Adjustable Communication Landscape Tower

By designing an adjustable communication landscape tower, the tower height is adjusted using hydraulic rods and a drive mechanism to reduce wind resistance and protect the communication modules. This solves the problems of stability and signal instability of traditional communication landscape towers under strong typhoons, and improves the tower's wind resistance and signal stability.

CN117071975BActive Publication Date: 2025-10-318TELECOM INT HLDG CO LTD
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Patent Information

Application Number
CN202311228448.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-22
Publication Date
2025-10-31
Estimated Expiration
2043-09-22

AI Technical Summary

Technical Problem

Traditional communication landmark towers are constructed by welding steel components, resulting in a fixed structure. However, they are vulnerable to strong winds during typhoons, making them prone to breaking and collapsing. Furthermore, antennas at higher elevations are easily broken or damaged, leading to unstable signals.

Method used

The adjustable communication landscape tower design includes a base, middle section plate, middle section pole, top pole, and communication module. The tower height is adjusted by hydraulic rods, inner core shaft, and drive mechanism to reduce wind resistance, and the communication module is protected by shielding plates and telescopic covers to enhance the stability of the tower.

Benefits of technology

It effectively reduces the impact of strong winds on the tower, decreases the degree of tower swaying, protects the communication module from damage, and ensures signal stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention provides an adjustable communication landscape tower, belonging to the field of communication landscape towers. The adjustable communication landscape tower includes a base, a middle section plate, a middle section rod, a top rod, and a communication module. The middle section plate is located above the base, the middle section rod is vertically installed on top of the middle section plate, the top rod is vertically installed on top of the middle section rod, and the communication module is mounted on the top rod. The base, middle section plate, middle section rod, and top rod are arranged concentrically. Hinges are connected at equal angles to the bottom of the middle section plate, and the hinges are hinged to support columns. A slide rail corresponding to the support column is provided on the top of the base. This adjustable communication landscape tower is composed of a base, middle section plate, middle section rod, top rod, and multiple support columns. The middle section plate has hinges that are hinged to the upper end of the support columns, and the top of the base has slide rails that slide with the lower end of the support columns. An inner mandrel is located in the center of the base, which, through the cooperation of a sliding sleeve, a ring, and a hydraulic rod, achieves the purpose of adjustment. This increases the ventilation area of ​​the lower half of the tower and reduces the wind resistance of the lower half of the tower.
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Description

Technical Field

[0001] This invention relates to the field of communication landscape tower technology, specifically to an adjustable communication landscape tower. Background Technology

[0002] Communication landscape towers are a type of signal transmission tower, also called signal towers or signal towers. Their main function is to support signals and provide support for signal transmitting antennas. They are used by communication departments such as mobile, China Unicom, China Telecom, and transportation satellite positioning systems. Some scenic spots often install communication landscape towers for signal transmission and to beautify the scenic environment.

[0003] To ensure the normal operation of wireless communication systems, communication antennas are typically placed at the highest point to increase the service radius and achieve the desired communication effect. Communication antennas require communication towers to increase their height, thus communication towers play a crucial role in communication network systems.

[0004] The communication tower's structural design is flawed, resulting in inadequate pressure mitigation. The tower utilizes numerous welded steel components for support. During strong typhoons, the tower sways severely at its height, with large amplitude swings. Repeated stress on the steel components easily leads to deformation, ultimately causing the tower to break or tilt. Furthermore, there is a lack of mechanisms to mitigate the impact of wind on the tower.

[0005] Furthermore, antennas exposed at high locations are prone to breakage and damage due to wind, leading to unstable signals. Therefore, we have made improvements and proposed a communication landscape tower that can effectively reduce the impact of strong winds on the tower structure. Summary of the Invention

[0006] (a) Technical problems to be solved

[0007] To address the shortcomings of existing technologies, this invention provides an adjustable communication landscape tower, which solves the problem that traditional communication landscape towers, whose tower bodies are welded and stacked from steel structures, have a fixed structure and are prone to breakage and collapse during strong typhoons. Furthermore, it solves the problem that antennas exposed at high locations are easily broken and damaged during strong typhoons, leading to unstable signals.

[0008] (II) Technical Solution

[0009] To achieve the above objectives, the present invention provides the following technical solution: an adjustable communication landscape tower, comprising a base, a middle section plate, a middle section pole, a top pole, and a communication module. The middle section plate is located above the base, the middle section pole is vertically installed on the top of the middle section plate, the top pole is vertically installed on the top of the middle section pole, and the communication module is mounted on the top pole. The base, middle section plate, middle section pole, and top pole are arranged in concentric circles. The bottom of the middle section plate is connected to hinge blocks at equal angles, and the hinge blocks are hinged to support columns. The top of the base is provided with a slide rail corresponding to the support column, the lower end of the support column is slidably engaged with the slide rail, and the support column body is slidably engaged with a sliding sleeve.

[0010] The base is fixedly equipped with a control module, which is used to control the operation of various electronic components.

[0011] The base has a vertical inner spindle at its center. A motor is connected to the bottom of the base. The lower end of the inner spindle passes through the base and is connected to the motor drive shaft. The upper end of the inner spindle passes through the middle section plate and extends into the middle section rod. The inner spindle rod is fitted with a ring. The ring is connected to a hydraulic rod corresponding to the support column. The movable end of the hydraulic rod is hinged to the sliding sleeve.

[0012] The middle section bar has multiple sets of window openings, which are arranged in layers. Each layer has six window openings, and the two adjacent window openings on the same layer are at a 60° angle. A baffle plate and a drive mechanism are installed inside the window opening. The top of the baffle plate is hinged to the top of the inner wall of the window opening. When the baffle plate is vertical, it blocks the window opening. The drive mechanism is connected to the baffle plate.

[0013] When the hydraulic rods extend, the lower ends of multiple support columns move away from each other, thereby reducing the overall height of the landscape tower. The inner core shaft extends into the middle section of the rod to trigger the drive mechanism. The drive mechanism controls the shielding plate to flip upward, opening the window to allow strong winds to pass through, thereby reducing the wind resistance of the middle section of the rod.

[0014] Preferably, the middle section rod has multiple inner cavities at equal intervals from bottom to top, and a central channel is formed at the center of the middle section rod. The central channel vertically penetrates the multiple inner cavities, and the window openings are connected to the inner cavities. The upper end of the inner mandrel is located in the central channel.

[0015] The drive unit is an electric actuator. The upper end of the electric actuator is hinged to the top of the inner wall of the cavity, and the lower end of the electric actuator is hinged to the inner side of the baffle plate. A grating sensor is provided on the inner side of the baffle plate.

[0016] When the inner spindle extends into the inner cavity, it blocks the light emitted by the grating sensor. The control module then manipulates the electric push rod to extend and stop the grating sensor from working, causing the baffle to flip upward.

[0017] Preferably, it also includes an arc-shaped block and a telescopic cover. The lower end of the arc-shaped block is connected to the top rod body. The top rod body has a rotating groove. A rotating rod is pivotally connected to the center of the top rod. The lower end of the telescopic cover extends into the rotating groove and is connected to the rotating rod body. The upper end of the telescopic cover slides with the top of the arc-shaped block. The left end of the telescopic cover is connected to the left side of the arc-shaped block.

[0018] The rotating rod unfolds the telescopic cover, and the right end of the telescopic cover is in close contact with the right side of the arc-shaped block, so that the arc-shaped block and the telescopic cover form a spherical shell, which encloses the communication module.

[0019] Preferably, the rotating rod extends vertically downward through the middle section rod into the central channel, and a hexagonal column is connected to the lower end of the rotating rod. An inner core shaft is provided at the top of the inner core shaft to match the hexagonal column. When the middle section rod descends to its lowest point, the hexagonal column is inserted into the hexagonal groove.

[0020] Preferably, the support column has a chamber, a piston is slidably fitted inside the chamber, a pressure sensor is provided at the bottom of the chamber wall, a spring is connected to the bottom of the piston, and the lower end of the spring is connected to the pressure sensor.

[0021] Preferably, the sliding sleeve has an air-gathering cavity inside, and a flexible hose is provided on the outside of the sliding sleeve. One end of the flexible hose is connected to the air-gathering cavity, and the other end of the flexible hose is connected to the cavity. An arc-shaped tube is provided on the outside of the sliding sleeve at equal angles. The arc-shaped tube is bent into an arc shape and is connected to the air-gathering cavity. The airflow enters the air-gathering cavity in a spiral shape through the arc-shaped tube.

[0022] Preferably, a hinge rod is welded to the side of the sliding sleeve facing the inner spindle, and the movable end of the hydraulic rod is hinged to the hinge rod.

[0023] Preferably, a conical support foot is fixedly installed at the bottom of the base.

[0024] (III) Beneficial Effects

[0025] This invention provides an adjustable communication landscape tower. It has the following beneficial effects:

[0026] 1. This adjustable communication landscape tower is composed of a base, a middle section plate, a middle section rod, a top rod, and multiple support columns. The middle section plate has a hinge block that hinges to the upper end of the support columns, and the top of the base has a slide rail that slides with the lower end of the support columns. An inner spindle is located in the center of the base, which, through the cooperation of a sliding sleeve, a ring, and a hydraulic rod, achieves the purpose of adjustment. This increases the ventilation area of ​​the lower half of the tower and reduces the wind resistance of the lower half of the tower.

[0027] 2. This adjustable communication landscape tower features an inner cavity, a central passage, and a window opening in its middle section. A shielding plate is hinged to the top of the inner wall of the cavity, and an electric actuator connected to the shielding plate is located at the top of the cavity. A light grating sensor is installed inside the shielding plate. By tilting the support column to lower the tower, an inner core shaft is inserted into the middle section. This inner core shaft shields the light grating sensor, causing the electric actuator to extend and lift the shielding plate, thus connecting the window opening to the outside. This reduces the stress area in the middle section of the tower, further reducing wind resistance. Furthermore, inserting the inner core shaft into the middle section helps reinforce the middle section of the tower, providing overall structural integrity.

[0028] 3. This adjustable communication tower features a pivoting rod connected to the top mast, which extends into the middle section of the tower. The lower end of the pivoting rod has a hexagonal column, and the top of the inner shaft has a hexagonal slot. When the middle section of the tower descends to its lowest point, the hexagonal column inserts into the hexagonal slot. Through the cooperation of a motor, arc-shaped blocks, a telescopic shield, and the pivoting rod, the communication module is enclosed, providing protection and shielding against strong winds. This prevents the communication module's antenna from breaking due to strong winds. Attached Figure Description

[0029] Figure 1This is a three-dimensional structural view of Embodiment 1 of the present invention;

[0030] Figure 2 This is a front view of the structure of Embodiment 1 of the present invention;

[0031] Figure 3 This is a three-dimensional structural view of Embodiment 2 of the present invention;

[0032] Figure 4 This is a front view of the structure in Embodiment 2 of the present invention;

[0033] Figure 5 This is a schematic diagram of the telescopic protective cover structure of the present invention.

[0034] Figure 6 This is a schematic diagram of the middle section rod structure of the present invention;

[0035] Figure 7 This is a working reference diagram of the middle section rod structure of the present invention;

[0036] Figure 8 This is a schematic diagram of the internal structure of the support column of the present invention;

[0037] Figure 9 This is a schematic diagram of the sliding sleeve structure of the present invention;

[0038] Figure 10 This is a schematic diagram of the internal structure of the sliding sleeve of the present invention.

[0039] In the diagram: 1. Base, 11. Support leg, 12. Slide rail, 13. Motor, 2. Middle section plate, 21. Hinge block, 22. Support column, 221. Chamber, 222. Piston, 223. Spring, 224. Pressure sensor, 23. Sliding sleeve, 231. Hoses, 232. Hinge rod, 233. Arc tube, 234. Air gathering chamber, 3. Middle section rod, 31. Inner cavity, 32. Central channel, 33. Window opening, 4. Top rod, 41. Rotating rod, 42. Hexagonal column, 43. Rotating groove, 5. Communication module, 6. Inner spindle, 61. Ring, 62. Hydraulic rod, 63. Hexagonal groove, 7. Arc block, 71. Telescopic cover, 8. Baffle plate, 81. Grating sensor, 82. Electric push rod, 9. Load-bearing main rod, 10. Load-bearing secondary rod. Detailed Implementation

[0040] Embodiment 1 of the present invention is established on a rooftop platform, such as Figure 1-2 As shown, the structure includes a middle section pole 3, a main load-bearing pole 9, and secondary load-bearing poles 10. The bottom of the middle section pole 3 is welded to the main load-bearing pole 9. The lower end of the main load-bearing pole 9 is vertically inserted into the roof platform. There are four secondary load-bearing poles 10, which are hinged at equal angles around the main load-bearing pole 9. The secondary load-bearing poles 10 and the main load-bearing pole 9 form a 45° angle. The lower end of the secondary load-bearing poles 10 is threadedly fixed to the roof platform with bolts. The middle section pole 3 is hollow inside and houses communication equipment. The communication equipment antenna is short and extends from the top of the middle section pole 3.

[0041] This method involves building directly onto the roof, reducing the need for building materials. Since the communication equipment is housed within the middle section pole 3, it serves a protective function, preventing damage from strong winds.

[0042] Embodiment 2 of the present invention provides an adjustable communication landscape tower, such as... Figure 3-10 As shown, it includes a base 1, a middle section plate 2, a middle section rod 3, a top rod 4, and a communication module 5. The middle section plate 2 is located above the base 1. The middle section rod 3 is vertically welded to the top of the middle section plate 2. The top rod 4 is vertically welded to the top of the middle section rod 3. The communication module 5 is fixedly installed on the top rod 4. The base 1, the middle section plate 2, the middle section rod 3, and the top rod 4 are arranged in concentric circles.

[0043] The bottom of the middle section plate 2 is welded with hinge blocks 21 at equal angles. The hinge blocks 21 are hinged with support columns 22. The top of the base 1 is welded with a slide rail 12 corresponding to the support column 22. The lower end of the support column 22 is slidably engaged with the slide rail 12. The body of the support column 22 is slidably engaged with a sliding sleeve 23.

[0044] The base 1 is fixedly equipped with a control module, which is used to operate the various electronic components. The control module uses conventional technology and is composed of electronic components such as a microcontroller. Because it is a conventional technology, its specific structure will not be described in detail.

[0045] A vertical inner spindle 6 is pivotally connected to the center of the base 1. A motor 13 is fixedly installed at the bottom of the base 1. The lower end of the inner spindle 6 passes through the base 1 and is welded to the transmission shaft of the motor 13. The upper end of the inner spindle 6 passes through the middle section plate 2 and extends into the middle section rod 3. The inner spindle 6 has a ring 61 on its body. The ring 61 is connected to a hydraulic rod 62 corresponding to the support column 22. The movable end of the hydraulic rod 62 is hinged to the sliding sleeve 23.

[0046] The middle section 3 has multiple sets of window openings 33, which are arranged in layers. Each layer has six window openings 33, and adjacent window openings 33 on the same layer are at a 60° angle. Each window opening 33 is equipped with a baffle plate 8 and a drive mechanism. The top of the baffle plate 8 is hinged to the top of the inner wall of the window opening 33. When the baffle plate 8 is vertical, it blocks the window opening 33. The drive mechanism is connected to the baffle plate 8.

[0047] Working principle: During a strong typhoon, the control module activates hydraulic rod 62 via remote control. Hydraulic rod 62 extends, causing the lower end of support column 22 to slide outwards. Multiple support columns 2 slowly tilt, eventually causing the lower ends of support columns 22 to move away from each other. This reduces the overall height of the landscape tower and increases the ventilation area of ​​the lower half of the tower, reducing swaying of the lower half.

[0048] During descent, the inner spindle 6 enters the middle section of the tower 3, triggering the drive mechanism. The drive mechanism then controls the baffle 8 to flip upwards, opening the window 33 to allow strong winds to pass through, thereby reducing the wind resistance of the middle section of the tower 3. This reduces the stress area on the tower body and decreases the degree of tower swaying.

[0049] Furthermore, the insertion of the inner mandrel 6 into the middle section rod 3 improves the connection between the middle section rod 3 and the middle section plate 2, thus achieving the purpose of reinforcing the middle section rod 3.

[0050] Multiple inner cavities 31 are opened at equal intervals from bottom to top inside the middle section rod 3. A central channel 32 is opened at the center of the middle section rod 3. The central channel 32 vertically penetrates multiple inner cavities 31. The window opening 33 is connected to the inner cavity 31. The upper end of the inner spindle 6 is located inside the central channel 32.

[0051] The aforementioned inner cavity 31 is large enough that when the inner spindle 6 enters the middle section rod 3, it will not obstruct strong winds from passing through the window opening 33 and through the middle section rod 3.

[0052] The drive unit is an electric actuator 82. The upper end of the electric actuator 82 is hinged to the top of the inner wall of the inner cavity 31, and the lower end of the electric actuator 82 is hinged to the inner side of the baffle plate 8. A grating sensor 81 is fixedly installed on the inner side of the baffle plate 8.

[0053] Working principle: The inner spindle 6 extends into the inner cavity 31, blocking the light emitted by the grating sensor 81. The grating sensor 81 feeds back information to the control module. The control module manipulates the electric push rod 82 to extend and stop the grating sensor 81 from working, causing the baffle plate 8 to flip upward.

[0054] It also includes an arc-shaped block 7 and a telescopic cover 71. The lower end of the arc-shaped block 7 is connected to the rod body of the top rod 4. The rod body of the top rod 4 has a rotating groove 43. A rotating rod 41 is pivotally connected to the center of the top rod 4. The lower end of the telescopic cover 71 extends into the rotating groove 43 and is connected to the rod body of the rotating rod 41. The upper end of the telescopic cover 71 is slidably engaged with the top of the arc-shaped block 7. The left end of the telescopic cover 71 is fixedly installed together with the left side of the arc-shaped block 7.

[0055] Rotating rod 41 unfolds telescopic cover 71, with the right end of telescopic cover 71 closely attached to the right side of arc block 7, so that arc block 7 and telescopic cover 71 form a spherical shell, which encloses communication module 5.

[0056] The aforementioned telescopic cover 71 is composed of multiple iron bars and canvas. The lower ends of the iron bars slide in engagement with the rotating groove 43. The upper ends of the iron bars slide in engagement with the top of the arc-shaped block 7. The canvas is fixedly installed between two adjacent iron bars. The leftmost iron bar is welded to the left side of the arc-shaped block 7. The lower end of the rightmost iron bar is welded to the rotating rod 41.

[0057] When the rotating rod 41 rotates, it moves the rightmost iron bar, causing the entire telescopic cover 71 to gradually unfold. When the rightmost iron bar aligns with the metal on the right side of the arc-shaped block 7, it encloses the communication module 5. A strong magnet is embedded on the right side of the arc-shaped block 7 to attract the adhesive strip, thus securing the telescopic cover 71.

[0058] The rotating rod 41 extends vertically downwards through the middle section rod 3 and into the central channel 32. A hexagonal post 42 is welded to the lower end of the rotating rod 41. An inner mandrel 6 is provided at the top of the inner mandrel 6 to match the hexagonal post 42. When the middle section rod 3 descends to its lowest point, the hexagonal post 42 is inserted into the hexagonal slot 63. The rotation of the motor 13 drives the inner mandrel 6 to rotate, which in turn drives the rotating rod 41 to rotate.

[0059] The support column 22 has a chamber 221, and a piston 222 is slidably fitted inside the chamber 221. A pressure sensor 224 is fixedly installed on the bottom of the inner wall of the chamber 221. A spring 223 is welded to the bottom of the piston 222, and the lower end of the spring 223 is fixedly installed together with the pressure sensor 224.

[0060] The sliding sleeve 23 has an air-gathering cavity 234 inside. A flexible hose 231 is fixedly installed on the outside of the sliding sleeve 23. One end of the flexible hose 231 is connected to the air-gathering cavity 234, and the other end of the flexible hose 231 is connected to the chamber 221. An arc-shaped tube 233 is welded at equal angles on the outside of the sliding sleeve 23. The arc-shaped tube 233 is bent into an arc shape and is connected to the air-gathering cavity 234. The airflow enters the air-gathering cavity 234 in a spiral shape through the arc-shaped tube 233.

[0061] Airflow enters the wind-gathering chamber 234 through the arc-shaped pipe 233, then enters the chamber 221 through the flexible hose 231, pushing the piston 222 to move. The piston 222 applies pressure to the pressure sensor 224. The pressure sensor 224 feeds back information to the control module. The control module transmits the information to the monitoring personnel. Based on the feedback values, the monitoring personnel determine whether the aforementioned wind-resistant measures are necessary.

[0062] A hinge rod 232 is welded to the side of the sliding sleeve 23 facing the inner spindle 6, and the movable end of the hydraulic rod 62 is hinged to the hinge rod 232.

[0063] A conical support foot 11 is fixedly installed at the bottom of the base 1.

[0064] In summary, this adjustable communication landscape tower is composed of a base 1, a middle section plate 2, a middle section rod 3, a top rod 4, and multiple support columns 22. The middle section plate 2 has a hinge block 21 that hinges to the upper end of the support column 22. The top of the base 1 has a slide rail 12 that slides with the lower end of the support column 22. An inner core shaft 6 is located in the center of the base 1, which, through the cooperation of a sliding sleeve 23, a ring 61, and a hydraulic rod 62, serves the purpose of adjustment. This increases the ventilation area of ​​the lower half of the tower and reduces the wind resistance of the lower half of the tower.

[0065] This adjustable communication landscape tower has an inner cavity 31, a central channel 32, and a window 33 in its middle section pole 3. A shielding plate 8 is hinged to the top of the inner wall of the inner cavity 31, and an electric actuator 82 connected to the shielding plate 8 is located at the top of the inner cavity 31. A light grating sensor 81 is located inside the shielding plate 8. By tilting the support column 22 to lower the tower body, an inner core shaft 6 is inserted into the middle section pole 3. The inner core shaft 6 shields the light grating sensor 81, causing the electric actuator 82 to extend and lift the shielding plate 8, thus connecting the window 33 to the outside. This reduces the stress area in the middle section of the tower, further reducing wind resistance. Furthermore, inserting the inner core shaft 6 into the middle section pole 3 helps to reinforce the middle section of the tower, providing overall stability.

[0066] This adjustable communication tower has a pivot rod 41 connected to the top rod 4, which extends into the middle rod 3. The lower end of the pivot rod 41 has a hexagonal column 42, and the top of the inner shaft 6 has a hexagonal slot 63. When the middle rod 3 descends to its lowest point, the hexagonal column 42 inserts into the hexagonal slot 63. Through the cooperation of the motor 13, the arc-shaped block 7, the telescopic cover 71, and the pivot rod 41, the communication module 5 is enclosed, providing protection and shielding against strong winds. This prevents the antenna of the communication module 5 from breaking due to strong winds.

[0067] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An adjustable communication landscape tower, characterized in that: The system includes a base (1), a middle section plate (2), a middle section rod (3), a top rod (4), and a communication module (5). The middle section plate (2) is located above the base (1). The middle section rod (3) is vertically installed on the top of the middle section plate (2). The top rod (4) is vertically installed on the top of the middle section rod (3). The communication module (5) is installed on the top rod (4). The base (1), middle section plate (2), middle section rod (3), and top rod (4) are arranged in concentric circles. The bottom of the middle section plate (2) is connected to a hinge block (21) at equal angles. The hinge block (21) is hinged to a support column (22). The top of the base (1) is provided with a slide rail (12) corresponding to the support column (22). The lower end of the support column (22) is slidably engaged with the slide rail (12). The support column (22) is slidably engaged with a sliding sleeve (23). The base (1) is fixedly equipped with a control module, which is used to control the operation of various electronic components; The base (1) has a vertical inner spindle (6) at its center. The bottom of the base (1) is connected to a motor (13). The lower end of the inner spindle (6) passes through the base (1) and is connected to the transmission shaft of the motor (13). The upper end of the inner spindle (6) passes through the middle section plate (2) and extends into the middle section rod (3). The inner spindle (6) has a ring (61) on its body. The ring (61) is connected to a hydraulic rod (62) corresponding to the support column (22). The movable end of the hydraulic rod (62) is hinged to the sliding sleeve (23). The middle section rod (3) has multiple sets of window openings (33), which are arranged in layers. Each layer has six window openings (33). The two adjacent window openings (33) on the same layer are at a 60° angle. A baffle plate (8) and a drive mechanism are provided inside the window opening (33). The top of the baffle plate (8) is hinged to the top of the inner wall of the window opening (33). When the baffle plate (8) is vertical, it blocks the window opening (33). The drive unit is connected to the baffle plate (8). When the hydraulic rod (62) extends, the lower ends of multiple pillars (22) move away from each other, thereby reducing the overall height of the landscape tower. The inner core shaft (6) extends into the middle section rod (3) to trigger the drive mechanism. The drive mechanism controls the shield (8) to flip upward, and the window opening (33) opens to facilitate the passage of strong winds, thereby reducing the wind resistance of the middle section rod (3).

2. The adjustable communication landscape tower according to claim 1, characterized in that: The middle section rod (3) has multiple inner cavities (31) at equal intervals from bottom to top. A central channel (32) is provided at the center of the middle section rod (3). The central channel (32) vertically penetrates the multiple inner cavities (31). The window opening (33) is connected to the inner cavity (31). The upper end of the inner core shaft (6) is located in the central channel (32). The driving unit is an electric push rod (82). The upper end of the electric push rod (82) is hinged to the top of the inner wall of the inner cavity (31), and the lower end of the electric push rod (82) is hinged to the inner side of the baffle plate (8). The inner side of the baffle plate (8) is provided with a grating sensor (81). When the inner spindle (6) extends into the inner cavity (31), the inner spindle (6) blocks the light emitted by the grating sensor (81). The control module manipulates the electric push rod (82) to extend and stop the grating sensor (81) from working, causing the baffle plate (8) to flip up.

3. The adjustable communication landscape tower according to claim 2, characterized in that: It also includes an arc-shaped block (7) and a telescopic shield (71). The lower end of the arc-shaped block (7) is connected to the rod body of the top rod (4). The rod body of the top rod (4) has a rotating groove (43). A rotating rod (41) is pivotally connected to the center of the top rod (4). The lower end of the telescopic shield (71) extends into the rotating groove (43) and is connected to the rod body of the rotating rod (41). The upper end of the telescopic shield (71) is slidably engaged with the top of the arc-shaped block (7). The left end of the telescopic shield (71) is connected to the left side of the arc-shaped block (7). The rotating rod (41) rotates to unfold the telescopic cover (71), and the right end of the telescopic cover (71) is in close contact with the right side of the arc block (7), so that the arc block (7) and the telescopic cover (71) form a spherical shell, which encloses the communication module (5).

4. The adjustable communication landscape tower according to claim 3, characterized in that: The rotating rod (41) extends vertically downward through the middle section rod (3) into the central channel (32). The lower end of the rotating rod (41) is connected to a hexagonal column (42). The top of the inner core shaft (6) is provided with an inner core shaft (6) that is compatible with the hexagonal column (42). When the middle section rod (3) descends to its lowest point, the hexagonal column (42) is inserted into the hexagonal groove (63).

5. The adjustable communication landscape tower according to claim 4, characterized in that: The support column (22) has a chamber (221) inside, and a piston (222) is slidably fitted inside the chamber (221). A pressure sensor (224) is provided at the bottom of the inner wall of the chamber (221). A spring (223) is connected to the bottom of the piston (222), and the lower end of the spring (223) is connected to the pressure sensor (224).

6. The adjustable communication landscape tower according to claim 5, characterized in that: The sliding sleeve (23) has an air-gathering cavity (234) inside, and a flexible tube (231) is provided on the outside of the sliding sleeve (23). One end of the flexible tube (231) is connected to the air-gathering cavity (234), and the other end of the flexible tube (231) is connected to the chamber (221). An arc-shaped tube (233) is provided on the outside of the sliding sleeve (23) at equal angles. The arc-shaped tube (233) is bent into an arc shape and is connected to the air-gathering cavity (234). The airflow enters the air-gathering cavity (234) in a spiral shape through the arc-shaped tube (233).

7. The adjustable communication landscape tower according to claim 6, characterized in that: The sliding sleeve (23) is welded with a hinge rod (232) on the side facing the inner spindle (6), and the movable end of the hydraulic rod (62) is hinged to the hinge rod (232).

8. The adjustable communication landscape tower according to claim 7, characterized in that: The base (1) has a conical support foot (11) fixedly installed at its bottom.

Citation Information

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