A socket structure with a screen slot

CN224610259UActive Publication Date: 2026-08-07HANGZHOU XIAOGAN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HANGZHOU XIAOGAN TECH CO LTD
Filing Date
2025-09-04
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

单纯地增加插座体积并非最佳解决方案,因此亟待一种集成了高效走线通道、可适配多种屏风且安装灵活的插座结构来解决上述问题

Benefits of technology

[0016]由上可知,本申请提供的一种带屏风插槽的插座结构及其安装组件,通过串通插座本体上下端面的走线孔设计,实现线缆的规范布设,避免屏风插接区域的线材缠绕,同时结合多高度卡钩结构适应不同厚度桌板安装需求,具有提升电气安全性和空间适应性的优点。

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Abstract

The utility model relates to office furniture electrical fittings technical field especially, it relates to a socket structure with screen plug slot. The application provides a socket structure with screen plug slot, and the technical scheme is as follows: the lower part of socket body is provided with the installation part for extending into the table hole, and the upper end is built with the screen plug slot for the detachable connection screen, and the bottom surface of the installation part and the socket body on both sides of screen plug slot are provided with the power taking end surface, the wiring hole is built on the socket body for the power line to pass through, and the wiring hole is connected with the upper and lower end surfaces of socket body. This scheme has the advantages of solving cable winding hidden danger, improving installation stability and adapting to different table plate thickness.
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Description

Technical Field

[0001] This utility model relates to the field of electrical accessories for office furniture, and in particular to a socket structure with a screen slot. Background Technology

[0002] Currently, office furniture commonly uses desks with partitions to divide independent work areas. These desks typically require electrical outlets in specific locations to meet power needs. Traditional desktop outlets are mostly fixed to the openings in the desk panel with simple clips or bolts, and their function is mainly focused on power supply, failing to form an effective integration with the partition structure. When a partition needs to be placed near the outlet, the two are often installed independently, which not only takes up space but also results in messy cable management, affecting the aesthetics and safety of the office environment.

[0003] Furthermore, existing socket structures designed for screen installation are often complex in design, making installation and adjustment cumbersome. Their wiring channels are frequently poorly planned, resulting in messy accumulation of power and data cables at the connection point between the screen and the socket, even interfering with a secure connection. Additionally, the power supply module layout of these sockets is relatively simple, unable to adapt to the installation requirements of tabletops of different heights and thicknesses, and lacks compatibility with various screen sizes, thus limiting their application scenarios.

[0004] On the other hand, to power multiple devices, sockets typically need to integrate multiple power supply modules. A key challenge in current design is how to rationally arrange these modules within a compact space, avoiding interference and ensuring heat dissipation, while also considering the mechanical strength of the screen connections and wiring requirements. Simply increasing the socket's size is not the optimal solution; therefore, a socket structure that integrates efficient wiring channels, is adaptable to various screens, and offers flexible installation is urgently needed to address these issues. Summary of the Invention

[0005] To address the aforementioned issues, the present invention aims to provide a socket structure with a screen slot, which offers advantages such as resolving the risk of cable tangling, improving installation stability, and adapting to different tabletop thicknesses.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] This application provides a socket structure with a screen slot, the technical solution of which is as follows: the lower part of the socket body is provided with a mounting part for extending into the table hole, and the upper end is provided with a screen slot for detachably connecting a screen. The socket body on both sides of the screen slot and the bottom surface of the mounting part are provided with power supply end faces; the socket body is provided with a wiring hole through which the power supply line passes, and the wiring hole connects the upper and lower end faces of the socket body.

[0008] Furthermore, this application also proposes that the wiring hole is provided at the end of the socket body, with its lower end opening opened on the bottom surface of the mounting part and its upper end opening opened at the bottom of the screen slot; the screen slot has a flared opening at its end near the wiring hole, the flared opening being a clearance space recessed from the slot opening of the screen slot to the front and rear sides of the socket body.

[0009] Furthermore, this application also proposes that a clamping block is detachably connected inside the screen slot, the clamping block being used to form a clamping opening inside the screen slot for clamping the screen.

[0010] Furthermore, this application also proposes that the clamping block is constructed as a U-shaped clamping block, with its U-shaped opening forming a clamping opening; a first hook is provided at the lower end of the U-shaped clamping block, and a slot adapted to the first hook is provided at the bottom of the screen slot, with the first hook engaging the slot to restrict the U-shaped clamping block from coming out of the screen slot.

[0011] Furthermore, this application also proposes that second hooks for engaging the bottom surface of the tabletop are constructed on the opposite side walls of the mounting section.

[0012] Furthermore, this application also proposes that multiple second hooks at different heights be constructed on the opposite side walls of the mounting section.

[0013] Furthermore, this application also proposes that,

[0014] The socket body includes a base housing and a top cover housing fixed on the base housing; a base partition is provided on the base housing, and a base cavity is formed between the base partition and the base housing; a plurality of first power supply modules are installed in the base cavity; and a first power supply panel is provided at the bottom of the base housing covering the electrical components of the plurality of first power supply modules.

[0015] The top cover housing has a top cover chamber inside, and multiple second power supply modules are installed in the top cover chamber; the top cover chamber is provided with a top cover partition or mounting bracket for installing the second power supply modules and sealing the top cover chamber; the two side walls of the top cover housing are provided with second power supply panels covering the multiple second power supply modules.

[0016] As can be seen from the above, the socket structure with screen slot and its installation components provided in this application achieve standardized cable routing by connecting the wiring holes on the upper and lower ends of the socket body, avoiding wire tangling in the screen insertion area. At the same time, combined with the multi-height hook structure, it adapts to the installation needs of tabletops of different thicknesses, and has the advantages of improving electrical safety and spatial adaptability. Attached Figure Description

[0017] Figure 1 A schematic diagram of a socket mounting clip with a screen slot provided in this application.

[0018] Figure 2 A schematic diagram of a socket with a screen slot provided in this application.

[0019] Figure 3 A top view of a socket with a screen slot provided for this application.

[0020] Figure 4 An exploded view of the first type of socket with a screen slot provided for this application.

[0021] Figure 5 An exploded view of a second type of socket with a screen slot provided in this application. Detailed Implementation

[0022] 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.

[0023] 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.

[0024] 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.

[0025] 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.

[0026] 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.

[0027] In existing technologies, office furniture commonly uses desks with integrated partitions to divide work areas. Traditional sockets are fixed to the desk openings with clips or bolts, focusing on power supply but not integrated with the partition structure. When partitions need to be placed near the sockets, their independent installation leads to space occupation and chaotic cable management. Existing sockets with partition installation capabilities have complex structural designs, insufficient cable routing planning, and power and data cables piling up at connection points, interfering with the stability of partition connections. The power supply module layout is simplistic, making it difficult to adapt to the installation needs of desks of different heights or thicknesses, and lacking adaptability to various partition sizes.

[0028] To address the aforementioned issues, traditional solutions involving separate installation of the screen and socket result in low space utilization and exposed cables, posing safety hazards. The inventors discovered that integrating the screen slot 12 with the socket body 1 reduces the number of components and optimizes the layout. Further consideration was given to how to achieve concealed cable routing within a limited space, avoiding interference from bends to the connection structure. By analyzing the tabletop installation environment, cable routing holes 3 were designed to penetrate the upper and lower surfaces of the socket, allowing cables to enter from the bottom of the mounting part 11 and exit through the bottom of the screen slot 12. Simultaneously, multiple power supply faces are provided on both sides of the screen slot 12 and the bottom of the mounting part 11 to meet the power supply needs of devices at different heights.

[0029] like Figure 1-5 As shown, this application proposes a socket structure with a screen slot, including a socket body 1. The lower part of the socket body 1 is provided with a mounting part 11 for extending into a table hole, and the upper end is provided with a screen slot 12 for detachably connecting a screen. Power supply end faces are provided on the socket body 1 on both sides of the screen slot 12 and on the bottom surface of the mounting part 11. A wiring hole 3 for the power supply line to pass through is provided on the socket body 1, and the wiring hole 3 connects the upper and lower end faces of the socket body 1.

[0030] The mounting section 11 refers to the structure at the lower end of the socket body 1 for embedding into the tabletop opening. This can be achieved using an extension section with hooks. Its function is to fix the socket by embedding it into the table hole, avoiding external installation that occupies desktop space. The screen slot 12 refers to the groove structure at the upper end of the socket body 1 for inserting a screen. This can be achieved using a U-shaped or T-shaped groove. Its function is to adapt to screens of different thicknesses through a detachable connection. The power supply end face refers to the planar area integrating the power supply interface. This can be achieved using an embedded socket module or a USB interface array. Its function is to meet the power supply needs of devices of different heights through a multi-directional layout. The cable routing hole 3 refers to the channel penetrating the upper and lower ends of the socket body 1. This can be achieved using a through hole with a circular or rectangular cross-section. Its function is to connect the bottom surface of the mounting section 11 with the bottom of the screen slot 12 to form a concealed cable routing path, avoiding exposed cables.

[0031] Specifically, the socket body 1 is fixed by embedding the lower mounting part 11 into the opening of the tabletop. The power-receiving end face on the bottom of the mounting part 11 can supply power to devices below the desktop. The screen slot 12 is located at the upper end of the socket body 1, and the screen is fixed by a detachable connection. The power-receiving end faces on both sides of the slot provide power interfaces for desktop devices. The cable routing hole 3 runs through the upper and lower end faces of the socket body 1. The cable enters from the bottom of the mounting part 11 and extends upward through the cable routing hole 3 to the upper end of the socket body 1. The upper and lower layered layout of the mounting part 11 and the screen slot 12 spatially separates the mechanical connection and electrical module, avoiding mutual interference. Through the above technical solution, this application realizes the integrated installation of the screen and the socket, reducing space occupation and improving structural stability. The cable routing hole 3 forms a continuous concealed channel, avoiding exposed or bent cables at the connection points, improving the safety of the office environment. The multi-directional power-receiving end face layout can simultaneously supply power to devices above and below the desktop, adapting to the needs of different installation environments. The layered design of the mounting section 11 and the screen slot 12 enables the synergy of mechanical connection and electrical function within a limited space, thereby improving the structural compactness.

[0032] In a specific implementation, the wiring hole 3 is located at the end of the socket body 1, with its lower opening on the bottom surface of the mounting part 11 and its upper opening at the bottom of the screen slot 12. The screen slot 12 has a flared opening 121 at its end near the wiring hole 3. The flared opening 121 is a recessed space extending from the opening of the screen slot 12 towards the front and rear sides of the socket body 1. The flared opening 121 refers to the recessed structure at the end of the screen slot 12, which can be formed by injection molding to provide lateral clearance space when the screen is inserted. The bottom surface of the mounting part 11 refers to the planar area in contact with the lower surface of the tabletop, which can be designed as a flat surface to ensure a tight fit with the tabletop.

[0033] Specifically, the cable passes vertically into the socket body 1 through the lower opening of the wiring hole 3, and then extends horizontally along the upper opening of the wiring hole 3 to the bottom area of ​​the screen slot 12, forming an L-shaped concealed wiring path. The flared opening 121 forms a recess towards the front and rear sides of the socket body 1 at the end of the screen slot 12. When the screen is inserted, a gap is formed between its end edge and the recessed sidewall of the flared opening 121, restricting the bending section of the cable within this gap and preventing spatial interference with the screen. The lower opening of the wiring hole 3 is coplanar with the bottom surface of the mounting part 11, ensuring that the cable insertion direction is consistent with the axis of the tabletop opening, reducing the cable bending angle. The upper opening connects to the bottom of the screen slot 12, allowing the cable to directly enter the internal wiring channel of the screen. The wiring hole 3, located at the end of the socket body 1, reduces the length of the flared opening 121 area, thus reducing the shared area length between the cable routing and the screen insertion.

[0034] This solution arranges the cable routing hole 3 at the end of the socket body 1 and connects to the bottom of the screen slot 12, allowing the cable path to naturally connect with the internal wiring channel of the screen. Simultaneously, the flared opening 121 eliminates interference between the screen end and the cable, achieving integrated optimization of cable management and screen installation. Through this technical solution, this application solves the problem of cable accumulation in the screen insertion area, which leads to installation difficulties. The clearance provided by the flared opening 121 allows for effective concealment of bent cable sections when the screen is inserted, preventing friction or compression between the screen edge and the cable, ensuring a stable screen connection while maintaining the neatness of the cable path.

[0035] like Figure 1 and 4 As shown, a clamping block 4 is detachably connected within the screen slot 12. The clamping block 4 forms a clamping opening 42 inside the screen slot 12 for holding the screen. The detachable connection of the clamping block 4 means that the connection between the clamping block 4 and the screen slot 12 is non-fixed, specifically achieved through a snap-fit ​​or sliding insertion method, allowing the clamping block 4 to be removed from the slot or reinstalled. The clamping opening 42 is a closed or semi-closed space formed by the clamping block 4 or the clamping block 4 and the inner wall of the screen slot 12. It can be implemented using a U-shaped or C-shaped cross-section structure, constraining the edge of the screen through the cooperation between the clamping block 4 and the inner wall of the slot. Specifically, the clamping block 4 is configured as a modular component independent of the screen slot 12, embedded inside the slot through snap-fit ​​or sliding. When the screen is inserted into the slot, the clamping opening 42 formed between the clamping block 4 and the side wall of the slot exerts bidirectional pressure on the screen, the magnitude of which is determined by the clearance between the clamping block 4 and the slot. The removal of clamp 4 is accomplished by releasing the latch or sliding out of the limiting structure, allowing for the replacement of clamp 4 of different sizes according to the thickness of the screen, or adjusting the installation position of clamp 4 in the slot to change the effective width of clamping opening 42.

[0036] Compared to existing technologies, traditional screen sockets use a welded or one-piece molded fixed clamping structure, which cannot adapt to the installation requirements of screens of different thicknesses. This solution achieves quick replacement of the clamping structure through a detachable clamp block 4, avoiding the problem of repeatedly purchasing sockets due to changes in screen size. At the same time, the design of the clamping port 42 built into the slot eliminates the occupation of cable routing space by external clamps, making the overall connection between the screen and the socket more compact. Through the above technical solution, this application solves the problem of loosening and falling off caused by the non-adjustable clamping structure after the screen is plugged in, and can adapt to various specifications of screens with thicknesses ranging from 5 mm to 15 mm, including at least two specifications of screens. The modular design of the clamp block 4 simplifies the installation process, and operators can replace the clamp block 4 without tools, reducing maintenance costs. The built-in clamping port 42 avoids compression of the cable routing channel during screen installation, ensuring the separate arrangement of power cables and data cables.

[0037] In a further embodiment, the clamping block 4 is constructed as a U-shaped clamping block, with its U-shaped opening forming a clamping opening 42; a first hook 41 is provided at the lower end of the U-shaped clamping block, and a slot 122 adapted to the first hook 41 is provided at the bottom of the screen slot 12, with the first hook 41 engaging with the slot 122 to restrict the U-shaped clamping block from coming out of the screen slot 12.

[0038] The U-shaped clamping block refers to an elastic clamping component with a U-shaped opening. It can be injection molded from polycarbonate or nylon material, utilizing the elastic deformation capability of the U-shaped opening to clamp screens of varying thicknesses. The first hook 41 is a barb structure located at the lower end of the U-shaped clamping block. It can be a protruding structure integrally formed with the U-shaped clamping block, and its axial fixation is achieved through mechanical locking between the hook and the latch 122. The latch 122 is a groove at the bottom of the screen slot 12, which can be a rectangular or trapezoidal cross-section groove. Its dimensions form a clearance fit with the hook portion of the first hook 41, allowing the hook to be inserted vertically and thus creating a limiting position. Specifically, the U-shaped opening of the U-shaped clamping block elastically expands when the screen is inserted, allowing the width of the clamping opening 42 to adapt to the screen thickness, preventing clamping failure due to an excessively thick screen. After the first hook 41 is inserted into the bayonet 122, its hook portion forms mechanical interference with the inner wall of the bayonet 122, restricting the axial displacement of the clamping block within the screen slot 12 and preventing the clamping block from detaching from the slot due to external force. During disassembly, the clamping block can be removed from the slot by pulling the first hook 41 upwards to disengage it from the bayonet 122, enabling quick maintenance and replacement. Through the above technical solution, this application solves the problems of unstable installation, inconvenient disassembly, and inability to adapt to screens of different thicknesses in the screen clamping structure. It achieves reliable fixation of the clamping block within the slot, while allowing for quick installation and removal of the clamping block through manual operation.

[0039] like Figure 1 and 2As shown, the mounting part 11 has second hooks 111 on its opposite side walls for engaging with the bottom surface of the tabletop. The second hook 111 refers to a hook-shaped protrusion located on the edge of the side wall of the mounting part 11. It can be injection molded from elastic plastic or metal, and its cross-sectional shape can be triangular, trapezoidal, or arc-shaped, with the end forming an engaging surface. This structure achieves self-locking by using the rebound force generated by material deformation to form a contact engagement between the hook and the edge of the tabletop bottom surface. The opposite side walls of the mounting part 11 refer to the symmetrically distributed walls on both sides of the extension structure at the bottom of the socket body 1 for inserting into the tabletop opening. These can be implemented using a one-piece molded shell structure, with the distance between the two side walls slightly larger than the width of the tabletop opening, allowing a clearance fit between the side walls and the tabletop after the mounting part 11 is inserted into the table hole. This design, through the symmetrically distributed second hooks 111 on both sides, forms a bidirectional constraint, preventing deflection caused by unilateral force. When the mounting part 11 is inserted into the tabletop opening, the hook body of the second hook 111 contacts the edge of the bottom surface of the tabletop and undergoes elastic deformation until the hook end of the hook body completely crosses the edge of the tabletop and returns to its original state. At this time, the hook surface and the bottom surface of the tabletop form a vertical limit.

[0040] In a further embodiment, multiple second hooks 111 at different heights are constructed on the opposite side walls of the mounting section 11.

[0041] The multiple second hooks 111 at different heights refer to at least two hooks spaced apart along the height direction of the side wall of the mounting part 11, forming multiple engagement points through a stepped arrangement. This design allows the mounting part 11 to match variations in tabletop thickness by selecting hooks of different heights, achieving stable locking without adjusting the overall socket structure. Specifically, when the mounting part 11 is inserted into the tabletop opening, the gap between the bottom surface of the tabletop and the side wall of the mounting part 11 is filled by the hook portions of the second hooks 111. For thicker tabletops, hooks with lower heights can be selected for engagement, increasing the contact area between the hook portion and the bottom surface of the tabletop, while hooks with higher heights are compressed inwards due to pressure from the inner wall of the tabletop hole. For thinner tabletops, hooks with higher heights are selected, while hooks with lower heights are positioned below the tabletop to prevent engagement failure due to excessive gaps. Through the stepped layout of multiple sets of hooks, the mounting part 11 can cover tabletops of varying thicknesses.

[0042] Compared to existing technologies, traditional sockets typically only have hooks of a single height on both sides of the mounting part 11. When the thickness of the tabletop exceeds the design range of the hooks, it is necessary to replace the socket with a different specification or add shims for adjustment. This solution, however, expands the compatibility range of the mounting part 11 through a multi-height hook physical structure, achieving self-adaptive snap-fit ​​without auxiliary components, significantly reducing installation steps and improving adaptability. Through the above technical solution, this application solves the installation compatibility problem caused by the single hook height limitation of sockets, enabling the same socket to adapt to tabletops of different thicknesses while ensuring snap-fit ​​stability. During installation, there is no need to measure the tabletop thickness or adjust the hook position; simply insert the mounting part 11 into the tabletop opening, and it will naturally snap into the corresponding height hook for quick installation.

[0043] like Figure 4 and 5As shown, the socket body 1 includes a base housing 13 and a top cover housing 14 fixed to the base housing 13. A base partition 15 is provided on the base housing 13, and a base cavity 131 is formed between the base partition 15 and the base housing 13. A plurality of first power-taking modules 51 are installed in the base cavity 131. A first power-taking panel 21 covering the plurality of first power-taking modules is provided at the bottom of the base housing 13. A top cover cavity is provided inside the top cover housing 14, and a plurality of second power-taking modules 52 are installed in the top cover cavity. A top cover partition 16 or mounting bracket 17 for installing the second power-taking modules 52 and closing the top cover cavity is provided inside the top cover cavity. Second power-taking panels 22 covering the plurality of second power-taking modules are provided on the two side walls of the top cover housing 14. The base housing 13 refers to the bottom support structure that supports the mounting part 11. It can be injection molded from high-strength engineering plastic to provide mechanical support and form the base chamber 131. The base partition 15 is a component positioned above the base housing 13, and can be made of metal or flame-retardant composite material. The base chamber 131 is the enclosed space between the base partition 15 and the base housing 13. It can be formed into a regular geometric shape through injection molding and is used to centrally arrange the first power-collecting module 51 and connect to the bottom power-collecting panel. The top cover housing 14 is the outer shell component covering the base housing 13, used to support the screen slot 12. It can be fixedly connected to the base housing 13 by clips or screws to form the top cover chamber and install the side wall power-collecting panel. The top cover partition 16 or mounting bracket 17 is a component positioned at the bottom or inside the top cover chamber. The top cover chamber is the independent space between the top cover partition 16 or mounting bracket 17 and the top cover housing 14, used to accommodate the second power-collecting module 52 and connect to the side wall power-collecting panel. The first power supply module 51 refers to a power socket assembly installed in the base cavity 131. Specifically, it can be a standard five-hole socket, a national standard socket, or a USB charging module, used to provide power output through the bottom power supply panel. The second power supply module 52 refers to an extended power supply assembly installed in the top cover cavity. Specifically, it can also be a standard five-hole socket, a national standard socket, or a USB charging module, used to achieve multi-directional power supply through the side wall power supply panel.

[0044] Specifically, the base housing 13 and the top cover housing 14 form a layered structure through the base partition 15 and the top cover partition 16 or mounting bracket 17, and the base chamber 131 and the top cover chamber are completely isolated in physical space. The first power supply module 51 is centrally arranged inside the base chamber 131, with its bottom power supply panel directly facing the space under the tabletop, facilitating connection to the ground power cord or concealed wiring. The second power supply module 52 is independently installed in the top cover chamber, with its side wall power supply panels distributed on both sides of the socket, capable of simultaneously powering different devices on both sides of the screen. The power supply panels at the bottom of the base housing 13 and the side wall power supply panels form a three-dimensional power supply layout, adaptable to the installation requirements of tabletops of different thicknesses. The separation design of the top cover chamber and the base chamber 131 allows the upper and lower power supply lines to be routed in layers inside the socket, avoiding cable crossover interference and improving heat dissipation efficiency. Through the above technical solution, this application achieves physical isolation and layered wiring of the power supply modules, effectively reducing electromagnetic interference and improving heat dissipation efficiency. The base partition 15, top cover partition 16, or mounting bracket 17 serve as supporting components, enhancing the overall structural strength of the socket and ensuring the stability of the screen slot 12 under lateral loads. The layered chamber structure provides directional routing channels for internal wiring, allowing power and data cables to be arranged in an orderly manner inside the socket, preventing cable tangling from affecting the stability of the screen connection.

[0045] In summary, the socket structure with screen slot 12 and its installation components provided in this application achieve standardized cable routing by connecting the wiring holes 3 on the upper and lower ends of the socket body 1, avoiding cable tangling in the screen insertion area. At the same time, the multi-height hook structure adapts to the installation needs of tabletops of different thicknesses, which has the advantages of improving electrical safety and spatial adaptability.

[0046] 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.

[0047] 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. A power-taking end face: A socket structure with a screen slot, comprising a socket body (1), wherein the lower part of the socket body (1) is provided with a mounting part (11) for extending into a table hole, and the upper end is provided with a screen slot (12) for detachably connecting a screen, and power-taking end faces are provided on the socket body (1) on both sides of the screen slot (12) and on the bottom surface of the mounting part (11); characterized in that: The socket body (1) has a wiring hole (3) through which the power supply line passes, and the wiring hole (3) connects the upper and lower end faces of the socket body (1).

2. Power-taking end face. The socket structure with screen slot according to claim 1 is characterized in that: The wiring hole (3) is located at the end of the socket body (1), with its lower end opening on the bottom surface of the mounting part (11) and its upper end opening at the bottom of the screen slot (12). The screen slot (12) has a flared opening (121) at its end near the wiring hole (3), and the flared opening (121) is a recessed space from the slot of the screen slot (12) towards the front and rear sides of the socket body (1).

3. Power-taking end face. The socket structure with screen slot according to claim 1 or 2 is characterized in that: A clamping block (4) is detachably connected inside the screen slot (12), and the clamping block (4) is used to form a clamping opening (42) inside the screen slot (12) for clamping the screen.

4. Power-taking end face. The socket structure with screen slot according to claim 3 is characterized in that: The clamping block (4) is constructed as a U-shaped clamping block, and its U-shaped opening constitutes the clamping opening; the lower end of the U-shaped clamping block is provided with a first hook (41), and the bottom of the screen slot (12) is provided with a slot (122) adapted to the first hook (41). The first hook (41) is engaged in the slot (122) to restrict the U-shaped clamping block from coming out of the screen slot (12).

5. Power-taking end face. The socket structure with screen slot according to claim 1 is characterized in that: The mounting part (11) has second hooks (111) on its opposite side walls for engaging the bottom surface of the table.

6. Power-taking end face. The socket structure with screen slot according to claim 5 is characterized in that: The mounting part (11) has multiple second hooks (111) at different heights on its opposite side walls.

7. Power-taking end face. The socket structure with screen slot according to claim 1 is characterized in that: The socket body (1) includes a base housing (13) and a top cover housing (14) fixed on the base housing (13); a base partition (15) is provided on the base housing (13), and a base cavity (131) is formed between the base partition (15) and the base housing (13); a plurality of first power supply modules (51) are installed in the base cavity (131); and a first power supply panel (21) covering the electrical components of the plurality of first power supply modules is provided at the bottom of the base housing (13). The top cover housing (14) has a top cover chamber inside, and multiple second power supply modules (52) are installed in the top cover chamber; the top cover chamber is provided with a top cover partition (16) or mounting bracket (17) for installing the second power supply modules (52) and sealing the top cover chamber; the two side walls of the top cover housing (14) are provided with second power supply panels (22) covering the multiple second power supply modules.