Socket core assembly and magic cube socket

By designing the copper bar of the socket core assembly to pass through the bracket through holes, the problem of excessive size of the socket core assembly is solved, and the miniaturization and safety improvement of the Rubik's cube socket is achieved.

CN223206483UActive Publication Date: 2025-08-08GONEO GRP CO LTD
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Patent Information

Application Number
CN202422360874.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2025-08-08
Estimated Expiration
2034-09-26

AI Technical Summary

Technical Problem

The socket core assembly of the existing Rubik's Cube socket is larger because the first and second pole copper strips are located outside the bracket, resulting in a larger size of the socket core assembly, which in turn makes the Rubik's Cube socket larger.

Method used

The first or second pole copper strip is designed to pass through the partition through holes of the bracket, so that the space it occupies is the inner space of the bracket, thereby reducing the volume of the socket core assembly, and increasing the electrical gap through the partition and the partition bar to ensure safety.

Benefits of technology

The socket core assembly is miniaturized, reducing the risk of short circuit and creepage distance shortening, and improving the safety and miniaturization effect of the Rubik's Cube socket.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a socket core assembly and a magic cube socket, and belongs to the technical field of electric appliances. The socket core assembly comprises a support, two plug bush assemblies, a first pole copper bar and a second pole copper bar. The support comprises two installation parts and a partition plate, the two installation parts are distributed on the two back-to-back faces of the partition plate, the partition plate is provided with at least one through hole, and the through hole penetrates through the two back-to-back faces of the partition plate. The two plug bush assemblies are located on the two installation parts respectively, the two ends of the first pole copper bar are connected with the two plug bush assemblies respectively, and the two ends of the second pole copper bar are connected with the two plug bush assemblies respectively. And at least one of the first pole copper bar and the second pole copper bar passes through the through hole. In this way, the space occupied by the first pole copper bar or the second pole copper bar is the internal space of the support instead of the space outside the support. Therefore, the size of the socket core assembly can be reduced, and miniaturization of the magic cube socket can be realized.
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Description

Technical Field

[0001] The present disclosure relates to the field of electrical appliance technology, and in particular to a socket core assembly and a magic cube socket. Background Art

[0002] The Rubik's Cube socket is a new type of socket. It consists of a socket core assembly and a housing that covers the socket core assembly. The socket core assembly has multiple socket surfaces, allowing users to power electronic devices from different socket surfaces, thus avoiding interference between the plugs of different electronic devices.

[0003] In related art, a socket core assembly includes a bracket, two socket assemblies, a first-pole copper bar, and a second-pole copper bar. The bracket has two opposing mounting locations. The two socket assemblies are located in the two mounting locations, respectively. Each socket assembly includes a first-pole socket segment and a second-pole socket segment. The first-pole copper bar is connected to the two first-pole socket segments at both ends, while the second-pole copper bar is connected to the two second-pole socket segments at both ends. The first-pole copper bar and the second-pole copper bar bypass one side of the bracket.

[0004] However, in the related art, the first-pole copper bar and the second-pole copper bar are located outside the bracket, which makes the socket core assembly larger and causes the magic cube socket to be larger in size. Utility Model Content

[0005] The present disclosure provides a socket core assembly and a magic cube socket, which can solve the technical problems existing in the related art. The technical solutions of the socket core assembly and the magic cube socket are as follows.

[0006] In a first aspect, the present disclosure provides a socket core assembly, the socket core assembly comprising a bracket, two socket assemblies, a first-pole copper bar and a second-pole copper bar;

[0007] The bracket includes two mounting parts and a partition, wherein the two mounting parts are distributed on two opposite sides of the partition, and the partition has at least one through hole, and the through hole passes through the two opposite sides of the partition;

[0008] The two socket assemblies are respectively arranged on the two mounting parts, and each socket assembly includes a first pole socket segment and a second pole socket segment;

[0009] Both ends of the first pole copper bar are respectively connected to the two first pole socket segments, and both ends of the second pole copper bar are respectively connected to the two second pole socket segments. At least one of the first pole copper bar and the second pole copper bar passes through one of the through holes.

[0010] In a possible implementation, the first-pole copper bar passes through one of the through holes, and the second-pole copper bar goes around an edge of the partition.

[0011] In a possible implementation, the first pole socket segment includes two first pole sockets and a first connecting segment, and the two first pole sockets are connected via the first connecting segment;

[0012] Two ends of the first-pole copper bar are respectively connected to the first connecting sections of the two first-pole socket sections.

[0013] In a possible implementation, the first-pole copper bar includes a first sub-copper bar and a second sub-copper bar;

[0014] The first sub-copper bar is integrally connected to one of the first pole socket segments, the second sub-copper bar is integrally connected to another of the first pole socket segments, and the first sub-copper bar is connected to the second sub-copper bar.

[0015] In a possible implementation, the first sub-copper bar has a first inserting bar, the second sub-copper bar has a first inserting hole, and the first inserting bar extends into the first inserting hole.

[0016] In a possible implementation manner, the first sub-copper bar or the second sub-copper bar passes through the through hole.

[0017] In a possible implementation, the first pole plug sleeve section located at one mounting portion is opposite to the second pole plug sleeve section located at another mounting portion;

[0018] The first sub-copper bar includes a first bending section and a second bending section, one end of the first bending section is connected to the first pole sleeve section, and the other end is connected to the second bending section, the second bending section is bent relative to the first bending section and passes through the through hole, and the end of the second bending section away from the first bending section is connected to the second sub-copper bar.

[0019] In a possible implementation manner, the first bending section and the second sub-copper bar are distributed on both sides of the second bending section and extend in opposite directions.

[0020] In a possible implementation, the first pole plug sleeve section located at one mounting portion is opposite to the second pole plug sleeve section located at another mounting portion;

[0021] The through hole is located between the first pole socket segment and the second pole socket segment of the same socket assembly.

[0022] In a possible implementation, the first pole socket segment includes two first pole sockets and a first connecting segment, the two first pole sockets are connected via the first connecting segment, and the second pole socket segment includes two second pole sockets and a second connecting segment, the two second pole sockets are connected via the second connecting segment;

[0023] The through hole is located between the first connecting section and the second connecting section of the same socket assembly.

[0024] In a possible implementation, two opposite side walls of the through hole are respectively located on two sides of a reference plane, wherein the reference plane is a symmetric plane of the first connecting section and the second connecting section of the same socket assembly.

[0025] In a possible implementation, the bracket further includes a partition rib, the partition rib is located between the through hole and the second connecting segment, and the partition rib is used to separate the first pole copper bar from the second connecting segment.

[0026] In a possible implementation, the socket core assembly further includes a third pole socket segment, the third pole socket segment including two third pole sockets and a third connecting segment, the two third pole sockets being connected via the third connecting segment, and the two third pole sockets being respectively located at the two mounting portions;

[0027] The partition plate has a slot, the slot runs through two opposite sides of the partition plate, and the third connecting section passes through the slot.

[0028] In a possible implementation, the slot is provided with an opening at an edge of the partition, and the third connecting section can enter and exit the slot through the opening.

[0029] In a second aspect, the present disclosure further provides a Rubik's Cube socket, which includes the socket core assembly described in any one of the first aspects.

[0030] The technical solution provided by the present disclosure includes at least the following beneficial effects:

[0031] The present disclosure provides a socket core assembly in which, when the first-pole copper bar or the second-pole copper bar passes through the through hole, the space occupied is the internal space of the bracket, rather than the space outside the bracket. This can reduce the volume of the socket core assembly and facilitate the miniaturization of the magic cube socket.

[0032] 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

[0033] 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:

[0034] Figure 1 This is a structural diagram of a magic cube socket shown in an embodiment of the present disclosure;

[0035] Figure 2This is an exploded view of a Rubik's Cube socket shown in an embodiment of the present disclosure;

[0036] Figure 3 It is a structural schematic diagram of a socket core assembly shown in an embodiment of the present disclosure;

[0037] Figure 4 is a schematic structural diagram of a bracket shown in an embodiment of the present disclosure;

[0038] Figure 5 This is a schematic diagram of an assembly of a bracket and a first-pole copper bar shown in an embodiment of the present disclosure;

[0039] Figure 6 1 is a schematic structural diagram of a first-pole socket segment and a first-pole copper bar shown in an embodiment of the present disclosure;

[0040] Figure 7 is a structural schematic diagram of a socket core assembly shown in an embodiment of the present disclosure;

[0041] Figure 8 This is a schematic structural diagram of a second-pole socket segment and a second-pole copper bar shown in an embodiment of the present disclosure;

[0042] Figure 9 This is a schematic diagram of an assembly of a bracket and a third-pole copper bar shown in an embodiment of the present disclosure;

[0043] Figure 10 1 is a schematic structural diagram of a third-pole socket and a third-pole copper bar shown in an embodiment of the present disclosure;

[0044] Figure 11 It is a schematic diagram of the assembly of a bracket and a latch assembly shown in an embodiment of the present disclosure.

[0045] Legend:

[0046] 1. Bracket; 11. Mounting portion; 12. Partition; 121. Through hole; 121a. Central axis; 121b. Side wall; 122. Slot; 122a. Opening; 122b. Snap-fit protrusion; 123. Positioning protrusion; 13. Spacer rib; 14. First snap-fit structure; 15. Retaining rib;

[0047] 2. Socket assembly; 20. Positioning hole; 21. First pole socket section; 211. First pole socket; 212. First connecting section; 22. Second pole socket section; 221. Second pole socket; 222. Second connecting section;

[0048] 3. First copper bar; 31. First sub-copper bar; 31a. First insertion bar; 311. First bending section; 312. Second bending section; 32. Second sub-copper bar; 32a. First insertion hole;

[0049] 4. Second-pole copper bar; 41. Third-pole connecting section; 41a. Second plug-in bar; 42. Fourth-pole connecting section; 42a. Second plug-in hole;

[0050] 5. Shell; 50. Jack; 51. Housing; 52. End cap;

[0051] 6. Third pole socket section; 61. Third pole socket; 62. Third connecting section;

[0052] 7. Protect door components;

[0053] 8. USB socket assembly;

[0054] 9. Latch assembly; 91. Latch seat; 911. Second clamping structure; 92. First pole latch; 93. Second pole latch; 94. Third pole latch.

[0055] 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

[0056] 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.

[0057] 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.

[0058] The present disclosure provides a socket core assembly, such as Figure 1 and Figure 2 As shown, the magic cube socket includes a bracket 1, two socket assemblies 2, a first-pole copper bar 3, and a second-pole copper bar 4. The bracket 1 includes two mounting portions 11 and a partition 12. The two mounting portions 11 are distributed on opposite sides of the partition 12. The partition 12 has at least one through hole 121, which passes through the two opposite sides of the partition 12. Figure 3 and Figure 4 As shown, two socket assemblies 2 are respectively mounted on two mounting portions 11. Each socket assembly 2 includes a first pole socket segment 21 and a second pole socket segment 22. The first pole socket segment 21 includes at least one first pole socket 211, and the second pole socket segment 22 includes at least one second pole socket 221. The two ends of the first pole copper bar 3 are respectively connected to the two first pole socket segments 21, and the two ends of the second pole copper bar 4 are respectively connected to the two second pole socket segments 22. At least one of the first pole copper bar 3 and the second pole copper bar 4 passes through a through hole 121.

[0059] Among them, one of the first pole socket segment 21 and the second pole socket segment 22 is an N pole socket segment, and the other is an L pole socket segment. Exemplarily, the first pole socket segment 21 is an N pole socket segment, and the second pole socket segment 22 is an L pole socket segment.

[0060] In the technical solution provided by the disclosed embodiment, since at least one of the first and second copper bars 3 and 4 passes through through-hole 121, the space occupied by the first and second copper bars 3 and 4 is within the interior of bracket 1, rather than the space outside bracket 1. This reduces the overall space occupied by the socket core assembly, facilitating miniaturization of the Rubik's Cube socket.

[0061] Since the polarity of the first copper bar 3 and the second copper bar 4 is different, it is necessary to ensure that there is a large electrical gap between the first copper bar 3 and the second copper bar 4. Therefore, in some examples, such as Figure 3 and Figure 5 As shown, the first pole copper bar 3 passes through a through hole 121 , and the second pole copper bar 4 goes around the edge of the partition 12 , so that the distance between the first pole copper bar 3 and the second pole copper bar 4 is relatively large.

[0062] It should be noted that in the related art, the first-pole copper bar 3 and the second-pole copper bar 4 are usually bypassed on the same side of the bracket 1, which will result in a closer distance between the first-pole copper bar 3 and the second-pole copper bar 4. During the assembly process, it is easy for assembly deviations to cause the electrical clearance or creepage distance between the first-pole copper bar 3 and the second-pole copper bar 4 to be shortened, causing problems such as short circuits or fires in the Rubik's Cube socket when in use. In the embodiment of the present disclosure, the first-pole copper bar 3 is located inside the bracket 1, and the second-pole copper bar 4 is located outside the bracket 1, and the bracket 1 can isolate the first-pole copper bar 3 and the second-pole copper bar 4. This avoids the situation where the electrical clearance or creepage distance between the first-pole copper bar 3 and the second-pole copper bar 4 is shortened due to assembly deviations during the assembly process, thereby ensuring the safety of the Rubik's Cube socket and reducing the risk of short circuits or arcing.

[0063] In other examples, the second-pole copper bar 4 may pass through a through hole 121 , and the first-pole copper bar 3 may be located on one side of the bracket 1 . This embodiment of the present disclosure does not specifically limit this.

[0064] In some examples, such as Figure 6 As shown, the first pole socket segment 21 includes two first pole sockets 211 and a first connecting segment 212. The two first pole sockets 211 are connected by the first connecting segment 212. The two ends of the first pole copper bar 3 are respectively connected to the first connecting segments 212 of the two first pole socket segments 21. Compared with the first pole sockets 211, the first connecting segment 212 has a simpler structure, making it easier to connect the first pole copper bar 3 to the first connecting segment 212.

[0065] Of course, in other examples, in order to increase the electrical gap between the first pole copper bar 3 and the second pole copper bar 4 , both ends of the first pole copper bar 3 may also be connected to the first pole sockets 211 of the two first pole socket sections 21 that are farther from the second pole copper bar 4 .

[0066] In some examples, such as Figure 5 and Figure 6 As shown, the first-pole copper bar 3 includes a first sub-copper bar 31 and a second sub-copper bar 32. The first sub-copper bar 31 is integrally connected to one first-pole socket segment 21, while the second sub-copper bar 32 is integrally connected to the other first-pole socket segment 21. This reduces the number of components. The connection between the first sub-copper bar 31 and the second sub-copper bar 32 establishes an electrical connection between two socket segments of the same polarity.

[0067] In some examples, such as Figure 6 As shown, the first copper sub-bar 31 has a first inserting bar 31 a , and the second copper sub-bar 32 has a first inserting hole 32 a . The first inserting bar 31 a extends into the first inserting hole 32 a , thereby achieving a fixed connection between the first copper sub-bar 31 and the second copper sub-bar 32 .

[0068] For example, the first inserting bar 31a is welded to the sidewall of the first inserting hole 32a. The first inserting bar 31a and the first inserting hole 32a can increase the welding area between the first sub-copper bar 31 and the second sub-copper bar 32, thereby enhancing the connection strength between the first sub-copper bar 31 and the second sub-copper bar 32.

[0069] In some examples, the first sub-copper bar 31 or the second sub-copper bar 32 passes through the through hole 121 .

[0070] In some examples, such as Figure 2 and Figure 3 As shown, the first pole plug-in section 21 located at one mounting portion 11 is opposite to the second pole plug-in section 22 located at another mounting portion 11. Figure 6 As shown, the first sub-copper bar 31 includes a first bent section 311 and a second bent section 312. One end of the first bent section 311 is connected to the first pole sleeve section 21, and the other end is connected to the second bent section 312. The second bent section 312 bends relative to the first bent section 311 and passes through the through-hole 121. The end of the second bent section 312, away from the first bent section 311, is connected to the second sub-copper bar 32. This ensures that the first pole copper bar 3 does not come into contact with the second pole sleeve section 22 when passing through the through-hole 121, thereby ensuring sufficient electrical clearance between the first pole copper bar 3 and the second pole sleeve section 22.

[0071] For example, Figure 6 As shown, the first bend section 311 and the second sub-copper bar 32 are distributed on both sides of the second bend section 312 and extend in opposite directions. The first bend section 311, the second bend section 312, and the second sub-copper bar 32 form a shape similar to a Z-shape. Alternatively, the shape formed by the first bend section 311, the second bend section 312, and the second sub-copper bar 32 can also be considered as a step-like shape.

[0072] It is understandable that the structures of the first sub-copper bar 31 and the second sub-copper bar 32 can be adaptively adjusted according to the distribution of the two second pole sleeve segments 22 in the bracket 1 .

[0073] Since the first pole plug-in section 21 located at one mounting portion 11 is opposite to the second pole plug-in section 22 located at the other mounting portion 11, it is necessary to ensure that when the first pole copper bar 3 passes through the through hole 2, there is a large electrical gap between it and the second pole plug-in section 22 on both mounting portions 11. Therefore, in some examples, such as Figure 4 As shown, the through hole 121 is located between the first pole socket segment 21 and the second pole socket segment 22 of the same socket assembly 2 .

[0074] In some examples, such as Figure 3 、 Figure 4 and Figure 7As shown, the first pole socket segment 21 includes two first pole sockets 211 and a first connecting segment 212, with the two first pole sockets 211 connected by the first connecting segment 212. The second pole socket segment 22 includes two second pole sockets 221 and a second connecting segment 222, with the two second pole sockets 221 connected by the second connecting segment 222. The central axis 121a of the through hole 121 is located between the first connecting segment 212 and the second connecting segment 222 of the same socket assembly 2. This ensures that the first pole copper bar 3 does not interfere with the second pole socket segments 22 when passing through the through hole 121. Furthermore, a large electrical clearance is maintained between the first pole copper bar 3 and both second pole socket segments 22.

[0075] In some examples, such as Figure 4 and Figure 7 As shown, the two opposite side walls 121b of the through hole 121 are respectively located on either side of a reference plane A. The reference plane A is a symmetric plane between the first connecting segment 212 and the second connecting segment 222 of the same socket assembly 2. This allows for a larger electrical gap to be created between the first-pole copper bar 3 and the two second-pole socket segments 22.

[0076] Since the central axis of the through hole 121 is located between the first connecting section 212 and the second connecting section 222 of the same mounting portion 11, the first pole copper bar 3 is also located between the first connecting section 212 and the second connecting section 222. Since the polarity between the first pole copper bar 3 and the second connecting section 222 is different, in order to ensure the safety of the magic cube socket. In some examples, such as Figure 4 As shown, the bracket 1 also includes a spacer 13. The spacer 13 is located between the axis 121a of the through hole 121 and the second connecting section 222. The spacer 13 is used to separate the first-pole copper bar 3 from the second connecting section 222. This increases the creepage distance between the first-pole copper bar 3 and the second connecting section 222, thereby improving the safety of the magic cube socket.

[0077] In some examples, such as Figure 8 As shown, the second pole copper bar 4 includes a third pole connecting segment 41 and a fourth pole connecting segment 42. The third pole connecting segment 41 is integrally connected to one second pole socket segment 22, and the fourth pole connecting segment 42 is integrally connected to another second pole socket segment 22. This can reduce the number of parts.

[0078] For example, the third connecting segment 41 has a second plug 41a at its end, and the fourth connecting segment 42 has a second plug hole 42a at its end. The second plug 41a extends into the second plug hole 42a, thereby achieving electrical connection between the two plug segments of the same polarity.

[0079] Illustratively, the second inserting bar 41 a is welded to the side wall of the second inserting hole 42 a. The second inserting bar 41 a and the second inserting hole 42 a can increase the welding area of the third pole connecting segment 41 and the fourth pole connecting segment 42 , thereby increasing the connection strength between the third pole connecting segment 41 and the fourth pole connecting segment 42 .

[0080] In some examples, such as Figure 2 、 Figure 9 and Figure 10 As shown, the Rubik's Cube socket also includes a third-pole socket segment 6. This segment 6 comprises two third-pole sockets 61 and a third connecting segment 62. The two third-pole sockets 61 are connected by the third connecting segment 62 and are located on two mounting portions 11, respectively. The partition 12 has a slot 122 extending through opposite sides of the partition 12. The third connecting segment 62 passes through the slot 122. This allows the entire third-pole socket segment 6 to be located within the bracket 1, eliminating the need to occupy external space. This facilitates miniaturization of the Rubik's Cube socket. The third-pole socket 61 can be an E-pole socket.

[0081] The first pole socket section 21 includes two first pole sockets 211, and the second pole socket section 22 includes two second pole sockets 221. The third pole socket 61 is located between one first pole socket 211 and one second pole socket 221. The first pole socket section 21, the second pole socket section 22, and the third pole socket 61 form a five-pole socket, and the third pole socket 61, one first pole socket 211, and one second pole socket 221 together form a three-pole socket.

[0082] For example, the third connecting section 62 is close to the edge of the partition 12. In this way, the third connecting section 62 and the first pole copper bar 1 bracket have a larger electrical gap and creepage distance, so that the magic cube socket has higher safety.

[0083] In some examples, the slot 122 has an opening 122a at the edge of the partition 12. The third connecting segment 62 can enter and exit the slot 122 through the opening 122a. Thus, the entire third pole socket segment 6 can enter and exit the slot 122 through the opening 122a. Therefore, the third pole socket 61 and the third connecting segment 62 can be integrally formed, thereby reducing the number of components in the third pole socket segment 6.

[0084] In some examples, such as Figure 9 As shown, two opposite side walls of the slot 122 have engaging protrusions 122 b. When the third pole plug segment 6 is assembled, the third connecting segment 62 passes over the engaging protrusions 122 b to achieve engaging with the partition 12.

[0085] In some examples, the bracket 1 is an integrally formed structure, thereby reducing the number of parts in the magic cube socket and reducing the number of assembly steps.

[0086] In some examples, the bracket 1 has multiple accommodating cavities. The first pole socket segment 21, the second pole socket segment 22, and the third pole socket 61 are respectively located in one accommodating cavity, thereby achieving isolation between the socket segments of different poles.

[0087] Exemplarily, the bracket 1 has a plurality of retaining ribs, and an accommodating cavity is formed between adjacent retaining ribs.

[0088] For example, Figure 3 and Figure 4 As shown, the partition 12 of the bracket 1 has a positioning protrusion 123. Figure 6 and Figure 8 As shown, the first pole sleeve segment 21 and the second pole sleeve segment 22 both have positioning holes 20. Each positioning protrusion 123 extends into a positioning hole 20, thereby achieving the fixation of the first pole sleeve segment 21 and the second pole sleeve segment 22.

[0089] The embodiment of the present disclosure further provides a magic cube socket, which includes a housing 5 and the above-mentioned socket core assembly. The housing 5 is arranged to cover the outside of the socket core assembly, and the side wall of the housing 5 corresponding to the mounting portion 11 includes a socket 50.

[0090] The housing 5 includes an outer shell 51 and an end cover 52 . The outer shell 51 has an accommodating cavity for accommodating the bracket 1 , and the end cover 52 is used to seal the accommodating cavity of the outer shell 51 .

[0091] The Rubik's Cube socket provided by the embodiment of the present disclosure has a small volume of the socket core assembly, and therefore the volume of the shell 5 is small, which is conducive to the miniaturization of the Rubik's Cube socket.

[0092] In some examples, such as Figure 2 As shown, the Magic Cube socket also includes two protective door assemblies 7. Each protective door assembly 7 is opposite to the two mounting portions 11 and is fixed inside the housing 5. Before the plug is inserted into the socket assembly 2, the protective door assembly can shield the socket assembly 2, thereby preventing the user from accidentally touching the socket assembly 2.

[0093] In some examples, such as Figure 2 As shown, the Magic Cube socket also includes a USB (Universal Serial Bus) socket assembly 8. The USB socket assembly 8 is fixed inside the housing 5, adjacent to the two mounting portions 11. The USB socket assembly 8 converts AC power into DC power, allowing electrical appliances to directly receive DC power from the Magic Cube socket without the need for an adapter. Accordingly, the sidewall of the housing 5 has a USB receptacle opposite the USB socket assembly 8.

[0094] In some examples, such as Figure 2 and Figure 11As shown, the Magic Cube socket also includes a plug assembly 9. Plug assembly 9 includes a plug seat 91, a first-pole plug 92, a second-pole plug 93, and a third-pole plug 94. The first, second, and third-pole plugs 92, 93, 94 are fixed to the plug seat 91. The plug seat 91 faces the USB socket assembly 8 and engages with the bracket 1. One end of the first-pole plug 92, the second-pole plug 93, and the third-pole plug 94 are connected to the first-pole socket section 21, the second-pole socket section 22, and the third-pole socket 61, respectively, while the other ends extend from the housing 5. The Magic Cube socket can draw power from an external power source via the plug assembly 9.

[0095] In some examples, such as Figure 11 As shown, the bracket 1 has a first clamping structure 14 , the latch seat 91 has a second clamping structure 911 , and the first clamping structure 14 is clamped with the second clamping structure 911 .

[0096] For example, the first engaging structure 14 is a engaging piece having a through hole. The second engaging structure 911 is a engaging hole having a protruding structure on its inner wall. The engaging piece extends into the engaging hole, and the protruding structure engages with the through hole.

[0097] 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 socket core assembly, characterized in that: The socket core assembly comprises a bracket (1), two socket assemblies (2), a first-pole copper bar (3) and a second-pole copper bar (4); The bracket (1) comprises two mounting portions (11) and a partition (12), wherein the two mounting portions (11) are distributed on two opposite sides of the partition (12), and the partition (12) has at least one through hole (121), and the through hole (121) passes through the two opposite sides of the partition (12); The two socket assemblies (2) are respectively arranged on the two mounting portions (11), and each socket assembly (2) comprises a first pole socket segment (21) and a second pole socket segment (22); The two ends of the first-pole copper bar (3) are respectively connected to the two first-pole socket segments (21), the two ends of the second-pole copper bar (4) are respectively connected to the two second-pole socket segments (22), and at least one of the first-pole copper bar (3) and the second-pole copper bar (4) passes through one of the through holes (121).

2. The socket core assembly according to claim 1, wherein: The first-pole copper bar (3) passes through one of the through holes (121), and the second-pole copper bar (4) goes around the edge of the partition (12).

3. The socket core assembly according to claim 1 or 2, characterized in that: The first pole socket section (21) comprises two first pole sockets (211) and a first connecting section (212), wherein the two first pole sockets (211) are connected via the first connecting section (212); Both ends of the first-pole copper bar (3) are respectively connected to the first connecting sections (212) of the two first-pole socket sections (21).

4. The socket core assembly according to claim 1 or 2, characterized in that: The first-pole copper bar (3) comprises a first sub-copper bar (31) and a second sub-copper bar (32); The first sub-copper bar (31) is integrally connected to one of the first pole socket segments (21), the second sub-copper bar (32) is integrally connected to another of the first pole socket segments (21), and the first sub-copper bar (31) and the second sub-copper bar (32) are connected.

5. The socket core assembly according to claim 4, wherein: The first sub-copper bar (31) has a first inserting bar (31a), the second sub-copper bar (32) has a first inserting hole (32a), and the first inserting bar (31a) extends into the first inserting hole (32a).

6. The socket core assembly according to claim 4, wherein: The first sub-copper bar (31) or the second sub-copper bar (32) passes through the through hole (121).

7. The socket core assembly according to claim 4, wherein: The first pole plug-in sleeve section (21) located at one of the mounting portions (11) is opposite to the second pole plug-in sleeve section (22) located at the other of the mounting portions (11); The first sub-copper bar (31) comprises a first bending section (311) and a second bending section (312); one end of the first bending section (311) is connected to the first pole sleeve section (21), and the other end is connected to the second bending section (312); the second bending section (312) is bent relative to the first bending section (311) and passes through the through hole (121); the end of the second bending section (312) away from the first bending section (311) is connected to the second sub-copper bar (32).

8. The socket core assembly according to claim 7, wherein: The first bending section (311) and the second sub-copper bar (32) are distributed on both sides of the second bending section (312) and extend in opposite directions.

9. The socket core assembly according to claim 4, wherein: The first pole plug-in sleeve section (21) located at one of the mounting portions (11) is opposite to the second pole plug-in sleeve section (22) located at the other of the mounting portions (11); The through hole (121) is located between the first pole socket segment (21) and the second pole socket segment (22) of the same socket assembly (2).

10. The socket core assembly according to claim 9, wherein: The first pole socket section (21) comprises two first pole sockets (211) and a first connecting section (212), wherein the two first pole sockets (211) are connected via the first connecting section (212); the second pole socket section (22) comprises two second pole sockets (221) and a second connecting section (222), wherein the two second pole sockets (221) are connected via the second connecting section (222); The through hole (121) is located between the first connecting section (212) and the second connecting section (222) of the same socket assembly (2).

11. The socket core assembly according to claim 10, wherein: The two opposite side walls (121b) of the through hole (121) are respectively located on two sides of a reference plane (A), wherein the reference plane (A) is a symmetrical plane of the first connecting section (212) and the second connecting section (222) of the same plug assembly (2).

12. The socket core assembly according to claim 11, wherein: The bracket (1) further comprises a partition rib (13), the partition rib (13) being located between the through hole (121) and the second connecting section (222), the partition rib (13) being used to separate the first-pole copper bar (3) from the second connecting section (222).

13. The socket core assembly according to claim 1 or 2, characterized in that: The socket core assembly further comprises a third pole socket section (6), the third pole socket section (6) comprising two third pole sockets (61) and a third connecting section (62), the two third pole sockets (61) being connected via the third connecting section (62), and the two third pole sockets (61) being respectively located on the two mounting portions (11); The partition (12) has a slot (122), the slot (122) runs through two opposite sides of the partition (12), and the third connecting section (62) passes through the slot (122).

14. The socket core assembly according to claim 13, wherein: The slot (122) is provided with an opening (122a) at the edge of the partition (12), and the third connecting section (62) can enter and exit the slot (122) through the opening (122a).

15. A magic cube socket, characterized in that: The magic cube socket comprises a housing (5) and a socket core assembly according to any one of claims 1 to 14; The shell (5) is covered on the outside of the socket core assembly, and the side wall of the shell (5) corresponding to the mounting portion (11) includes a socket (50).