Beacon light remote control and telemetering terminal based on satellite communication
By combining a sealed housing with a double-layer protective cover and optimizing the multi-functional antenna and power management module, the problem of damaged sealing of navigation lights in harsh marine environments has been solved, enabling stable communication and long-term reliable operation of the terminal.
Patent Information
- Application Number
- CN202423000562.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2034-12-05
AI Technical Summary
In harsh marine environments, the protective cover of electronic equipment on navigation lights can become damaged, leading to water ingress and affecting the normal operation and lifespan of the equipment.
The design incorporates a combination of a sealed housing and a double-layer protective shield, including a silicone sealing gasket between the inner and outer protective shields. The multi-functional antenna is connected to a waterproof interface via a waterproof connector. The power management module has a built-in humidity sensor and drying device. The connecting bracket is made of high-strength material and coated with an anti-corrosion coating to ensure the sealing and stability of each component.
The improved waterproof performance of the navigation light telemetry terminal in harsh environments ensures communication stability and long-term reliable operation of the equipment, extending its service life.
Smart Images

Figure CN223613630U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of radio communication, in particular to a beacon light remote control and telemetry terminal based on satellite communication. BACKGROUND
[0002] The beacon light remote control and telemetry terminal is a device for remotely monitoring and managing offshore beacon lights, which realizes bidirectional data transmission with the central control center through one or more communication means (such as satellite, radio, mobile network, etc.), so as to monitor the working state of the beacon light in real time and perform remote control. However, since the beacon light is usually deployed in harsh environments such as sea areas, it is exposed to sea wind, seawater and salt mist for a long time, which may cause the sealing of the protective cover of the electronic equipment on the beacon light to be damaged, thereby causing water ingress, and seriously affecting the normal operation and service life of the equipment. SUMMARY
[0003] Therefore, the present application provides a beacon light remote control and telemetry terminal based on satellite communication to at least partially solve the problems in the prior art.
[0004] The beacon light remote control and telemetry terminal based on satellite communication provided by the present application comprises:
[0005] A sealed shell for protecting internal components of the terminal;
[0006] A double-layer protective cover arranged inside the sealed shell;
[0007] A multifunctional antenna installed on the top of the double-layer protective cover for supporting satellite signal transmission and reception;
[0008] A power management module installed in the double-layer protective cover;
[0009] A connecting bracket for providing fixation and connection;
[0010] The sealed shell and the double-layer protective cover are connected by a waterproof rubber ring, and the multifunctional antenna and the power management module are connected to the inside of the double-layer protective cover through sealing interfaces.
[0011] The double-layer protective cover comprises an inner protective cover and an outer protective cover, and a silica gel sealing ring is arranged between the inner and outer protective covers.
[0012] Preferably, the sealed shell comprises an outer layer of corrosion-resistant stainless steel and an inner layer of high-molecular waterproof sealing material.
[0013] Preferably, the multifunctional antenna is connected to the top of the double-layer protective cover through a waterproof joint, and the waterproof joint is provided with a rubber sealing ring.
[0014] Preferably, the connecting bracket is coated with an anti-corrosion coating on the contact surface.
[0015] Preferably, the bottom of the sealed housing is provided with multiple drainage holes, and anti-backflow valves are installed on the drainage holes to prevent external moisture from entering the housing through the drainage holes.
[0016] Preferably, the double-layer protective cover has a moisture-proof membrane inside.
[0017] Preferably, the outer surface of the multifunctional antenna is coated with a weather-resistant and waterproof coating.
[0018] Preferably, the power management module has a sealed housing with double sealing rings at the seams.
[0019] Preferably, the connecting bracket is provided with multiple sealing gaskets, which are installed at the connection points between the components.
[0020] Preferably, the cover plate of the sealed housing is sealed to the main body of the housing through a multi-point locking mechanism.
[0021] This disclosure provides a satellite communication-based remote control and telemetry terminal for navigation lights, comprising: a sealed housing for protecting the internal components of the terminal; a double-layer protective cover disposed inside the sealed housing; a multi-functional antenna mounted on top of the double-layer protective cover for supporting satellite signal transmission and reception; a power management module installed inside the double-layer protective cover; and a connecting bracket for providing fixation and connection. The sealed housing and the double-layer protective cover are sealed together by a waterproof rubber ring, and the multi-functional antenna and the power management module are respectively connected to the interior of the double-layer protective cover through sealed interfaces. The double-layer protective cover includes an inner protective cover and an outer protective cover, with a silicone sealing gasket between the inner and outer protective covers. This solution addresses the problem of water ingress caused by compromised sealing of the electronic equipment's protective cover due to the navigation light being located in harsh environments such as the sea. Attached Figure Description
[0022] To more clearly illustrate the technical solutions of the exemplary embodiments of this disclosure, the accompanying drawings used in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this disclosure and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a schematic diagram of the axial structure of the sealing housing of this utility model;
[0024] Figure 2 This utility model Figure 1 Exploded view of the centrally sealed shell;
[0025] Figure 3 For the utility model Figure 2 The internal humidity sensor schematic diagram of power management module
[0026] Figure 4 For the utility model Figure 2 The side view section schematic diagram of double layer protective cover.
[0027] In the drawing: 1, sealed shell; 2, double layer protective cover; 3, multifunctional antenna; 4, power management module; 5, connecting support; 21, inner layer protective cover; 22, outer layer protective cover; 31, waterproof joint; 41, humidity sensor; 51, anticorrosion coating; 11, drainage hole; 12, anti-backflow valve; 13, rotary locking design; 14, multi-point locking mechanism; 24, moisture-proof film; 32, weatherproof waterproof coating; 43, double seal ring; 52, sealing washer DETAILED DESCRIPTION
[0028] The embodiments of the present disclosure will be described in detail below with reference to the drawings.
[0029] The embodiments of the present disclosure will be described in detail below with reference to the drawings.
[0030] It should be apparent that the described embodiments are only some embodiments of the present disclosure, but not all the embodiments. The present disclosure can also be implemented or applied by other different specific embodiments, and each detail in the specification can be modified or changed based on different views and applications without departing from the spirit of the present disclosure. It should be noted that the following embodiments and features in the embodiments can be combined with each other without conflict. Based on the embodiments in the present disclosure, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present disclosure.
[0031] It is also necessary to note that the drawings provided in the following embodiments only illustrate the basic concept of the present disclosure in a schematic manner, and only the components related to the present disclosure are shown in the drawings, not the number, shape and size of the components when actually implemented. The actual implementation of each component may be a random change, and the component layout may be more complex.
[0032] In addition, in the following description, specific details are provided in order to facilitate a thorough understanding of the examples. However, one skilled in the art will understand that the aspects can be practiced without these specific details.
[0033] As Figure 1 and Figure 2 The satellite communication based beacon light remote control telemetry terminal of the present application includes a plurality of key components that collectively ensure the stability and functionality of the terminal. The remote control telemetry terminal mainly includes a sealed housing 1, a double-layer protective cover 2, a multifunctional antenna 3, a power management module 4 and a connecting bracket 5.
[0034] The sealed housing 1 is used to protect the internal components of the terminal and ensure the overall waterproof performance of the system. The housing is made of high-strength material and can withstand the influence of harsh environments such as sea waves. The double-layer protective cover 2 is arranged inside the sealed housing 1, which not only further enhances the sealing performance, but also effectively prevents the internal components from being damaged by environmental factors such as moisture, salt spray and dust. The structure of the double-layer protective cover 2 includes an inner and outer layer of protection, where the outer layer is mainly used for physical protection, and the inner layer is responsible for more detailed sealing.
[0035] The multifunctional antenna 3 is installed at the top of the double-layer protective cover 2, which can receive and send satellite signals, radio waves and GSM communication signals, etc., to ensure that the terminal can work normally under various environmental conditions. The installation position of the antenna is optimized to minimize signal attenuation and improve the reliability and stability of communication.
[0036] The power management module 4 is installed inside the double-layer protective cover 2 and is responsible for managing and distributing power to ensure the continuous operation of the terminal. The module includes charging circuit, discharge protection circuit, voltage stabilizing circuit, etc., which can effectively manage and protect the battery, prevent overcharging or overdischarging, etc. In addition, the power management module 4 also has low power consumption characteristics, which can enter sleep state in case of long time non-use, prolonging the battery life.
[0037] The connecting bracket 5 is fixed inside the sealed housing 1 and is mainly used to support and connect other components. The bracket is made of high-toughness material to ensure the tight fit and stable work between components. Through the connecting bracket 5, the internal components can be easily installed and maintained, while the overall structural strength of the terminal is maintained.
[0038] Specifically, the sealing shell 1 can use materials such as polycarbonate with high mechanical strength and anti-aging performance to ensure good protection effect in harsh environments. The outer layer of the double-layer protective cover 2 can be made of metal material, and the inner layer can be made of high-performance rubber or silicone material, which ensures waterproofness through double sealing. The sealing interface is sealed and connected by a waterproof rubber ring, effectively preventing water intrusion.
[0039] The design of the multifunctional antenna 3 should consider the support capability of multiple frequency bands, which can be realized by using a wideband antenna. The top part of the antenna can use a waterproof and breathable film to ensure good waterproof performance while receiving and transmitting signals. The connection interface between the antenna and the double-layer protective cover 2 needs to be strictly sealed to ensure the sealing of the antenna part.
[0040] The circuit design of the power management module 4 (see Figure 3 ) needs to have multiple protection mechanisms, such as overvoltage protection and short circuit protection. In addition, the power management module 4 should be equipped with a high-efficiency power management chip that can monitor the battery status in real time and adjust the output power to ensure efficient use of electrical energy. In low-power mode, the module can be put into sleep state through software control to reduce power consumption.
[0041] The design of the connection bracket 5 should consider the stability of the overall structure, which can be achieved by using integrated molding technology to avoid loosening or separation during assembly. The fixation between the bracket and the sealing shell 1 can be achieved by screws or other mechanical connection methods to ensure firm and reliable connection.
[0042] Through the above design and technology implementation, the problem of internal water intrusion caused by the damage of the sealing of the electronic device protective cover of the beacon light due to the harsh environment in the sea area is solved. The double-sealing design of the sealing shell 1 and the double-layer protective cover 2 greatly improves the waterproof performance, the optimized arrangement of the multifunctional antenna 3 ensures the stability and reliability of communication, the multiple protection measures of the power management module 4 prolong the service life of the device, and the effective support of the connection bracket 5 ensures the close cooperation of each component, thereby comprehensively improving the safety and reliability of the system.
[0043] In one embodiment, the sealing shell 1 of the satellite communication-based beacon light remote control and telemetry terminal of the present application is made of two layers of materials, the outer layer is a corrosion-resistant stainless steel layer, and the inner layer is a high-molecular waterproof sealing material layer. This double-layer structure design ensures that the beacon light remote control and telemetry terminal will not be watered due to external seawater erosion in harsh marine environments, thereby ensuring the normal operation and reliability of the internal electronic components.
[0044] Specifically, the outer layer of the sealing shell 1 is made of corrosion-resistant stainless steel, which forms a solid shell through precise machining and welding processes. The inner layer is made of high-molecular waterproof sealing material, which is uniformly coated on the inner surface of the stainless steel through casting or injection molding, forming a continuous sealing layer. The combination of these two materials not only enhances the overall corrosion resistance and mechanical strength, but also effectively prevents water vapor and seawater penetration. For example, during the manufacturing process, the stainless steel outer layer can be precisely cut and machined by a numerical control machine, and then laser welded or argon arc welded to ensure no welding defects. The high-molecular waterproof sealing material can be injected into the inner cavity in a vacuum environment to ensure no air bubbles are left, forming a complete waterproof sealing layer. Under this double-layer material structure, the sealing shell 1 can effectively resist seawater invasion and protect the internal circuit.
[0045] In one embodiment, the double-layer protective cover 2 of the satellite communication-based beacon light remote control and telemetry terminal of the present application includes an inner protective cover 21 and an outer protective cover 22 (see Figure 4 ). The inner protective cover 21 is located outside the core components of the terminal and serves as a preliminary protection, while the outer protective cover 22 covers the entire inner protective cover 21, providing further protection against dust, salt spray and other harmful substances in the external environment. To ensure the sealing effect between the two protective covers, a silica gel sealing ring 52 is provided between the inner and outer protective covers 22. The silica gel sealing ring 52 has good elasticity and weather resistance, effectively filling the small gap between the inner and outer protective covers 22 and forming an effective waterproof barrier.
[0046] Specifically, the inner and outer protective covers 22 are installed together by mechanical compression or screw fixation. The silica gel sealing ring 52 is placed at the edge of the inner protective cover 21, and when the outer protective cover 22 is installed in place, the silica gel sealing ring 52 is deformed and tightly fits between the inner wall of the outer protective cover 22 and the outer wall of the inner protective cover 21, forming a complete sealed cavity. This design not only improves the overall sealing performance, but also prolongs the service life of the beacon light remote control and telemetry terminal in harsh marine environments.
[0047] Continuing to refer to Figure 2 , in one embodiment, the multifunctional antenna 3 of the satellite communication-based beacon light remote control and telemetry terminal of the present application is connected to the top of the double-layer protective cover 2 through a waterproof joint 31, which is equipped with a rubber sealing ring to ensure that even in harsh maritime environments, water cannot enter the antenna interior through the joint, ensuring the normal operation of the terminal. The multifunctional antenna 3, as the main communication component of the terminal, is responsible for receiving and transmitting various communication signals, including but not limited to wireless radio frequency signals, microwave signals and satellite communication signals.
[0048] The design of the double-layer protective cover 2 of the present application is to provide double protection against the damage of the external environment to the internal circuit of the terminal. The waterproof connector 31 is installed at the top of the double-layer protective cover 2, and its external structure is designed in the form of a standard waterproof interface, facilitating the connection and disconnection of the multifunctional antenna 3. The rubber sealing ring is fixed inside the waterproof connector 31, and when the antenna is inserted into the connector, the sealing ring tightly adheres to the outer wall of the antenna, forming a strict waterproof barrier.
[0049] For example, the waterproof connector 31 is made of corrosion-resistant materials to ensure a long service life in seawater and other corrosive environments. The multifunctional antenna 3 is connected to the waterproof connector 31 through a standard interface, and the rubber sealing ring inside the connector needs to be accurately designed to match the size of the antenna to ensure sealing performance. Specifically, the outer diameter of the waterproof connector 31 is matched with the hole reserved at the top of the double-layer protective cover 2, and appropriate tools are used to gently tighten it during installation, ensuring the stability and sealing performance of the connection.
[0050] Reference Figure 3 In one embodiment, the power management module 4 of the satellite communication-based beacon light remote control and telemetry terminal of the present application is built-in with a humidity sensor 41 and an internal drying device. The humidity sensor 41 is installed inside the power management module 4 and can monitor the humidity changes inside the module in real time. When the internal humidity is detected to be too high, the humidity sensor 41 in the power management module 4 will send a signal to trigger the internal drying device to start. The internal drying device is mainly composed of a desiccant or a heating element and is located at the bottom of the power management module 4, which can remove excess moisture through physical or chemical methods, thereby ensuring the dryness of the internal environment. This design can effectively prevent electronic components from failing due to moisture and ensure the long-term stable operation of the terminal.
[0051] For example, in a specific implementation, the internal structure of the power management module 4 includes a circuit board, and the humidity sensor 41 and the internal drying device are both soldered on the circuit board. The humidity sensor 41 is located near the entrance part of the terminal to quickly respond to changes in the external environment. The internal drying device is arranged at the bottom of the circuit board and can work through heating elements or moisture absorbers, etc. When the humidity sensor 41 detects that the humidity is too high, the internal drying device is started through the control chip on the circuit board to physically remove moisture, ensuring that electronic components are in a safe humidity environment.
[0052] In one embodiment, the connection bracket 5 of the satellite communication-based beacon light remote control telemetry terminal of the present application is made of high-strength stainless steel, which has good corrosion resistance and mechanical strength, ensuring that it will not be easily damaged even after long-term use in marine environments. The connection bracket 5 is designed to provide stable support while reducing failures caused by environmental factors. The surface of the connection bracket 5 is coated with an anti-corrosion coating 51, further enhancing its resistance to seawater corrosion. Through these designs, the connection bracket 5 can effectively improve the overall waterproof performance of the beacon light remote control telemetry terminal.
[0053] Referring back Figure 2 Figure 3 In a specific implementation, the connection bracket 5 is fixed to the bottom or side of the beacon light remote control telemetry terminal, depending on the installation requirements and design layout. One end of the connection bracket 5 is securely connected to the beacon light body, and the other end is fixed to the installation platform, such as a buoy or a fixed pile, through bolts or other fasteners. The middle part of the connection bracket 5 is hollow to facilitate the arrangement of internal cables and sensors. The anti-corrosion coating 51 is applied using a multi-layer spraying process to ensure uniform and dead-angle-free coating, improving the reliability of long-term use. Specifically, the coating can be applied immediately after the connection bracket 5 is manufactured to ensure that the material surface is clean and free of contamination, thereby enhancing the adhesion and protection effect of the coating.
[0054] In one embodiment, the bottom of the sealed housing 1 in the satellite communication-based beacon light remote control telemetry terminal of the present application is provided with a plurality of drainage holes 11, and anti-backflow valves 12 are installed on these drainage holes 11 to ensure that external moisture cannot enter the housing through the drainage holes 11. When the pressure inside the housing exceeds a predetermined threshold, the anti-backflow valves 12 will automatically open the drainage holes 11, thereby ensuring the balance of pressure inside and outside the housing. This design ensures that the sealing and stable pressure state inside the housing can be maintained even if the beacon light terminal is subjected to water immersion or internal pressure changes in various marine environments.
[0055] The drainage holes 11 are arranged at the bottom of the sealed housing 1 to effectively remove internal water accumulation by gravity. The anti-backflow valves 12 are installed on the outside of each drainage hole 11 and are fixedly connected to the housing to ensure their reliable operation. Specifically, the anti-backflow valves 12 include a valve body and a movable valve core that can automatically close in response to changes in external water pressure, and automatically open to drain when the internal pressure exceeds a predetermined value. This double-layer protection mechanism not only prevents external moisture from entering, but also effectively maintains the pressure balance inside and outside the housing, ensuring the normal operation of the beacon light remote control telemetry terminal.
[0056] In one embodiment, the satellite communication-based beacon light remote control telemetry terminal of the present application is provided with a layer of moisture-proof film 24 inside the double-layer protective cover 2. The moisture-proof film 24 is made of high-efficiency water-absorbing material, which has good water-absorbing and moisture-retaining properties. The moisture-proof film 24 is tightly attached to the inner surface of the double-layer protective cover 2, forming a protective layer that effectively blocks the penetration of trace amounts of moisture from the external environment into the interior of the protective cover, thereby ensuring the safe operation of the internal electronic devices.
[0057] In one embodiment, the design of the moisture-proof film 24 takes into account the overall structure and environmental adaptability of the protective cover. Specifically, the double-layer protective cover 2 is divided into two layers, with a certain gap in between to enhance the protective effect. The moisture-proof film 24 is attached to the inner surface of the inner layer protective cover 21 and tightly combined with the inner wall of the protective cover, forming a reliable waterproof barrier. In addition, the edges of the moisture-proof film 24 are fixed to the inner layer protective cover 21 by sealing glue or other suitable adhesives, ensuring that they do not loosen or fall off due to vibration or external environmental influences.
[0058] For example, the selection of high-efficiency water-absorbing materials includes but is not limited to high-molecular water-absorbing resin, activated carbon fiber, diatomite, etc. In the actual installation process, the moisture-proof film 24 is first cut to match the size and shape of the inner surface of the inner layer protective cover 21, and then a suitable amount of sealing glue is sprayed or applied to adhere the moisture-proof film 24 to the inner surface of the inner layer protective cover 21, ensuring uniform coverage and tight adhesion. This technical solution ensures that the moisture-proof film 24 continues to function during the operation of the beacon light, improving the reliability and service life of the terminal.
[0059] In one embodiment, the multifunctional antenna 3 of the satellite communication-based beacon light remote control telemetry terminal of the present application is designed with excellent environmental adaptability. The outer surface of the multifunctional antenna 3 is coated with a layer of weather-resistant and waterproof coating 32, which can effectively resist the influence of external harsh environments during antenna operation. The coating prevents moisture from entering the interior of the terminal through the connection between the antenna and the protective cover, ensuring the stable operation of the equipment in complex environments such as high humidity, salt spray, or strong wind and rain. The coating is made of materials with excellent weather resistance and hydrophobicity, ensuring stable performance over a long period of use.
[0060] The multifunctional antenna 3 is installed on the top of the remote control telemetry terminal, and the antenna and the protective cover are designed to fit tightly, reducing the risk of moisture penetration. The coating uniformly covers the entire antenna, forming a protective film that further enhances its protective performance. This design not only improves the service life of the antenna but also simplifies the maintenance process, making it more suitable for application in various environments. For example, the coating can be made of fluorocarbon resin material, which has excellent hydrophobic and anti-aging properties and can maintain stable performance for a long time.
[0061] In one embodiment, the weather-resistant and waterproof coating 32 of the multifunctional antenna 3 can be applied by spraying, dipping, or other surface treatment processes to ensure uniform distribution and firm adhesion of the coating to the antenna surface. The coating thickness can be adjusted according to actual needs, generally between 50 microns and 100 microns, which can provide sufficient protection without affecting the transmission performance of the antenna. Specifically, this feature can be achieved by first pre-treating the antenna surface, then spraying the weather-resistant and waterproof coating 32, and finally drying and curing. Such technical means is simple and effective, which can significantly improve the reliability and stability of the multifunctional antenna 3 in harsh environments.
[0062] In one embodiment, the power management module 4 of the satellite communication-based beacon light remote control and telemetry terminal of the present application adopts a sealed design to ensure that the internal circuit board of the module is not affected by moisture in the external environment. The housing design of the power management module 4 has high waterproof performance, and the outside is made of a durable material such as stainless steel or a high-molecular polymer to adapt to complex marine environments. Double sealing rings 43 are used to seal the joint of the housing, ensuring that moisture cannot penetrate the inside. In addition, the selection and installation process of the sealing ring are strictly tested to ensure its long-term reliability.
[0063] The housing structure of the power management module 4 is designed in two parts, namely the main body and the cover plate. The main body has a mounting groove inside for placing the circuit board and related components of the power management module 4. The cover plate is tightly connected to the main body by multiple fixing screws, ensuring that the entire module maintains good sealing performance in harsh environments. The sealing ring is installed at the joint of the main body and the cover plate, and the design of the double sealing ring 43 not only improves the sealing performance, but also to a certain extent, buffers the internal pressure changes caused by temperature changes, preventing the sealing from failing due to internal and external pressure differences. For example, the first sealing ring is close to the inside of the joint, and the second sealing ring is located on the outside, and the two sealing rings work together to ensure the reliability of the sealing effect.
[0064] In one embodiment, the connection bracket 5 of the satellite communication-based beacon light remote control and telemetry terminal of the present application is provided with a plurality of sealing washers 52. These sealing washers 52 are installed at the connections between various components to enhance the sealing effect between components and effectively prevent moisture from penetrating from the connections. The material of the sealing washer 52 can be rubber or silicone with good weather resistance and waterproof performance to adapt to the harsh conditions of the marine environment. Specifically, the number and position of the sealing washers 52 on the connection bracket 5 are set according to actual needs, and sealing washers 52 are usually added at important connection parts to ensure the sealing performance of each interface.
[0065] For example, in one specific embodiment, sealing gaskets 52 are installed at the junctions of the connection bracket 5 and the base, housing, and internal components. These sealing gaskets 52 not only cover the connection surfaces but are also designed with appropriate thickness to ensure a tight fit during assembly, forming a reliable sealing barrier. Through precise size matching and pre-set compression rate, the sealing gaskets 52 can provide excellent sealing effect without affecting the assembly accuracy. In addition, the design of the sealing gaskets 52 also considers the ease of installation and ease of replacement, facilitating maintenance and repair. Specifically, the sealing gaskets 52 can be installed in a slot-in or adhesive manner, ensuring a simple and reliable installation process.
[0066] In one embodiment, the sealed housing 1 of the satellite communication-based beacon light remote control and telemetry terminal of the present application includes a cover plate and a housing body portion. The cover plate and the housing body portion adopt a rotary locking design 13, and the fixation of the cover plate and the housing body portion is completed through a tightening action. After tightening, the sealed housing 1 uses a multi-point locking mechanism 14 to ensure the sealing and waterproof performance of the entire device in various harsh environments. The multi-point locking mechanism 14 involves multiple independent locking points that are evenly distributed at the junction of the cover plate and the housing body portion, effectively preventing water and other external contaminants from entering the housing interior, thereby protecting the internal electronic components from damage.
[0067] Specifically, for example, the cover plate and the housing body portion are connected through a rotating shaft, which allows the cover plate to freely rotate within a certain range relative to the housing body portion. When the cover plate is closed, it is tightened clockwise or counterclockwise along the direction of the rotating shaft, causing the cover plate to tightly fit the housing body portion. At this time, the locking devices in the multi-point locking mechanism 14 are triggered, which are located at the periphery of the cover plate and provide locking force through springs or other elastic elements, ensuring that each contact point meets the sealing standard. For example, each locking point can be a small clasp structure, one end of which is fixed to the housing body portion and the other end is designed to be movable. When the cover plate is tightened, the movable end will be clamped into the corresponding groove on the cover plate, achieving multi-point synchronous locking and ensuring omnidirectional sealing performance.
[0068] In actual operation, when the device is in use, the components of the beacon light remote control and telemetry terminal work efficiently and reliably through precise design and coordination. First, the sealed housing 1 provides solid protection for the entire terminal, ensuring that all internal components are protected from external harsh environments, especially in humid, salt spray, and other marine environments. The sealed housing 1 is sealed and connected to the double-layer protective cover 2 through a waterproof rubber ring, further enhancing the waterproof performance of the system. The multi-functional antenna 3 is installed at the top of the double-layer protective cover 2 and can receive and send signals of multiple communication modes, including but not limited to satellite communication, wireless radio frequency communication, etc., enabling the beacon light to remotely receive instructions or send status information, achieving remote control and monitoring.
[0069] When the beacon light is working, the multifunctional antenna 3 receives instructions from the remote control center, which may include adjusting the working mode of the beacon light, detecting the running state of the equipment, etc. After receiving the instructions, the multifunctional antenna 3 transmits the signals to the main control unit inside the double-layer protective cover 2. The main control unit decodes and processes the received signals and sends corresponding control signals to the power management module 4 according to the instructions. The power management module 4 is responsible for managing and distributing electrical energy, ensuring that each component obtains the required power supply at the appropriate time, thereby ensuring the continuous operation of the terminal.
[0070] At the same time, the connecting bracket 5 firmly fixes and connects all internal components, including the multifunctional antenna 3, the power management module 4, and the connection between the sealed housing 1 and the double-layer protective cover 2, ensuring the stability and tight fit of all components. In addition, through the sealed interface, the multifunctional antenna 3 and the power management module 4 are physically and electrically connected to the inside of the double-layer protective cover 2, ensuring the reliability of signal transmission and power supply while maintaining the waterproof performance of the system. The entire terminal, under the synergistic action of these components, can operate stably for a long time in complex marine environments, ensuring that the remote control and telemetry functions of the beacon light are effectively realized.
[0071] The above is the preferred embodiment of the present application. It should be noted that for ordinary skilled persons in the technical field, several improvements and refinements can be made without departing from the principles of the present application, and these improvements and refinements should also be considered within the scope of protection of the present application.
Claims
1. A beacon light remote control telemetry terminal based on satellite communication, characterized in that, The utility model relates to a kind of terminal sealing shell, including: sealing shell (1) for protecting the internal components of terminal;Double-layer protective cover (2) is arranged in the inside of the sealing shell (1);Multifunctional antenna (3) is installed in the top of the double-layer protective cover (2), for supporting satellite signal transceiver;Power management module (4) is installed in the double-layer protective cover (2);Connecting bracket (5) is used to provide fixation and connection;Wherein, the sealing shell (1) is connected with double-layer protective cover (2) by waterproof rubber ring, and the multifunctional antenna (3) and power management module (4) are connected with the inside of the double-layer protective cover (2) respectively by sealing interface;The double-layer protective cover (2) includes inner layer protective cover (21) and outer layer protective cover (22), and silicon rubber sealing washer (23) is arranged between inner and outer layer protective cover. The sealing shell (1) includes outer layer of corrosion-resistant stainless steel layer and inner layer of high polymer waterproof sealing material layer. The multifunctional antenna (3) is connected with the top of double-layer protective cover (2) by waterproof joint (31), and waterproof joint (31) is built-in rubber sealing ring. The connecting bracket (5) is coated with anticorrosive coating (51) on contact surface. The bottom of the sealing shell (1) is provided with a plurality of drainage holes (11), and anti-backflow valve (12) is additionally installed on the drainage hole (11) to prevent external moisture from entering the shell through the drainage hole. The double-layer protective cover (2) is provided with moisture-proof film (24) inside. The outer surface of the multifunctional antenna (3) is coated with a layer of weather-resistant waterproof coating (32). The shell of the power management module (4) is designed with sealing, and double-channel sealing ring (43) is used for sealing at the joint of the shell.
2. The remote control telemetry terminal for a beacon light based on satellite communication according to claim 1, characterized in that: The connecting bracket (5) is provided with a plurality of sealing washers (52), and the sealing washers (52) are installed at the connection between components.
3. The remote control telemetry terminal for a beacon light based on satellite communication according to claim 1, characterized in that: The cover plate of the sealing shell (1) is sealed with the shell main body part by multi-point locking mechanism (14).
4. The remote telemetry terminal for remotely monitoring a beacon light based on satellite communication according to claim 1, wherein: 5. The remote telemetry terminal for remotely monitoring a beacon light based on satellite communication according to claim 1, wherein: 6. The remote telemetry terminal for remote control of a beacon light based on satellite communication according to claim 1, characterized in that: 7. The remote telemetry terminal for remotely monitoring and controlling a beacon light based on satellite communication according to claim 1, wherein: 8. The remote telemetry terminal for remote control of a beacon light based on satellite communication according to claim 1, characterized in that: 9. The remote telemetry terminal for remote control of a beacon light based on satellite communication according to claim 1, characterized in that: 10. The remote telemetry terminal for remotely monitoring a beacon light based on satellite communication according to claim 1, wherein: