Multi-azimuth control of mobile communication devices
By designing a multi-directional control plate-type communication device, the sliding plate and plug-in plate structure enables multiple insertions and removals of wires, solving the problem of cumbersome wire installation in plate-type communication base stations and improving operational efficiency and wire stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- BEIJING XINRUNTONG TECH CO LTD
- Filing Date
- 2026-03-18
- Publication Date
- 2026-07-31
AI Technical Summary
The installation and removal of wires in existing panel-type communication base stations is cumbersome, requiring staff to insert and remove wires one by one, resulting in low operational efficiency.
A multi-directional control mobile communication device was designed, which adopts a rectangular mounting slot, a right-angled triangular sliding plate, an elastic conductive plate and a plug-in plate structure. Through the cooperation of the sliding plate and the plug-in plate, multiple wires can be inserted and removed at one time.
It simplifies the installation and removal process of wires, improves operational efficiency, ensures the stability of wires for long-term outdoor use, and reduces the impact of impurities on the conductivity of wires.
Smart Images

Figure CN122496727A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of communication base station technology, specifically to a multi-directional control mobile communication device. Background Technology
[0002] Mobile communication devices are devices that can communicate while on the move. Smartphones, personal digital assistants, mobile phones, and portable game consoles are all examples of mobile communication devices. They allow users to make voice calls, transmit data, and browse the web anytime, anywhere.
[0003] The board-type communication base station is crucial for mobile communication equipment. It is a type of base station used by mobile communication equipment and belongs to the access network equipment. In the mobile communication network, it undertakes the work of transmitting, receiving and processing wireless signals. It is mainly composed of BBU, RRU, feeder and antenna. Mobile communication equipment and board-type communication base stations work closely together to build the mobile communication network.
[0004] Existing panel-type communication base stations are mostly installed on outdoor communication towers. When a panel-type communication base station is installed on top of a communication tower, a large number of wires are connected to its lower end. This is because these wires correspond to different functional links required for the operation of the base station, which need to simultaneously realize multiple functions such as "power supply, data transmission, signal interaction, and equipment monitoring". As a result, when installing a panel-type communication tower, workers need to climb the communication tower and insert each wire into the lower end of the panel-type communication base station, making the operation process quite cumbersome. Furthermore, during the maintenance of the panel-type communication base station, the wires need to be removed one by one from the lower end of the base station, which is also a cumbersome process.
[0005] In summary, to solve the technical problems raised in this paper, this invention proposes a multi-directional control mobile communication device. Summary of the Invention
[0006] To address the aforementioned problems—namely, the cumbersome process of installing panel-type communication towers by climbing up to insert wires one by one into the lower part of the panel-type communication base station, and the tedious process of removing wires one by one from the lower part of the panel-type communication base station during maintenance—this invention proposes a multi-directional control mobile communication device. This device includes a panel-type communication base station, which comprises a base station body. The lower part of the base station body is provided with a connector, which includes: The mounting slot is rectangular and located at the bottom of the base station body; There are two sliding plates, each with a right-angled triangular cross-section, and their bases are slidably connected to the inner wall of the mounting groove by springs; there is a gap between the two sliding plates, and the two right-angled sides of the sliding plates correspond to each other; The conductive plate is an elastic copper sheet, and multiple conductive plates are provided at one end of each of the two sliding plates. The conductive plate has an "eight" shaped structure. The plug-in plate is detachably connected inside the mounting slot, and a trapezoidal groove is provided on the plug-in plate. When the inclined surface of the trapezoidal groove is inserted into the mounting slot, the inclined surface of the trapezoidal groove presses against the inclined surface of the sliding plate; the lower end of the plug-in plate is provided with a plug interface.
[0007] As a preferred embodiment of this application, the plug plate is provided with two rollers, which are located inside the trapezoidal groove, and when the plug plate is inserted into the mounting groove, the rollers contact the inner side of the sliding plate.
[0008] As a preferred embodiment of this application, an elastic plate is provided at both ends of the conductive plate. The elastic plate is located at the end of the conductive plate away from the sliding plate, and the elastic plates at both ends of the conductive plate are in contact with each other in the middle of the conductive plate.
[0009] As a preferred embodiment of this application, a through groove is formed on the surface of the elastic plate on one of the sliding plates, and a through groove is formed on the surface of the elastic plate on the other sliding plate.
[0010] As a preferred embodiment of this application, an arc-shaped extrusion plate is provided on the inner side of the conductive plate on one of the sliding plates. The arc-shaped extrusion plate is located on the inner side of the conductive plate corresponding to the through groove one; and when the elastic plate one and the conductive plate move, the arc-shaped extrusion plate enters the through groove one.
[0011] As a preferred embodiment of this application, the second through groove is larger than the first through groove, and in the initial state, the first through groove is directly opposite the middle of the second through groove.
[0012] As a preferred embodiment of this application, an elastic plate 2 is provided on the inner side of the through groove 2. In the initial state, the elastic plate 2 seals the inner side of the through groove 2. The material of the elastic plate 2 is the same as that of the elastic plate 1.
[0013] As a preferred embodiment of this application, a third through-slot is formed on the conductive plate corresponding to the second through-slot, and the size of the third through-slot is larger than that of the second through-slot.
[0014] The beneficial effects of this invention are as follows: When installing a board-type communication base station, the staff only needs to insert multiple wires into the connectors at the bottom of the conductive plate according to their different connectors. After all the wires are inserted into the connectors, the staff only needs to insert the conductive plate into the mounting slot. After the conductive plate is inserted into the mounting slot, the staff can use tools to connect the locking bolts on the side of the connector to the bottom of the base station body. In this process, multiple wires can be installed in one step without having to disassemble the corresponding connectors of multiple wires one by one. At the same time, part of the wire core enters the through groove 2, and the wire core is limited by the arc-shaped extrusion plate, making it difficult for the wire core to detach from the base plate; thus improving the stability of the wire core during long-term outdoor use, and eliminating the need for workers to use locking bolts to tighten the wire core separately, thereby improving installation efficiency. Attached Figure Description
[0015] Figure 1 This is a perspective view of the base station body in this invention; Figure 2 yes Figure 1 Mid-view (bottom view); Figure 3 This is a partial cross-sectional view of the base station body and the plug-in board in this invention; Figure 4 This is a perspective view of the base station body in this invention; Figure 5 This is a structural view of the through groove and the arc-shaped extrusion plate in this invention; Figure 6 This is a structural view of through slot two and through slot three in this invention; Figure 7 This is a cross-sectional view of through groove one, through groove two, and through groove three in this invention; Figure 8 yes Figure 7 A partial structural view within; In the diagram: Base station body 1, plug terminal 2, mounting slot 21, sliding plate 22, conductive plate 23, plug plate 24, trapezoidal slot 241, plug interface 242, roller 243, elastic plate 1 25, through slot 1 251, through slot 2 252, arc-shaped extrusion plate 26, elastic plate 2 27, through slot 3 28. Detailed Implementation
[0016] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0017] Example 1: like Figures 1 to 8 As shown; a multi-directional control mobile communication device; the communication device includes a board-type communication base station, the board-type communication base station includes a base station body 1; a plug-in terminal 2 is provided at the lower end of the base station body 1, the plug-in terminal 2 includes: The mounting slot 21 is rectangular and is located at the lower end of the base station body 1; There are two sliding plates 22, each with a right-angled triangular cross-section, and their surfaces are slidably connected to the inner wall of the mounting groove 21 by springs; there is a gap between the two sliding plates 22, and the two right-angled sides of the sliding plates 22 correspond to each other; The conductive plate 23 is an elastic copper sheet. Multiple conductive plates 23 are provided at one end of each of the two sliding plates 22. The conductive plate 23 has an "eight" shaped structure. The plug-in plate 24 is detachably connected to the inside of the mounting groove 21, and a trapezoidal groove 241 is provided on the plug-in plate 24. When the inclined surface of the trapezoidal groove 241 is inserted into the inside of the mounting groove 21, the inclined surface of the trapezoidal groove 241 presses against the inclined surface of the sliding plate 22; the lower end of the plug-in plate 24 is provided with a plug-in interface 242. The plug plate 24 is provided with two rollers 243, which are located inside the trapezoidal groove 241. When the plug plate 24 is inserted into the mounting groove 21, the rollers 243 contact the inner side of the sliding plate 22. Both ends of the conductive plate 23 are provided with elastic plates 25. The elastic plates 25 are located at the end of the conductive plate 23 away from the sliding plate 22, and the elastic plates 25 at both ends of the conductive plate 23 are in contact with each other in the middle of the conductive plate 23. The specific workflow is as follows; When installing a panel-type communication base station, the staff only needs to insert multiple wires into the different plug-in interfaces 242 at the bottom of the plug-in plate 24. After all the wires are inserted into the plug-in interfaces 242, the staff only needs to insert the plug-in plate 24 into the mounting slot 21. After the plug-in plate 24 is inserted into the mounting slot 21, the staff can use a tool to connect the locking bolts on the side of the plug-in plate to the bottom of the base station body 1. In this process, multiple wires can be installed in one step without having to disassemble the corresponding connection holes of multiple wires one by one. Furthermore, during the process of inserting the aforementioned plug-in plate 24 into the mounting groove 21, a trapezoidal groove 241 is provided on the plug-in plate 24, and the inner sidewall of the trapezoidal groove 241 will contact the inclined surface of the sliding plate 22 inside the mounting groove 21; during the process, the two rollers 243 at the inner opening of the trapezoidal groove 241 contact the inclined surface of the sliding plate 22. When the plug-in plate 24, carrying the wire core above it, enters the mounting groove 21, the wire core enters between the sliding plates 22 and between the conductive plates 23 between the two sliding plates 22; as the plug-in plate 24 enters the mounting groove 21, the wire core enters between the conductive plates 23 between the two sliding plates 22, and at the same time, the rollers 243 on both sides of the trapezoidal groove 241 on the plug-in plate 24 are squeezed by the inclined surface on the outer side of the sliding plate 22, causing the sliding plate 22 to move towards the center inside the mounting groove 21. During the process, the multiple conductive plates 23 provided on the two sliding plates 22 move towards the center synchronously. During the aforementioned movement, the conductive plate 23 between the two sliding plates 22 continues to move towards the center until the end furthest from the sliding plate 22 contacts the surface of the wire core. Then, as the plug plate 24 moves inward, the two sliding plates 22 move towards the center simultaneously, and the conductive plate 23 moves towards the center in sync. At this point, the conductive plate 23 between the two sliding plates 22 is compressed. Because the conductive plate 23 is made of elastic copper sheet, after the end furthest from the sliding plate 22 is compressed, the two ends of the conductive plate 23 move away from each other. During this process, the two ends of the conductive plate 23 move away from each other on the surface of the wire core, thereby scraping the surface of the wire core and reducing... Impurities (such as metal oxides) on the surface of the wire core; thereby avoiding the impact of impurities on the wire core's conductor efficiency (especially suitable for wire cores that have been used on the base station body 1 for a long time, and are reinserted into the base station body 1 after maintenance, resulting in a large amount of oxides on the surface of the wire core after long-term use). When the two sliding plates 22 are squeezed by the trapezoidal groove 241 on the inner side of the plug plate 24 until the plug plate 24 is completely inserted into the mounting groove 21, the two ends of the conductive plate 23 unfold, and the inner side of the conductive plate 23 contacts and squeezes the wire core, so that a conductive path is formed between the conductive plate 23 and the wire core; thereby enabling the wire core to conduct electricity. Based on the above, elastic plates 25 are fixed at both ends of the conductive plate 23. The material of the elastic plates 25 is the same as that of the conductive plate 23. The elastic plates 25 at both ends of each conductive plate 23 are located between the two ends of the conductive plate 23, and the ends of the elastic plates 25 that are close to each other are in contact. This ensures that when the conductive plate 23 contacts the wire core, the elastic plates 25 simultaneously contact the wire core. During the process of the two ends of the conductive plate 23 squeezing the wire core, as the two ends of the conductive plate move away from each other, the elastic plates 25 are always in contact with the surface of the wire core. During this process, the two elastic plates 25 at both ends of the conductive plate 23 scrape the impurities on the surface of the wire core between the two ends of the conductive plate 23, preventing the wire core between the two ends of the conductive plate 23 from not being thoroughly cleaned. As the two conductive plates 23 move away from each other, the angle between the ends of the elastic plates 25 and the conductive plate 23 gradually decreases until the conductive plate 23 finishes moving, at which point the end of the elastic plate 25 away from the sliding plate 22 contacts the wire core, achieving conductivity.
[0018] Example 2: like Figures 2 to 8 As shown; through grooves 251 are formed on the surface of the elastic plate 25 on one of the sliding plates 22, and through grooves 252 are formed on the surface of the elastic plate 25 on the other sliding plate 22. The specific workflow is as follows; Based on the above embodiment one, a through groove 251 is made on the elastic plate 25 of one of the sliding plates 22, and a through groove 252 is made on the surface of the elastic plate 25 of the other sliding plate 22. This allows the elastic plates 25 at both ends of the conductive plates 23 on the two sliding plates 22 to press against the wire core, so that the through groove 251 on the surface of the elastic plate 25 of one sliding plate 22 and the through groove 252 on the surface of the elastic plate 25 of the other sliding plate 22 simultaneously press against the wire core. When the two sliding plates 22... When the two sliding plates 22 move closer to each other, the elastic plates 25 corresponding to them move away from each other synchronously. During this process, the through groove 251 and through groove 252 move away from each other synchronously on the surface of the wire core, which increases the friction of the elastic plates 25 on the two sliding plates 22. This improves the removal effect of impurities on the surface of the wire core, thus avoiding the problem of poor wire efficiency caused by impurities on the surface of the wire core when it is reinserted into the base station body 1 after maintenance.
[0019] Example 3: like Figures 1 to 8 As shown; an arc-shaped extrusion plate 26 is provided on the inner side of the conductive plate 23 on one of the sliding plates 22. The arc-shaped extrusion plate 26 is located on the inner side of the conductive plate 23 corresponding to the through groove 251; and when the elastic plate 25 and the conductive plate 23 move, the arc-shaped extrusion plate 26 enters the through groove 251. The size of the second through slot 252 is larger than that of the first through slot 251. In the initial state, the first through slot 251 is directly opposite the middle of the second through slot 252. An elastic plate 27 is provided on the inner side of the through groove 252. In the initial state, the elastic plate 27 seals the inner side of the through groove 252. The material of the elastic plate 27 is the same as that of the elastic plate 25. A third through slot 28 is formed on the conductive plate 23 corresponding to the second through slot 252. The size of the third through slot 28 is larger than that of the second through slot 252. The specific workflow is as follows; Based on the above embodiments one and two, an arc-shaped extrusion plate 26 is provided on the inner side of one of the sliding conductive plates 23, and the arc-shaped extrusion plate 26 is located on the inner side of the conductive plate 23 corresponding to the through groove 251; and the arc-shaped extrusion plate 26 corresponds to the through groove 251; so that when the two sliding plates 22 approach each other, the two ends of the conductive plate 23 move away from each other. During this process, the elastic plates 25 located at both ends of the same conductive plate 23 move away from each other, so that the included angle between the elastic plates 25 and the conductive plate 23 gradually decreases, and the gap between the elastic plates 25 and the sliding plate 22 gradually decreases; so that the inner side of the conductive plate 23... The curved extrusion plate 26 on one side enters the through groove 251 on the elastic plate 25. As the sliding plate 22 continues to approach, the curved extrusion plate 26 gradually extends out of the through groove 251, extruding the wire core between the two sliding plates 22. Furthermore, because the elastic plate 25 on the other sliding plate 22 has a through groove 252 that corresponds to the through groove 251 and is larger than the through groove 251, the curved extrusion plate 26, after extending out of the through groove 251, will extrude the wire core and simultaneously press the wire core... The wire core is pressed into the second through slot 252, and the arc-shaped pressing plate 26 simultaneously enters the second through slot 252; until the sliding plate 22 makes contact, the plug-in plate 24 is completely inserted into the interior of the mounting slot 21. At this time, the wire core enters the second through slot 252, and through the pressing of the arc-shaped pressing plate 26, a portion of the wire core passes through the second through slot 252. At the same time, the arc-shaped pressing plate 26 passes through the first through slot 251 and the second through slot 252 respectively, so that the arc-shaped pressing plate 26 connects the elastic plate 25 with the first through slot 251 and the elastic plate 25 with the second through slot 252 into a whole, so that when the sliding plate 22 is close to each other... During the compression process, the curved extrusion plate 26 limits the movement of the two through slots 251 and 252, preventing misalignment of the two elastic plates 25 and the two conductive plates 23 between the two sliding plates 22, thus improving the stability of the wire core compression. Simultaneously, a portion of the wire core enters the through slot 252, and the curved extrusion plate 26 further limits its movement, making it less likely for the wire core to detach from the substrate. This improves the stability of the wire core during long-term outdoor use and eliminates the need for workers to individually tighten the wire core with locking bolts, improving installation efficiency. Meanwhile, an elastic plate 27 is provided on the side of the second through slot 252 away from the first through slot 251. The material of the elastic plate 27 is the same as that of the first elastic plate 25. Based on the above, when the arc-shaped extrusion plate 26 pushes the wire core into the second through slot 252, the arc-shaped extrusion plate 26 will push the wire core to press against the elastic plate 27. The elastic plate 27 will rotate after being pressed. The third through slot 28 is opened on the conductor plate corresponding to the second through slot 252. This satisfies the condition that the elastic plate 27 rotates when the angle between the first elastic plate 25 and the conductive plate 23 decreases. This allows the elastic plate 27 to pass through the third through slot 28 and satisfies the condition that the elastic plate 27 rotates. When the base station body 1 needs to be inspected, and the plug plate 24 needs to be removed from the mounting slot 21, the staff uses tools to remove the locking bolts on the side of the plug plate 24, and then removes the plug plate 24. During the process, the springs between the two sliding plates 22 and the inner wall of the mounting slot 21 cause the sliding plates 22 to move away from each other and reset. At the same time, the conductive plates 23 between the two sliding plates 22 move away from each other, so that the corresponding conductive plates 23 and elastic plates 1 25 on the two sliding plates 22 no longer squeeze the wire core in the middle. This allows the arc-shaped extrusion plate 26 to gradually detach from the through slot 2 252 and through slot 1 251. During the process, the elastic plate 27 is gradually no longer squeezed by the arc-shaped extrusion plate 26. The elastic plate 27 elastically rotates and resets, allowing the elastic plate 27 to push the wire core in through slot 2 252 out of through slot 2 252. This makes it easier for the staff to remove the wire core from the two sliding plates 22, thereby improving the disassembly efficiency.
[0020] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A multi-directional control mobile communication device; the communication device includes a board-type communication base station, the board-type communication base station including a base station body (1); characterized in that, The base station body (1) has a plug terminal (2) at its lower end, and the plug terminal (2) includes: The mounting slot (21) is rectangular and is located at the lower end of the base station body (1); There are two sliding plates (22), each with a right-angled triangle cross-section, and its base is slidably connected to the inner wall of the mounting groove (21) by a spring; there is a gap between the two sliding plates (22), and the two right-angled sides of the sliding plates (22) correspond to each other; The conductive plate (23) is an elastic copper sheet, and multiple conductive plates (23) are provided at one end of each of the two sliding plates (22). The conductive plate (23) has an "eight" shaped structure. The plug-in plate (24) is detachably connected to the inside of the mounting groove (21), and a trapezoidal groove (241) is provided on the plug-in plate (24). When the inclined surface of the trapezoidal groove (241) is inserted into the inside of the mounting groove (21), the inclined surface of the trapezoidal groove (241) presses against the inclined surface of the sliding plate (22); the lower end of the plug-in plate (24) is provided with a plug-in interface (242).
2. The multi-directional control mobile communication device as described in claim 1, characterized in that: The plug plate (24) is provided with two rollers (243), which are located inside the trapezoidal groove (241). When the plug plate (24) is inserted into the mounting groove (21), the rollers (243) contact the inside of the sliding plate (22).
3. A multi-directional control mobile communication device as described in claim 2, characterized in that: Both ends of the conductive plate (23) are provided with elastic plates (25). The elastic plates (25) are located at the end of the conductive plate (23) away from the sliding plate (22), and the elastic plates (25) at both ends of the conductive plate (23) are in contact with each other in the middle of the conductive plate (23).
4. A multi-directional control mobile communication device as described in claim 3, characterized in that: One of the sliding plates (22) has a through groove (251) on the surface of the elastic plate (25), and the other sliding plate (22) has a through groove (252) on the surface of the elastic plate (25).
5. A multi-directional control mobile communication device as described in claim 4, characterized in that: An arc-shaped extrusion plate (26) is provided on the inner side of the conductive plate (23) on one of the sliding plates (22). The arc-shaped extrusion plate (26) is located on the inner side of the conductive plate (23) corresponding to the through groove (251). When the elastic plate (25) and the conductive plate (23) move, the arc-shaped extrusion plate (26) enters the through groove (251).
6. A multi-directional control mobile communication device as described in claim 5, characterized in that: The size of the second through slot (252) is larger than that of the first through slot (251). In the initial state, the first through slot (251) is directly opposite the middle of the second through slot (252).
7. A multi-directional control mobile communication device as described in claim 6, characterized in that: An elastic plate 2 (27) is provided on the inner side of the through groove 2 (252). In the initial state, the elastic plate 2 (27) seals the inner side of the through groove 2 (252). The material of the elastic plate 2 (27) is the same as that of the elastic plate 1 (25).
8. A multi-directional control mobile communication device as described in claim 7, characterized in that: A through slot three (28) is opened on the conductive plate (23) corresponding to through slot two (252), and the size of through slot three (28) is larger than that of through slot two (252).