Assembly type socket with extremely narrow frame

By employing a detachable snap-fit ​​structure and fasteners in the socket, the problem of easy deformation and misalignment of ultra-narrow bezel sockets during assembly is solved, achieving efficient and stable assembly and reducing production costs.

CN224067949UActive Publication Date: 2026-03-31GUANGDONG PROVINCE LIANSU ELECTRIC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

In existing technologies, ultra-narrow bezel sockets are prone to deformation and misalignment during assembly, resulting in large assembly gaps, affecting appearance and structural stability, leading to high defect rates, high production costs, and low assembly efficiency.

Method used

The first snap-fit ​​structure enables a detachable connection between the panel and the frame, and the second snap-fit ​​structure enables a detachable connection between the socket body and the frame. The first and second connectors in the fastening structure are used to clamp each other to prevent the frame from shifting or deforming.

Benefits of technology

It improves the assembly efficiency and yield of sockets, reduces assembly gaps, enhances structural stability and appearance flatness, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an extremely narrow frame assembly type socket, which comprises a socket body, a panel and a frame, a socket assembly is arranged in the socket body, the panel is configured to be capable of covering the socket body and embedded in the frame, the panel is detachably connected with the frame through at least one first clamping structure, and the frame is detachably connected with the socket assembly. The frame is detachably connected with the socket body through at least one second clamping structure; the at least one fastening structure comprises a first connecting piece and a second connecting piece, the first connecting piece is located on the frame, the second connecting piece is located on the socket body, and the first connecting piece and the second connecting piece are configured to be capable of being mutually clamped so that the frame and the socket body can be locked; the detachable connection of the panel, the frame and the socket body is realized through the first clamping structure and the second clamping structure, and the locking of the frame and the socket body is realized through the fastening structure, thereby preventing the frame from shifting in the assembly or use process, and solving the problem of poor assembly effect caused by easy deformation of a narrow frame during injection molding.
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Description

Technical Field

[0001] This utility model relates to the field of socket technology, and in particular to an ultra-narrow bezel assembled socket. Background Technology

[0002] As a crucial interface device connecting electrical equipment to the power supply system, power sockets play a vital role in modern home life. With the continuous improvement of people's quality of life and the increasing demand for personalization, sockets are no longer limited to their basic functional requirements. Their appearance design and color matching have also become important factors for consumers. Currently, the appearance design of sockets mainly adopts a combination of frame and middle panel. Through rich and varied colors and shapes, sockets can easily blend into various interior decoration environments and meet consumer requirements. In particular, with the rise of narrow frame design, not only is the overall appearance of the socket more exquisite and simple, but it also saves wall space and makes the wall look cleaner and more orderly. Narrow frame not only enhances the aesthetic value of the socket, but also meets consumers' dual needs for space utilization and visual aesthetics.

[0003] During manufacturing and assembly, traditional wide-bezel sockets can be securely connected using clips or screws. However, ultra-narrow bezels, due to the significant reduction in material width and assembly space, increase the difficulty of assembling the bezel and the middle panel. Currently, three main technical methods are used to fix the ultra-narrow bezel to the middle panel: First, strong double-sided adhesive is applied to the inside of the bezel for bonding. However, this not only increases the investment in adhesive application and specialized adhesive equipment, but also extends the production cycle due to the adhesive curing time, increases material costs, and is prone to uneven bonding and gaps; Second, ultrasonic welding is used to seamlessly fuse the bezel and the middle panel, but this requires high-performance equipment. The high cost of ultrasonic equipment and specialized welding heads, coupled with stringent requirements for operational precision, makes the first method less effective. Secondly, while the upper and lower snap-fit ​​structure eliminates the need for auxiliary materials and equipment required by the first two methods, thus solving the problems of slow production, high investment, and slow assembly efficiency, the snap-fit ​​structure introduces assembly gaps. This makes the frame prone to misalignment, leading to larger gaps that severely affect the overall flatness and structural stability of the socket. Furthermore, the extremely narrow frame is prone to deformation during injection molding due to uneven material shrinkage, resulting in large gaps between the frame and the middle panel and base after assembly. This leads to poor assembly quality, rendering the product unusable and resulting in a high defect rate. Utility Model Content

[0004] The purpose of this utility model is to provide an ultra-narrow bezel assembled socket to solve the problems of large gaps after assembly, which are caused by the easy deformation and misalignment of the narrow bezel during injection molding when assembling sockets using the upper and lower snap-fit ​​structure in the prior art. This affects the overall appearance and structural stability of the socket, resulting in a high defect rate, high production cost, and low assembly efficiency.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0006] An ultra-narrow bezel assembled socket includes:

[0007] The socket body comprises a panel and a frame. The socket body contains a socket assembly. The panel is configured to cover the socket body and be embedded in the frame. The panel is detachably connected to the frame via at least one first snap-fit ​​structure. The frame is detachably connected to the socket body via at least one second snap-fit ​​structure.

[0008] At least one fastening structure, each of the fastening structures including a first connector and a second connector, the first connector being located on the frame and the second connector being located on the socket body, the first connector and the second connector being configured to interlock with each other to lock the frame and the socket body, thereby preventing frame displacement and deformation.

[0009] Based on the above technical means, the panel and frame are detachably connected through the first snap-fit ​​structure, and the socket body and frame are detachably connected through the second snap-fit ​​structure. This facilitates the assembly, maintenance, and replacement of each component, resulting in high assembly efficiency and ease of use. At the same time, the first and second connectors in the fastening structure interlock with each other, locking the frame and socket body together and preventing the frame from shifting during assembly or use. This solves the problem of poor assembly results caused by the easy deformation of narrow frame injection molding. This allows the panel, frame, and socket body to fit together tightly, resulting in small gaps after assembly. This improves the overall flatness of the socket's appearance and the stability of its structure, resulting in a high yield rate, high assembly efficiency, and reduced production costs.

[0010] Furthermore, the first connector includes a plug, which is fixed to the frame, and a thickened rib is fixed on the side wall of the plug along its insertion direction; the second connector is a slot formed on the socket body; the plug is configured to be inserted into the slot along its insertion direction, and when the plug is inserted into the slot, the thickened rib can be clamped against the inner wall of the slot to generate compression, thereby locking the frame and the socket body.

[0011] Based on the above technical means, by increasing the thickness of the plug by thickening the ribs, when the plug is inserted into the slot on the socket body along the insertion direction, the thickened ribs can be tightly clamped with the inner wall of the slot, generating a squeezing force perpendicular to the insertion direction of the plug, thereby locking the frame to the socket body, preventing the frame from shifting or deforming, so that the panel, frame and socket body can fit tightly together, the gap after assembly is extremely small, enhancing the stability of the connection, the structure is simple, the assembly accuracy and efficiency are improved, and the stability, durability and flatness of the overall socket structure are ensured.

[0012] Furthermore, the first snap-fit ​​structure includes a first snap-fit ​​component and a second snap-fit ​​component, the first snap-fit ​​component being located on the panel and the second snap-fit ​​component being located on the frame, the first snap-fit ​​component and the second snap-fit ​​component being configured to snap-fit ​​into each other.

[0013] Based on the above-mentioned technical means, the first and second snap-fit ​​components interlock to achieve a quick and stable connection between the panel and the frame. This not only simplifies the assembly process and improves assembly efficiency, but also ensures a tight fit between the panel and the frame, enhancing the stability and durability of the overall socket structure, while maintaining a neat and beautiful appearance.

[0014] Furthermore, the second snap-fit ​​structure includes a third snap-fit ​​member and a fourth snap-fit ​​member, the third snap-fit ​​member being located on the frame and the fourth snap-fit ​​member being located on the socket body, the third snap-fit ​​member and the fourth snap-fit ​​member being configured to snap-fit ​​into each other.

[0015] Based on the aforementioned technical means, the third and fourth snap-fit ​​components interlock to achieve a quick and stable connection between the frame and the socket body. This not only simplifies the assembly process and improves assembly efficiency, but also ensures a tight fit between the frame and the socket body, enhancing the stability and durability of the overall socket structure while maintaining a neat and aesthetically pleasing appearance.

[0016] Furthermore, a sliding block is installed on the panel, and a limiting groove corresponding to the sliding block is formed on the frame. The sliding block is configured to slide into the limiting groove along the insertion direction of the plug.

[0017] Based on the above technical means, the cooperation between the sliding block and the limiting groove allows the panel to be smoothly and stably embedded into the frame along the insertion direction of the plug. This not only has a guiding function, making the connection between the panel and the frame more precise and stable, but also limits the panel within the frame, preventing the panel from shaking or falling off during use. This further ensures the overall stability and safety of the socket. The structure is simple and easy to install, improving the convenience and efficiency of assembly and ensuring the overall assembly quality of the socket.

[0018] Furthermore, the border is a rectangular border, and the panel is adapted to the rectangular border.

[0019] Based on the above technical means, the rectangular frame structure has advantages such as good stability, easy standardization of production, convenient maintenance and replacement, high aesthetics and coordination, high space utilization, and easy processing and installation. It can ensure that the socket is not easily deformed or damaged during use, and the panel design is compatible with the rectangular frame, so that the panel can be tightly and firmly installed on the frame, improving the overall assembly accuracy and structural stability of the socket.

[0020] Furthermore, the number of sliding blocks is two or more, and each sliding block is evenly and symmetrically distributed on both long sides of the panel.

[0021] Based on the above technical means, by using two or more sliding blocks that are evenly and symmetrically distributed on both sides of the long side of the panel, the stability and balance of the connection between the panel and the frame can be further enhanced, ensuring that the panel is subjected to uniform force when sliding into the frame, reducing the risk of deformation or damage caused by excessive force on one side, and improving the stability and smoothness of the installation process, making the socket more durable and easier to maintain.

[0022] Furthermore, the two short sides of the panel are respectively formed with limiting protrusions, and the frame is formed with limiting grooves that respectively engage with each of the limiting protrusions.

[0023] Based on the above technical means, the cooperation between the limiting protrusion and the limiting groove enables the panel to be smoothly and stably embedded into the frame along the insertion direction of the plug, thus limiting the panel within the frame. This further ensures the stability of the connection between the panel and the frame, guarantees the overall stability and safety of the socket, and features a simple structure, convenient installation, and ensures the overall assembly quality of the socket.

[0024] Furthermore, the first snap-fit ​​structure, the second snap-fit ​​structure, and the fastening structure are evenly distributed on both long sides of the panel.

[0025] Based on the aforementioned technical means, the first snap-fit ​​structure, the second snap-fit ​​structure, and the fastening structure are evenly distributed on both sides of the long side of the panel. This not only enhances the connection strength and stability between the panel and the frame, ensuring the socket is firmly installed in various usage environments, but also improves the overall structural balance and aesthetics. At the same time, this design also facilitates even force distribution during installation and disassembly, reducing the difficulty of operation.

[0026] Furthermore, a notch is formed on the side of the frame.

[0027] Based on the aforementioned technical means, in actual use, the notch allows for easy prying of the frame without the need for complex tools when disassembling or installing the panel. This allows the third and fourth clips to be separated, thus simplifying the operation process, reducing the risk of damage caused by improper tool use, and significantly improving the maintainability and durability of the socket. It also makes it easier to replace the panel, inspect the internal circuitry, and perform daily cleaning, thereby extending the lifespan of the socket and improving its overall practicality and user experience.

[0028] The beneficial effects achieved by this utility model are:

[0029] This utility model achieves a detachable connection between the panel and the frame through a first snap-fit ​​structure, and a detachable connection between the socket body and the frame through a second snap-fit ​​structure. This facilitates the assembly, maintenance, and replacement of each component, resulting in high assembly efficiency and ease of use. Simultaneously, the first and second connectors in the fastening structure interlock, locking the frame and socket body together and preventing the frame from shifting during assembly or use. This solves the problem of poor assembly results caused by the easy deformation of narrow frame injection molding. The result is a tight fit between the panel, frame, and socket body, with minimal gaps after assembly, improving the overall flatness of the socket's appearance and the stability of its structure. It also boasts a high yield rate, high assembly efficiency, and reduced production costs. Attached Figure Description

[0030] Figure 1 This is an exploded view of the entire utility model;

[0031] Figure 2 This is a schematic diagram of the structure of the panel and frame of this utility model.

[0032] Figure 3 This utility model Figure 2 Enlarged view of A in the middle;

[0033] Figure 4 This is a schematic diagram of the structure of the panel of this utility model;

[0034] Figure 5 This is a schematic diagram of the frame structure of this utility model;

[0035] Figure 6 This is a schematic diagram of the first snap-fit ​​structure of this utility model;

[0036] Figure 7 This is a schematic diagram of the second snap-fit ​​structure of this utility model;

[0037] Figure 8 This is a schematic diagram of the fastening structure of this utility model.

[0038] Among them, 1-socket body; 11-socket assembly; 2-panel; 3-frame; 31-notch; 4-first snap-fit ​​structure; 41-first snap-fit ​​piece; 42-second snap-fit ​​piece; 5-second snap-fit ​​structure; 51-third snap-fit ​​piece; 52-fourth snap-fit ​​piece; 6-fastening structure; 61-first connector; 611-insertion block; 612-thickened rib; 62-second connector; 71-sliding block; 72-limiting groove; 73-limiting protrusion; 74-limiting slot.

[0039] The accompanying drawings are for illustrative purposes only and should not be construed as limiting the scope of this patent. To better illustrate this embodiment, some components in the drawings may be omitted, enlarged, or reduced, and do not represent the actual dimensions of the product. It is understandable to those skilled in the art that some well-known structures and their descriptions may be omitted in the drawings. The same or similar reference numerals correspond to the same or similar components. The terms describing positional relationships in the drawings are for illustrative purposes only and should not be construed as limiting the scope of this patent. Detailed Implementation

[0040] It should be noted that, unless otherwise specified, the embodiments and technical features in the embodiments of this application can be combined with each other, and the detailed descriptions in the specific embodiments should be understood as explanations of the purpose of this application and should not be regarded as undue limitations on this application.

[0041] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the specific technical solutions of this application will be further described in detail below with reference to the accompanying drawings of the embodiments of this application. The following embodiments are used to illustrate this application, but are not intended to limit the scope of this application.

[0042] In the embodiments of this application, 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. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the embodiments of this application, unless otherwise stated, "multiple" means two or more.

[0043] In the embodiments of this application, unless otherwise explicitly specified and limited, the term "connection" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral part; it can be a direct connection or an indirect connection through an intermediate medium.

[0044] In embodiments of this application, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.

[0045] In the embodiments of this application, the terms "exemplary" or "for example" are used to indicate that something is an example, illustration, or description. Any embodiment or design that is described as "exemplary" or "for example" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design. Specifically, the use of the terms "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.

[0046] The technical solution of this utility model will be described in detail below with reference to the accompanying drawings.

[0047] Example 1

[0048] like Figure 1 , Figure 6 , Figure 7 and Figure 8 As shown, an ultra-narrow bezel assembled socket includes: a socket body 1, a panel 2, and a frame 3. A socket assembly 11 is installed inside the socket body 1. The panel 2 is configured to cover the socket body 1 and be embedded in the frame 3. The panel 2 is detachably connected to the frame 3 via at least one first snap-fit ​​structure 4. The frame 3 is detachably connected to the socket body 1 via at least one second snap-fit ​​structure 5. At least one fastening structure 6 is included, each fastening structure 6 including a first connector 61 and a second connector 62. The first connector 61 is located on the frame 3, and the second connector 62 is located on the socket body 1. The first connector 61 and the second connector 62 are configured to snap together to lock the frame 3 and the socket body 1, thereby preventing the frame 3 from shifting or deforming.

[0049] In this embodiment, the panel 2 and the frame 3 are detachably connected through the first snap-fit ​​structure 4, and the socket body 1 and the frame 3 are detachably connected through the second snap-fit ​​structure 5. This facilitates the assembly, maintenance, and replacement of each component, resulting in high assembly efficiency and ease of use. Simultaneously, the first connector 61 and the second connector 62 in the fastening structure 6 interlock with each other, locking the frame 3 and the socket body 1 together. This prevents the frame 3 from shifting or becoming displaced during assembly or use, solving the problem of poor assembly results caused by the easy deformation of narrow frame injection molding. Specifically, the socket assembly 11 provides power connection functionality. The socket assembly 11 includes a wiring module and a switch module. The panel 2 has socket holes and button holes. When the panel 2 covers the socket body 1, the socket holes correspond to the wiring module, and the button holes correspond to the switch module. The panel 2 not only serves an aesthetic purpose but also protects the socket assembly 11 from direct contact or external damage. The frame 3 is extremely narrow, enhancing the overall aesthetics of the socket and saving installation space. In actual assembly, the socket body 1 is installed on the wall. The panel 2 is first embedded in the frame 3 and then quickly and detachably connected to the frame 3 via the first snap-fit ​​structure 4 to form a decorative cover. The first snap-fit ​​structure 4 improves the stability of the connection. Then, the decorative cover is placed on the socket body 1 and quickly and detachably connected to the socket body 1 via the second snap-fit ​​structure 5, completing the overall socket assembly. Simultaneously, the frame 3 is locked to the socket body 1 by the fastening structure 6. Multiple second snap-fit ​​structures 5 and fastening structures 6 further enhance the connection stability. Each fastening structure 6 can be located in a deformable position on the frame 3 to increase the assembly stability of the frame 3. Furthermore, the assembly of the components requires no additional adhesives or welding processes, simplifying the assembly process, improving assembly efficiency, and facilitating maintenance and replacement. When the first connector 61 and the second connector 62 are locked together, the frame 3 and the socket body 1 are locked together, preventing the frame 3 from shifting or becoming displaced during assembly or use. This solves the problem that the extremely narrow frame is prone to deformation during injection molding, resulting in poor assembly effect or even unusability. It allows the panel 2, frame 3 and socket body 1 to fit together tightly, with minimal gaps after assembly. This improves the flatness of the overall appearance of the socket and the stability of the structure, reduces the high defect rate of finished products caused by excessive assembly gaps, achieves an efficient and convenient assembly process, reduces production costs and improves the yield rate.

[0050] Example 2

[0051] like Figures 1-8 As shown, the difference between Example 1 and Example 2 is that:

[0052] like Figure 3 and Figure 8As shown, the first connector 61 includes a plug 611, which is fixed to the frame 3, and a thickened rib 612 is fixed on the side wall of the plug 611 along its insertion direction; the second connector 62 is a slot formed on the socket body 1; the plug 611 is configured to be inserted into the slot along its insertion direction, and when the plug 611 is inserted into the slot, the thickened rib 612 can be clamped with the inner wall of the slot to generate compression, thereby locking the frame 3 and the socket body 1.

[0053] In this embodiment, the thickness of the plug 611 is increased by thickening the rib 612. When the plug 611 is inserted into the slot on the socket body 1 along the insertion direction, the thickening rib 612 can be tightly clamped with the inner wall of the slot, generating a pressing force perpendicular to the insertion direction of the plug 611, thereby locking the frame 3 and the socket body 1, preventing the frame 3 from shifting or deforming, so that the panel 2, the frame 3 and the socket body 1 can fit tightly together, and the gap after assembly is extremely small.

[0054] Specifically, the plug 611 is formed on the frame 3. A thickened rib 612 is fixed to the side wall of the plug 611 along the insertion direction. The thickened rib 612 not only increases the structural strength of the plug 611, but also generates a pressing force perpendicular to the insertion direction of the plug 611 when it is inserted into the slot. This locks the frame 3 onto the socket body 1, resulting in minimal gaps and a more stable connection after assembly of the panel 2, frame 3, and socket body 1. In practical applications, when the plug 611 is inserted into the slot along its insertion direction, the thickened rib 612 will tightly press against the inner wall of the slot, thus firmly fixing the frame 3 onto the socket body 1. This enhances the stability of the connection, prevents misalignment of the frame 3 during use, and avoids poor assembly results due to injection molding deformation. It improves assembly precision and efficiency, simplifies the assembly process, reduces production costs, extends the overall service life of the socket, and reduces the failure rate caused by loosening or deformation of the frame 3. This ensures the stability, durability, and flatness of the overall socket structure.

[0055] The remaining features and working principles of this embodiment are the same as those of Embodiment 1.

[0056] Example 3

[0057] like Figures 1-8 As shown, the difference between Example 1 and Example 2 is as follows:

[0058] like Figure 3 , Figure 4 and Figure 6As shown, the first snap-fit ​​structure 4 includes a first snap-fit ​​member 41 and a second snap-fit ​​member 42. The first snap-fit ​​member 41 is located on the panel 2, and the second snap-fit ​​member 42 is located on the frame 3. The first snap-fit ​​member 41 and the second snap-fit ​​member 42 are configured to snap together. In this embodiment, the first snap-fit ​​member 41 is integrally formed with the panel 2, and the second snap-fit ​​member 42 is integrally formed with the frame 3. Specifically, in actual use, the first snap-fit ​​member 41 can be a buckle and / or a protrusion, and the corresponding second snap-fit ​​member 42 can be a buckle and / or a protrusion. When the first snap-fit ​​member 41 is a buckle, the second snap-fit ​​member 42 is... Part 42 is a protrusion that can engage with the buckle. When the first engaging part 41 is a protrusion, the second engaging part 42 is a buckle that can engage with the protrusion. When it is necessary to install the panel 2 onto the frame 3, simply align the panel 2 with the frame 3 and apply force to make the first engaging part 41 and the second engaging part 42 quickly and securely engage. No additional screws or other fasteners are required, which simplifies the installation steps, facilitates disassembly and maintenance, reduces the time and labor costs required for assembly, improves assembly efficiency, ensures the overall stability and durability of the socket, and maintains a neat and beautiful appearance.

[0059] like Figure 1 , Figure 5 and Figure 7 As shown, the second snap-fit ​​structure 5 includes a third snap-fit ​​member 51 and a fourth snap-fit ​​member 52. The third snap-fit ​​member 51 is located on the frame 3, and the fourth snap-fit ​​member 52 is located on the socket body 1. The third snap-fit ​​member 51 and the fourth snap-fit ​​member 52 are configured to snap together. In this embodiment, the third snap-fit ​​member 51 is integrally formed with the frame 3, and the fourth snap-fit ​​member 52 is integrally formed with the socket body 1. Specifically, in actual use, the third snap-fit ​​member 51 can be a buckle and / or a protrusion, and the corresponding fourth snap-fit ​​member 52 can be a buckle and / or a protrusion. When the third snap-fit ​​member 51 is a buckle, the fourth snap-fit ​​member 52... The connector 52 is a protrusion that can engage with the buckle. When the third connector 51 is a protrusion, the fourth connector 52 is a buckle that can engage with the protrusion. When the frame 3 needs to be installed on the socket body 1, simply align the frame 3 with the socket body 1 and apply force to make the third connector 51 and the fourth connector 52 quickly and securely engage. No additional screws or other fasteners are required, which simplifies the installation steps, facilitates disassembly and maintenance, reduces the time and labor costs required for assembly, improves assembly efficiency, ensures the overall stability and durability of the socket, and maintains a neat and beautiful appearance.

[0060] The remaining features and working principles of this embodiment are the same as those of Embodiment 1 or Embodiment 2.

[0061] Example 4

[0062] like Figures 1-8 As shown, the difference between this embodiment and embodiment 1, 2, or 3 is as follows:

[0063] like Figure 4 and Figure 5 As shown, a sliding block 71 is installed on the panel 2, and a limiting groove 72 corresponding to the sliding block 71 is formed on the frame 3. The sliding block 71 is configured to slide into the limiting groove 72 along the insertion direction of the plug 611. In this embodiment, the cooperation between the sliding block 71 and the limiting groove 72 enables the panel 2 to be smoothly and stably embedded into the frame 3 along the insertion direction of the plug 611. This not only has a guiding function, making the engagement between the panel 2 and the frame 3 more precise and stable, but also limits the panel 2 within the frame 3, preventing the panel 2 from shaking or falling off during use. This further ensures the overall stability and safety of the socket. The structure is simple and easy to install, improving the convenience and efficiency of assembly and ensuring the overall assembly quality of the socket.

[0064] Furthermore, as a preferred embodiment of this invention, the frame 3 is a rectangular frame, and the panel 2 is adapted to the rectangular frame. The structure of the rectangular frame 3 has the advantages of good stability, easy standardization of production, easy maintenance and replacement, high aesthetics and coordination, high space utilization, and easy processing and installation. It can ensure that the socket is not easily deformed or damaged during use. Moreover, the design of the panel 2 is adapted to the rectangular frame, so that the panel 2 can be tightly and firmly installed on the frame 3, which improves the overall assembly accuracy and structural stability of the socket.

[0065] Furthermore, as a preferred embodiment of this invention, the number of sliding blocks 71 is two or more, and each sliding block 71 is evenly and symmetrically distributed on both long sides of the panel 2. In this embodiment, by using two or more sliding blocks 71 evenly and symmetrically distributed on both long sides of the panel 2, the stability and balance of the connection between the panel 2 and the frame 3 can be further enhanced, ensuring that the panel 2 is subjected to uniform force when sliding into the frame 3, reducing the risk of deformation or damage caused by excessive force on one side, and improving the stability and smoothness of the installation process, making the socket more durable and easier to maintain.

[0066] like Figure 4 and Figure 5 As shown, limiting protrusions 73 are formed on the short sides of the two sides of the panel 2, and limiting grooves 74 are formed on the frame 3 to engage with each limiting protrusion 73. In this embodiment, the cooperation between the limiting protrusions 73 and the limiting grooves 74 enables the panel 2 to be smoothly and stably embedded into the frame 3 along the insertion direction of the plug 611, thereby limiting the panel 2 within the frame 3. This further ensures the stability of the connection between the panel 2 and the frame 3, and ensures the overall stability and safety of the socket. The structure is simple, the installation is convenient, and the overall assembly quality of the socket is guaranteed.

[0067] like Figure 1-5As shown, the first snap-fit ​​structure 4, the second snap-fit ​​structure 5, and the fastening structure 6 are evenly distributed on both long sides of the panel 2. In this embodiment, the even distribution of the first snap-fit ​​structure 4, the second snap-fit ​​structure 5, and the fastening structure 6 on both long sides of the panel 2 not only enhances the connection strength and stability between the panel 2 and the frame 3, ensuring the secure installation of the socket in various usage environments, but also improves the overall structural balance and aesthetics. At the same time, this design also facilitates even force distribution during installation and disassembly, reducing the difficulty of operation.

[0068] The remaining features and working principles of this embodiment are consistent with those of Embodiment 1, Embodiment 2 or Embodiment 3.

[0069] Example 5

[0070] like Figures 1-8 As shown, the difference between this embodiment and embodiment 1, 2, 3, or 4 is as follows:

[0071] like Figure 1 , Figure 2 and Figure 5 As shown, a notch 31 is formed on the side of the frame 3. In this embodiment, during actual use, the notch 31 allows the frame 3 to be easily pried up with just fingers or simple tools when disassembling or installing the panel, without the need for complex tools. This separates the third clip 51 from the fourth clip 52, thereby disassembling the frame 3. This simplifies the operation process, reduces the risk of damage caused by improper use of tools, and significantly improves the maintainability and durability of the socket. It also makes it easier to replace the panel, inspect the internal circuit, and perform daily cleaning, thereby extending the lifespan of the socket and improving the overall practicality and user experience.

[0072] The sequence numbers of the embodiments in this application are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments. The above are merely preferred embodiments of this application and do not limit the patent scope of this application. Any equivalent structural or procedural transformations made based on the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.

Claims

1. An assembled socket with an extremely narrow frame, characterized in that, The utility model relates to a socket body (1), panel (2) and frame (3), socket component (11) is installed in the socket body (1), the panel (2) is configured to be able to cover on socket body (1) and is embedded in frame (3), the panel (2) is detachably connected with frame (3) through at least one first clamping structure (4), frame (3) is detachably connected with socket body (1) through at least one second clamping structure (5), At least one fastening structure (6), each fastening structure (6) includes a first connector (61) and a second connector (62), the first connector (61) is located on the frame (3), the second connector (62) is located on the socket body (1), the first connector (61) and the second connector (62) are configured to be clamped with each other to lock the frame (3) and the socket body (1), thereby preventing the frame (3) from being displaced and deformed. The first connector (61) includes an insertion block (611) fixed on the frame (3), and a thickened rib (612) is fixed on the side wall of the insertion block (611) in the insertion direction thereof; the second connector (62) is a clamping groove formed on the socket body (1); the insertion block (611) is configured to be inserted into the clamping groove in the insertion direction thereof, and when the insertion block (611) is inserted into the clamping groove, the thickened rib (612) can be clamped with the inner wall of the clamping groove to generate extrusion, thereby locking the frame (3) and the socket body (1).

2. The assembled socket with extremely narrow frame according to claim 1, characterized in that, The first clamping structure (4) includes a first clamping piece (41) and a second clamping piece (42), the first clamping piece (41) is located on the panel (2), and the second clamping piece (42) is located on the frame (3), the first clamping piece (41) and the second clamping piece (42) are configured to be clamped with each other.

3. The assembled socket with extremely narrow frame according to claim 1, characterized in that, The second clamping structure (5) includes a third clamping piece (51) and a fourth clamping piece (52), the third clamping piece (51) is located on the frame (3), and the fourth clamping piece (52) is located on the socket body (1), the third clamping piece (51) and the fourth clamping piece (52) are configured to be clamped with each other.

4. The assembled socket with extremely narrow frame according to claim 1, characterized in that, A sliding block (71) is mounted on the panel (2), and a limiting sliding groove (72) corresponding to the sliding block (71) is formed on the frame (3), and the sliding block (71) is configured to be slid into the limiting sliding groove (72) in the insertion direction of the insertion block (611).

5. The assembled socket with extremely narrow frame according to claim 2, characterized in that, The frame (3) is a rectangular frame, and the panel (2) is adapted to the rectangular frame.

6. The assembled socket with extremely narrow frame according to claim 5, characterized in that, The number of the sliding blocks (71) is two or more, and each sliding block (71) is uniformly and symmetrically distributed on the two long sides of the panel (2).

7. The assembled socket with extremely narrow frame according to claim 6, characterized in that, Limiting protrusions (73) are respectively formed on the two short sides of the panel (2), and limiting grooves (74) respectively clamped with the limiting protrusions (73) are formed on the frame (3).

8. The assembled socket with extremely narrow frame according to claim 6, characterized in that, Each first clamping structure (4), second clamping structure (5), and fastening structure (6) is uniformly distributed on the two long sides of the panel (2).

9. The assembled socket with extremely narrow frame according to claim 6, characterized in that, ​ 10. The assembled socket with extremely narrow frame according to claim 1, characterized in that, A notch (31) is formed in the side edge of the frame (3).