An integrated liftable meteorological tower platform
Through the integrated telescopic cylinder and annular slide rail system of the liftable meteorological tower platform, the height of the air rod is automatically adjusted, which solves the safety hazards and installation instability caused by manual operation in the prior art, and achieves efficient and stable adjustment and fixation of the air rod.
Patent Information
- Application Number
- CN202210021696.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-01-10
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2042-01-10
AI Technical Summary
The existing meteorological towers require manual operation when adjusting the height of the wind rod, which poses safety risks and is unstable and time-consuming.
The integrated liftable meteorological tower platform is adopted, and the air rod height is automatically adjusted with the air sensor with the telescopic cylinder and annular slide rail. The air pressure and curved plate auxiliary support are provided through the air pump, so as to achieve height adjustment without manual operation and improve installation stability.
It reduces safety hazards during the adjustment of the air rod, improves working efficiency and stability of the air rod installation, and extends the service life.
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Figure CN114458065B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of automatic traffic meteorological observation, and in particular to an integrated liftable meteorological tower platform. Background Art
[0002] An automatic traffic weather observation station, also known as a weather tower, is a weather station built in a specific area based on local needs. It uses meteorological instruments to automatically detect multiple factors, automatically generating messages without human intervention and regularly transmitting these data to a central station. The tower is equipped with various meteorological instruments, such as wind speed and direction sensors, as well as temperature, humidity, and pressure sensors. Traffic weather towers are typically installed along highways. These installations pose complex and dangerous environmental conditions, requiring approval from highway administration and traffic police departments for construction. Road closures may also be necessary to ensure that construction does not impact vehicle safety.
[0003] When using a current meteorological tower, the height of the mast needs to be adjusted to collect more meteorological data. Typically, the mast is installed by being inserted into a sleeve, which allows it to move up and down. When the mast is raised to a predetermined height, a bolt is inserted through the bottom of the sleeve to support the mast. The sleeve is then tightened with screws on three sides, and multiple bolt safety locks are provided at various lengths of the mast, restricting it to a fixed position when lowered. However, since manual adjustment of the mast height is required, if the fixing bolts between the mast and the sleeve have been removed in strong winds, the mast will swing to varying degrees under the influence of the wind, easily injuring workers and posing a safety hazard. Furthermore, the mast height adjustment is time-consuming and labor-intensive due to the need to remove bolts and screws, and the installation reliability is poor. Therefore, a new integrated, liftable meteorological tower platform is urgently needed. Summary of the Invention
[0004] The purpose of the present invention is to provide an integrated liftable meteorological tower platform to solve the problems existing in the above-mentioned prior art, so that the height of the wind pole can be adjusted without manual labor, thereby reducing safety hazards, improving work efficiency, and improving the stability of the wind pole installation and fixation.
[0005] To achieve the above objectives, the present invention provides the following solution: The present invention provides an integrated liftable meteorological tower platform, comprising:
[0006] Tower body;
[0007] The platform comprises a bottom plate, the bottom plate being fixed to the top of the tower body, a sleeve being provided on the bottom plate, a first telescopic cylinder and a plurality of columns being fixed on the bottom wall inside the sleeve, the columns extending along the top opening of the sleeve, a second slide plate and a first slide plate being sequentially passed through the plurality of columns from top to bottom, the bottom surface of the first slide plate being fixedly connected to the output end of the first telescopic cylinder, the bottom surface of the second slide plate being fixedly connected to the second telescopic cylinder, the output end of the second telescopic cylinder being fixedly connected to the top surface of the first slide plate, an annular groove being circumferentially provided on the top wall of the sleeve, an annular slide rail being embedded in the annular groove, the slide end of the annular slide rail extending out of the annular groove and being connected to the third telescopic cylinder, the output end of the third telescopic cylinder being fixedly connected to the first arc plate, and a plurality of protrusions being fixedly connected to the surface of the first arc plate;
[0008] The wind rod comprises a rod body, the bottom surface of the rod body is fixedly connected to the top surface of the second slide plate, the rod body is sleeved in the sleeve, the bottom surface of the rod body is provided with a plurality of slide grooves in the vertical direction, the column is passed through the slide groove, the rod body does not completely escape from the sleeve, the side wall of the rod body is provided with a plurality of limiting grooves, the limiting grooves are detachably connected to the protrusions, when the protrusions are located inside the limiting grooves, the surface of the first arc plate is fitted with the outer wall of the rod body, the rod body has a cavity, an air pump is installed in the cavity, and the air pump is connected to the top of the slide groove through a pipe.
[0009] Preferably, the top surface of the bottom plate is fixedly connected to a base, a fence is installed around the bottom plate, a placement groove is opened in the center of the top surface of the base, a mounting sleeve is provided in the placement groove, the sleeve is threadedly connected to the mounting sleeve, and a plurality of fourth telescopic cylinders are circumferentially fixed to the outer wall of the base, the output end of the fourth telescopic cylinder passes through the base and extends into the placement groove, and is fixedly connected to a second arc plate, and the mounting sleeve is clamped between multiple second arc plates.
[0010] Preferably, a buffer pad is provided on the inner side wall of the sleeve, and edges of the first slide plate, the second slide plate and the outer side wall of the rod body are all in contact with the buffer pad.
[0011] Preferably, a plurality of buffer springs are fixedly connected between the first slide plate and the bottom wall inside the sleeve, and a plurality of buffer springs are fixedly connected between the first slide plate and the second slide plate.
[0012] Preferably, the slide end of the annular slide rail extends out of the annular groove and is fixedly connected to a dustproof shell, the third telescopic cylinder is installed in the dustproof shell, and the output end of the third telescopic cylinder passes through the dustproof shell.
[0013] Preferably, either end of the cavity passes through the side wall of the rod body, and a sealing plate is detachably connected to the position where the cavity passes through the rod body, and a filter screen is embedded in the sealing plate.
[0014] Preferably, a plurality of sealing rings are fixedly connected to the bottom surface of the second slide plate, the upright posts pass through the sealing rings, and the upright posts are in contact with the inner side walls of the sealing rings.
[0015] Preferably, a lightning rod is installed on the top of the rod body, the lightning rod's lightning receptor is fixed to the rod body through a double clamp, the double clamps are insulated by insulating rubber, and the lightning rod's lightning receptor is led to the ground lightning protection grid through a down conductor.
[0016] Preferably, the tower body is equipped with a ladder, and the fence has a gap, and the gap is arranged corresponding to the ladder above and below.
[0017] The present invention discloses the following technical effects: a sleeve is arranged on the tower body, and a rod body is arranged in the sleeve. When the height of the wind pole needs to be adjusted, the first telescopic cylinder is turned on to drive the first slide to move, and the first slide is transmitted to the second slide and drives the rod body to move in the vertical direction. When it is adjusted to near a predetermined height, the second telescopic cylinder is turned on to drive the rod body to move, and the height is fine-tuned so that the wind pole reaches the predetermined height. The overall adjustment process does not require manual labor. Since the top of the rod body will inevitably extend out of the sleeve during the adjustment process, if it is affected by strong winds, the rod body will be subjected to force and the sleeve will be worn. Therefore, an electric annular slide rail is provided to cooperate with the third telescopic cylinder and the first arc plate to provide auxiliary support for the rod body. The wind direction is detected by the wind sensor of the meteorological tower itself, and the position of the third telescopic cylinder is adjusted by the annular slide rail according to the wind direction, so that the third telescopic cylinder is located on the back of the wind-affected side of the rod body. The third telescopic cylinder The first curved plate is driven to extend and fit the rod body, and the protrusion is inserted into the limiting groove, thereby providing auxiliary support for the rod body, greatly reducing the wear between the rod body and the sleeve, and improving the service life while improving the stability of the installation and fixation. Moreover, since the rod body moves up and down along the column when adjusting the height of the wind pole, the shaking frequency of the rod body during the movement can be greatly reduced. When the predetermined height is reached, there will be a certain gap between the top of the slide groove and the rod body. In order to prevent the problem of loose assembly between the rod body and the column caused by the gap, air is supplied by an air pump so that sufficient air pressure remains in the gap, which greatly improves the tightness of the assembly between the rod body and the column. Moreover, the rod body will not fall out of the sleeve during the height adjustment process, which is equivalent to the sleeve being able to provide a limiting effect on the rod body, thereby improving the overall stability of the wind pole installation and fixation. The present invention eliminates the need for manual labor when adjusting the height of the wind pole, reduces safety hazards, improves work efficiency, and improves the stability of the wind pole installation and fixation. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0019] Figure 1 This is a schematic structural diagram of the integrated liftable meteorological tower platform of the present invention;
[0020] Figure 2 It is a structural schematic diagram of the platform and wind pole of the present invention;
[0021] Figure 3 A top view of the second curved plate and the mounting sleeve of the present invention;
[0022] Figure 4 A top view of the first curved plate and the rod body of the present invention;
[0023] Figure 5 for Figure 2 A partial enlarged view of middle A;
[0024] Figure 6 for Figure 2 A partial enlarged view of middle B;
[0025] Figure 7 for Figure 2 A partial enlarged view of center C;
[0026] Among them, 1 is the tower body, 2 is the base plate, 3 is the sleeve, 4 is the first telescopic cylinder, 5 is the column, 6 is the first slide, 7 is the second slide, 8 is the second telescopic cylinder, 9 is the annular groove, 10 is the annular slide rail, 11 is the third telescopic cylinder, 12 is the first arc plate, 13 is the protrusion, 14 is the rod body, 15 is the slide groove, 16 is the limit groove, 17 is the cavity, 18 is the air pump, 19 is the base, 20 is the fence, 21 is the placement groove, 22 is the installation sleeve, 23 is the fourth telescopic cylinder, 24 is the second arc plate, 25 is the buffer pad, 26 is the buffer spring, 27 is the dustproof shell, 28 is the sealing plate, 29 is the filter screen, 30 is the sealing ring, 31 is the lightning rod, and 32 is the ladder. DETAILED DESCRIPTION
[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0028] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.
[0029] Reference Figure 1-7 The present invention provides an integrated liftable meteorological tower platform, comprising:
[0030] Tower body 1, the main body of tower body 1 is 3m high, and the main body is an arc-shaped tower with four corners. The side of tower body 1 adopts a three-layer horizontal and diagonal structure. The span of the tower bottom is 1.5m×1.5m. The tower foot is fastened to the ground with a flange. The upper span of tower body 1 is 1m, and it is all welded with hot-dip galvanized round pipe materials.
[0031] The platform includes a bottom plate 2, which is fixed to the top of the tower body 1. The size of the bottom plate 2 is 1.3m×1.3m, the two corners on the front side are right angles, and the back side is a polygon with a 135° angle. The surface of the bottom plate 2 can be installed with an existing weather station collection box, and a half-layer mounting surface (not shown in the figure) is also provided at its half-height position for installing existing rainfall and shutter boxes. A sleeve 3 is provided on the bottom plate 2, and a first telescopic cylinder 4 and a plurality of columns 5 are fixed to the bottom wall inside the sleeve 3. The columns 5 extend along the top of the sleeve 3, and a second slide 7 and a first slide 6 are sequentially inserted between the plurality of columns 5 from top to bottom, so that the second slide 7 and the first slide 6 can slide up and down along the columns 5, and the bottom surface of the first slide 6 is aligned with the first The output end of the telescopic cylinder 4 is fixed, and the bottom surface of the second slide 7 is fixedly connected to the second telescopic cylinder 8. The output end of the second telescopic cylinder 8 is fixedly connected to the top surface of the first slide 6. The first telescopic cylinder 4 and the second telescopic cylinder 8 are both cylinders, wherein the second telescopic cylinder 8 is a micro-feed cylinder. The top wall of the sleeve 3 is circumferentially provided with an annular groove 9, and an annular slide rail 10 is embedded in the annular groove 9. The annular slide rail 10 is an existing electric slide rail. The slide end of the annular slide rail 10 extends out of the annular groove 9 and is connected to the third telescopic cylinder 11. The annular slide rail 10 can drive the third telescopic cylinder 11 to move circumferentially with the rod body 14 as the center of the circle. The output end of the third telescopic cylinder 11 is fixedly connected to the first arc plate 12, and a plurality of protrusions 13 are fixed to the surface of the first arc plate 12;
[0032] The wind rod includes a rod body 14. Meteorological instruments such as wind sensors can be installed at the top of the rod body 14. The bottom surface of the rod body 14 is fixedly connected to the top surface of the second slide plate 7. The rod body 14 is sleeved in the sleeve 3. The bottom surface of the rod body 14 is provided with a plurality of slide grooves 15 in the vertical direction. The column 5 is passed through the slide groove 15. The rod body 14 does not completely escape from the sleeve 3. The side wall of the rod body 14 is provided with a plurality of limit grooves 16. The limit grooves 16 are detachably connected to the protrusions 13. When the protrusions 13 are located inside the limit grooves 16, the surface of the first curved plate 12 fits with the outer wall of the rod body 14. There is a cavity 17 in the rod body 14. An air pump 18 is installed in the cavity 17. The air pump 18 is connected to the top of the slide groove 15 through a pipeline. There is a gap between the top of the slide groove 15 and the column 5. The gap is pressurized by the air pump 18, so that the column and the rod body 14 are tightly assembled.
[0033] When the height of the wind pole needs to be adjusted, the first telescopic cylinder 4 is turned on to drive the first slide 6 to move, and the first slide 6 is transmitted to the second slide 7 and drives the rod body 14 to move in the vertical direction. When it is adjusted to near the predetermined height, the second telescopic cylinder 8 is turned on to drive the rod body 14 to move, and the height is fine-tuned so that the wind pole reaches the predetermined height. The overall adjustment process does not require manual work. Since the top of the rod body 14 will inevitably extend out of the sleeve 3 during the adjustment process, if affected by strong winds, the rod body 14 will be subjected to force and the sleeve will be worn. Therefore, an electric annular slide rail 10 is provided to cooperate with the third telescopic cylinder 11 and the first curved plate 12 to provide auxiliary support for the rod body 14. The wind direction is detected by the wind sensor of the meteorological tower itself, and the position of the third telescopic cylinder 11 is adjusted by the annular slide rail 10 according to the wind direction. The specific electric control method is the existing technology and will not be repeated here. The third telescopic cylinder 11 is located on the back of the wind-affected side of the rod body 14, and the third telescopic cylinder 11 drives the first curved plate 12 The rod body 14 is extended and fits the rod body 14, and the protrusion 13 is inserted into the limit groove 16, which realizes auxiliary support for the rod body 14, greatly reducing the wear between the rod body 14 and the sleeve 3, while improving the service life. And since the rod body 14 moves up and down along the column 5 when the wind pole height is adjusted, the shaking frequency of the rod body 14 during the movement can be greatly reduced. When the predetermined height is reached, there will be a certain gap between the top of the slide groove 15 and the rod body 14. In order to prevent the problem of loose assembly between the rod body 14 and the column 5 caused by the gap, air is supplied by the air pump 18, so that sufficient air pressure is left in the gap, which greatly improves the tightness of the assembly between the rod body 14 and the column 5. Moreover, the rod body 14 will not fall out of the sleeve 3 during the height adjustment process, which is equivalent to the sleeve 3 inevitably providing a limiting effect on the rod body 14, thereby improving the overall stability of the wind pole installation and fixation.
[0034] A further optimization scheme is that a base 19 is fixed to the top surface of the base plate 2, and a fence 20 is installed around the base plate 2. The fence 20 is 80 cm high and adopts a mesh transparent structure. The fence 20 can be hung with existing visibility sensors and solar panels, etc. A placement groove 21 is opened in the center of the top surface of the base 19, and a mounting sleeve 22 is provided in the placement groove 21. The sleeve 3 is threadedly connected to the mounting sleeve 22. A plurality of fourth telescopic cylinders 23 are fixed to the circumferential outer wall of the base 19. The output end of the fourth telescopic cylinder 23 passes through the base 19 and extends into the placement groove 21, and is fixed with a second arc plate 24. The mounting sleeve 22 is clamped between multiple second arc plates 24. Through this arrangement, it is convenient to replace wind poles of different sizes. After replacement, the sleeve 3 is threadedly assembled with the mounting sleeve 22 of the corresponding size, and then the second arc plate 24 is driven by multiple fourth telescopic cylinders 23 to tightly clamp the mounting sleeve 22. Under the premise of ensuring installation stability, it is convenient to replace wind poles of different sizes.
[0035] To further optimize the solution, a buffer pad 25 is laid on the inner wall of the sleeve 3, and the edges of the first slide 6, the second slide 7 and the outer wall of the rod body 14 are all in contact with the buffer pad 25, which greatly reduces the wear on the sleeve 3 when the first slide 6, the second slide 7 and the rod body 14 move, and reduces the noise during the sliding process.
[0036] To further optimize the solution, multiple buffer springs 26 are fixed between the first slide 6 and the bottom wall inside the sleeve 3, and multiple buffer springs 26 are fixed between the first slide 6 and the second slide 7. The setting of the two buffer springs 26 avoids collision between the telescopic ends of the first telescopic cylinder 4 and the second telescopic cylinder 8 and the cylinder body, avoids the generation of noise, and at the same time prevents the two telescopic cylinders from impacting the two slides, thereby improving the service life.
[0037] To further optimize the solution, the slide end of the annular slide rail 10 extends out of the annular groove 9 and is fixedly connected to a dustproof cover 27. The third telescopic cylinder 11 is installed in the dustproof cover 27, and the output end of the third telescopic cylinder 11 passes through the dustproof cover 27. Since the third telescopic cylinder 11 is exposed to the outside world, the dustproof cover 27 is provided to provide protection for the third telescopic cylinder 11.
[0038] A further optimized solution is that either end of the cavity 17 passes through the side wall of the rod body 14, and the position where the cavity 17 passes through the rod body 14 is detachably connected to a sealing plate 28, on which a filter screen 29 is embedded. The suction end of the air pump 18 draws air through the position where the cavity 17 passes through the rod body 14, and transports it to the chute 15 through a pipeline. During the suction process, the filter screen 29 blocks impurities from entering.
[0039] To further optimize the solution, a plurality of sealing rings 30 are fixed to the bottom surface of the second slide 7, the column 5 passes through the sealing ring 30, and the column 5 fits against the inner wall of the sealing ring 30. By setting the sealing ring 30, gas leakage in the slide groove 15 can be prevented, ensuring that the air pump 18 can be used normally and stably.
[0040] To further optimize the solution, a lightning rod 31 is installed on the top of the pole body 14. The lightning rod 31 is fixed to the pole body 14 through a double clamp. The double clamps are insulated by insulating rubber. The lightning rod 31 is led to the lightning protection ground network on the ground through a down conductor to ensure that the current is blocked from directly invading the automatic station equipment when lightning strikes.
[0041] To further optimize the solution, the tower body 1 is equipped with a ladder 32, and the fence 20 has a gap, which is arranged corresponding to the ladder 32 above and below. The ladder 32 is fixed to the tower body 1 by bolts and screws on both sides and can be removed when not needed. The gap is opened in the middle of the front side of the fence 20 as an up and down passage for personnel.
[0042] In the description of the present invention, it should be understood that the terms "longitudinal", "transverse", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating 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 describing the present invention, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present invention.
[0043] The embodiments described above are merely descriptions of preferred embodiments of the present invention and are not intended to limit the scope of the present invention. Without departing from the spirit of the present invention, various modifications and improvements made to the technical solutions of the present invention by persons skilled in the art should fall within the scope of protection defined by the claims of the present invention.
Claims
1. An integrated liftable meteorological tower platform, characterized in that: include: Tower (1); The platform comprises a bottom plate (2), the bottom plate (2) being fixed to the top of the tower body (1), a sleeve (3) being provided on the bottom plate (2), a first telescopic cylinder (4) and a plurality of columns (5) being fixed to the bottom wall inside the sleeve (3), the columns (5) extending along the top opening of the sleeve (3), a second slide plate (7) and a first slide plate (6) being sequentially passed through between the plurality of columns (5) from top to bottom, the bottom surface of the first slide plate (6) being fixedly connected to the output end of the first telescopic cylinder (4), the second slide plate (7) ) is fixedly connected to the bottom surface of the sleeve (3), the output end of the second telescopic cylinder (8) is fixedly connected to the top surface of the first slide (6), the top wall of the sleeve (3) is circumferentially provided with an annular groove (9), an annular slide rail (10) is embedded in the annular groove (9), the slide end of the annular slide rail (10) extends out of the annular groove (9) and is connected to the third telescopic cylinder (11), the output end of the third telescopic cylinder (11) is fixedly connected to the first arc plate (12), and the surface of the first arc plate (12) is fixedly provided with a plurality of protrusions (13); The wind rod comprises a rod body (14), the bottom surface of the rod body (14) is fixedly connected to the top surface of the second slide plate (7), the rod body (14) is sleeved in the sleeve (3), the bottom surface of the rod body (14) is provided with a plurality of sliding grooves (15) in the vertical direction, the column (5) is passed through the sliding grooves (15), the rod body (14) does not completely escape from the sleeve (3), and the side wall of the rod body (14) is provided with a plurality of limiting grooves. The limiting groove (16) is detachably connected to the protrusion (13); when the protrusion (13) is located inside the limiting groove (16), the surface of the first arc-shaped plate (12) is in contact with the outer wall of the rod body (14); the rod body (14) has a cavity (17) inside, and an air pump (18) is installed in the cavity (17); the air pump (18) is connected to the top of the slide groove (15) through a pipeline; The inner side wall of the sleeve (3) is paved with a buffer pad (25), and the edges of the first slide plate (6), the second slide plate (7) and the outer side wall of the rod body (14) are all in contact with the buffer pad (25); A plurality of sealing rings (30) are fixedly connected to the bottom surface of the second slide plate (7), the upright column (5) passes through the sealing ring (30), and the upright column (5) is in contact with the inner wall of the sealing ring (30).
2. The integrated liftable meteorological tower platform according to claim 1, characterized in that: The top surface of the bottom plate (2) is fixedly connected to a base (19), and a fence (20) is installed around the bottom plate (2). A placement groove (21) is opened at the center of the top surface of the base (19), and a mounting sleeve (22) is provided in the placement groove (21). The sleeve (3) is threadedly connected to the mounting sleeve (22). A plurality of fourth telescopic cylinders (23) are fixed circumferentially to the outer wall of the base (19). The output end of the fourth telescopic cylinder (23) passes through the base (19) and extends into the placement groove (21), and is fixedly connected to a second arc plate (24). The mounting sleeve (22) is clamped between the plurality of second arc plates (24).
3. The integrated liftable meteorological tower platform according to claim 1 is characterized in that: A plurality of buffer springs (26) are fixedly connected between the first slide plate (6) and the bottom wall inside the sleeve (3), and a plurality of buffer springs (26) are fixedly connected between the first slide plate (6) and the second slide plate (7).
4. The integrated liftable meteorological tower platform according to claim 1, characterized in that: The slide end of the annular slide rail (10) extends out of the annular groove (9) and is fixedly connected to a dustproof shell (27). The third telescopic cylinder (11) is installed in the dustproof shell (27), and the output end of the third telescopic cylinder (11) passes through the dustproof shell (27).
5. The integrated liftable meteorological tower platform according to claim 1 is characterized in that: Either end of the cavity (17) passes through the side wall of the rod body (14), and a sealing plate (28) is detachably connected to the position where the cavity (17) passes through the rod body (14), and a filter screen (29) is embedded in the sealing plate (28).
6. The integrated liftable meteorological tower platform according to claim 1, characterized in that: A lightning rod (31) is installed at the top of the rod body (14); the lightning receptor of the lightning rod (31) is fixedly connected to the rod body (14) via a double clamp; the double clamps are insulated by insulating rubber; and the lightning receptor of the lightning rod (31) is led to the ground lightning protection network via a down conductor.
7. The integrated liftable meteorological tower platform according to claim 2, characterized in that: The tower body (1) is equipped with a ladder (32), and the fence (20) has a gap, and the gap is arranged in correspondence with the ladder (32) above and below.
Citation Information
Patent Citations
Integrated liftable meteorological tower platform
CN216714018U