Embedded socket
By combining a flip-top design with magnetic adsorption, the aesthetic and safety issues of recessed sockets are resolved, resulting in waterproof, dustproof, and flexible recessed sockets that are easier to install and maintain.
Patent Information
- Application Number
- CN202520454863.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-14
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-03-14
AI Technical Summary
The open design of traditional recessed sockets affects aesthetics, lacks waterproof and dustproof functions, poses safety hazards, and is not conducive to keeping the desktop tidy.
Featuring a flip-top design, the hinge mechanism and magnetic adsorption combine to allow the flip-top to rotate and magnetically close. The socket itself houses a power supply module and a data module. A decorative ring covers a strong magnet, and a locking ring and guide groove work together to secure it.
It improves the aesthetics and safety of the socket, making it waterproof and dustproof, flexible in use, and easy to install and maintain, thus solving the problems of insufficient aesthetics and safety in traditional designs.
Smart Images

Figure CN223942167U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of socket technology, and in particular to an embedded socket. Background Technology
[0002] With the continuous development of electronic devices, such as computers and printers, they are widely used in daily office work. These electronic devices inevitably require power cords. Traditional desks typically have holes on the desktop for power cords to pass through; when an electronic device needs power, the power cord is plugged into a power outlet through the hole. However, this method has some problems: during work, people may accidentally kick the power plug, causing the electronic device to suddenly shut down, affecting work efficiency and data security.
[0003] To address the aforementioned technical problems, technicians have proposed an embedded desktop socket. This socket includes a socket body with a retaining ring on its upper side wall and a locking ring detachably fitted onto the socket body. The locking ring can be moved longitudinally relative to the socket body and fixed in place by external force. The locking ring and retaining ring are located on opposite sides of the desktop panel to secure the socket body. In use, simply place the socket body into the through-hole in the desktop panel and then move the locking ring to complete the fixing process.
[0004] However, these recessed sockets still have some drawbacks: the power strip at the top is open, which not only affects the aesthetics of the desktop but also lacks waterproof and dustproof features, posing a potential safety hazard. In daily use, liquids or dust can easily enter the socket, potentially causing short circuits or other electrical malfunctions, endangering user safety. Furthermore, the open design makes it difficult to keep the desktop tidy and affects the overall aesthetics of the office environment.
[0005] To address the aforementioned issues, existing technologies urgently need improvement. Summary of the Invention
[0006] To address the aforementioned problems, the purpose of this utility model is to provide an embedded socket that is aesthetically pleasing, waterproof and dustproof, flexible in use, and easy to install and maintain.
[0007] To achieve the above objectives, the present invention adopts the following technical solution:
[0008] An embedded socket, the technical solution of which is as follows: includes a socket body that can be embedded in a table hole on a desktop; the socket body is provided with a power supply module and / or a data module, and the upper end surface of the socket body is provided with a power supply end face for the power supply module and / or the data module; a flip cover is movably provided on the socket body, the flip cover is hinged to the socket body by a hinge mechanism, the flip cover can rotate relative to the socket body along its pivot point and can be magnetically attracted and closed on the upper end surface of the socket body.
[0009] Furthermore, this application also proposes that a strong magnet is embedded in the upper end of the socket body, and a magnetic attraction component is correspondingly provided in the flip cover; or the flip cover is constructed as a metal flip cover that can be attracted by a strong magnet.
[0010] Furthermore, this application also proposes that the socket body is provided with a lifting cavity, the opening of the lifting cavity is opened on the upper end surface of the socket body; the hinge mechanism includes a lifting base that is longitudinally slidably disposed in the lifting cavity, and a connecting piece whose lower end is hinged to the lifting base; the lower end of the flip cover is hinged to the upper end of the connecting piece; when the lifting base moves to the uppermost position, the hinge axis point between the lower end of the connecting piece and the lifting base can extend out of the opening of the lifting cavity.
[0011] Furthermore, this application also proposes that a hinge seat is provided on the lower end of the flip cover, and when the flip cover is closed on the upper end of the socket body, the hinge seat is embedded in the cavity of the lowering cavity.
[0012] Furthermore, this application also proposes that a decorative ring is installed on the upper end of the socket body, and the decorative ring has through holes corresponding to the cavity opening of the lifting cavity and the power receiving end face of the power receiving module and / or data module; when the decorative ring is installed on the socket body, the decorative ring covers the strong magnet.
[0013] Furthermore, this application also proposes that the flip cover includes a cover body hinged to a hinge mechanism, and a metal decorative cover covering the outer surface of the cover body; the strong magnet is capable of attracting the metal decorative cover of the flip cover.
[0014] Furthermore, this application also proposes that the cover of the flip cover is provided with a clearance hole; when the flip cover is closed on the upper surface of the socket body, the clearance hole corresponds to the strong magnet.
[0015] Furthermore, this application also proposes that the socket body has a low-voltage wiring chamber inside, and the data module is arranged in the low-voltage wiring chamber. The data module includes a data circuit board, and output terminals and input terminals are arranged at the upper and lower ends of the data circuit board. The interface of the output terminal is located on the upper surface of the socket body, and the interface of the input terminal is located on the bottom or side wall of the socket body.
[0016] Furthermore, this application also proposes that the lower end of the socket body is provided with a high-voltage input line connected to the input terminal of the power supply module, and / or a low-voltage input line connected to the input terminal of the data module; the lower end of the socket body is provided with a wiring hole facing the side, in which the high-voltage input line and / or low-voltage input line are arranged laterally; and / or the lower end of the socket body is provided with a plug hole facing the bottom, in which the high-voltage input line and / or low-voltage input line are arranged in an L-shape, and the terminals of the high-voltage input line and / or low-voltage input line are plugged into the plug hole, with the main body arranged laterally.
[0017] Furthermore, this application also proposes that the upper edge of the socket body is provided with a retaining ring, the side wall of the socket body below the retaining ring is provided with threads, and the inner wall of the locking ring is constructed with internal threads; the internal threads of the locking ring can be threadedly connected to the threads of the socket body and move longitudinally along its threads, the locking ring and the retaining ring are respectively located on both sides of the desktop plate for fixing the socket body; and / or the socket body is provided with a guide groove arranged in the longitudinal direction, and a hidden groove communicating with the lower end of the guide groove; a screw is circumferentially movably arranged in the guide groove, the axial direction of the screw is arranged along the extension direction of the guide groove, and a clamping component is threaded on the screw; when the screw rotates, the guide groove restricts the circumferential movement of the clamping component, and the clamping component moves along the axial direction of the screw; when the clamping component moves to the lower end of the guide groove, it can rotate with the screw and enter the hidden groove.
[0018] As described above, the embedded socket provided in this application includes a socket body that can be embedded in a table hole on a desktop; the socket body is provided with a power-supply module and / or a data module, and the upper surface of the socket body forms a power-supply end face for the power-supply module and / or data module; a flip cover is movably provided on the socket body, the flip cover is hinged to the socket body via a hinge mechanism, the flip cover can rotate relative to the socket body around its pivot point and can be magnetically attached to the upper surface of the socket body. By providing a flip-up cover, the socket can be closed and protected when not in use, improving the aesthetics of the socket and providing waterproof and dustproof functions; the magnetic attachment design makes opening and closing the flip cover more convenient and quick; the power-supply module and data module are provided in the socket body, improving the multi-functionality and flexibility of use of the socket; the embedded design and simple fixing method make the installation and maintenance of the socket more convenient. Therefore, the embedded socket provided in this application has the advantages of good aesthetics, waterproof and dustproof properties, flexible use, and convenient installation and maintenance. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the flip-top closed state of an embedded socket provided in this application.
[0020] Figure 2 This is a schematic diagram of the flip-top open state of an embedded socket provided in this application.
[0021] Figure 3 This is a schematic diagram of the installation of a decorative ring provided in this application.
[0022] Figure 4 This is a schematic diagram of the decorative ring.
[0023] Figure 5 A cross-sectional view of an embedded socket provided in this application. Figure 1 .
[0024] Figure 6 A cross-sectional view of an embedded socket provided in this application. Figure 2 .
[0025] Figure 7 This is a schematic diagram of the bottom structure of an embedded socket provided in this application.
[0026] Figure 8 This is a bottom wiring diagram of an embedded socket provided in this application. Detailed Implementation
[0027] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0028] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "clockwise", "counterclockwise", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model 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. Therefore, they should not be construed as limitations on this utility model.
[0029] 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 technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more, unless otherwise expressly defined.
[0030] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., 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 or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0031] In this invention, unless otherwise explicitly 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 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 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.
[0032] like Figures 1-8 As shown, this embodiment relates to an embedded socket, including a socket body 1 that can be fitted into a table hole on a desktop.
[0033] like Figure 1 and 2 As shown, a retaining ring 10 is provided on the upper edge of the socket body 1, and a thread 11 is provided on the side wall of the socket body 1 below the retaining ring 10. An internal thread is constructed on the inner wall of the locking ring 2. The locking ring 2 is connected to the socket body 1 via the thread 11 and can move longitudinally. The locking ring 2 and the retaining ring 10 are located on opposite sides of the desktop. Through the movement and fixation of the locking ring 2, the socket body 1 can be firmly fixed to the desktop. Specifically, the retaining ring 10 prevents the socket body 1 from falling off the desktop, while the locking ring 2, connected to the socket body 1 via the thread 11, can be rotated to move longitudinally along the thread 11 of the socket body 1, thereby clamping the desktop between the retaining ring 10 and the locking ring 2, achieving a secure fixation of the socket body 1. The internal thread of the locking ring 2 can be a fine thread to increase the friction between the locking ring 2 and the socket body 1, further improving the stability of the fixation.
[0034] In another embodiment, the socket body 1 is provided with a guide groove 12 and a concealed groove 13. A screw 14 and a clamping member 15 are disposed within the guide groove 12. When the screw 14 rotates, the clamping member 15 moves axially along the screw 14. When the clamping member 15 moves to the lower end of the guide groove 12, it can rotate with the screw 14 and enter the concealed groove 13, thereby achieving quick installation and removal of the socket body 1. The guide groove 12 and the concealed groove 13 provide a mechanism for quick installation and removal. When the screw 14 rotates, the clamping member 15 moves axially along the screw 14. When the clamping member 15 moves to the lower end of the guide groove 12, it can rotate with the screw 14 and enter the concealed groove 13, thereby releasing or fixing the socket body 1. The cross-sectional shape of the guide groove 12 can be rectangular or trapezoidal to restrict the circumferential movement of the clamping member 15, ensuring that the clamping member 15 can only move axially along the screw 14. The material of the clamping member 15 can be a metal material with high hardness and wear resistance to extend its service life.
[0035] Therefore, the technical solution of this application, through the cooperation of the retaining ring 10, locking ring 2, guide groove 12, and concealed groove 13, solves the technical problems of the embedded socket being not securely fixed on the desktop and the inconvenience of installation and disassembly. Compared with the prior art, the technical solution of this application not only improves the fixing firmness of the socket body 1, but also simplifies the installation and disassembly steps, and improves the convenience of use.
[0036] like Figure 2 and 3 As shown, the socket body 1 houses a power-gathering module 3 and / or a data module 4, with the power-gathering end face of the power-gathering module 3 and / or data module 4 formed on the upper surface of the socket body 1. A flip cover 5 is movably mounted on the socket body 1, hinged to the socket body 1 via a hinge mechanism. The flip cover 5 can rotate relative to the socket body 1 around its pivot point and can magnetically adhere to the upper surface of the socket body 1. The technical solution of this application solves the problem of exposed power-gathering end face of embedded sockets by setting the flip cover 5 and the magnetic adsorption structure. Specifically, the socket body 1 is embedded in a desktop, housing a power-gathering module 3 and / or a data module 4, with a power-gathering end face formed on its upper surface. The flip cover 5 is connected to the socket body 1 via a hinge mechanism, can rotate, and magnetically adheres to the upper surface of the socket body 1. This design allows the flip cover 5 to be closed when the power-gathering end face is not needed, protecting it from dust, water, and other external environmental damage. Simultaneously, during use, the power supply or data cable can be easily connected by flipping the flip cover 5. Furthermore, the magnetic adsorption method allows for convenient and effortless opening and closing of the flip cover 5, and ensures that the flip cover 5 is held in place and does not loosen when the power-generating end face is not in use.
[0037] exist Figure 3In the specific embodiment shown, a strong magnet 16 is embedded in the upper end of the socket body 1, and a corresponding magnetic attraction component is provided in the flip cover 5. In an alternative embodiment, the flip cover 5 is constructed as a metal flip cover that can be attracted by the strong magnet 16. In the above embodiment, the strong magnet 16 can be a rare earth magnet, such as a neodymium iron boron magnet, which has a high magnetic energy product and strong magnetism, and can provide sufficient magnetic force to ensure the stable closing of the flip cover 5. The strong magnet 16 can be embedded in the upper surface of the socket body 1 and fixed by adhesive or mechanical fixing to ensure its positional stability and effective transmission of magnetic force. The magnetic attraction component can be a component made of magnetic materials such as iron, nickel, and cobalt, or a composite component containing these materials to ensure effective attraction with the strong magnet 16. The magnetic attraction component can also be embedded in the internal structure of the flip cover 5, or directly constructed as part of the flip cover 5 on the surface of the flip cover 5. The metal flip cover can be made of metal materials such as stainless steel and aluminum alloy, which not only have good mechanical properties, but can also be effectively attracted by the strong magnet 16. The design of the metal flip cover can be further optimized. For example, a layer of magnetic material can be placed on the inside of the flip cover 5 to enhance the adsorption effect with the strong magnet 16. Thus, this application achieves a stable closing of the flip cover 5 through magnetic adsorption, and the opening and closing operation of the flip cover 5 is also more convenient due to the characteristics of magnetic adsorption. Compared with the prior art, this application not only solves the problem of a stable closing of the flip cover 5, but also improves the ease of use of the flip cover 5, avoiding the wear and inconvenience that may be caused by traditional mechanical locking methods.
[0038] like Figures 2-4 As shown, a decorative ring 6 is installed on the upper end of the socket body 1. The decorative ring 6 has through holes 60 corresponding to the power-taking end faces of the power-taking module 3 and / or data module 4. When the decorative ring 6 is installed on the socket body 1, it covers the strong magnet 16. The design of the decorative ring 6 can be achieved in various ways. For example, the decorative ring 6 can be made of metal, plastic, or other composite materials, and its surface can be polished, painted, or otherwise surface-treated to improve its aesthetics. The through holes 60 on the decorative ring 6 can be precisely designed according to the shape and position of the opening of the lifting cavity and the power-taking end faces of the power-taking module 3 or data module 4, ensuring that the decorative ring 6 covers the strong magnet 16 without affecting the functionality of the socket. Furthermore, the decorative ring 6 can be installed on the socket body 1 by snap-fit, threaded connection 11, or other fixing methods, ensuring its stability and removability. This technical solution, by installing the decorative ring 6, solves the technical problem of the strong magnet 16 being exposed, affecting aesthetics and potentially causing safety hazards. The decorative ring 6 not only covers the strong magnet 16, but also maintains the functionality of the socket through the through hole 60, allowing the power supply terminals of the power module 3 and data module 4 to still function normally. Compared with existing technologies, this solution improves the aesthetics and safety of the socket while maintaining its practicality, demonstrating significant innovation and practicality.
[0039] exist Figures 1-3 In the embodiment shown, the flip cover 5 includes a cover body 51 hinged to a hinge mechanism, and a metal decorative cover 52 covering the outer surface of the cover body 51. A strong magnet 16 is capable of attracting the metal decorative cover 52 of the flip cover 5. Specifically, the metal decorative cover 52 can be made of materials such as stainless steel or aluminum alloy, which not only have good strength and corrosion resistance but also provide an aesthetically pleasing appearance. The metal decorative cover 52 can be fixed to the outer surface of the cover body 51 by welding, sleeve, riveting, or bonding. As a preferred embodiment, the surface of the metal decorative cover 52 can be polished, brushed, or sprayed to enhance its aesthetics and durability. The position and number of strong magnets 16 can be adjusted according to actual needs to ensure that the flip cover 5 can be evenly stressed when closed, avoiding deformation or damage caused by local stress concentration. Thus, this application solves the problem of the flip cover 5 lacking effective attraction force when closed by setting the metal decorative cover 52 and the strong magnet 16. A metal decorative cover 52 covers the outer surface of the cover 51. A strong magnet 16 can attract the metal decorative cover 52, ensuring that the flip cover 5 is firmly attached to the upper surface of the socket body 1 when closed, preventing accidental opening. The metal decorative cover 52 is not only strong and of good quality, but also waterproof and dustproof. Therefore, this design not only enhances the stability of the flip cover 5, but also improves the overall safety and aesthetics of the socket. Compared with existing technologies, the technical solution of this application, by introducing the combination of the metal decorative cover 52 and the strong magnet 16, achieves a firm attachment between the flip cover 5 and the socket body 1, avoiding the problem of accidental opening of the flip cover 5 in traditional designs. At the same time, the introduction of the metal decorative cover 52 also enhances the appearance and texture of the socket, making it more in line with the aesthetic requirements of modern office environments. Furthermore, the waterproof and dustproof functions of the metal decorative cover 52 further enhance the practicality and safety of the socket.
[0040] Furthermore, this application proposes that the cover 51 of the flip cover 5 has a clearance hole 53. When the flip cover 5 is closed on the upper surface of the socket body 1, the clearance hole 53 corresponds to the strong magnet 16. The design of the clearance hole 53 can be achieved in various ways. For example, the clearance hole 53 can be a circular, elliptical, or other shaped hole, the size and position of which need to be precisely designed to ensure the correspondence with the strong magnet 16. The clearance hole 53 can be formed during the manufacturing process of the cover 51 by processes such as stamping, drilling, or laser cutting. In addition, the position and shape of the clearance hole 53 can be adjusted according to the specific position and shape of the strong magnet 16 to ensure that when the flip cover 5 is closed, the clearance hole 53 can completely avoid the strong magnet 16, avoiding interference. Specifically, the design of the clearance hole 53 not only takes into account that the cover 51 of the flip cover 5 is located in the inner layer, so constructing the clearance hole 53 will not affect the appearance, but also considers that the clearance hole 53 can eliminate the influence of the cover 51 on the magnetic field, thereby reducing the obstruction between the strong magnet 16 and the metal decorative cover 52, and ensuring the magnetic adsorption effect between the strong magnet 16 and the metal decorative cover 52. Through this design, the flip cover 5 can smoothly avoid the strong magnet 16 when closing, avoiding problems such as incomplete closing or poor magnetic adsorption effect caused by interference.
[0041] like Figure 2 and 5As shown, a lifting cavity 17 is provided inside the socket body 1, and the opening of the lifting cavity 17 is located on the upper surface of the socket body 1. A through hole 60 corresponding to the opening of the lifting cavity 17 is also constructed on the decorative ring 6. The hinge mechanism includes a lifting base 181 that is longitudinally slidably disposed within the lifting cavity 17, and a connecting piece 182 whose lower end is hinged to the lifting base 181. A sliding groove 171 is constructed on the side wall of the lifting cavity 17, and both sides of the lifting base 181 are slidably disposed on the sliding groove 171. The lower end of the flip cover 5 is hinged to the upper end of the connecting piece 182. When the lifting base 181 moves to its uppermost position, the hinge point between the lower end of the connecting piece 182 and the lifting base 181 can extend out of the opening of the lifting cavity 17. Specifically, the design of the lifting cavity 17 allows the flip cover 5 to be completely flattened when needed, thereby reducing space occupation and improving ease of use. The hinged design of the lifting base 181 and the connecting piece 182 ensures the stability of the flip cover 5 during lifting and lowering, while also ensuring that the flip cover 5 can be fully unfolded when opened, avoiding the problems of the flip cover 5 occupying space and being easily damaged when upright. Furthermore, the hinge axis of the lifting base 181 and the connecting piece 182 extends out of the opening of the lifting cavity 17, further enhancing the flexibility and stability of the flip cover 5. As a preferred embodiment, the lifting base 181 can be controlled manually or automatically, for example, through a spring mechanism or an electric motor. The design of the connecting piece 182 can be further optimized, for example, by using lightweight materials to reduce overall weight, or by increasing the length of the connecting piece 182 to increase the flipping range of the flip cover 5. Thus, by setting the lifting cavity 17 and the hinge mechanism, this application realizes the lifting and rotating functions of the flip cover 5, effectively solving the technical problems of the complex structure and large space occupation of the embedded socket flip cover 5. Compared with the prior art, the design of this application not only improves the flexibility and ease of use of the flip cover 5, but also reduces the space occupied by the flip cover 5 when it is opened by optimizing the structural design, thereby improving the practicality and market competitiveness of the product.
[0042] Furthermore, a hinge seat 54 is provided on the lower end of the cover 51 of the flip cover 5, and the upper end of the connecting piece 182 is connected to the hinge seat 54. When the flip cover 5 is closed on the upper end of the socket body 1, the hinge seat 54 is embedded in the cavity of the lifting cavity. The hinge seat 54 is a structural component located at the lower end of the flip cover 5, used to connect and engage with the upper end of the connecting piece 182. The specific shape and size of the hinge seat 54 can be designed according to actual needs, for example, it can be cylindrical, square, or other geometric shapes to ensure that it can be smoothly embedded in the cavity of the lifting cavity 17. The material of the hinge seat 54 can be metal or high-strength plastic to ensure its durability and stability; however, the preferred option is that it is integrally injection molded with the cover 51 of the flip cover 5 using high-strength plastic. As a preferred embodiment, the hinge seat 54 can be fixed to the lower end of the flip cover 5 by screws or clips to ensure a firm and reliable connection between it and the flip cover 5.
[0043] Specifically, the embedded design of the hinge base 54 allows the flip cover 5 to be more stably fixed to the socket body 1 when closed. When the flip cover 5 is closed, the hinge base 54 is embedded in the cavity of the lifting chamber 17, which not only restricts the lateral movement of the flip cover 5 and prevents it from shaking or shifting when closed, but also avoids interference from the hinge base 54, ensuring the fit between the flip cover 5 and the socket body 1. Therefore, this design not only improves the fit between the flip cover 5 and the socket body 1, but also enhances the stability of the flip cover 5, preventing the flip cover 5 from being accidentally opened due to external forces. Thus, the technical solution of this application, by setting the hinge base 54 and embedding it in the cavity of the lifting chamber 17, effectively solves the technical problem of ensuring that the flip cover 5 is stably embedded in the socket body 1 when closed. Compared with the prior art, this design is not only simple in structure and easy to implement, but also significantly improves the stability and safety of the flip cover 5, and has high practical value.
[0044] like Figure 6As shown, the socket body 1 has a low-voltage wiring chamber 100 inside, and the data module 4 is arranged in the low-voltage wiring chamber 100. The data module 4 includes a data circuit board 41, and output terminals 42 and input terminals 43 located at the upper and lower ends of the data circuit board 41. The interface of the output terminal 42 is located on the upper surface of the socket body 1, and the interface of the input terminal 43 is located on the bottom or side wall of the socket body 1. Specifically, the design of the low-voltage wiring chamber 100 allows the data module 4 to be reasonably arranged inside the socket body 1, avoiding the messiness of external wiring and potential safety hazards. The output terminals 42 and input terminals 43 located at the upper and lower ends of the data circuit board 41 respectively ensure a reasonable interface layout of the data module 4. The interface of the output terminal 42 is located on the upper surface of the socket body 1, which is convenient for users to connect devices, while the interface of the input terminal 43 is located on the bottom or side wall of the socket body 1, which is convenient for power or data cable access. This design not only optimizes the internal space utilization of the socket, but also improves the convenience and safety of use, and allows for the installation of docking stations and charging adapters. In a preferred embodiment, the low-voltage wiring chamber 100 can be further subdivided into multiple sub-chambers, each used to house different types of data modules 4, such as network modules, USB modules, and Type-C modules. The data circuit board 41 can employ a multi-layer design to increase circuit complexity and functionality. The interfaces of the output terminals 42 and input terminals 43 can adopt a standardized design, such as a USB-C interface, to improve compatibility and versatility. Furthermore, multiple input terminal 43 interfaces can be provided on the bottom or side wall of the socket body 1 to accommodate different power or data cable access requirements. Thus, the technical solution of this application, by constructing the low-voltage wiring chamber 100, allows the data modules 4 to be rationally arranged inside the socket body 1, avoiding the chaos and potential safety hazards of external wiring. The output terminals 42 and input terminals 43, respectively located at the top and bottom of the data circuit board 41, ensure a reasonable interface layout for the data modules 4. The interfaces of the output terminals 42 are located on the upper surface of the socket body 1 for easy device connection, while the interfaces of the input terminals 43 are located on the bottom or side wall of the socket body 1 for easy access of power or data cables from under the desktop. This design not only optimizes the use of space inside the socket but also improves ease of use and safety, allowing for the installation of docking stations and charging adapters. Compared with existing technologies, the technical solution of this application has significant advantages in terms of space utilization, ease of use, and safety.
[0045] like Figure 7 and 8As shown, the lower end of the socket body 1 is provided with a high-voltage input line 30 connected to the input terminal of the power supply module 3, and / or a low-voltage input line 40 connected to the input terminal of the data module 4. The lower end of the socket body 1 has a side-facing wiring hole 191, in which the high-voltage input line 30 and / or low-voltage input line 40 are horizontally arranged. Alternatively, the lower end of the socket body 1 has a bottom-facing insertion hole 192, in which the high-voltage input line 30 and / or low-voltage input line 40 are L-shaped, and the terminals of the high-voltage input line 30 and / or low-voltage input line 40 are inserted into the insertion hole 192. The main body is horizontally arranged.
[0046] Specifically, the high-voltage input line 30 and the low-voltage input line 40 are used to connect to the input terminals of the power supply module 3 and the data module 4, respectively. The wiring hole 191 faces sideways, allowing the high-voltage input line 30 and the low-voltage input line 40 to be arranged laterally, thereby reducing the installation depth requirement of the socket body 1. The plug hole 192 faces bottom, and the high-voltage input line 30 and the low-voltage input line 40 are designed in an L-shape, with their terminals inserted into the plug hole 192. The main body is arranged laterally, facilitating access from the bottom of the socket body 1. This design not only facilitates wiring on the side of the socket body 1 but also reduces the installation depth requirement of the socket body 1, making installation and maintenance more convenient. Compared with the prior art, the technical solution of this application has significant advantages in terms of neat wiring and ease of installation.
[0047] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0048] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention without departing from the principles and spirit of the present invention.
Claims
1. An embedded socket, comprising a socket body (1) capable of being embedded in a table hole on a desktop; wherein a power-supply module (3) and / or a data module (4) are disposed within the socket body (1), and the upper end surface of the socket body (1) forms a power-supply end face for the power-supply module (3) and / or the data module (4); characterized in that: A flip cover (5) is movably provided on the socket body (1). The flip cover (5) is hinged to the socket body (1) through a hinge mechanism. The flip cover (5) can rotate relative to the socket body (1) along its pivot point and can be magnetically attached to the upper surface of the socket body (1).
2. The recessed socket according to claim 1, characterized in that: The upper end of the socket body (1) is fitted with a strong magnet (16), and a magnetic attraction component is correspondingly provided in the flip cover (5); or the flip cover (5) is constructed as a metal flip cover that can be attracted by the strong magnet (16).
3. An embedded socket according to claim 2, characterized in that: The socket body (1) is provided with a lifting cavity (17), and the opening of the lifting cavity (17) is opened on the upper end surface of the socket body (1); the hinge mechanism includes a lifting base (181) that is longitudinally slidably disposed in the lifting cavity (17), and a connecting piece (182) whose lower end is hinged to the lifting base (181); the lower end of the flip cover (5) is hinged to the upper end of the connecting piece (182); when the lifting base (181) moves to the uppermost position, the hinge axis point between the lower end of the connecting piece (182) and the lifting base (181) can extend out of the opening of the lifting cavity (17).
4. An embedded socket according to claim 3, characterized in that: A hinge seat (54) is provided on the lower end of the flip cover (5). When the flip cover (5) is closed on the upper end of the socket body (1), the hinge seat (54) is embedded in the cavity of the lowering cavity.
5. An embedded socket according to claim 3, characterized in that: A decorative ring (6) is installed on the upper end of the socket body (1). The decorative ring (6) has a through hole (60) corresponding to the opening of the lifting cavity (17) and the power-taking end face of the power-taking module (3) and / or data module (4). When the decorative ring (6) is installed on the socket body (1), the decorative ring (6) covers the strong magnet (16).
6. An embedded socket according to claim 2, characterized in that: The flip cover (5) includes a cover body (51) hinged to a hinge mechanism, and a metal decorative cover (52) covering the outer surface of the cover body (51); the strong magnet (16) is capable of attracting the metal decorative cover (52) of the flip cover (5).
7. An embedded socket according to claim 6, characterized in that: The cover (5) of the flip cover (5) has a clearance hole (53); when the flip cover (5) is closed on the upper surface of the socket body (1), the clearance hole (53) corresponds to the strong magnet (16).
8. An embedded socket according to claim 1, characterized in that: The socket body (1) has a low-voltage wiring chamber (100) inside. The data module (4) is arranged in the low-voltage wiring chamber (100). The data module (4) includes a data circuit board (41) and output terminals (42) and input terminals (43) arranged at the upper and lower ends of the data circuit board (41). The interface of the output terminal (42) is located on the upper surface of the socket body (1), and the interface of the input terminal (43) is located on the bottom or side wall of the socket body (1).
9. An embedded socket according to claim 8, characterized in that: The lower end of the socket body (1) is provided with a high-voltage input line (30) connected to the input terminal of the power supply module (3), and / or a low-voltage input line (40) connected to the input terminal of the data module (4); the lower end of the socket body (1) is provided with a wiring hole (191) facing the side, and the high-voltage input line (30) and / or the low-voltage input line (40) are arranged horizontally in the wiring hole (191), and / or the lower end of the socket body (1) is provided with a plug hole (192) facing the bottom, the high-voltage input line (30) and / or the low-voltage input line (40) are constructed in an L-shape, and the terminals of the high-voltage input line (30) and / or the low-voltage input line (40) are plugged into the plug hole (192), and the main body is arranged horizontally.
10. An embedded socket according to claim 1, characterized in that: The upper edge of the socket body (1) is provided with a retaining ring (10), and the side wall of the socket body (1) below the retaining ring (10) is provided with a thread (11). The inner wall of the locking ring (2) is provided with an internal thread; the internal thread of the locking ring (2) can be threaded (11) onto the thread (11) of the socket body (1) and move longitudinally along its thread (11). The locking ring (2) and the retaining ring (10) are respectively located on both sides of the desktop to fix the socket body (1); and / or the socket body (1) is provided with a guide groove (12) arranged in the longitudinal direction, and a guide groove (12) is provided with the guide groove (12) The lower end of the guide groove (12) is connected to the hidden groove (13); a screw (14) is circumferentially movably arranged in the guide groove (12), the axial direction of the screw (14) is arranged along the extension direction of the guide groove (12), and a clamping component (15) is sleeved on the screw (14) by the thread (11); when the screw (14) rotates, the guide groove (12) restricts the circumferential movement of the clamping component (15), and the clamping component (15) moves along the axial direction of the screw (14); when the clamping component (15) moves to the lower end of the guide groove (12), it can rotate with the screw (14) and enter the hidden groove (13).