Quickly installed bionic tree communication tower

CN120537460BActive Publication Date: 2026-08-21HEBEI GUANCHEN COMM EQUIP CO LTD
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Patent Information

Application Number
CN202511012221.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-22
Publication Date
2026-08-21
Estimated Expiration
2045-07-22

AI Technical Summary

Technical Problem

[0007]为克服上述缺陷,本发明提供了一种快速安装的仿生树通信塔,解决了相关技术中塔体安装过程中不便对齐螺栓孔和预埋螺栓的技术问题

Benefits of technology

本发明中,通过在基础顶部设置定位杆,在塔体安装过程中,定位杆能够快速锁定塔体的水平位置,减少了人工调整塔体位置和角度的时间和难度,使塔体安装更加便捷高效,大大缩短了通信塔的安装周期;另外,定位杆与塔体内周壁的抵接能够确保塔体在安装过程中保持水平,与基础上的预埋螺栓准确对准,提高了安装的准确性,降低了因安装不准确导致的安全隐患和后续维护成本;而且无论是在山区、平原还是城市等不同地形条件下,定位杆都能有效地辅助塔体安装,适应基础平整度的差异和不同的操作空间,保证通信塔在各种环境下都能顺利安装,扩大了通信塔的适用范围。

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Abstract

The application relates to the technical field of communication towers, and provides a quick-to-install bionic tree communication tower which comprises a foundation, a tower body arranged on the foundation and bionic decorations arranged on the tower body, the top of the foundation is further provided with a plurality of positioning rods which extend upwards and are distributed in a circumferential interval, the positioning rods can be arranged in the tower body and abut against the inner circumferential wall of the tower body so as to limit and lock the horizontal position of the tower body. Through the technical scheme, the technical problem that it is inconvenient to align bolt holes and embedded bolts in the tower body installation process in the related art is solved, the positioning rods can be used to quickly sleeve the tower body to lock the horizontal position of the tower body, then the bolt holes and the embedded bolts can be aligned only by rotating the tower body, compared with simultaneously aligning the horizontal and circumferential positions of the tower body, the installation is more convenient and quicker.
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Description

Technical Field

[0001] The embodiments of the present invention relate to the field of communication tower technology, and more specifically, to a biomimetic tree communication tower that can be installed quickly. Background Technology

[0002] The widespread use of mobile devices such as smartphones and tablets has led to an explosive growth in the number of mobile internet users. Users' demands for high-speed, stable network connections are constantly increasing, requiring telecommunications operators to continuously expand the coverage of their networks and increase the number of communication towers to meet the ever-growing demand for data traffic. Whether in urban high-rises or remote rural areas and mountainous regions, communication towers are needed to achieve effective signal coverage.

[0003] To better integrate communication towers into their surroundings and avoid detracting from the aesthetics of urban or natural landscapes, the concept of biomimetic tree-shaped communication towers has gradually emerged. These towers mimic the appearance of natural trees, making them similar in shape to the surrounding trees and reducing their negative impact on the landscape. This design not only meets communication needs but also, to some extent, protects local landscape features and increases public acceptance of communication tower construction.

[0004] Currently, the installation process for bionic tree communication towers typically involves: first, pouring a concrete foundation and pre-embedding bolts; then, using hoisting equipment, lifting the pre-assembled tower body and slowly moving it above the foundation, finally connecting and fixing the tower body to the foundation. The connection between the tower body and the foundation is a crucial and time-consuming step: due to the tower's large size and weight, it is susceptible to swaying during hoisting due to wind force and the instability of the hoisting equipment. Two to three workers are needed below the tower to assist in adjustments, using pry bars to move the tower or pulling ropes to align the bolt holes at the bottom of the tower with the pre-embedded bolts on the foundation.

[0005] In practice, this alignment process has obvious drawbacks: First, it is inefficient. Because it is necessary to simultaneously consider the horizontal position of the tower (to avoid tilting) and the circumferential angle (to align the bolt holes), a single alignment often takes 30-60 minutes. If there is a deviation in the positioning of the pre-embedded bolts or excessive swaying of the tower, repeated adjustments are required, and in some cases, alignment cannot be completed even after 1-2 hours. Second, the operation is complex. Workers need to exert continuous force to adjust the tower while it is in a suspended state, which consumes a lot of physical strength and requires multiple people to work together, increasing labor costs. Third, there are prominent safety hazards. The swaying of the tower may cause uneven stress on the hoisting equipment, posing a risk of overturning. At the same time, workers are in close contact with the suspended tower and are prone to collision accidents due to sudden displacement of the tower.

[0006] Therefore, the existing installation process of bionic tree communication towers, especially the connection between the tower body and the foundation, has significant room for optimization. There is an urgent need for a technical solution that can simplify the alignment operation, improve installation efficiency, and reduce safety risks. Summary of the Invention

[0007] To overcome the above-mentioned defects, the present invention provides a biomimetic tree communication tower that can be installed quickly, solving the technical problem of inconvenience in aligning bolt holes and pre-embedded bolts during tower installation in related technologies.

[0008] According to one aspect, at least one embodiment of the present invention provides a quick-installation bionic tree communication tower, including a base, a tower body disposed on the base, and bionic decorations disposed on the tower body. The top of the base is further provided with a plurality of upwardly extending and circumferentially spaced positioning rods, which can pass through the tower body and abut against the inner peripheral wall of the tower body to limit and lock the horizontal position of the tower body.

[0009] For example, at least one embodiment of this disclosure provides a quick-installation bionic tree communication tower, wherein the tower body has bolt holes that run vertically through it, and the foundation is provided with pre-embedded bolts that correspond one-to-one with the bolt holes. The upper end of the pre-embedded bolts is threadedly connected with an upper nut and a lower nut, and a nut tightening assembly is rotatably sleeved on the tower body. The nut tightening assembly is used to tighten the upper nut and the lower nut.

[0010] For example, at least one embodiment of this disclosure provides a quick-installation biomimetic tree communication tower, wherein the outer peripheral wall of the lower nut has a toothed portion, and the nut tightening assembly includes a lower turntable rotatably sleeved on the tower body and a telescopic rod radially movable on the lower turntable. The outer end of the telescopic rod is provided with a rack extending circumferentially along the lower turntable. The rack is configured to engage with the toothed portion after the telescopic rod moves radially outward, and tighten the lower nut under the drive of the lower turntable.

[0011] For example, at least one embodiment of this disclosure provides a quick-installation biomimetic tree communication tower. The outer peripheral wall of the upper nut has two teeth. The nut tightening assembly further includes an upper turntable rotatably mounted on the tower body, and a telescopic rod two radially movable on the outer peripheral wall of the upper turntable. The outer end of the telescopic rod two is provided with a rack two extending circumferentially along the lower turntable. The upper turntable is located above the lower turntable. The telescopic rod two is set at an angle to the telescopic rod one. The end of the telescopic rod one away from the rack one is provided with a vertically extending connecting rod. The connecting rod is provided with a rack three extending radially along the upper turntable. The telescopic rod two has a toothed portion three. A gear is rotatably provided on the upper turntable between the rack three and the toothed portion three. Both the rack three and the toothed portion three mesh with the gear. The moving direction of the telescopic rod two is opposite to that of the telescopic rod one. After the telescopic rod one moves, the telescopic rod one can move radially inward to disengage the rack one from the toothed portion one, and drive the rack three to rotate so as to drive the rack two to move radially outward to mesh with the toothed portion two.

[0012] For example, at least one embodiment of this disclosure provides a quick-installation biomimetic tree communication tower, wherein the nut tightening assembly further includes a rotatable synchronous disc sleeved on the tower body, the synchronous disc being located above the upper turntable, the synchronous disc having an arc-shaped through hole running vertically through it, the top end of the connecting rod being slidably connected to the arc-shaped through hole, the synchronous disc being configured to rotate and drive the connecting rod to slide within the arc-shaped through hole, thereby driving all of the first telescopic rods to move, and driving the second telescopic rod to move in the opposite direction relative to the first telescopic rod through the rack and pinion.

[0013] For example, at least one embodiment of this disclosure provides a quick-installation biomimetic tree communication tower, the tower body including a base tower and a telescopic tower, the base tower being disposed on the base, the lower part of the telescopic tower being slidably disposed within the base tower, the inner peripheral wall of the base tower having an axially extending guide strip, the outer peripheral wall of the telescopic tower having a groove that slidably engages with the guide strip, the peripheral wall of the base tower having a radially movable locking block penetrating through it, the outer peripheral wall of the telescopic tower having a locking groove that engages with the locking block, the telescopic tower being configured to slide upward until the groove disengages from the guide strip, and then be circumferentially rotated until the locking groove corresponds to the locking block for the locking block to be inserted.

[0014] For example, at least one embodiment of this disclosure provides a quick-installation biomimetic tree communication tower, wherein an elastic element is provided on the inner peripheral wall of the base tower, and the other end of the elastic element is disposed on the locking block for providing a force for the locking block to be inserted radially into the locking slot.

[0015] For example, at least one embodiment of this disclosure provides a quick-installation biomimetic tree communication tower, wherein climbing frames are provided on the outer periphery of both the base tower and the telescopic tower, and an axially extending clearance groove is provided on the inner peripheral wall of the base tower for avoiding the climbing frames on the outer periphery of the telescopic tower.

[0016] For example, at least one embodiment of this disclosure provides a quick-installation bionic tree communication tower, wherein the bionic decoration is disposed at the top of the telescopic tower, and the lower end of the guide strip has a lower limit block, which is used to limit the downward movement of the telescopic tower so that the bionic decoration is located above the tower body.

[0017] The beneficial effects of the embodiments of the present invention are as follows: In this invention, by setting a positioning rod at the top of the foundation, the positioning rod can quickly lock the horizontal position of the tower during the tower installation process, reducing the time and difficulty of manually adjusting the position and angle of the tower, making the tower installation more convenient and efficient, and greatly shortening the installation cycle of the communication tower. In addition, the contact between the positioning rod and the inner circumferential wall of the tower ensures that the tower remains horizontal during installation and is accurately aligned with the pre-embedded bolts on the foundation, improving the accuracy of installation and reducing safety hazards and subsequent maintenance costs caused by inaccurate installation. Moreover, regardless of different terrain conditions such as mountainous areas, plains, or cities, the positioning rod can effectively assist in the installation of the tower, adapt to differences in foundation flatness and different operating spaces, and ensure that the communication tower can be installed smoothly in various environments, expanding the application range of the communication tower. Attached Figure Description

[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments of the present invention will be briefly introduced below. Obviously, the drawings described below are merely some exemplary embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the content of the exemplary embodiments of the present invention and these drawings without any creative effort.

[0019] Figure 1 This is a three-dimensional structural diagram of a communication tower in one embodiment of the present invention; Figure 2 for Figure 1 A basic structural diagram of the embodiment; Figure 3 for Figure 2 A schematic diagram of the nut tightening assembly in the embodiment; Figure 4 for Figure 1 The schematic diagram of the connecting rod, rack three, and telescopic rod two in the embodiment is shown below; Figure 5 for Figure 1 A schematic diagram of the internal structure of the tower body in the embodiment; Figure 6 for Figure 5 A schematic diagram of the cross-section of the tower body in the embodiment; Figure 7 for Figure 5 A schematic diagram of the telescopic tower in the embodiment; Figure 8 for Figure 5 A schematic diagram of the base tower structure in the embodiment; In the diagram: 1. Foundation; 11. Positioning rod; 12. Embedded bolt; 13. Upper nut; 131. Gear part two; 14. Lower nut; 141. Gear part one; 2. Tower body; 21. Bolt hole; 22. Base tower; 221. Guide bar; 222. Locking block; 223. Elastic element; 224. Clearance groove; 225. Lower limit block; 23. Telescopic tower; 231. Groove; 232. Locking slot; 24. Climbing frame; 3. Bionic decoration; 4. Nut tightening assembly; 41. Lower turntable; 42. Telescopic rod one; 421. Rack one; 422. Connecting rod; 423. Rack three; 43. Upper turntable; 44. Telescopic rod two; 441. Rack two; 442. Gear part three; 45. Gear; 46. Synchronizing disc; 461. Arc-shaped through hole. Detailed Implementation

[0020] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and not intended to limit it.

[0021] To keep the drawings concise, each drawing only schematically shows the parts relevant to the invention; these do not represent the actual structure of the product. Furthermore, for ease of understanding, in some drawings, only one of components with the same structure or function is schematically shown, or only one is labeled. In this document, "one" not only means "only one," but can also mean "more than one," and "several" includes "two" and "more than two."

[0022] In this document, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to mechanical connections or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0023] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0024] In the description of this embodiment, terms such as "upper," "lower," "left," and "right" are based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of description and simplification of operation, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the present invention.

[0025] Furthermore, in the description of this application, the terms "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0026] like Figures 1-3 As shown, this illustrates a rapid-installation biomimetic tree communication tower according to one embodiment of the present invention. In some examples, the foundation 1 employs existing construction methods. According to the design requirements of the communication tower, a foundation pit is excavated, a steel reinforcement frame is tied within the pit, and positioning rods 11 are fixed. Finally, concrete is poured to form the foundation 1. Two positioning rods 11 are used as an example, positioned in a straight line. The distance between the two positioning rods 11 is equal to the inner diameter of the tower body 2, and can be set to one long and one short. When installing the tower body 2, a crane is used to lift the tower body 2, and then the hollow portion at the bottom of the tower body 2 is aligned with the longer positioning rod 11 and lowered. After partially covering the positioning rod 11, the crane moves the tower body 2 so that its inner circumferential wall tightly abuts against the longer positioning rod 11. Since the distance between the two positioning rods 11 is exactly equal to the inner diameter of the tower body 2, after the inner circumferential wall of the tower body 2 abuts against the long positioning rod 11, it continues to be lowered. After reaching above the short positioning rod 11, the tower body 2 is rotated around the long positioning rod 11 until the inner circumferential wall of the tower body 2 also abuts against the short positioning rod 11. Then, the tower body 2 continues to be lowered. The two positioning rods 11 support the inner wall of the tower body 2, which can lock the horizontal position of the tower body 2 and prevent the tower body 2 from tilting in the horizontal direction, which would make it difficult to align the bolt holes 21 and the pre-embedded bolts 12. After the tower body 2 is lowered until it reaches above the pre-embedded bolts 12, the tower body 2 is rotated to align the bolt holes 21 and the pre-embedded bolts 12, and then the tower body 2 is lowered to fit against the foundation 1. Compared with simply using a crane to lift the tower body 2 and simultaneously align the horizontal and circumferential positions of the tower body 2, this method can prevent the tower body 2 from tilting and install the tower body 2 more quickly.

[0027] For example, such as Figure 2 As shown, the advantages of this setup are: by setting a positioning rod 11 on the top of the foundation 1, the positioning rod 11 can quickly lock the horizontal position of the tower body 2 during the installation process, reducing the time and difficulty of manually adjusting the position and angle of the tower body 2, making the installation of the tower body 2 more convenient and efficient, and greatly shortening the installation cycle of the communication tower; in addition, the contact between the positioning rod 11 and the inner circumferential wall of the tower body 2 can ensure that the tower body 2 remains horizontal during the installation process and is accurately aligned with the pre-embedded bolts 12 on the foundation 1, improving the accuracy of the installation and reducing safety hazards and subsequent maintenance costs caused by inaccurate installation.

[0028] like Figures 1-4 As shown, this illustrates a quick-installation bionic tree communication tower according to one embodiment of the present invention. In some examples, during actual installation, two nuts are typically used on the pre-embedded bolts 12 to lock the tower body 2 and the foundation 1. Usually, the nuts are tightened manually one by one, which is time-consuming and labor-intensive. Therefore, a nut tightening assembly 4 is provided to simultaneously tighten all the nuts on each layer. The nut tightening assembly 4 includes a synchronization disc 46 that is sequentially fitted from top to bottom at the bottom of the tower body 2. All three—upper turntable 43 and lower turntable 41—can rotate. The synchronous disc 46 has an arc-shaped through hole 461. The upper turntable 43 and lower turntable 41 have vertically connected through slots one and two. The arc-shaped through hole 461 connects to through slots one and two. Through slot two of the lower turntable 41 extends radially and contains a telescopic rod 42. The telescopic rod 42 has an upwardly extending connecting rod 422. The connecting rod 422 passes through through slot one of the upper turntable 43 and extends into the arc-shaped through hole 461. Figure 4 As shown, the connecting rod 422 located in the slot 1 of the upper turntable 43 is also provided with a rack 3 423. A slot 4 is provided on the right side of the rack 3 423 for the telescopic rod 2 44 to move radially. The slot 4 communicates with the slot 1 where the rack 3 423 is located. A gear 45 that can rotate along its own axis is provided in the communicating part. The gear 45 meshes with the teeth 3 442 on both the rack 3 423 and the telescopic rod 2 44. The rack 1 421 at the outer end of the telescopic rod 1 42 meshes with the teeth 141 of the lower nut 14, and the rack 2 441 at the outer end of the telescopic rod 2 44 meshes with the teeth 2 131 of the upper nut 13. Therefore, when the synchronous disc 46 is rotated, the arc-shaped through hole 461 will push the connecting rod 422 to move radially, gradually moving outwards or inwards. During this movement, due to the cooperation of the rack 3 423, the gear 45, and the teeth 3 442, the telescopic rod 2 44 will move along with the telescopic rod 1 42. To perform synchronized reverse movement, the upper turntable 43 and lower turntable 41 can be manually limited to prevent them from rotating circumferentially. In other words, when the lower nut 14 needs to be tightened, the synchronous disc 46 is rotated to push the connecting rod 422 outward. At this time, the telescopic rod 42 drives the rack 421 to gradually approach the lower nut 14 and eventually engage with the tooth 141. Meanwhile, the telescopic rod 44 moves inward in the opposite direction and does not engage with the tooth 131 of the upper nut 13, thus not interfering with the tightening of the lower nut 14. After the rack 421 and the tooth 141 are engaged, the connecting rod 422 is also at the end of the arc-shaped through hole 461, releasing the limitation on the upper turntable 43 and lower turntable 41. Continuing to rotate the synchronous disc 46 will drive the lower turntable 41 and upper turntable 43 to rotate as a whole, that is, the rack 421 rotates around the center to tighten the lower nut 14. The same applies when tightening nut 13.

[0029] It should be noted that during the movement of telescopic rod 42 and telescopic rod 44, the lower turntable 41 and the upper turntable 43 can be kept stationary by friction or temporarily limited by manual means to ensure that the lower turntable 41 and the upper turntable 43 rotate as a whole after the telescopic rod 42 or the telescopic rod 44 moves outward.

[0030] For example, such as Figure 3 As shown, the advantage of this setup is that the tightening operations of the lower nut 14 and the upper nut 13 can be completed collaboratively under the drive of a single nut tightening assembly 4. During the tightening process of the lower nut 14, the tightening action of the upper nut 13 is linked through mechanical transmission, realizing the individual tightening of the lower nut 14 and the upper nut 13 without interfering with each other, achieving efficient collaborative nut tightening. Compared with the method of tightening nuts one by one, it shortens the installation time, saves manpower, and greatly improves the installation efficiency.

[0031] like Figures 1-8 As shown, this invention illustrates a quick-installation bionic tree communication tower according to one embodiment. In some examples, to reduce the space occupied by the tower body 2 during transportation, the tower body 2 is designed to be telescopic. The tower body 2 is divided into two parts: a base tower 22 and a telescopic tower 23. The telescopic tower 23 is telescopic and partially retracts into the base tower 22. The bionic ornaments 3 on the telescopic tower 23 do not follow into the base tower 22. A guide strip 221 is installed on the inner peripheral wall of the base tower 22, and a corresponding groove 231 is provided on the outer peripheral wall of the telescopic tower 23. During transportation, the groove 231 of the telescopic tower 23 is engaged with the guide strip 221 of the base tower 22 and retracts into the interior. A radially movable locking block 222 is also provided at the top of the base tower 22, and a corresponding locking groove 231 is provided at the bottom of the telescopic tower 23. 32. After the telescopic tower 23 unfolds from the base tower 22, the groove 231 will disengage from the guide bar 221. At this time, rotate the telescopic tower 23. When the slot 232 aligns with the block 222, the block 222 will automatically engage with the slot 232 under the action of the elastic element 223, locking the circumferential position of the telescopic tower 23. At the same time, after the telescopic tower 23 rotates, the groove 231 and the guide bar 221 will no longer align. The guide bar 221 will provide a certain upward support force to the telescopic tower 23. In actual operation on site, the tower body 2 is initially placed horizontally on the ground. The telescopic tower 23 can be pulled outward and rotated to achieve positioning with the help of tools or equipment. Then, the tower body 2 is lifted by a crane and connected to the foundation 1. The positioning rod 11 can also provide support for the telescopic tower 23.

[0032] For example, such as Figure 5As shown, the advantages of this design are: the cooperation between the guide bar 221 and the groove 231 can accurately guide the insertion and lifting of the telescopic tower 23, avoiding shaking of the telescopic tower 23 during transportation and causing unnecessary damage; the setting of the locking block 222 and the locking groove 232 ensures that the telescopic tower 23 can only be locked after it rotates, avoiding the telescopic tower 23 being locked directly after being accidentally pulled out and unable to retract back into the base tower 22. It can be locked again as needed. After rotation, it can lock the circumferential position on the one hand and the axial position on the other hand. The guide bar 221 can provide support for the telescopic tower 23, ensuring the stability of the telescopic tower 23 during installation.

[0033] like Figure 1 As shown, it illustrates a quick-installation bionic tree communication tower according to one embodiment of the present invention. In some examples, climbing frames 24 are provided on both the telescopic tower 23 and the base tower 22. The base tower 22 also has an avoidance groove 224 inside, which does not interfere with the climbing frame 24 when the telescopic tower 23 is pulled outward.

[0034] When installing the tower body 2, the tower body 2 can be quickly put onto the positioning rod 11 with the help of the design of the long and short positioning rods 11, locking the horizontal position of the tower body 2 to prevent tilting. Then rotate the tower body 2 until the side end of the positioning rod 11 abuts against the side end of the guide strip 221. At this time, the bolt hole 21 on the tower body 2 just coincides with the pre-embedded bolt 12 on the foundation 1. Then lower the tower body 2 along the positioning rod 11 until it is connected with the foundation 1. Finally, tighten the nut to complete the installation.

[0035] For example, such as Figure 5 As shown, the advantages of this setup are: Firstly, the use of the positioning rod 11 can quickly locate the mating position of the bolt holes 21 of the tower body 2 and the pre-embedded bolts 12 of the foundation 1, avoiding the inconvenience caused by swaying the tower body 2 while searching for the horizontal and circumferential positions in the prior art, thus enabling the tower body 2 to be installed quickly, shortening the installation time and improving the installation efficiency; secondly, it can avoid the problems of inaccurate installation caused by swaying when installing the tower body 2 in the prior art.

[0036] like Figure 5 As shown, this illustrates a quick-installation bionic tree communication tower according to one embodiment of the present invention. In some examples, the base tower 22 is also provided with a clearance groove 224 to accommodate the climbing frame 24 on the telescopic tower 23, preventing interference during telescopic movement. The bottom of the guide bar 221 is also provided with a lower limit block 225 to limit the lowest position of the telescopic tower 23, preventing bionic decorations 3 on the telescopic tower 23, such as tree branches, from entering the base tower 22 and causing damage.

[0037] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.

Claims

1. A quick-installation biomimetic tree communication tower, comprising a base (1), a tower body (2) disposed on the base (1), and biomimetic decorative items (3) disposed on the tower body (2), characterized in that, The top of the foundation (1) is also provided with several upwardly extending and circumferentially spaced positioning rods (11). The positioning rods (11) can be inserted into the tower body (2) and abut against the inner circumferential wall of the tower body (2) to limit and lock the horizontal position of the tower body (2). The tower body (2) has bolt holes (21) that run vertically through it. The foundation (1) is provided with embedded bolts (12) that correspond one-to-one with the bolt holes (21). The upper end of the embedded bolts (12) is threaded with an upper nut (13) and a lower nut (14). The tower body (2) is rotatably fitted with a nut tightening assembly (4). The nut tightening assembly (4) is used to tighten the upper nut (13) and the lower nut (14). The lower nut (14) has a toothed portion (141) on its outer peripheral wall. The nut tightening assembly (4) includes a lower turntable (41) rotatably mounted on the tower body (2) and a telescopic rod (42) radially movable on the lower turntable (41). The outer end of the telescopic rod (42) is provided with a rack (421) extending circumferentially along the lower turntable (41). The rack (421) is configured to engage with the toothed portion (141) after the telescopic rod (42) moves radially outward, and tighten the lower nut (14) under the drive of the lower turntable (41). The upper nut (13) has a toothed portion (131) on its outer peripheral wall. The nut tightening assembly (4) also includes an upper turntable (43) rotatably mounted on the tower body (2) and a telescopic rod (44) radially movable on the outer peripheral wall of the upper turntable (43). The outer end of the telescopic rod (44) is provided with a rack (441) extending circumferentially along the lower turntable (41). The upper turntable (43) is located above the lower turntable (41). The telescopic rod (44) is set at an angle with the telescopic rod (42). The end of the telescopic rod (42) away from the rack (421) is provided with a vertically extending connecting rod (422). The connecting rod (422) is provided with teeth extending radially along the upper turntable (43). The telescopic rod 2 (44) has a toothed part 3 (442). The upper turntable (43) is rotatably provided with a gear (45) located between the rack 3 (423) and the toothed part 3 (442). Both the rack 3 (423) and the toothed part 3 (442) mesh with the gear (45). The moving direction of the telescopic rod 2 (44) is opposite to that of the telescopic rod 1 (42). After the telescopic rod 1 (42) moves, the telescopic rod 1 (42) can move radially inward to disengage the rack 1 (421) from the toothed part 1 (141), and drive the gear (45) to rotate through the rack 3 (423) to drive the rack 2 (441) to move radially outward to mesh with the toothed part 2 (131).

2. The biomimetic tree communication tower for rapid installation according to claim 1, characterized in that, The nut tightening assembly (4) also includes a rotatable timing disc (46) mounted on the tower body (2). The timing disc (46) is located above the upper turntable (43). The timing disc (46) has an arc-shaped through hole (461) that runs vertically through the tower. The top end of the connecting rod (422) is slidably connected to the arc-shaped through hole (461). The timing disc (46) is configured to rotate and drive the connecting rod (422) to slide within the arc-shaped through hole (461) to drive all the telescopic rods (42) to move and, with the help of the rack (423) and the gear (45), drive the telescopic rod (44) to move in the opposite direction relative to the telescopic rod (42).

3. The biomimetic tree communication tower for rapid installation according to claim 1, characterized in that, The tower body (2) includes a base tower (22) and a telescopic tower (23). The base tower (22) is set on the foundation (1). The lower part of the telescopic tower (23) is slidably set in the base tower (22). The inner peripheral wall of the base tower (22) is provided with an axially extending guide strip (221). The outer peripheral wall of the telescopic tower (23) has a groove (231) that slides and engages with the guide strip (221). The peripheral wall of the base tower (22) is provided with a radially movable locking block (222). The outer peripheral wall of the telescopic tower (23) is provided with a locking groove (232) that engages with the locking block (222). The telescopic tower (23) is configured to slide upward until the groove (231) disengages from the guide strip (221), and then rotate circumferentially until the locking groove (232) corresponds to the locking block (222) for the locking block (222) to be inserted.

4. The biomimetic tree communication tower for rapid installation according to claim 3, characterized in that, The inner peripheral wall of the base tower (22) is provided with an elastic element (223), and the other end of the elastic element (223) is provided on the locking block (222) to provide a force for the locking block (222) to be inserted into the locking groove (232) radially.

5. A biomimetic tree communication tower for rapid installation according to claim 3, characterized in that, Both the base tower (22) and the telescopic tower (23) are provided with climbing frames (24) on their outer periphery. The inner peripheral wall of the base tower (22) has an axially extending clearance groove (224) for avoiding the climbing frames (24) on the outer periphery of the telescopic tower (23).

6. A biomimetic tree communication tower for rapid installation according to claim 3, characterized in that, The biomimetic ornament (3) is placed at the top of the telescopic tower (23), and the lower end of the guide strip (221) has a lower limit block (225). The lower limit block (225) is used to limit the downward movement of the telescopic tower (23) so that the biomimetic ornament (3) is located above the tower body (2).

Citation Information

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