High temperature and high humidity resistant antenna
By combining a mounting plate, a sealing device, and a heat dissipation system, the antenna's performance in high-temperature and high-humidity environments is solved, achieving the effect of preventing heat and moisture from entering and ensuring stable operation of the antenna under harsh conditions.
Patent Information
- Application Number
- CN202511403280.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-29
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2045-09-29
AI Technical Summary
Traditional antennas are less effective in high temperature and high humidity environments, and aging of the seals can cause moisture to enter and cause damage.
It employs a fixed plate, sealing device, antenna device, heat shield and heat dissipation system, which are connected by fixing bolts and nuts. Combined with the heat dissipation design of heat-conducting copper plate, heat-conducting fins and coolant, and the sealing structure of sealing rubber column and rubber ring, it prevents heat and moisture from entering.
It enables stable operation of the antenna in high temperature and high humidity environments, prevents damage from heat and moisture, and ensures the stability and durability of signal transmission function.
Smart Images

Figure CN120879187B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of antenna technology, specifically to a high-temperature and high-humidity resistant antenna. Background Technology
[0002] An antenna is a transducer that converts guided waves propagating on a transmission line into electromagnetic waves propagating in an unbounded medium, or vice versa. It is a component in wireless equipment used to transmit or receive electromagnetic waves. Engineering systems such as radio communication, broadcasting, television, radar, navigation, electronic countermeasures, remote sensing, and radio astronomy all rely on antennas to transmit information.
[0003] Traditional antennas are typically installed outdoors to improve signal strength and propagation distance. When used outdoors, antennas are exposed to direct sunlight and rain. In summer, this can cause the internal controller to overheat, affecting the antenna's performance. Additionally, aging of the seals can allow moisture to enter the antenna, leading to damage. Therefore, a high-temperature and high-humidity resistant antenna is proposed to address these issues. Summary of the Invention
[0004] The purpose of this application is to provide a high-temperature and high-humidity resistant antenna to solve the problems of excessively high temperature of the in-line controller affecting the antenna performance, and the aging of the seals causing moisture to enter the antenna and damage it.
[0005] To achieve the above objectives, this application provides the following technical solution:
[0006] A high-temperature and high-humidity resistant antenna includes a mounting plate, an antenna device, and a sealing device. The sealing device is disposed inside the mounting plate, and the antenna device is installed on the top outer side of the sealing device. The top of the mounting plate is fixedly connected with uniformly distributed fixing nuts, and the fixing nuts are internally threaded with fixing bolts that penetrate the outer side of the sealing device and the mounting plate. The bottom of the mounting plate is fixedly connected with uniformly distributed fixing plates, and the bottom of the antenna device is installed with a sealing body.
[0007] The antenna device includes an antenna shell, an antenna body, a heat shield, and a heat dissipation body. The antenna body is installed at the top inside the antenna shell, and a heat shield is provided on the outside of the antenna body. The heat shield is fixedly connected to the antenna shell. The heat dissipation body includes a reflective heat shield, a thermally conductive copper plate, a thermally conductive copper pipe, and thermally conductive fins. The reflective heat shield is fixedly connected to the top of the antenna shell. A uniformly distributed thermally conductive copper pipe is provided through the bottom of the reflective heat shield. A uniformly distributed thermally conductive fin is fixedly connected to the outside of one end of the thermally conductive copper pipe inside the heat shield. A thermally conductive copper plate is fixedly connected to the top inside the reflective heat shield. A uniformly distributed thermally conductive groove is opened on the top of the thermally conductive copper plate. A venting groove corresponding to the thermally conductive groove is opened on the top outside of the reflective heat shield. A coolant that covers the thermally conductive copper pipe but does not contact the thermally conductive copper plate is provided inside the reflective heat shield.
[0008] The antenna body includes a connecting body and a control body. The top of the connecting body is fixedly connected to the antenna shell, and the control body is installed at the bottom of the connecting body via a plug. The heat-conducting fins are evenly arranged around the outer periphery of the control body.
[0009] Preferably, the antenna device further includes connectors, an antenna strip, and a mounting body. Connectors that are evenly distributed are installed on the outside of the antenna body. A vertically arranged antenna strip is fixedly connected to the end of the connector that is away from the antenna body. A mounting body is provided below the antenna body, and a fixing ring is provided below the mounting body.
[0010] Preferably, the outer side of the connecting body is fixedly connected with a uniformly distributed connector, the outer side of the control body is provided with a uniformly distributed sliding groove, the inner wall of the bottom side of the sliding groove of the control body is provided with a limiting groove, the lower part of the control body is provided with an installation body, and the heat-conducting copper pipe and heat-conducting fins are uniformly arranged on the outer side of the control body.
[0011] Preferably, the outer side of the fixing ring is fixedly connected to the antenna housing, and the top of the fixing ring is fixedly connected with a uniformly distributed mounting nut. The mounting nut is internally threaded with a mounting bolt that passes through the fixing ring and the sealing device.
[0012] Preferably, the mounting body includes a connecting ring, a rotating ring, a limiting plate, a connecting rod, and a rotating rod. The outer side of the connecting ring is fixedly connected to the antenna housing. A rotating groove is formed inside the connecting ring. The connecting ring is rotatably connected to the rotating ring through the rotating groove. A uniformly distributed limiting plate is fixedly connected to the top of the rotating ring. A uniformly distributed connecting rod is fixedly connected to the bottom of the rotating ring. A rotating rod is rotatably connected to the bottom end of the connecting rod. A rubber sleeve is installed on the outer side of the limiting plate away from the rotating ring. The upper and lower sides of the rubber sleeve are tightly fitted to the inner wall of the limiting groove formed in the control body.
[0013] Preferably, the sealing device includes a mounting plate, a fixing sleeve, a rubber ring, a fixing tube, a mounting cover, a sealing body, an antenna wire, and an antenna mounting component. The fixing sleeve is fixedly connected to the top of the mounting plate, and a rubber ring is installed on the outside of the fixing sleeve. The outside of the rubber ring is tightly fitted to the antenna housing. Fixed bolts and mounting bolts are evenly distributed through the mounting plate. The top of the mounting plate is tightly fitted to the fixing plate. A fixing tube is fixedly connected to the mounting plate. The sealing body is installed inside the fixing tube. A mounting cover is threaded to the bottom of the outside of the fixing tube. An antenna wire is disposed inside the sealing body. An antenna mounting component is fixedly connected to the top of the antenna wire. The antenna wire passes through the mounting cover. The top of the antenna mounting component is installed at the bottom of the control body.
[0014] Preferably, the sealing body includes an annular metal sheet, a metal strip, a fixing block, and a sealing column. The outer side of the sealing column is fixedly connected to the fixing tube. A vertically arranged and evenly distributed metal strip is fixedly connected inside the sealing column. An annular metal sheet is fixedly connected to the bottom end of the metal strip. A vertically evenly distributed fixing block is fixedly connected to both sides of the metal strip. The bottom of the metal strip and the mounting cover fit together.
[0015] Preferably, the antenna strip, connector, connecting body, control body, antenna mounting component, and antenna wire are electrically connected.
[0016] Compared with the prior art, the beneficial effects of this application are:
[0017] 1. In this application, by setting a fixed plate, a fixed plate, a fixed bolt, a fixed nut, an antenna device, a sealing device, a mounting bolt, and a mounting nut, the sealing device can be installed at the bottom of the fixed plate under the action of the fixed bolt and the fixed nut, and the antenna device can be installed on the top outside of the sealing device by the mounting bolt and the mounting nut. This can prevent heat and moisture from entering the antenna device, so that the antenna device can be used in high temperature and high humidity environments.
[0018] 2. In this application, through the antenna shell, connecting body, control body, slide groove, limiting groove, connector, antenna strip, heat shield, connecting ring, rotating groove, rotating ring, limiting plate, connecting rod, rotating rod, rubber sleeve, fixing ring, reflective heat shield, venting groove, heat-conducting copper plate, heat-conducting groove, heat-conducting copper pipe, and heat-conducting fins, signals can be transmitted and received through the control body, connecting body, connector, and antenna strip to realize the antenna function. The antenna shell and heat shield reduce the heat entering the control body, allowing the control body to be used in high temperature and high humidity environments. When the control body generates heat, the heat is diverted through the heat-conducting fins and heat-conducting copper pipes. The coolant is introduced into the coolant, which is heated and evaporated. The evaporated coolant comes into contact with the heat-conducting copper plate, transferring heat into the plate. The evaporated coolant then condenses and drips back into the coolant below. Air flows through the ventilation slots in the reflective heat insulation shell into the heat-conducting slots in the copper plate, carrying away heat and achieving heat dissipation. The rotating ring can be driven to rotate in the rotating slot in the connecting ring via the rotating rod and connecting rod. At this time, the rotating ring drives the limiting plate to enter or leave the limiting slot in the control body, thereby limiting the control body and preventing it from falling off, making the installation of the control body more stable.
[0019] 3. In this application, the installation plate, fixing sleeve, rubber ring, fixing tube, mounting cover, annular metal sheet, metal strip, fixing block, sealing rubber column, antenna wire, and antenna mounting component are configured. The antenna wire can be installed at the bottom of the control body through the antenna mounting component. At this time, the sealing rubber column seals the antenna wire and the fixing tube. At the same time, the outer side of the rubber ring fits tightly with the antenna shell, sealing the bottom of the antenna shell and preventing heat and moisture from entering the antenna shell. This allows the antenna body to operate in a high temperature and high humidity environment. The fixing sleeve can shape the rubber ring, making the rubber ring fit more tightly with the antenna shell. The annular metal sheet and metal strip can be directly damaged during disassembly, thereby breaking the aged sealing rubber column. The fixing block can be used to easily remove the broken aged sealing rubber column. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of this application;
[0021] Figure 2 This is a schematic diagram of the installation structure of the antenna device of this application;
[0022] Figure 3 This is a schematic diagram of the installation structure of the antenna body in this application;
[0023] Figure 4 This is a structural diagram of the main body of the installation in this application;
[0024] Figure 5 This is a schematic diagram of the connecting ring structure of this application;
[0025] Figure 6 This is a schematic diagram of the mating structure between the connecting ring and the control body in this application;
[0026] Figure 7 This is a schematic diagram of the structure of the heat-conducting copper tube in this application;
[0027] Figure 8 This is a schematic diagram of the sealing device of this application;
[0028] Figure 9 This is a schematic diagram of the installation structure of the sealing body of this application;
[0029] Figure 10 This is a schematic diagram of the installation structure of the metal strip in this application.
[0030] In the diagram: 1. Fixing plate; 2. Fixing plate; 3. Fixing bolt; 4. Fixing nut; 5. Antenna assembly; 51. Antenna shell; 52. Antenna body; 521. Connecting body; 522. Control body; 523. Slide groove; 524. Limiting groove; 53. Connector; 54. Antenna strip; 55. Heat shield; 56. Mounting body; 561. Connecting ring; 562. Rotating groove; 563. Rotating ring; 564. Limiting plate; 565. Connecting rod; 566. Rotating rod; 567. Rubber sleeve; 57. Fixing ring; 5 8. Heat dissipation body; 581. Reflective heat insulation shell; 582. Ventilation slot; 583. Thermally conductive copper plate; 584. Thermally conductive groove; 585. Thermally conductive copper pipe; 586. Thermally conductive fins; 6. Sealing device; 61. Mounting plate; 62. Fixing sleeve; 63. Rubber ring; 64. Fixing pipe; 65. Mounting cover; 66. Sealing body; 661. Annular metal sheet; 662. Metal strip; 663. Fixing block; 664. Sealing rubber column; 67. Antenna wire; 68. Antenna mounting parts; 7. Mounting bolt; 8. Mounting nut. Detailed Implementation
[0031] Please see Figure 1-10 This application provides a technical solution:
[0032] A high-temperature and high-humidity resistant antenna includes a mounting plate 1, an antenna device 5, and a sealing device 6. The sealing device 6 is disposed inside the mounting plate 1, and the antenna device 5 is installed on the outer top of the sealing device 6. The top of the mounting plate 1 is fixedly connected with uniformly distributed fixing nuts 4, and the fixing nuts 4 are internally threaded with fixing bolts 3 that penetrate the outer side of the sealing device 6 and the mounting plate 1. The bottom of the mounting plate 1 is fixedly connected with uniformly distributed fixing plates 2, and the bottom of the antenna device 5 is installed with a sealing body 66. With this configuration, the sealing device 6 can be installed at the bottom of the mounting plate 1 by the action of the fixing bolts 3 and fixing nuts 4, and the antenna device 5 can be installed on the outer top of the sealing device 6 by the mounting bolts 7 and mounting nuts 8. This can prevent heat and moisture from entering the antenna device 5, so that the antenna device 5 can be used in high-temperature and high-humidity environments.
[0033] like Figure 1-7As shown, the antenna device 5 includes an antenna housing 51, an antenna body 52, a heat shield 55, and a heat dissipation body 58. The antenna body 52 is installed inside the top of the antenna housing 51, and the heat shield 55 is provided on the outside of the antenna body 52. The outside of the heat shield 55 is fixedly connected to the antenna housing 51. The heat dissipation body 58 includes a reflective heat shield 581, a heat-conducting copper plate 583, a heat-conducting copper pipe 585, and heat-conducting fins 586. The reflective heat shield 581 is fixedly connected to the top of the antenna housing 51. A uniformly distributed heat-conducting copper pipe 585 is provided through the bottom of the reflective heat shield 581. A uniformly distributed heat-conducting fin 586 is fixedly connected to the outside of one end of the heat-conducting copper pipe 585 inside the heat shield 55. A heat-conducting copper plate 583 is fixedly connected to the top of the reflective heat shield 581. The top of the reflective heat insulation shell 581 has evenly distributed heat-conducting grooves 584. The outer top of the reflective heat insulation shell 581 has ventilation grooves 582 corresponding to the heat-conducting grooves 584 on the heat-conducting copper plate 583. The reflective heat insulation shell 581 contains coolant that covers the heat-conducting copper pipe 585 but does not contact the heat-conducting copper plate 583. Through this arrangement, heat is introduced into the coolant through the heat-conducting fins 586 and the heat-conducting copper pipe 585. The coolant is heated and evaporates. The evaporated coolant comes into contact with the heat-conducting copper plate 583, transferring heat into it. Afterward, the evaporated coolant condenses and drips back into the coolant below. Airflow enters the heat-conducting grooves 584 on the heat-conducting copper plate 583 through the ventilation grooves 582 in the reflective heat insulation shell 581, thus absorbing heat from the heat-conducting copper plate 583. The internal heat is carried away to achieve heat dissipation. The antenna device 5 also includes connectors 53, antenna strips 54, and mounting bodies 56. Connectors 53 are evenly distributed on the outside of the antenna body 52. The end of the connector 53 away from the antenna body 52 is fixedly connected to a vertically arranged antenna strip 54. The mounting body 56 is located below the antenna body 52. A fixing ring 57 is located below the mounting body 56. The antenna body 52 includes a connecting body 521 and a control body 522. The top of the connecting body 521 is fixedly connected to the antenna shell 51. The control body 522 is installed at the bottom of the connecting body 521 via a plug. Heat-conducting fins 586 are evenly distributed around the outside of the control body 522. Connectors 53 are evenly distributed on the outside of the connecting body 521. The outer side of the main body 522 is provided with evenly distributed sliding grooves 523. A limiting groove 524 is provided on the inner wall of one side of the bottom of the sliding grooves 523 on the control main body 522. An installation body 56 is provided below the control main body 522. The outer side of a fixing ring 57 is fixedly connected to the antenna housing 51. Evenly distributed installation nuts 8 are fixedly connected to the top of the fixing ring 57. An installation bolt 7, threaded through the fixing ring 57 and the sealing device 6, is connected to the internal threads of the installation nuts 8. The installation body 56 includes a connecting ring 561, a rotating ring 563, a limiting plate 564, a connecting rod 565, and a rotating rod 566. The outer side of the connecting ring 561 is fixedly connected to the antenna housing 51. A rotating groove 562 is provided inside the connecting ring 561, through which the rotating ring 563 is rotatably connected.A uniformly distributed limiting plate 564 is fixedly connected to the top of the rotating ring 563, and a uniformly distributed connecting rod 565 is fixedly connected to the bottom of the rotating ring 563. A rotating rod 566 is rotatably connected to the bottom end of the connecting rod 565. A rubber sleeve 567 is installed on the outer side of the limiting plate 564 away from the rotating ring 563. The upper and lower sides of the rubber sleeve 567 are tightly fitted to the inner wall of the limiting groove 524 opened in the control body 522. Through this setting, signals can be transmitted and received through the control body 522, the connecting body 521, the connecting piece 53, and the antenna band 54 to realize the antenna... The antenna housing 51 and heat shield 55 reduce the heat entering the control body 522, allowing the control body 522 to operate in high-temperature and high-humidity environments. The rotating rod 566 and connecting rod 565 drive the rotating ring 563 to rotate within the rotating groove 562 of the connecting ring 561. At this time, the rotating ring 563 drives the limiting plate 564 into or out of the limiting groove 524 of the control body 522, thereby limiting the control body 522 and preventing it from falling off, making the installation of the control body 522 more stable.
[0034] like Figure 1 , 2As shown in Figures 8, 9, and 10, the sealing device 6 includes a mounting plate 61, a fixing sleeve 62, a rubber ring 63, a fixing tube 64, a mounting cover 65, a sealing body 66, an antenna wire 67, and an antenna mounting component 68. The fixing sleeve 62 is fixedly connected to the top of the mounting plate 61. A rubber ring 63 is installed on the outside of the fixing sleeve 62, and the outside of the rubber ring 63 is tightly fitted to the antenna housing 51. Fixing bolts 3 and mounting bolts 7 are evenly distributed and pass through the mounting plate 61. The top of the mounting plate 61 is tightly fitted to the fixing plate 1. A fixing tube 64 is fixedly connected to the inside of the mounting plate 61, and a mounting component 68 is installed inside the fixing tube 64. The control unit 522 is equipped with a sealing body 66, a mounting cover 65 threaded to the bottom of the fixing tube 64, an antenna wire 67 inside the sealing body 66, an antenna mounting piece 68 fixedly connected to the top of the antenna wire 67, the antenna wire 67 passing through the mounting cover 65, and the top of the antenna mounting piece 68 mounted on the bottom of the control unit 522. The sealing body 66 includes an annular metal sheet 661, a metal strip 662, a fixing block 663, and a sealing column 664. The outer side of the sealing column 664 is fixedly connected to the fixing tube 64, and a vertically arranged and evenly distributed metal strip 66 is fixedly connected inside the sealing column 664. 2. A ring-shaped metal piece 661 is fixedly connected to the bottom end of the metal strip 662. Vertically evenly distributed fixing blocks 663 are fixedly connected to both sides of the metal strip 662. The bottom of the metal strip 662 and the mounting cover 65 are in close contact. The antenna strip 54, connector 53, connecting body 521, control body 522, antenna mounting piece 68, and antenna wire 67 are electrically connected. With this configuration, the antenna wire 67 can be installed at the bottom of the control body 522 via the antenna mounting piece 68. At this time, the antenna wire 67 and the fixing tube 64 are sealed using sealing glue pillars 664. The outer side of the rubber ring 63 is tightly fitted to the antenna housing 51, sealing the bottom of the antenna housing 51 and preventing heat and moisture from entering the antenna housing 51. This allows the antenna body 52 to operate in a high-temperature and high-humidity environment. The fixing sleeve 62 can shape the rubber ring 63, making the rubber ring 63 fit more tightly to the antenna housing 51. The annular metal sheet 661 and metal strip 662 can be used to directly break the annular metal sheet 661 during disassembly, thereby breaking the aged sealing rubber column 664. The fixing block 663 can be used to easily remove the broken aged sealing rubber column 664.
[0035] Workflow: When using this high-temperature and high-humidity resistant antenna, first connect one end of the antenna wire 67 to the signal transceiver body, then fix the mounting plate 2 in a suitable position. At this point, the high-temperature and high-humidity resistant antenna can be used. During use, the antenna shell 51 and heat shield 55 isolate the high temperature, while the rubber ring 63 and sealing post 664 prevent humid air from entering the antenna shell 51. When the control body 522 generates heat, the heat is transferred to the coolant through the heat-conducting fins 586 and heat-conducting copper pipe 585. The coolant is heated and evaporates. The evaporated coolant comes into contact with the heat-conducting copper plate 583, transferring heat into the heat-conducting copper plate 583. Afterward, the evaporated coolant condenses and drips back into the coolant below. The circulating air passes through the reflective heat shield 5... Ventilation slot 582 is opened in the 81st section and enters the heat conduction slot 584 opened in the heat conduction copper plate 583, carrying away the heat from the heat conduction copper plate 583, thus achieving heat dissipation and allowing the antenna to be used in high temperature and high humidity environments. When the sealing glue column 664 ages after long-term use, the mounting bolt 7 is removed from the mounting nut 8 by turning it with a tool. Then, the antenna housing 51 is moved upward, which moves the antenna body 52 and the mounting body 56 upward. After the antenna housing 51 is moved to a suitable height, the antenna mounting part 68 is removed from the bottom of the control body 522. Then, the mounting bolt 7 is removed from the mounting nut 8 by turning it with a tool. Then, the fixing bolt 3 is removed from the fixing nut 4. At this time, the mounting plate 61 can be removed from the fixing plate. 1. Remove the bottom part, then rotate the mounting cover 65 to remove it from the outside of the fixing tube 64. Next, repeatedly clamp the annular metal piece 661 using pliers or similar tools. The annular metal piece 661 will deform under pressure, causing the metal strip 662 to compress the aged and brittle sealing column 664, breaking it into several small pieces. Then, using pliers or similar tools, clamp the annular metal piece 661. The annular metal piece 661, through the metal strip 662 and the fixing block 663, will gradually move the sealing column 664 away from the fixing tube 64. During this pulling process, gently shake the annular metal piece 661 to allow it to move the metal strip 662 and the fixing block 663. The aged and brittle sealant column 664 is squeezed and further crushed, making it easier to remove. After the aged and brittle sealant column 664 is removed from the fixing tube 64, the inner wall of the fixing tube 64 and the outer side of the antenna wire 67 are cleaned. Then, a new annular metal piece 661 is fitted onto the outer side of the antenna wire 67 and inserted into the fixing tube 64. The length of the antenna wire 67 is then adjusted, and an appropriate amount of sealant is poured into the fixing tube 64. After the sealant solidifies, a sealant column 664 is formed. At this point, the mounting cap 65 is threaded onto the outer side of the bottom end of the fixing tube 64, and then the fixing bolt 3 is threaded through the mounting plate 61 and the fixing plate 1 and connected to the fixing nut 4.To establish the connection between the mounting plate 61 and the fixing plate 1, rotate the rotating rod 566 to maintain the angle between the rotating rod 566 and the connecting rod 565 at approximately 90°. Rotating the rotating rod 566 causes the connecting rod 565 to rotate. The connecting rod 565, through the rotating ring 563, causes the limiting plate 564 to rotate within the limiting groove 524 of the control body 522 until the limiting plate 564 completely leaves the limiting groove 524 of the control body 522 and enters the sliding groove 523. At this point, the control body 522 can be moved downwards to remove the control body 522 plug from the slot of the connecting body 521. Afterwards, the control body 522 can be maintained. After maintenance, align the control body 522 plug with the slot of the connecting body 521, and then install the control body 522 into the antenna housing 51. At this point, the limiting plate 564 enters the sliding groove 523 of the control body 522. This limits the control body 522 until the plug of the control body 522 is inserted into the slot of the connecting body 521. Then, following the above method, the connecting rod 565 is rotated in the opposite direction by the rotating rod 566. The connecting rod 565 drives the limiting plate 564 into the limiting groove 524 of the control body 522 through the rotating ring 563. At this time, the rubber sleeve 567 on the outside of the limiting plate 564 is tightly fitted to the inner wall of the limiting groove 524 of the control body 522, thus limiting the control body 522. Then, the antenna mounting part 68 is snapped into place at the bottom of the control body 522. Finally, the antenna shell 51 is fitted onto the outside of the rubber ring 63. At this time, the outside of the rubber ring 63 is tightly fitted to the antenna shell 51. The mounting bolt 7 is threaded through the mounting plate 61, the rubber ring 63, and the fixing ring 57 and connected to the mounting nut 8, thus installing the antenna shell 51 above the mounting plate 61.
[0036] This document uses specific examples to illustrate the principles and implementation methods of this application. The examples are merely for the purpose of helping to understand the methods and core ideas of this application. The above descriptions are only preferred embodiments of this application. It should be noted that due to the limitations of written expression, while there are objectively infinite specific structures, those skilled in the art can make various improvements, modifications, or variations without departing from the principles of this application, and can also combine the above technical features in an appropriate manner. These improvements, modifications, variations, or combinations, or the direct application of the inventive concept and technical solution to other situations without modification, should all be considered within the scope of protection of this application.
Claims
1. A high-temperature and high-humidity resistant antenna, comprising a mounting plate (1), an antenna assembly (5), and a sealing device (6), characterized in that: A sealing device (6) is provided through the fixed disk (1). An antenna device (5) is installed on the outer side of the top of the sealing device (6). A fixed nut (4) is fixedly connected to the top of the fixed disk (1) in a uniformly distributed manner. A fixing bolt (3) is threaded through the outer side of the sealing device (6) and the fixed disk (1). A fixed plate (2) is fixedly connected to the bottom of the fixed disk (1) in a uniformly distributed manner. A sealing body (66) is installed at the bottom of the antenna device (5). The antenna device (5) includes an antenna housing (51), an antenna body (52), a heat shield (55), and a heat dissipation body (58). The antenna body (52) is installed inside the top of the antenna housing (51). The heat shield (55) is provided on the outside of the antenna body (52). The outside of the heat shield (55) is fixedly connected to the antenna housing (51). The heat dissipation body (58) includes a reflective heat shield (581), a heat-conducting copper plate (583), a heat-conducting copper pipe (585), and heat-conducting fins (586). The reflective heat shield (581) is fixedly connected to the top of the antenna housing (51). The bottom of the reflective heat shield (581) is perforated. A uniformly distributed heat-conducting copper pipe (585) is provided, and a uniformly distributed heat-conducting fin (586) is fixedly connected to the outside of the heat-conducting copper pipe (585). A heat-conducting copper plate (583) is fixedly connected to the top of the inner side of the reflective heat insulation shell (581). A uniformly distributed heat-conducting groove (584) is opened on the top of the heat-conducting copper plate (583). A ventilation groove (582) corresponding to the heat-conducting groove (584) opened on the top of the outer side of the reflective heat insulation shell (581) is opened. A coolant that covers the heat-conducting copper pipe (585) but does not contact the heat-conducting copper plate (583) is provided inside the reflective heat insulation shell (581). The antenna body (52) includes a connecting body (521) and a control body (522). The top of the connecting body (521) is fixedly connected to the antenna shell (51). The control body (522) is installed at the bottom of the connecting body (521) via a plug. The heat-conducting fins (586) are evenly arranged around the outer side of the control body (522).
2. The high-temperature and high-humidity resistant antenna according to claim 1, characterized in that: The antenna device (5) further includes a connector (53), an antenna strip (54), and a mounting body (56). The connector (53) is evenly distributed on the outside of the antenna body (52). The end of the connector (53) away from the antenna body (52) is fixedly connected to a vertically arranged antenna strip (54). The mounting body (56) is provided below the antenna body (52), and a fixing ring (57) is provided below the mounting body (56).
3. The high-temperature and high-humidity resistant antenna according to claim 2, characterized in that: The connecting body (521) is fixedly connected to a uniformly distributed connector (53) on its outer side. The control body (522) is provided with a uniformly distributed sliding groove (523) on its outer side. A limiting groove (524) is provided on the inner wall of one side of the bottom of the sliding groove (523) of the control body (522). An installation body (56) is provided below the control body (522). The heat-conducting copper pipe (585) and heat-conducting fins (586) are uniformly arranged on the outer side of the control body (522).
4. The high-temperature and high-humidity resistant antenna according to claim 2, characterized in that: The outer side of the fixing ring (57) is fixedly connected to the antenna housing (51), and the top of the fixing ring (57) is fixedly connected with evenly distributed mounting nuts (8). The mounting nuts (8) are internally threaded with mounting bolts (7) that pass through the fixing ring (57) and the sealing device (6).
5. The high-temperature and high-humidity resistant antenna according to claim 3, characterized in that: The mounting body (56) includes a connecting ring (561), a rotating ring (563), a limiting plate (564), a connecting rod (565), and a rotating rod (566). The outer side of the connecting ring (561) is fixedly connected to the antenna housing (51). A rotating groove (562) is provided inside the connecting ring (561). The rotating ring (563) is rotatably connected to the connecting ring (561) through the rotating groove (562). The top of the rotating ring (563) is fixed. The ring (563) is connected to a uniformly distributed limiting plate (564). The bottom of the ring (563) is fixedly connected to a uniformly distributed connecting rod (565). The bottom end of the connecting rod (565) is rotatably connected to a rotating rod (566). A rubber sleeve (567) is installed on the outer side of the end of the limiting plate (564) away from the ring (563). The upper and lower sides of the rubber sleeve (567) are tightly fitted to the inner wall of the limiting groove (524) opened in the control body (522).
6. The high-temperature and high-humidity resistant antenna according to claim 3, characterized in that: The sealing device (6) includes a mounting plate (61), a fixing sleeve (62), a rubber ring (63), a fixing tube (64), a mounting cover (65), a sealing body (66), an antenna wire (67), and an antenna mounting component (68). The mounting plate (61) is fixedly connected to the top of the fixing sleeve (62). A rubber ring (63) is installed on the outside of the fixing sleeve (62). The outside of the rubber ring (63) is tightly fitted to the antenna housing (51). The mounting plate (61) is provided with uniformly distributed fixing bolts (3) and mounting bolts (7). The top of the mounting plate (61) is tightly fitted to the fixed plate (1). A fixed tube (64) is fixedly connected inside the mounting plate (61). A sealing body (66) is installed inside the fixed tube (64). A mounting cover (65) is threadedly connected to the bottom of the outside of the fixed tube (64). An antenna wire (67) is provided inside the sealing body (66). An antenna mounting component (68) is fixedly connected to the top of the antenna wire (67). The antenna wire (67) passes through the mounting cover (65). The top of the antenna mounting component (68) is installed at the bottom of the control body (522).
7. A high-temperature and high-humidity resistant antenna according to claim 6, characterized in that: The sealing body (66) includes an annular metal sheet (661), a metal strip (662), a fixing block (663), and a sealing column (664). The outer side of the sealing column (664) is fixedly connected to the fixing tube (64). A vertically arranged and evenly distributed metal strip (662) is fixedly connected inside the sealing column (664). An annular metal sheet (661) is fixedly connected to the bottom end of the metal strip (662). A vertically evenly distributed fixing block (663) is fixedly connected to both sides of the metal strip (662). The bottom of the metal strip (662) and the mounting cover (65) are in contact with each other.
8. A high-temperature and high-humidity resistant antenna according to claim 6, characterized in that: The antenna strip (54), connector (53), connecting body (521), control body (522), antenna mounting part (68) and antenna wire (67) are electrically connected.
Citation Information
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