Power socket capable of being adjusted in multiple directions
The multi-directional power outlet addresses the issue of fixed plug shapes by enabling 360-degree rotation, ensuring flexible and reliable electrical connections with various plug types.
Patent Information
- Application Number
- CN202422322911.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-23
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-09-23
AI Technical Summary
The existing socket structure is fixed and cannot adapt to plugs of different shapes, resulting in great limitations in plugging and power supply, inconvenient use, or even inability to plug.
A multi-directional adjustment power socket is designed to achieve 360 degrees of adjustment of the rotating body through the coordination of the rotating module and the rotating groove. Combined with the flexible setting of the positive electrode, negative electrode and ground conductive sheet, it improves the space utilization and conductivity and ensures stability and reliability.
It realizes flexible plug-in connection of the plug, adapts to different scenarios, improves the adaptability and convenience of the socket, ensures the reliability and safety of the conductive performance, and simplifies assembly operations.
Smart Images

Figure CN223109414U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of electrical connection devices, and particularly to a power socket that can be adjusted in multiple directions. Background Art
[0002] A socket, also known as a power socket, as an important device for power distribution, is widely used in households, offices, and industrial sites. The socket can be used to insert various wiring plugs to achieve the connection or disconnection between the circuit and the copper parts.
[0003] In the related art, the socket has a fixed structure. After the socket is produced, its structure cannot be changed. Since the shapes of plugs on the market are various, when the plug is inserted into the socket for use, the direction between the plug and the socket is fixed, and the limitation of plugging and using electricity is large, which is inconvenient to use. Even in some special environments, it will cause the plug and the socket to be unable to achieve plugging and using electricity. Summary of the Utility Model
[0004] The utility model aims to at least solve one of the technical problems existing in the prior art. For this purpose, the utility model provides a power socket that can be adjusted in multiple directions, which can rotate and adjust the direction to meet different plugging requirements, with flexible adjustment and convenient use.
[0005] A power socket that can be adjusted in multiple directions according to an embodiment of the utility model includes:
[0006] A housing seat assembly, including a lower cover and an upper cover. The upper cover is connected to the lower cover. The upper cover is provided with a first installation hole. The bottom of the upper cover is provided with a rotating seat. The rotating seat is provided with a circular rotating groove. The notch of the rotating groove communicates with the bottom of the first installation hole. The bottom of the rotating groove is provided with a grounding conductive column. The axis of the grounding conductive column is collinear with the axis of the rotating groove. The groove wall of the rotating groove is provided with a positive electrode annular groove and a negative electrode annular groove arranged at intervals along the grounding conductive column. A positive electrode conductive ring is arranged in the positive electrode annular groove, and a negative electrode conductive ring is arranged in the negative electrode annular groove;
[0007] A rotating module is arranged in the rotating groove. The rotating module includes a rotating body, a positive electrode socket, a negative electrode socket, a grounding socket, a positive electrode conductive sheet, a negative electrode conductive sheet, and a grounding conductive sleeve. The top of the rotating body is provided with a positive electrode hole, a negative electrode hole, and a grounding hole at intervals. The positive electrode socket is arranged in the positive electrode hole, the negative electrode socket is arranged in the negative electrode hole, and the grounding socket is arranged in the grounding hole. The positive electrode conductive sheet and the negative electrode conductive sheet are arranged at intervals along the extension direction of the grounding conductive column on the circumferential surface of the rotating body. A receiving groove is arranged at the bottom of the rotating body. The grounding conductive sleeve is arranged in the receiving groove. The positive electrode socket is electrically connected to the positive electrode conductive sheet, the negative electrode socket is electrically connected to the negative electrode conductive sheet, the grounding socket is electrically connected to the grounding conductive sleeve. The positive electrode conductive sheet abuts against the inner side of the positive electrode conductive ring, the negative electrode conductive sheet abuts against the inner side of the negative electrode conductive ring, and the grounding conductive sleeve is sleeved outside the grounding conductive column.
[0008] In this embodiment, a positive graphite layer is provided on the side of the positive conductive ring close to the positive conductive sheet, and a negative graphite layer is provided on the side of the negative conductive ring close to the negative conductive sheet.
[0009] In this embodiment, a grounding graphite layer is provided on the circumferential surface of the grounding conductive post.
[0010] In this embodiment, the middle part of the positive conductive sheet protrudes away from the rotating body in an arc shape, and the middle part of the negative conductive sheet protrudes away from the rotating body in an arc shape.
[0011] In this embodiment, a flange is provided around the circumferential surface of the rotating body, a positioning groove is provided on the upper cover, the top of the first mounting hole is provided at the bottom of the positioning groove, and the flange is provided in the positioning groove.
[0012] In this embodiment, the housing base assembly further includes a panel, the panel is connected to the upper cover, a positioning hole located above the positioning groove is provided in the panel, the top of the rotating body passes through the positioning hole, and the top surface of the rotating body is coplanar with the top surface of the panel.
[0013] In this embodiment, an anti-slip positioning layer is provided on the bottom surface of the flange, and the anti-slip positioning layer abuts against the bottom of the positioning groove.
[0014] In this embodiment, the multi-directionally adjustable power socket further includes a fixing module, the fixing module includes a circuit board and a plug connector, the circuit board is connected to the lower cover, the plug connector is connected to the circuit board, and a second mounting hole is further provided in the upper cover.
[0015] The embodiment of the present utility model has at least the following beneficial effects:
[0016] Through the cooperation of the rotation module and the rotation groove, 360-degree adjustment of the rotation body can be achieved, so that the positive electrode hole, the negative electrode hole, and the grounding hole can be rotated to the required angles. The adjustment operation is convenient, which can provide flexible plug and socket connections for the plug, meet the usage requirements of different scenarios, and the power socket has strong adaptability and is easy to use. In addition, the positive electrode conductive sheet and the negative electrode conductive sheet are arranged on the circumferential surface of the rotation body, and the grounding conductive sleeve is arranged in the storage groove at the bottom of the rotation body. By arranging the corresponding conductive structures in the two dimensions of the horizontal and vertical directions of the rotation body, the space utilization rate can be effectively improved. The circumferential surface of the rotation body can provide sufficient setting space for the positive electrode conductive sheet and the negative electrode conductive sheet, which can not only ensure that the positive electrode conductive sheet and the negative electrode conductive sheet can form a sufficient conductive cross-sectional area to improve the conductive performance, but also ensure that there is sufficient space between the positive electrode conductive sheet and the negative electrode conductive sheet to avoid short circuits. The power socket has reliable conductive performance during plugging and unplugging. The grounding conductive sleeve is not only electrically connected to the grounding conductive column, but also can rotate around the grounding conductive column. The overall structure is simple and compact. Through the grounding conductive column, the rotation position of the rotation body can be further restricted, the stability of the rotation movement of the rotation body can be effectively improved, the reliability of the direction adjustment can be improved, and at the same time, the acting force formed between the conductive ring and the conductive sheet can be effectively controlled, ensuring the reliability and safety of current transmission. The positive electrode conductive ring is received in the positive electrode annular groove, and the negative electrode conductive ring is received in the negative electrode annular groove, which can effectively ensure the flatness of the internal space of the rotation groove and effectively improve the convenience of the assembly operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The above and / or additional aspects and advantages of the present utility model will become apparent and be readily understood from the following description of the embodiments in conjunction with the accompanying drawings, wherein:
[0018] Figure 1 is a three-dimensional structural schematic diagram of a multi-directionally adjustable power socket according to an embodiment of the present utility model;
[0019] Figure 2 is a three-dimensional structural schematic diagram of a multi-directionally adjustable power socket according to an embodiment of the present utility model in another working state;
[0020] Figure 3 is an exploded structural schematic diagram of a multi-directionally adjustable power socket according to an embodiment of the present utility model;
[0021] Figure 4 is a top view structural schematic diagram of a multi-directionally adjustable power socket according to an embodiment of the present utility model;
[0022] Figure 5 is along Figure 4 a cross-sectional structural schematic diagram taken along A-A' in
[0023] Reference numerals:
[0024] Housing base assembly 100, lower cover 110, upper cover 120, first mounting hole 121, positioning groove 122, second mounting hole 123, rotating seat 130, rotating groove 131, grounding conductive post 132, grounding graphite layer 133, positive electrode annular groove 134, negative electrode annular groove 135, positive electrode conductive ring 140, positive electrode graphite layer 141, negative electrode conductive ring 150, negative electrode graphite layer 151, panel 160, positioning hole 161;
[0025] Rotating module 200, rotating body 210, positive electrode hole 211, negative electrode hole 212, grounding hole 213, receiving groove 214, positive electrode socket 220, negative electrode socket 230, grounding socket 240, positive electrode conductive sheet 250, negative electrode conductive sheet 260, grounding conductive sleeve 270, flange 280, anti-slip positioning layer 281;
[0026] Fixing module 300, circuit board 310, plug connector 320. Detailed implementation manners
[0027] The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the 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 drawings are exemplary and are only used to explain the present utility model and should not be construed as a limitation to the present utility model.
[0028] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by terms such as up, down, left, right, front, back, etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model.
[0029] In the description of the present utility model, if the first and second are described only for the purpose of distinguishing technical features, they should not be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence of the indicated technical features.
[0030] In the description of the present utility model, unless otherwise clearly defined, terms such as setting, installation, connection, etc. should be understood in a broad sense, and those skilled in the art can reasonably determine the specific meanings of the above terms in the present utility model in combination with the specific content of the technical solution.
[0031] A socket, also known as a power socket, is an important device for power distribution and is widely used in households, offices, and industrial sites. It can be used to insert various wiring plugs to achieve the connection or disconnection between the circuit and the copper parts. In related technologies, the socket has a fixed structure. After the socket is produced, its structure cannot be changed. Since the shapes of plugs on the market vary, when a plug is inserted into the socket for use, the direction between the plug and the socket is fixed, resulting in great limitations in plugging and using electricity, inconvenient use, and even in some special environments, it may cause the inability to plug and use electricity between the plug and the socket.
[0032] To solve the above problems, although some sockets with adjustable directions have appeared on the market, most of these products have complex structures, high costs, and limited adjustment ranges. Therefore, it is particularly important to develop a multi-directionally adjustable power socket with a simple structure, low cost, and flexible adjustment.
[0033] The following refers to the attached Figure 1 to the attached Figure 5 to describe the multi-directionally adjustable power socket according to the embodiments of the present invention, which can rotate and adjust the direction to adapt to different plugging requirements, with flexible adjustment and convenient use.
[0034] Referring to Figures 1 to 5 , a multi-directionally adjustable power socket according to an embodiment of the present invention includes:
[0035] A housing base assembly 100, including a lower cover 110 and an upper cover 120. The upper cover 120 is connected to the lower cover 110. A first mounting hole 121 is provided in the upper cover 120. A rotating seat 130 is provided at the bottom of the upper cover 120 below the first mounting hole 121. A circular rotating groove 131 is provided on the rotating seat 130. The first mounting hole 121 is a circular hole. The notch of the rotating groove 131 faces upward and is communicated with the bottom of the first mounting hole 121. A grounding conductive column 132 is provided at the bottom of the rotating groove 131. The grounding conductive column 132 is a cylinder, and the axis of the grounding conductive column 132 is collinear with the axis of the rotating groove 131. Positive electrode annular grooves 134 and negative electrode annular grooves 135 are provided on the groove wall of the rotating groove 131 at intervals along the extending direction of the grounding conductive column 132. The annular centers of the positive electrode annular groove 134 and the negative electrode annular groove 135 are both located on the axis of the grounding conductive column 132. A positive electrode conductive ring 140 is provided in the positive electrode annular groove 134, and a negative electrode conductive ring 150 is provided in the negative electrode annular groove 135. The positive electrode conductive ring 140 and the negative electrode conductive ring 150 are spaced apart along the extending direction of the grounding conductive column 132, and the straight line where the grounding conductive column 132 is located passes through the center of the positive electrode conductive ring 140 and the center of the negative electrode conductive ring 150. The positive electrode conductive ring 140, the negative electrode conductive ring 150, and the grounding conductive column 132 are respectively connected to the live wire, the neutral wire, and the ground wire through different wires;
[0036] The rotation module 200 is disposed in the rotation groove 131. The rotation module 200 includes a rotation body 210, a positive electrode socket 220, a negative electrode socket 230, a ground socket 240, a positive electrode conductive sheet 250, a negative electrode conductive sheet 260, and a ground conductive sleeve 270. The outer contour of the rotation body 210 is cylindrical. The rotation body 210 is disposed in the rotation groove 131. At the top of the rotation body 210, a positive electrode hole 211, a negative electrode hole 212, and a ground hole 213 are provided at intervals. There is a gap between the positive electrode hole 211 and the negative electrode hole 212, and there are gaps between the ground hole 213 and the positive electrode hole 211 and the negative electrode hole 212 respectively. The positive electrode socket 220 is disposed in the positive electrode hole 211, the negative electrode socket 230 is disposed in the negative electrode hole 212, and the ground socket 240 is disposed in the ground hole 213. There is a gap between the positive electrode socket 220 and the negative electrode socket 230, and there are gaps between the ground socket 240 and the positive electrode socket 220 and the negative electrode socket 230 respectively. The positive electrode conductive sheet 250 and the negative electrode conductive sheet 260 are disposed at intervals on the circumferential surface of the rotation body 210 along the extension direction of the ground conductive column 132. The positive electrode conductive sheet 250 and the negative electrode conductive sheet 260 are both disposed on the side surface of the rotation body 210, and the positive electrode conductive sheet 250 and the negative electrode conductive sheet 260 are disposed at intervals along the extension direction of the ground conductive column 132. A storage groove 214 is provided at the bottom of the rotation body 210, and the ground conductive sleeve 270 is disposed in the storage groove 214, which can effectively improve the space utilization rate of the rotation body 210. The positive electrode socket 220 is electrically connected to the positive electrode conductive sheet 250 through a conductive structure such as a wire or directly. The negative electrode socket 230 is electrically connected to the negative electrode conductive sheet 260 through a conductive structure such as a wire or directly. The ground socket 240 is electrically connected to the ground conductive sleeve 270 through a conductive structure such as a wire or directly. The positive electrode conductive sheet 250 abuts against the inner side of the positive electrode conductive ring 140, the negative electrode conductive sheet 260 abuts against the inner side of the negative electrode conductive ring 150, and the ground conductive sleeve 270 is sleeved outside the ground conductive column 132 in an abutting manner. The ground conductive sleeve 270 is a circular sleeve structure, and the ground conductive sleeve 270 and the ground conductive column 132 can rotate relative to each other. The rotation body 210 can be rotated according to different usage requirements so that the positive electrode hole 211, the negative electrode hole 212, and the ground hole 213 are rotated to a specified angle for use.
[0037] Structural reference of the rotation body 210 of the present multi-directionally adjustable power socket when adjusted to different angular directions for operation Figure 1 and Figure 2 as shown. Through the ingenious design of the rotation module 200 in cooperation with the rotation groove 131, the 360-degree unlimited adjustment of the rotation body 210 can be realized, so that the positive electrode hole 211, the negative electrode hole 212, and the ground hole 213 are rotated to the required angles. The adjustment operation is convenient, and flexible plugging and unplugging connections can be provided for the plug, which can meet the usage requirements of different scenarios. The adaptability of this power socket is strong and it is easy to use;
[0038] In addition, the positive conductive sheet 250 and the negative conductive sheet 260 are arranged on the circumferential surface of the rotating body 210, and the ground conductive sleeve 270 is arranged in the receiving groove 214 at the bottom of the rotating body 210. By arranging the corresponding conductive structures in the horizontal and vertical dimensions of the rotating body 210 respectively, the space utilization rate can be effectively improved. By arranging the ground conductive sleeve 270 in a different dimension compared with the positive conductive sheet 250 and the negative conductive sheet 260, the circumferential surface of the rotating body 210 can provide sufficient space for the positive conductive sheet 250 and the negative conductive sheet 260. This can not only ensure that the positive conductive sheet 250 and the negative conductive sheet 260 can form a sufficient conductive cross-sectional area to improve the conductive performance, but also ensure that there is sufficient spacing between the positive conductive sheet 250 and the negative conductive sheet 260 to avoid short circuits. The conductive performance of this power socket during plugging and unplugging is reliable.
[0039] The ground conductive sleeve 270 is not only electrically connected to the ground conductive post 132, but also can rotate around the ground conductive post 132. The overall structure is simple and compact. On the premise of restricting the rotating body 210 through the rotating groove 131, the rotating position of the rotating body 210 can be further restricted through the ground conductive post 132, which can effectively improve the stability of the rotation action of the rotating body 210, improve the reliability of direction adjustment, and at the same time can effectively control the acting forces formed between the positive conductive ring and the positive conductive sheet, and between the negative conductive ring 150 and the negative conductive sheet 260, ensuring the reliability and safety of current transmission. The positive conductive ring 140 is received in the positive annular groove 134, and the negative conductive ring 150 is received in the negative annular groove 135, which can effectively ensure the flatness of the internal space of the rotating groove 131 and effectively improve the convenience of the assembly operation. A stable electrical connection can be formed through the abutting contact between the conductive sheet and the conductive ring, and the assembly operation is convenient, effectively saving the use of cumbersome tools.
[0040] The positive plug sleeve 220, the negative plug sleeve 230, and the ground plug sleeve 240 can all be set as socket plug sleeve structures with at least two conductive copper sheets for clamping and conducting the pins of the plug.
[0041] It can be understood that a positive graphite layer 141 is provided on the side of the positive conductive ring 140 close to the positive conductive sheet 250, that is, the inner wall of the positive conductive ring 140 is provided with the positive graphite layer 141. A negative graphite layer 151 is provided on the side of the negative conductive ring 150 close to the negative conductive sheet 260, and the inner wall of the negative conductive ring 150 is provided with the negative graphite layer 151. By setting the graphite layer, the friction force formed between the conductive sheet and the conductive ring can be effectively reduced, and the service life of each conductive sheet and conductive ring can be effectively extended.
[0042] It can be understood that a grounding graphite layer 133 is provided on the circumferential surface of the grounding conductive column 132. Through the grounding graphite layer 133, the frictional force formed between the grounding conductive sleeve 270 and the grounding conductive column 132 can be reduced, and the reliability of the rotation adjustment operation can be effectively improved.
[0043] It can be understood that the middle part of the positive conductive sheet 250 protrudes from the rotating body 210 in an arc shape, and the axis of the corresponding arc of the positive conductive sheet 250 is collinear with the axis of the grounding conductive column 132, so as to improve the contact effect of the positive conductive sheet 250 and the positive conductive ring 140, and the reliability of the conductive connection structure can be effectively improved; the middle part of the negative conductive sheet 260 protrudes from the rotating body 210 in an arc shape, and the axis of the corresponding arc of the negative conductive sheet 260 is collinear with the axis of the grounding conductive column 132, so as to improve the contact effect of the negative conductive sheet 260 and the negative conductive ring 150, and the reliability of the conductive connection structure can be effectively improved.
[0044] It can be understood that a flange 280 is provided around the circumferential surface of the rotating body 210. The flange 280 protrudes from the circumferential surface of the rotating body 210. A positioning groove 122 is provided on the upper cover 120. The top of the first mounting hole 121 is provided at the bottom of the positioning groove 122. The first mounting hole 121 communicates with the positioning groove 122. The flange 280 is arranged in the positioning groove 122. The shape and size of the flange 280 are equal to the shape and size of the positioning groove 122, and a good positioning effect can be formed. Preferably, the flange 280 is in a circular ring shape.
[0045] It can be understood that the housing base assembly 100 further includes a panel 160. The panel 160 is connected to the upper cover 120. Preferably, the panel 160 and the upper cover 120 can be connected by buckling or screws. A positioning hole 161 is provided in the panel 160 above the positioning groove 122. The axes of the positioning hole 161, the positioning groove 122 and the first mounting hole 121 are collinear. The top of the rotating body 210 passes through the positioning hole 161. The shape and size of the positioning hole 161 match the shape and size of the top of the rotating body 210. The positioning hole 161 is used to position the top of the rotating body 210. The top surface of the rotating body 210 is coplanar with the top surface of the panel 160.
[0046] During plug-in use, it can ensure reliable contact between the top surface of the rotating body 210 and the plug. Through the panel 160, the stability of the overall structure of the power socket can be effectively improved. The assembly operation is convenient, and the panel 160 can be prevented from interfering with the contact between the plug and the rotating body 210, and the reliability of the conductive connection structure during plug-in use can be effectively improved.
[0047] It is understandable that the bottom surface of the flange 280 is provided with an anti-slip positioning layer 281. The anti-slip positioning layer 281 can be set as a rubber layer. The anti-slip positioning layer 281 abuts against the bottom of the positioning groove 122. Through the anti-slip positioning layer 281, the stability of the position of the rotation module 200 relative to the housing base assembly 100 after rotation adjustment can be effectively improved, and the accuracy of the adjustment operation can be effectively improved.
[0048] It is understandable that the multi-directionally adjustable power socket further includes a fixing module 300. The fixing module 300 includes a circuit board 310 and a socket connector 320. The circuit board 310 is connected to the lower cover 110, and the socket connector 320 is connected to the circuit board 310. The upper cover 120 is also provided with a second mounting hole 123. There is a gap between the first mounting hole 121 and the second mounting hole 123. The socket part of the socket connector 320 is located in the second mounting hole 123. An external plug can be inserted into the socket part of the socket connector 320 to achieve electrical connection. When the housing base assembly 100 further includes a panel 160, the panel 160 is also provided with a relief hole for making way for the socket part of the socket connector 320.
[0049] Specifically, the socket connector 320 can be specifically set as a USB-A connector, a USB-C connector, or a two-pin socket connector, etc., which are used for inserting conductive connection structures. Replacing different fixing modules 300 according to different scenarios can meet different usage requirements, with a wide application range and strong versatility.
[0050] According to actual usage requirements, there can be several first mounting holes 121 in the upper cover 120, and a corresponding number of rotating seats 130, positive conductive rings 140, negative conductive rings 150 and rotation modules 200 are provided for matching use. The structure inside the rotation groove 131 is also set with the corresponding number, which can meet the usage requirements of multiple workstations.
[0051] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and purposes of the present invention. The scope of the present invention is defined by the claims and their equivalents.
Claims
1. A power socket that can be adjusted in multiple directions, characterized in that, Including: A housing base assembly (100), comprising a lower cover (110) and an upper cover (120), the upper cover (120) being connected to the lower cover (110), a first mounting hole (121) being provided in the upper cover (120), a rotating base (130) being provided at the bottom of the upper cover (120), a circular rotating groove (131) being provided on the rotating base (130), the notch of the rotating groove (131) being in communication with the bottom of the first mounting hole (121), a grounding conductive post (132) being provided at the bottom of the rotating groove (131), the axis of the grounding conductive post (132) being collinear with the axis of the rotating groove (131), a positive electrode annular groove (134) and a negative electrode annular groove (135) being provided on the groove wall of the rotating groove (131) at intervals along the grounding conductive post (132), a positive electrode conductive ring (140) being provided in the positive electrode annular groove (134), and a negative electrode conductive ring (150) being provided in the negative electrode annular groove (135); A rotating module (200), disposed in the rotating groove (131), the rotating module (200) comprising a rotating body (210), a positive electrode socket (220), a negative electrode socket (230), a grounding socket (240), a positive electrode conductive sheet (250), a negative electrode conductive sheet (260), and a grounding conductive sleeve (270), positive electrode holes (211), negative electrode holes (212), and a grounding hole (213) being provided at intervals at the top of the rotating body (210), the positive electrode socket (220) being disposed in the positive electrode hole (211), the negative electrode socket (230) being disposed in the negative electrode hole (212), the grounding socket (240) being disposed in the grounding hole (213), the positive electrode conductive sheet (250) and the negative electrode conductive sheet (260) being disposed at intervals on the circumferential surface of the rotating body (210) along the extending direction of the grounding conductive post (132), a receiving groove (214) being provided at the bottom of the rotating body (210), the grounding conductive sleeve (270) being disposed in the receiving groove (214), the positive electrode socket (220) being electrically connected to the positive electrode conductive sheet (250), the negative electrode socket (230) being electrically connected to the negative electrode conductive sheet (260), the grounding socket (240) being electrically connected to the grounding conductive sleeve (270), the positive electrode conductive sheet (250) abutting against the inner side of the positive electrode conductive ring (140), the negative electrode conductive sheet (260) abutting against the inner side of the negative electrode conductive ring (150), and the grounding conductive sleeve (270) being sleeved outside the grounding conductive post (132).
2. The multi-directionally adjustable power socket according to claim 1, wherein A positive electrode graphite layer (141) is provided on the side of the positive electrode conductive ring (140) close to the positive electrode conductive sheet (250), and a negative electrode graphite layer (151) is provided on the side of the negative electrode conductive ring (150) close to the negative electrode conductive sheet (260).
3. The multi-directionally adjustable power socket according to claim 1, wherein, A grounding graphite layer (133) is provided on the circumferential surface of the grounding conductive post (132).
4. The multi-directionally adjustable power socket according to claim 1, wherein The middle part of the positive electrode conductive sheet (250) protrudes away from the rotating body (210) in an arc shape, and the middle part of the negative electrode conductive sheet (260) protrudes away from the rotating body (210) in an arc shape.
5. A multi-directionally adjustable power socket according to claim 1, wherein, A flange (280) is arranged around the circumferential surface of the rotating body (210). A positioning groove (122) is arranged on the upper cover (120). The top of the first mounting hole (121) is arranged at the bottom of the positioning groove (122), and the flange (280) is arranged in the positioning groove (122).
6. The multi-directionally adjustable power socket according to claim 5, wherein, The housing base assembly (100) further includes a panel (160). The panel (160) is connected to the upper cover (120). A positioning hole (161) located above the positioning groove (122) is arranged in the panel (160). The top of the rotating body (210) passes through the positioning hole (161), and the top surface of the rotating body (210) is coplanar with the top surface of the panel (160).
7. The multi-directionally adjustable power socket according to claim 6, wherein, An anti-slip positioning layer (281) is arranged on the bottom surface of the flange (280), and the anti-slip positioning layer (281) abuts against the bottom of the positioning groove (122).
8. The multi-directionally adjustable power socket according to claim 1, wherein It further includes a fixing module (300). The fixing module (300) includes a circuit board (310) and a socket connector (320). The circuit board (310) is connected to the lower cover (110), and the socket connector (320) is connected to the circuit board (310). A second mounting hole (123) is further arranged in the upper cover (120), and the socket part of the socket connector (320) is arranged in the second mounting hole (123).