, the second mating portion 14 is provided with a mounting groove 142 along the axial direction of the connecting stud 141. The connecting stud 141 is connected to the bottom wall of the mounting groove 142. Along the axial direction of the connecting stud 141, the projection of the mounting groove 142 covers the projection of the threaded seat 511.
[0057] In this way, the connecting stud 141 is disposed within the mounting groove 142, and at least a portion of the length of the connecting stud 141 is covered by the axial dimension of the bracket body 1, which can reduce the increase in the axial dimension of the bracket body 1 caused by the installation of the connecting stud 141 to a certain extent. At the same time, at least a portion of the threaded seat 511 is located within the mounting groove 142, and the connection between the connecting stud 141 and the threaded seat 511 can withstand a greater axial load, further improving the connection strength between the bottom mounting base 501 and the bracket body 1.
[0058] In some embodiments, along the axial direction of the connecting stud 141, the length of the threaded seat 511 is less than or equal to the depth of the mounting groove 142.
[0059] The entire threaded seat 511 is fully accommodated within the mounting groove 142, which helps reduce the shaking or displacement of the positioning base station 200 under external forces. During threaded connection, the mounting groove 142 can provide a positioning reference for the threaded seat 511, facilitating alignment between the connecting stud 141 and the threaded seat 511.
[0060] In some embodiments, as shown in Figure 2, a plurality of ground spikes 512 are provided on the side of the base mounting base 501 that connects to the ground. The ground spikes 512 extend vertically and are used to fix the base mounting base 501 to the ground. The ground spikes 512 and the base mounting base 501 can also be designed to be detachably connected, so that the user can select ground spikes 512 of appropriate material and shape according to the soil conditions of the installation site.
[0061] In some embodiments, the bracket body 1 includes a first mating portion 15. The first mating portion 15 is located on the side of the bracket body 1. The mounting member 5 includes a side mounting base 502. The side mounting base 502 includes a first mounting portion 52. The first mounting portion 52 and the first mating portion 15 are detachably connected.
[0062] When the mounting surface is a wall, the detachable connection point with mounting component 5 is located on the side of the bracket body 1. This allows for the installation of the positioning base station 200 on the wall without significantly altering the mounting positions of other components on the bracket body 1, thus providing users with more installation options. When it is necessary to remove the positioning base station 200 from the wall, the user simply separates the bracket body 1 from the side mounting base 502, leaving the side mounting base 502 on the wall for future reinstallation and deployment of the positioning base station 200. Understandably, the side of the bracket body 1 refers to the portion of the bracket body 1 that faces the wall.
[0063] In some embodiments, the first mating portion 15 is slidably fitted to the first mounting portion 52, and the sliding of the first mating portion 15 relative to the first mounting portion 52 in a disengagement direction allows the first mating portion 15 to disengage from the first mounting portion 52. When the first mating portion 15 slides to the locking position relative to the first mounting portion 52, it restricts the relative displacement between the first mating portion 15 and the first mounting portion 52.
[0064] When it is necessary to separate the bracket body 1 and the side mounting base 502, the first mating part 15 slides along the disengagement direction, thereby separating the bracket body 1 and the side mounting base 502. During installation, when the first mating part 15 slides to the locking position, it no longer slides relative to the first mounting part 52. Using a sliding method to assemble and disassemble the bracket body 1 and the side mounting base 502 eliminates the need for additional tools, thus improving assembly and disassembly efficiency. Designing the assembly and disassembly structure between the bracket body 1 and the side mounting base 502 based on the principles of sliding and locking helps reduce manufacturing costs and simplifies user operation. Understandably, the sliding direction of the first mating part 15 relative to the first mounting part 52 is the disengagement direction and its opposite. The disengagement direction can be in the same direction as the vertical or at a certain angle relative to the vertical. The disengagement direction should ensure that when the first mating part 15 slides relative to the first mounting part 52, there is no interference between the positioning base station 200 and the wall.
[0065] Referring to Figures 2, 3, and 5, in some embodiments, the first mating portion 15 is provided with a slider 151. The first mounting portion 52 is provided with a groove 521. The groove 521 extends in the opposite direction of the disengagement direction. The slider 151 is slidable within the groove 521. The groove 521 includes an open end 5211. The open end 5211 is configured to allow the slider 151 to slide out of the groove 521. The first mounting portion 52 and / or the bracket body 1 are provided with a limiting structure. The limiting structure is configured to restrict the slider 151 from sliding further in the opposite direction of the disengagement direction after it has slid to the locking position.
[0066] The slider 151 slides into the groove 521 along the open end 5211. After sliding to the locking position, the limiting structure restricts the slider 151 from continuing to slide relative to the groove 521. When the slider 151 slides in the disengagement direction, the limiting structure no longer restricts the slider 151, and the slider 151 can slide out of the groove 521 from the open end 5211. The operation is simple and the connection is stable and reliable.
[0067] In some embodiments, the limiting structure may be a protruding portion or baffle provided on the first mounting portion 52 or the bracket body 1 to directly prevent the slider 151 from continuing to slide. As shown in FIG3, the slider 151 is provided with a limiting protrusion 1511, which is configured to abut against the opening end 5211 of the slide groove 521 to stop the slider 151 from continuing to slide in the opposite direction of the disengagement along the slide groove 521. In this embodiment, the locking position is the position where the limiting protrusion 1511 is located.
[0068] In some embodiments, a material with a high coefficient of friction, such as a rubber washer, can be provided on the inner wall of the slide groove 521. The rubber washer and the opening end 5211 are spaced apart. The location of the rubber washer is the locking position. After the slider 151 and the rubber washer come into contact, under the action of the positioning base station 200's own gravity, the slider 151 is difficult to continue sliding relative to the slide groove 521 unless a greater external force is applied.
[0069] As shown in Figure 5, the limiting structure on the first mounting part 52 and the bracket body 1 is along the extension direction of the slide groove 521. The slide groove 521 also includes a closed end 5212. When one end of the slider 151 abuts against the closed end 5212, the slider 151 can no longer slide along the slide groove 521. At this time, the locking position is the location of the closed end 5212 of the slide groove 521. In this way, the slider 151 slides into the slide groove 521 along the guide groove 522 and the open end 5211. Under the action of the positioning base station 200's own gravity, the slider 151 can quickly reach the locking position and complete the installation.
[0070] Understandably, in the orientation of the embodiment shown in Figure 5, the closed end 5212 is located below the open end 5211. However, as long as the limiting structure can prevent the slider 151 from sliding to the locking position and continuing to slide in the opposite direction of the disengagement direction, the closed end 5212 can also be located above the open end 5211. For example, a stop bar can be provided on the bracket body 1. When the slider 151 slides into the groove 521 and continues to slide upward on the opposite side mounting seat 502 until it reaches the locking position, the stop bar is used to always apply a force to the slider 151 in the opposite direction of the disengagement direction to prevent the positioning base station 200 from disengaging from the groove 521 in the disengagement direction under its own gravity.
[0071] In some embodiments, the first mounting portion 52 is further provided with a guide groove 522. The guide groove 522 communicates with the open end 5211. The slider 151 slides along the guide groove 522 into the slide groove 521 and is slidably connected to the slide groove 521.
[0072] The guide groove 522, which is connected to the open end 5211 of the slide groove 521, can help the user quickly position the slider 151 to a position close to the open end 5211. The bracket body 1 can move along the guide groove 522 to cooperate smoothly with the slide groove 521, further fixing the bracket body 1 and the side mounting seat 502 relatively.
[0073] In some embodiments, the sidewall of the slide 521 is provided with a stop portion 5213. The stop portion 5213 is configured to stop the slider 151 from disengaging from the slide 521 in a direction perpendicular to the bottom wall of the slide 521.
[0074] The stop portion 5213 is designed to restrict the slider 151 to slide only in the disengagement direction and the reverse direction, thereby reducing unnecessary lateral forces that cause wear on the slider 151 and the groove 521, and thus extending the service life of the side mounting base 502 and the first mating part 15. The stop portion 5213 also effectively prevents the slider 151 from falling out of the groove 521, improving the stability of the connection between the bracket body 1 and the side mounting base 502.
[0075] Understandably, as shown in Figures 1 and 2, the bracket body 1 may include a second mating part 14 and a first mating part 15, and the mounting part 5 includes a bottom mounting base 501 and a side mounting base 502. In this way, a positioning base station 200 can be installed on the ground or on a wall, and the user can choose as needed.
[0076] Referring to Figure 6, in some embodiments, the positioning base station 200 further includes a solar panel 2 and a battery 3. The solar panel 2 is disposed on the support body 1. The support body 1 has a hollow cavity 100. The battery 3 is built into the cavity 100. The battery 3 and the solar panel 2 are connected to receive the electrical energy output by the solar panel 2.
[0077] By placing the battery 3 within the cavity 100 of the bracket body 1, the internal space of the bracket body 1 is utilized efficiently. This saves the additional space required for the battery 3, which would have been otherwise installed on the back side of the solar panel 2. It also helps reduce the impact of the external environment on the battery 3, thus extending its lifespan. Furthermore, as the bracket body is the component connected to the mounting surface, the battery 3's weight within the cavity 100 of the bracket body 1 helps to bring the center of gravity of the entire positioning base station 200 closer to the connection point between the bracket body 1 and the mounting surface, thereby improving the stability of the positioning base station 200 installation.
[0078] Furthermore, those skilled in the art should recognize that the above embodiments are merely illustrative of this application and are not intended to limit this application. Any appropriate changes and variations made to the above embodiments within the essential spirit and scope of this application fall within the scope of this application's disclosure.
Claims
1. A positioning base station, characterized by include: Support body; A receiver is mounted on the main body of the bracket, and the receiver is used to receive signals; and Mounting component, wherein the mounting component and the bracket body are detachably connected, and one side of the mounting component is configured to be fixedly connected to the mounting surface; The bracket body includes a first mating part located on the side of the bracket body. The mounting component includes a side mounting seat, which includes a first mounting part. The first mounting part and the first mating part are detachably connected.
2. The positioning base station according to claim 1, characterized in that, The bracket body includes a second mating part located at the bottom of the bracket body; the mounting component includes a bottom mounting base, the bottom mounting base includes a second mounting part, and the second mounting part and the second mating part are detachably connected.
3. The positioning base station according to claim 2, characterized in that, The second mating part and the second mounting part are connected by a threaded structure.
4. The positioning base station according to claim 3, characterized in that, The second mating part is provided with a connecting stud, the second mounting part is provided with a threaded seat, the threaded seat is provided with an internal threaded hole, and the connecting stud and the internal threaded hole are threadedly connected.
5. The positioning base station according to claim 4, characterized in that, The second mating part is provided with a mounting groove along the axial direction of the connecting stud, and the connecting stud is connected to the bottom wall of the mounting groove; Along the axial direction of the connecting stud, the projection of the mounting groove overlaps the projection of the threaded seat.
6. The positioning base station according to claim 5, characterized in that Along the axial direction of the connecting stud, the length of the threaded seat is less than or equal to the depth of the mounting groove.
7. The positioning base station of claim 1, wherein, The first mating part is slidably mated to the first mounting part, and the first mating part can be detached from the first mounting part by sliding relative to the first mounting part in a disengagement direction; When the first mating part slides to the locking position relative to the first mounting part, it restricts the relative displacement between the first mating part and the first mounting part.
8. The positioning base station according to claim 7, characterized in that, The first mating part is provided with a slider, and the first mounting part is provided with a sliding groove. The sliding groove extends in the opposite direction to the disengagement direction, and the slider can slide within the sliding groove. The sliding groove includes an open end, which is configured to allow the slider to slide out of the sliding groove. The first mounting part and / or the bracket body are provided with a limiting structure, which is configured to restrict the slider from sliding to the locking position and then continuing to slide in the opposite direction of the disengagement direction.
9. The positioning base station according to claim 8, characterized in that, The first mounting part is also provided with a guide groove, and the guide groove is connected to the opening end; The slider slides into the groove along the guide groove and is slidably connected to the groove.
10. The positioning base station according to claim 8, characterized in that, The side wall of the slide is provided with a stop, which is configured to prevent the slider from disengaging from the slide in a direction perpendicular to the bottom wall of the slide.
11. The positioning base station of claim 1, wherein, The positioning base station also includes a solar panel and a battery. The solar panel is disposed on the support body. The support body has a hollow cavity, and the battery is built into the cavity. The battery and the solar panel are connected to receive the electrical energy output by the solar panel.