Quickly-installed bionic tree communication tower
By introducing positioning rods and nut screwing components into the bionic tree communication tower, combined with the telescopic tower body structure, the problem of inefficient docking between the tower body and the foundation is solved, and a fast and safe installation process is achieved.
Patent Information
- Application Number
- CN202511012221.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-22
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2045-07-22
AI Technical Summary
In the installation process of the existing bionic tree communication tower, the docking link between the tower body and the foundation is inefficient, complex in operation, and high safety risks, especially the alignment of the bolt holes is time-consuming and requires multiple people to operate together.
The positioning rod is arranged at the top of the foundation, and the tower body is equipped with a nut screwing assembly and a telescopic tower structure. The positioning rod is used to quickly lock the horizontal position of the tower body, and the nut screwing assembly is used to realize the synchronous screwing nut. The guide bar is used to guide the docking of the telescopic tower with the block structure.
It improves the convenience and accuracy of tower installation, shortens the installation cycle, reduces safety hazards and labor costs, and expands the scope of application.
Smart Images

Figure CN120537460A_ABST
Abstract
Description
Technical Field
[0001] The embodiments of the present invention relate to the technical field of communication towers, and in particular, to a quickly installed bionic tree communication tower. Background Art
[0002] The widespread use of mobile devices like smartphones and tablets has led to explosive growth in mobile internet users. Users' demand for high-speed, stable network connections continues to rise, requiring telecom operators to continuously expand network coverage and increase the number of communication towers to meet the growing demand for data traffic. Whether between high-rise buildings in cities or in remote rural and mountainous areas, communication towers are needed to ensure effective signal coverage.
[0003] To better integrate communication towers into their surroundings and minimize the aesthetic impact of urban or natural landscapes, the concept of bionic tree communication towers has emerged. By mimicking the appearance of natural trees, these towers resemble surrounding trees in form, minimizing their negative impact on the landscape. This design not only meets communication needs but also preserves the local landscape to a certain extent, increasing public acceptance of communication tower construction.
[0004] Currently, the typical installation process for a bionic tree communication tower involves pouring a concrete foundation and pre-embedded bolts. The pre-assembled tower is then hoisted using lifting equipment and slowly moved above the foundation, ultimately securing the tower to the foundation. This critical and time-consuming process involves aligning the tower with the foundation. Due to the tower's large size and weight, it is susceptible to swaying during installation due to factors such as wind and the stability of the lifting equipment. This requires two to three workers working together from below, using crowbars or pulling ropes to align the bolt holes at the tower's base with the pre-embedded bolts in the foundation.
[0005] In actual operation, the alignment process has obvious defects: First, it is inefficient because it needs to take into account both the horizontal position of the tower (to avoid tilting) and the circumferential angle (aligning with the bolt holes) at the same time. A single alignment often takes 30-60 minutes. If the embedded bolts are positioned incorrectly or the tower shakes too much, repeated adjustments are required, and it may even take 1-2 hours to complete the alignment. Second, the operation is complicated. Workers need to continuously exert force to adjust while hoisting, which consumes a lot of physical energy and requires the cooperation of multiple people, increasing labor costs. Third, there are prominent safety hazards. The shaking of the tower may cause uneven force on the hoisting equipment, posing a risk of overturning. At the same time, workers are in close contact with the suspended tower, which can easily cause collision accidents due to sudden displacement of the tower.
[0006] Therefore, there is obvious room for optimization in the installation process of the existing bionic tree communication tower, especially the connection between the tower body and the foundation. 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] In order to overcome the above-mentioned defects, the present invention provides a quickly installed bionic tree communication tower, which solves the technical problem in the related art that it is inconvenient to align bolt holes and embedded bolts during the tower installation process.
[0008] According to one aspect, at least one embodiment of the present invention provides a quickly installed bionic tree communication tower, comprising a foundation, a tower body arranged on the foundation, and a bionic decoration arranged on the tower body. The top of the foundation is also provided with a plurality of positioning rods extending upward and distributed circumferentially. The positioning rods can be passed 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 the present disclosure provides a quick-installation bionic tree communication tower, wherein the tower body has bolt holes that pass through the tower body from top to bottom, and the foundation is provided with embedded bolts corresponding to the bolt holes one by one, and the upper ends of the embedded bolts are threadedly connected with upper nuts and lower nuts, and a nut screwing assembly is rotatably provided on the tower body, and the nut screwing assembly is used to screw the upper nut and the lower nut.
[0010] For example, at least one embodiment of the present disclosure provides a quick-install bionic tree communication tower, wherein the outer peripheral wall of the lower nut has a tooth portion 1, and the nut screwing assembly includes a lower turntable rotatably mounted on the tower body and a telescopic rod 1 radially movable on the lower turntable, the outer end of the telescopic rod 1 is provided with a rack 1 extending circumferentially along the lower turntable, and the rack 1 is configured to engage with the tooth portion 1 after the telescopic rod 1 moves radially outward, and screw the lower nut under the drive of the lower turntable.
[0011] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein the outer peripheral wall of the upper nut is provided with a second tooth portion, and the nut screwing assembly further comprises an upper turntable rotatably sleeved on the tower body, and a second telescopic rod radially movable on the outer peripheral wall of the upper turntable, the outer end of the second telescopic rod is provided with a second rack extending along the circumference of the lower turntable, the upper turntable is located above the lower turntable, the second telescopic rod is arranged at an angle to the first telescopic rod, and the end of the first telescopic rod away from the first rack is provided with a connecting rod extending vertically. The connecting rod is provided with a rack three extending radially along the upper turntable, the telescopic rod two has a tooth portion three, and the upper turntable is rotatably provided with a gear located between the rack three and the tooth portion three. The rack three and the tooth portion three are both engaged with the gear, and the movement 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 tooth portion one, and the rack is driven to rotate by the rack three to drive the rack two to move radially outward to engage with the tooth portion two.
[0012] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein the nut tightening assembly also includes a synchronous disk rotatably mounted on the tower body, the synchronous disk is located above the upper turntable, and the synchronous disk has an arc-shaped through-hole extending vertically therethrough, the top end of the connecting rod is slidably connected to the arc-shaped through-hole, and the synchronous disk is configured to drive the connecting rod to slide in the arc-shaped through-hole after rotation, so as to drive all the telescopic rods 1 to move, and drive the telescopic rod 2 to move in the opposite direction relative to the telescopic rod 1 with the help of the rack 3 and the gear.
[0013] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein the tower body includes a base tower and a telescopic tower, the base tower is arranged on the foundation, the lower part of the telescopic tower is slidably arranged in the base tower, the inner peripheral wall of the base tower is provided with an axially extending guide bar, the outer peripheral wall of the telescopic tower is provided with a groove that slides with the guide bar, a radially movable block is penetrated through the peripheral wall of the base tower, and a slot that plugs into the block is provided on the outer peripheral wall of the telescopic tower, and the telescopic tower is configured to slide up until the groove is disengaged from the guide bar, and then be able to rotate circumferentially until the slot corresponds to the block for insertion of the block.
[0014] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein an elastic member is provided on the inner peripheral wall of the base tower, and the other end of the elastic member is provided on the card block to provide force for the card block to be radially inserted into the card slot.
[0015] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein the outer peripheries of the base tower and the telescopic tower are both provided with climbing frames, and the inner peripheral wall of the base tower has an axially extending avoidance groove, which is used to avoid the climbing frame on the outer periphery of the telescopic tower.
[0016] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein the guide bar is arranged at an angle to the adjacent bolt hole, and the positioning rod is also arranged at the same angle to the adjacent embedded bolt. The positioning rod is configured to abut against the side end face of the guide bar after the tower body is rotated to align the bolt hole and the embedded bolt.
[0017] For example, at least one embodiment of the present disclosure provides a quickly installed bionic tree communication tower, wherein the bionic ornament is arranged at the top of the telescopic tower, and the lower end of the guide bar has a lower limit block, and the lower limit block is used to limit the downward movement range of the telescopic tower so that the bionic ornament is located above the tower body.
[0018] The beneficial effects of the embodiments of the present invention are: In the present invention, by arranging a positioning rod on the top of the foundation, during the installation of the tower body, the positioning rod can quickly lock the horizontal position of the tower body, reducing the time and difficulty of manually adjusting the position and angle of the tower body, making the tower body installation more convenient and efficient, and greatly shortening the installation period of the communication tower; in addition, the abutment between the positioning rod and the inner wall of the tower body can ensure that the tower body remains horizontal during the installation process and is accurately aligned with the embedded bolts on the foundation, thereby improving the accuracy of the installation and reducing the safety hazards and subsequent maintenance costs caused by inaccurate installation; and whether in different terrain conditions such as mountainous areas, plains or cities, the positioning rod can effectively assist the installation of the tower body, adapt to the differences in foundation flatness and different operating spaces, ensure that the communication tower can be smoothly installed in various environments, and expand the scope of application of the communication tower. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] To more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly describes the drawings required for describing the embodiments of the present invention. Obviously, the drawings described below are merely exemplary embodiments of the present invention. Those skilled in the art can, without inventive effort, derive other drawings based on the contents of the exemplary embodiments of the present invention and these drawings.
[0020] Figure 1 A schematic structural diagram of a communication tower in a three-dimensional perspective according to an embodiment of the present invention; Figure 2 for Figure 1 A schematic structural diagram of the basic embodiment of the present invention; Figure 3 for Figure 2 A schematic structural diagram of a nut screwing assembly in an embodiment of the present invention; Figure 4 for Figure 1 A schematic structural diagram of the connecting rod, rack three and telescopic rod two in the embodiment; Figure 5 for Figure 1 A schematic structural diagram of the interior of the tower body in the embodiment of FIG. Figure 6 for Figure 5 A schematic structural diagram of a partial cross-section of the tower body in an embodiment of the present invention; Figure 7 for Figure 5 A schematic structural diagram of a telescopic tower in an embodiment of the present invention; Figure 8 for Figure 5 A schematic structural diagram of a base tower in an embodiment of the present invention; In the figure: 1. Foundation; 11. Positioning rod; 12. Embedded bolt; 13. Upper nut; 131. Tooth part 2; 14. Lower nut; 141. Tooth part 1; 2. Tower body; 21. Bolt hole; 22. Base tower; 221. Guide bar; 222. Block; 223. Elastic member; 224. Avoidance groove; 225. Lower limit block; 23. Telescopic tower; 231. Groove; 232. Slot; 24. Climbing frame; 3. Bionic decoration; 4. Nut screwing assembly; 41. Lower turntable; 42. Telescopic rod 1; 421. Rack 1; 422. Connecting rod; 423. Rack 3; 43. Upper turntable; 44. Telescopic rod 2; 441. Rack 2; 442. Tooth part 3; 45. Gear; 46. Synchronous disk; 461. Arc-shaped through hole. DETAILED DESCRIPTION
[0021] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention, rather than to limit the present invention.
[0022] To simplify the drawings, only portions relevant to the invention are schematically depicted in each figure; they do not represent the actual structure of the product. Furthermore, to simplify the drawings and facilitate understanding, in some figures, only one component with the same structure or function is schematically depicted or labeled. In this document, "one" not only means "only one" but also "more than one," and "several" includes "two" and "more than two."
[0023] It should be noted that, unless otherwise specified or limited, the terms "mounted," "connected," and "connected" should be understood broadly. For example, they can refer to fixed, detachable, or integral connections; mechanical or electrical connections; direct or indirect connections through an intermediary; and internal communication between two components. Those skilled in the art will understand the specific meanings of these terms in the present invention based on the specific circumstances.
[0024] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Furthermore, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.
[0025] In the description of this embodiment, the terms "up", "down", "left", "right", etc., and the orientation or position relationship are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be understood as a limitation on the present invention.
[0026] In addition, in the description of the present application, the terms "first", "second", etc. are only used to distinguish the description and cannot be understood as indicating or implying relative importance.
[0027] like Figures 1 to 3 As shown, it shows a quickly installed bionic tree communication tower in one embodiment of the present invention. In some examples, the foundation 1 adopts the existing construction method. According to the design requirements of the communication tower, a foundation pit is excavated, a steel skeleton is tied in the foundation pit, and the positioning rod 11 is fixed. Finally, concrete is poured to form the foundation 1. Taking two positioning rods 11 as an example, they are located in a straight line. The spacing between the two positioning rods 11 is equal to the inner diameter length 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 part of the bottom of the tower body 2 is aligned with the long positioning rod 11 and lowered. After covering part of the positioning rod 11, the crane moves the tower body 2 so that its inner wall is tightly against the long positioning rod. Rod 11, since the distance between the two positioning rods 11 is just equal to the inner diameter of the tower body 2, after the inner circumferential wall of the tower body 2 abuts the long positioning rod 11, it continues to be lowered. After reaching the top of 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 can also abut against the short positioning rod 11, and then the tower body 2 is continued 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 and making it inconvenient to align the bolt holes 21 and the embedded bolts 12. After lowering the tower body 2 until it reaches the top of the embedded bolts 12, the tower body 2 is rotated so that the bolt holes 21 and the embedded bolts 12 are aligned, and then the tower body 2 is lowered to fit with the foundation 1. Compared with the method of simply using a crane to lift the tower body 2 and align the horizontal and circumferential positions of the tower body 2 at the same time, this method can prevent the tower body 2 from tilting and install the tower body 2 more quickly.
[0028] For example, Figure 2 As shown, the benefits of such an arrangement are: by arranging a positioning rod 11 on the top of the foundation 1, during the installation of the tower body 2, the positioning rod 11 can quickly lock the horizontal position of the tower body 2, 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 period of the communication tower; in addition, the abutment between the positioning rod 11 and the inner 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 embedded bolts 12 on the foundation 1, thereby improving the accuracy of the installation and reducing the safety hazards and subsequent maintenance costs caused by inaccurate installation.
[0029] like Figures 1 to 4 As shown, a bionic tree communication tower for rapid installation in one embodiment of the present invention is shown. In some examples, during actual installation, two nuts are generally used on the 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 synchronously tighten all the nuts on each layer. The nut tightening assembly 4 includes a synchronous disk 46, a nut screwing assembly ... The upper turntable 43 and the lower turntable 41 are all capable of rotating. The synchronization disk 46 has an arcuate through hole 461. The upper turntable 43 and the lower turntable 41 have a through slot 1 and a through slot 2 connected vertically. The arcuate through hole 461 is connected to the through slot 1 and the through slot 2. The through slot 2 of the lower turntable 41 also extends radially, and a telescopic rod 1 42 is arranged therein. The telescopic rod 1 42 has a connecting rod 422 extending upward. The connecting rod 422 passes through the through slot 1 of the upper turntable 43 and extends into the arcuate through hole 461. Figure 4 As shown, the portion of the connecting rod 422 located in the through slot 1 of the upper turntable 43 is also provided with a rack 3 423, and a through slot 4 is provided on the right side of the rack 3 423 for the telescopic rod 2 44 to move radially, and the through slot 4 is connected to the through slot 1 where the rack 3 423 is located, and the connecting portion is provided with a gear 45 that can rotate along its own axis, and the gear 45 is meshed with the rack 3 423 and the tooth portion 3 442 on the telescopic rod 2 44, and the rack 1 421 at the outer end of the telescopic rod 1 42 is meshed with the tooth portion 141 of the lower nut 14, and the rack 2 441 at the outer end of the telescopic rod 2 44 is meshed with the tooth portion 2 131 of the upper nut 13, so when the synchronous disk 46 is rotated, the arcuate through hole 461 will push the connecting rod 422 to move radially, gradually moving outward or inward. During movement, due to the cooperation of the rack 3 423, the gear 45 and the tooth portion 3 442, the telescopic rod 2 44 will move with the telescopic rod 1 42 When the cam 421 is in engagement with the toothed portion 141, the connecting rod 422 is located at the end position of the arc through hole 461, and the limit of the upper turntable 43 and the lower turntable 41 is released. After the cam 421 is in engagement with the toothed portion 141, the connecting rod 422 is located at the end position of the arc through hole 461, and the limit of the upper turntable 43 and the lower turntable 41 is released. After the cam 421 is in engagement with the toothed portion 141, the lower turntable 41 and the upper turntable 43 are driven to rotate as a whole. That is, the rack 421 rotates around the center to screw the lower nut 14. The same applies when screwing on the nut 13.
[0030] It should be noted that during the movement of telescopic rod 1 42 and telescopic rod 2 44, the lower turntable 41 and the upper turntable 43 can rely on friction to remain stationary or be temporarily limited manually to ensure that after the telescopic rod 1 42 or telescopic rod 2 44 moves outward, the lower turntable 41 and the upper turntable 43 rotate as a whole.
[0031] For example, Figure 3 As shown, the advantage of such a setting is that the screwing operation of the lower nut 14 and the upper nut 13 can be completed collaboratively under the drive of a nut screwing assembly 4. During the screwing process of the lower nut 14, the screwing action of the upper nut 13 is linked through mechanical transmission, thereby realizing the separate screwing of the lower nut 14 and the upper nut 13 without interfering with each other, and realizing efficient and coordinated nut screwing. Compared with the method of screwing the nuts one by one, the installation time is shortened, manpower is saved, and the installation efficiency is greatly improved.
[0032] like Figures 1 to 8 As shown, it shows a quickly installed bionic tree communication tower in one embodiment of the present invention. In some examples, in order to reduce the space occupied by the tower body 2 during transportation, the tower body 2 is designed to be retractable. The tower body 2 is divided into two parts: a base tower 22 and a telescopic tower 23. The telescopic tower 23 can be retracted and partially stored inside the base tower 22. The bionic decoration 3 on the telescopic tower 23 does not follow into the base tower 22. A guide bar 221 is installed on the inner peripheral wall of the base tower 22, and a groove 231 is correspondingly provided on the outer peripheral wall of the telescopic tower 23. During transportation, the groove 231 of the telescopic tower 23 is stuck on the guide bar 221 of the base tower 22 and stored inside. A radially movable block 222 is also provided at the top position of the base tower 22, and a card slot 2 is correspondingly provided at the bottom of the telescopic tower 23. 32. After the telescopic tower 23 is unfolded from the base tower 22, the groove 231 will be disengaged from the guide bar 221. At this time, the telescopic tower 23 is rotated. When the slot 232 is aligned with the block 222, the block 222 will automatically snap into the slot 232 under the action of the elastic member 223, locking the circumferential position of the telescopic tower 23. At the same time, after the telescopic tower 23 is rotated, the groove 231 and the guide bar 221 are no longer aligned. The guide bar 221 will give the telescopic tower 23 a certain upward supporting force. During 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 with a crane and the tower body 2 is docked with the foundation 1. The positioning rod 11 can also support the telescopic tower 23.
[0033] For example, Figure 5As shown, the advantage of such a configuration is that the insertion and lifting of the telescopic tower 23 can be accurately guided by the cooperation between the guide bar 221 and the groove 231, thereby avoiding the shaking of the telescopic tower 23 during transportation and causing unnecessary damage; and the configuration of the clamping block 222 and the clamping groove 232 allows the telescopic tower 23 to be locked only after it is rotated, thereby avoiding the telescopic tower 23 being directly locked after being accidentally pulled out and unable to be retracted into the base tower 22. It can be locked again as needed, and after rotation, the circumferential position can be locked on the one hand, and the axial position can be locked on the other hand. The guide bar 221 can provide support for the telescopic tower 23, thereby ensuring the stability of the telescopic tower 23 during installation.
[0034] like Figure 1 As shown, it shows a quickly installed bionic tree communication tower in one embodiment of the present invention. In some examples, a climbing frame 24 is provided on both the telescopic tower 23 and the base tower 22, and an avoidance groove 224 is also provided inside the base tower 22 so as not to interfere with the climbing frame 24 when the telescopic tower 23 is pulled out.
[0035] like Figure 5 As shown, it shows a quickly installed bionic tree communication tower in one embodiment of the present invention. In some examples, the angle formed by the line formed from the positioning rod 11 to the center point and the line formed from the adjacent embedded bolt 12 to the center point is set to be consistent with the angle formed by the line formed from the guide bar 221 to the center point and the line formed from the adjacent bolt hole 21 to the center point, for example, it can be 10°~30°. In this way, when the tower body 2 is lowered along the positioning rod 11, the tower body 2 can be rotated until the guide bar 221 abuts against the positioning rod 11. At this time, the bolt hole 21 and the embedded bolt 12 are just aligned, and there is no need to laboriously find the alignment position.
[0036] 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 it from tilting, and then rotating the tower body 2 until the side end of the positioning rod 11 abuts against the side end of the guide bar 221. At this time, the bolt holes 21 on the tower body 2 just coincide with the embedded bolts 12 on the foundation 1, and then the tower body 2 is lowered along the positioning rod 11 until it docks with the foundation 1, and finally the nuts are tightened to complete the installation.
[0037] For example, Figure 5 As shown, the advantages of such a setting are: on the one hand, the use of the positioning rod 11 can quickly find the docking position of the bolt hole 21 of the tower body 2 and the embedded bolt 12 of the foundation 1, avoiding the inconvenience caused by the hanging tower body 2 and shaking it while finding the horizontal and circumferential positions in the prior art, and can quickly install the tower body 2, shortening the installation time and improving the installation efficiency; on the other hand, it can avoid the problems of inaccurate installation caused by shaking when installing the tower body 2 in the prior art.
[0038] like Figure 5The figure shows a quick-install bionic tree communication tower in one embodiment of the present invention. In some examples, a relief groove 224 is provided within the base tower 22 to accommodate the climbing frame 24 on the telescopic tower 23, preventing interference during extension and retraction. A lower limit block 225 is also provided at the bottom of the guide bar 221 to limit the lowest position of the telescopic tower 23 and prevent bionic decorations 3 on the telescopic tower 23, such as tree branches, from entering the base tower 22 and causing damage.
[0039] 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 the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. A quickly installed bionic tree communication tower, comprising a foundation (1), a tower body (2) arranged on the foundation (1), and a bionic decoration (3) arranged on the tower body (2), characterized in that: The top of the foundation (1) is further provided with a plurality of positioning rods (11) extending upward and distributed at intervals in the circumferential direction. The positioning rods (11) can be passed through the tower body (2) and abut against the inner peripheral wall of the tower body (2) to limit and lock the horizontal position of the tower body (2).
2. A fast-installed bionic tree communication tower according to claim 1, characterized in that: The tower body (2) is provided with bolt holes (21) extending vertically therethrough; the foundation (1) is provided with embedded bolts (12) corresponding one-to-one to the bolt holes (21); upper ends of the embedded bolts (12) are threadedly connected to upper nuts (13) and lower nuts (14); a nut screwing assembly (4) is rotatably sleeved on the tower body (2); and the nut screwing assembly (4) is used to screw the upper nut (13) and the lower nut (14).
3. The fast-installed bionic tree communication tower according to claim 2, characterized in that: The outer peripheral wall of the lower nut (14) is provided with a tooth portion (141), and the nut screwing assembly (4) includes a lower turntable (41) rotatably sleeved on the tower body (2) and a telescopic rod (42) radially movable on the lower turntable (41), and the outer end of the telescopic rod (42) is provided with a rack (421) extending along the circumference of the lower turntable (41), and the rack (421) is configured to engage with the tooth portion (141) after the telescopic rod (42) moves radially outward, and screw the lower nut (14) under the drive of the lower turntable (41).
4. The fast-installed bionic tree communication tower according to claim 3, characterized in that: The outer peripheral wall of the upper nut (13) is provided with a second tooth portion (131), and the nut screwing assembly (4) further comprises an upper turntable (43) rotatably sleeved on the tower body (2), and a second telescopic rod (44) radially movable on the outer peripheral wall of the upper turntable (43), the outer end of the second telescopic rod (44) is provided with a second rack (441) extending along the circumference of the lower turntable (41), the upper turntable (43) is located above the lower turntable (41), the second telescopic rod (44) is provided at an angle to the first telescopic rod (42), the end of the first telescopic rod (42) away from the first rack (421) is provided with a vertically extending connecting rod (422), and the connecting rod (422) is provided with a tooth extending radially along the upper turntable (43). The telescopic rod (44) has a tooth portion (442), and the upper turntable (43) is provided with a gear (45) located between the rack (423) and the tooth portion (442). The rack (423) and the tooth portion (442) are both engaged with the gear (45). The moving direction of the telescopic rod (44) is opposite to that of the telescopic rod (42). After the telescopic rod (42) moves, the telescopic rod (42) can move radially inward to disengage the rack (421) from the tooth portion (141), and drive the gear (45) to rotate through the rack (423) to drive the rack (441) to move radially outward to engage with the tooth portion (131).
5. The fast-installed bionic tree communication tower according to claim 4, characterized in that: The nut screwing assembly (4) further includes a synchronous disk (46) rotatably mounted on the tower body (2), the synchronous disk (46) being located above the upper turntable (43), and having an arc-shaped through hole (461) extending vertically therethrough, the top end of the connecting rod (422) being slidably connected in the arc-shaped through hole (461), and the synchronous disk (46) being configured to rotate and drive the connecting rod (422) to slide in the arc-shaped through hole (461), so as to drive all the telescopic rods (42) to move, and drive the telescopic rods (44) to move in the opposite direction relative to the telescopic rods (42) by means of the rack (423) and the gear (45).
6. The fast-installed bionic tree communication tower according to claim 2, characterized in that: The tower body (2) comprises a base tower (22) and a telescopic tower (23), wherein the base tower (22) is arranged on the foundation (1), and the lower part of the telescopic tower (23) is slidably arranged in the base tower (22), an axially extending guide bar (221) is provided on the inner peripheral wall of the base tower (22), and a groove (231) slidably matched with the guide bar (221) is provided on the outer peripheral wall of the telescopic tower (23), a radially movable block (222) is provided through the peripheral wall of the base tower (22), and a slot (232) plug-fitted with the block (222) is provided on the outer peripheral wall of the telescopic tower (23), and the telescopic tower (23) is configured to slide upward to the groove (231) and disengage from the guide bar (221), and then be able to rotate circumferentially until the slot (232) corresponds to the block (222) for insertion of the block (222).
7. The fast-installed bionic tree communication tower according to claim 6, characterized in that: An elastic member (223) is provided on the inner peripheral wall of the base tower (22), and the other end of the elastic member (223) is provided on the clamping block (222) for providing a force for clamping the clamping block (222) into the clamping groove (232) in a radial direction.
8. The fast-installed bionic tree communication tower according to claim 6, characterized in that: The outer peripheries of the base tower (22) and the telescopic tower (23) are both provided with climbing frames (24), and the inner peripheral wall of the base tower (22) is provided with an axially extending avoidance groove (224), and the avoidance groove (224) is used to avoid the climbing frame (24) on the outer periphery of the telescopic tower (23).
9. The fast-installed bionic tree communication tower according to claim 6, characterized in that: The guide bar (221) is arranged at an angle with the adjacent bolt hole (21), and the positioning rod (11) is also arranged at the same angle with the adjacent embedded bolt (12). The positioning rod (11) is configured to abut against the side end surface of the guide bar (221) after the tower body (2) rotates, so that the bolt hole (21) and the embedded bolt (12) are aligned.
10. The fast-installed bionic tree communication tower according to claim 6, characterized in that: The bionic ornament (3) is arranged at the top of the telescopic tower (23), and the lower end of the guide bar (221) has a lower limit block (225), and the lower limit block (225) is used to limit the downward movement of the telescopic tower (23) so that the bionic ornament (3) is located above the tower body (2).
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