A small base station protection device for communication engineering

Through the combined design of tower, protective mechanism and signal processing mechanism, the problem of small base stations loosening and tipping under wind is solved, realizing the stability of the equipment and convenient electrical connection, providing lighting and waterproof functions, and meeting the needs of mobile base station construction in communication engineering.

CN120602805BActive Publication Date: 2026-03-17SHENZHEN SONGYU INFORMATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-17
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing small base stations are prone to loosening, tilting, and tipping over under the influence of external wind, resulting in equipment instability and a lack of effective protective measures.

Method used

The design combines a tower, a protective mechanism, and a signal processing mechanism. It uses hexagonal bolts for fixing, locking blocks, and three-jaw connectors to form a triangular fixation. Combined with the sliding connection of the tie rod and the U-shaped slider, it enhances structural stability. The support point design and sealing structure of the communication box prevent wind damage and water intrusion.

Benefits of technology

It effectively prevents the small base station from loosening and tipping over, enhances the stability of the equipment, provides lighting functions and convenient electrical connection access points, and ensures that the equipment operates normally in harsh environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a small base station protection device for communication engineering and relates to the technical field of communication engineering. The small base station protection device for communication engineering comprises a tower, a signal processing mechanism and a protection mechanism. The protection mechanism comprises a locking block and a strip-shaped guide rail. The surface of the locking block is fixedly connected with a three-jaw connecting piece. The top of the three-jaw connecting piece is fixedly connected with a pull rod. The inside of the strip-shaped guide rail is slidably provided with a convex-shaped sliding block. The top end of the pull rod is fixedly connected with the end of the convex-shaped sliding block away from the strip-shaped guide rail. Six variable blind holes are formed in the side of the bottom of the locking block. The signal processing mechanism comprises a communication box. The side of the inner wall of the communication box is provided with an illuminating lamp. An elastic contraction cover is fixedly connected between the tail seat of the illuminating lamp and the cabinet door. A power supply wire is arranged in the inside of the communication box and close to the illuminating lamp. An access assembly is arranged between the power supply wire and the illuminating lamp. The device achieves the purpose of preventing loosening, is firmly connected and fixed and is not prone to loosening, and the influence of wind blowing is reduced.
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Description

Technical Field

[0001] This invention relates to the field of communication engineering technology, specifically to a small base station protection device for communication engineering. Background Technology

[0002] A base station, or public mobile communication base station, is an interface device for mobile devices to access the internet and is also a form of radio station. Base stations enable information transmission between mobile terminals and mobile communication switching centers within a defined radio coverage area. With the widespread adoption of 5G technology in the civilian market, 5G base stations, as core equipment of 5G networks, have become a major future development trend. In the field of communication engineering, there are scenarios and needs for mobile base station construction, mobile use, and temporary setup and deployment. To adapt to these application scenarios, communication base stations require small size and lightweight equipment.

[0003] Currently, most existing small base stations are temporary structures, which are easily affected by external winds, making them unstable and prone to loosening. In severe cases, they may even tilt or fall over, causing equipment damage. Summary of the Invention

[0004] To achieve the above objectives, the present invention provides the following technical solution:

[0005] A small base station protection device for communication engineering includes:

[0006] The tower, and hexagonal bolts installed at the bottom of the tower, with a signal processing mechanism mounted on the top of the tower;

[0007] A protective mechanism is provided for the stable protection of the tower, and the protective mechanism is installed inside the tower.

[0008] The protective mechanism includes a locking block and a strip guide rail. The center of the locking block is slidably installed between the center and the bottom of the tower surface. A three-jaw connector is fixedly connected to the surface of the locking block. A pull rod is fixedly connected to the top of the three-jaw connector. A convex slider is slidably installed inside the strip guide rail. The top of the pull rod is fixedly connected to the end of the convex slider away from the strip guide rail. A hexagonal blind hole is opened on the side of the bottom of the locking block. The bottom of the entire tower is fixed with hexagonal bolts, so that the tower is initially fixed and a triangular fixation is formed under the connection of the three-jaw connector.

[0009] Slide the locking block downwards so that the six-dimensional blind hole is fitted onto the top of the hexagonal bolt, thus limiting the hexagonal bolt and fixing the three-jaw connector. The locking block self-locks the hexagonal bolt, making it less prone to loosening and reducing the impact of wind. This also prevents the tower from tilting or collapsing.

[0010] Preferably, the locking block is installed directly above the hexagonal bolt, and the three-claw connector is installed in the middle of the tower and near the bottom.

[0011] Preferably, there are three pull rods, and the three pull rods are evenly distributed on the top of the three-jaw connector. The surface of the convex slider is in contact with the inner side of the strip guide rail. The six deformable blind holes are evenly distributed on the side of the bottom of the lock block, and the six deformable blind holes are opened directly above the hexagonal bolt.

[0012] Preferably, the signal processing mechanism includes a communication box, which is fixedly installed on the surface of the communication box and the side of the top of the tower. The strip guide rail is fixedly installed on the side of the communication box surface. A cabinet door is installed on the surface of the communication box away from the strip guide rail. A light-transmitting hole is opened at the top of the cabinet door. A signal transmitter is installed in the middle of the top of the communication box. A light is installed on the side of the inner wall of the communication box. An elastic shrink cover is fixedly connected between the tail of the light and the cabinet door. A power-conducting wire is installed inside the communication box near the light. An access component is installed between the power-conducting wire and the light. When the communication box is installed on the top of the tower and the three-jaw connector moves downward, the pull rod will be pulled downward. Guided by the strip guide rail and through the sliding of the U-shaped slider, the structure will not jam. The connection between the pull rod and the U-shaped slider adds a support point to the back of the communication box, making the communication box more robust and providing a protective effect.

[0013] Preferably, there are three communication boxes, and the three communication boxes are evenly distributed on the top of the tower. The bottom end of the power-carrying wire passes through the bottom of the inner cavity of the communication box and extends to its outside. The lighting lamp is installed inside the communication box and near the top. When the lighting lamp is lit, the light passes through it to provide illumination and achieve the effect of a street lamp. The end of the elastic shrink cover away from the lighting lamp base is fixed around the light-transmitting hole to prevent water from entering the interior.

[0014] Preferably, the lighting extends into the interior of the elastic shrink cover, and the elastic shrink cover is conical with a wavy curved surface. The lighting, the elastic shrink cover, and the light-transmitting hole are installed at the same height. When the cabinet door is opened, the door applies a pulling force to the elastic shrink cover. Due to the elasticity of the elastic shrink cover itself, the elastic shrink cover is stretched and deformed elastically. Combined with the fact that the elastic shrink cover is made of transparent material, light can pass through the elastic shrink cover to illuminate the interior of the communication box, facilitating the maintenance and replacement of the internal components of the communication box at night.

[0015] Preferably, the access component includes a plastic plug and a conical connector cap. The plastic plug has a U-shaped groove at its end, allowing it to be engaged with the surface of the conductive wire via the U-shaped groove. A through-hole pin is fixedly connected to the center of the conical connector cap, and a connecting wire is fixedly connected between the through-hole pin and the tailstock of the lighting lamp. A clamp is fixedly connected to the tip of the through-hole pin. By engaging the plastic plug with the conductive wire via the U-shaped groove and threading the conical connector cap to the plastic plug, the through-hole pin is pushed by the conical connector cap, allowing its tip to penetrate into the conductive wire. The clamp increases the contact area with the conductor inside the conductive wire, enabling conductivity. This facilitates electrical connection without stripping the conductive wire, saving time and effort during installation and ensuring safety and reliability.

[0016] Preferably, the inner wall of the conical connector cap and the surface of the plastic plug are threaded together, the tip of the insert pin faces the inside of the U-shaped groove, and the central axis of the insert pin coincides with the central axis of the conical connector cap.

[0017] Preferably, an auxiliary component is installed at the middle of the bottom of the communication box. The auxiliary component includes a fixed cylinder and a connecting cylinder. The top of the fixed cylinder is fixedly installed at the middle of the bottom of the communication box by screws. The connecting cylinder is installed at the bottom of the fixed cylinder. A conical bucket is fixedly connected to the bottom of the fixed cylinder. A circular locking element is sleeved at the middle of the surface of the connecting cylinder. A limit ring is fixedly connected to the bottom of the outer surface of the connecting cylinder. A sealing ring is fixedly connected to the top of the outer surface of the connecting cylinder. The bottom end of the power-carrying wire passes through the center of the fixed cylinder and the center of the connecting cylinder.

[0018] By passing the bottom end of a current-carrying wire through the center of both the fixed cylinder and the connecting cylinder, and with the connecting cylinder installed at the bottom of the fixed cylinder, the conical hopper fits snugly against the inner wall of the connecting cylinder, achieving an internal seal. The annular locking element is threaded onto the fixed cylinder, thus securing the connecting and fixed cylinders and compressing the sealing ring. This deformation of the sealing ring fills the gap between the edge of the connecting cylinder and the inner edge of the annular locking element, further sealing the interior and preventing rainwater from entering.

[0019] Preferably, the limiting ring is threadedly installed between itself and the fixed cylinder, the diameter of the conical bucket gradually increases from bottom to top, and the sealing ring is made of rubber.

[0020] This invention provides a small base station protection device for communication engineering. It has the following beneficial effects:

[0021] I. The small base station protection device used in this communication project fixes the bottom of the tower with hexagonal bolts, thus initially securing the tower. With the connection of the three-pronged connector, a triangular fixation is formed, and the locking block slides down, allowing the six-hole deformable part to fit over the top of the hexagonal bolt, thus limiting the hexagonal bolt and fixing the three-pronged connector. The locking block self-locks the hexagonal bolt, making it less prone to loosening and reducing the impact of wind. This also prevents the tower from tilting or collapsing.

[0022] II. The small base station protection device used in this communication project utilizes a communication box installed on the top of the tower. When the three-claw connector moves downward, the pull rod will be subjected to downward pulling force. Guided by the strip rail and through the sliding of the convex slider, the structure will not get stuck. The connection between the pull rod and the convex slider adds a support point to the back of the communication box, making the communication box more robust and achieving a protective effect.

[0023] Third, the small base station protection device used in this communication project can provide illumination when the lighting lamp is lit, by passing the light through it, thus achieving the effect of a street lamp. Furthermore, by fixing the end of the elastic shrink cover away from the lighting lamp base around the light-transmitting hole, water can be prevented from entering the interior.

[0024] IV. The small base station protection device used in this communication project applies a pulling force to the elastic shrink cover after the cabinet door is opened. Through the elasticity of the elastic shrink cover itself, the elastic shrink cover is stretched and deformed. Combined with the fact that the elastic shrink cover is made of transparent material, light can pass through the elastic shrink cover and illuminate the inside of the communication box, which is convenient for maintenance and replacement of the internal components of the communication box at night.

[0025] V. The small base station protection device used in this communication project utilizes a conical connector cap and a plastic plug for threaded installation. This allows the insertion pin to be pushed by the conical connector cap, enabling it to penetrate the inside of the energized wire through the tip of the pin. The clamp increases the contact area with the conductor inside the energized wire, thus facilitating electrical connection. This makes it easy to establish an access point for electrical connection without stripping the insulation from the energized wire. The installation is time-saving, labor-saving, safe, and reliable.

[0026] VI. The small base station protection device used in this communication project has the bottom end of the energized wire passing through the center of the fixed cylinder and the center of the connecting cylinder. The connecting cylinder is installed at the bottom of the fixed cylinder, so that the conical hopper fits against the inner wall of the connecting cylinder to achieve internal sealing. The annular locking part is threadedly installed with the fixed cylinder, which can fix the connecting cylinder and the fixed cylinder and compress the sealing ring, causing the sealing ring to deform and fill the gap between the edge of the connecting cylinder and the inner edge of the annular locking part, thus achieving a sealing effect again and preventing rainwater from entering the interior. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of the small base station protection device for communication engineering of the present invention;

[0028] Figure 2 This is a schematic diagram of the structure of the small base station protection device for communication engineering of the present invention, viewed from below.

[0029] Figure 3 This is a schematic diagram of the overall structure connecting the protective mechanism and the tower of the present invention;

[0030] Figure 4 This is a bottom view of the connection structure between the protective mechanism and the tower of the present invention;

[0031] Figure 5 This is a schematic diagram of the connection structure between the signal processing mechanism and the tower of the present invention;

[0032] Figure 6 This is a schematic diagram of the connection structure between the lighting lamp, the elastic shrink cover, the power-carrying wire, and the connection component of the present invention.

[0033] Figure 7 This is a schematic diagram of the split structure of the access component of the present invention;

[0034] Figure 8 This is a schematic diagram showing the connection and separation between the auxiliary component and the communication box of the present invention.

[0035] In the diagram: 1. Tower; 2. Hex bolt; 3. Signal processing mechanism; 4. Protective mechanism; 5. Auxiliary components; 31. Communication box; 32. Cabinet door; 33. Light-transmitting hole; 34. Signal transmitter; 35. Lighting lamp; 36. Elastic shrink cover; 37. Power-carrying wire; 38. Access component; 381. Plastic plug; 382. Conical connecting cap; 383. U-shaped groove; 384. Inserting pin; 385. Connecting flexible wire; 386. Hoop; 41. Locking block; 42. Strip rail; 43. Three-jaw connector; 44. Pull rod; 45. T-shaped slider; 46. Hexagonal blind hole; 51. Fixed cylinder; 52. Connecting cylinder; 53. Conical bucket; 54. Circular locking component; 55. Limiting ring; 56. Sealing ring. Detailed Implementation

[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0037] First embodiment, such as Figures 1 to 4As shown, the present invention provides a technical solution:

[0038] A small base station protection device for communication engineering includes:

[0039] Tower 1, and hexagonal bolts 2 installed at the bottom of tower 1, and signal processing mechanism 3 installed at the top of tower 1;

[0040] Protective mechanism 4 is used to provide stable protection for tower 1. Protective mechanism 4 is installed inside tower 1.

[0041] The protective mechanism 4 includes a locking block 41 and a strip guide rail 42. The center of the locking block 41 is slidably installed between the bottom of the surface of the tower 1. A three-jaw connector 43 is fixedly connected to the surface of the locking block 41. A pull rod 44 is fixedly connected to the top of the three-jaw connector 43. A convex slider 45 is slidably installed inside the strip guide rail 42. The top of the pull rod 44 is fixedly connected to the end of the convex slider 45 away from the strip guide rail 42. A hexagonal blind hole 46 is opened on the side of the bottom of the locking block 41. The bottom of the entire tower 1 is fixed by hexagonal bolts 2, so that the tower 1 is initially fixed. Under the connection of the three-jaw connector 43, a triangular fixation is formed. The locking block 41 slides down so that the hexagonal blind hole 46 is fitted onto the top of the hexagonal bolt 2, so that the hexagonal bolt 2 is limited and the three-jaw connector 43 is fixed. Thus, the locking block 41 self-locks the hexagonal bolt 2, making it less likely to slip and the tower 1 is less likely to tilt or fall.

[0042] The locking block 41 is installed directly above the hexagonal bolt 2, and the three-jaw connector 43 is installed in the middle of the tower 1 and near the bottom.

[0043] There are three pull rods 44, and the three pull rods 44 are evenly distributed on the top of the three-jaw connector 43. The surface of the convex slider 45 is in contact with the inner side of the strip guide rail 42. The six deformable blind holes 46 are evenly distributed on the side of the bottom of the lock block 41, and the six deformable blind holes 46 are opened directly above the hexagonal bolt 2.

[0044] The second embodiment is based on the first embodiment; please refer to [link / reference]. Figures 1 to 7 As shown:

[0045] The signal processing mechanism 3 includes a communication box 31. The surface of the communication box 31 is fixedly installed on the side of the top of the tower 1. A strip rail 42 is fixedly installed on the side of the surface of the communication box 31. A cabinet door 32 is installed on the surface of the communication box 31, away from the strip rail 42. A light-transmitting hole 33 is opened at the top of the cabinet door 32. A signal transmitter 34 is installed in the middle of the top of the communication box 31. A light lamp 35 is installed on the side of the inner wall of the communication box 31. An elastic retractable cover 36 is fixedly connected between the tail of the light lamp 35 and the cabinet door 32. An electrical conductor 37 is installed inside the tower 1 near the lighting lamp 35. An access component 38 is installed between the electrical conductor 37 and the lighting lamp 35. The communication box 31 is installed on the top of the tower 1. When the three-jaw connector 43 moves downward, the pull rod 44 will be pulled downward. Under the guidance of the strip rail 42 and the sliding of the U-shaped slider 45, the structure will not get stuck. The connection between the pull rod 44 and the U-shaped slider 45 adds a support point to the back of the communication box 31, making the communication box 31 more stable overall.

[0046] There are three communication boxes 31, which are evenly distributed on the top of the tower 1. The bottom end of the power-carrying wire 37 passes through the bottom of the inner cavity of the communication box 31 and extends to its outside. The lighting lamp 35 is installed inside the communication box 31 near the top. When the lighting lamp 35 is lit, the light passes through it to provide illumination and achieve the effect of a street lamp. The end of the elastic shrink cover 36 away from the tail of the lighting lamp 35 is fixed around the light-transmitting hole 33 to prevent water from entering the interior.

[0047] The lighting lamp 35 extends into the interior of the elastic shrink cover 36, which is conical and has a wavy curved surface. The lighting lamp 35, the elastic shrink cover 36, and the light-transmitting hole 33 are installed at the same height. When the cabinet door 32 is opened, it applies a pulling force to the elastic shrink cover 36. Due to the elasticity of the elastic shrink cover 36 itself, it is stretched and deformed. Combined with the fact that the elastic shrink cover 36 is made of transparent material, light can pass through it to illuminate the interior of the communication box 31, making it convenient to repair and replace the internal components of the communication box 31 at night.

[0048] The connection component 38 includes a plastic plug 381 and a conical connector 382. A U-shaped groove 383 is formed at the end of the surface of the plastic plug 381, allowing it to be snapped onto the surface of the power-carrying wire 37 via the U-shaped groove 383. A through-hole pin 384 is fixedly connected to the center of the conical connector 382. A connecting wire 385 is fixedly connected between the through-hole pin 384 and the tailstock of the lighting lamp 35. A clamp 386 is fixedly connected to the tip of the through-hole pin 384. The connection is achieved using the plastic plug... The head 381 is snapped onto the surface of the energized wire 37 through the U-shaped groove 383, and the conical connector 382 is threaded onto the plastic plug 381, so that the insertion pin 384 is pushed by the conical connector 382, ​​and the tip of the insertion pin 384 can be inserted and pierced into the interior of the energized wire 37. The clamp 386 can increase the contact area with the conductor inside the energized wire 37, so that it can conduct electricity and facilitate the access point for electrical connection without stripping the insulation of the energized wire 37.

[0049] The inner wall of the conical connector 382 is threaded to the surface of the plastic plug 381. The tip of the insertion pin 384 faces the inside of the U-shaped groove 383, and the central axis of the insertion pin 384 coincides with the central axis of the conical connector 382.

[0050] The third embodiment is based on embodiments one and two; please refer to [link / reference]. Figures 1 to 8 As shown:

[0051] An auxiliary component 5 is installed at the center of the bottom of the communication box 31. The auxiliary component 5 includes a fixed cylinder 51 and a connecting cylinder 52. The top of the fixed cylinder 51 is fixedly installed to the center of the bottom of the communication box 31 with screws. The connecting cylinder 52 is installed at the bottom of the fixed cylinder 51. A conical bucket 53 is fixedly connected to the bottom of the fixed cylinder 51. A circular locking piece 54 is fitted at the center of the surface of the connecting cylinder 52. A limit ring 55 is fixedly connected to the bottom of the outer surface of the connecting cylinder 52. A sealing ring 56 is fixedly connected to the top of the outer surface of the connecting cylinder 52. The bottom end of the power supply wire 37 connects to the center of the fixed cylinder 51 and the connecting cylinder 52. The conical bucket 53 passes through the center of the fixed cylinder 51 and the connecting cylinder 52 through the bottom end of the energized wire 37. The connecting cylinder 52 is installed at the bottom end of the fixed cylinder 51, so that the conical bucket 53 fits against the inner wall of the connecting cylinder 52 to achieve internal sealing. The annular locking member 54 is threadedly installed with the fixed cylinder 51, which can fix the connecting cylinder 52 and the fixed cylinder 51 and compress the sealing ring 56, causing the sealing ring 56 to deform and fill the gap between the edge of the connecting cylinder 52 and the edge of the inner side of the annular locking member 54, thus achieving a sealing effect again and preventing rainwater from entering the interior.

[0052] The limiting ring 55 is threadedly installed between the fixed cylinder 51 and the conical bucket 53. The diameter of the bucket gradually increases from bottom to top. The sealing ring 56 is made of rubber.

[0053] In use, the bottom of the entire tower 1 is first fixed with hex bolts 2, so that the tower 1 is initially fixed. Under the connection of the three-jaw connector 43, a triangular fixation is formed. The locking block 41 is slid down so that the hexagonal blind hole 46 is fitted on the top of the hex bolt 2, so that the hex bolt 2 is limited and the three-jaw connector 43 can be fixed. Thus, the locking block 41 self-locks the hex bolt 2, making it less likely to come loose and the tower 1 is less likely to tilt or fall over.

[0054] Furthermore, the communication box 31 is installed on the top of the tower 1, and when the three-jaw connector 43 moves downward, the pull rod 44 will be pulled downward. Under the guidance of the strip rail 42 and through the sliding of the U-shaped slider 45, the structure will not get stuck. The connection between the pull rod 44 and the U-shaped slider 45 adds a support point to the back of the communication box 31, making the communication box 31 more robust overall.

[0055] Meanwhile, the plastic plug 381 is snapped onto the surface of the live wire 37 through the U-shaped groove 383, and the conical connector 382 is threaded onto the plastic plug 381, so that the insertion pin 384 is pushed by the conical connector 382, ​​and can be inserted into the interior of the live wire 37 through the tip of the insertion pin 384. The clamp 386 can increase the contact area with the conductor inside the live wire 37, so that it can conduct electricity and facilitate the access point for electrical connection without stripping the live wire 37.

[0056] Furthermore, the bottom end of the energized wire 37 passes through the center of the fixed cylinder 51 and the center of the connecting cylinder 52, and the connecting cylinder 52 is installed at the bottom end of the fixed cylinder 51, so that the conical bucket 53 fits against the inner wall of the connecting cylinder 52 to achieve internal sealing. The annular locking member 54 is threadedly installed with the fixed cylinder 51, which can fix the connecting cylinder 52 and the fixed cylinder 51 and compress the sealing ring 56, causing the sealing ring 56 to deform and fill the gap between the edge of the connecting cylinder 52 and the edge of the inner side of the annular locking member 54, thus achieving a sealing effect again and preventing rainwater from entering the interior.

[0057] Furthermore, the lighting lamp 35 is installed inside the communication box 31 and near the top. When the lighting lamp 35 is lit, light passes through it to provide illumination, achieving the effect of a street lamp. The elastic shrink cover 36 is fixed around the light-transmitting hole 33 at one end away from the tail of the lighting lamp 35 to prevent water from entering the interior.

[0058] Opening the cabinet door 32 allows it to apply a pulling force to the elastic shrink cover 36. The elastic shrink cover 36 is stretched and deformed due to its own elasticity. Since the elastic shrink cover 36 is made of transparent material, light can pass through it and illuminate the inside of the communication box 31, making it easier to repair and replace the internal components of the communication box 31 at night.

[0059] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," 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 limitations, 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 said element.

[0060] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A small base station protection device for communication engineering, characterized by, Include: The tower (1), and the hexagonal bolt (2) installed at the bottom of the tower (1), the top of the tower (1) is provided with a signal processing mechanism (3); The protection mechanism (4) is used for stable protection of the tower (1), and the protection mechanism (4) is installed in the tower (1); Wherein, the protection mechanism (4) includes lock block (41) and strip guide rail (42), the center of the lock block (41) is slidingly installed between the bottom of the tower (1) surface, the surface of the lock block (41) is fixedly connected with three jaw connecting piece (43), the top of the three jaw connecting piece (43) is fixedly connected with pull rod (44), the inside of the strip guide rail (42) is slidingly installed with convex block (45), the top end of the pull rod (44) is fixedly connected with the convex block (45) away from the strip guide rail (42), the side of the lock block (41) bottom is provided with six blind hole (46).

2. The small base station protection device for communication engineering according to claim 1, characterized in that: The lock block (41) is installed above the hexagonal bolt (2), the three jaw connecting piece (43) is installed at the middle of the tower (1) and close to the bottom position.

3. The small base station protection device for communication engineering of claim 1, wherein: The pull rod (44) is three, and the three pull rods (44) are evenly distributed on the top of the three jaw connecting piece (43), the surface of the convex block (45) is attached to the inner side of the strip guide rail (42), the six blind hole (46) is evenly distributed on the side of the lock block (41) bottom, and the six blind hole (46) is provided above the hexagonal bolt (2).

4. The small base station protection device for communication engineering of claim 1, wherein: The signal processing mechanism (3) includes communication box (31), the surface of the communication box (31) is fixedly installed on the side of the top of the tower (1), the strip guide rail (42) is fixedly installed on the side of the surface of the communication box (31), the side of the surface of the communication box (31) and away from the strip guide rail (42) is provided with cabinet door (32), the top of the surface of the cabinet door (32) is provided with light transmission hole (33), the middle of the top of the communication box (31) is provided with signal transmitter (34), the side of the inner wall of the communication box (31) is provided with illuminating lamp (35), the tail seat of the illuminating lamp (35) and the cabinet door (32) are fixedly connected with elastic contraction cover (36), the inside of the communication box (31) and close to the position of the illuminating lamp (35) is provided with power supply wire (37), the power supply wire (37) and the illuminating lamp (35) are provided with access assembly (38).

5. The small cell protection device for communication engineering of claim 4, wherein: The communication box (31) is three, and the three communication boxes (31) are evenly distributed on the top of the tower (1), the bottom end of the power supply wire (37) penetrates through the bottom of the inner cavity of the communication box (31) and extends to the outside.

6. The compact base station protection device for communication engineering of claim 4, wherein: The illuminating lamp (35) extends to the inside of the elastic contraction cover (36), and the elastic contraction cover (36) is conical, the surface of the elastic contraction cover (36) is wavy curved surface, the illuminating lamp (35), the elastic contraction cover (36) and the light transmission hole (33) are installed at the same height.

7. The compact base station protection device for communication engineering of claim 4, wherein: The access assembly (38) includes a plastic plug (381) and a tapered connecting cap (382), a U-shaped groove (383) is formed in the end surface of the plastic plug (381), the plastic plug (381) is clamped on the surface of the live wire (37) through the U-shaped groove (383), the tapered connecting cap (382) is fixedly connected with a penetrating needle (384) at the center, the penetrating needle (384) is fixedly connected with a connecting flexible cord (385) between the tail seat of the illuminating lamp (35), and the sharp end of the surface of the penetrating needle (384) is fixedly connected with a hoop (386).

8. The small cell protection device for communication engineering of claim 7, wherein: The inner wall of the tapered connecting cap (382) is screw-mounted with the surface of the plastic plug (381), the sharp end of the penetrating needle (384) faces the inside of the U-shaped groove (383), and the central axis of the penetrating needle (384) coincides with the central axis of the tapered connecting cap (382) at the middle.

9. The compact base station protection device for communication engineering of claim 4, wherein: The auxiliary assembly (5) is installed at the middle of the bottom of the communication box (31), the auxiliary assembly (5) includes a fixed cylinder (51) and a connecting cylinder (52), the top of the fixed cylinder (51) is screw-fixedly installed with the middle of the bottom of the communication box (31), the connecting cylinder (52) is installed at the bottom of the fixed cylinder (51), the bottom of the fixed cylinder (51) is fixedly connected with a tapered hopper (53), a circular ring-shaped locking piece (54) is sleeved at the middle of the surface of the connecting cylinder (52), the bottom of the outer circular surface of the connecting cylinder (52) is fixedly connected with a limiting ring (55), the top of the outer circular surface of the connecting cylinder (52) is fixedly connected with a sealing ring (56), and the bottom end of the live wire (37) passes through the center of the fixed cylinder (51) and the center of the connecting cylinder (52).

10. The small cell protection device for communication engineering of claim 9, wherein: The limiting ring (55) is screw-mounted with the fixed cylinder (51), the tapered hopper (53) gradually increases in diameter from bottom to top, and the sealing ring (56) is made of rubber material.

Citation Information

Patent Citations

  • Vertical and horizontal double-guiding device with locking anti-loosening function

    CN105965280A

  • Angle-adjustable signal apparatus for 5g base station

    WO2021248483A1