Socket with power line capable of rotating at multiple angles
By incorporating a rotating cavity and a spherical clamping block within the socket, the power cord can rotate at multiple angles, solving the problem of bending and deformation at the connection point between the power cord and the socket, and improving the lifespan of the power cord and the stability of the connection.
Patent Information
- Application Number
- CN202422784171.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-11-14
AI Technical Summary
The connection between the power cord and the socket in existing sockets is prone to bending and deformation due to torque, resulting in poor contact, affecting aesthetics and shortening service life.
Design a socket with a power cord that can rotate at multiple angles. By setting a rotating cavity inside the socket and installing a spherical wire clamp, the power cord can be rotated at multiple angles within the rotating cavity, and a stable connection is achieved through limiting structures and fixing teeth.
This avoids bending and deformation at the connection between the power cord and the socket, improves the lifespan of the power cord and the reliability of contact, and enhances the stability and aesthetics of the connection.
Smart Images

Figure CN223665812U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of socket technology, specifically to a socket with a power cord that can rotate at multiple angles. Background Technology
[0002] With the development of technology, more and more electrical appliances and electronic products have entered people's lives. In daily life, sockets are generally used to power electrical appliances and mat products.
[0003] Existing sockets generally include a power socket and a power cord. The power cord is electrically connected to the socket and extends directly from one side of the socket. Therefore, the power cord is always vertically fixed to the side surface of the socket. This causes the extension cord socket to be unable to adapt to the terrain and the needs of electrical appliances, changing the connection angle between the power cord and the socket. This results in the connection point of the power cord and the socket being frequently subjected to torque and bending deformation. This is not only unsightly, but also, over the years, can easily cause damage to the electrical function, such as poor contact of the power cord. Utility Model Content
[0004] To address the technical problems existing in the background art, this utility model proposes a socket with a power cord that can rotate at multiple angles.
[0005] The technical solution adopted by this utility model to solve its technical problem is as follows:
[0006] A power cord rotatable socket includes a main body and a power cord disposed on the main body;
[0007] The main body is provided with a power supply structure, and the main body is provided with a plurality of power supply sockets and a rotating cavity. A spherical clamping block is rotated in the rotating cavity. The power cord is fixed on the clamping block. The clamping block rotates along the rotating cavity to drive the power cord to rotate at multiple angles.
[0008] Preferably, the outer periphery of the clamping block has opposing limiting protrusions, which are inserted into the rotating cavity. With this improvement, when the clamping block rotates within the rotating cavity, the limiting protrusions restrict the rotation angle of the clamping block.
[0009] Preferably, the clamping block includes a hemispherical upper pressure block and a lower pressure block, which together form a compression space for clamping and fixing the power cord, and the power cord passes through the compression space. With this improvement, during assembly, the power cord is placed on the lower pressure block, and then the upper pressure block is locked onto it, thus fixing the power cord within the compression space, allowing the power cord to rotate with the clamping block.
[0010] Preferably, the upper and lower pressure blocks are provided with fixing teeth that abut against the outer periphery of the power cord. Through this improvement, the fixing teeth press against the outer periphery of the power cord at both ends, thereby ensuring the reliability of the clamping block's fixation to the power cord.
[0011] Preferably, a positioning post is formed on the upper pressure block, and a positioning groove is formed on the lower pressure block for the positioning post to be inserted. Through these improvements, the cooperation between the positioning post and the positioning groove enhances the convenience of the upper and lower pressure blocks during the closing process, as well as the stability of the power cord fixation.
[0012] Preferably, the upper and lower pressure blocks are connected by screws. The lower pressure block has a connecting post for the screw, and the upper pressure block has a connecting hole for the screw to pass through, as well as a limiting groove for the connecting post to be inserted. Through these improvements, during the connection process between the upper and lower pressure blocks, the screw passes through the connecting hole and connects with the positioning post, thereby locking the upper and lower pressure blocks together. This allows the upper and lower pressure blocks to cover and fix the power cord. Furthermore, after the upper and lower pressure blocks are closed, the positioning post is inserted into the limiting groove, further improving the reliability of the connection between the upper and lower pressure blocks.
[0013] Preferably, the clamping block has annular guide channels extending along the length of the power cord at both ends, and the power cord passes through the annular guide channels. Through these improvements, the annular guide channels can increase the distance for fixing the power cord, not only improving the reliability of the power cord fixing but also guiding the power cord, thus enhancing installation convenience.
[0014] Preferably, the main body includes a shell and a base plate, the rotating cavity is formed between the shell and the base plate, and an arc-shaped limiting surface is formed on the shell and the base plate. The arc-shaped limiting surface conforms to the outer contour of the clamping block to prevent the clamping block from detaching from the rotating cavity. Through the above improvements, the arc-shaped limiting surface can limit the clamping block, allowing it to rotate within the rotating cavity and preventing the clamping block from detaching from the rotating cavity.
[0015] Preferably, a plurality of snap-fit blocks are formed on the base plate, and a plurality of snap-fit protrusions are formed on the outer shell, and snap-fit grooves are formed on the snap-fit blocks for the snap-fit protrusions to be inserted into. Through these improvements, by utilizing the engagement of the snap-fit blocks and the snap-fit protrusions, the snap-fit protrusions are placed into the snap-fit grooves, allowing the base plate to snap onto the outer shell and forming a rotating cavity, thus improving the convenience of connecting the base plate and the outer shell.
[0016] Preferably, a sliding groove is formed inside the outer casing for the snap-fit block to slide, and the snap-fit protrusion is inserted into the sliding groove. Through this improvement, the sliding groove guides the snap-fit protrusion during the assembly of the outer casing and the base plate, enhancing the convenience of the assembly process.
[0017] Compared with the prior art, the present invention has the following advantages and beneficial effects:
[0018] By setting a rotating cavity inside the main body and rotating a spherical clamping block inside the rotating cavity, and fixing the power cord to the clamping block, the clamping block can rotate inside the rotating cavity to drive the power cord to rotate at multiple angles. This avoids the power cord from being bent and deformed at the connection between the power cord and the power socket, which would cause poor contact and other damage to the electrical function, and greatly improves the service life of the power cord. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0020] Figure 2 This is an exploded view of the main body and the clamping block of this utility model;
[0021] Figure 3 This is a schematic diagram of the structure of the base plate of this utility model;
[0022] Figure 4 This is a schematic diagram of the internal structure of the outer shell of this utility model;
[0023] Figure 5 This is a schematic diagram of the main structure of the present utility model;
[0024] Figure 6 This is a schematic diagram of the structure of the clamping block and the power cord of this utility model.
[0025] Figure 7 This is a schematic diagram of the upper pressure block of this utility model;
[0026] Figure 8 This is a schematic diagram of the structure of the lower pressure block of this utility model;
[0027] In the diagram: 1. Main body; 2. Power cord; 1.1. Outer shell; 1.2. Base plate; 1.3. Power supply structure; 1.4. Power supply socket; 1.5. Rotating cavity; 1.6. Cable clamping block; 1.7. Limiting protrusion; 2.1. Upper pressure block; 2.2. Lower pressure block; 2.3. Extrusion space; 2.4. Fixing teeth; 2.5. Positioning post; 2.6. Positioning groove; 2.7. Connecting post; 2.8. Connecting hole; 2.9. Limiting groove; 3.1. Annular guide channel; 3.2. Arc-shaped limiting surface; 3.3. Snap-fit block; 3.4. Snap-fit protrusion; 3.5. Snap-fit groove; 3.6. Sliding groove; Detailed Implementation
[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0029] It should be understood that although the terms upper, middle, lower, top, one end, etc., appear in this document to describe various elements, these elements are not limited by these terms. These terms are only used to distinguish the elements from each other for ease of understanding, and are not used to define any directional or sequential restrictions.
[0030] like Figure 1-8 As shown, a socket with a power cord 2 that can rotate at multiple angles includes a main body 1 and a power cord 2 disposed on the main body 1.
[0031] Specifically, the main body 1 is provided with a power supply structure 1.3, and the main body 1 is provided with a number of power supply sockets 1.4. The main body 1 is also provided with a rotating cavity 1.5. A spherical clamping block 1.6 is rotated in the rotating cavity 1.5. The power cord 2 is fixed on the clamping block 1.6. The clamping block 1.6 rotates along the rotating cavity 1.5 to drive the power cord 2 to rotate at multiple angles.
[0032] By setting a rotating cavity 1.5 on the main body 1 and rotating a spherical clamping block 1.6 inside the rotating cavity 1.5, the power cord 2 can be rotated at multiple angles. This avoids the frequent bending and deformation at the connection between the power cord 2 and the power socket, which would lead to poor contact and damage to the electrical function of the power cord 2, and greatly improves the service life of the power cord 2.
[0033] Further explanation of the embodiment of the wire clamping block 1.6: The outer periphery of the wire clamping block 1.6 is provided with opposing limiting protrusions 1.7. The limiting protrusions 1.7 are placed in the rotating cavity 1.5. When the wire clamping block 1.6 rotates to a certain angle, the limiting protrusions 1.7 abut against the inner wall of the rotating cavity 1.5, thereby limiting the rotation angle of the wire clamping block 1.6, so that the wire clamping block 1.6 rotates within the specified angle, and can prevent the wire clamping block 1.6 from dislodging from the rotating groove.
[0034] Specifically, the clamping block 1.6 includes an upper pressing block 2.1 and a lower pressing block 2.2 arranged in a hemispherical shape. The upper pressing block 2.1 and the lower pressing block 2.2 form a pressing space 2.3 for pressing and fixing the power cord 2. The power cord 2 passes through the pressing space 2.3.
[0035] During assembly, the power cord 2 is first placed on the lower pressure block 2.2, and then the upper pressure block 2.1 is locked on the upper pressure block 2.1, so that the power cord 2 is fixed in the compression space 2.3, thereby allowing the power cord 2 to rotate with the clamping block 1.6.
[0036] Furthermore, fixing teeth 2.4 are formed on the upper pressure block 2.1 and the lower pressure block 2.2. The fixing teeth 2.4 abut against the outer periphery of the power cord 2. When the upper pressure block 2.1 and the lower pressure block 2.2 are closed, the fixing teeth 2.4 will squeeze the outer periphery of the power cord 2 at both ends, thereby ensuring the reliability of the wire clamping block 1.6 and the power cord 2.
[0037] In addition, a positioning post 2.5 is formed on the upper pressure block 2.1, and a positioning groove 2.6 is formed on the lower pressure block 2.2 for the positioning post 2.5 to be inserted. During the process of fixing the power cord 2 by the upper pressure block 2.1 and the lower pressure block 2.2, the positioning post 2.5 and the positioning groove 2.6 can be used to cooperate, which improves the convenience of the upper pressure block 2.1 and the lower pressure block 2.2 closing process, as well as the stability of fixing the power cord 2.
[0038] The upper pressure block 2.1 and the lower pressure block 2.2 are connected by screws. The lower pressure block 2.2 has a connecting post 2.7 for connecting screws, and the upper pressure block 2.1 has a connecting hole 2.8 for screws to pass through. The upper pressure block 2.1 also has a limiting groove 2.9 for the connecting post 2.7 to be inserted. During the connection process between the upper pressure block 2.1 and the lower pressure block 2.2, the screws pass through the connecting hole 2.8 and connect with the positioning post 2.5, thereby locking the upper pressure block 2.1 and the lower pressure block 2.2. This allows the upper pressure block 2.1 and the lower pressure block 2.2 to close and fix the power cord 2. After the upper pressure block 2.1 and the lower pressure block 2.2 close, the positioning post 2.5 will be inserted into the limiting groove 2.9, further improving the reliability of the connection between the upper pressure block 2.1 and the lower pressure block 2.2.
[0039] In some other embodiments, the clamping block 1.6 has annular guide channels 3.1 extending along the length of the power line 2 at both ends, and the power line 2 passes through the annular guide channels 3.1. The annular guide channels 3.1 can increase the distance for fixing the power line 2, which not only improves the reliability of fixing the power line 2, but also guides the power line 2 and improves the convenience of installation.
[0040] Preferably, the main body 1 includes an outer shell 1.1 and a base plate 1.2. The rotating cavity 1.5 is formed between the outer shell 1.1 and the base plate 1.2. An arc-shaped limiting surface 3.2 is formed on the outer shell 1.1 and the base plate 1.2. The arc-shaped limiting surface 3.2 fits the outer contour of the clamping block 1.6. The arc-shaped limiting surface 3.2 can limit the clamping block 1.6, allowing it to rotate within the rotating cavity 1.5 and preventing the clamping block 1.6 from dislodging from the rotating cavity 1.5. It can also guide the clamping block 1.6, making its rotation smoother.
[0041] As a further explanation of the fit between the outer shell 1.1 and the base plate 1.2, the base plate 1.2 has a plurality of snap-fit blocks 3.3, and the outer shell 1.1 has a plurality of snap-fit protrusions 3.4. The snap-fit blocks 3.3 have snap-fit grooves 3.5 for the snap-fit protrusions 3.4 to be inserted into the snap-fit grooves 3.5 by fitting the snap-fit blocks 3.3 with the snap-fit protrusions 3.4. This allows the snap-fit protrusions 3.4 to be inserted into the snap-fit grooves 3.5, so that the base plate 1.2 is snapped onto the outer shell 1.1 and forms a rotating cavity 1.5, thereby improving the convenience of connecting the base plate 1.2 and the outer shell 1.1.
[0042] Furthermore, a sliding groove 36 is formed inside the outer shell 1.1 for sliding the snap-fit block 3.3, and the snap-fit protrusion 3.4 is inserted into the sliding groove 3.6. The sliding groove 3.6 guides the snap-fit protrusion 3.4 during the assembly process of the outer shell 1.1 and the base plate, thereby improving the convenience of the assembly process of the outer shell 1.1 and the base plate.
[0043] This specific embodiment is merely an explanation of the present utility model and is not intended to limit the present utility model. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but as long as they are within the scope of the claims of the present utility model, they are protected by patent law.
Claims
1. A socket with a power cord that can rotate at multiple angles, characterized in that, Includes a main body (1) and a power cord (2) disposed on the main body (1); The main body (1) is provided with a power supply structure (1.3), and the main body (1) is provided with a plurality of power supply sockets (1.4). The main body (1) is also provided with a rotating cavity (1.5). A spherical clamping block (1.6) is rotated in the rotating cavity (1.5). The power cord (2) is fixed on the clamping block (1.6). The clamping block (1.6) rotates along the rotating cavity (1.5) to drive the power cord (2) to rotate at multiple angles. The outer periphery of the clamping block (1.6) forms a limiting protrusion (1.7) that is oppositely arranged. The limiting protrusion (1.7) is placed in the rotating cavity (1.5). The clamping block (1.6) includes an upper pressing block (2.1) and a lower pressing block (2.2) arranged in a hemispherical shape. The upper pressing block (2.1) and the lower pressing block (2.2) form a pressing space (2.3) for pressing and fixing the power cord (2). The power cord (2) passes through the pressing space (2.3). The main body (1) includes an outer shell (1.1) and a base plate (1.2). The rotating cavity (1.5) is formed between the outer shell (1.1) and the base plate (1.2). An arc-shaped limiting surface (3.2) is formed on the outer shell (1.1) and the base plate (1.2). The arc-shaped limiting surface (3.2) fits the outer contour of the clamping block (1.6) to restrict the clamping block (1.6) from leaving the rotating cavity (1.5). A plurality of snap-fit blocks (3.3) are formed on the base plate (1.2). A plurality of snap-fit protrusions (3.4) are formed on the outer shell (1.1). A snap-fit groove (3.5) for the snap-fit protrusions (3.4) to be inserted is formed on the snap-fit block (3.3).
2. The socket with a power cord that can rotate at multiple angles according to claim 1, characterized in that, The upper pressure block (2.1) and the lower pressure block (2.2) are provided with fixing teeth (2.4), which abut against the outer periphery of the power line (2).
3. A power cord rotatable socket according to claim 1, characterized in that, The upper pressing block (2.1) has a positioning post (2.5) formed on it, and the lower pressing block (2.2) has a positioning groove (2.6) for the positioning post (2.5) to be inserted into.
4. A power cord rotatable socket according to claim 1, characterized in that, The upper pressure block (2.1) and the lower pressure block (2.2) are connected by screws. The lower pressure block (2.2) has a connecting post (2.7) for connecting screws, the upper pressure block (2.1) has a connecting hole (2.8) for screws to pass through, and the upper pressure block (2.1) has a limiting groove (2.9) for the connecting post (2.7) to be inserted.
5. A power cord rotatable socket according to claim 1, characterized in that, The clamping block (1.6) has annular guide channels (3.1) extending along the length of the power line (2) at both ends, and the power line (2) passes through the annular guide channels (3.1).
6. A power cord rotatable socket according to claim 1, characterized in that, The outer casing (1.1) has a sliding groove (3.6) for sliding the snap-fit block (3.3), and the snap-fit protrusion (3.4) is inserted into the sliding groove (3.6).