Intelligent communication tower fusing environment detection
By combining wind-sensing transmission components and telescopic brackets, the problem of insufficient clamping force of the drone nest box in strong wind environments is solved, realizing adaptive adjustment of clamping force and enhanced stability, ensuring safe parking of drones and normal operation of equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHINA TOWER CO LTD
- Filing Date
- 2026-04-14
- Publication Date
- 2026-07-31
AI Technical Summary
In strong winds, the drone nest box may not hold the drone securely, leading to decreased stability and affecting the safe parking of the drone and the normal operation of the equipment.
The system employs a combination of wind-sensing transmission components and telescopic brackets. The wind-sensing transmission components adaptively adjust the clamping force according to the wind strength, including the wind-driven rotating sleeve, the inclined block and the moving block sliding cooperation, and the pull rod and pull rope pulling the clamping frame to move, thereby enhancing the clamping force. The system also adopts a bidirectional wind-responsive transmission component and a rope-linked folded membrane structure to enhance the stability of the UAV nest box.
It achieves adaptive enhancement of clamping force with wind force, improves the installation stability of the drone nest box, enhances vibration resistance, protects internal equipment from airflow disturbance, and ensures safe parking of drones and normal operation of equipment.
Smart Images

Figure CN122485458A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of tower construction equipment technology, specifically to a smart communication tower that integrates environmental monitoring. Background Technology
[0002] Among related technologies, smart communication towers integrating environmental monitoring functions are a new type of multifunctional digital infrastructure upgraded from traditional communication infrastructure. They not only have their own communication modules, but also have environmental monitoring modules installed on the tower. These modules typically integrate multiple sensing and monitoring devices such as wind sensors, humidity sensors, and PM2.5 detectors. The captured data is then transmitted to a remote monitoring center or edge computing node via communication.
[0003] With technological advancements, drones are now being combined with communication towers to utilize the intelligent flight of drones for environmental monitoring of communication towers in the field, achieving high-altitude surveillance and AI-powered identification of personnel, vehicles, and fire hazards. However, in windy conditions, the wind force is even stronger at higher altitudes, causing the drones, although they autonomously return to their nests, to suffer from deformation or displacement of the nest's mounting supports due to the strong winds. This leads to a decrease in the internal structural stability of the nest and causes a series of problems. Therefore, a smart communication tower integrating environmental monitoring is proposed. Summary of the Invention
[0004] This invention provides a smart communication tower that integrates environmental detection, solving the technical problem in related technologies where the clamping force of the drone nest box installation structure is fixed in strong winds and cannot be adaptively adjusted according to the wind force, resulting in decreased stability of the drone nest box and affecting the safe parking of drones and normal operation of equipment.
[0005] This invention discloses a smart communication tower integrating environmental detection, comprising: a tower body, with a support fixedly mounted on the top of the tower body; a mounting plate fixedly connected to the tower body; a drone nest box fixedly connected to the tower body via the mounting plate; and a wind-sensing transmission assembly, including a wind turbine plate, a rotating sleeve, an inclined block, a moving block, and a tie rod; the rotating sleeve is rotatably mounted on the bottom of the mounting plate, and the wind turbine plate is fixedly mounted on the outer surface of the rotating sleeve; the inclined block is fixedly connected to the outer wall of the rotating sleeve; the moving block slides in cooperation with a guide groove on the support base, and the edges of the moving block are aligned with the inclined surfaces of the inclined blocks. The surfaces slide in contact; the pull rod is fixedly installed on the moving block; the telescopic bracket includes a clamping frame and a pull rope; the clamping frame is clamped to the bottom of the UAV nest box, and the clamping frame is slidably installed on the bottom of the mounting plate; one end of the pull rope is connected to the pull rod, and the other end of the pull rope is fixedly connected to the clamping frame; wherein, when the wind blows the wind plate, the wind plate drives the rotating sleeve to rotate, the inclined block rotates with the rotating sleeve and squeezes the edges of the moving block, the moving block slides along the guide groove and drives the pull rod to move, thereby tightening the pull rope and causing the clamping frame to move towards the mounting plate.
[0006] Furthermore, the wind-sensing transmission assembly is a bidirectional wind-response transmission assembly, which includes a wind turbine, a first rotating sleeve, a second rotating sleeve, a first inclined block, and a second inclined block. The wind turbine is fixedly installed on the bottom of the mounting plate. The second rotating sleeve is sleeved on the outside of the wind turbine and forms a rotational engagement with it. The first rotating sleeve is sleeved on the outside of the second rotating sleeve and forms a rotational engagement with it. The wind turbine plate is fixedly installed on the outer surface of the first rotating sleeve. The first inclined block is fixedly connected to the outer wall of the first rotating sleeve, and the second inclined block is fixedly connected to the outer wall of the second rotating sleeve. The first inclined block and the second inclined block are symmetrically arranged with respect to the axis of the wind turbine, and their inclined surfaces are arranged opposite each other.
[0007] Furthermore, the bidirectional wind-response transmission assembly also includes a first spiral spring and a second spiral spring; the first spiral spring is connected between the first rotating sleeve and the second rotating sleeve, one end of the first spiral spring is fixed to the inner wall of the first rotating sleeve, and the other end of the first spiral spring is fixed to the outer wall of the second rotating sleeve; the second spiral spring is connected between the second rotating sleeve and the wind turbine rod, one end of the second spiral spring is fixed to the inner wall of the second rotating sleeve, and the other end of the second spiral spring is fixed to the outer wall of the wind turbine rod; the first spiral spring and the second spiral spring have opposite winding directions.
[0008] Furthermore, the telescopic bracket is a rope-guided telescopic bracket, which further includes a rope tube and a fixed base; the fixed base is fixedly installed on the bottom of the mounting plate; one end of the rope tube is fixedly installed on the fixed base, and the other end of the rope tube is slidably inserted into the clamping frame; the pull rope passes through the internal channel of the fixed base and the rope tube, and the end of the pull rope is fixedly connected to the inner wall of the clamping frame.
[0009] Furthermore, the rope-guided telescopic bracket also includes a guide wheel; the guide wheel is rotatably mounted on the bottom of the mounting plate, and the guide wheel is located between the fixed seat and the pull rod; the pull rope passes around the outer circumference of the guide wheel and fits against the guide wheel.
[0010] Furthermore, a return spring is provided between the movable block and the support base, with one end of the return spring connected to the movable block and the other end of the return spring connected to the support base.
[0011] Furthermore, a compression spring is installed between the top end of the rope tube and the inner wall of the clamping frame.
[0012] Furthermore, a plug rod is fixedly connected to the upper surface of the clamping frame, and a reinforcement groove is provided at the bottom of the drone nest box, with the plug rod slidingly engaging with the reinforcement groove.
[0013] Furthermore, the insertion rod is configured as an L-shaped insertion rod, and the reinforcing groove is configured as an L-shaped sliding groove that mates with the L-shaped insertion rod; the L-shaped insertion rod includes a vertical section and a horizontal section, the vertical section is fixedly connected to the upper surface of the clamping frame, and the horizontal section is perpendicularly connected to the top end of the vertical section; the L-shaped sliding groove includes a vertical groove section and a horizontal groove section, the vertical groove section is formed at the bottom of the UAV nest box, and the horizontal groove section communicates with the top end of the vertical groove section; the inner wall of the L-shaped sliding groove is covered with a damping layer.
[0014] Furthermore, the drone nest box has heat dissipation vents on both sides, and folded membranes are rotatably installed on both sides of the drone nest box, with one end of the folded membrane rotatably connected to the edge of the heat dissipation vent; a rope is fixedly installed on the side of the clamping frame, with the other end of the rope fixedly connected to the end of the folded membrane; when the clamping frame moves toward the mounting plate, the rope pulls the folded membrane to unfold and cover the heat dissipation vent.
[0015] 1. This invention achieves the function of adaptively adjusting the clamping force according to the wind force by combining the wind force sensing transmission component and the telescopic bracket. It solves the technical problem that the existing fixed clamping force is insufficient to resist vibration and displacement under strong wind conditions, and achieves the technical effect of adaptively increasing the clamping force with the wind force and improving the installation stability of the drone nest box.
[0016] 2. The structure adopts a wind turbine plate to drive the rotating sleeve to rotate, and the inclined block and the moving block slide together on the inclined surface. The rotation of the wind turbine plate is converted into the linear sliding of the moving block. The clamping frame is moved by pulling rods and ropes. The greater the wind force, the more obvious the clamping force is enhanced.
[0017] 3. By adopting a structure in which the first and second rotating sleeves are coaxially nested and the first and second spiral springs are wound in opposite directions, a bidirectional wind force response is achieved. Regardless of which direction the wind turbine deflects, the moving block can be driven to slide, thus improving the comprehensiveness of wind force sensing.
[0018] 4. The structure adopts an L-shaped insert rod and an L-shaped slide groove with a damping layer covering the inner wall of the L-shaped slide groove. When the clamping frame moves, the insertion depth of the insert rod increases to form a mechanical interlock, while generating frictional damping. This enhances the clamping force and provides a buffering effect and vibration resistance.
[0019] 5. The structure of folded membrane and rope linkage is adopted. When the clamping frame moves, the rope pulls the folded membrane to unfold and block the heat dissipation vents, preventing strong winds from entering the drone's nest box and protecting the internal equipment from airflow disturbance.
[0020] Other features and advantages of this solution will be described in detail in the following detailed implementation section. Attached Figure Description
[0021] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the following detailed description to explain the present invention, but do not constitute a limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the overall structure of the iron tower of the present invention.
[0022] Figure 2 This is a schematic diagram of the top structure of the iron tower according to the present invention.
[0023] Figure 3 This is a schematic diagram of the nest structure of the environmental monitoring drone of the present invention.
[0024] Figure 4 This is a schematic diagram of the drone nest splitting structure of the present invention.
[0025] Figure 5 This is a top view cross-sectional diagram of the wind turbine pole of the present invention.
[0026] Figure 6 This is a schematic diagram of the cross-sectional structure of the wind turbine pole of the present invention.
[0027] Figure 7 This is a schematic diagram of the drone nest structure from below according to the present invention.
[0028] Figure 8This is a schematic diagram of the clamping frame structure of the present invention.
[0029] Figure 9 For the present invention Figure 8 A magnified structural diagram at point A.
[0030] Figure 10 For the present invention Figure 7 A magnified structural diagram at point B.
[0031] Explanation of reference numerals in the attached drawings: 101. Main body of the tower; 102. Intelligent detection module; 103. Environmental monitoring drone nest; 201. Drone nest box; 202. Mounting plate; 203. Pull rope; 204. Pull rod; 205. Wind turbine plate; 206. Wind turbine pole; 207. First rotating sleeve; 208. Second rotating sleeve; 301. First inclined block; 302. Second inclined block; 303. First spiral spring; 304. Second spiral spring; 305. Moving block; 306. Support base; 307. Return spring; 401. Clamping frame; 402. Rope tube; 403. Fixed base; 404. Guide wheel; 405. Compression spring; 501. Insert rod; 502. Reinforcing groove; 503. Heat dissipation vent; 504. Folded membrane; 505. Rope. Detailed Implementation
[0032] To make the aforementioned objectives, features, and advantages of this solution more apparent and understandable, the specific embodiments of this solution are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this solution. However, this solution can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this solution. Therefore, this solution is not limited to the specific embodiments disclosed below.
[0033] In the description of this solution, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this solution and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this solution. The terms "first" and "second" are used to distinguish one element from another and do not have sequential or importance. Furthermore, in the following description, when referring to the accompanying drawings, the same reference numerals in different drawings indicate the same or similar elements, which will not be repeated here.
[0034] In this solution, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this solution based on the specific circumstances.
[0035] Based on some implementation methods of this solution, a smart communication tower integrating environmental detection is provided, for reference. Figures 1-10 As shown, the smart communication tower integrating environmental monitoring includes a tower body 101. The top of the tower body 101 is equipped with a smart monitoring module 102 for fixed-point environmental monitoring and an environmental monitoring drone nest 103 for dynamic environmental monitoring. The environmental monitoring drone nest 103 includes a drone nest box 201 and a mounting plate 202. The mounting plate 202 is bolted to the back of the drone nest box 201, fixing the drone nest box 201 to the iron frame of the tower body 101. A telescopic support is provided at the bottom of the drone nest box 201. A pull rope 203 is connected to the moving end of the telescopic support, and a pull rod 204 is connected to the end of the pull rope 203. A wind turbine plate 205 is movably installed on the bottom side of the drone nest box 201. The wind turbine plate 205 is connected to the pull rod 204 via a transmission connection. Strong winds blow the wind turbine plate 205, thereby strengthening and adjusting the clamping force of the telescopic support in real time.
[0036] Specifically, the intelligent detection module 102 is configured to integrate a communication mechanism, an energy storage mechanism, and multiple sensors. The communication mechanism includes a cluster antenna mounted on the top of the tower body 101, and the sensors include a wind sensor, a wind direction detector, and a temperature and humidity sensor. The environmental monitoring drone nest 103 includes a drone with a camera module and a nest with a built-in elevator. The energy storage mechanism in the intelligent detection module 102 is electrically connected to the environmental monitoring drone nest 103. It should be noted that both the intelligent detection module 102 and the environmental monitoring drone nest 103 in this solution are existing technology products, and their specific models and working principles are conventional existing technologies, which will not be elaborated here.
[0037] A wind turbine rod 206 is fixedly installed at the bottom of the mounting plate 202. A first rotating sleeve 207 and a second rotating sleeve 208 are sleeved on the wind turbine rod 206. The first rotating sleeve 207 is located outside the second rotating sleeve 208, and the second rotating sleeve 208 is located outside the wind turbine rod 206. The wind turbine plate 205 is fixedly installed on the outer surface of the first rotating sleeve 207.
[0038] The outer wall of the first rotating sleeve 207 is fixedly connected to a first inclined block 301, and the outer wall of the second rotating sleeve 208 is fixedly connected to a second inclined block 302. The first inclined block 301 and the second inclined block 302 have the same shape and size, and are arranged symmetrically.
[0039] See Figure 4-6 A first spiral spring 303 connects the first rotating sleeve 207 and the second rotating sleeve 208, and a second spiral spring 304 connects the second rotating sleeve 208 and the wind turbine 206. A movable block 305 is fixedly installed at the bottom of the tie rod 204, and a support base 306 is fixedly installed at the top of the tower body 101. The movable block 305 and the support base 306 are slidably installed, and a return spring 307 is provided between the movable block 305 and the support base 306. The two side edges of the movable block 305 are slidably engaged with the inclined surfaces of the first inclined block 301 and the second inclined block 302.
[0040] Specifically, the telescopic bracket includes a clamping frame 401 that is clamped on the front side of the bottom of the drone nest box 201. The inner wall of the clamping frame 401 is provided with a rubber pad or a sponge pad, so that the clamping frame 401 can flexibly clamp the drone nest box 201 and reduce wear on the surface of the drone nest box 201.
[0041] A rope tube 402 is slidably inserted into the other end of the clamping frame 401. A fixing seat 403 is fixedly installed at the other end of the rope tube 402. The fixing seat 403 is fixedly installed at the bottom of the mounting plate 202. The end of the pull rope 203 passes through the fixing seat 403 and the rope tube 402. The end of the pull rope 203 is fixedly connected to the inner wall of the clamping frame 401.
[0042] A guide wheel 404 is rotatably mounted on the bottom of the mounting plate 202. The guide wheel 404 is located between the fixed base 403 and the pull rod 204. The pull rope 203 is in contact with the guide wheel 404. A compression spring 405 is installed between the top of the rope tube 402 and the inner wall of the clamping frame 401.
[0043] Further, see Figure 8 and Figure 10 A rod 501 is fixedly connected to the upper surface of the clamping frame 401, and a reinforcement groove 502 is provided at the bottom of the drone nest box 201. The rod 501 and the reinforcement groove 502 are slidably engaged.
[0044] The insertion rod 501 is configured as an L-shaped insertion rod, and the reinforcing groove 502 is configured as an L-shaped sliding groove, with the inner wall of the reinforcing groove 502 covered by a damping layer. The damping layer is configured as a silicone layer or a rubber layer with several small protrusions.
[0045] In addition, the environmental monitoring drone nest 103 requires heat dissipation for thermal management under normal operating conditions. Therefore, symmetrical fan-shaped heat dissipation vents 503 are provided on both sides of the drone nest box 201 to ensure basic heat dissipation needs. However, in strong wind environments, high-altitude crosswinds may enter the nest box through the heat dissipation vents 503, causing airflow disturbances and impacts on the drone and precision electronic components, affecting the stability of equipment operation. Therefore, see Figure 7 The drone nest box 201 has fan-shaped heat dissipation vents 503 on both sides. Folding membranes 504 are rotatably installed on both sides of the drone nest box 201. In normal operation, the folding membranes 504 are stored above the heat dissipation vents 503. A rope 505 is fixedly installed on the side of the clamping frame 401. The other end of the rope 505 is fixedly connected to the bottom wall of the end of the folding membrane 504.
[0046] Through the above technical solution, when the smart communication tower with integrated environmental detection provided by this solution is in use, in windy weather, the drone is retracted into the drone nest box 201. At this time, the drone nest box 201 is backed against the main body of the tower 101, and its front and back are relatively stable, while the crosswinds at high altitudes will blow the wind turbine 205. When the wind turbine 205 is blown to the left, the rotation direction is consistent with the first spiral spring 303 but contradicts the second spiral spring 304. Therefore, the first spiral spring 303 retracts, and at the same time, the first rotating sleeve 207 and the second rotating sleeve 208 rotate relative to each other, causing the first inclined block 301 to squeeze the moving block 305. At this time, the second inclined block 302 separates from the moving block 305, which causes the moving block 305 to move into the support base 306, thereby driving the pull rod 204 to move backward, so that the pull rope 203 is tightened, thereby pulling the clamping frame 401 towards the fixed base 403. This increases the clamping effect of the telescopic bracket on the UAV nest box 201 and enhances the stability of the environmental monitoring UAV nest 103 in strong wind environment. Conversely, if the wind turbine 205 is blown to the right, the first spiral spring 303 remains stationary while the second spiral spring 304 coils up. As a result, the second inclined block 302 presses against the moving block 305, causing it to move and tightening the pull rope 203, thus achieving the same enhanced clamping effect.
[0047] Furthermore, as the pull rope 203 moves, the insertion rod 501 on the clamping frame 401 slides in the reinforcement groove 502, and the insertion depth of the insertion rod 501 into the reinforcement groove 502 increases, so that the insertion rod 501 and the damping layer in the reinforcement groove 502 are interference fit, which not only provides a buffering effect for clamping, but also increases the friction, improves the vibration resistance, and further improves the clamping stability.
[0048] In addition, through the cooperation of the folded membrane 504 and the rope 505, when the clamping frame 401 moves, the rope 505 is pulled, causing the folded membrane 504 to be pulled down and unfolded, thereby blocking the heat dissipation vent 503 and making it difficult for strong winds to enter the UAV nest box 201, thus improving the stability and safety of environmental monitoring on the communication tower.
[0049] The preferred embodiments of this solution have been described in detail above with reference to the accompanying drawings. However, this solution is not limited to the specific details in the above embodiments. Within the scope of the technical concept of this solution, various simple modifications can be made to the technical solution, and these simple modifications all fall within the protection scope of this solution.
[0050] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any suitable way without contradiction. In order to avoid unnecessary repetition, this solution will not describe the various possible combinations separately.
[0051] Furthermore, various implementations of this solution can be combined in any way, as long as they do not violate the spirit of this solution, they should also be regarded as the content disclosed in this solution.
Claims
1. A smart communication tower integrating environmental monitoring, characterized in that, include: The main body of the iron tower, with a support base fixedly installed on the top of the main body of the iron tower; Mounting plate, fixedly connected to the main body of the iron tower; The drone nest box is fixedly connected to the main body of the iron tower via the mounting plate; A wind-powered sensor transmission assembly includes a wind turbine plate, a rotating sleeve, an inclined block, a movable block, and a pull rod. The rotating sleeve is rotatably mounted on the bottom of the mounting plate, and the wind turbine plate is fixedly mounted on the outer surface of the rotating sleeve. The inclined block is fixedly connected to the outer wall of the rotating sleeve. The movable block slides in a guide groove on the support base, and the edges of the movable block slide against the inclined surface of the inclined block. The pull rod is fixedly mounted on the movable block. The telescopic support includes a clamping frame and a pull rope; the clamping frame is clamped to the bottom of the UAV nest box, and the clamping frame is slidably installed on the bottom of the mounting plate; one end of the pull rope is connected to the pull rod, and the other end of the pull rope is fixedly connected to the clamping frame; When the wind blows the wind plate, the wind plate drives the rotating sleeve to rotate. The inclined block rotates with the rotating sleeve and squeezes the edges of the moving block. The moving block slides along the guide groove, driving the pull rod to move, thereby tightening the pull rope and causing the clamping frame to move towards the mounting plate.
2. The smart communication tower integrating environmental detection according to claim 1, characterized in that, The wind-sensing transmission component is a bidirectional wind-response transmission component, which includes a wind turbine, a first rotating sleeve, a second rotating sleeve, a first inclined block, and a second inclined block. The wind turbine is fixedly installed on the bottom of the mounting plate; the second rotating sleeve is sleeved on the outside of the wind turbine and forms a rotatable engagement with the wind turbine; the first rotating sleeve is sleeved on the outside of the second rotating sleeve and forms a rotatable engagement with the second rotating sleeve; the wind turbine plate is fixedly installed on the outer surface of the first rotating sleeve; The first inclined block is fixedly connected to the outer wall of the first rotating sleeve, and the second inclined block is fixedly connected to the outer wall of the second rotating sleeve. The first inclined block and the second inclined block are symmetrically arranged with respect to the axis of the wind turbine, and the inclined surfaces of the first inclined block and the second inclined block are arranged opposite each other.
3. The smart communication tower integrating environmental detection according to claim 2, characterized in that, The bidirectional wind-response transmission assembly also includes a first spiral spring and a second spiral spring. The first spiral spring is connected between the first rotating sleeve and the second rotating sleeve. One end of the first spiral spring is fixed to the inner wall of the first rotating sleeve, and the other end of the first spiral spring is fixed to the outer wall of the second rotating sleeve. The second spiral spring is connected between the second rotating sleeve and the wind turbine rod. One end of the second spiral spring is fixed to the inner wall of the second rotating sleeve, and the other end of the second spiral spring is fixed to the outer wall of the wind turbine rod. The first spiral spring and the second spiral spring have opposite winding directions.
4. The smart communication tower integrating environmental detection according to claim 1, characterized in that, The telescopic support is a rope tube guided telescopic support, which also includes a rope tube and a fixed base; The fixed base is fixedly installed on the bottom of the mounting plate; one end of the rope tube is fixedly installed on the fixed base, and the other end of the rope tube is slidably inserted into the clamping frame; The pull rope passes through the internal channel of the fixed base and the rope tube, and the end of the pull rope is fixedly connected to the inner wall of the clamping frame.
5. The smart communication tower integrating environmental detection according to claim 4, characterized in that, The rope-guided telescopic support also includes guide wheels; The guide wheel is rotatably mounted on the bottom of the mounting plate, and the guide wheel is located between the fixed base and the pull rod; The pull rope wraps around the outer circumference of the guide wheel and fits against the guide wheel.
6. The smart communication tower integrating environmental detection according to claim 1, characterized in that, A return spring is provided between the movable block and the support base, with one end of the return spring connected to the movable block and the other end of the return spring connected to the support base.
7. The smart communication tower integrating environmental detection according to claim 4, characterized in that, A compression spring is installed between the top of the rope tube and the inner wall of the clamping frame.
8. The smart communication tower integrating environmental detection according to claim 1, characterized in that, A plug rod is fixedly connected to the upper surface of the clamping frame, and a reinforcement groove is provided at the bottom of the drone nest box. The plug rod slides into the reinforcement groove.
9. The smart communication tower integrating environmental detection according to claim 8, characterized in that, The insertion rod is configured as an L-shaped insertion rod, and the reinforcing groove is configured as an L-shaped sliding groove that mates with the L-shaped insertion rod; The L-shaped insert includes a vertical section and a horizontal section. The vertical section is fixedly connected to the upper surface of the clamping frame, and the horizontal section is perpendicularly connected to the top of the vertical section. The L-shaped chute includes a vertical chute section and a horizontal chute section. The vertical chute section is located at the bottom of the UAV nest box, and the horizontal chute section is connected to the top of the vertical chute section. The inner wall of the L-shaped groove is covered with a damping layer.
10. The smart communication tower integrating environmental detection according to claim 1, characterized in that, The drone nest box has heat dissipation vents on both sides, and folding membranes are rotatably installed on both sides of the drone nest box, with one end of the folding membrane rotatably connected to the edge of the heat dissipation vent. A rope is fixedly installed on the side of the clamping frame, and the other end of the rope is fixedly connected to the end of the folded membrane; When the clamping frame moves toward the mounting plate, the rope pulls the folded membrane to unfold and cover the heat dissipation vent.