Box body, current conversion equipment and energy system
By combining the heat dissipation duct with the handling handle, the dual functions of heat dissipation and handling are achieved, solving the problem of increased equipment size and ensuring the equipment's aesthetics and practicality.
Patent Information
- Application Number
- CN202520242112.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2035-02-14
AI Technical Summary
Traditional heat dissipation methods in enclosure equipment have the problem of increasing equipment size due to heat dissipation and protection requirements, which affects aesthetics and cost. In addition, the independent addition of handling handles increases the size of the equipment and affects the overall coordination.
By combining the heat dissipation duct with the handling handle, the heat generated by the conductive component is guided to the duct component through the guide component. The duct component includes horizontal channels and curved channels, realizing the dual functions of heat dissipation and handling.
It improves the heat dissipation efficiency and ease of handling of the equipment, avoids increasing the size of the equipment, and maintains the aesthetics and practicality of the equipment.
Smart Images

Figure CN223652592U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of enclosure technology, specifically to an enclosure, a current conversion device, and an energy system. Background Technology
[0002] In the electrical industry, heat dissipation design is crucial in both civilian and industrial applications. This is especially true for enclosure-type equipment such as distribution boxes and cabinets, where the heat generated by internal components, if not dissipated promptly, can severely impact stable operation. Traditional heat dissipation methods include top vents, side louvers, and molded side louvers. While these methods address heat dissipation to some extent, they introduce new problems: meeting heat dissipation and protection requirements often necessitates increasing equipment size, affecting aesthetics and increasing manufacturing costs. Furthermore, handling handles are typically added as separate components, further increasing size and compatibility. Utility Model Content
[0003] This application provides a housing, a current conversion device, and an energy system that can achieve the dual functions of heat dissipation and handling. By combining the heat dissipation duct with the handling handle, the increase in equipment size is avoided, ensuring the aesthetics and practicality of the equipment.
[0004] On one hand, embodiments of this application provide a housing, including:
[0005] case;
[0006] The mounting section, located inside the housing, is used to mount conductive components;
[0007] A guiding component, located on one side of the conductive component, is used to guide the heat generated by the conductive component to the air duct component;
[0008] A duct assembly, connected to the guide assembly, is used to dissipate heat; wherein, the duct assembly includes a horizontal channel and a bent channel; the horizontal channel is connected to the guide assembly; the bent channel extends from opposite sides of the horizontal channel and is bent to form a connection with the outside of the housing, constituting a gripping part for transporting the housing.
[0009] On the other hand, embodiments of this application provide a current conversion device, including a housing as described in any of the above embodiments and a conductive component disposed inside the housing.
[0010] On the other hand, embodiments of this application provide an energy system for aquatic mobile devices, including a current conversion device as described in any of the above embodiments, the current conversion device being used to convert one form of current into another form of current.
[0011] This application provides a housing, a current conversion device, and an energy system. The housing includes: a shell; a mounting part located inside the shell for mounting conductive components; a guiding component located on one side of the conductive components for guiding the heat generated by the conductive components to a duct assembly; and a duct assembly connected to the guiding component for dissipating heat. The duct assembly includes a horizontal channel and a bent channel. The horizontal channel is connected to the guiding component. The bent channel extends from opposite sides of the horizontal channel and is bent to form a connection with the outside of the shell, constituting a gripping part for transporting the housing. The enclosure provided in this application uses a mounting part to fix conductive components, and a guide component to efficiently guide the heat generated by the conductive components to the air duct component. The air duct component consists of a horizontal channel and a bent channel. The horizontal channel directly receives the heat transferred by the guide component, while the bent channel further exhausts the heat to the outside of the enclosure, effectively improving heat dissipation efficiency. The bent channel not only achieves heat dissipation but also cleverly forms a grip for carrying the enclosure, enabling easy handling and improving the convenience and comfort of operation. It achieves the dual functions of heat dissipation and handling. By combining the heat dissipation air duct with the handling handle, the increase in equipment size is avoided, ensuring the aesthetics and practicality of the equipment. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0013] Figure 1 This is a schematic diagram of the structure of the box provided in an embodiment of this application.
[0014] Figure 2 This is a schematic diagram of the current conversion device provided in an embodiment of this application.
[0015] Figure 3 A schematic diagram of the energy system provided in the embodiments of this application.
[0016] Figure 4 Another schematic diagram of the energy system provided in this application embodiment. Detailed Implementation
[0017] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0018] In the description of this application, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of the stated features. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.
[0019] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection, an electrical connection, or a connection that allows communication between them; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication between two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0020] In this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature being directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature being directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0021] The following disclosure provides many different embodiments or examples for implementing different structures of this application. To simplify the disclosure, specific examples of components and arrangements are described below. Of course, these are merely examples and are not intended to limit the scope of this application. Furthermore, reference numerals and / or letters may be repeated in different examples; such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed. In addition, various specific examples of processes and materials are provided in this application, but those skilled in the art will recognize the application of other processes and / or the use of other materials.
[0022] For details, please refer to Figure 1 This application provides a housing 100. The housing 100 includes a shell 10, a mounting part 20, a guide assembly 30, and an air duct assembly 40.
[0023] The housing 10, serving as the main support and protective structure of the enclosure 100, provides space for the installation and protection of internal components. For example, the housing 10 can be made of robust and durable materials, such as metal or high-strength plastic, to ensure sufficient strength and stability. Simultaneously, the design of the housing 10 also considers heat dissipation requirements, and may include ventilation holes or heat sinks to aid in heat dissipation.
[0024] The mounting part 20, located inside the housing 10, is used to mount the conductive component 50.
[0025] For example, the mounting section 20 is a dedicated area for mounting the conductive component 50. Through precise design and fixing methods, the mounting section 20 can stably support and fix the conductive component 50, ensuring its stability and safety during operation. For example, the mounting section 20 may also include structures such as fixing brackets, bolt holes, and positioning grooves to ensure reliable connection with the conductive component 50.
[0026] The guiding component 30 is located on one side of the conductive component 50 and is used to guide the heat generated by the conductive component 50 to the air duct component 40.
[0027] For example, the guide assembly 30 is located on one side of the conductive component 50, closely fitted or adjacent to it. The main function of the guide assembly 30 is to efficiently guide the heat generated by the conductive component 50 during operation to the air duct assembly 40. This helps prevent heat accumulation inside the housing 100, thereby ensuring the stable operation of the conductive component 50 and the entire housing 100. For example, the guide assembly 30 can be made of a material with good thermal conductivity, such as copper, aluminum, or thermally conductive plastic. It is internally designed with heat conduction channels or surfaces to rapidly transfer heat to the air duct assembly 40.
[0028] For example, the guide component 30 can be formed by bending sheet metal to create a fully enclosed structure for the hot air outlet of the conductive component 50, which can effectively prevent the hot air from escaping and guide it into the air duct component 40.
[0029] The air duct assembly 40 is connected to the guide assembly 30 and is used to exhaust heat. The air duct assembly 40 includes a horizontal channel 41 and a bent channel 42. The horizontal channel 41 is connected to the guide assembly 30. The bent channel 42 extends from opposite sides of the horizontal channel 41 and is bent to form a connection with the outside of the housing 10, thus constituting a gripping part for transporting the box 100.
[0030] For example, the air duct assembly 40 is the core component of the heat dissipation system of the enclosure 100, responsible for dissipating the heat transferred from the guide assembly 30 to the outside of the enclosure 10. For example, the air duct assembly 40 can be composed of multiple sheet metal parts, with welded joints.
[0031] The air duct assembly 40 includes two parts: a horizontal channel 41 and a bent channel 42.
[0032] For example, the horizontal channel 41 is directly connected to the guiding assembly 30 and receives heat from the guiding assembly 30. The horizontal channel 41 has a smooth channel structure inside to reduce thermal resistance and airflow resistance.
[0033] For example, the bent channel 42 extends and bends from opposite sides of the horizontal channel 41, eventually connecting with the outside of the housing 10. The bent channel 42 not only serves to further dissipate heat but also cleverly constitutes a grip for moving the housing 100. Users can easily move the housing 100 by gripping the bent channel 42.
[0034] When the conductive component 50 is working, the heat it generates is captured by the guiding component 30 and guided to the air duct component 40. Inside the air duct component 40, the heat is quickly discharged to the outside of the housing 10 through the flow of the horizontal channel 41 and the bent channel 42, thereby ensuring that the temperature inside the housing 100 is kept within a safe range and realizing the heat dissipation function.
[0035] The design of the bending channel 42 not only takes into account heat dissipation requirements but also fully considers ease of handling. Users can easily move the cabinet 100 by holding the bending channel 42 without the need for additional handling tools or handles, thus realizing the handling function.
[0036] The enclosure 100 in this embodiment cleverly combines a heat dissipation duct with a handling handle, achieving the dual functions of heat dissipation and handling. This design not only improves the practicality and convenience of the enclosure 100, but also avoids the problems of independent heat dissipation and handling functions and the occupation of extra space in traditional designs. At the same time, this design maintains the aesthetics and stability of the enclosure 100, providing a brand-new solution for the heat dissipation and handling of electrical equipment.
[0037] In some embodiments, a partition plate 43 is provided between the bent channel 42 and the horizontal channel 41. The partition plate 43 has a plurality of mesh structures. The partition plate 43 is used to separate the bent channel 42 and the horizontal channel 41 and allows heat to be discharged through the mesh structures.
[0038] The isolation plate 43 is located at the junction of the bent channel 42 and the horizontal channel 41, effectively separating the two. Its shape and size are carefully designed to ensure effective isolation without affecting airflow. The isolation plate 43 has multiple mesh structures, which serve as channels for heat transfer. The size and distribution of the mesh are calculated to ensure sufficient heat dissipation while preventing external impurities (such as dust and moisture) from entering the air duct, affecting heat dissipation or damaging internal components.
[0039] For example, the heat generated by the conductive component 50 is first absorbed by the guiding component 30 and conducted to the horizontal channel 41. Within the horizontal channel 41, the heat is further transferred through air convection and radiation. When the heat reaches the isolation plate 43, it can be smoothly transferred to the bent channel 42 through the mesh structure. The mesh structure design ensures efficient heat transfer while avoiding heat accumulation and waste during the transfer process. The heat then continues to flow within the bent channel 42 and is discharged to the outside through the openings on both sides of the enclosure 100. This process not only achieves effective heat dissipation but also maintains a stable temperature inside the enclosure.
[0040] The isolation plate 43 can be made of high-strength materials, possessing excellent structural strength and durability. It can withstand the impact and vibration of airflow inside the duct, ensuring the long-term stable operation of the duct assembly 40.
[0041] In some embodiments, a seal 60 is provided between the air duct assembly 40 and the guide assembly 30 to prevent heat generated by the conductive assembly 50 from escaping.
[0042] The sealing element 60 is installed at the interface between the air duct assembly 40 and the guide assembly 30, forming a tight connection interface, which ensures that heat can be effectively controlled inside the air duct during the transfer process, reducing heat loss and waste.
[0043] For example, the seal 60 can be made of a high-temperature resistant and corrosion-resistant elastic material, such as silicone or rubber. Its structure is carefully designed to fit tightly against the surfaces of the duct assembly 40 and the guide assembly 30, forming an effective seal.
[0044] The seal 60 effectively isolates the gaps between the duct assembly 40 and the guide assembly 30, preventing heat from escaping to the outside of the housing 100 through these gaps. This mechanism ensures that heat can flow along a predetermined path inside the duct and ultimately be discharged to the outside. In addition to preventing heat loss, the seal 60 also helps optimize the heat transfer path. It reduces heat loss and resistance during the transfer process, improving heat transfer efficiency.
[0045] In some embodiments, the guide assembly 30 and the air duct assembly 40 are arranged in the vertical direction along the first reference surface 11 of the housing 10. The heat generated by the conductive component 50 is guided by the guide assembly 30 in the vertical direction to the air duct assembly 40 and discharged to the outside of the housing 10 through the air duct assembly 40. The first reference surface 11 is the side of the housing 10 away from the air duct assembly 40.
[0046] The first reference surface 11 is defined as the side of the housing 10 furthest from the air duct assembly 40. This definition helps to clarify the relative positions of the guide assembly 30 and the air duct assembly 40 within the housing 10 and provides a reference for subsequent heat dissipation design. For example, the first reference surface 11 can be the bottom surface of the housing.
[0047] By arranging the guide assembly 30 and the air duct assembly 40 along the vertical direction of the first reference plane 11 of the housing 10, heat can be transferred more directly and efficiently to the air duct assembly 40 and quickly exhausted to the outside of the housing 10 through the air duct assembly 40. This design significantly improves the heat dissipation efficiency of the electrical equipment. This design not only considers heat dissipation efficiency but also structural compactness. The vertical layout of the guide assembly 30 and the air duct assembly 40 allows for more rational use of the internal space of the housing 100, helping to reduce the overall size and weight of the equipment. Because the guide assembly 30 and the air duct assembly 40 are relatively independent and their positions are clearly defined, it is easier to inspect and replace related components during equipment maintenance, reducing maintenance costs and improving the reliability and stability of the equipment.
[0048] In some embodiments, the housing 100 further includes a cooling fan 70 located at the opposite end of the conductive component 50 and the guiding component 30, for blowing the heat generated by the conductive component 50 to the guiding component 30.
[0049] The main function of the cooling fan 70 is to generate a powerful airflow to quickly dissipate heat around the conductive component 50 and transfer the heat to the guiding component 30 through the airflow. This process accelerates heat transfer and diffusion, helping to improve the efficiency of the entire cooling system.
[0050] The conductive component 50 is designed with its hot air outlet facing upwards, utilizing the principle of rising hot air to guide the hot airflow inside the component 30 vertically upwards. This design reduces the conflict between the hot airflow and the airflow generated by the cooling fan 70, thus improving heat dissipation efficiency.
[0051] As the hot air rises, it is effectively guided by the guide component 30 into the interior of the air duct component 40. The air duct component 40 is designed with a specific internal path, allowing the hot air to flow smoothly out from the outlets on both sides. At the same time, the air duct component 40 bends downward to form a handling handle, which satisfies the heat dissipation requirements while also ensuring ease of handling.
[0052] To further enhance heat dissipation, streamlined protrusions are formed on the lower sides of the air duct assembly 40 by molding. These protrusions allow hot air to flow outward at a relatively fast velocity. According to Bernoulli's principle, the pressure at the recessed holes inside the air duct is lower, creating a pressure difference with the sides of the housing 10, thereby attracting more internal hot air out and improving heat dissipation efficiency.
[0053] Rectangular holes are provided on both sides of the outer shell of the housing 100 as air outlets. These air outlets are connected to the outlet of the air duct assembly 40 to ensure that hot air can be smoothly discharged outside the housing 10.
[0054] The downward-bending handle formed by the air duct assembly 40 not only conforms to ergonomic design and facilitates handling, but also makes full use of the space of the air duct assembly, achieving a perfect combination of heat dissipation and handling functions.
[0055] In some embodiments, the second reference surface 12 of the housing 10 is provided with a display screen for displaying the working status of the conductive component 50, and the second reference surface 12 is perpendicular or parallel to the first reference surface 11.
[0056] As a crucial interface for human-machine interaction, the display screen intuitively shows the current operating status of the conductive component 50, including but not limited to key parameters such as temperature, current, and voltage. This is of great significance for the daily maintenance and troubleshooting of the equipment, helping operators to understand the equipment's operating status in a timely manner and ensuring its safe and stable operation.
[0057] The second reference surface 12 was selected as the installation location for the display screen based on considerations of the overall equipment layout and ease of human-computer interaction. Whether the second reference surface 12 is perpendicular or parallel to the first reference surface 11, it ensures that the display screen is visually easy to observe and will not interfere with the normal operation of other components. For example, the second reference surface 12 can be the front or top surface of the housing.
[0058] In some embodiments, the first reference surface 11 of the housing 10 is provided with a wiring port 111 for connecting to an external device or power supply.
[0059] For example, the first reference surface 11 of the housing 10 is provided with a wiring port 111. The main function of this wiring port 111 is to provide a connection interface with external devices or power sources. Through the wiring port 111, electrical equipment can be easily connected to an external power source to obtain the power required for operation, or to transmit data and communicate with other devices. This design makes the installation and commissioning of electrical equipment more convenient, while also improving the scalability and compatibility of the equipment.
[0060] In some embodiments, the first reference surface 11 of the housing 10 is provided with a fixing bracket 112, which is used to fix the housing 100 in the installation position.
[0061] For example, the first reference surface 11 of the housing 10 is also provided with a fixing bracket 112. The main function of the fixing bracket 112 is to fix the housing 100 in the installation position, ensuring that the equipment remains stable and reliable during operation. By rationally designing the structure and material of the fixing bracket 112, it can effectively resist external vibration and impact, protecting the equipment from damage. At the same time, the fixing bracket 112 also facilitates the installation and disassembly of the equipment, improving the maintainability and mobility of the equipment.
[0062] In some embodiments, the guide assembly 30 is provided with a frame 31 for accommodating the conductive assembly 50, and the frame 31 is fixedly connected to the housing 10.
[0063] For example, the guide assembly 30 also includes a frame 31. The main function of this frame 31 is to house the conductive component 50 and fix it to the housing 10. The design of the frame 31 ensures that the conductive component 50 is stably supported and positioned inside the equipment, preventing movement or loosening during operation. Simultaneously, the fixed connection between the frame 31 and the housing 10 improves the stability and reliability of the entire heat dissipation structure, ensuring effective heat conduction and dissipation. This design not only improves the heat dissipation performance of the equipment but also reduces the risk of failure due to component loosening.
[0064] All of the above technical solutions can be combined in any way to form optional embodiments of this application, and will not be described in detail here.
[0065] This application provides a housing 100, which includes: a shell 10; a mounting part 20 located inside the shell 10 for mounting a conductive component 50; a guide component 30 located on one side of the conductive component 50 for guiding the heat generated by the conductive component 50 to an air duct component 40; and an air duct component 40 connected to the guide component 30 for dissipating heat. The air duct component 40 includes a horizontal channel 41 and a bent channel 42. The horizontal channel 41 is connected to the guide component 30. The bent channel 42 extends from opposite sides of the horizontal channel 41 and is bent to form a connection with the outside of the shell 10, thus constituting a gripping part for transporting the housing 100. The housing 100 provided in this embodiment of the application uses a mounting part 20 to fix a conductive component 50, and a guide component 30 to efficiently guide the heat generated by the conductive component 50 to the air duct component 40. The air duct component 40 consists of a horizontal channel 41 and a bent channel 42. The horizontal channel 41 directly receives the heat transferred by the guide component 30, while the bent channel 42 further exhausts the heat to the outside of the housing 10, effectively improving the heat dissipation efficiency. The bent channel 42 not only realizes the heat dissipation function, but also cleverly forms a grip for carrying the housing 100, so as to realize the carrying function, allowing users to easily grip the housing 100 when carrying it, improving the convenience and comfort of operation, and realizing the dual functions of heat dissipation and carrying. By combining the heat dissipation air duct with the carrying handle, the increase in equipment size is avoided, ensuring the aesthetics and practicality of the equipment.
[0066] Please see Figure 2 This application provides a current conversion device 1000. The current conversion device 1000 includes a housing 100 and a conductive component 50 disposed inside the housing 100. The conductive component 50 is responsible for transmitting current within the device, ensuring that the current can be converted according to a predetermined path.
[0067] Please see Figures 3 to 4 This application provides an energy system 1 for use in aquatic mobile devices. The energy system 1 includes a current conversion device 1000, which converts one form of current into another to meet the power needs of different devices or systems.
[0068] In some embodiments, energy system 1 further includes:
[0069] Energy storage unit 2000, used to store electrical energy;
[0070] The 3000 photovoltaic power generation unit is used to convert solar energy into electrical energy.
[0071] The Energy Control Unit 4000 is responsible for the distribution, protection, conversion, and control of electrical energy.
[0072] The charging control unit 5000 is used to control the charging process;
[0073] The drive unit 6000 is used to provide power to the energy system;
[0074] The intelligent control unit 7000 is used to display the system status information of the energy system and control various functions of the system;
[0075] Among them, the photovoltaic power generation unit 3000 is electrically connected to the energy control unit 4000 through the charging control unit 5000. The energy control unit 4000 is electrically connected to the current conversion device 1000, the energy storage unit 2000, the charging control unit 5000, the drive unit 6000 and the intelligent management and control unit 7000 respectively, so as to realize the overall management and control of the energy system 1.
[0076] Energy storage unit 2000 is used to store electrical energy to provide continuous power support for energy system 1. Energy storage unit 2000 may include a first battery 2001 and a second battery 2002. For example, the first battery 2001 may be a G102-100 battery, and the second battery 2002 may be a 12V battery.
[0077] The photovoltaic power generation unit 3000 can be composed of solar panels to convert solar energy into electrical energy, providing a renewable energy source for energy system 1.
[0078] The energy control unit 4000 is responsible for the distribution, protection, conversion, and control of electrical energy. It may include a power distribution panel 4001 equipped with a micro circuit breaker, a pre-charge unit 4002, a power distribution panel fuse switch 4003, a DC-DC control power unit 4004, a DC-DC load power unit 4005, a DC-AC load power unit 4006, and a power cruise master control system 4007. These components work together to ensure the stable operation and efficient management of the energy system 1.
[0079] The charging control unit 5000 can be composed of a G-type battery MPPT solar charge controller, which is used to efficiently manage the solar charging process of the battery and ensure safe and fast charging of the battery.
[0080] The drive unit 6000 may include an electric inboard motor, an outboard motor, a pod drive, etc., to provide power to the energy system and drive the aquatic mobile equipment to move flexibly in the water.
[0081] The intelligent control unit 7000 may include an intelligent display screen 7001 and an intelligent throttle 7002, which are used to display the system status information and various functions of the energy system 1, and provide a user-friendly operating interface to facilitate users to monitor and control the energy system in real time.
[0082] For example, the collaborative workflow of energy system 1 can be as follows: after the photovoltaic power generation unit 3000 converts solar energy into electrical energy, it charges the energy storage unit 2000 through the charging control unit 5000; the energy control unit 4000 is responsible for the distribution, protection, conversion and control of electrical energy to ensure that each component receives a stable power supply; the drive unit 6000 provides power support according to the needs of energy system 1 to drive the operation of water-based mobile equipment; and the intelligent management and control unit 7000 provides real-time monitoring and control functions to ensure the safe and efficient operation of energy system 1.
[0083] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0084] In the description of the embodiments of this application, specific features, structures, materials or characteristics may be combined in any suitable manner in one or more embodiments or examples.
[0085] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A box, characterized in that, include: case; The mounting section, located inside the housing, is used to mount conductive components; A guiding component, located on one side of the conductive component, is used to guide the heat generated by the conductive component to the air duct component; A duct assembly, connected to the guide assembly, is used to dissipate heat; wherein, the duct assembly includes a horizontal channel and a bent channel; the horizontal channel is connected to the guide assembly; the bent channel extends from opposite sides of the horizontal channel and is bent to form a connection with the outside of the housing, constituting a gripping part for transporting the housing.
2. The housing as described in claim 1, characterized in that, An isolation plate is provided between the bent channel and the horizontal channel. The isolation plate has a plurality of mesh structures. The isolation plate is used to separate the bent channel and the horizontal channel and allows heat to be discharged through the mesh structures.
3. The housing as described in claim 1, characterized in that, A seal is provided between the air duct assembly and the guide assembly to prevent the heat generated by the conductive assembly from escaping.
4. The housing as described in claim 1, characterized in that, The guiding component and the air duct component are arranged in a direction perpendicular to the first reference surface of the housing. The heat generated by the conductive component is guided by the guiding component in the vertical direction to the air duct component, and discharged to the outside of the housing through the air duct component. The first reference surface is the side of the housing away from the air duct component.
5. The housing as described in claim 4, characterized in that, The enclosure also includes a cooling fan located at the opposite end of the conductive component and the guiding component, which is used to blow the heat generated by the conductive component toward the guiding component.
6. The housing as described in claim 4, characterized in that, The second reference surface of the housing is provided with a display screen, which is used to display the working status of the conductive component. The second reference surface is perpendicular or parallel to the first reference surface.
7. The housing as described in claim 4, characterized in that, The first reference surface of the housing is provided with a wiring port, which is used to connect to external devices or power sources.
8. The housing as described in claim 4, characterized in that, The first reference surface of the housing is provided with a fixing bracket, which is used to fix the housing in the installation position.
9. The housing as described in claim 1, characterized in that, The guiding component is provided with a frame for accommodating the conductive component, and the frame is fixedly connected to the housing.
10. A current conversion device, characterized in that, It includes a housing as described in any one of claims 1 to 9 and a conductive component disposed inside the housing.
11. An energy system for a water-based mobile device, characterized in that, Includes the current conversion device as described in claim 10, the current conversion device being used to convert one form of current into another form of current.
12. The energy system for aquatic mobile equipment as described in claim 11, characterized in that, The energy system also includes: Energy storage unit, used to store electrical energy; Photovoltaic power generation units are used to convert solar energy into electrical energy; The energy control unit is responsible for the distribution, protection, conversion, and control of electrical energy; The charging control unit is used to control the charging process; A drive unit is used to provide power to the energy system; The intelligent control unit is used to display the system status information of the energy system and control various functions of the system; The photovoltaic power generation unit is electrically connected to the energy control unit through the charging control unit. The energy control unit is electrically connected to the current conversion device, the energy storage unit, the charging control unit, the drive unit, and the intelligent management and control unit, respectively, so as to realize the overall management and control of the energy system.