A safe integrated single-pipe tower

CN224742116UActive Publication Date: 2026-09-11峻江建设有限公司
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Patent Information

Application Number
CN202521890132.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-03
Publication Date
2026-09-11
Estimated Expiration
2035-09-03

AI Technical Summary

Technical Problem

为了保证单管塔的稳定性,会对单管塔进行加固,现有加固装置如分体式支撑结构存在明显局限:各支撑部件彼此独立,缺乏部件间的整体配合与联动机制,难以形成协同受力体系,从而导致侧向力难以在多个支撑部件间实现均衡传递与分流,只能局限于局部区域传递,分散效果大打折扣,导致侧向力分散不佳,在长期使用中,易引发材料疲劳,还会造成单管塔本体不规则晃动,连接松动进一步弱化支撑效果,严重影响整体稳定性

Benefits of technology

[0015]1、通过支撑杆一、支撑杆二与紧固装置围合形成的三角形框架结构,利用三角形的稳定性显著提升了单管塔的整体支撑强度和抗倾覆能力,有效应对复杂环境下的外力作用;

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Abstract

The utility model discloses a safe integrated single -tube tower, including single -tube tower body and pole climbing, single -tube tower body outside is equipped with reinforcing component, and reinforcing component includes support rod no.
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Description

Technical Field

[0001] This utility model relates to the field of single-tube tower technology, and in particular to a safe integrated single-tube tower. Background Technology

[0002] In fields such as communication base stations and power transmission, monotube towers must withstand lateral forces generated by strong winds and earthquakes over long periods, which can lead to tilting, deformation, or even collapse. Therefore, it is crucial to efficiently disperse these forces to ensure the safety and stability of the tower. To ensure the stability of monotube towers, they are reinforced. However, existing reinforcement devices, such as split-type support structures, have significant limitations: each support component is independent, lacking an overall coordination and linkage mechanism between components, making it difficult to form a coordinated force-bearing system. Consequently, lateral forces cannot be evenly transmitted and distributed among multiple support components, but can only be transmitted in localized areas, greatly reducing the dispersion effect. This leads to poor lateral force dispersion, which can easily cause material fatigue during long-term use, as well as irregular swaying of the monotube tower body. Loose connections further weaken the support effect, seriously affecting the overall stability. Utility Model Content

[0003] To address the aforementioned issues, this utility model provides a safe integrated single-tube tower. By optimizing and reinforcing the components of the single-tube tower body, the overall support strength and anti-overturning ability of the single-tube tower are improved, thereby enhancing operational safety.

[0004] The technical solution of this utility model is as follows:

[0005] A safe integrated single-tube tower includes a single-tube tower body and climbing poles. A reinforcement assembly is provided on the outer side of the single-tube tower body. The reinforcement assembly includes a first support rod and a fixing ring hinged to one end of the first support rod. The fixing ring is detachably connected to the single-tube tower body. Second support rods are movably connected to both sides of the middle of the first support rod, and the two second support rods are symmetrically distributed. Each second support rod is equipped with a sliding sleeve, and a fastening device connects the sliding sleeves. The single-tube tower body is situated within a triangular frame structure formed by the first support rod, the second support rod, and the fastening device. The bottom ends of the first and second support rods are hinged to the foundation.

[0006] The working principle of the above technical solution is as follows:

[0007] In the specific installation of this utility model of a safe integrated single-tube tower, the bottom end of support rod one is first connected to the preset hinge point on the foundation. One end of two symmetrically distributed support rods two is movably connected to the two sides of the middle part of support rod one, and the other end is also connected to the preset hinge point on the foundation. Then, according to the position of the top of support rod one on the single-tube tower body, the installation fixing ring is adjusted and hinged to the top of support rod one. The sliding sleeve slides on support rod two to a suitable position, and then the relative position of the sliding sleeve is fixed by a fastening device. Support rod one provides support force to one side of the single-tube tower body, and support rod two provides support force to support rod one from both sides. The fastening device transmits and balances the support force on both sides by tightening the two support rods two. This allows the force to be distributed to each side of the triangular frame when the single-tube tower body is subjected to forces from different directions, thereby forming multi-directional support for the single-tube tower body and avoiding excessive local stress that could lead to structural damage.

[0008] This invention enhances the overall support strength and anti-overturning capability of a single-tube tower through the coordinated design of a stable triangular frame and an adjustable fastening device, reducing safety hazards while also taking into account ease of installation and structural adaptability.

[0009] In a further technical solution, the fixing ring is a detachable structure and fits snugly against the outer wall of the single-tube tower body. The detachable part of the fixing ring is provided with a connecting block, and the connecting block is provided with a fixing through hole with matching hole position. The fixing through hole is provided with a fastener. The fixing ring as a whole has an arc-shaped structure that matches the curvature of the outer wall of the single-tube tower body, so that it can fit tightly against the outer wall of the single-tube tower body. The connecting blocks at both ends are connected by fasteners passing through the fixing through hole, so as to realize the circumferential fixation of the fixing ring to the single-tube tower body. The detachable connection method facilitates the installation and removal of the fixing ring and improves the operational flexibility.

[0010] In a further technical solution, the fastener is a bolt and a nut. The bolt passes through the fixing through hole and is threadedly connected to the nut to achieve the fastening of the fixing ring to the single-tube tower body.

[0011] In a further technical solution, the fastening device includes a fastening cylinder, both ends of which are provided with threaded sleeves. The left and right threaded sleeves are respectively threaded with screws, and the thread directions of the two threaded sleeves are opposite. The other end of the screw is movably connected to the sliding sleeve. When the threaded sleeve is rotated, and in conjunction with the sliding sleeve, the screw extends and retracts along the sleeve axis under the action of the thread, thereby precisely adjusting the triangular frame structure and enhancing the support strength of the reinforcement component.

[0012] In a further technical solution, the climbing pole is located outside the connection between the two support rods and the fastening device, so that the force generated during climbing is in opposite balance with the supporting force of the reinforcement component, thus offsetting part of the additional torque.

[0013] In a further technical solution, the second support rod is provided with a sliding groove, and the sliding sleeve is provided with a slider that matches the sliding groove, so as to ensure the stability and straightness of the sliding sleeve when sliding on the second support rod, avoid jamming or displacement during the sliding process, ensure that the fastening device can be precisely adjusted, and maintain the stability of the triangular frame structure.

[0014] The beneficial effects of this utility model are:

[0015] 1. The triangular frame structure formed by the support rod one, support rod two and fastening device significantly improves the overall support strength and anti-overturning ability of the single tube tower by utilizing the stability of the triangle, and effectively copes with the external forces in complex environments.

[0016] 2. The detachable retaining ring, adjustable fastening device, and sliding block structure give the reinforcement components good adaptability and maintainability, enabling them to adapt to single-tube towers of different specifications or complex environments, while also facilitating installation and subsequent adjustments. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of the safety-type integrated single-tube tower described in this embodiment of the utility model;

[0018] Figure 2 This is a structural schematic diagram of the reinforcement component.

[0019] Explanation of reference numerals in the attached figures:

[0020] 10. Single-tube tower body; 20. Climbing rod; 30. Support rod one; 40. Fixing ring; 41. Connecting block; 42. Bolt; 50. Support rod two; 51. Sliding sleeve; 52. Fastening cylinder; 53. Threaded sleeve; 54. Screw; 55. Slide groove. Detailed Implementation

[0021] The embodiments of this utility model will be further described below with reference to the accompanying drawings.

[0022] Example:

[0023] A type of safe integrated single-tube tower, such as Figure 1 and Figure 2As shown, the structure includes a single-tube tower body 10 and climbing poles 20. A reinforcement assembly is provided on the outside of the single-tube tower body 10. The reinforcement assembly includes a support rod 30 and a fixing ring 40 hinged to one end of the support rod 30. The fixing ring 40 is detachably connected to the single-tube tower body 10. Support rods 50 are movably connected to both sides of the middle of the support rod 30, and the two support rods 50 are symmetrically distributed. Sliding sleeves 51 are installed on both support rods 50, and fastening devices are connected between the sliding sleeves 51. The single-tube tower body 10 is placed within a triangular frame structure formed by the support rods 30, 50, and the fastening devices. The bottom ends of the support rods 30 and 50 are hinged to the foundation, and adjustable lengths are reserved at the hinge points.

[0024] In the specific installation of this utility model's safety-type integrated single-tube tower, the bottom end of support rod 30 is first connected to the preset hinge point on the foundation. One end of each of the two symmetrically distributed support rods 50 is movably connected to the two sides of the middle section of support rod 30, and the other end is also connected to the preset hinge point on the foundation. Then, according to the position of the top of support rod 30 on the single-tube tower body 10, the installation fixing ring 40 is adjusted and hinged to the top of support rod 30. The hinge points between the bottom ends of support rod 30 and support rod 50 and the foundation are reserved with adjustable length (such as using a telescopic section with an adjusting nut or setting a long hole on the hinge seat to fit the bolt 42 for fixing), allowing for fine-tuning of the length during installation. To avoid installation failure or abnormal structural stress due to construction errors, the sliding sleeve 51 slides on the second support rod 50 to a suitable position, and then the relative position of the sliding sleeve 51 is fixed by the fastening device. The first support rod 30 provides support force to one side of the single-tube tower body 10, and the second support rod 50 provides support force to the first support rod 30 from both sides. The fastening device transmits and balances the support force on both sides by tightening the two second support rods 50, so that when the single-tube tower body 10 is subjected to forces from different directions, the force can be distributed to each side of the triangular frame, thereby forming multi-directional support for the single-tube tower body 10 and avoiding excessive local stress that could lead to structural damage.

[0025] This invention enhances the overall support strength and anti-overturning capability of a single-tube tower through the coordinated design of a stable triangular frame and an adjustable fastening device, reducing safety hazards while also taking into account ease of installation and structural adaptability.

[0026] In another embodiment, the fixing ring 40 is a detachable structure and fits against the outer wall of the single-tube tower body 10. The detachable part of the fixing ring 40 is provided with a connecting block 41. The connecting block 41 is provided with a fixing through hole with matching hole position. The fixing through hole is provided with a fastener. The fixing ring 40 as a whole has an arc-shaped structure that matches the curvature of the outer wall of the single-tube tower body 10, so that it can fit tightly against the outer wall of the single-tube tower body 10. The connecting blocks 41 at both ends are connected by fasteners passing through the fixing through hole, so as to realize the circumferential fixation of the fixing ring 40 to the single-tube tower body 10. The detachable connection method facilitates the installation and removal of the fixing ring 40 and improves the operational flexibility.

[0027] In another embodiment, the fasteners are bolt 42 and nut. Bolt 42 passes through the fixing through hole and is threadedly connected to nut to achieve the fastening of fixing ring 40 to single-tube tower body 10.

[0028] In another embodiment, the fastening device includes a fastening cylinder 52, with threaded sleeves 53 at both ends. The left and right threaded sleeves 53 are respectively threaded with screws 54, and the threads of the two threaded sleeves 53 are opposite in direction. The other end of the screw 54 is movably connected to a sliding sleeve 51. When the threaded sleeve 53 is rotated, and in conjunction with the sliding sleeve 51, the screw 54 extends and retracts along the sleeve axis under the action of the threads, thereby precisely adjusting the triangular frame structure and enhancing the support strength of the reinforcement component.

[0029] In another embodiment, the climbing pole 20 is located outside the connection between the two support poles 2 50 and the fastening device, so that the force generated during climbing is in opposite balance with the supporting force of the reinforcement component, thus offsetting part of the additional torque.

[0030] In another embodiment, the second support rod 50 is provided with a groove 55, and the sliding sleeve 51 is provided with a slider that matches the groove 55, so as to ensure the stability and straightness of the sliding sleeve 51 when sliding on the second support rod 50, avoid jamming or displacement during the sliding process, and ensure that the fastening device can be precisely adjusted to maintain the stability of the triangular frame structure.

[0031] The embodiments described above merely illustrate specific implementations of this utility model, and while the descriptions are detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these modifications and improvements all fall within the protection scope of this utility model.

Claims

1. A safety integrated monopole tower comprising a monopole tower body and a pole climber, characterized in that: The single-tube tower body is equipped with a reinforcement assembly on its outer side. The reinforcement assembly includes a first support rod and a fixing ring hinged to one end of the first support rod. The fixing ring is detachably connected to the single-tube tower body. The second support rod is movably connected to both sides of the middle of the first support rod, and the two second support rods are symmetrically distributed. Each of the two second support rods is equipped with a sliding sleeve, and a fastening device is connected between the sliding sleeves. The single-tube tower body is placed within a triangular frame structure formed by the first support rod, the second support rod, and the fastening device. The bottom ends of the first support rod and the second support rod are hinged to the foundation.

2. The safety integrated monopole tower of claim 1, wherein, The fixing ring is a detachable structure and fits against the outer wall of the single-tube tower body. The detachable part of the fixing ring is provided with a connecting block. The connecting block is provided with a fixing through hole with matching hole position, and a fastener is provided on the fixing through hole.

3. The safety integrated monopole tower of claim 2, wherein, The fasteners are bolts and nuts, with the bolts passing through a fixing hole and then threadedly connected to the nuts.

4. The safety-type integrated single-tube tower according to claim 1, characterized in that, The fastening device includes a fastening cylinder, both ends of which are provided with threaded sleeves. The left and right threaded sleeves are respectively threaded with screws, and the threads of the two threaded sleeves are in opposite directions. The other end of the screw is movably connected to the sliding sleeve.

5. The safety-type integrated single-tube tower according to claim 1, characterized in that, The climbing pole is located outside the connection between the two support rods and the fastening device.

6. The safety integrated monopole tower of claim 1, wherein, The second support rod is provided with a sliding groove, and the sliding sleeve is provided with a slider that matches the sliding groove.