Vertical socket

By adopting a snap-fit ​​structure to connect the socket body and the base in the vertical socket, the problem of low assembly efficiency caused by bolt connection is solved, and more efficient assembly and more stable snap-fit ​​effect are achieved.

CN223334091UActive Publication Date: 2025-09-12GONEO GRP CO LTD
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Patent Information

Application Number
CN202422660965.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-09-12
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

The socket body and the base of the vertical socket are usually connected by bolts, resulting in low assembly efficiency.

Method used

The socket body and the base are connected by the cooperation of the first clamping structure and the second clamping structure. The mold parting line of the second clamping structure is located in the same plane. It is processed and formed by the injection molding process to avoid burrs caused by friction and improve the clamping accuracy and stability.

Benefits of technology

The assembly process is simplified, the assembly efficiency is improved, and the clamping stability and dimensional accuracy between the socket body and the base are enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a vertical socket, and belongs to the technical field of sockets. The vertical socket comprises a socket body and a base. The socket body is provided with a first clamping structure, the base is provided with a second clamping structure, and the second clamping structure is matched with the first clamping structure, so that the base is clamped with the socket body; the first mold parting lines on the surfaces of the second clamping structures are located in the same plane. By adopting the vertical socket, the assembly process of the base and the socket body in the vertical socket can be simplified, so that the assembly efficiency of the vertical socket is improved, and the connection stability between the base and the socket body can be improved.
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Description

Technical Field

[0001] The present disclosure belongs to the technical field of sockets, and in particular relates to a vertical socket. Background Art

[0002] A vertical outlet is a type of outlet with multiple sockets spaced vertically apart. This greatly reduces the horizontal space occupied and is widely used in environments with limited horizontal space, such as desks and workstations.

[0003] A vertical socket typically consists of a socket body and a base. The socket body is a columnar structure with several sockets on its side walls. The base is connected to the bottom of the socket body to increase the contact area between the vertical socket and the desktop, improving the stability of the vertical socket.

[0004] Currently, the socket body and the base are usually connected by bolts, and technicians need to use tools to tighten the bolts during installation, which reduces assembly efficiency. Utility Model Content

[0005] The present disclosure provides a vertical socket that can solve the technical problems existing in the related art. The technical solution of the vertical socket is as follows:

[0006] The present disclosure provides a vertical socket, which includes a socket body and a base;

[0007] The socket body has a first clamping structure, and the base has a second clamping structure, and the second clamping structure cooperates with the first clamping structure to clamp the base and the socket body;

[0008] Wherein, the first mold parting lines on the surface of the second clamping structure are located in the same plane.

[0009] In some possible implementations, the base includes a base body and a bottom plate connected to each other, the base body has an annular structure, and the second clamping structure is provided on an inner wall of the base body.

[0010] In some possible implementations, a plurality of second clamping structures are provided on the inner wall of the base body, and the plurality of second clamping structures are arranged at intervals.

[0011] In some possible implementations, the base body and the second clamping structure are integrally formed, and the second mold parting line of the base body and the first mold parting line are located in the same plane.

[0012] In some possible implementations, the base body further has a connecting rib, and two ends of the connecting rib are respectively connected to two adjacent second clamping structures.

[0013] In some possible implementations, the top surface of the connecting rib and the first mold parting line of the two adjacent second clamping structure surfaces are located in the same plane, and the top surface is the wall surface of the connecting rib away from the bottom plate.

[0014] In some possible implementations, the connecting rib and the inner wall of the base body form a third clamping structure;

[0015] The bottom plate has a fourth clamping structure, and the fourth clamping structure cooperates with the third clamping structure to clamp the bottom plate and the base body.

[0016] In some possible implementations, the connecting rib is spaced apart from the inner wall of the base body;

[0017] The base body also has a supporting rib, and the two ends of the supporting rib are respectively connected to the connecting rib and the inner wall of the base body. The second clamping structure, the inner wall of the base body, the supporting rib and the connecting rib are surrounded to form the third clamping structure.

[0018] In some possible implementations, the base body, the second clamping structure, the connecting ribs and the supporting ribs are integrally formed.

[0019] In some possible implementations, the third engaging structure is a through slot;

[0020] The fourth clamping structure includes a connected connecting portion and an abutting portion, the connecting portion is located in the through slot, the abutting portion is located outside the through slot and abuts against the top surface of the connecting rib, and the top surface is the wall surface of the connecting rib away from the bottom plate.

[0021] In some possible implementations, the second clamping structure includes a clamping protrusion and a limiting rib, the clamping protrusion and the limiting rib are respectively fixed to the inner wall of the base body, and the limiting rib and the inner wall of the base body form a sliding groove;

[0022] The first clamping structure is a plate-shaped structure, the first clamping structure is located in the sliding groove, and the first clamping structure has a clamping hole, and the clamping hole is clamped with the clamping protrusion.

[0023] In some possible implementations, the base body has a first buckle structure and a second buckle structure;

[0024] The socket body has a first buckle structure, and the first buckle structure is engaged with the first buckle structure;

[0025] The bottom plate has a second buckle structure, and the second buckle structure is buckled with the second buckle structure;

[0026] In which, the socket body can move along the first direction to separate the first snap-fit ​​structure from the first buckle structure, and the base plate can move along the second direction to separate the second snap-fit ​​structure from the second buckle structure, and the second direction is the opposite of the first direction.

[0027] In some possible implementations, the base has a mounting groove on a side close to the socket body, and the vertical socket further includes a counterweight block, which is fixed in the mounting groove.

[0028] The technical solution provided by the present disclosure includes at least the following beneficial effects:

[0029] The present disclosure provides a vertical socket, in which the socket body and the base are clamped together by the cooperation between the first clamping structure and the second clamping structure. Compared with the technical solution of connecting by bolts in the related art, the assembly process of the vertical socket is relatively simple, thereby improving the assembly efficiency of the vertical socket.

[0030] Furthermore, the first mold parting line of the second clamping structure lies in the same plane. This prevents burrs from forming on the surface of the second clamping structure due to friction between the upper and lower molds during mold separation. This improves the dimensional accuracy of the second clamping structure and, in turn, enhances the connection stability between the base and the socket body.

[0031] It is to be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the disclosure. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] The accompanying drawings, which are incorporated into and constitute a part of the specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the present disclosure. In the drawings:

[0033] Figure 1 This is a structural diagram of a vertical socket provided by an embodiment of the present disclosure;

[0034] Figure 2 is a structural schematic diagram of a base provided by an embodiment of the present disclosure;

[0035] Figure 3 is a partially enlarged schematic diagram of a base provided by an embodiment of the present disclosure;

[0036] Figure 4 is a structural schematic diagram of a base provided by an embodiment of the present disclosure;

[0037] Figure 5 This is a partial structural diagram of a vertical socket provided by an embodiment of the present disclosure;

[0038] Figure 6 This is a structural diagram of a vertical socket provided by an embodiment of the present disclosure;

[0039] Figure 7 This is a structural diagram of a vertical socket provided by an embodiment of the present disclosure;

[0040] Figure 8 This is a structural diagram of a vertical socket provided by an embodiment of the present disclosure;

[0041] Figure 9 Schematic diagram of the mold separation process of the upper mold and the lower mold provided by the embodiment of the present disclosure;

[0042] Figure 10 It is a structural diagram of a vertical socket provided in an embodiment of the present disclosure.

[0043] Legend

[0044] 1. Socket body; 1a. First buckle structure;

[0045] 101. Housing; 102. Functional parts; 103. Fixing parts; 104. Power cord;

[0046] 1011, housing bottom plate; 1031, first slot structure; 1041, first anti-rotation rib; 1042, second anti-rotation rib; 1111, opening structure;

[0047] 11. First clamping structure; 111. Clamping hole;

[0048] 2. Base; 200. Slide; 210. First mold parting line;

[0049] 21. Second clamping structure; 22. Mounting slot; 23. Connecting rib; 24. Third clamping structure; 25. Fourth clamping structure; 26. Support rib;

[0050] 201, base body; 202, bottom plate; 203, connecting seat; 231, top surface; 251, connecting portion; 252, abutting portion; 211, clamping protrusion; 212, limiting rib;

[0051] 2011, second mold parting line; 201a, first buckle structure; 201b, second buckle structure; 202b, second buckle structure; 2031, second slot structure;

[0052] 3. Counterweight.

[0053] The above drawings illustrate specific embodiments of the present disclosure, which will be described in more detail below. These drawings and textual descriptions are not intended to limit the scope of the present disclosure in any way, but rather to illustrate the concepts of the present disclosure to those skilled in the art by reference to specific embodiments. DETAILED DESCRIPTION

[0054] In order to make the objectives, technical solutions and advantages of the present disclosure more clear, the embodiments of the present disclosure will be further described in detail below with reference to the accompanying drawings.

[0055] The terms used in the embodiments of the present disclosure are intended only to explain the embodiments of the present disclosure and are not intended to limit the present disclosure. Unless otherwise defined, technical or scientific terms used herein should have the same ordinary meaning as those of ordinary skill in the art to which the present disclosure pertains. The terms "first," "second," "third," and similar terms used in the patent specification and claims of the present disclosure do not denote any order, quantity, or importance, but are merely used to distinguish between different components. Similarly, terms such as "a" or "an" do not denote a limitation on quantity, but rather denote the presence of at least one. Terms such as "include" or "comprising" mean that the elements or objects preceding the term "include" or "comprising" include the elements or objects listed after the term and their equivalents, and do not exclude other elements or objects. Terms such as "connected" or "connected" are not limited to physical or mechanical connections but may include electrical connections, whether direct or indirect. Terms such as "upper," "lower," "left," and "right" are used only to indicate relative positional relationships. When the absolute position of the described object changes, the relative positional relationship may also change accordingly.

[0056] A vertical socket typically consists of a socket body and a base. The socket body is a columnar structure with several sockets on its sidewalls. The base is connected to the bottom of the socket body, increasing the contact area between the socket and the desktop and improving its stability. However, the socket body and base are typically connected using bolts, which require technicians to use tools to tighten the bolts during installation, resulting in low assembly efficiency.

[0057] The present disclosure provides a vertical socket, such as Figure 1 As shown, the vertical socket includes a socket body 1 and a base 2.

[0058] The socket body 1 has a first clamping structure 11 , and the base 2 has a second clamping structure 21 . The second clamping structure 21 cooperates with the first clamping structure 11 to clamp the base 2 to the socket body 1 .

[0059] By adopting the technical solution shown in the present disclosure, the base 2 and the socket body 1 are connected in a snap-fit ​​manner through the cooperation between the second snap-fit ​​structure 21 and the first snap-fit ​​structure 11. Compared with the solution of connecting the base and the socket body by bolts in the related art, the assembly process of the vertical socket is simpler, thereby improving the assembly efficiency of the vertical socket and reducing costs.

[0060] Further, see Figure 3 ( Figure 3 for Figure 2 The base 2 can be formed by injection molding, and the first mold parting line 210 on the surface of the second clamping structure 21 is located in the same plane. Figure 9 When the base 2 is demolded, the surface of the second clamping structure 21 will not produce burrs due to the friction between the upper mold and the lower mold, thereby improving the dimensional accuracy of the second clamping structure 21 and further improving the clamping stability between the base 2 and the socket body 1.

[0061] In some possible embodiments, the base 2 includes a base body 201 and a bottom plate 202 .

[0062] like Figure 4 As shown, the base 2 includes a base body 201 and a bottom plate 202. The base body 201 has a ring structure, and the bottom plate 202 has a plate structure. The base body 201 and the bottom plate 202 are detachably connected. In this way, by configuring the base 2 as the base body 201 and the bottom plate 202, the difficulty of processing the base 2 can be reduced.

[0063] Exemplarily, the base body 201, the bottom plate 202 and the socket body 1 can all be molded using a pressurized injection molding process. The base body 201, the bottom plate 202 and the socket body 1 can be made of the same material, for example, all acrylonitrile-styrene-butadiene copolymer (also known as ABS plastic), or all polycarbonate (Polycarbonate, also known as PC plastic). Of course, the base body 201, the bottom plate 202 and the socket body 1 can also be made of different materials. Technicians can set them according to actual needs, and the embodiments of the present disclosure do not limit this.

[0064] In some examples, the socket body 1 and the bottom plate 202 are respectively snap-fitted to the base body 201 , and the snap-fitting direction between the socket body 1 and the base body 201 is opposite to the snap-fitting direction between the bottom plate 202 and the base body 201 .

[0065] See also Figure 8 The base body 201 has a first buckle structure 201a and a second buckle structure 201b. Figure 7The socket body 1 has a first snap-fit ​​structure 1a, which is snap-fitted with the first buckle structure 201a. The bottom plate 202 has a second snap-fit ​​structure 202b, which is snap-fitted with the second buckle structure 201b.

[0066] In which, the socket body 1 can move along the first direction to separate the first snap-fit ​​structure 1a from the first buckle structure 201a, and the base plate 202 can move along the second direction to separate the second snap-fit ​​structure 202b from the second buckle structure 201b, and the second direction is the opposite of the first direction.

[0067] In this way, the socket body 1 and the bottom plate 202 are respectively engaged with the base body 201 , which can improve the assembly efficiency of the socket body 1 , the base body 201 and the bottom plate 202 .

[0068] Further, see Figure 7 The first buckling structure 201a has a first guide surface and a first abutting surface. The first guide surface is the wall surface of the first buckling structure 201a close to the socket body 1, and the first abutting surface is the wall surface of the first buckling structure 201a away from the socket body 1. The distance from the first guide surface to the inner wall of the base body 201 gradually increases along the second direction, and the first abutting surface is perpendicular to the second direction.

[0069] Thus, during the movement of the socket body 1 in the second direction, the first guide surface exerts a force perpendicular to the second direction on the first snap-fit ​​structure 1a. This force can cause the first snap-fit ​​structure 1a to elastically deform, thereby causing the first snap-fit ​​structure 1a to engage with the first latching structure 201a. During the movement of the socket body 1 in the first direction, the first abutting surface does not exert a force perpendicular to the second direction on the first snap-fit ​​structure 1a, thereby making it less likely for the first snap-fit ​​structure 1a to elastically deform, thereby making it more difficult for the first snap-fit ​​structure 1a to separate from the first latching structure 201a, and thereby improving the stability of the latching connection between the socket body 1 and the base body 201.

[0070] Accordingly, see Figure 8 The second buckle structure 201b can be provided with a second guide surface and a second abutting surface. The structure and function of the second guide surface and the second abutting surface can refer to the above description of the first guide surface and the first abutting surface, and will not be repeated here.

[0071] In one example, see Figure 8 The bottom plate 202 has a plurality of grooves on one side away from the base body 201 , and these grooves are used to accommodate anti-slip pads.

[0072] In practice, after the bottom plate 202 and the base body 201 are assembled, the bottom plate 202 is used to contact the ground, desktop, etc. during the use of the vertical socket. A plurality of grooves for accommodating anti-slip pads are provided on the side of the bottom plate 202 away from the base body 201. After the anti-slip pads are installed in the grooves, the vertical socket can be prevented from sliding during use, thereby improving its stability in use.

[0073] In some examples, the second clamping structure 21 is located on the base body 201. Figure 2 As shown, the base body 201 has a rectangular ring structure, and the second clamping structure 21 is integrally formed on the inner wall of the base body 201. In this way, the overall strength of the second clamping structure 21 can be improved, thereby improving the clamping stability between the base 2 and the socket body 1.

[0074] Furthermore, if Figure 4 As shown, the inner wall of the base body 201 can have multiple second snap-fit ​​structures 21. It's easy to understand that in this example, the socket body 1 has multiple first snap-fit ​​structures 11, and the multiple first snap-fit ​​structures 11 correspond one-to-one with the multiple second snap-fit ​​structures 21. By providing multiple second snap-fit ​​structures 21 on the inner wall of the base body 201, the load transferred between the base 2 and the socket body 1 when they are snapped together can be evenly distributed between the multiple second snap-fit ​​structures 21 and the multiple first snap-fit ​​structures 11, thereby improving the service life of the vertical socket.

[0075] In one example, Figure 4 As shown, a plurality of second clamping structures 21 are arranged at intervals on the inner wall of the base body 201. In this way, the plurality of second clamping structures 21 can be prevented from sticking together during mold separation, thereby improving the yield rate of the base 2.

[0076] Specifically, see Figure 4 The base body 201 has a rectangular ring structure. The base body 201 has four inner walls connected in sequence. Each inner wall can be provided with a plurality of second clamping structures 21.

[0077] For example, two second clamping structures 21 arranged at intervals may be provided on each of the inner walls.

[0078] In one example, see Figure 4 A plurality of second clamping structures 21 are provided on the inner wall of the base body 201 , and the first mold parting lines 210 of the plurality of second clamping structures 21 are located in the same plane.

[0079] Furthermore, the second mold parting line 2011 of the base body 201 is located in the same plane, which may be the plane where the first mold parting line 210 is located. Figure 4, the second mold parting line 2011 of the base body 201 and the first mold parting line 210 are located in the same plane.

[0080] Thus, on the one hand, during the mold separation operation, since the first mold parting lines 210 of the multiple second clamping structures 21 are located in the same plane, the mold separation can be completed without using complex operations such as tilting and inserting, which can reduce the mold separation difficulty. On the other hand, it can also reduce the complexity of the mold and reduce costs.

[0081] In some possible embodiments, the second clamping structure 21 includes a clamping portion and a limiting portion.

[0082] See also Figure 5 The socket body 1 has a prismatic structure and has a first engaging structure 11 at one end of the socket body 1 near the base 2. The first engaging structure 11 is arranged along the edge of the wall of the socket body 1 near the base 2. The first engaging structure 11 is a plate-shaped structure and has an engaging hole 111 connecting the two sides of the plate thickness.

[0083] See also Figure 5 The second engaging structure 21 includes a engaging protrusion 211 and a limiting rib 212, each of which is fixed to the inner wall of the base body 201. The engaging protrusion 211 is the engaging portion of the second engaging structure 21, and is used to engage with the engaging hole 111 of the first engaging structure 11. The limiting rib 212 is the limiting portion of the second engaging structure 21. In practice, the first engaging structure 11 extends from the notch of the chute 200 into the chute 200 until the engaging hole 111 is positioned over the engaging protrusion 211.

[0084] Furthermore, if Figure 5 As shown, the limiting rib 212 and the inner wall of the base body 201 form a slide groove 200, which is used to provide a guiding function for the first clamping structure 11 to extend into the interior of the second clamping structure 21, and is used to limit the first clamping structure 11 after the clamping protrusion 211 is clamped with the clamping hole 111 on the first clamping structure 11, thereby preventing the clamping hole 111 on the first clamping structure 11 from separating.

[0085] In some examples, the base body 201 further has a connecting rib 23 , and the connecting rib 23 is used to connect two adjacent second clamping structures 21 .

[0086] like Figure 4As shown, the base body 201 has a rectangular annular structure, with the second clipping structure 21 integrally formed on the inner wall of the base body 201. The base body 201 has four sequentially connected inner walls, each of which can be provided with two second clipping structures 21. Each inner wall is provided with a connecting rib 23, with each connecting rib 23 having two ends connected to the two second clipping structures 21 belonging to the same inner wall. The provision of the connecting ribs 23 thus enhances the connection strength between the second clipping structure 21 and the base body 201.

[0087] Furthermore, the base body 201, the second clamping structure 21 and the connecting rib 23 can be integrally formed, thereby reducing the difficulty of manufacturing the base 2 and lowering the cost.

[0088] In one example, the top surface 231 of the connecting rib 23 and the first mold parting line 210 on the surfaces of two adjacent second clamping structures 21 are located in the same plane. The top surface 231 is the wall surface of the connecting rib 23 away from the bottom plate 202. This can prevent burrs from forming on the surface of the second clamping structure 21 during the mold separation process, thereby improving the processing accuracy of the second clamping structure 21.

[0089] In some possible embodiments, the base body 201 and the bottom plate 202 may be connected by a snap-fitting manner.

[0090] In some examples, such as Figure 4 As shown, the bottom plate 202 has a fourth snap-fit ​​structure 25 on one side close to the base body 201, and a third snap-fit ​​structure 24 is formed between the connecting rib 23 and the inner wall of the base body 201. The fourth snap-fit ​​structure 25 cooperates with the third snap-fit ​​structure 24 to snap the base body 201 and the bottom plate 202 together.

[0091] Specifically, see Figure 4 The third clamping structure 24 forms a through groove between the connecting rib 23 and the inner wall of the base body 201, and the fourth clamping structure 25 includes a connected connecting portion 251 and abutting portion 252. The connecting portion 251 is located in the through groove, and the abutting portion 252 is located outside the through groove and abuts against the top surface 231 of the connecting rib 23.

[0092] The top surface 231 is the wall surface of the connecting rib 23 away from the bottom plate 202 .

[0093] Alternatively, see Figure 4The connecting portion 251 has a plate-like structure, and the connecting portion 251 is arranged perpendicular to the bottom plate 202. The abutting portion 252 has a triangular prism-like structure. One side wall surface of the abutting portion 252 is connected to the top of the connecting portion 251, and the other side wall surface of the abutting portion 252 is arranged perpendicular to the bottom plate 202. The projection of the abutting portion 252 on the bottom plate 202 is rectangular, and the through groove is a rectangular through groove. The width of the rectangle is greater than the width of the through groove.

[0094] During operation, the abutment portion 252 partially enters the through-slot. As the bottom plate 202 moves toward the base body 201, the abutment portion 252 compresses the connecting rib 23, causing the rib 23 to deform, thereby increasing the cross-sectional area of ​​the through-slot and allowing the abutment portion 252 to fully pass through the through-slot. After the abutment portion 252 extends out of the through-slot, it abuts against the top surface 231 of the connecting rib 23. The connecting rib 23 returns to its original size, thereby limiting the abutment portion 252 and preventing the bottom plate 202 from moving away from the base body 201.

[0095] In one example, the connecting rib 23 is spaced apart from the inner wall of the base body 201 , and a third clamping structure 24 is formed between the connecting rib 23 , the second clamping structure 21 and the inner wall of the base body 201 .

[0096] See also Figure 4 There is a gap between the connection position between the connecting rib 23 and the second clamping structure 21 and the inner wall of the base body 201. A third clamping structure 24 is formed between the side wall of the connecting rib 23 close to the inner wall of the base body 201, the inner wall of the base body 201 and the outer wall of the second clamping structure 21. The third clamping structure 24 is a through groove structure.

[0097] The technical solution disclosed herein improves the strength of the second clipping structures 21 by providing a connecting rib 23 between two adjacent second clipping structures 21. Furthermore, by spacing the connection between the connecting rib 23 and the second clipping structure 21 from the inner wall of the base body 201 and utilizing the outer wall of the second clipping structure 21 to form the third clipping structure 24 as a through-slot, this effectively reduces material consumption and costs for forming the second clipping structures 21. Furthermore, the outer wall of the second clipping structure 21, acting as a side wall of the through-slot, limits the movement of the fourth clipping structure 25 within the through-slot, thereby enhancing the stability of the clipping connection between the bottom plate 202 and the base body 201.

[0098] Optionally, the connecting rib 23 has a plate-shaped structure, and the connecting rib 23 is arranged parallel to the inner wall of the base body 201 .

[0099] Furthermore, the base body 201 also has a supporting rib 26, the two ends of which are respectively connected to the connecting rib 23 and the inner wall of the base body 201. The second clamping structure 21, the inner wall of the base body 201, the supporting rib 26 and the connecting rib 23 are arranged to form a third clamping structure 24.

[0100] Specifically, see Figure 4 Each connecting rib 23 can be provided with two supporting ribs 26, which are spaced apart in the extending direction of the connecting rib 23. Each supporting rib 26 forms a third clamping structure 24 with each corresponding second clamping structure 21. In other words, the base body 201 has a total of eight third clamping structures 24. Correspondingly, the bottom plate 202 has eight fourth clamping structures 25, each of which is clamped to a corresponding third clamping structure 24. Thus, by providing the supporting ribs 26, the connection strength between the connecting rib 23 and the base body 201 can be improved. By providing a larger number of third clamping structures 24 and fourth clamping structures 25, the connection stability between the base body 201 and the bottom plate 202 can be improved.

[0101] Optionally, the base body 201, the second clamping structure 21, the connecting ribs 23 and the supporting ribs 26 are integrally formed. The base body 201, the second clamping structure 21, the connecting ribs 23 and the supporting ribs 26 can be formed together during the injection molding process of the base body 201, thereby reducing processing costs.

[0102] In some possible embodiments, the vertical socket further includes a counterweight 3 .

[0103] like Figure 6 As shown, the base 2 has a mounting groove 22 on one side close to the socket body 1 , and the vertical socket further includes a counterweight 3 , which is fixed in the mounting groove 22 .

[0104] In one example, see Figure 4 The base 2 includes a base body 201 and a bottom plate 202. The base body 201 has a ring structure, and the bottom plate 202 has a plate structure. The base body 201 and the bottom plate 202 are connected. The above-mentioned mounting groove 22 is formed between the inner wall of the base body 201 and the wall of the bottom plate 202 close to the base body 201.

[0105] During implementation, the base body 201 and the bottom plate 202 can be assembled first to form the installation groove 22, and then the counterweight block 3 can be placed in the installation groove 22. Finally, the socket body 1 and the base body 201 can be snapped together, and the socket body 1 can be used to cover the notch of the installation groove 22 to complete the assembly.

[0106] By adopting the technical solution shown in the embodiment of the present disclosure, by arranging the counterweight block 3 in the base 2, the center of gravity of the vertical socket can be lowered, thereby improving the stability of the vertical socket during use.

[0107] In one example, the inner wall of the base body 201 is provided with a plurality of second engaging structures 21, and the plurality of second engaging structures 21 are respectively in contact with the counterweight 3. Thus, by arranging the plurality of second engaging structures 21 to respectively in contact with the counterweight 3, the counterweight 3 can be prevented from shaking inside the vertical socket.

[0108] In some possible embodiments, the socket body 1 includes a shell 101, a functional part 102, a fixing part 103 and a power cord 104, and the base 2 also includes a connecting seat 203, and the power cord 104 is respectively connected to the fixing part 103 and the connecting seat 203.

[0109] like Figure 10 ( Figure 10 As shown in the figure (partially removed), the housing 101 has a cylindrical structure and a housing bottom plate 1011. The housing bottom plate 1011 has an opening structure 1111. The functional component 102 is fixed in the housing 101 and arranged opposite the socket on the outer wall of the housing 101. The fixing component 103 is inside the housing 101 and has a first slot structure 1031, which is arranged opposite the opening structure 1111. The connecting base 203 is fixed to the inner wall of the base body 201 and has a second slot structure 2031, which is arranged opposite the opening structure 1111. The outer ring of the power cord 104 has a first anti-rotation rib 1041 and a second anti-rotation rib 1042. The first anti-rotation rib 1041 passes through the shell bottom plate 1011 and is plugged into the above-mentioned first slot structure 1031, and the second anti-rotation rib 1042 is plugged into the above-mentioned second slot structure 2031, so that the power cord 104 is respectively connected to the fixing part 103 and the connecting seat 203.

[0110] In this way, the assembly efficiency of the power cord 104 can be improved.

[0111] Optionally, the connecting seat 203 and the base body 201 are integrally formed.

[0112] The technical solution provided by the present disclosure includes at least the following beneficial effects:

[0113] The present disclosure provides a vertical socket, in which the socket body 1 and the base 2 are clamped together by the cooperation between the first clamping structure 11 and the second clamping structure 21. Compared with the technical solution of connecting by bolts in the related art, the assembly process of the vertical socket is relatively simple, thereby improving the assembly efficiency of the vertical socket.

[0114] Furthermore, the first mold parting line 210 of the second clamping structure 21 lies in the same plane. Thus, when the base 2 is molded, the surface of the second clamping structure 21 is free of burrs due to friction between the upper and lower molds. This improves the dimensional accuracy of the second clamping structure 21 and further enhances the clamping stability between the base 2 and the socket body 1.

[0115] The above descriptions are merely optional embodiments of the present disclosure and are not intended to limit the present disclosure. Any modifications, equivalent replacements, improvements, etc. made within the principles of the present disclosure shall be included in the scope of protection of the present disclosure.

Claims

1. A vertical socket, characterized in that: The vertical socket comprises a socket body (1) and a base (2); The socket body (1) has a first clamping structure (11), and the base (2) has a second clamping structure (21), and the second clamping structure (21) cooperates with the first clamping structure (11) to clamp the base (2) and the socket body (1); Wherein, the first mold parting line (210) on the surface of the second clamping structure (21) is located in the same plane.

2. The vertical socket according to claim 1, characterized in that: The base (2) comprises a connected base body (201) and a bottom plate (202); the base body (201) has an annular structure; and the inner wall of the base body (201) is provided with the second clamping structure (21).

3. The vertical socket according to claim 2, characterized in that: The inner wall of the base body (201) is provided with a plurality of second clamping structures (21), and the plurality of second clamping structures (21) are arranged at intervals.

4. The vertical socket according to claim 3, characterized in that: The base body (201) and the second clamping structure (21) are integrally formed, and the second mold parting line (2011) of the base body (201) and the first mold parting line (210) are located in the same plane.

5. The vertical socket according to claim 3, characterized in that: The base body (201) further comprises a connecting rib (23), and both ends of the connecting rib (23) are respectively connected to two adjacent second clamping structures (21).

6. The vertical socket according to claim 5, characterized in that: The top surface (231) of the connecting rib (23) and the first mold parting line (210) on the surfaces of the two adjacent second clamping structures (21) are located in the same plane, and the top surface (231) is the wall surface of the connecting rib (23) away from the bottom plate (202).

7. The vertical socket according to claim 5, characterized in that: The connecting rib (23) and the inner wall of the base body (201) form a third clamping structure (24); The bottom plate (202) has a fourth clamping structure (25), and the fourth clamping structure (25) cooperates with the third clamping structure (24) to clamp the bottom plate (202) and the base body (201).

8. The vertical socket according to claim 7, characterized in that: The connecting rib (23) is spaced apart from the inner wall of the base body (201); The base body (201) further comprises a supporting rib (26), the two ends of which are respectively connected to the connecting rib (23) and the inner wall of the base body (201); the second clamping structure (21), the inner wall of the base body (201), the supporting rib (26) and the connecting rib (23) are arranged to form the third clamping structure (24).

9. The vertical socket according to claim 8, characterized in that: The base body (201), the second clamping structure (21), the connecting rib (23) and the supporting rib (26) are integrally formed.

10. The vertical socket according to claim 7, characterized in that: The third clamping structure (24) is a through slot; The fourth clamping structure (25) includes a connected connecting portion (251) and an abutting portion (252), wherein the connecting portion (251) is located in the through slot, and the abutting portion (252) is located outside the through slot and abuts against the top surface (231) of the connecting rib (23), and the top surface (231) is the wall surface of the connecting rib (23) away from the bottom plate (202).

11. The vertical socket according to claim 2, characterized in that: The second clamping structure (21) comprises a clamping protrusion (211) and a limiting rib (212), wherein the clamping protrusion (211) and the limiting rib (212) are respectively fixed on the inner wall of the base body (201), and the limiting rib (212) and the inner wall of the base body (201) form a sliding groove (200); The first clamping structure (11) is a plate-shaped structure. The first clamping structure (11) is located in the slide groove (200). The first clamping structure (11) has a clamping hole (111). The clamping hole (111) is clamped with the clamping protrusion (211).

12. The vertical socket according to claim 2, characterized in that: The base body (201) has a first buckle structure (201a) and a second buckle structure (201b); The socket body (1) has a first snap-fit ​​structure (1a), and the first snap-fit ​​structure (1a) is snap-fitted with the first buckle structure (201a); The bottom plate (202) has a second snap-fit ​​structure (202b), and the second snap-fit ​​structure (202b) is snap-fitted with the second buckle structure (201b); The socket body (1) is capable of moving in a first direction to separate the first snap-fit ​​structure (1a) from the first buckle structure (201a), and the base plate (202) is capable of moving in a second direction to separate the second snap-fit ​​structure (202b) from the second buckle structure (201b), wherein the second direction is opposite to the first direction.

13. The vertical socket according to any one of claims 1 to 12, characterized in that: The base (2) has a mounting groove (22) on one side close to the socket body (1), and the vertical socket further comprises a counterweight (3), and the counterweight (3) is fixed in the mounting groove (22).