Adjustable signal transmitting and receiving device for satellite communication

By using a wind-driven gear and wind deflector system, the height and support structure of the satellite communication signal transceiver are automatically adjusted, solving the problem of device swaying in strong winds and ensuring normal operation of the device in severe weather.

CN121643876AInactive Publication Date: 2026-03-10上海至培昌电子科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-09
Publication Date
2026-03-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing satellite communication signal transceivers are prone to significant swaying in windy weather due to their high installation height, which may lead to damage and affect normal operation.

Method used

An adjustable satellite communication signal transceiver was designed. By using wind power to move the wind deflector and drive the gear to rotate, the height of the receiver is automatically adjusted. The wind deflector and the compression plate work together to enhance the support effect on the rotating shaft and reduce shaking.

Benefits of technology

In windy weather, the receiver height is automatically adjusted to reduce the impact of wind and prevent swaying from being transmitted to the receiver, ensuring the device works normally.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of signal transmitting and receiving, in particular to an adjustable signal transmitting and receiving device for satellite communication, which comprises a base, an adjusting mechanism is mounted on the base, the adjusting mechanism comprises a fixed seat mounted on the base, two groups of wind shields are movably arranged at the bottom of the fixed seat, racks are connected to the inner sides of the two groups of wind shields, and the two groups of wind shields are movably arranged on the base. A gear is rotationally arranged on one side of each rack, and a threaded rod is fixedly connected to the bottom of the gear. The wind screen is pushed to move through wind power to drive the gear to rotate, so that the threaded rod is driven to rotate in the fixing sleeve, and the gear and the fixing base descend; meanwhile, the gears drive the limiting table to rotate in the second fixing column, it is guaranteed that the gears rotate relatively, in the windy weather, the height of the receiver is automatically adjusted, and the situation that the receiver is greatly influenced by wind power when the receiver is high, and consequently normal work of the receiver is influenced is avoided.
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Description

Technical Field

[0001] This invention relates to the field of signal transceiver technology, specifically to a signal transceiver device for adjustable satellite communication. Background Technology

[0002] On Earth, ground base stations are typically used for communication. However, the coverage of base stations is limited by the shape of the Earth, terrain, and building obstructions, which restricts the communication distance. Satellite communication, on the other hand, transmits signals to satellites in Earth orbit, which then relay the signals to the target location, enabling long-distance communication. Signal transmission and reception are crucial components of satellite communication systems and are essential for the normal operation and development of satellite communication. Existing satellite communication signal transceivers are typically installed at a high position to minimize obstructions during operation. However, this high installation can cause significant swaying during windy weather, potentially leading to damage. Summary of the Invention

[0003] The purpose of this invention is to provide a signal transceiver device for adjustable satellite communication to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a signal transceiver device for adjustable satellite communication, comprising a base on which an adjustment mechanism is mounted; The adjustment mechanism includes a fixed seat mounted on a base. Two sets of wind deflectors are movably mounted on the bottom of the fixed seat. A rack is connected to the inner side of each set of wind deflectors. A gear rotates on one side of each set of racks. A threaded rod is fixedly connected to the bottom of each gear. A fixed sleeve, which is fixedly connected to the base, is threadedly connected to the outer side of the threaded rod. The gear is rotatably connected to the fixed seat. A second fixed column is fixedly mounted on the bottom of the fixed seat and fixedly connected to the base. Two sets of first extrusion plates are fixed inside each set of wind deflectors. Two sets of second extrusion plates are disposed inside the fixed seat. The two sides of each second extrusion plate are movably connected to the two sets of first extrusion plates. A second extrusion block is movably mounted on one side of each second extrusion plate. An extrusion sleeve is fitted onto the outer side of each second extrusion block. A rotating shaft is movably connected inside the second extrusion block. A protective plate is movably connected to the outer side of the rotating shaft. The protective plate slides on the fixed seat. A receiver is fixed on the fixed seat.

[0005] Preferably, both sets of wind deflectors are provided with a second limiting block, and both sets of the second limiting blocks slide inside the base.

[0006] Preferably, two sets of limiting posts penetrate the interior of the wind deflector. One side of each limiting post penetrates the wind deflector and is connected to a first limiting plate. A first spring is sleeved on each limiting post, and one end of the first spring is connected to the wind deflector. Preferably, two sets of fixing platforms are fixed on the second fixing column, one end of the first spring is fixedly connected to the fixing platform, and one end of the limiting column is fixedly connected to the fixing platform.

[0007] Preferably, two sets of first fixing columns are fixed on one side of the fixing platform, and one end of each set of first fixing columns is fixedly connected to the base. A positioning column is fixed on the fixing platform, and the second pressing plate slides on the positioning column.

[0008] Preferably, a limiting platform is fixed to the top of the gear, and the limiting platform is rotatably connected to the second fixed column.

[0009] Preferably, one side of the first extrusion plate is set as an inclined surface, and the fixed base is provided with two sets of first grooves, and the two sets of second extrusion plates slide in the two sets of first grooves respectively.

[0010] Preferably, a first extrusion block is movably mounted on the side of the extrusion sleeve near the second extrusion plate, and one end of the first extrusion block is movably connected to the second extrusion plate.

[0011] Preferably, a second spring is provided inside the extrusion sleeve, one end of the second spring is connected to the first extrusion block, the other end of the second spring is connected to the second extrusion block, and one end of the second extrusion block slides inside the extrusion sleeve.

[0012] Preferably, a second limiting plate is provided at both ends of the rotating shaft, and a first limiting block is provided at the bottom of the protective plate, the first limiting block sliding inside the fixed seat.

[0013] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention utilizes the wind power to move the wind deflector, which in turn drives the gear to rotate. This causes the threaded rod to rotate inside the fixed sleeve, resulting in the gear and the fixed seat descending. Simultaneously, the gear drives the limiting platform to rotate inside the second fixed column, ensuring that the gears rotate relative to each other. In windy weather, this invention automatically adjusts the height of the receiver, preventing the receiver from being significantly affected by wind at higher altitudes, thus ensuring the normal operation of the receiver.

[0014] 2. In this invention, when the wind deflector moves, it causes two sets of first extrusion plates to move closer together. The second extrusion plate moves upward and extrudes the first extrusion block. The first extrusion block, in turn, extrudes the second spring as the extrusion sleeve moves, thereby driving the second spring to extrude the second extrusion block. At the same time, when the second extrusion plate moves, it causes the first extrusion block to slide on one side of the second extrusion plate, thereby adjusting the positional relationship between the second extrusion block and the rotating shaft. This also enhances the support effect of the second extrusion block on the rotating shaft, thereby improving the support effect of the rotating shaft on the protective plate. The receiver blocks the wind force, preventing the two sets of protective plates from swaying in strong winds, thus preventing the swaying from being transmitted to the receiver and affecting its normal operation. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is one of the structural schematic diagrams of the adjustment mechanism of the present invention; Figure 3 This is a second schematic diagram of the adjustment mechanism of the present invention; Figure 4 This is a third schematic diagram of the adjustment mechanism of the present invention; Figure 5 For the present invention Figure 4 Enlarged view of section A in the middle.

[0016] In the diagram: 1. Base; 2. Adjustment mechanism; 21. Fixed seat; 22. Wind baffle; 23. Limiting post; 24. First spring; 25. Rack; 26. Gear; 27. First fixed post; 28. First limiting plate; 29. ​​Fixed platform; 210. Receiver; 211. Protective plate; 212. Threaded rod; 213. Limiting platform; 214. Second fixed post; 215. First extrusion plate; 216. Second extrusion plate; 217. Extrusion sleeve; 218. Positioning post; 219. First extrusion block; 220. Second extrusion block; 221. Rotating shaft; 222. Second limiting plate; 223. First limiting block; 224. Second limiting block; 225. Fixed sleeve; 226. Second spring. Detailed Implementation

[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0018] Please see Figures 1 to 5 The present invention provides a signal transceiver device for adjustable satellite communication, including a base 1 and an adjustment mechanism 2 installed on the base 1; The adjusting mechanism 2 includes a fixed base 21 mounted on the base 1. Two sets of wind deflectors 22 are movably mounted on the bottom of the fixed base 21. Racks 25 are connected to the inner sides of both sets of wind deflectors 22. Gears 26 rotate on one side of each set of racks 25. A threaded rod 212 is fixedly connected to the bottom of the gear 26. A fixed sleeve 225, which is fixedly connected to the base 1, is threadedly connected to the outer side of the threaded rod 212. The gear 26 is rotatably connected to the fixed base 21. A second fixed post 214 is fixedly mounted on the bottom of the fixed base 21. The second fixed post 214 is fixedly connected to the base 1. The inner sides of the two sets of wind deflectors 22... Each part is fixed with two sets of first extrusion plates 215. The fixed base 21 is provided with two sets of second extrusion plates 216. The two sides of the second extrusion plates 216 are movably connected to the two sets of first extrusion plates 215 respectively. A second extrusion block 220 is movably connected to one side of the second extrusion plate 216. An extrusion sleeve 217 is sleeved on the outside of the second extrusion block 220. A rotating shaft 221 is movably connected inside the second extrusion block 221. A protective plate 211 is movably connected to the outside of the rotating shaft 221. The protective plate 211 slides on the fixed base 21. A receiver 210 is fixed on the fixed base 21.

[0019] See Figure 2 As shown, in windy weather, the wind force pushes the wind deflector 22, causing the second limiting block 224 to slide inside the fixed base 21. At the same time, when the wind deflector 22 moves, it compresses the first spring 24, causing it to slide on the limiting post 23. Simultaneously, the movement of the wind deflector 22 causes the rack 25 to move, which in turn causes the gear 26 to rotate. When the gear 26 rotates, it causes the threaded rod 212 to rotate inside the fixed sleeve 225, thereby causing the gear 26 and the fixed base 21 to descend. At the same time, the gear 26 causes the limiting platform 213 to rotate inside the second fixed post 214, ensuring that the gears 26 rotate relative to each other, thus not changing the direction of the receiver 210 on the fixed base 21. In windy weather, the height of the receiver 210 is automatically adjusted to prevent the receiver 210 from being greatly affected by the wind when it is at a high position, which would affect the normal operation of the receiver 210.

[0020] At the same time, when the wind force decreases, the elastic force of the first spring 24 is greater than the wind force, thereby pushing the wind deflector 22 to reset, which in turn drives the gear 26 to reverse and reset, ensuring the normal operation of the device.

[0021] Simultaneously, as the wind blows from one direction, the movement of one set of wind deflectors 22 causes one set of racks 25 to move, which in turn drives the other set of racks 25 to move via the rotation of gear 26, thus causing the other set of wind deflectors 22 to move. The two sets of wind deflectors 22 move synchronously. As the wind deflectors 22 move, they also cause the two sets of first pressing plates 215 to move closer together. When the two sets of first pressing plates 215 move closer, they press the second pressing plate 216 upwards. Simultaneously, the upward movement of the second pressing plate 216 presses the first pressing block 219 to move. The first pressing block 219, as the pressing sleeve 217 moves, presses the second spring 226, thereby… The second spring 226 is driven to press the second pressing block 220. At the same time, when the second pressing plate 216 moves, it drives the first pressing block 219 to slide on one side of the second pressing plate 216, thereby adjusting the positional relationship between the second pressing block 220 and the rotating shaft 221. This also enhances the support effect of the second pressing block 220 on the rotating shaft 221, thereby improving the support effect of the rotating shaft 221 on the protective plate 211. The receiver 210 blocks the wind force, preventing the two sets of protective plates 211 from shaking in strong winds, thus preventing the shaking from being transmitted to the receiver 210 and affecting the normal operation of the receiver 210.

[0022] Meanwhile, when the wind is weak, the protective plate 211 slides on the fixed base 21 to buffer the wind and reduce the impact of the wind on the receiver 210.

[0023] In an optional embodiment, each of the two sets of wind deflectors 22 is provided with a second limiting block 224, and both sets of second limiting blocks 224 slide inside the base 1.

[0024] It should be noted that in windy weather, the wind force pushes the wind deflector 22, causing the second limiting block 224 to slide inside the fixed seat 21.

[0025] In an optional embodiment, two sets of limiting posts 23 penetrate the interior of the wind deflector 22. One side of the limiting post 23 penetrates the wind deflector 22 and is connected to a first limiting piece 28. A first spring 24 is sleeved on the limiting post 23, and one end of the first spring 24 is connected to the wind deflector 22.

[0026] It should be noted that when the wind deflector 22 moves, it compresses the first spring 24 to slide on the limiting post 23, and at the same time, the movement of the wind deflector 22 drives the rack 25 to move.

[0027] In an optional embodiment, two sets of fixing platforms 29 are fixed on the second fixing post 214, one end of the first spring 24 is fixedly connected to the fixing platform 29, and one end of the limiting post 23 is fixedly connected to the fixing platform 29.

[0028] It should be noted that the first spring 24 is compressed inside the fixed platform 29 and the wind deflector 22. When the wind force decreases, the elastic force of the first spring 24 is greater than the wind force, thereby pushing the wind deflector 22 to return to its original position. At the same time, the fixed platform 29 fixes the limiting post 23.

[0029] In an optional embodiment, two sets of first fixing columns 27 are fixed on one side of the fixing platform 29, and one end of the two sets of first fixing columns 27 is fixedly connected to the base 1 respectively. A positioning column 218 is fixed on the fixing platform 29, and the second pressing plate 216 slides on the positioning column 218.

[0030] It should be noted that the first fixing post 27 is fixed to the fixing platform 29, and the fixing platform 29 is fixed to the second fixing post 214. At the same time, the fixing platform 29 fixes the positioning post 218 and restricts the sliding of the second pressing plate 216.

[0031] In an optional embodiment, a limiting platform 213 is fixed to the top of the gear 26, and the limiting platform 213 is rotatably connected to the second fixed column 214.

[0032] It should be noted that the limiting stage 213 rotates inside the second fixed column 214, so that the second fixed column 214 does not rotate when the gear 26 rotates, thus ensuring the normal operation of the receiver 210.

[0033] In an optional embodiment, one side of the first extrusion plate 215 is configured as an inclined surface, and the fixed base 21 is provided with two sets of first grooves, and the two sets of second extrusion plates 216 slide in the two sets of first grooves respectively.

[0034] It should be noted that when the wind deflector 22 moves, it causes the two sets of first extrusion plates 215 to move closer together. When the two sets of first extrusion plates 215 move closer together, they squeeze the second extrusion plate 216 to move upward.

[0035] In an optional embodiment, a first extrusion block 219 is movably mounted on the side of the extrusion sleeve 217 near the second extrusion plate 216, and one end of the first extrusion block 219 is movably connected to the second extrusion plate 216.

[0036] It should be noted that the second extrusion plate 216 moves upward to extrude the first extrusion block 219, and the first extrusion block 219 moves with the extrusion sleeve 217 to extrude the second spring 226.

[0037] In an optional embodiment, a second spring 226 is provided inside the extrusion sleeve 217. One end of the second spring 226 is connected to the first extrusion block 219, and the other end of the second spring 226 is connected to the second extrusion block 220. One end of the second extrusion block 220 slides inside the extrusion sleeve 217.

[0038] It should be noted that when the second spring 226 presses the second pressing block 220, the second pressing plate 216 moves and drives the first pressing block 219 to slide on one side of the second pressing plate 216, thereby adjusting the positional relationship between the second pressing block 220 and the rotating shaft 221, and enhancing the support effect of the second pressing block 220 on the rotating shaft 221.

[0039] In an optional embodiment, a second limiting piece 222 is provided at both ends of the rotating shaft 221, and a first limiting block 223 is provided at the bottom of the protective plate 211. The first limiting block 223 slides inside the fixed base 21.

[0040] It should be noted that the protective plate 211 is movably connected to the rotating shaft 221, and the second limiting piece 222 restricts the protective plate 211. At the same time, when the protective plate 211 moves, it drives the first limiting block 223 to slide inside the base 1, thereby restricting the protective plate 211.

[0041] Working principle: In windy weather, the wind force pushes the wind deflector 22 to drive the second limiting block 224 to slide inside the fixed base 21. At the same time, when the wind deflector 22 moves, it squeezes the first spring 24 to slide on the limiting post 23. Simultaneously, the movement of the wind deflector 22 drives the rack 25 to move, and the movement of the rack 25 drives the gear 26 to rotate. When the gear 26 rotates, it drives the threaded rod 212 to rotate inside the fixed sleeve 225, thereby causing the gear 26 and the fixed base 21 to descend. At the same time, the gear 26 drives the limiting platform 213 to rotate inside the second fixed post 214, ensuring that the gears 26 rotate relative to each other, thus not changing the direction of the receiver 210 on the fixed base 21. In windy weather, the height of the receiver 210 is automatically adjusted.

[0042] At the same time, when the wind force decreases, the elastic force of the first spring 24 is greater than the wind force, thereby pushing the wind deflector 22 to reset, which in turn drives the gear 26 to reverse and reset, ensuring the normal operation of the device.

[0043] Simultaneously, as the wind blows from one direction, the movement of one set of wind deflectors 22 causes one set of racks 25 to move, which in turn drives the rotation of gear 26 to move another set of racks 25, thereby causing the other set of wind deflectors 22 to move. The two sets of wind deflectors 22 move synchronously. At the same time, the movement of the wind deflectors 22 causes the two sets of first extrusion plates 215 to move closer together. When the two sets of first extrusion plates 215 move closer together, they press the second extrusion plate 216 upward. At the same time, the upward movement of the second extrusion plate 216 presses the first extrusion block 219 to move. The first extrusion block 219 moves in the extrusion sleeve 217 and presses the second spring 226, thereby driving the second spring 226 to press the second extrusion block 220. At the same time, the movement of the second extrusion plate 216 causes the first extrusion block 219 to slide on one side of the second extrusion plate 216, thereby adjusting the positional relationship between the second extrusion block 220 and the rotating shaft 221, and enhancing the support effect of the second extrusion block 220 on the rotating shaft 221, thereby improving the support effect of the rotating shaft 221 on the protective plate 211. The receiver 210 blocks the wind force.

[0044] 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 satellite communication signal transceiver device comprising a base (1), characterized in that, The base (1) is provided with an adjusting mechanism (2); The adjusting mechanism (2) comprises a fixing base (21) mounted on the base (1), two groups of wind baffles (22) movably arranged at the bottom of the fixing base (21), a rack (25) connected to the inner side of each group of wind baffles (22), a gear (26) rotatably arranged at one side of each group of racks (25), a threaded rod (212) fixedly connected to the bottom of each gear (26), a fixing sleeve (225) fixedly connected to the base (1) and threadedly connected to the outer side of the threaded rod (212), the gear (26) rotatably connected to the fixing base (21), a second fixing column (214) fixedly arranged at the bottom of the fixing base (21) and fixedly connected to the base (1), two groups of first extrusion plates (215) fixedly arranged in the interior of each group of wind baffles (22), two groups of second extrusion plates (216) arranged in the interior of the fixing base (21) and movably connected to the two groups of first extrusion plates (215) at the two sides, a second extrusion block (220) movably arranged at one side of each second extrusion plate (216), an extrusion sleeve (217) arranged on the outer side of each second extrusion block (220), a rotating shaft (221) movably arranged in the interior of each second extrusion block (220), a protection plate (211) movably arranged on the fixing base (21) and movably connected to the outer side of the rotating shaft (221), and a receiver (210) fixedly arranged on the fixing base (21).

2. The signal transceiving apparatus for satellite communication according to claim 1, wherein Second limiting blocks (224) are arranged on the two groups of wind baffles (22) and slide in the interior of the base (1).

3. The signal transceiving apparatus for satellite communication according to claim 1, wherein Limiting columns (23) are arranged in the interior of each wind baffle (22), first limiting pieces (28) are arranged at one side of each limiting column (23) and penetrate through the wind baffle (22), and first springs (24) are arranged on the limiting columns (23).

4. The signal transceiving apparatus for satellite communication according to claim 3, wherein Second fixing columns (214) are fixedly arranged on the second limiting blocks (224), one end of each first spring (24) is fixedly connected to a fixing table (29) of the second fixing column (214), and one end of each limiting column (23) is fixedly connected to the fixing table (29).

5. The signal transceiving apparatus for satellite communication according to claim 4, wherein First fixing columns (27) are fixedly arranged at one side of each fixing table (29), one end of each first fixing column (27) is fixedly connected to the base (1), a positioning column (218) is fixedly arranged on the fixing table (29), and each second extrusion plate (216) slides on the positioning column (218).

6. The signal transceiving apparatus for satellite communication according to claim 1, wherein A limiting table (213) is fixedly arranged at the top of each gear (26) and rotatably connected to the second fixing column (214).

7. The signal transceiving apparatus for satellite communication according to claim 1, wherein One side of each first extrusion plate (215) is arranged as an inclined surface, two groups of first grooves are arranged in the interior of the fixing base (21), and each second extrusion plate (216) slides in the interior of each first groove.

8. The signal transceiving apparatus for satellite communication according to claim 1, wherein The extrusion sleeve (217) is movably provided with a first extrusion block (219) near one side of the second extrusion plate (216), and one end of the first extrusion block (219) is movably connected with the second extrusion plate (216).

9. The signal transceiving apparatus for satellite communication according to claim 1, wherein The extrusion sleeve (217) is internally provided with a second spring (226), one end of the second spring (226) is connected with the first extrusion block (219), the other end of the second spring (226) is connected with a second extrusion block (220), and one end of the second extrusion block (220) slides in the extrusion sleeve (217).

10. The signal transceiving apparatus for satellite communication according to claim 1, wherein Both ends of the rotating shaft (221) are provided with second limiting pieces (222), and the bottom of the protection plate (211) is provided with a first limiting block (223) sliding in the fixing seat (21).