4G network router with telescopic modular signal rod
By using a modular, extendable 4G network router with a telescopic signal pole, the problem of signal coverage blind spots caused by the fixed length of traditional signal poles is solved, enabling flexible signal adjustment and stable coverage, and extending the service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI WEIRUI ELECTRONIC TECH CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-04-17
AI Technical Summary
The fixed length design of traditional 4G network router signal poles leads to signal coverage blind spots or insufficient signal strength in complex and ever-changing application environments.
The 4G network router adopts a modular, retractable signal pole. The retractable signal pole is adjusted through a plug-in and spring mechanism to ensure stable fixation at different height positions.
It enables flexible adjustment of signal poles in different scenarios, improving the stability of signal coverage and the service life of equipment.
Smart Images

Figure CN224139094U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of router technology, and in particular to a 4G network router with a modular retractable signal pole. Background Technology
[0002] With the rapid development of mobile internet technology, 4G networks have fully penetrated all aspects of social life, and users' demand for high-speed, stable and widely covered networks has exploded.
[0003] Traditional 4G network router signal poles typically use a fixed length design, and their signal radiation range is limited by the pre-set pole height. In complex and ever-changing application environments, fixed-length signal poles cannot flexibly adjust the signal transmission height according to the actual scenario, resulting in signal coverage blind spots or insufficient signal strength in some areas. Summary of the Invention
[0004] The technical problem to be solved by this utility model is that the existing technology has the disadvantage of lacking a specially designed scalable modular architecture. To address this, we propose a scalable modular signal pole 4G network router.
[0005] To achieve the above objectives, this application adopts the following technical solution: a modular telescopic 4G network router, comprising a router body, with connecting posts fixedly connected to both sides of the router body, a retractable rod provided on the side of the connecting posts away from the router body, an inner groove provided inside the retractable rod, arc blocks fixedly connected to both ends of the inner groove, an adjusting post rotatably connected inside the inner groove, a signal rod body provided inside the adjusting post, adjusting grooves provided at both ends of the adjusting post, a push block slidably connected inside the adjusting groove, an insert rod fixedly connected to the side of the push block away from the arc block, and insertion holes provided at both ends of the signal rod body.
[0006] Preferably, the size of the insertion rod is adapted to the size of the insertion hole, and the surface of the insertion rod is inserted into the interior of the insertion hole.
[0007] Preferably, a storage spring is fixedly connected to the side of the push block near the insertion rod, and the side of the storage spring away from the push block is fixedly connected to the inside of the adjustment groove.
[0008] Preferably, sliding grooves are provided on both sides of the adjustment groove, and sliders are fixedly connected to both sides of the push block, with the surface of the sliders slidingly connected to the inside of the sliding grooves.
[0009] Preferably, both ends of the adjusting column are provided with shrinkage grooves, both ends of the shrinkage rod are provided with insertion blocks, an insertion rod is slidably connected inside the shrinkage groove, a return spring is fixedly connected to the side of the insertion rod near the shrinkage groove, and the side of the return spring away from the insertion rod is fixedly connected to the inside of the shrinkage groove.
[0010] Preferably, sliding grooves are provided on both sides of the shrinkage groove, and sliding blocks are fixedly connected to both sides of the insertion rod, with the surface of the sliding block slidingly connected to the interior of the sliding groove.
[0011] Preferably, the inner wall of the inner groove is provided with two annular grooves, and two annular blocks are fixedly connected to the outer diameter surface of the adjusting column, with the surface of the annular blocks being slidably connected to the interior of the adjusting groove.
[0012] The technical effects and advantages of this utility model are as follows:
[0013] In this invention, the operator pulls the signal rod body outward to adjust it to the appropriate position, and rotates the adjusting column to move the push block and the insertion rod. While rotating, the push block gradually comes into contact with the arc block. When the push block moves to the thicker end of the arc block, the arc block pushes the push block to insert the insertion rod into the insertion hole to fix the signal rod body, thereby achieving the telescopic function. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the main structure of this utility model;
[0015] Figure 2 This is a partial cross-sectional view of the present invention.
[0016] Figure 3 This is a schematic diagram of the internal structure of the inner groove of this utility model;
[0017] Figure 4 This is a schematic diagram of the internal structure of the adjusting groove of this utility model;
[0018] Figure 5 This is a partial cross-sectional view of the retractable rod of this utility model.
[0019] Legend: 1. Router body; 2. Connecting post; 3. Retractable rod; 4. Inner groove; 5. Arc block; 6. Adjusting post; 7. Signal pole body; 8. Push block; 9. Insert rod; 10. Socket; 11. Storage spring; 12. Sliding groove; 13. Sliding block; 14. Retractable groove; 15. Insertion block; 16. Insertion rod; 17. Return spring; 18. Sliding groove; 19. Sliding block; 20. Ring groove; 21. Ring block; 22. Adjusting groove. Detailed Implementation
[0020] The present invention will now be described in further detail with reference to the accompanying drawings and preferred embodiments. These drawings are simplified schematic diagrams, which only illustrate the basic structure of the present invention in a schematic manner, and therefore only show the components related to the present invention.
[0021] Reference Figures 1-5 As shown, this utility model provides a technical solution: a modular telescopic 4G network router, including a router body 1. Connecting posts 2 are fixedly connected to both sides of the router body 1. A retractable rod 3 is provided on the side of the connecting posts 2 away from the router body 1. An inner groove 4 is provided inside the retractable rod 3. Arc blocks 5 are fixedly connected to both ends of the inner groove 4. An adjusting post 6 is rotatably connected inside the inner groove 4. A signal rod body 7 is provided inside the adjusting post 6. Adjusting slots 22 are provided at both ends of the adjusting post 6. A sliding connection is provided inside the adjusting slots 22. Push block 8, with a plug rod 9 fixedly connected to the side of push block 8 away from arc block 5. Both ends of signal rod body 7 are provided with plug holes 10. The operator pulls the signal rod body 7 outward to adjust the signal rod body 7 to the appropriate position, and rotates the adjusting column 6 to drive push block 8 and plug rod 9 to move. While rotating, push block 8 gradually comes into contact with arc block 5. When push block 8 moves to the thicker end of arc block 5, arc block 5 pushes push block 8 to drive plug rod 9 to insert into plug hole 10 to fix signal rod body 7, thereby achieving the telescopic function.
[0022] Reference Figure 1 and Figure 5 As shown in this embodiment, the size of the insertion rod 9 is adapted to the size of the insertion hole 10, and the surface of the insertion rod 9 is inserted into the interior of the insertion hole 10. By adapting the size of the insertion rod 9 to the size of the insertion hole 10, the insertion rod 9 can be stably inserted into the insertion hole 10 without shaking or falling out, thus further improving the stability of the equipment.
[0023] Reference Figure 4 As shown in this embodiment: a storage spring 11 is fixedly connected to the side of the push block 8 near the insertion rod 9, and the side of the storage spring 11 away from the push block 8 is fixedly connected to the inside of the adjustment groove 22. When the operator pushes the push block 8 with the arc block 5, the push block 8 compresses the storage spring 11 to store force, and drives the insertion rod 9 to be inserted into the insertion hole 10. When the operator cancels the contact between the push block 8 and the insertion rod 9, under the action of the rebound force of the storage spring 11, the push block 8 will automatically move away from the arc block 5 and drive the insertion rod 9 to disengage from the insertion hole 10, thereby achieving the function of automatic reset.
[0024] Reference Figure 4As shown in this embodiment: sliding grooves 12 are provided on both sides of the inner side of the adjusting groove 22, and sliders 13 are fixedly connected to both sides of the push block 8. The surface of the slider 13 is slidably connected to the inside of the sliding groove 12. When the operator moves the push block 8, the push block 8 drives the slider 13 to slide inside the sliding groove 12. Through the above settings, not only is the stability of the push block 8 improved during the movement, but also the phenomenon of the push block 8 deviating or shaking during the movement is avoided, ensuring that the push block 8 can move smoothly along the trajectory of the sliding groove 12.
[0025] Reference Figure 5 As shown in this embodiment: both ends of the adjusting column 6 are provided with shrinkage grooves 14, and both ends of the shrinkage rod 3 are provided with insertion blocks 15. An insertion rod 16 is slidably connected inside the shrinkage groove 14. A return spring 17 is fixedly connected to the side of the insertion rod 16 near the shrinkage groove 14. The side of the return spring 17 away from the insertion rod 16 is fixedly connected to the inside of the shrinkage groove 14. Through the setting of the positions of the shrinkage groove 14 and the insertion block 15, when the operator fully inserts the insertion rod 9 into the insertion hole 10, the shrinkage grooves 14 and the insertion blocks 15 at both ends of the adjusting column 6 are parallel, and under the action of the return spring 17, the insertion rod 16 is inserted into the inside of the insertion block 15, thereby fixing the adjusting column 6 so that it does not rotate.
[0026] Reference Figure 5 As shown in this embodiment: sliding grooves 18 are provided on both sides of the shrinkage groove 14, and sliding blocks 19 are fixedly connected to both sides of the insertion rod 16. The surface of the sliding block 19 is slidably connected to the inside of the sliding groove 18. When the operator moves the insertion rod 16, the insertion rod 16 drives the sliding block 19 to slide inside the sliding groove 18. Through the above settings, not only is the stability of the insertion rod 16 further improved during the movement, but also the jamming or deviation from the predetermined path that may occur during the movement of the insertion rod 16 is avoided, ensuring that the insertion rod 16 can move smoothly and accurately along the trajectory of the sliding groove 18.
[0027] Reference Figure 3 As shown in this embodiment: the inner wall of the inner groove 4 is provided with two annular grooves 20, and two annular blocks 21 are fixedly connected to the outer diameter surface of the adjusting column 6. The surface of the annular blocks 21 is slidably connected to the inside of the adjusting groove 22. When the operator rotates the adjusting column 6, the adjusting column 6 drives the annular blocks 21 to slide inside the adjusting groove 22. Through the above setting, the stability of the adjusting column 6 during rotation can be ensured, avoiding signal instability caused by shaking. At the same time, the sliding connection design between the annular blocks 21 and the adjusting groove 22 also makes the adjusting column 6 rotate more smoothly, reduces frictional resistance, and extends the service life of the equipment.
[0028] Working principle: The operator pulls the signal rod body 7 outward from the retractable rod 3 to adjust it to the appropriate position. Rotating the adjusting column 6 moves the push block 8 and the insertion rod 9. During rotation, the push block 8 gradually contacts the arc block 5. When the push block 8 moves to the thicker end of the arc block 5, the arc block 5 pushes the push block 8, causing the insertion rod 9 to insert into the insertion hole 10 and fix the signal rod body 7. This achieves the telescopic function. The matching size of the insertion rod 9 with the insertion hole 10 ensures stable insertion without shaking or falling out, further improving the stability of the equipment. When the operator pushes the push block 8 with the arc block 5, the push block 8 compresses the storage spring 11 to store energy, causing the insertion rod 9 to insert into the insertion hole 10. When the operator cancels the contact between the push block 8 and the insertion rod 9, the push block 8 automatically moves away from the arc block 5 under the action of the rebound force of the storage spring 11, causing the insertion rod 9 to disengage from the insertion hole 10, thus achieving automatic reset. When the operator moves the push block 8, the push block 8 causes the slider 13 to slide inside the slide groove 12. Through the above settings, not only is the stability of the push block 8 improved during the movement, but also the risk of the push block 8 slipping during the movement is prevented. To prevent deviation or wobbling, the push block 8 is designed to move smoothly along the track of the slide groove 12. Through the positioning of the contraction groove 14 and the insertion block 15, when the operator fully inserts the insertion rod 9 into the insertion hole 10, the contraction grooves 14 at both ends of the adjusting column 6 are parallel to the insertion block 15. Under the return force of the return spring 17, the insertion rod 16 is inserted into the insertion block 15, thus fixing the adjusting column 6 and preventing it from rotating. When the operator moves the insertion rod 16, the insertion rod 16 drives the sliding block 19 to slide within the slide groove 18. This design further improves the stability of the insertion rod 16 during movement. The stability during the process also avoids the insertion rod 16 from getting stuck or deviating from the predetermined path during movement, ensuring that the insertion rod 16 can move smoothly and accurately along the trajectory of the sliding groove 18. When the operator rotates the adjusting column 6, the adjusting column 6 drives the ring block 21 to slide inside the adjusting groove 22. Through the above settings, the stability of the adjusting column 6 during rotation can be ensured, avoiding signal instability caused by shaking. At the same time, the sliding connection design between the ring block 21 and the adjusting groove 22 makes the adjusting column 6 rotate more smoothly, reduces frictional resistance, and extends the service life of the equipment.
[0029] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A modular signal pole retractable 4G network router comprising a router body (1) characterized in that: The router body (1) is fixedly connected to both sides of the connecting post (2). A retractable rod (3) is provided on the side of the connecting post (2) away from the router body (1). An inner groove (4) is provided inside the retractable rod (3). An arc block (5) is fixedly connected to both ends of the inner groove (4). An adjusting post (6) is rotatably connected inside the inner groove (4). A signal rod body (7) is provided inside the adjusting post (6). An adjusting groove (22) is opened at both ends of the adjusting post (6). A push block (8) is slidably connected inside the adjusting groove (22). A plug rod (9) is fixedly connected to the side of the push block (8) away from the arc block (5). A plug hole (10) is opened at both ends of the signal rod body (7).
2. The modular signal pole mountable retractable 4G network router of claim 1, wherein: The size of the insertion rod (9) is adapted to the size of the insertion hole (10), and the surface of the insertion rod (9) is inserted into the interior of the insertion hole (10).
3. The modular signal pole mountable collapsible 4G network router of claim 1, wherein: A storage spring (11) is fixedly connected to the side of the push block (8) near the insertion rod (9), and the side of the storage spring (11) away from the push block (8) is fixedly connected to the inside of the adjustment groove (22).
4. The modular signal pole mountable collapsible 4G network router of claim 1, wherein: The adjustment groove (22) has sliding grooves (12) on both sides, and the push block (8) has sliders (13) fixedly connected to both sides. The surface of the slider (13) is slidably connected to the inside of the sliding groove (12).
5. The modular signal pole mountable collapsible 4G network router of claim 1, wherein: Both ends of the adjusting column (6) are provided with shrinkage grooves (14), and both ends of the shrinkage rod (3) are provided with insertion blocks (15). An insertion rod (16) is slidably connected inside the shrinkage groove (14). A return spring (17) is fixedly connected to the side of the insertion rod (16) near the shrinkage groove (14). The side of the return spring (17) away from the insertion rod (16) is fixedly connected to the inside of the shrinkage groove (14).
6. The modular signal pole mountable collapsible 4G network router of claim 5, wherein: The shrinkage groove (14) has sliding grooves (18) on both sides inside, and sliding blocks (19) are fixedly connected to both sides of the insertion rod (16). The surface of the sliding block (19) is slidably connected to the inside of the sliding groove (18).
7. The modular signal pole mountable collapsible 4G network router of claim 1, wherein: The inner wall of the inner groove (4) is provided with two annular grooves (20), and two annular blocks (21) are fixedly connected to the outer diameter surface of the adjusting column (6). The surface of the annular blocks (21) is slidably connected to the interior of the adjusting groove (22).