Signal optimization equipment for wireless communication
By introducing a combination structure of air duct and heat conduction cover, as well as an air pump and airbag system into wireless communication equipment, the problem of balancing heat dissipation and protection is solved, improving the installation stability and applicability of the equipment, and reducing maintenance difficulty and cost.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-28
- Publication Date
- 2026-04-10
AI Technical Summary
Existing signal optimization equipment for wireless communication suffers from insufficient heat dissipation and protection, inadequate installation stability, poor connection reliability, low modularity, and inconvenient maintenance, especially in remote areas where maintenance costs are high.
A device comprising a mounting bracket, a communication mechanism, and a stabilization mechanism was designed. It adopts a combined structure of air duct and heat conduction cover, combined with a heat dissipation system of air pump and airbag. The heat dissipation effect and protection capability are improved by the design of combined ring and air duct, and the installation stability and applicability are enhanced by the combination of stabilizing plate and bolt fixing method.
It achieves efficient heat dissipation in a sealed state, reduces the probability of water ingress and dust blockage inside the equipment, improves installation convenience and stability, adapts to installation carriers of different diameters, and reduces maintenance frequency and subsequent costs.
Smart Images

Figure CN121843089A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electrical signal equipment technology, specifically to a signal optimization device for wireless communication. Background Technology
[0002] In the field of wireless communication, signal optimization equipment is a key device for improving communication quality and expanding coverage. It is widely used in mobile communications, the Internet of Things (IoT), and other scenarios, playing a particularly important role in remote areas and mountainous regions with weak signal coverage. Its core components, such as antenna arrays and signal processing modules, achieve signal reception, amplification, and forwarding, while requiring a stable installation structure to adapt to complex outdoor environments. The performance of this equipment directly affects the stability and transmission efficiency of communication, necessitating a balance between signal optimization effectiveness, heat dissipation performance, ease of installation, and environmental adaptability. It is a crucial support for ensuring the smooth operation of wireless communication networks.
[0003] Existing signal optimization equipment for wireless communication has many limitations. It's difficult to balance heat dissipation and protection; traditional equipment has simple ventilation holes that are easily blocked by rain, dust, or insects, leading to reduced heat dissipation efficiency. Strengthening the seal, on the other hand, can hinder heat dissipation, causing internal electronic components to be damaged by high temperatures and shortening the equipment's lifespan. Installation stability is insufficient; the mounting structure of traditional equipment has poor adaptability, making it difficult to accommodate mounting carriers of different diameters (such as utility poles), and the installation process is cumbersome. It also has weak wind resistance, easily swaying in inclement weather, affecting signal reception stability. Regarding connection reliability, the line connectors of traditional equipment lack buffer protection, easily loosening under long-term external forces (such as wind), leading to signal interruption. Simultaneously, dust easily accumulates inside the equipment, further exacerbating problems such as poor contact. Furthermore, traditional equipment has low modularity, making maintenance inconvenient, especially in remote areas, resulting in high maintenance costs and failing to meet the needs of long-term stable communication. Summary of the Invention
[0004] The present invention provides a signal optimization device for wireless communication, which solves the problems mentioned in the background art above.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a signal optimization device for wireless communication, comprising a mounting frame, and further comprising: a communication mechanism fixedly mounted on the mounting frame; and a stabilizing mechanism fixedly mounted on the end of the mounting frame away from the communication mechanism; wherein the communication mechanism comprises a connecting tube fixedly mounted on the inner surface of the mounting frame, a chassis fixedly connected to the top of the connecting tube, an outer tube fixedly connected to the upper edge of the chassis, a heat dissipation hole penetrating the top outer surface of the outer tube, an outer cover fixedly connected to the top outer surface of the outer tube, and a signal component disposed inside the outer tube.
[0006] According to one embodiment of the present invention, the signal component includes an air duct, wherein the bottom surface of the air duct is set as an inclined surface, the air duct is fixedly connected to the inner surface of the outer tube, and a heat-conducting cover is fixedly connected to the bottom inner surface of the air duct by a connecting rod. A heat-conducting groove is formed on the outer surface of the heat-conducting cover, and six heat-conducting grooves are arranged at fixed intervals along the central axis of the heat-conducting cover.
[0007] According to one embodiment of the present invention, a cover plate is fixedly inserted into the top of the outer tube, an antenna group is fixedly connected to the upper surface of the cover plate, a groove is reserved on the lower surface of the cover plate, and a sealing plate is elastically slidably connected to the inner surface of the groove on the lower surface of the cover plate. The bottom surface of the sealing plate is set as a rubber surface, and a support frame is fixedly connected to the lower surface of the sealing plate. The support frame is embedded in the inner surface of the heat-conducting cover.
[0008] According to one embodiment of the present invention, a first combined ring is fixedly connected to the top outer surface of the outer tube, and a second combined ring is fixedly connected to the bottom inner surface of the outer cover. The first and second combined rings are set to the same central axis, and a gap is provided between the first and second combined rings. The cross section of the gap between the first and second combined rings is set to S-shape.
[0009] According to one embodiment of the present invention, an air intake pipe is fixedly connected through the upper surface of the chassis, and an air-gathering shroud is fixedly connected to the bottom of the air intake pipe. The air-gathering shroud is configured as an annular shape, and an air pump is fixedly connected to the bottom of the air-gathering shroud.
[0010] According to one embodiment of the present invention, a mounting groove is formed through the upper middle surface of the chassis, an expansion bladder is fixedly connected to the inner surface of the mounting groove, retaining rings are provided on the upper and lower sides of the expansion bladder, the retaining rings are fixedly connected to the inner surfaces of the upper and lower sides of the mounting groove, the expansion bladder is ring-shaped, a connector is fixedly connected to the inner surface of the expansion bladder, a first connecting wire is fixedly connected to the top of the connector, the top of the first connecting wire is connected to the internal circuit of the heat conduction cover, and a second connecting wire is fixedly inserted into the bottom of the connector, wherein the second connecting wire is configured as a connecting wire.
[0011] According to one embodiment of the present invention, an air-gathering groove is formed in the wall of the chassis. The air-gathering groove is annular and communicates with the internal cavity of the expansion bladder. A first air pipe is fixedly inserted into the upper edge surface of the chassis. The bottom of the first air pipe communicates with the air-gathering groove. The top of the first air pipe is elastically slidably inserted into the lower edge surface of the cover plate through a duct. A compression bladder is fixedly embedded in the bottom groove of the cover plate. The bottom surface of the compression bladder is fixedly connected to the upper surface of the sealing plate. The internal cavity of the compression bladder communicates with the top of the first air pipe.
[0012] According to one embodiment of the present invention, the stabilizing mechanism includes a mounting ring fixedly connected to the side of the mounting frame away from the connecting pipe. The interior of the mounting ring is hollow, with the inner side of the mounting ring being open. An annular bladder is fixedly installed inside the mounting ring. A second air tube is fixedly connected through the upper surface of the mounting ring and communicates with the annular bladder. The end of the second air tube away from the mounting ring is fixedly connected to the side surface of the chassis, and the second air tube communicates with the air-gathering groove in the chassis.
[0013] According to one embodiment of the present invention, limiting grooves are formed on the inner surfaces of the upper and lower sides of the mounting ring. A first plug-in plate is slidably connected in the limiting groove. A second plug-in plate is slidably inserted into both ends of the first plug-in plate. A stabilizing plate is fixedly connected to the side surface of the first plug-in plate away from the annular bladder. The stabilizing plate is set in a strip shape. Electronic components such as circuit boards are mounted on the support frame. Signal amplification and signal optimization are completed by the antenna group on the cover plate. When in the working state, the cover plate and the top of the outer tube are fastened and fixed to each other. That is, the electronic components are placed into the heat conduction cover through the support frame, and the top of the heat conduction cover is squeezed and sealed by the sealing plate, so that the inside of the heat conduction cover is in a sealed state. At the same time, the air pump is in the working state, that is, the air pump introduces outside cold air into the gas gathering cover. The cold air enters into the air duct above the chassis through the air inlet pipe connected to the gas gathering cover, and flows upward through the gap between the air duct and the heat conduction cover to dissipate heat on the outer surface of the heat conduction cover. Finally, it flows out through the heat dissipation hole at the top of the outer tube.
[0014] This invention provides a signal optimization device for wireless communication. It has the following advantages: (I) This wireless communication signal optimization device significantly increases the heat dissipation area of the heat-conducting cover by setting heat-conducting grooves on the heat-conducting cover, thereby improving the heat dissipation effect of the heat-conducting cover. This further enhances the heat dissipation effect on the internal electronic components while the heat-conducting cover is sealed. The outer cover can also block the heat dissipation holes, avoiding the problem of water curtain blockage and reduced heat dissipation effect caused by direct exposure of conventional heat dissipation holes in rainy weather. At the same time, it also greatly reduces the probability of water entering the heat-conducting cover, thus increasing the service life of the device. Since there is a No. 1 combined ring and a No. 2 combined ring between the outer cover and the outer tube, and the No. 1 combined ring and the No. 2 combined ring are set with an S-shaped gap, that is, after the air flows out through the heat dissipation hole, it will be discharged to the outside through the S-shaped gap. While ensuring the heat dissipation effect, the complex gap setting greatly reduces the probability of flying insects and dust entering the outer tube, avoids the blockage of the air duct and reduces the heat dissipation effect, further extends the service life of the device, reduces the number of maintenance times, and solves the problem of difficult maintenance when the device is working in mountainous areas.
[0015] (II) In this wireless communication signal optimization device, when the cover plate and the outer tube are fastened together, the No. 1 air pipe is simultaneously inserted downwards into the air duct. The bottom of the No. 1 air pipe first connects with the upper surface of the chassis. As the cover plate continues to move downwards, the top of the No. 1 air pipe begins to slide relative to the inside of the cover plate until the cover plate is fully fastened. During the fastening of the cover plate, the sealing plate on its bottom surface simultaneously contacts the upper surface of the heat-conducting cover. The reverse squeezing force provided by the heat-conducting cover drives the sealing plate to move relative to the groove in the cover plate. The reaction force provided by the squeezing bladder firmly presses the sealing plate against the top of the heat-conducting cover. The pressure-sealing mechanism automatically seals the device after the cover plate is installed, significantly reducing installation complexity and simplifying operation. When the compression bladder is compressed, its internal air pressure is delivered to the No. 1 air pipe, then through the No. 1 air pipe to the air-gathering groove in the chassis, and finally into the expansion bladder. This causes the expansion bladder to expand and compress the connector, providing elastic fixing force. This allows for a certain degree of displacement of the connector during windy weather in mountainous areas, preventing the No. 2 connecting line from repeatedly shaking and reducing the connection strength between it and the connector when the wind is strong. This greatly improves the operational stability of the device.
[0016] (III) This wireless communication signal optimization device requires installation by simply attaching the mounting ring to the concrete utility pole. Then, the upper and lower ends of the stabilizing plate are fixed to the pole with bolts to complete the installation. The stabilizing plate is strip-shaped, meaning that after installation, the inner surface of the stabilizing plate adheres to the outer surface of the utility pole. This increased contact area significantly improves the stability of the device after installation and enhances its wind resistance. When the compression bladder is compressed, it simultaneously delivers its internal air pressure to the second air pipe through the air-gathering groove, and then delivers the internal air pressure to the annular bladder through the second air pipe. This causes the annular bladder to expand, pushing the first and second plug-in plates to contract, achieving automatic adjustment of the spacing between the four stabilizing plates. This allows the device to automatically adapt to utility poles of different diameters. This significantly improves the applicability of the equipment. The installation sequence is as follows: first, the equipment is fitted onto the utility pole using the mounting ring; then, the cover plate is fixed to the outer tube. During the cover plate installation, a tightening force is provided to the stabilizing plate, initially fixing the entire equipment to the utility pole. Finally, the stabilizing plate is fixed to the utility pole with bolts to complete the installation. This greatly improves the ease of installation, avoiding the inconvenience caused by workers having to control the position of the equipment with one hand and fix it to the utility pole with only one hand when installing at heights. At the same time, the pre-tightening pressure between the stabilizing plate and the utility pole, combined with the bolts, also greatly improves the installation stability of the equipment and the utility pole, avoiding the damage caused by the equipment falling directly when the bolts rust and fall off, which is a problem with conventional methods that only use bolts for fixing. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the outer cover and its connection structure of the present invention; Figure 3 This is a schematic diagram of the stabilizing mechanism of the present invention; Figure 4 This is a schematic diagram of the outer tube and its connection structure of the present invention; Figure 5 This is a schematic diagram of the chassis and its connection structure of the present invention; Figure 6 This is a schematic diagram of the air pump and its connection structure of the present invention; Figure 7 This is a schematic diagram of the structure of the support frame of the present invention; Figure 8 This is a cross-sectional structural diagram of the chassis of the present invention.
[0018] In the diagram: 1. Mounting bracket; 2. Communication mechanism; 21. Connecting pipe; 22. Chassis; 23. Outer pipe; 24. Heat dissipation hole; 25. Outer cover; 26. Signal component; 27. Air duct; 28. Heat conduction cover; 29. Heat conduction groove; 210. Cover plate; 211. Antenna group; 212. Sealing plate; 213. Support frame; 214. First combined ring; 215. Second combined ring; 216. Air inlet pipe; 217. Air condenser. 218. Air pump; 219. Mounting slot; 220. Expansion bladder; 221. Retaining ring; 222. Connector; 223. Connecting wire 1; 224. Connecting wire 2; 225. Air gathering slot; 226. Air pipe 1; 227. Compression bladder; 3. Stabilizing mechanism; 31. Mounting ring; 32. Annular bladder; 33. Air pipe 2; 34. Limiting slot; 35. Insertion plate 1; 36. Insertion plate 2; 37. Stabilizing plate. Detailed Implementation
[0019] 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.
[0020] First embodiment: as follows Figures 1 to 8 As shown, the present invention provides a technical solution: a signal optimization device for wireless communication, including a mounting bracket 1, and further comprising: Communication mechanism 2 is fixedly installed on mounting bracket 1; Stabilizing mechanism 3 is fixedly installed at the end of mounting bracket 1 away from communication mechanism 2; The communication mechanism 2 includes a connecting pipe 21, which is fixedly installed on the inner surface of the mounting bracket 1. A chassis 22 is fixedly connected to the top of the connecting pipe 21. An outer pipe 23 is fixedly connected to the upper edge of the chassis 22. A heat dissipation hole 24 is opened through the top outer surface of the outer pipe 23. An outer cover 25 is fixedly connected to the top outer surface of the outer pipe 23. A signal component 26 is installed inside the outer pipe 23.
[0021] The signal component 26 includes an air duct 27, the bottom surface of which is set as an inclined surface. The air duct 27 is fixedly connected to the inner surface of the outer tube 23. A heat conduction cover 28 is fixedly connected to the bottom inner surface of the air duct 27 by a connecting rod. A heat conduction groove 29 is opened on the outer surface of the heat conduction cover 28. Six heat conduction grooves 29 are arranged at fixed intervals along the central axis of the heat conduction cover 28.
[0022] A cover plate 210 is fixedly inserted into the top of the outer tube 23. An antenna group 211 is fixedly connected to the upper surface of the cover plate 210. A groove is reserved on the lower surface of the cover plate 210. A sealing plate 212 is elastically slidably connected to the inner surface of the groove on the lower surface of the cover plate 210. The bottom surface of the sealing plate 212 is set as a rubber surface. A support frame 213 is fixedly connected to the lower surface of the sealing plate 212. The support frame 213 is fitted into the inner surface of the heat conduction cover 28.
[0023] A first combination ring 214 is fixedly connected to the top outer surface of the outer tube 23, and a second combination ring 215 is fixedly connected to the bottom inner surface of the outer cover 25. The first combination ring 214 and the second combination ring 215 are set to the same central axis, and a gap is provided between the first combination ring 214 and the second combination ring 215. At the same time, the cross section of the gap between the first combination ring 214 and the second combination ring 215 is set to S-shaped.
[0024] An air intake pipe 216 is fixedly connected through the upper surface of the chassis 22. An air-gathering hood 217 is fixedly connected to the bottom of the air intake pipe 216. The air-gathering hood 217 is annular. An air pump 218 is fixedly connected to the bottom of the air-gathering hood 217.
[0025] A mounting groove 219 is provided through the upper middle surface of the chassis 22. An expansion bladder 220 is fixedly connected to the inner surface of the mounting groove 219. A retaining ring 221 is provided on the upper and lower sides of the expansion bladder 220. The retaining ring 221 is fixedly connected to the inner surface of the upper and lower sides of the mounting groove 219. The expansion bladder 220 is ring-shaped. A connector 222 is fixedly connected to the inner surface of the expansion bladder 220. A first connecting wire 223 is fixedly connected to the top of the connector 222. The top of the first connecting wire 223 is connected to the internal circuit of the heat conduction cover 28. A second connecting wire 224 is fixedly inserted into the bottom of the connector 222. The second connecting wire 224 is a connecting wire.
[0026] A gas-gathering groove 225 is provided in the wall of the chassis 22. The gas-gathering groove 225 is set in a ring shape and communicates with the internal cavity of the expansion bladder 220. A first air pipe 226 is fixedly inserted into the upper edge of the chassis 22. The bottom of the first air pipe 226 is connected to the gas-gathering groove 225. The top of the first air pipe 226 passes through the air guide pipe 27 and is elastically slidably inserted into the lower edge of the cover plate 210. A compression bladder 227 is fixedly embedded in the bottom groove of the cover plate 210. The bottom surface of the compression bladder 227 is fixedly connected to the upper surface of the sealing plate 212. The internal cavity of the compression bladder 227 is connected to the top of the first air pipe 226.
[0027] Second embodiment: as follows Figures 1 to 8 As shown, the stabilizing mechanism 3 includes a mounting ring 31, which is fixedly connected to the side of the mounting frame 1 away from the connecting pipe 21. The interior of the mounting ring 31 is hollow, with the inner side of the mounting ring 31 being open. An annular bladder 32 is fixedly installed inside the mounting ring 31. A second air tube 33 is fixedly connected through the upper surface of the mounting ring 31 and communicates with the annular bladder 32. The end of the second air tube 33 away from the mounting ring 31 is fixedly connected to the side surface of the chassis 22, and the second air tube 33 communicates with the air-gathering groove 225 in the chassis 22.
[0028] Limiting grooves 34 are provided on the inner surfaces of the upper and lower sides of the mounting ring 31. A first plug plate 35 is slidably connected in the limiting groove 34. A second plug plate 36 is slidably plugged into both ends of the first plug plate 35. A stabilizing plate 37 is fixedly connected to the side surface of the first plug plate 35 away from the annular sac 32. The stabilizing plate 37 is set in a long strip shape.
[0029] During operation, electronic components such as circuit boards are mounted on the support frame 213. Signal amplification and optimization are achieved through the antenna group 211 on the cover plate 210. When in operation, the cover plate 210 and the top of the outer tube 23 are interlocked and fixed. That is, the electronic components are placed into the heat conduction cover 28 through the support frame 213, and the top of the heat conduction cover 28 is squeezed and sealed by the sealing plate 212, so that the entire interior of the heat conduction cover 28 is sealed. At the same time, the air pump 218 is in operation, that is, the air pump 218 introduces outside cold air into the air gathering cover 217. The cold air enters the air duct 27 above the chassis 22 through the air intake pipe 216 connected to the air gathering cover 217, and then passes through the gap between the air duct 27 and the heat conduction cover 28. The water flows upwards, dissipating heat from the outer surface of the heat-conducting cover 28, and finally exits through the heat dissipation holes 24 at the top of the outer tube 23. The heat-conducting grooves 29 on the heat-conducting cover 28 significantly increase its heat dissipation area, thereby improving its heat dissipation effect. This further enhances the heat dissipation of internal electronic components while the heat-conducting cover 28 is sealed. The outer cover 25 shields the heat dissipation holes 24, preventing them from being directly exposed and causing water to form and block them during rain, thus reducing heat dissipation efficiency. It also significantly reduces the probability of water entering the heat-conducting cover 28, extending the lifespan of the device. Furthermore, the presence of a first combination ring 214 and a second combination ring 214 between the outer cover 25 and the outer tube 23 further contributes to this improvement. 15. Furthermore, an S-shaped gap is set between the first combined ring 214 and the second combined ring 215. This means that after air flows out through the heat dissipation hole 24, it will be discharged outwards through the S-shaped gap. While ensuring heat dissipation, the complex gap design significantly reduces the probability of flying insects and dust entering the outer pipe 23, preventing blockage of the air duct 27 and reducing heat dissipation, further extending the service life of the equipment, reducing the frequency of later maintenance, and solving the problem of difficult maintenance when the equipment is located in mountainous areas. When the cover plate 210 is fastened to the outer pipe 23, the first air pipe 226 is simultaneously inserted downwards into the air duct 27. Finally, the bottom of the first air pipe 226 is first inserted and connected to the upper surface of the chassis 22. As the cover plate 210 continues to move downwards, the first air pipe 226... The top of 26 begins to slide relative to the inside of the cover plate 210 until the cover plate 210 is fully engaged. Simultaneously, the sealing plate 212 on its bottom surface contacts the upper surface of the heat-conducting cover 28. The reverse pressure provided by the heat-conducting cover 28 drives the sealing plate 212 to move relative to the groove in the cover plate 210. The reaction force provided by the compression bladder 227 firmly presses the sealing plate 212 against the top of the heat-conducting cover 28, achieving a seal. This automatic sealing after the cover plate 210 is installed significantly reduces the installation complexity of the device and facilitates its use. When the compression bladder 227 is compressed, it delivers its internal air pressure to the first air pipe 226, and then through the first air pipe 226 to the air-gathering groove 225 in the chassis 22.Finally, it enters the expansion bladder 220, causing the expansion bladder 220 to expand and press against the connector 222, providing elastic fixing force for the connector 222. This allows for a certain degree of displacement of the connector 222 during windy weather in mountainous areas, preventing the second connecting line 224 from repeatedly shaking and reducing the connection strength between it and the connector 222 when the wind is strong. This significantly improves the working stability of the equipment. When the equipment needs to be installed, the mounting ring 31 can be fitted onto the cement pole. At this time, the upper and lower parts of the stabilizing plate 37 can be adjusted. The installation of this equipment can be completed by fixing it to the utility pole with bolts. The stabilizing plate 37 is strip-shaped, meaning that after installation, the inner surface of the stabilizing plate 37 is attached to the outer surface of the utility pole. By increasing the contact area, the stability of the equipment after installation is greatly improved, enhancing its wind resistance. When the compression bladder 227 is compressed, its internal air pressure is simultaneously transported to the second air pipe 33 through the air gathering groove 225, and then to the annular bladder 32 through the second air pipe 33, causing the annular bladder 32 to expand and push. The first plug-in plate 35 and the second plug-in plate 36 begin to retract, automatically adjusting the spacing between the four stabilizing plates 37. This allows the device to automatically adapt to installation on utility poles of different diameters, significantly improving its applicability. The installation sequence is as follows: first, the device is fitted onto the utility pole using the installation ring 31; then, the cover plate 210 is fixed to the outer tube 23. During the installation of the cover plate 210, a tightening force is provided to the stabilizing plates 37, initially fixing the device to the utility pole. Finally, the stabilizing plates 37 are secured to the utility pole with bolts to complete the installation. This significantly improves the ease of installation, avoiding the inconvenience of having to control the device's position with one hand and fix it to the pole with only one hand during high-altitude installations. Simultaneously, the pre-tightening pressure between the stabilizing plates 37 and the utility pole, combined with the bolts, greatly enhances the installation stability of the device, preventing damage caused by the device falling when bolts rust and fall off, a problem common with conventional bolt-based installations.
[0030] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0031] 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. A signal optimization device for wireless communication, comprising a mounting bracket (1), characterized in that: Also includes: Communication mechanism (2), which is fixedly mounted on mounting bracket (1); A stabilizing mechanism (3) is fixedly installed on the end of the mounting frame (1) away from the communication mechanism (2); The communication mechanism (2) includes a connecting pipe (21), which is fixedly installed on the inner surface of the mounting bracket (1). A chassis (22) is fixedly connected to the top of the connecting pipe (21). An outer pipe (23) is fixedly connected to the upper edge of the chassis (22). A heat dissipation hole (24) is provided through the top outer surface of the outer pipe (23). An outer cover (25) is fixedly connected to the top outer surface of the outer pipe (23). A signal component (26) is provided inside the outer pipe (23).
2. The signal optimization device for wireless communication according to claim 1, characterized in that: The signal component (26) includes a duct (27), wherein the bottom surface of the duct (27) is set as an inclined surface, the duct (27) is fixedly connected to the inner surface of the outer tube (23), and a heat conduction cover (28) is fixedly connected to the bottom inner surface of the duct (27) by a connecting rod. A heat conduction groove (29) is opened on the outer surface of the heat conduction cover (28), and six heat conduction grooves (29) are fixedly spaced along the central axis of the heat conduction cover (28).
3. The signal optimization device for wireless communication according to claim 2, characterized in that: A cover plate (210) is fixedly inserted into the top of the outer tube (23). An antenna group (211) is fixedly connected to the upper surface of the cover plate (210). A groove is reserved on the lower surface of the cover plate (210). A sealing plate (212) is elastically slidably connected to the inner surface of the groove on the lower surface of the cover plate (210). The bottom surface of the sealing plate (212) is set as a rubber surface. A support frame (213) is fixedly connected to the lower surface of the sealing plate (212). The support frame (213) is fitted into the inner surface of the heat-conducting cover (28).
4. A signal optimization device for wireless communication according to claim 3, characterized in that: The outer tube (23) has a first combination ring (214) fixedly connected to its top outer surface, and the outer cover (25) has a second combination ring (215) fixedly connected to its bottom inner surface. The first combination ring (214) and the second combination ring (215) are set to the same central axis, and a gap is provided between the first combination ring (214) and the second combination ring (215). At the same time, the cross section of the gap between the first combination ring (214) and the second combination ring (215) is set to S-shape.
5. A signal optimization device for wireless communication according to claim 4, characterized in that: An air intake pipe (216) is fixedly connected through the upper surface of the chassis (22). An air gathering cover (217) is fixedly connected to the bottom of the air intake pipe (216). The air gathering cover (217) is annular. An air pump (218) is fixedly connected to the bottom of the air gathering cover (217).
6. A signal optimization device for wireless communication according to claim 5, characterized in that: The upper surface of the middle part of the chassis (22) is provided with a mounting groove (219). An expansion bladder (220) is fixedly connected to the inner surface of the mounting groove (219). A retaining ring (221) is provided on the upper and lower sides of the expansion bladder (220). The retaining ring (221) is fixedly connected to the inner surface of the upper and lower sides of the mounting groove (219). The expansion bladder (220) is ring-shaped. A connector (222) is fixedly connected to the inner surface of the expansion bladder (220). A first connecting wire (223) is fixedly connected to the top of the connector (222). The top of the first connecting wire (223) is connected to the internal circuit of the heat conduction cover (28). A second connecting wire (224) is fixedly inserted into the bottom of the connector (222). The second connecting wire (224) is a connecting wire.
7. A signal optimization device for wireless communication according to claim 6, characterized in that: The chassis (22) has an air-gathering groove (225) in its wall. The air-gathering groove (225) is annular and communicates with the internal cavity of the expansion bladder (220). A first air pipe (226) is fixedly inserted into the upper edge of the chassis (22). The bottom of the first air pipe (226) is connected to the air-gathering groove (225). The top of the first air pipe (226) is elastically slidably inserted into the lower edge of the cover plate (210) through the air guide pipe (27). A compression bladder (227) is fixedly embedded in the bottom groove of the cover plate (210). The bottom surface of the compression bladder (227) is fixedly connected to the upper surface of the sealing plate (212). The internal cavity of the compression bladder (227) is connected to the top of the first air pipe (226).
8. A signal optimization device for wireless communication according to claim 7, characterized in that: The stabilizing mechanism (3) includes a mounting ring (31), which is fixedly connected to the side of the mounting frame (1) away from the connecting pipe (21). The interior of the mounting ring (31) is hollow, and the inner side of the mounting ring (31) is open. An annular bladder (32) is fixedly installed inside the mounting ring (31). A second air tube (33) is fixedly connected through the upper surface of the mounting ring (31). The second air tube (33) is connected to the annular bladder (32). One end of the second air tube (33) away from the mounting ring (31) is fixedly connected to the side surface of the chassis (22). The second air tube (33) is connected to the air gathering groove (225) in the chassis (22).
9. A signal optimization device for wireless communication according to claim 8, characterized in that: Limiting grooves (34) are provided on the inner surfaces of the upper and lower sides of the mounting ring (31). A first plug plate (35) is slidably connected in the limiting groove (34). A second plug plate (36) is slidably plugged into both ends of the first plug plate (35). A stabilizing plate (37) is fixedly connected to the side surface of the first plug plate (35) away from the annular sac (32). The stabilizing plate (37) is set in a long strip shape.