Patch board storage box

By designing a detachable power strip storage box and utilizing a slider and groove connection structure, the problem of high transportation costs caused by non-detachable power strips is solved, achieving a lightweight and thin design that is easy to transport and install.

CN224257209UActive Publication Date: 2026-05-19吴亮
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
吴亮
Filing Date
2025-06-30
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

The existing non-removable power strip storage boxes increase transportation costs.

Method used

Design a detachable power strip storage box, including a base plate and multiple side plates. The side plates are connected by sliders and grooves, and can be disassembled and spliced ​​to form a receiving cavity. The combination structure of sliders and grooves achieves a stable connection.

Benefits of technology

The detachable design reduces transportation volume and costs, while the lightweight and thin structure facilitates handling and installation, improving the tolerance and overall strength during the manufacturing process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model discloses a patch board storage box which comprises a bottom plate and a plurality of side plates, and any side plate is detachably connected to the bottom plate; the plurality of side plates are spliced in sequence, the side plates and the bottom plate are enclosed together to form an accommodating cavity for placing a patch board, and the side plates are provided with wire passing holes communicated with the accommodating cavity; the two adjacent side plates are defined as a first side plate and a second side plate, a sliding block is arranged on one of the plate surfaces of the first side plate and the second side plate, a sliding groove for the sliding block to slide is formed in the other one of the plate surfaces of the first side plate and the second side plate, the sliding groove is provided with an insertion end and a clamping end, the size of the insertion end is larger than that of the clamping end, and the sliding block extends into the insertion end and slides to the clamping end. The first side plate and the second side plate are connected in a limiting mode. The patch board storage box can be disassembled and stacked in the transportation process, so that the size is reduced, and the transportation cost is further reduced.
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Description

Technical Field

[0001] This application relates to the field of electrical appliance accessories technology, and in particular to a power strip storage box. Background Technology

[0002] A power strip organizer is a device used to centrally store and organize power strips and their connected power cords, data cables, etc. In existing technology, power strip organizers are usually one-piece molded, non-detachable structures, which results in a large volume during transportation, increasing shipping costs.

[0003] The above content is only used to assist in understanding the technical solution of the utility model and does not represent an admission that the above content is prior art. Utility Model Content

[0004] In view of the above problems, this utility model proposes a power strip storage box, which aims to solve the technical problem that the non-removable nature of existing power strip storage boxes leads to increased transportation costs.

[0005] To achieve the above objectives, the power strip storage box proposed in this utility model includes a base plate and multiple side plates, any of which can be detachably connected to the base plate;

[0006] Multiple side panels are sequentially spliced ​​together and together with the bottom plate form a receiving cavity for placing the power strip. The side panels are provided with wire passage holes communicating with the receiving cavity.

[0007] The two adjacent side plates are defined as a first side plate and a second side plate. One of the surfaces of the first side plate and the second side plate is provided with a slider, and the other side is provided with a groove for the slider to slide. The groove has an insertion end and a locking end. The size of the insertion end is larger than the size of the locking end. The slider extends into the insertion end and slides to the locking end to limit the connection between the first side plate and the second side plate.

[0008] In one embodiment, the surface of the first side plate and the surface of the second side plate are engaged by an elastic snap-fit ​​structure, so that the first side plate and the second side plate are connected in the sliding direction.

[0009] In one embodiment, one of the surfaces of the first side plate and the second side plate is provided with an elastic clip, and the other is provided with an insertion hole and an elastic locking hole, wherein an engaging block is provided between the insertion hole and the elastic locking hole;

[0010] The elastic clip extends into the insertion hole and slides to the elastic clip hole to engage with the locking block.

[0011] In one embodiment, the first side panel includes a main body segment, a transition segment, and a connecting segment. The transition segment connects the main body segment and the connecting segment. The transition segment is arc-shaped. The connecting segment extends along a first direction, which is parallel to the surface of the second side panel. The surface of the connecting segment is connected to the second side panel.

[0012] In one embodiment, the outer wall surface of the connecting segment is provided with an embedding groove to form a step shape with the end wall surface of the connecting segment;

[0013] The end of the second side plate is fitted into the mounting groove so that the outer wall surface of the second side plate smoothly transitions with the outer wall surface of the connecting section.

[0014] In one embodiment, any of the side plates includes a body and a flange formed by bending the bottom of the body toward the receiving cavity, the body being provided with the slider or the groove, and the flange engaging with the bottom plate;

[0015] The base plate has a clearance hole, which is provided corresponding to the slider, so that the base plate can be installed onto the flange along the sliding direction.

[0016] In one embodiment, the top wall periphery of the base plate is provided with an overlapping ring, which is engaged with the flange, and the bottom wall of the base plate and the bottom wall of the flange are smoothly connected.

[0017] In one embodiment, the body surface of the second side plate abuts against the outer wall surface of the first side plate to form a stepped surface, and the bottom plate has a positioning surface that abuts against the stepped surface.

[0018] In one embodiment, the bottom wall of the base plate is provided with an anti-slip pad, which is disposed near the connection between the first side plate and the second side plate.

[0019] In one embodiment, the receiving cavity has an opening;

[0020] The power strip storage box also includes a top cover, which includes a top plate and an inner ring. The top plate covers the opening, and the inner ring protrudes from the inner wall of the top plate and is used to fit and abut against the side plate. The cable hole extends to the opening.

[0021] This utility model power strip storage box features a base plate detachably connected to multiple side plates, which can be sequentially detached and stacked for easy transport, reducing volume and thus lowering transportation costs. The slider and groove are located on the plate surface, fully utilizing the plate's surface area for connection without thickening the plate or adding additional slot structures, thus keeping the overall thickness of the side plates relatively small. Because no thickening of the plate or the addition of through-holes is required, the overall structure is thinner and lighter, contributing to reduced overall weight and facilitating handling and installation. Furthermore, since the slider and groove are located on the plate surface and connect through sliding, this structure offers greater tolerance for dimensional accuracy during manufacturing compared to traditional plug-in connection structures. For example, even with slight deviations in the slider's manufacturing process, final positioning and engagement can still be achieved through sliding, avoiding the problem of "inability to insert if the position is not accurate" in traditional tenon structures. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 A schematic diagram of an embodiment of the power strip storage box of this utility model is shown;

[0024] Figure 2 This is a structural schematic diagram of the power strip storage box of this utility model from another angle;

[0025] Figure 3 This is an exploded view of the structure of the power strip storage box of this utility model;

[0026] Figure 4 A schematic diagram of the power strip storage box of this utility model after removing the top cover;

[0027] Figure 5 for Figure 4 A magnified view of a section at point A in the middle;

[0028] Figure 6 This is a partial exploded view of the power strip storage box of this utility model;

[0029] Figure 7 This is a schematic diagram of the structure of the base plate of the power strip storage box of this utility model;

[0030] Explanation of icon numbers:

[0031]

[0032]

[0033] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0034] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application. In addition, the technical solutions of various embodiments can be combined with each other, but this must be based on the ability of those of ordinary skill in the art to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0035] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0036] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the meaning of "and / or" throughout the text is to include three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution that simultaneously satisfies both A and B.

[0037] This utility model proposes a power strip storage box 100.

[0038] In this embodiment of the utility model, please refer to Figures 1 to 7The power strip storage box 100 includes a base plate 10 and multiple side plates 20, any one of which is detachably connected to the base plate 10. The multiple side plates 20 are sequentially spliced ​​together and together with the base plate 10 form a receiving cavity 30 for placing the power strip. The side plates 20 have wire holes 21 communicating with the receiving cavity 30. Adjacent side plates 20 are defined as a first side plate 22 and a second side plate 23. One of the surfaces of the first side plate 22 and the second side plate 23 has a slider 231, and the other has a groove 221 for the slider 231 to slide. The groove 221 has an insertion end 2211 and a locking end 2212. The size of the insertion end 2211 is larger than the size of the locking end 2212. The slider 231 extends into the insertion end 2211 and slides to the locking end 2212, so that the first side plate 22 and the second side plate 23 are limited and connected.

[0039] The power strip organizer 100 includes a base plate 10 and multiple side plates 20. Each side plate 20 is detachably connected to the base plate 10. This means that each side plate 20 and the base plate 10 can be manufactured separately at the factory without assembly. Users assemble them sequentially after receiving the power strip organizer 100, thus reducing volume and cost during transportation and storage. The number of side plates 20 can be three, four, five, or more, without limitation. The detachable connection between the base plate 10 and the side plates 20 can be achieved through snap-fit, tenon-and-mortise, or magnetic connections, etc.

[0040] During assembly, multiple side panels 20 can be sequentially spliced ​​together and, together with the base plate 10, form a receiving cavity 30 for accommodating the power strip. Each side panel 20 is provided with a cable passage hole 21, which connects to the receiving cavity 30 for power cables and data cables to pass through.

[0041] For ease of description, two adjacent side plates 20 are defined as the first side plate 22a and the second side plate 23b, respectively. To achieve a stable connection between the side plates 20, one of the first side plate 22a and the second side plate 23b is provided with a slider 231, and the other is provided with a groove 221 at a corresponding position. The slider 231 can be inserted into the groove 221 and slide along its length to limit the connection between the first side plate 22a and the second side plate 23b. It should be noted that the "plate surface" usually refers to the planar surface of the plate, and here it refers to the unfolded surface of the front or back of the plate. For example, for a rectangular side plate 20, its "plate surface" is usually the side with the largest area, i.e., the front or back; for an arc-shaped side plate 20, its plate surface refers to the outer or inner surface of the arc-shaped plate, i.e., the main unfolded surface formed by unfolding along the curvature.

[0042] The slide groove 221 has an insertion end 2211 with a larger size on one side and a locking end 2212 with a smaller size on the other side. During assembly, the slider 231 is inserted into the slide groove 221 from the insertion end 2211 and slides along the slide groove 221 to the locking end 2212. Because the locking end 2212 is smaller, it effectively limits the movement of the slider 231, preventing loosening between the two side plates 20 and improving the overall structural stability. It is understood that the insertion direction and the sliding direction are perpendicular to each other; when the slider 231 is located at the locking end 2212, its movement in the insertion direction is restricted. For ease of description, the insertion direction is defined as the front-to-back direction, and the sliding direction is defined as the up-and-down direction.

[0043] Preferably, the slider 231 has a T-shaped or hook-shaped cross-section, and the groove 221 has a cross-section that matches the slider 231, so as to achieve a more reliable sliding and engaging connection. The number of sliders 231 and grooves 221 can be one or more, and there is no limitation.

[0044] During use, users can sequentially assemble multiple side panels 20 with the base plate 10 to form a complete power strip storage structure according to the required installation sequence. For disassembly, users simply slide each side panel 20 out along the groove 221 for quick disassembly, facilitating storage and transportation.

[0045] This utility model's power strip storage box 100 is detachably connected to multiple side panels 20 via a base plate 10. These side panels 20 can be sequentially detached and stacked, allowing for easy disassembly and stacking during transportation to reduce volume and lower transportation costs. The slider 231 and slide groove 221 are located on the plate surface, fully utilizing the plate's surface area for connection without thickening the plate or adding additional slot structures, thus keeping the overall thickness of the side panels 20 relatively small. Because there is no need to thicken the plate or add through-holes, the overall structure is thinner and lighter, helping to reduce the overall weight of the power strip storage box 100 and facilitating handling and installation. Furthermore, since the slider 231 and slide groove 221 are located on the plate surface and connected by sliding, compared to traditional plug-in connection structures, this structure offers higher tolerance for dimensional accuracy during manufacturing. For example, even with slight deviations in the slider 231 during processing, final positioning and engagement can still be achieved through sliding, avoiding the problem of "inability to insert if the position is not accurate" in traditional tenon structures.

[0046] Reference Figures 4 to 6 In one embodiment, in order to prevent the slider 231 from coming off in the sliding direction, an elastic snap-fit ​​structure is also provided on the basis of the sliding snap-fit ​​structure, that is, the plate surface of the first side plate 22 and the plate surface of the second side plate 23 are snapped together by the elastic snap-fit ​​structure so that the first side plate 22 and the second side plate 23 are connected in the upper limit in the sliding direction.

[0047] In one example, either the first side plate 22 or the second side plate 23 has an inwardly protruding protrusion, while the other has a locking hole or groove that engages with a hook. When the slider 231 slides to a predetermined position, the elastic hook automatically springs into the locking hole at the sliding end position, forming a mechanical lock in the sliding direction. In one example, the first side plate 22 has an elastic protrusion, and the second side plate 23 has a corresponding recess. When the slider 231 slides to the termination position, the protrusion is pressed into the recess, forming an elastic lock. This structure is simple, can be integrally injection molded, and has good resilience. In one example, one side plate 20 has a sheet-like elastic part, such as an independently injection molded or molded piece. This piece is bent under pressure during sliding, and when it slides to the end positioning position, the end of the piece springs into the limiting hole on the other side plate 20, achieving elastic locking in the sliding direction.

[0048] Thus, the slider 231 and the groove 221 provide a stable splicing in the insertion direction, while the elastic snap-fit ​​structure further provides limiting protection in the sliding direction, thereby realizing a double limiting assembly structure between the side plates 20 of the power strip storage box 100 in two directions, effectively preventing loosening or misalignment, and improving overall strength and durability.

[0049] Specifically, one of the surfaces of the first side plate 22 and the second side plate 23 is provided with an elastic clip 232, and the other is provided with an insertion hole 222 and an elastic locking hole 224. There is a locking block 223 between the insertion hole 222 and the elastic locking hole 224. The elastic clip 232 extends into the insertion hole 222 and slides to the elastic locking hole 224 to engage with the locking block 223.

[0050] The elastic clip 232 is inserted into the insertion hole 222 along the insertion direction (front and back direction) and reaches the position of the elastic clip hole 224 during the continued sliding process, so that it forms a snap connection with the snap block 223 under the action of the reset elasticity, thereby realizing the limiting fixation in the sliding direction (up and down direction).

[0051] Preferably, the elastic locking element 232 can be a hook structure, an elastic protrusion, or a sheet-like structure with elastic deformation capability. During the sliding insertion of the slider 231 along the groove 221, the elastic locking element 232 first enters the insertion hole 222 to obtain sufficient deformation buffer space and avoid interference resistance in the initial stage of locking; subsequently, when the elastic locking element 232 is aligned with the elastic locking hole 224, it automatically springs in, achieving rapid and stable self-locking limit.

[0052] The purpose of setting the insertion hole 222 is to provide temporary accommodation space for the elastic clip 232 when the slider 231 is inserted into the groove 221. This prevents the elastic clip 232 from being structurally interfered with due to lack of buffer space when the slider 231 is initially inserted into the groove 221, which could cause local bulging or deformation, resulting in assembly obstruction or poor engagement, and could easily lead to damage to the elastic clip 232.

[0053] Reference Figure 6 In one embodiment, the first side plate 22 includes a main body segment 225, a transition segment 226 and a connecting segment 227. The transition segment 226 connects the main body segment 225 and the connecting segment 227. The transition segment 226 is arc-shaped. The connecting segment 227 extends along a first direction, which is parallel to the surface of the second side plate 23. The surface of the connecting segment 227 is connected to the second side plate 23.

[0054] The main body segment 225 is the main plate part of the first side plate 22, used to enclose the receiving cavity 30. The connecting segment 227 is used to connect with the second side plate 23, and the connecting segment 227 extends along a first direction, which is parallel to the plate surface of the second side plate 23. The transition segment 226 is arc-shaped, used to achieve a natural transition from the main body segment 225 to the connecting segment 227, allowing the connecting segment 227 to be relatively deflected to a direction parallel to the plate surface of the second side plate 23. The plate surface of the connecting segment 227 is attached to and connected to the plate surface of the second side plate 23, and stable splicing can be achieved through the slider 231, the groove 221, and / or the elastic snap-fit ​​structure. In this way, the arc-shaped structure of the transition segment 226 not only optimizes the angle transition between spliced ​​plates and reduces the risk of stress concentration, but also improves the flexibility of overall assembly and the aesthetics of the product. At the same time, since the connecting segment 227 is arranged parallel to the second side plate 23, it is beneficial to the stable fitting and limiting control of the spliced ​​structure.

[0055] In one embodiment, the outer wall surface of the connecting segment 227 is provided with an embedding groove 228 to form a step shape with the end wall surface of the connecting segment 227; the end of the second side plate 23 is embedded in the embedding groove 228 so that the outer wall surface of the second side plate 23 and the outer wall surface of the connecting segment 227 can smoothly transition.

[0056] The outer wall of the connecting section 227 is provided with an embedding groove 228. The embedding groove 228 is recessed inward from the end of the connecting section 227 to form a stepped structure. That is, the embedding groove 228 and the end wall of the connecting section 227 together define a stepped area for accommodating structural fit.

[0057] The end of the second side panel 23 is embedded in the embedding groove 228, allowing the end of the second side panel 23 to be inserted and positioned within the stepped structure when spliced ​​with the first side panel 22. This structural design creates a flush transition between the outer wall surface of the second side panel 23 and the outer wall surface of the connecting section 227, achieving a natural connection and aesthetic unity between the two side panels 20. By providing the embedding groove 228 in the connecting section 227 and embedding the end of the second side panel 23 within it, a continuous and smooth visual effect is achieved, preventing steps or protrusions at the connection points of the side panels 20 from affecting aesthetics. This also improves the assembly positioning and stability between structures, making the overall splicing of the storage box more compact and robust.

[0058] In one embodiment, any side plate 20 includes a body 24 and a flange 25 formed by bending the bottom of the body 24 toward the receiving cavity 30. The body 24 is provided with a slider 231 or a groove 221, and the flange 25 is engaged with the base plate 10. The base plate 10 is provided with a clearance hole 11, which is provided corresponding to the slider 231, so that the base plate 10 can be installed onto the flange 25 in the sliding direction.

[0059] In this embodiment, any side panel 20 includes a body 24 and a flange 25. The body 24 is the main structure of the side panel 20 and is provided with a slider 231 or a groove 221. The flange 25 is formed by bending from the lower edge of the body 24 and is used to engage with the base plate 10. Specifically, one of the base plate 10 and the flange 25 is provided with a buckle 121, and the other is provided with a groove 251 that matches the hook, so as to achieve quick engagement.

[0060] In one example, a groove 221 is provided on the first side plate 22, and a slider 231 is provided on the second side plate 23. The slider 231 is inserted inward into the groove 221 and located within the receiving cavity 30. During assembly, the side plates 20 are first spliced ​​together in sequence, and then the base plate 10 is snapped into the side plates 20. Therefore, the base plate 10 is provided with a clearance hole 11, which is set corresponding to the position of the slider 231 on the body 24 of the side plate 20. This clearance hole 11 is used to avoid the space occupied by the slider 231 when the base plate 10 is installed, so that the base plate 10 can be smoothly inserted into the installation area between the flange 25 and the body 24 along the sliding direction.

[0061] By providing a flange 25 at the lower part of the side plate 20 and cooperating with the base plate 10 which has a clearance hole 11, the base plate 10 can be smoothly inserted and positioned while ensuring the structural integrity of the slider 231. This avoids the slider 231 protruding and hindering the assembly of the base plate 10, thus improving the integration of the structure and the ease of assembly. At the same time, the flange 25 structure can also serve as a limit, anti-detachment, and reinforcement support, improving the overall strength of the product.

[0062] In one embodiment, a connecting ring 12 is provided on the periphery of the top wall of the base plate 10. The connecting ring 12 is engaged with the flange 25. The bottom wall of the base plate 10 and the bottom wall of the flange 25 are smoothly connected. Preferably, the bottom wall of the base plate 10 and the bottom wall of the flange 25 are flush, so that the power strip storage box 100 can be placed stably on the desktop or other flat surface.

[0063] In this embodiment, the top wall periphery of the base plate 10 is provided with an overlapping ring 12. The overlapping ring 12 is used to cooperate and connect with the flange 25 of any side plate 20. Specifically, the overlapping ring 12 is snapped into the inner side of the flange 25, so that the base plate 10 can be stably installed in the structural frame formed by the multiple side plates 20.

[0064] Furthermore, to improve the flatness and placement stability of the overall structure, the bottom wall of the base plate 10 and the bottom wall of the flange 25 form a smooth transition. Preferably, the bottom wall of the base plate 10 and the bottom wall of the flange 25 are set as a flush structure, that is, they are consistent in the height direction, so that the entire power strip storage box 100 can stably contact and maintain a horizontal state when placed on a table or other horizontal surface, avoiding tilting, shaking and other phenomena.

[0065] In one embodiment, the body 24 of the second side plate 23 abuts against the outer wall of the first side plate 22 to form a stepped surface 229, and the bottom plate 10 has a positioning surface 13, which abuts against the stepped surface 229. Preferably, the side wall of the clearance hole 11 abuts against the stepped surface 229.

[0066] In this embodiment, the body 24 of the second side plate 23 abuts against the outer wall surface of the first side plate 22 and together they form a stepped surface 229; the base plate 10 is provided with a positioning surface 13 for limiting assembly, the positioning surface 13 abuts against the stepped surface 229, and is used to provide an assembly reference and position guide for the base plate 10 during installation.

[0067] Preferably, the overlapping ring 12 of the base plate 10 is provided with a clearance hole 11 for avoiding the slider 231. The side wall of the clearance hole 11 abuts against the step surface 229, thereby further enhancing the fitting and positioning accuracy between the base plate 10 and the side plate 20 and preventing the assembly offset of the base plate 10 in the horizontal or vertical direction.

[0068] In one embodiment, the bottom wall of the base plate 10 is provided with an anti-slip pad 14, which is located near the connection between the first side plate 22 and the second side plate 23.

[0069] In this embodiment, the bottom wall of the base plate 10 is provided with an anti-slip pad 14 to improve the anti-slip stability of the power strip storage box 100 when placed on a desktop or other flat surface. Preferably, the anti-slip pad 14 is disposed near the connection between the first side plate 22 and the second side plate 23 to enhance the support and anti-displacement capability of the corresponding area of ​​the connection. This helps prevent the power strip storage box 100 from sliding, tilting, or becoming unstable due to external forces pulling the power cord during use, further improving the product's practicality and safety.

[0070] Reference Figure 4 In one embodiment, the receiving cavity 30 has an opening 31; the power strip storage box 100 also includes a top cover 40, which includes a top plate 41 and an inner ring 42. The top plate 41 covers the opening 31, and the inner ring 42 protrudes from the inner wall surface of the top plate 41 and is adapted to abut against the side plate 20; the cable hole 21 extends to the opening 31.

[0071] The receiving cavity 30 has an opening 31 for easy insertion of the power strip and cables from the top. The power strip storage box 100 also includes a top cover 40 for closing the opening 31 to improve the overall structural airtightness and appearance integrity. Specifically, the top cover 40 includes a top plate 41 and an inner ring 42 protruding downward from the inner wall of the top plate 41. The top plate 41 covers the opening 31, and the inner ring 42 has an outer contour whose size is adapted to the inner walls of the multiple side plates 20 for insertion and abutment against the upper edge of the side plates 20, thereby achieving a stable fit and improving the closing and positioning effect. In some embodiments, a rubber ring may be provided on the outer wall surface of the inner ring 42 to increase its friction.

[0072] The cable hole 21 extends to the opening 31, meaning that the cable hole 21 extends from bottom to top through the side panel 20, and its upper end is connected to the opening 31. This allows the top cover 40 to be opened using tools, the power cord of the power strip, or other data cables through the cable hole after the top cover 40 is closed, thus improving convenience.

[0073] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.

Claims

1. A power strip storage box, characterized in that, It includes a base plate and multiple side plates, any one of which is detachably connected to the base plate; Multiple side panels are sequentially spliced ​​together and together with the bottom plate form a receiving cavity for placing the power strip. The side panels are provided with wire passage holes communicating with the receiving cavity. The two adjacent side plates are defined as a first side plate and a second side plate. One of the surfaces of the first side plate and the second side plate is provided with a slider, and the other side is provided with a groove for the slider to slide. The groove has an insertion end and a locking end. The size of the insertion end is larger than the size of the locking end. The slider extends into the insertion end and slides to the locking end to limit the connection between the first side plate and the second side plate.

2. The power strip storage box as described in claim 1, characterized in that, The surface of the first side plate and the surface of the second side plate are engaged by an elastic snap-fit ​​structure so that the first side plate and the second side plate are connected in the upper limit of the sliding direction.

3. The power strip storage box as described in claim 2, characterized in that, One of the surfaces of the first side plate and the second side plate is provided with an elastic clip, and the other is provided with an insertion hole and an elastic clip hole, with a locking block between the insertion hole and the elastic clip hole; The elastic clip extends into the insertion hole and slides to the elastic clip hole to engage with the locking block.

4. The power strip storage box as described in any one of claims 1 to 3, characterized in that, The first side panel includes a main body section, a transition section, and a connecting section. The transition section connects the main body section and the connecting section. The transition section is arc-shaped. The connecting section extends along a first direction, which is parallel to the surface of the second side panel. The surface of the connecting section is connected to the second side panel.

5. The power strip storage box as described in claim 4, characterized in that, The outer wall of the connecting section is provided with an embedding groove to form a step shape with the end wall of the connecting section; The end of the second side plate is fitted into the mounting groove so that the outer wall surface of the second side plate smoothly transitions with the outer wall surface of the connecting section.

6. The power strip storage box as described in any one of claims 1 to 3, characterized in that, Each of the side panels includes a body and a flange formed by bending the bottom of the body toward the receiving cavity, the body being provided with the slider or the groove, and the flange engaging with the bottom plate; The base plate has a clearance hole, which is provided corresponding to the slider, so that the base plate can be installed onto the flange along the sliding direction.

7. The power strip storage box as described in claim 6, characterized in that, The bottom plate has an overlapping ring protruding from the periphery of its top wall. The overlapping ring is engaged with the flange, and the bottom wall of the bottom plate and the bottom wall of the flange transition smoothly.

8. The power strip storage box as described in claim 6, characterized in that, The main body surface of the second side plate abuts against the outer wall surface of the first side plate to form a stepped surface, and the bottom plate has a positioning surface, which abuts against the stepped surface.

9. The power strip storage box as described in claim 6, characterized in that, The bottom wall of the base plate is provided with an anti-slip pad, which is located near the connection between the first side plate and the second side plate.

10. The power strip storage box as described in any one of claims 1 to 3, characterized in that, One end of the receiving cavity has an opening; The power strip storage box also includes a top cover, which includes a top plate and an inner ring. The top plate covers the opening, and the inner ring protrudes from the inner wall of the top plate and is used to fit and abut against the side plate. The cable hole extends to the opening.