Rotary wire outlet structure, socket and socket assembling method

The spherical cavity formed by the first and second brackets allows the spherical mounting part of the power cord to rotate under the cooperation of the limiting notch and the limiting rib, which solves the problem of complex rotating cable outlet structure of sockets or electrical appliance terminals and realizes simple structure, convenient assembly and stable cable outlet adjustment.

CN121748860APending Publication Date: 2026-03-27QIONGWANG (NINGBO) TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

The existing rotating cable exit structure of sockets or appliance terminals is complex, resulting in high production costs, low efficiency, and susceptibility to failure.

Method used

The spherical cavity is formed by the first bracket and the second bracket. The spherical mounting part of the power cord rotates under the cooperation of the limiting notch and the limiting rib. The rotation stroke is limited by the first stop wall and the second stop wall, so as to realize the flexible adjustment of the power cord output direction.

Benefits of technology

The simplified structure reduces production costs, improves assembly efficiency, avoids wear and failure of rotating connection structures, and is suitable for various application scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a rotary wire outlet structure, a socket and a socket assembly method. The rotary wire outlet structure comprises a power line, a first bracket with a first hemispherical groove, and a second bracket with a second hemispherical groove and a limiting convex rib, one end of the power line is provided with a spherical installation part, and the surface is provided with a limiting notch with first and second stop walls. When the first support and the second support are folded, the first hemisphere groove and the second hemisphere groove define a spherical cavity for containing the installation part, and the limiting protruding rib extends into the limiting notch. And when the mounting part rotates in the spherical cavity, the limiting convex rib relatively rotates in the limiting notch, and the rotation stroke is limited between the two stop walls, so that the flexible adjustment of the outgoing direction of the power line is realized. The outlet direction of the socket adopting the rotary outlet structure is adjustable, the socket is convenient to assemble, high in reliability and low in production cost, and the problem that a traditional outlet structure in the socket is fixed in direction or complex and easy to damage is effectively solved.
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Description

Technical Field

[0001] This invention relates to the field of corded electrical appliances or corded sockets, specifically to a rotating cord outlet structure, a socket, and a socket assembly method. Background Technology

[0002] Currently, the power cords of existing electrical appliances or sockets typically use a side-exit structure. This means there's an opening on the side of the appliance or socket casing for the power cord to extend from, and the cord's exit position is fixed relative to the socket casing. In practical use, to adapt to various application scenarios, the power cord often needs to be bent for easy power connection. However, prolonged use may damage the power cord due to bending, affecting the lifespan of both the power cord and its connector.

[0003] Currently, some sockets with adjustable power cord output direction have appeared on the market. For example, the Chinese utility model patent with authorization announcement number CN210016032U, "A socket with rotating cable output and a socket with rotating cable output and cable clamping", includes the following technical solution: a first fixing part; a power cord, one end of which is provided with a second fixing part. The first fixing part has a concave structure / or convex structure on each side, and the second fixing part has a convex structure / or concave structure on each side that is nested and connected to the concave structure / or convex structure. Rotational engagement is achieved through the insertion between the convex structure and the concave structure. The second fixing part includes two interlocking first shells and second shells. The end of the power cord is clamped between the first shell and the second shell. As shown in its embodiment and accompanying drawings, the second fixing part is rotatably connected to the first fixing part through a rotating shaft bracket. In this solution, the structure for achieving rotating cable exit is complex, with many parts, most of which are separate. This results in high production costs and requires a significant amount of time for assembly (due to the numerous assembly steps and the high precision required for part positioning). Furthermore, when the cable swings in a non-rotational direction, it pulls on the shaft and shaft support, causing them to wear against each other and leading to rotational jamming or even breakage. If additional non-rotational direction limiting is required for the second fixing part, other limiting structures need to be added, making the socket structure even more complex.

[0004] Therefore, it is necessary to design a rotating cable exit structure for sockets or electrical appliance terminals that is simple in structure, easy to assemble, and stable in installation. Summary of the Invention

[0005] The purpose of this invention is to develop a rotating cable exit structure, a socket, and a socket assembly method to solve the problems of high production costs, low efficiency, and easy failure after long-term use caused by the complex rotating cable exit structure of existing sockets or electrical terminals.

[0006] This invention is achieved through the following technical solution: A rotating cable exit structure, comprising: A first support, wherein a first hemispherical groove is provided on the first support; The second bracket is provided with a second hemispherical groove and a limiting rib extending into the second hemispherical groove. A power cord has a spherical mounting part at one end. The surface of the mounting part has a limiting notch. The limiting notch has a first stop wall and a second stop wall that are arranged opposite to each other in the circumferential direction. When the first bracket and the second bracket are engaged, the first hemispherical groove and the second hemispherical groove form a spherical cavity to accommodate the mounting part, and the spherical cavity has an outlet for the power cord to extend outward and swing within a preset range to drive the mounting part to rotate; the limiting rib extends into the limiting notch, and when the mounting part rotates in the spherical cavity, the limiting rib rotates relative to the limiting notch, and the rotation stroke of the limiting rib is limited between the first stop wall and the second stop wall.

[0007] The beneficial effects of the above solution are as follows: By providing a first hemispherical groove in the first bracket and a second hemispherical groove in the second bracket, a spherical cavity is formed when the two brackets are aligned to accommodate the spherical mounting portion of the power cord. A limiting notch is formed on the surface of the spherical mounting portion of the power cord, and a limiting rib of the second bracket extends into this limiting notch. Thus, when the mounting portion rotates, the limiting rib rotates relative to each other within the limiting notch, and the rotational stroke of the mounting portion is limited by the first and second stop walls. The rotation of the spherical mounting portion within the spherical cavity drives the end of the power cord to rotate, adjusting the direction of the power cord's exit. Furthermore, the spherical cavity can provide a surrounding limiting effect on the mounting portion. When the wire swings in the non-rotational direction, the spherical cavity can effectively maintain the position of the mounting part. The limiting notch and limiting rib on the surface of the spherical mounting part cooperate to allow the mounting part to have a certain degree of offset (in the non-rotational direction) within the spherical cavity without affecting its normal rotation in the rotational direction. This design is not only simple in structure and easy to assemble, but also effectively solves the problem of fixed or complex wire outlet structures in existing sockets or electrical terminal blocks. It is easy to produce, reduces production costs, and is not prone to wear or damage to the rotating connection structure after repeated rotation. Even slight wear or offset will not affect the performance.

[0008] The included angle between the first stop wall and the second stop wall is α, preferably 80°≤α≤185°.

[0009] Furthermore, the power cord extends outward from the outlet and swings vertically within a preset range to drive the mounting part to rotate along the horizontal axis; the limiting notch is a fan-shaped notch, the center of the fan-shaped notch is located on the horizontal axis of the mounting part, and the limiting rib extends vertically to enter the fan-shaped notch and abut against the center of the fan-shaped notch.

[0010] In one feasible implementation, the outlet includes a side slot and a bottom slot provided on the first bracket, through which the power cord extends outward; providing different outlet options for the power cord, allowing the user to rotate the power cord and rotate the mounting part to make the power cord extend from the side or bottom, thus more flexibly adapting to different usage scenarios and installation environments.

[0011] Furthermore, the first bracket includes a plurality of upwardly extending first limiting plates disposed on both sides of the lower slot, each of the plurality of first limiting plates having an arc surface on the side near the lower slot, and the arc surfaces of the plurality of first limiting plates combining to form a first hemispherical groove.

[0012] Furthermore, the second bracket includes several second limiting plates extending downward, each of the several second limiting plates having an arc surface, and the arc surfaces of the several second limiting plates combining to form a second hemispherical groove.

[0013] Furthermore, the power cord passes through the mounting part and one end of the power cord exits through the outlet, while the other end serves as a terminal. The second bracket has a clearance slot on the swing path of the power cord. The clearance slot is used to accommodate the terminal when the mounting part rotates. When the mounting part rotates, the clearance slot is used to make way for the terminal of the power cord passing through the mounting part, so as to facilitate the connection of the terminal of the power cord to other circuit structures.

[0014] In one feasible implementation, the second bracket includes a baffle rib disposed on the swing path of the power cord, the baffle rib being used to limit the swing angle of the power cord, and the surface of the baffle rib having an arc surface that conforms to the surface of the mounting portion to prevent foreign objects from entering.

[0015] In one feasible implementation, the mounting part is a rigid spherical rubber coating that wraps around the power cord, and the portion of the power cord extending outward from the mounting part is provided with a soft rubber coating. The rigid spherical rubber coating is easy to manufacture and allows the mounting part to rotate normally within the spherical cavity, while the soft rubber coating is for protecting the power cord and facilitating a certain degree of bending of the power cord. The terms "rigid" and "soft" refer to the structural characteristics that enable its function, and there are no specific requirements for hardness.

[0016] In one feasible implementation, the first bracket and the second bracket are detachably connected.

[0017] In one feasible implementation, the first bracket and the second bracket are engaged by positioning blocks and positioning buckles, and / or the first bracket and the second bracket are engaged by positioning slots and positioning inserts.

[0018] A socket is also provided, including the rotating cable outlet structure as described above, and a first cover and a second cover that are detachably connected. The first cover is fixedly connected to a first bracket, and the second cover is integrally connected to or detachably connected to the second bracket. A PCB board or terminal block is provided between the first cover and the second cover, and the first cover and / or the second cover is provided with a cable outlet for the power cord to extend out; the power cord passes through the mounting part and one end of the power cord extends out of the cable outlet, and the other end serves as a terminal block for conductive connection with the PCB board or terminal block.

[0019] Furthermore, the first cover is provided with an upwardly extending positioning plate, and the second bracket is provided with a positioning groove for inserting the positioning plate and limiting the positioning plate.

[0020] The first cover is provided with a first positioning cylinder, the second bracket is provided with a second positioning cylinder, and the second cover is provided with a lower positioning post that allows the first positioning cylinder and the second positioning cylinder to be fitted into simultaneously.

[0021] An assembly method (standard type) for the socket as described above is also provided, comprising the following steps: S1. Conductively connect the PCB board / terminal to the terminal of the power cord; S2. If the second cover and the second bracket are connected separately, then proceed to step S21 and then step S22. If the second cover and the second bracket are connected as one piece, then skip step S21 and proceed directly to step S22. S21. Position and assemble the second bracket with the second cover; S22. Install the PCB board / terminal and mounting part into the second cover body and the second bracket respectively; S3. Assemble the first cover and the second cover together.

[0022] Another assembly method (inverted type) for the socket as described above is also provided, including the following steps: S1. Conductively connect the PCB board / terminal to the terminal of the power cord; S2. Assemble the PCB board / terminal and mounting parts into the first cover body and the first bracket, respectively; S3. If the second cover and the second bracket are connected separately, then proceed to step S31 and then step S32. If the second cover and the second bracket are connected as one piece, then skip step S31 and proceed directly to step S32. S31. Assemble the second bracket with the first bracket; S32. Assemble the first cover and the second cover together. Attached Figure Description

[0023] Figure 1 This is a three-dimensional structural diagram of an embodiment of the present invention (the power cord can be rotated along the direction of the arrow to the position shown by the dashed line); Figure 2 This is a schematic diagram of the structure of the first support and the second support forming a spherical cavity in the embodiment; Figure 3 This is a schematic diagram of the first cover and the first support structure in the embodiment; Figure 4 This is a schematic diagram of the second support structure in an embodiment; Figure 5 for Figure 1 Exploded structure diagram of the embodiment; Figure 6 This is a schematic diagram of the mounting section in the embodiment; Figure 7 This is a schematic diagram of the installation part being assembled on the second bracket in the embodiment (the limiting rib abuts against the second stop wall). Figure 8 This is a schematic diagram of the limiting rib abutting against the first stop wall in the embodiment; Figure 9 This is a cross-sectional view of the mounting part assembled inside the spherical cavity in the embodiment; Figure 10 A schematic diagram of an embodiment in which the second cover and the second bracket are integrally connected; Figure 11 This is an exploded structural diagram of another embodiment (the second cover and the second support are connected separately). Figure 12 for Figure 11 Schematic diagram of the cooperation structure between the second bracket and the first cover; Figure 13 for Figure 12 A schematic diagram of the structure after the second support and the first cover are assembled.

[0024] In the diagram: 1. First cover; 101. First bracket; 11. First hemispherical groove; 111. First limiting plate; 12. Side groove; 13. Positioning plate; 14. Lower groove; 15. First positioning cylinder; 16. Positioning block; 17. Positioning slot; 2. Second cover; 25. Lower positioning post; 3. Power cord; 31. Mounting part; 311. Limiting notch; 3111. First stop wall; 3112. Second stop wall; 32. Soft rubber part; 4. Second bracket; 41. Second hemispherical groove; 411. Limiting rib; 42. Second limiting plate; 43. Positioning groove; 44. Stop rib; 45. Second positioning cylinder; 46. Clearance notch; 47. Positioning insert; 48. Positioning buckle. Detailed Implementation

[0026] First, those skilled in the art should understand that the following embodiments are merely used to explain the technical principles of the embodiments of this application and are not intended to limit the scope of protection of the embodiments of this application. Those skilled in the art can make adjustments as needed to adapt to specific application scenarios.

[0027] In the description of the embodiments of this application, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" 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. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this application based on the specific circumstances.

[0028] In the embodiments of this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0029] To make the objectives, features and advantages of the present invention more apparent and understandable, specific embodiments are described in detail below with reference to the accompanying drawings.

[0030] like Figures 1 to 9 As shown, this embodiment provides a rotating cable exit structure, including: A first bracket 101 is provided with a first hemispherical groove 11; The second bracket 4 is provided with a second hemispherical groove 41 and a limiting rib 411 extending into the second hemispherical groove 41. The power cord 3 has a spherical mounting part 31 at one end. The surface of the mounting part 31 is provided with a limiting notch 311. The limiting notch 311 has a first stop wall 3111 and a second stop wall 3112 that are arranged opposite to each other in the circumferential direction. When the first bracket 101 and the second bracket 4 are engaged, the first hemispherical groove 11 and the second hemispherical groove 41 form a spherical cavity to accommodate the mounting part 31, and the spherical cavity has an outlet for the power cord 3 to extend outward and swing within a preset range to drive the mounting part 31 to rotate; the limiting rib 411 extends into the limiting notch 311, and when the mounting part 31 rotates in the spherical cavity, the limiting rib 411 rotates relative to each other in the limiting notch 311, and the rotation stroke of the limiting rib 411 is limited between the first stop wall 3111 and the second stop wall 3112.

[0031] See attached document Figure 3 In this embodiment, the mounting part 31 is provided with limiting grooves 311 on both sides, and the second bracket 4 is provided with limiting ribs 411 on both sides of the mounting part 31.

[0032] When attached Figure 7 After the mounting part 31 is rotated counterclockwise by a certain angle, it reaches the position shown in the image. Figure 8 The other extreme position shown is where the limiting rib 411 abuts against the first stop wall 3111 of the limiting notch 311; at this point, the mounting part 31 can no longer rotate in this direction. Through this design, the rotation angle of the power cord 3 is precisely limited to a preset range, realizing the adjustability of the output direction, while avoiding damage to the power cord 3 due to excessive twisting.

[0033] Furthermore, the included angle between the first stop wall 3111 and the second stop wall 3112 is the central angle α of the limiting notch 311, and 80°≤α≤185°.

[0034] Furthermore, the power supply cable 3 extends outward from the outlet and swings vertically within a preset range to drive the mounting part 31 to rotate along the horizontal axis. The limiting notch is a fan-shaped notch, the center of which is located on the horizontal axis of the mounting part 31, and the limiting rib 411 extends vertically to enter the fan-shaped notch and abut against the center of the fan-shaped notch.

[0035] Furthermore, the outlet includes a side slot 12 and a bottom slot 14 disposed on the first bracket 101, through which the power cord 3 extends outward; the side slot 12 and the bottom slot 14 provide different outlet options for the power cord 3, and the user can rotate the mounting part to make the power cord 3 extend from the side or the bottom, thereby more flexibly adapting to different usage scenarios and installation environments.

[0036] Furthermore, the first bracket 101 includes a plurality of upwardly extending first limiting plates 111 disposed on both sides of the lower slot 14. Each of the plurality of first limiting plates 111 has an arc surface on the side near the lower slot 14, and the arc surfaces of the plurality of first limiting plates 111 are combined to form a first hemispherical groove 11.

[0037] In one embodiment, the second bracket 4 includes a plurality of downwardly extending second limiting plates 42, each of the plurality of second limiting plates 42 having an arc surface, and the arc surfaces of the plurality of second limiting plates 42 are combined to form a second hemispherical groove 41.

[0038] As will be understood by those skilled in the art, the first hemispherical groove 11 and the second hemispherical groove 41 are not necessarily hemispherical grooves formed by a closed curved surface. Similarly, the spherical cavity is not a closed chamber. The use of "groove" and "cavity" in this design is merely to illustrate its approximate shape and limiting space. (See attached diagram.) Figure 5 The first hemispherical groove 11 and the second hemispherical groove 41 can be a hemispherical limiting space formed by a combination of multiple limiting plates to limit the sphere.

[0039] Furthermore, the power cord 3 passes through the mounting part 31 and one end of the power cord 3 exits through the outlet, while the other end serves as a terminal. The second bracket 4 has a clearance slot 46 on the swing path of the power cord 3. The clearance slot 46 is used to accommodate the terminal when the mounting part 31 rotates, so as to facilitate the connection of the terminal of the power cord 3 to other circuit structures.

[0040] In one embodiment, the second bracket 4 includes a baffle 44 disposed on the swing path of the power cord 3. The baffle 44 is used to limit the swing angle of the power cord 3, and the surface of the baffle 44 has an arc surface that fits against the surface of the mounting part 31 to prevent foreign objects from entering.

[0041] In one embodiment, the mounting portion 31 is a rigid spherical coating wrapped around the power cord 3, and the portion of the power cord 3 extending outward from the mounting portion 31 is provided with a soft coating portion 32.

[0042] In one embodiment, such as Figure 11-13 As shown, the first bracket 101 and the second bracket 4 are detachably connected.

[0043] The first bracket 101 and the second bracket 4 are engaged by positioning block 16 and positioning buckle 48, and / or the first bracket 101 and the second bracket 4 are engaged by positioning slot 17 and positioning insert 47.

[0044] An embodiment of a socket is also provided, including the rotating cable outlet structure as described above, and a first cover 1 and a second cover 2 that are detachably connected. The first cover 1 is fixedly connected to the first bracket 101, and the second cover 2 is integrally connected to the second bracket 4 or detachably connected. A PCB board or terminal block is provided between the first cover 1 and the second cover 2, and the first cover 1 and / or the second cover 2 are provided with a cable outlet for the power cord 3 to extend out; the power cord 3 passes through the mounting part 31 and one end of the power cord 3 passes through the cable outlet, and the other end serves as a terminal block for conductive connection with the PCB board or terminal block.

[0045] The first cover 1 is provided with an upwardly extending positioning plate 13, and the second bracket 4 is provided with a positioning groove 43 for the positioning plate 13 to be inserted and for limiting the positioning plate 13.

[0046] The first cover 1 is provided with a first positioning cylinder 15, the second bracket 4 is provided with a second positioning cylinder 45, and the second cover 2 is provided with a lower positioning post 25 that can be simultaneously fitted into the first positioning cylinder 15 and the second positioning cylinder 45.

[0047] A forward-mounted assembly method for the aforementioned socket is also provided, comprising the following steps: S1. Conductively connect the PCB board / terminal to the terminal of the power line 3; S2. If the second cover 2 and the second bracket 4 are connected separately, then proceed to step S21 and then step S22. If the second cover 2 and the second bracket 4 are connected as one piece, then skip step S21 and proceed directly to step S22. S21. Position and assemble the second bracket 4 with the second cover 2; S22. The PCB board / terminal and the mounting part 31 are respectively installed inside the second cover 2 and on the second bracket 4; S3. Assemble the first cover 1 and the second cover 2 together.

[0048] A flip-type assembly method for the aforementioned socket is also provided, comprising the following steps: S1. Conductively connect the PCB board / terminal to the terminal of the power line 3; S2. Assemble the PCB board / connector and mounting part 31 into the first cover 1 and onto the first bracket 101, respectively; S3. If the second cover 2 and the second bracket 4 are connected separately, then proceed to step S31 and then step S32. If the second cover 2 and the second bracket 4 are connected as one piece, then skip step S31 and proceed directly to step S32. S31. Assemble the second bracket 4 with the first bracket 101; S32. Assemble the first cover 1 and the second cover 2 together.

[0049] In the description of the embodiments of this application, it should be noted that the terms "inner" and "outer" and other terms indicating direction or positional relationship are based on the direction or positional relationship shown in the drawings. This is only for the convenience of description and does not indicate or imply that the device or component must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation of this application.

[0050] In the description of this application, the reference to terms such as "this embodiment," "an embodiment," etc., means 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 this application. 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 a suitable manner in any one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0051] The above description is merely a specific embodiment of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. A rotating cable exit structure, characterized in that, include The first support (101) is provided with a first hemispherical groove (11). The second bracket (4) is provided with a second hemispherical groove (41) and a limiting rib (411) extending into the second hemispherical groove (41). The power cord (3) has a spherical mounting part (31) at one end. The surface of the mounting part (31) is provided with a limiting notch (311). The limiting notch (311) has a first stop wall (3111) and a second stop wall (3112) arranged opposite to each other in the circumferential direction. When the first bracket (101) and the second bracket (4) are engaged, the first hemispherical groove (11) and the second hemispherical groove (41) form a spherical cavity to accommodate the mounting part (31), and the spherical cavity has an outlet for the power cord (3) to extend outward and swing within a preset range to drive the mounting part (31) to rotate; the limiting rib (411) extends into the limiting notch (311), and when the mounting part (31) rotates in the spherical cavity, the limiting rib (411) rotates relative to each other in the limiting notch (311), and the rotation stroke of the limiting rib (411) is limited between the first stop wall (3111) and the second stop wall (3112).

2. The rotating cable exit structure according to claim 1, characterized in that: The included angle between the first stop wall (3111) and the second stop wall (3112) is α, and 80°≤α≤185°.

3. The rotating cable exit structure according to claim 1 or 2, characterized in that: The power supply cable (3) extends outward from the outlet and swings vertically within a preset range to drive the mounting part (31) to rotate along the horizontal axis; The limiting notch is a fan-shaped notch, the center of which is located on the horizontal axis of the mounting part (31), and the limiting rib (411) extends vertically to enter the fan-shaped notch and abut against the center of the fan-shaped notch.

4. The rotating cable exit structure according to claim 1, characterized in that: The outlet includes a side slot (12) and a bottom slot (14) provided on the first bracket (101), and the power cord (3) extends outward through the side slot (12) or the bottom slot (14).

5. The rotating cable exit structure according to claim 4, characterized in that: The first bracket (101) includes a plurality of upwardly extending first limiting plates (111) disposed on both sides of the lower slot (14). Each of the plurality of first limiting plates (111) has an arc surface on the side near the lower slot (14), and the arc surfaces of the plurality of first limiting plates (111) are combined to form a first hemispherical groove (11).

6. The rotating cable exit structure according to claim 1, characterized in that: The second bracket (4) includes a plurality of downwardly extending second limiting plates (42), each of the plurality of second limiting plates (42) having an arc surface, and the arc surfaces of the plurality of second limiting plates (42) combined to form a second hemispherical groove (41).

7. The rotating cable outlet structure according to claim 1, characterized in that: The power cord (3) passes through the mounting part (31) and one end of the power cord (3) goes out of the outlet, while the other end serves as a terminal. The second bracket (4) has a clearance slot (46) on the swing path of the power cord (3). The clearance slot (46) is used to accommodate the terminal when the mounting part (31) rotates.

8. The rotating cable exit structure according to claim 1, characterized in that: The second bracket (4) includes a baffle (44) disposed on the swing path of the power line (3), the baffle (44) being used to limit the swing angle of the power line (3), and the surface of the baffle (44) having an arc surface that fits against the surface of the mounting part (31).

9. The rotating cable exit structure according to claim 1, characterized in that: The mounting part (31) is a hard spherical rubber coating that wraps around the power cord (3), and the power cord (3) extending outward from the mounting part (31) is provided with a soft rubber coating part (32).

10. The rotating cable exit structure according to any one of claims 1-2 and 4-9, characterized in that: The first bracket (101) and the second bracket (4) are detachably connected.

11. The rotating cable exit structure according to claim 10, characterized in that: The first bracket (101) and the second bracket (4) are engaged by a positioning block (16) and a positioning buckle (48), and / or the first bracket (101) and the second bracket (4) are engaged by a positioning slot (17) and a positioning insert (47).

12. A socket, characterized in that: Includes the rotating cable outlet structure as described in any one of claims 1-11, and a first cover (1) and a second cover (2) that are detachably connected, wherein the first cover (1) is fixedly connected to the first bracket (101), and the second cover (2) is integrally connected to the second bracket (4) or detachably connected. A PCB board or terminal block is provided between the first cover (1) and the second cover (2), and the first cover (1) and / or the second cover (2) are provided with a cable outlet for the power cord (3) to extend out; the power cord (3) passes through the mounting part (31) and one end of the power cord (3) passes through the cable outlet, and the other end serves as a terminal block for conductive connection with the PCB board or terminal block.

13. The socket according to claim 12, characterized in that: The first cover (1) is provided with an upwardly extending positioning plate (13), and the second bracket (4) is provided with a positioning groove (43) for the positioning plate (13) to be inserted and for limiting the positioning plate (13).

14. The socket according to claim 12, characterized in that: The first cover (1) is provided with a first positioning cylinder (15), the second bracket (4) is provided with a second positioning cylinder (45), and the second cover (2) is provided with a lower positioning post (25) that allows the first positioning cylinder (15) and the second positioning cylinder (45) to be fitted in simultaneously.

15. The method for assembling a socket as described in claim 12, characterized in that, Includes the following steps: S1. Conductively connect the PCB board or terminal block to the terminal of the power line (3); S2. If the second cover (2) and the second bracket (4) are connected separately, then proceed to step S21 and then step S22. If the second cover (2) and the second bracket (4) are connected as one piece, then skip step S21 and proceed directly to step S22. S21. Position and assemble the second bracket (4) with the second cover (2); S22. Install the PCB board or terminal block and the mounting part (31) into the second cover (2) and onto the second bracket (4) respectively; S3. Assemble the first cover (1) and the second cover (2) together.

16. The method for assembling a socket as described in claim 12, characterized in that, Includes the following steps: S1. Conductively connect the PCB board or terminal block to the terminal of the power line (3); S2. Assemble the PCB board or terminal block and mounting part (31) into the first cover (1) and onto the first bracket (101) respectively; S3. If the second cover (2) and the second bracket (4) are connected separately, then proceed to step S31 and then step S32. If the second cover (2) and the second bracket (4) are connected as one piece, then skip step S31 and proceed directly to step S32. S31. Assemble the second bracket (4) and the first bracket (101) together; S32. Assemble the first cover (1) and the second cover (2) together.

Citation Information

Patent Citations

  • Socket with rotary outgoing line and socket with rotary outgoing line and clamping line

    CN210016032U