Reinforced communication iron tower

By combining the limiting components and reinforcing screws, the problem of tower instability caused by loose bolts was solved, thereby improving the stability and safety of the tower.

CN224161515UActive Publication Date: 2026-04-24QINGDAO MAOTONG POWER EQUIP CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QINGDAO MAOTONG POWER EQUIP CO LTD
Filing Date
2025-04-21
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Bolts can gradually loosen due to minor deformations caused by natural factors such as wind and temperature changes, affecting the stability of the tower and potentially causing it to tilt or collapse, posing a serious safety hazard.

Method used

By employing a limiting assembly and a reinforcing screw structure, the limiting pins of the limiting assembly are inserted into the limiting holes to fix the nuts, and the reinforcing screw is connected to the flange by a threaded connection, thereby enhancing the stability and load-bearing capacity of the tower.

Benefits of technology

Ensure that the nuts do not loosen under external force to prevent the tower from tilting or collapsing, improve overall stability and seismic performance, and reduce safety risks.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224161515U_ABST
    Figure CN224161515U_ABST
Patent Text Reader

Abstract

The utility model discloses a reinforced communication iron tower, which relates to the technical field of communication iron towers and comprises a cement pier, threaded columns are symmetrically poured at the upper end of the cement pier close to chamfers, a mounting seat is mounted at the upper end of the cement pier, through holes are symmetrically formed at the upper end of the mounting seat close to the chamfers, and the threaded columns penetrate through the through holes and are in threaded connection with nuts. An iron tower body is welded to the upper end of the mounting base, assembling blocks are symmetrically and fixedly connected to the upper end of the mounting base close to the chamfers, and limiting assemblies are mounted in the assembling blocks. By adopting the structure, the nut can be ensured not to move or loosen randomly under the action of external force, so that the overall stability of the iron tower is kept, the iron tower is prevented from inclining or collapsing, the nut can be effectively prevented from falling off or being damaged due to loosening, the risk of inclining or collapsing of the iron tower is reduced, and the service life of the iron tower is prolonged. And the safety of the surrounding environment and personnel is protected.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model belongs to the field of communication tower technology, and specifically relates to a reinforced communication tower. Background Technology

[0002] Communication towers are steel structures specifically designed to support communication antennas and equipment. They are widely used in wireless communication networks, including mobile communications, broadcasting, microwave relay, and radar detection. They are typically designed as tall structures to ensure antennas can cover a wider area and provide stable signal transmission. Communication towers are robust and durable, able to withstand harsh weather conditions such as wind, rain, snow, and lightning, ensuring continuous operation of the communication system. Furthermore, communication towers are equipped with professional grounding systems and protective measures to ensure the safety of personnel and equipment. With the continuous development of communication technology, the structural design and material selection of communication towers are constantly being innovated to adapt to the demands of higher speeds and larger capacities, and are continuously optimized in terms of urban landscape integration and energy conservation and emission reduction.

[0003] Announcement No. "CN220151045U" discloses a ruggedized communication tower, comprising a ground surface, a tower body fixedly connected to the ground surface, a concrete base fixedly connected to the bottom end of the tower body surface, a fixing hole on the surface of the concrete base, a threaded rod sleeved inside the fixing hole, a reinforcement component sleeved on the surface of the tower body, and a sleeve plate sleeved on the surface of the concrete base. This ruggedized communication tower, through the installation of the reinforcement component, involves tightening a reinforcing bolt, which is threaded to a first flange, then threaded to a second flange, and finally threaded into a nut on the top surface of the concrete base. The reinforcing bolts are arranged in a ring array around the tower body, reinforcing the tower body and thus improving its stability.

[0004] While the aforementioned utility model reinforces the tower body, thereby enhancing its stability, the bolts can gradually loosen due to minor deformations caused by natural factors such as wind and temperature changes. This can severely impact the overall stability of the tower, potentially leading to tilting or collapse. Furthermore, loose bolts not only affect stability but also pose serious safety hazards. Under extreme weather conditions, such as strong winds and heavy rain, loose bolts could cause tower components to detach or become damaged, threatening the surrounding environment and the safety of people. Utility Model Content

[0005] In view of the problems mentioned in the background art, the purpose of this utility model is to provide a reinforced communication tower to solve the problem that bolts will gradually loosen due to minor deformation of the tower caused by natural factors such as wind and temperature changes. This will seriously affect the overall stability of the tower and may even lead to the tower tilting or collapsing. Moreover, the loosening of bolts will not only affect the stability of the tower, but may also bring serious safety hazards.

[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution:

[0007] A reinforced communication tower includes a concrete block, with threaded columns symmetrically cast at the upper end of the concrete block near the chamfer. A mounting base is installed at the upper end of the concrete block, with through holes symmetrically opened at the upper end of the mounting base near the chamfer. The threaded columns pass through the through holes and are threadedly connected to nuts. The tower body is welded to the upper end of the mounting base. Assembly blocks are symmetrically fixedly connected at the upper end of the mounting base near the chamfer. Limiting components are installed inside the assembly blocks.

[0008] The limiting assembly includes a cavity, a return spring, a moving block, a limiting post, a slider, and a push block. The assembly block has a cavity inside, with a return spring fixedly connected to one end of the cavity and a moving block fixedly connected to the other end of the return spring. The moving block is slidably connected to the cavity. A limiting post is fixedly connected to the end of the moving block away from the return spring, and the other end of the limiting post extends out of the side of the assembly block. A slider is fixedly connected to the upper end of the moving block, and the other end of the slider extends out of the upper end of the assembly block and is fixedly connected to the push block. Limiting holes are opened on the outer end face of the nut. The limiting post and the limiting hole are inserted into each other. A sliding groove is opened on the upper end of the assembly block, which communicates with the cavity. The slider and the sliding groove are slidably connected.

[0009] As a preferred technical solution, a reinforcing seat is welded to the upper end of the mounting base, and a first flange and a second flange are fixedly welded to the outer side wall of the tower body respectively. The upper ends of the reinforcing seat, the first flange and the second flange are symmetrically provided with threaded holes through a circular circumferential array, and reinforcing screws are threaded inside the threaded holes.

[0010] As a preferred technical solution, a fixing ring is fixedly welded to the outer wall of the tower body, and a reinforcing rib is symmetrically welded to the bottom of the fixing ring through a circular array. The other end of the reinforcing rib is fixedly connected to the upper end of the cement block.

[0011] As a preferred technical solution, a positioning block is fixedly connected to the center of the bottom of the mounting base, and a positioning groove is opened at the center of the upper end of the cement block, with the positioning block and the positioning groove being inserted into each other.

[0012] As a preferred technical solution, reflective strips are fixedly connected to the outside of the tower body, and the outside of the tower body is coated with an anti-rust coating, which is made of cold-dip galvanized paint.

[0013] In summary, the present invention has the following main advantages:

[0014] First, in this utility model, pushing the push block causes the slider to move the moving block and the limiting post. The moving block presses against the reset spring, compressing the reset spring and causing the limiting post to retract into the cavity. Then, the nut and the threaded post are threaded together. The push block is released, the reset spring is reset, the moving block rebounds and causes the limiting post to pop out. The limiting post is inserted into the limiting hole to complete the limiting of the nut. This ensures that the nut will not move or loosen when subjected to external force, thereby maintaining the overall stability of the tower and helping to prevent the tower from tilting or collapsing. It also effectively prevents the nut from falling off or being damaged due to loosening, thereby reducing the risk of the tower tilting or collapsing and protecting the safety of the surrounding environment and personnel.

[0015] Secondly, in this utility model, the reinforcing screw is threadedly connected to the threaded hole on the first flange on the tower body. Then, the reinforcing screw is rotated to thread it to the second flange. Then, the reinforcing screw is rotated to thread it to the threaded hole on the reinforcing seat. By sequentially threading the reinforcing screw to the first flange, the second flange, and the reinforcing seat, the load-bearing capacity of the tower can be significantly improved, and the overall stability of the tower can be enhanced. When facing severe weather conditions such as strong winds and heavy rain, the reinforcing screw can reduce the swaying amplitude of the tower, ensuring the safe operation of the tower, and also improving the seismic performance of the tower. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0017] Figure 2 This is the utility model Figure 1 Enlarged view of part A;

[0018] Figure 3 This is an exploded three-dimensional structural diagram of the present invention;

[0019] Figure 4 This is a cross-sectional three-dimensional structural diagram of the limiting component of this utility model.

[0020] Reference numerals: 1. Cement block; 2. Threaded post; 3. Mounting seat; 4. Through hole; 5. Nut; 6. Tower body; 7. Reinforcing seat; 8. Reinforcing bolt; 9. First flange; 10. Second flange; 11. Threaded hole; 12. Assembly block; 13. Limiting component; 131. Cavity; 132. Return spring; 133. Moving block; 134. Limiting post; 135. Sliding block; 136. Push block; 14. Limiting hole; 15. Slide groove; 16. Fixing ring; 17. Reinforcing rib; 18. Positioning block; 19. Positioning groove; 20. Reflective strip; 21. Anti-rust coating. Detailed Implementation

[0021] Example

[0022] refer to Figures 1 to 4 The reinforced communication tower described in this embodiment includes a cement block 1. Threaded columns 2 are symmetrically cast on the upper end of the cement block 1 near the chamfer. An mounting base 3 is installed on the upper end of the cement block 1. Through holes 4 are symmetrically opened on the upper end of the mounting base 3 near the chamfer. The threaded columns 2 pass through the through holes 4 and are threadedly connected to nuts 5. A tower body 6 is welded to the upper end of the mounting base 3. Assembly blocks 12 are symmetrically fixedly connected on the upper end of the mounting base 3 near the chamfer. Limiting components 13 are installed inside the assembly blocks 12.

[0023] The limiting assembly 13 includes a cavity 131, a return spring 132, a moving block 133, a limiting post 134, a slider 135, and a pusher 136. The assembly block 12 has a cavity 131 inside. A return spring 132 is fixedly connected to one end of the cavity 131, and a moving block 133 is fixedly connected to the other end of the return spring 132. The moving block 133 is slidably connected to the cavity 131. A limiting post 134 is fixedly connected to the end of the moving block 133 away from the return spring 132. The other end of the limiting post 134 extends out of the side of the assembly block 12. A slider 135 is fixedly connected to the upper end of the moving block 133. The other end of the slider 135 extends out of the upper end of the assembly block 12 and is fixedly connected to the pusher 136. The outer end of the nut 5... Each surface has a limiting hole 14, and the limiting post 134 is inserted into the limiting hole 14. The upper end of the assembly block 12 has a sliding groove 15, which is connected to the inside of the cavity 131. The slider 135 is slidably connected to the sliding groove 15. Pushing the push block 136 causes the slider 135 to move the moving block 133 and the limiting post 134. The moving block 133 presses against the return spring 132, and the return spring 132 is compressed. The limiting post 134 retracts into the cavity 131. Then, the nut 5 is threadedly connected to the threaded post 2. The push block 136 is released, the return spring 132 is reset, and the moving block 133 rebounds, causing the limiting post 134 to pop out. The limiting post 134 is inserted into the limiting hole 14, thus completing the limiting of the nut 5.

[0024] refer to Figure 1 A reinforcing seat 7 is welded to the upper end of the mounting base 3. A first flange 9 and a second flange 10 are fixedly welded to the outer wall of the tower body 6. Threaded holes 11 are symmetrically opened at the upper ends of the reinforcing seat 7, the first flange 9, and the second flange 10 through a circular circumferential array. A reinforcing screw 8 is threadedly connected inside the threaded hole 11. The reinforcing screw 8 is threadedly connected to the threaded hole 11 on the first flange 9 on the tower body 6. Then, the reinforcing screw 8 is rotated to thread it to the second flange 10. Then, the reinforcing screw 8 is rotated to thread it to the threaded hole 11 on the reinforcing seat 7. The reinforcing screw 8 is then threadedly connected to the first flange 9, the second flange 10, and the reinforcing seat 7 in sequence.

[0025] refer to Figure 1 A fixing ring 16 is fixedly welded to the outer wall of the tower body 6. A reinforcing rib 17 is symmetrically welded to the bottom of the fixing ring 16 through a circular array. The other end of the reinforcing rib 17 is fixedly connected to the upper end of the cement block 1. The fixing ring 16 and the reinforcing rib 17 can increase the stability and load-bearing capacity of the tower body 6 and prevent the tower from swaying or tilting under natural disasters such as strong winds and earthquakes.

[0026] refer to Figure 2 A positioning block 18 is fixedly connected to the center of the bottom of the mounting base 3. A positioning groove 19 is opened at the center of the upper end of the cement block 1. The positioning block 18 and the positioning groove 19 are inserted into each other. When the tower body 6 together with the mounting base 3 is placed on the cement block 1, the positioning block 18 is inserted into the positioning groove 19.

[0027] refer to Figure 1 A reflective strip 20 is fixedly connected to the outside of the tower body 6. The outside of the tower body 6 is coated with an anti-rust coating 21. The anti-rust coating 21 is made of cold-dip galvanized paint. The reflective strip 20 can reflect the surrounding light, making the communication tower more conspicuous, especially at night or in low-light environments. The anti-rust coating 21 can form a protective film on the surface of the tower, effectively isolating air, moisture and other corrosive substances, thereby preventing the tower from rusting and corroding.

[0028] Operating principle and advantages: First, place the tower body 6 along with the mounting base 3 onto the cement block 1. Insert the positioning block 18 into the positioning groove 19, and simultaneously, threaded post 2 penetrates the through hole 4. Then, push the push block 136, causing the slider 135 to move the moving block 133 and the limiting post 134. The moving block 133 presses against the return spring 132, compressing the return spring 132. The limiting post 134 retracts into the cavity 131. Then, thread the nut 5 onto the threaded post 2, loosen the push block 136, and the return spring 132 returns to its original position. The moving block 135 then retracts into the cavity 131. 3. The rebound causes the limiting post 134 to pop out, and the limiting post 134 is inserted into the limiting hole 14 to complete the limiting of the nut 5. Finally, the reinforcing screw 8 is threaded to the threaded hole 11 on the first flange 9 on the tower body 6. Then, the reinforcing screw 8 is rotated to make the reinforcing screw 8 threaded to the second flange 10. Then, the reinforcing screw 8 is rotated to make the reinforcing screw 8 threaded to the threaded hole 11 on the reinforcing seat 7. The reinforcing screw 8 is threaded to the first flange 9, the second flange 10, and the reinforcing seat 7 in sequence.

[0029] This invention ensures that the nut 5 will not move or loosen when subjected to external force, thereby maintaining the overall stability of the tower and helping to prevent the tower from tilting or collapsing. It also effectively prevents the nut 5 from falling off or being damaged due to loosening, thereby reducing the risk of the tower tilting or collapsing and protecting the safety of the surrounding environment and personnel.

Claims

1. A reinforced communication tower, comprising a concrete pier (1), characterized in that: The cement block (1) is symmetrically cast with threaded columns (2) near the chamfer at the upper end. The cement block (1) is equipped with an installation seat (3). The installation seat (3) is symmetrically provided with through holes (4) near the chamfer at the upper end. The threaded column (2) passes through the through hole (4) and is threaded with a nut (5). The tower body (6) is welded to the upper end of the installation seat (3). The installation seat (3) is symmetrically fixed with an assembly block (12) near the chamfer at the upper end. The assembly block (12) is equipped with a limit component (13). The limiting component (13) includes a cavity (131), a return spring (132), a moving block (133), a limiting post (134), a slider (135), and a push block (136). The assembly block (12) has a cavity (131) inside. A return spring (132) is fixedly connected to one end of the cavity (131), and a moving block (133) is fixedly connected to the other end of the return spring (132). The moving block (133) is slidably connected to the cavity (131). A limiting post (136) is fixedly connected to the end of the moving block (133) away from the return spring (132). 34), the other end of the limiting post (134) extends out of the side end of the assembly block (12), the upper end of the moving block (133) is fixedly connected to the slider (135), the other end of the slider (135) extends out of the upper end of the assembly block (12) and is fixedly connected to the push block (136), the outer end face of the nut (5) is provided with limiting holes (14), the limiting post (134) and the limiting hole (14) are inserted into each other, the upper end of the assembly block (12) is provided with a sliding groove (15), the sliding groove (15) is connected to the inside of the cavity (131), and the slider (135) and the sliding groove (15) are slidably connected.

2. The reinforced communication tower according to claim 1, characterized in that: The mounting base (3) is welded with a reinforcing base (7) at its upper end. The outer side wall of the tower body (6) is fixedly welded with a first flange (9) and a second flange (10). The upper ends of the reinforcing base (7), the first flange (9) and the second flange (10) are symmetrically provided with threaded holes (11) in a circular circumferential array. The threaded holes (11) are threaded with reinforcing screws (8).

3. A ruggedized communication tower according to claim 1, characterized in that: The outer wall of the iron tower body (6) is fixedly welded with a fixing ring (16), and the bottom end of the fixing ring (16) is symmetrically welded with a reinforcing rib (17) through a ring-shaped circumferential array. The other end of the reinforcing rib (17) is fixedly connected to the upper end of the cement block (1).

4. A ruggedized communication tower according to claim 1, characterized in that: The mounting base (3) has a fixed connection to the center of the bottom end of a positioning block (18), and the cement block (1) has a positioning groove (19) at the center of the upper end. The positioning block (18) and the positioning groove (19) are inserted into each other.

5. A ruggedized communication tower according to claim 1, characterized in that: The outer side of the iron tower body (6) is fixedly connected with a reflective strip (20), and the outer side of the iron tower body (6) is sprayed with an anti-rust coating (21), the material of the anti-rust coating (21) is cold galvanized paint.

Citation Information

Patent Citations

  • Reinforced communication iron tower

    CN220151045U