Box assembly, storage assembly and tool assembly

By setting magnetic connections and structural parts on the storage box, vertical stacking and horizontal splicing of the storage box are achieved, which solves the problem of messy tabletops caused by random placement of the storage box, and improves the cleanliness and connection reliability.

CN223057704UActive Publication Date: 2025-07-04SHANGHAI HOTO TECH CO LTD
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Patent Information

Application Number
CN202422307842.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-07-04
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

The existing storage boxes are easily placed at will when used, resulting in messy work surfaces and lack of neatness.

Method used

By providing magnetically connected child and female parts on the storage box, adjacent storage boxes can be stacked in the vertical direction and spliced ​​in the horizontal direction through structural parts to achieve neat arrangement.

Benefits of technology

It improves the cleanliness of the work surface, ensures that the storage box can be placed more regularly during use, reduces visual obstruction and is convenient and reliable in connection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a box assembly, a storage assembly and a tool assembly.The box assembly comprises a storage box, the storage box comprises a box body, the box body is provided with a first surface, a second surface, a first side face and a second side face, the first surface and the second surface are opposite, the first side face and the second side face are opposite, a child part is arranged on the first surface, and a mother part is arranged in the area, corresponding to the first surface, of the second surface; the son part and the mother part can be magnetically connected; the first side face is provided with a first structural part, the area, corresponding to the first side face, of the second side face is provided with a second structural part, and the first structural part and the second structural part can be structurally connected. According to the technical scheme, every two adjacent storage boxes can be stacked up and down in the vertical direction through connection of the child pieces and the mother pieces, and then the storage boxes are arranged in order. Under the condition that multiple storage boxes are used at the same time, every two adjacent storage boxes can be horizontally spliced in the horizontal direction through connection of the first structural parts and the second structural parts, and then the storage boxes are arranged in order.
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Description

Technical Field

[0001] This application relates to the field of tools, and more particularly, to a box component, a storage component, and a tool component. Background Art

[0002] In the prior art, since there are a large number of accessories such as bits that can be used in conjunction with tools such as screwdrivers, there are storage boxes for storing bits.

[0003] Since the storage boxes in the prior art are independent of each other, when using multiple storage boxes simultaneously, there is a problem that the placement of the storage boxes is random, resulting in a messy workbench surface. Summary of the Utility Model

[0004] The purpose of this application is to provide a box component, a storage component, and a tool component, so as to be able to place them more regularly during the use of the storage box, improving the neatness of the workbench surface.

[0005] The embodiments of this application are implemented as follows:

[0006] In a first aspect, an embodiment of this application provides a box component, including a storage box. The storage box includes a box body. The box body has opposite first and second surfaces, and opposite first and second side surfaces. A sub-component is provided on the first surface, and a mother-component is provided in the area corresponding to the first surface on the second surface. The sub-component and the mother-component can be magnetically connected; a first structural member is provided on the first side surface, and a second structural member is provided in the area corresponding to the first side surface on the second side surface. The first structural member and the second structural member can be structurally connected.

[0007] In the above technical solution, since the sub-component and the mother-component can be magnetically connected, when placing multiple storage boxes simultaneously, adjacent two storage boxes can be stacked vertically through the connection of the sub-component and the mother-component, so that the storage boxes are neatly arranged, thereby improving the neatness of the workbench surface. When the box bodies overlap, it will block the user's line of sight to a certain extent. However, since the overlap is achieved by magnetic connection between the sub-component and the mother-component, the two overlapping box bodies themselves have a certain magnetic attraction, and the overlap can be achieved without alignment, making the overlap more convenient. Since the first structural member on the first side surface of the box body and the second structural member on the second side surface can be structurally connected, when using multiple storage boxes simultaneously, adjacent two storage boxes can also be connected horizontally through the first structural member and the second structural member to achieve horizontal splicing, so that the storage boxes are neatly arranged, thereby improving the neatness of the workbench surface.

[0008] In a second aspect, an embodiment of the present application provides a box component, including at least two storage boxes. Each storage box includes a box body, the box body having opposite first and second surfaces, and opposite first and second side surfaces. A sub-component is provided on the first surface, a mother-component is provided on the second surface, a first structural member is provided on the first side surface, and a second structural member is provided on the second side surface. When one storage box overlaps another storage box vertically, the sub-component of the storage box is magnetically connected to the mother-component of the adjacent storage box. When one storage box is horizontally spliced with an adjacent storage box, the first structural member of the storage box is structurally connected to the second structural member of the adjacent storage box.

[0009] In the above technical solution, since the sub-component and the mother-component can be magnetically connected, the two storage boxes of the box component can be magnetically connected in the vertical direction to achieve vertical stacking, thereby enabling the storage boxes to be neatly arranged to improve the cleanliness of the workbench surface. When the box bodies overlap, it will block the user's line of sight to some extent. However, since the overlapping is achieved through magnetic connection between the sub-component and the mother-component, the two overlapping box bodies themselves have a certain magnetic attraction and can be overlapped without alignment, making the overlapping more convenient. Since the first structural member on the first side surface of the box body and the second structural member on the second side surface can be structurally connected, the two storage boxes of the box component can be connected by the first structural member and the second structural member in the horizontal direction to achieve horizontal splicing, thereby enabling the storage boxes to be neatly arranged to improve the cleanliness of the workbench surface.

[0010] In some embodiments, the sub-component is a magnet and the mother-component is a ferromagnetic structural member.

[0011] In the above embodiment, the number of magnets included in the storage box is small. Therefore, when installing the sub-component and the mother-component, the situation of misinstalling the magnetic pole orientation can be reduced.

[0012] In some embodiments, the sub-component is the N pole of a magnet and the mother-component is the S pole of a magnet.

[0013] In the above technical solution, both the sub-component and the mother-component have magnetism, and the connection force between the sub-component and the mother-component is greater, which can make the connection between the two storage boxes more reliable.

[0014] In some embodiments, the sub-component on the first surface and the mother-component on the second surface are located at both ends of the same magnet.

[0015] In the above technical solution, the sub-component on the first surface and the mother-component on the second surface are located on the same magnet, which can reduce the number of components inside the storage box and ensure that the position corresponding to the mother-component on the second surface in the first surface is provided with the sub-component, facilitating the assembly of the storage box.

[0016] In some embodiments, the first surface includes two male parts and two female parts, and the second surface includes two male parts and two female parts.

[0017] In the above embodiments, when the storage boxes are overlapped in the vertical direction, two male parts on the first surface of one box body are connected to two female parts of another box body, and two female parts on the first surface of one box body are connected to two male parts of another box body. There are four connection positions between the two storage boxes, which can make the connection between the two storage boxes more reliable.

[0018] In some embodiments, along the circumferential direction of the first surface, one male part, one female part, another male part, and another female part on the first surface are arranged in sequence; and in the first surface, the arrangement positions of the male parts and the female parts are symmetrically arranged along the midline of the first surface.

[0019] In the above technical solution, the male parts and the female parts on the first surface are respectively arranged corresponding to the female parts and the male parts on the second surface. Since the male parts and the female parts on the first surface are alternately arranged in sequence in the above manner, and the arrangement positions of the male parts and the female parts are symmetric along the midline of the first surface, when the male parts and the female parts on the first surface of one box body are respectively connected to the female parts and the male parts on the first surface or the second surface of another box body to achieve connection, the vertical overlapping direction of the two storage boxes is not restricted.

[0020] In some alternative embodiments, the box body is of a square structure, and one magnet is provided at each of the four corners of the box body.

[0021] In the above technical solution, one magnet is provided at each of the four corners of the box body, which can not only make the first surface and the second surface of the box body have magnetic force, but also make the first side surface and the second side surface of the box body have magnetic force. Therefore, the magnet can not only provide magnetic force for the vertical overlapping of the two storage boxes, but also provide magnetic force for the horizontal splicing of the two storage boxes.

[0022] In some alternative embodiments, a fitting groove for accommodating fittings is recessed on the first surface of the box body.

[0023] In some embodiments, the box body includes an upper box body and a lower box body that can be magnetically attracted and closed. Both the upper box body and the lower box body are provided with fitting grooves for accommodating fittings, and the fitting grooves have access openings; the first surface is the surface of the upper box body that faces away from the access opening, and the second surface is the surface of the lower box body that faces away from the access opening.

[0024] In some alternative embodiments, both the first surface and the second surface are provided with the male parts and the female parts, and the positions of the male parts on the first surface correspond to the positions of the female parts on the second surface.

[0025] In the storage box provided by the above embodiment, since the position of the sub-component on the first surface corresponds to that of the mother-component on the second surface, the sub-component and the mother-component can be matched and connected, and the boxes in the two storage boxes can overlap by the way that any surface contacts each other. When overlapping the storage boxes, the operation is simpler.

[0026] In some alternative embodiments, the first side surface and the second side surface are both provided with the first structural member and the second structural member, and the first structural member and the second structural member on the first side surface are symmetric about the vertical midline of the first side surface; the position where the second structural member is arranged on the first side surface corresponds to the position where the first structural member is arranged on the second side surface; the position where the first structural member is arranged on the first side surface corresponds to the position where the second structural member is arranged on the second side surface.

[0027] In the above technical solution, since the first side surface and the second side surface are both provided with the first structural member and the second structural member, and the first structural member and the second structural member are arranged according to the above technical solution, a box body can be connected to another box body in such a way that the first side surface is opposite to the first side surface of the other box body, or in such a way that the first side surface is opposite to the second side surface of the other box body. That is, in the box assembly provided by the above technical solution, the horizontal splicing direction of the storage boxes is not restricted.

[0028] In some alternative embodiments, the first structural member is a jack and the second structural member is a plug, and the jack and the plug can be structurally plugged together.

[0029] In the above technical solution, the two storage boxes can be horizontally spliced by plugging, and the disassembly between the storage boxes is convenient.

[0030] In some alternative embodiments, the end of the plug away from the box body has two protruding free ends, and there is a gap between the two free ends, and the end of the free end has a chamfer; when the plug is connected to the jack, the two free ends can be squeezed towards the gap to simultaneously extend into a jack, and can rebound away from each other to have an interference fit with the jack.

[0031] In the above technical solution, an interference fit can be formed between the jack and the plug, making the connection between the two storage boxes more reliable.

[0032] In some alternative embodiments, the hole wall of the jack has a spring piece, and when the plug is connected to the jack, the plug is fixed by the spring piece and the hole wall of the jack.

[0033] In the above technical solution, by providing elastic pieces on the inner wall of the jack, after the plug-in enters the socket, the plug-in is squeezed under the action of the elastic pieces, thereby realizing the fixation of the plug-in and making the connection between the two storage boxes more reliable.

[0034] In some alternative embodiments, the cross-sectional area of the jack perpendicular to the insertion direction of the plug-in is smaller than the cross-sectional area of the plug-in, so that the jack and the plug-in are in interference fit to achieve connection.

[0035] In the above technical solution, an interference fit can be formed between the jack and the plug-in, making the connection between the two storage boxes more reliable.

[0036] In some alternative embodiments, one end of the plug-in has a bent portion, and the plug-in and the jack are configured such that after the plug-in is inserted into the jack, they can slide relative to each other, so that the bent portion hooks on the inner wall of the jack.

[0037] In the above technical solution, after the plug-in is inserted into the jack, by sliding the two storage boxes relative to each other perpendicular to the insertion direction, the bent portion at the end of the plug-in can be hooked on the inner wall of the jack to limit the relative movement between the two storage boxes and make the connection between the two storage boxes more reliable.

[0038] In some alternative embodiments, a groove is provided in the area of the inner wall of the box body close to the jack, the bent portion extends towards the box body and forms a hook-like structure, and the plug-in and the jack are configured such that when the plug-in is inserted into the jack and the plug-in is slid perpendicular to the insertion direction, the hook-like structure can hook the groove.

[0039] In the above technical solution, by providing a groove in the inner wall of the box body and enabling the bent portion to hook the groove after the plug-in is connected to the jack, the connection between the two storage boxes can be made more reliable.

[0040] In some alternative embodiments, the first structural member is the hook surface of a magic tape, and the second structural member is the fuzzy surface of a magic tape. The two storage boxes can be connected by a magic tape, which is convenient for connection.

[0041] In some alternative embodiments, the first structural member and the second structural member are a chute and a slide rail that can cooperate with each other structurally.

[0042] In the above technical solution, the first structural member and the second structural member are a chute and a guide rail. When the two storage boxes are connected to each other, the first structural member and the second structural member have a large contact area, and the connection is more reliable.

[0043] In a third aspect, an embodiment of the present application provides a storage component, including a host storage bin and the box component provided in the first aspect or the second aspect. The host storage bin is located outside the box body and is detachably connected to the box body.

[0044] In a fourth aspect, an embodiment of the present application provides a tool component, including a host, accessories, and the storage component provided in the third aspect. The host is placed in the host storage bin, and the accessories are placed in the box body. BRIEF DESCRIPTION OF THE DRAWINGS

[0045] To more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present application and should not be regarded as limiting the scope. For those of ordinary skill in the art, other related drawings can be obtained based on these drawings without creative efforts.

[0046] Figure 1 Schematic diagram of the connection between the box component and the host storage bin provided in an embodiment of the present application;

[0047] Figure 2 Schematic diagram of the box component and the host storage bin after disassembly provided in an embodiment of the present application;

[0048] Figure 3 Schematic diagram of the connection between the box component and the host storage bin provided in an embodiment of the present application;

[0049] Figure 4 Schematic diagram of the box component and the host storage bin after disassembly provided in an embodiment of the present application;

[0050] Figure 5 Schematic diagram of the horizontal splicing of two storage boxes in the box component provided in an embodiment of the present application;

[0051] Figure 6 Schematic diagram of the horizontal splicing of two storage boxes in the box component provided in an embodiment of the present application;

[0052] Figure 7 Schematic diagram of the vertical overlap of two storage boxes in the box component provided in an embodiment of the present application;

[0053] Figure 8 Schematic diagram of the vertical overlap of two storage boxes in the box component provided in an embodiment of the present application;

[0054] Figure 9 Schematic diagram of the storage box provided in an embodiment of the present application;

[0055] Figure 10 For Figure 9 Top view of the storage box shown;

[0056] Figure 11 is Figure 9 the front view of the shown storage box;

[0057] Figure 12 is a schematic diagram of a storage box provided by an embodiment of the present application;

[0058] Figure 13 is a schematic diagram of a storage box provided by an embodiment of the present application;

[0059] Figure 14 is a schematic diagram of a storage box provided by an embodiment of the present application;

[0060] Figure 15 is a schematic diagram of a storage box provided by an embodiment of the present application;

[0061] Figure 16 is the top view of a storage box provided by an embodiment of the present application;

[0062] Figure 17 is Figure 16 the front view of the shown storage box;

[0063] Figure 18 is a schematic diagram of the connection between a plug and a socket provided by an embodiment of the present application;

[0064] Figure 19 is a schematic diagram of a storage box provided by an embodiment of the present application;

[0065] Figure 20 is a schematic diagram of the structure of a plug provided by an embodiment of the present application;

[0066] Figure 21 is a schematic diagram of the connection between a plug and a socket provided by an embodiment of the present application;

[0067] Figure 22 is a schematic diagram of a box body provided by an embodiment of the present application;

[0068] Figure 23 is a schematic diagram of a lower box body provided by an embodiment of the present application;

[0069] Figure 24 is a schematic diagram of a box body provided by an embodiment of the present application;

[0070] Figure 25 is a schematic diagram of a box body provided by an embodiment of the present application.

[0071] Icons: 100 - Box assembly; 110 - Storage box; 111 - Box body; 1111 - First surface; 1112 - Second surface; 1113 - First side; 1114 - Second side; 1115 - Third side; 1116 - Fourth side; 1117 - Fitting groove; 1118 - Upper box body; 1119 - Lower box body; 11110 - Outer shell; 11111 - Inner lining; 112 - Sub - part; 113 - Mother part; 114 - First structural member; 115 - Second structural member; 116 - Magnet; 117 - Jack; 1171 - Groove; 1172 - Elastic piece; 118 - Plug; 1181 - Bent part; 1182 - Free end; 1183 - Spacing; 200 - Main unit storage bin. Detailed implementation manners

[0072] To make the objectives, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present application. Apparently, the described embodiments are some but not all of the embodiments of the present application. Usually, the components of the embodiments of the present application described and illustrated in the accompanying drawings here can be arranged and designed in various different configurations.

[0073] Therefore, the following detailed description of the embodiments of the present application provided in the accompanying drawings is not intended to limit the scope of the present application claimed, but merely represents the selected embodiments of the present application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the scope of protection of the present application.

[0074] It should be noted that: Similar reference numerals and letters denote similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.

[0075] In the description of the present application, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the product of this application is usually placed during use. It is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of the present application. In addition, the terms "first", "second", "third", etc. are only used for descriptive distinction and cannot be understood as indicating or implying relative importance.

[0076] In addition, terms such as "horizontal", "vertical", "hanging", etc. do not mean that the components are required to be absolutely horizontal or hanging, but can be slightly inclined. For example, "horizontal" only means that its direction is more horizontal relative to "vertical", and does not mean that the structure must be completely horizontal, but can be slightly inclined.

[0077] In the description of the present application, it should also be noted that unless otherwise clearly specified and limited, the terms "set", "install", "connected", "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium, and can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific situations.

[0078] An embodiment of the present application provides a tool assembly, including a main body, accessories and a storage assembly, as Figures 1 to 4 shown, the storage assembly includes a main body storage bin 200 and a box assembly 100. Among them, the main body is placed in the main body storage bin 200 for storage; as Figures 5 to 8 shown, the box assembly 100 includes a storage box 110, as Figures 9 to 15 shown, the storage box 110 includes a box body 111, and the box body 111 is used to accommodate accessories. The main body can be combined with different accessories in the box body 111 to meet different usage requirements. In the storage assembly provided by the present application, the main body that the main body storage bin 200 can store can be a screwdriver, an electric screwdriver, or other tools that can be used by replacing accessories. Further, the main body storage bin 200 is located outside the box body 111, and the user can directly take and place the main body from the main body storage bin 200, and the operation is more convenient. Further, the main body storage bin 200 is detachably connected to the box body 111, which is convenient for the user to combine the main body storage bin 200 with the storage box 110 containing the accessories to be used, and is convenient for carrying and using.

[0079] In some embodiments, such as Figure 16 and Figure 17As shown, the box body 111 includes opposite first surface 1111 and second surface 1112, and opposite first side surface 1113 and second side surface 1114. Among them, the first surface 1111 is the upper surface, and the second surface 1112 is the lower surface. The box body 111 has a fitting slot 1117 for accommodating fittings. The fitting slot 1117 should have an access opening for taking out the fittings. When using the storage box 110, with the access opening facing upward, the upper surface of the box body 111 is the upper surface of the box body 111, that is, the first surface 1111; the surface opposite to the upper surface is the lower surface, that is, the second surface 1112; when the access opening is facing upward, the surface of the box body 111 extending in the vertical direction (that is, the thickness direction of the box body 111, that is, Figure 17 the direction indicated by the arrow Z in the figure) is the side surface. Taking the box body 111 as a square as an example, that is, when the box body 111 is generally a cuboid, the box body 111 has an upper surface, a lower surface, and four side surfaces (including opposite first side surface 1113, second side surface 1114, and opposite third side surface 1115 and fourth side surface 1116).

[0080] In some embodiments, the box body 111 is Figure 12 the structure shown, where the fitting slot 1117 is recessed in the first surface 1111 of the box body 111, that is, in the upper surface of the box body 111.

[0081] In other embodiments, as Figure 25 shown, the box body 111 includes an outer shell 11110 and an inner lining 11111. The inner lining 11111 is inserted into the outer shell 11110, and the fitting slot 1117 is provided in the inner lining 11111. The inner lining 11111 can be pulled out from the outer shell 11110 to access the fittings. In this embodiment, the first surface 1111 and the second surface 1112 of the box body 111 are two opposite surfaces of the outer shell 11110; that is, when using the storage box 110, with the access opening in the fitting slot 1117 facing upward, the upper surface of the outer shell 11110 is the upper surface of the box body 111, that is, the first surface 1111; the surface opposite to the upper surface is the lower surface, that is, the second surface 1112; when the access opening is facing upward, the surface of the outer shell 11110 extending in the vertical direction is the side surface.

[0082] In some embodiments of the present application, the structures of the storage boxes 110 in the box assembly 100 can be the same, that is, the structures of any two storage boxes 110 are the same. In other embodiments, as Figure 5As shown, the structure of the storage box 110 can also be different. The reasons for the differences include the different types of accessories to be accommodated. Therefore, the accessory slots 1117 of the storage box 110 are different in structure, while the structures of other parts of the box body 111 may not change with the types of accessories accommodated in the box body 111. As Figure 5 In the embodiment shown, in the box body 111 of the storage box 110 for accommodating the bits, the bits are fixedly arranged on the bit seat in the accessory slot 1117; while in the box body 111 of the storage box 110 for accommodating the electric grinding heads, the accessory slot 1117 is not provided with a bit seat, and the electric grinding heads can move freely in the accessory slot 1117. Therefore, in the box body 111 for accommodating the electric grinding heads, a cover plate (not shown in the figure) can be provided at the access opening of the accessory slot 1117, and the cover plate can cover the access opening of the accessory slot 1117 to prevent the accessories from scattering.

[0083] In some embodiments, as Figures 9 to 15 shown, a sub-component 112 is provided on the first surface 1111 of the box body 111, and a mother-component 113 is provided in the area corresponding to the first surface 1111 on the second surface 1112 of the box body 111, and the sub-component 112 and the mother-component 113 can be magnetically connected. That is, the sub-component 112 on the first surface 1111 corresponds to the mother-component 113 on the second surface 1112. Among them, the sub-component 112 and the mother-component 113 provided on the first surface 1111 mean that part of the structures of the sub-component 112 and the mother-component 113 are located at the first surface 1111, or part of the structures of the sub-component 112 and the mother-component 113 are close to the first surface 1111, or part of the structures of the sub-component 112 and the mother-component 113 protrude from the first surface 1111, etc.; the corresponding position means that along the direction from the first surface 1111 to the second surface 1112 (that is, the thickness direction of the box body 111, that is, Figure 11 and Figure 17 the direction shown by the arrow Z in Figure 8 ), the position of the projection of the sub-component 112 on the first surface 1111 at least partially coincides with the position of the projection of the mother-component 113 on the second surface 1112, so that the sub-component 112 on the first surface 1111 of one box body 111 can be aligned with the mother-component 113 at the corresponding position on the second surface 1112 of another box body 111, so that the two storage boxes 110 can be vertically stacked as shown in

[0084] It should be noted that the fact that the sub-component 112 and the mother-component 113 can be magnetically connected does not mean that the sub-component 112 and the mother-component 113 on the same box body 111 are connected to each other, but rather that the sub-component 112 and the mother-component 113 on different box bodies 111 can play a role of magnetic connection after matching. For example, when the box assembly 100 includes two storage boxes 110, each storage box 110 includes a box body 111; the sub-component 112 in one box body 111 and the mother-component 113 in an adjacent another box body 111 can be magnetically connected to each other, thereby realizing the stacking of the two storage boxes 110. Further, in some embodiments, as Figure 2 shown, the box assembly 100 includes only one storage box 110; in other embodiments, as Figure 3 and Figure 4 shown, the box assembly 100 may include two or more storage boxes 110.

[0085] In some embodiments, both the first surface 1111 and the second surface 1112 are provided with the sub-component 112 and the mother-component 113. That is, the first surface 1111 is provided with the sub-component 112 and the mother-component 113, and the second surface 1112 is also provided with the sub-component 112 and the mother-component 113; and the position of the sub-component 112 in the second surface 1112 corresponds to the position of the mother-component 113 in the first surface 1111, and the position of the mother-component 113 in the second surface 1112 corresponds to the position of the sub-component 112 in the first surface 1111.

[0086] In the storage box 110 provided by the above embodiments, since the position of the sub-component 112 on the first surface 1111 corresponds to the position of the mother-component 113 on the second surface 1112, the sub-component 112 and the mother-component 113 can be matched and magnetically connected. When any surface of one storage box 110 overlaps with another storage box 110, the sub-component 112 of the storage box 110 and the mother-component 113 of the adjacent storage box 110 are magnetically connected, and the overlapping of the two storage boxes 110 in the vertical direction can be realized. It can be that the sub-component 112 on the first surface 1111 in one box body 111 is connected to the mother-component 113 on the first surface 1111 in another box body 111, that is, the box bodies 111 in the two storage boxes 110 overlap by the way that the two first surfaces 1111 are in contact with each other; or it can be that the sub-component 112 on the first surface 1111 in one box body 111 is magnetically connected to the mother-component 113 on the second surface 1112 in another box body 111, that is, the box bodies 111 in the two storage boxes 110 overlap by the way that the first surface 1111 and the second surface 1112 are in contact with each other. That is, the box bodies 111 in the two storage boxes 110 can overlap by the way that any surface is in contact with each other, and when overlapping the storage boxes 110, the operation is simpler.

[0087] Since the storage box 110 in the box component 100 can be stacked by the magnetic connection between the sub-component 112 and the mother-component 113, when multiple storage boxes 110 are used, the space occupied by the storage boxes 110 on the workbench can be reduced by stacking the storage boxes 110.

[0088] Of course, in some embodiments, it may also be that only the sub-component 112 is provided on the first surface 1111 and only the mother-component 113 is provided on the second surface 1112. In other embodiments, three or more sub-components 112 may also be provided on the first surface 1111 and three or more mother-components 113 may be provided on the second surface 1112.

[0089] In some embodiments, the number of sub-components 112 in the first surface 1111 is equal to the number of mother-components 113 in the second surface 1112, and the number of mother-components 113 in the first surface 1111 is equal to the number of sub-components 112 in the second surface 1112. In some embodiments, the number of sub-components 112 in the first surface 1111 may also not be equal to the number of mother-components 113 in the second surface 1112, or the number of mother-components 113 in the first surface 1111 may not be equal to the number of sub-components 112 in the second surface 1112, as long as the excess sub-components 112 or mother-components 113 do not cause interference when the two box bodies 111 are magnetically connected and prevent the two box bodies 111 from being connected.

[0090] Furthermore, the number of sub-components 112 in the first surface 1111 is equal to the number of mother-components 113 in the first surface 1111, and the number of sub-components 112 in the second surface 1112 is equal to the number of mother-components 113 in the second surface 1112.

[0091] In some embodiments, the first surface 1111 includes two sub-components 112 and two mother-components 113, and the second surface 1112 includes two sub-components 112 and two mother-components 113. It is not difficult to understand that when the two storage boxes 110 are vertically overlapped, there can be four positions where there is a magnetic connection relationship between the two box bodies 111, making the connection between the two box bodies 111 more reliable. Further, when the box body 111 is a square structure, the first surface 1111 is a roughly rectangular shape, and the two sub-components 112 and the two mother-components 113 of the first surface 1111 can be located at one vertex position of the first surface 1111 respectively. So that when the two box bodies 111 are overlapped and connected through the sub-component 112 and the mother-component 113, the force distribution is more uniform. In some other embodiments, other numbers of sub-components 112 and mother-components 113 may also be provided on the first surface 1111 and the second surface 1112.

[0092] Furthermore, as Figure 9 And Figure 10In the illustrated embodiment, along the circumferential direction of the first surface 1111, a sub-component 112, a mother-component 113, another sub-component 112, and another mother-component 113 are arranged in sequence on the first surface 1111, that is, the sub-components 112 and the mother-components 113 are arranged alternately, and the arrangement positions of the sub-components 112 and the mother-components 113 are symmetrically arranged along the midline of the first surface 1111; so that the direction in which the two storage boxes 110 are vertically overlapped is not restricted. Figure 10 Taking the structure of the box body 111 shown as an example, the box body 111 is a square structure, and the arrangement positions of the sub-component 112 and the mother-component 113 are symmetrically arranged along the midline of the first surface 1111, where the midline of the first surface 1111 includes both the midline extending along the length direction of the box body 111 (i.e., Figure 10 the direction indicated by the arrow X in the figure), and the midline extending along the width direction of the box body 111 (i.e., Figure 10 the opposite direction of the arrow Y in the figure).

[0093] According to Figure 10 the manner shown in the figure to arrange the sub-component 112 and the mother-component 113, when the two storage boxes 110 are overlapped, it can be Figure 8 the first surfaces 1111 of the two box bodies 111 shown in the figure are in contact with each other. Further, it can be that the sub-component 112 at the first end of one box body 111 in the length direction is magnetically connected to the mother-component 113 at the first end of the other box body 111 in the length direction (i.e., Figure 8 the first side surface of one box body shown in the figure and the third side surface of the other box body are on the same side), or it can be that the sub-component 112 at the first end of one box body 111 in the length direction is magnetically connected to the mother-component 113 at the second end of the other box body 111 in the length direction (i.e., the first side surface of one box body and the first side surface of the other box body are on the same side). It can also be Figure 7 the first surface 1111 of one box body 111 shown in the figure is in contact with the second surface 1112 of the other box body 111. Further, it can be that the sub-component 112 at the first end of one box body 111 in the length direction is magnetically connected to the mother-component 113 at the first end of the other box body 111 in the length direction (i.e., Figure 7The first side of a box body shown is on the same side as the first side of another box body), or it can also be that the sub-component 112 at the first end of a box body 111 in the length direction is magnetically connected to the parent component 113 at the second end of another box body 111 in the length direction (i.e., the first side of a box body is on the same side as the third side of another box body). In this way, the two box bodies 111 can be connected by the upper surface of one box body 111 contacting the upper surface of another box body 111, and it can be that the first end of one box body 111 corresponds to the first end of another box body 111, or the first end of one box body 111 corresponds to the second end of another box body 111; at the same time, one box body 111 can also be magnetically connected by the upper surface contacting the lower surface of another box body 111, and in this connection method, it can also be that the first end of one box body 111 corresponds to the first end of another box body 111, or the first end of one box body 111 corresponds to the second end of another box body 111. This connection method is called that the overlapping direction of the two storage boxes 110 is not restricted.

[0094] In some embodiments, such as Figure 6 、 Figure 9 and Figure 10 shown, the sub-component 112 is a magnet 116, and the parent component 113 is also a magnet 116. Further, the sub-component 112 is the N pole of the magnet 116, and the parent component 113 is the S pole of the magnet 116. Among them, the N pole of the first surface 1111 and the S pole of the second surface 1112 can be at both ends of the same magnet 116; similarly, the N pole of the second surface 1112 and the S pole of the first surface 1111 can also be at both ends of the same magnet 116; that is, the sub-component 112 on the first surface 1111 and the parent component 113 at the corresponding position on the second surface 1112 are the two magnetic poles of the same magnet 116, and the parent component 113 on the first surface 1111 and the sub-component 112 at the corresponding position on the second surface 1112 are the two magnetic poles of the same magnet 116. In some other embodiments, the sub-component 112 and the parent component 113 can also be at the ends of different magnets 116; for example, a magnet 116 is provided on the first surface 1111, the N pole of this magnet 116 is the sub-component 112 on the first surface 1111, and another magnet 116 is provided at the corresponding position on the second surface 1112, and the S pole of this magnet 116 is the parent component 113 on the second surface 1112.

[0095] In some other embodiments, such as Figure 14 shown, it can also be that the sub-component 112 is a magnet 116 and the parent component 113 is a ferromagnetic structural member (such as metal structural members with ferromagnetism like iron, nickel, cobalt, etc.). In this embodiment, the number of magnets 116 included in the storage box 110 is less, so when installing the sub-component 112 and the parent component 113, the situation of misplacing the magnetic pole orientation can be reduced.

[0096] Further, in some embodiments, the box body 111 has a square structure, and a vertically extending magnet 116 is provided at each of the four vertex positions of the box body 111. One end N pole of the magnet 116 is the sub-component 112 on the first surface 1111, and the other end S pole of the magnet 116 is the mother component 113 on the second surface 1112. One end S pole of the magnet 116 is the mother component 113 on the first surface 1111, and the other end N pole of the magnet 116 is the sub-component 112 on the second surface 1112. Since the magnet 116 is provided at the vertex position of the box body 111, not only can the first surface 1111 and the second surface 1112 of the box body 111 have magnetic force, but also the first side surface 1113 and the second side surface 1114 of the box body 111 can have magnetic force. Therefore, the above setting method of the magnet 116 not only enables the two storage boxes 110 to be magnetically connected in a state where the first surface 1111 and the second surface 1112 are opposite or facing each other for vertical overlap, but also enables the two storage boxes 110 to be magnetically connected in the horizontal direction (the horizontal direction includes Figure 10 the length direction and the width direction shown) for horizontal splicing, that is, Figure 5 and Figure 6 the splicing method shown. Further, when the box body 111 is square and the magnets 116 at the four corners of the box body 111 have alternately arranged magnetic poles on the first surface 1111, not only can the vertical overlap direction of the two storage boxes 110 be unrestricted, but also the splicing directions of the two storage boxes 110 in the length direction and the width direction can be unrestricted.

[0097] In some other embodiments, the sub-component 112 in the first surface 1111 and the mother component 113 at the corresponding position in the second surface 1112 can also be different magnets 116. That is, the N pole of one magnet 116 close to the first surface 1111 is the sub-component 112 of the first surface 1111, and the S pole of the other magnet 116 close to the second surface 1112 is the mother component 113 of the second surface 1112.

[0098] In some embodiments, as Figure 24 shown, the magnet 116 can also be horizontally arranged in the box body 111. The horizontal arrangement of the magnet 116 means that the axial direction of the magnet 116 extends along the direction of two opposite side surfaces. Specifically, it can extend along the direction of two opposite side surfaces in the length direction. For example, one end of the magnet 116 extends toward the third side surface 1115 of the box body 111, and the other end of the magnet 116 extends toward the fourth side surface 1116, or one end of the magnet 116 extends toward the first side surface 1113 of the box body 111, and the other end of the magnet 116 extends toward the second side surface 1114 of the box body 111.

[0099] In some embodiments, the shape of the box body 111 is square, and the number of horizontally arranged magnets 116 is four. The projections of the ends of the four magnets 116 on one side are located at the four corners of this side, that is, each vertex angle of this side of the box body 111 corresponds to the projection of a magnet 116. As Figure 24 shown in the embodiment, the axes of the four magnets 116 are all parallel to the width direction of the box body 111. The projections of the magnets 116 on the first side 1113 of the box body 111 are located at the vertex angle positions of the box body 111 and can form a quadrilateral. That is, there is a projection of a magnet 116 at each vertex angle position, which can enable the two storage boxes 110 to not only be stacked vertically by the magnetic force between the magnets 116, but also be spliced in the length and width directions.

[0100] Furthermore, as Figure 24 shown in the embodiment, along the circumferential direction of the arrangement direction of the four magnets 116, that is, along the circumferential direction where the projections on the first side 1113 form a quadrilateral, the magnetic pole directions of adjacent two magnets 116 are opposite, which can realize that the horizontal splicing and vertical stacking directions of adjacent two storage boxes 110 are not restricted, and there are more splicing methods. For example, one end of a box body 111 in the length direction can not only be connected to one end of another box body 111 in the length direction, but also be connected to the other end of another box body 111 in the length direction.

[0101] In the above embodiments, the magnet 116 can be a strip-shaped structural member, or can be Figure 14 the block-shaped or sheet-shaped structure shown, or can also be a structural member of other shapes.

[0102] Furthermore, in some embodiments, as Figures 12 to 22As shown, a first structural member 114 is provided on a first side surface 1113 of the box body 111, and a second structural member 115 is provided in a region corresponding to the first side surface 1113 on a second side surface 1114, and the first structural member 114 and the second structural member 115 can be structurally connected. That is, the first structural member 114 in the first side surface 1113 corresponds to the second structural member 115 in the second side surface 1114 in position. Among them, the first side surface 1113 is provided with the first structural member 114, which means that part of the structure of the first structural member 114 is located at the first side surface 1113, or part of the structure of the first structural member 114 is close to the first side surface 1113, or part of the structure of the first structural member 114 protrudes from the first side surface 1113, etc.; the second side surface 1114 is provided with the second structural member 115, which means that part of the structure of the second structural member 115 is located at the second side surface 1114, or part of the structure of the second structural member 115 is close to the second side surface 1114, or part of the structure of the second structural member 115 protrudes from the second side surface 1114, etc.; the first structural member 114 in the first side surface 1113 corresponds to the second structural member 115 in the second side surface 1114 in position, which means that along the direction from the first side surface 1113 to the second side surface 1114 (that is, the width direction of the box body 111, that is, Figure 10 , Figure 16 the direction indicated by the arrow Y in), the position of the projection of the first structural member 114 in the first side surface 1113 and the position of the projection of the second structural member 115 in the second side surface 1114 at least partially coincide, so that the first structural member 114 on the first side surface 1113 of a box body 111 can be aligned with the second structural member 115 in the second side surface 1114 of another box body 111, so that the two storage boxes 110 can be realized through the first structural member 114 and the second structural member 115 Figure 5 and Figure 6 when the horizontal splicing shown is performed, the first surfaces 1111 of the two box bodies 111 are substantially flush and the second surfaces 1112 are substantially flush. Since the storage boxes 110 in the box assembly 100 can be horizontally spliced, when multiple storage boxes 110 are used, the workbench surface can be made cleaner by horizontally splicing the storage boxes 110.

[0103] It should be noted that the fact that the first structural member 114 and the second structural member 115 can be structurally connected does not mean that the first structural member 114 and the second structural member 115 on the same box body 111 are connected. Instead, the first structural member 114 and the second structural member 115 have a corresponding relationship in structure. After the first structural member 114 and the second structural member 115 on different box bodies 111 are matched with each other, they can play the role of a connecting member. For example, when the box assembly 100 includes two storage boxes 110, each storage box 110 includes a box body 111; the first structural member 114 in one box body 111 can be connected to the second structural member 115 in another adjacent box body 111, so as to realize the horizontal splicing of the two storage boxes 110.

[0104] In some embodiments, such as Figure 5 As shown, in the storage box 110 for accommodating the bit and the storage box 110 for accommodating the electric grinding head, the installation positions and installation methods of the sub-member 112 and the mother-member 113 in different storage boxes 110 are the same, and the installation positions and installation methods of the first structural member 114 and the second structural member 115 in different storage boxes 110 are also the same, so that the storage box 110 for accommodating the bit and the storage box 110 for accommodating the electric grinding head can also be horizontally spliced and stacked.

[0105] Taking Figure 16 as an example, the first side surface 1113 and the second side surface 1114 of the box body 111 are two opposite side surfaces in the width direction. Among them, the fact that the splicing direction of the storage box 110 in the width direction is not limited means that: one box body 111 can be structurally connected by contacting the second side surface 1114 in another box body 111 through the first side surface 1113, and the first end of this box body 111 in the length direction corresponds to the first end of another box body 111 in the length direction; one box body 111 can also be connected by contacting the first side surface 1113 in another box body 111 through the first side surface 1113, and the first end of this box body 111 in the length direction corresponds to the second end of another box body 111 in the length direction. Taking Figure 16 as an example, the third side surface 1115 and the fourth side surface 1116 of the box body 111 in the figure are two opposite side surfaces in the length direction. Among them, the fact that the splicing direction of the storage box 110 in the length direction is not limited means that: one box body 111 can be connected by contacting the fourth side surface 1116 in another box body 111 through the third side surface 1115, and the first side surfaces 1113 of the two box bodies 111 are located on the same side; one box body 111 can also be connected by contacting the third side surface 1115 in another box body 111 through the third side surface 1115, and the first side surface 1113 of one box body 111 and the second side surface 1114 of another box body 111 are located on the same side.

[0106] In some embodiments of the present application, such asFigure 12 , Figure 14 As shown in Figure 15 , both the first side 1113 and the second side 1114 of the box body 111 are provided with a first structural member 114 and a second structural member 115. Moreover, the setting positions of the first structural member 114 in the first side 1113 correspond to the setting positions of the second structural member 115 in the second side 1114, and the setting positions of the second structural member 115 in the first side 1113 correspond to the setting positions of the first structural member 114 in the second side 1114. In this embodiment, one box body 111 can connect the second structural member 115 and the first structural member 114 of the first side 1113 in another box body 111 through the first structural member 114 and the second structural member 115 of the first side 1113, or can also connect the second structural member 115 and the first structural member 114 of the second side 1114 in another box body 111 through the first structural member 114 and the second structural member 115 of the first side 1113, so that the direction of splicing the storage box 110 in the horizontal direction is not restricted.

[0107] Furthermore, in the first side 1113, the setting positions of the first structural member 114 and the second structural member 115 are symmetric about the vertical center line of the first side 1113. In this case, regardless of whether the box bodies 111 in the two connected storage boxes 110 are connected with the first side 1113 facing the second side 1114 or with the first side 1113 of one box body 111 facing the second side 1114 of another box body 111, as Figure 18 shown, the ends of the two connected box bodies 111 in the length direction can be aligned.

[0108] Of course, in some other embodiments, as Figure 13 , Figure 19 shown, it may also be that only the first structural member 114 is provided on the first side 1113 and only the second structural member 115 is provided on the second side 1114. That is, when the two storage boxes 110 are spliced in the horizontal direction, the first side 1113 of one box body 111 faces and contacts the second side 1114 in another box body 111.

[0109] In some embodiments of the present application, the first structural member 114 is a jack 117, the second structural member 115 is a plug 118, and the jack 117 and the plug 118 can be structurally plugged, that is, by inserting the second structural member 115 into the first structural member 114, the first structural member 114 and the second structural member 115 can be connected to each other.

[0110] Furthermore, in some embodiments, as Figure 20 ​​As shown, the end of the plug 118 away from the box body 111 has two protruding free ends 1182, and there is a gap 1183 between the two free ends 1182. When the plug 118 is connected to the jack 117, the two free ends 1182 can approach each other so as to simultaneously extend into a jack 117, and can move away from each other to achieve rebound and then have an interference fit with the jack 117. It is not difficult to understand that the plug 118 has two free ends 1182, and there is a gap 1183 between the two free ends 1182, which provides space for the deformation of the free ends 1182. Therefore, the plug 118 is an elastic structure, so that after the plug 118 enters the jack 117, it has a tendency to rebound under the action of its own elastic deformation, forms extrusion with the jack 117, and then realizes the effect of interference fit. Further, in order to facilitate the insertion of the plug 118 into the jack 117, the end face of the free end 1182 is a chamfered structure, and this chamfered structure can play a guiding role to enable the plug 118 to be better inserted into the jack 117. In some embodiments, the gap 1183 can be a gap 1183 in the horizontal direction, that is, the two free ends 1182 are arranged side by side in the horizontal direction; in other embodiments, the gap 1183 can also be a gap 1183 in the vertical direction, that is, the two free ends 1182 are arranged up and down in the vertical direction. In some embodiments, the cross-section of the free end 1182 can be rectangular; in other embodiments, the cross-section of the free end 1182 can also be bow-shaped, cylindrical, or other shapes, where the cross-section of the free end 1182 is the cross-section perpendicular to the direction in which the plug 118 is inserted into the jack 117.

[0111] In some embodiments, the connection can also be achieved by controlling the sizes of the jack 117 and the plug 118 to make the jack 117 and the plug 118 have an interference fit. The specific method is: the cross-sectional area of the jack 117 perpendicular to the insertion direction of the plug 118 is smaller than the cross-sectional area of the plug 118. Further, in order to facilitate the insertion of the plug 118 into the jack 117, a chamfer can also be provided at the end of the plug 118 away from the box body 111, and the chamfer can play a guiding role to facilitate the insertion of the plug 118 into the jack 117. In some embodiments, the cross-section of the plug 118 can be square; in other embodiments, the cross-section of the plug 118 can also be circular or other shapes. In another embodiment, the plug 118 can be a conical structure, and the free end 1182 of the conical structure is smaller, then it can be more easily inserted into the jack 117, and the middle part of the conical structure has an interference fit with the inner wall of the jack 117.

[0112] In some embodiments, the hole wall of the jack 117 has a spring piece 1172. When the plug 118 is connected to the jack 117, the plug 118 is fixed to the hole wall of the jack 117 through the spring piece 1172. That is, under the action of the spring piece 1172, the plug 118 is extruded and pressed against the hole wall of the jack 117, so that the connection between the jack 117 and the plug 118 is more reliable. In some embodiments, as Figure 21 shown, the spring piece 1172 is arranged on one side hole wall of the jack 117, and one end of the spring piece 1172 is connected to the hole wall of the jack 117, and the other end inclines away from the entrance direction of the jack 117, so as to facilitate inserting the plug 118 into the jack 117. In some other embodiments, the spring pieces 1172 can also be arranged on the two side walls of the jack 117; further, the two spring pieces 1172 are respectively arranged on the two opposite side walls of the hole wall; or the two spring pieces 1172 are respectively arranged on the two adjacent side walls of the hole wall. In some embodiments, the spring piece 1172 is a metal structural member; in other embodiments, the spring piece 1172 can also be a structural member of other materials.

[0113] In some embodiments where the first structural member 114 is the plug 118 and the second structural member is the jack 117, as Figure 15 shown in Figure 18 shown, one end of the plug 118 further has a bent portion 1181, and the bent portion 1181 extends towards the direction close to the box body 111 and forms a hook-like structure, and the plug 118 can slide relatively after being inserted into the jack 117, so that the bent portion 1181 hooks on the hole wall of the jack 117. It is not difficult to understand that since the bent portion 1181 hooks on the hole wall of the jack 117, the connection between the jack 117 and the plug 118 can be made more reliable.

[0114] As Figure 18 shown, in some embodiments, a groove 1171 is arranged in the area of the inner wall of the box body 111 close to the jack 117. Inserting the plug 118 into the jack 117 and sliding the plug 118 along the direction perpendicular to the insertion direction can make the end of the bent portion 1181 enter the groove 1171, thereby restricting the relative movement between the two storage boxes 110 and making the connection between the two storage boxes 110 more reliable. In another embodiment, the bent portion 1181 of the plug 118 has a certain elasticity. When the plug 118 is inserted into the jack 117, the bent portion 1181 undergoes elastic deformation under the action of the mouth of the jack 117; when the bent portion 1181 deforms and enters the area within the flange, the bent portion 1181 rebounds and hooks on the flange at the mouth of the jack 117, so that the connection between the jack 117 and the plug 118 is more reliable.

[0115] In the case where the first structural member 114 is the jack 117 and the second structural member 115 is the plug 118 as described above, the first structural member 114 and the box body 111, and the second structural member 115 and the box body 111 can be integrally formed structural members. For example, the first structural member 114 and the second structural member 115 can be formed on the box body 111 by injection molding or the like. Of course, in the case where the first structural member 114 is the jack 117 and the second structural member 115 is the plug 118 as described above, the first structural member 114 and the second structural member 115 can also be structural members independently processed and manufactured from the box body 111.

[0116] In some other embodiments, the first structural member 114 and the second structural member 115 can also be other structures that are used in combination in the prior art to play a connecting role. For example, in some embodiments, the first structural member 114 is the hook surface of the Velcro, and the second structural member 115 is the loop surface of the Velcro. In some other embodiments, the first structural member 114 and the second structural member 115 can also be a chute and a slide rail that can cooperate with each other structurally. For example, the first structural member 114 is the chute and the second structural member 115 is the slide rail. When the two box bodies 111 are connected, the first structural member 114 and the second structural member 115 cooperate with each other, and there is a large contact area between the two, making the connection between the first structural member 114 and the second structural member 115 more reliable. Further, when the first side surface 1113 has both the first structural member 114 and the second structural member 115 at the same time, the first structural member 114 and the second structural member 115 can be arranged one above the other in the thickness direction of the box body 111, or can be at the same height in the thickness direction.

[0117] In some embodiments, such as Figures 22 to 24 shown, the box body 111 includes an upper box body 1118 and a lower box body 1119 that can be magnetically attracted and closed. Both the upper box body 1118 and the lower box body 1119 are provided with accessory slots 1117 for accommodating accessories, and the accessory slots 1117 have access openings. That is, both the upper box body 1118 and the lower box body 1119 can separately function to accommodate accessories. In this embodiment, the first surface 1111 of the box body 111 is the surface of the upper box body 1118 that faces away from the access opening of the upper box body 1118; the second surface 1112 of the box body 111 is the surface of the lower box body 1119 that faces away from the access opening of the lower box body 1119, and the box body 111 is formed by connecting the upper box body 1118 and the lower box body 1119 in a positional relationship where the two access openings face each other. The connection method between the upper box body 1118 and the lower box body 1119 can be magnetic attraction connection or other connection methods. Similarly, in this embodiment, the two box bodies 111 can be connected by the sub-member 112 provided on the first surface 1111 and the mother member 113 provided on the second surface 1112.

[0118] Further, the first structural member 114 and the second structural member 115 for realizing the connection of the two boxes 111 in the horizontal direction are evenly distributed on the sides of the upper box 1118 and the lower box 1119. In some embodiments, as Figure 22 shown, on one side of the box 111, both the upper box 1118 and the lower box 1119 have the first structural member 114 and the second structural member 115. In some other embodiments, it may also be that on one side of the box 111, the upper box 1118 has the first structural member 114 and the lower box 1119 has the second structural member 115. In other embodiments, the first structural member 114 and the second structural member 115 may also be arranged on the upper box 1118 and the lower box 1119 in other ways.

[0119] Further, in the embodiment where a transverse magnet 116 is arranged in the box 111, as Figure 24 shown, some of the magnets 116 may be arranged in the upper box 1118 and the other part of the magnets 116 may be arranged in the lower box 1119.

[0120] The above are only the preferred embodiments of the present application and are not intended to limit the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A box component, characterized in that, It includes a storage box, and the storage box includes a box body which has opposite first and second surfaces, and opposite first and second side surfaces. A sub-component is provided on the first surface, and a mother-component is provided in the area corresponding to the first surface on the second surface. The sub-component and the mother-component can be magnetically connected; a first structural component is provided on the first side surface, and a second structural component is provided in the area corresponding to the first side surface on the second side surface. The first structural component and the second structural component can be structurally connected.

2. A box component, characterized in that, It includes at least two storage boxes. Each storage box includes a box body which has opposite first and second surfaces, and opposite first and second side surfaces. A sub-component is provided on the first surface, a mother-component is provided on the second surface, a first structural component is provided on the first side surface, and a second structural component is provided on the second side surface. When one storage box overlaps another storage box vertically, the sub-component of the storage box is magnetically connected to the mother-component of the adjacent storage box; when one storage box is horizontally spliced with an adjacent storage box, the first structural component of the storage box is structurally connected to the second structural component of the adjacent storage box.

3. The cartridge assembly according to claim 1 or 2, wherein The sub-component is a magnet and the mother-component is a ferromagnetic structural component.

4. The cartridge assembly according to claim 1 or 2, characterized in that, The sub-component is the N pole of a magnet and the mother-component is the S pole of a magnet.

5. The cartridge assembly according to claim 4, wherein, The sub-component on the first surface and the mother-component on the second surface are at both ends of the same magnet.

6. The cartridge assembly according to claim 5, wherein, The first surface includes two sub-components and two mother-components, and the second surface includes two sub-components and two mother-components.

7. The cartridge assembly according to claim 6, wherein Along the circumferential direction of the first surface, a sub-component, a mother-component, another sub-component, and another mother-component on the first surface are arranged in sequence; and in the first surface, the setting positions of the sub-components and the mother-components are symmetrically arranged along the midline of the first surface.

8. The cartridge assembly according to claim 7, wherein The box body is of a square structure, and a magnet is provided at each of the four corners of the box body.

9. The cartridge assembly according to any one of claims 5-8, characterized in that, The first surface of the box body is recessed to form an accessory slot for accommodating accessories.

10. The cartridge assembly according to any one of claims 5-8, characterized in that, The box body includes an upper box body and a lower box body that can be magnetically closed. Both the upper box body and the lower box body are provided with accessory slots for accommodating accessories, and the accessory slots have access openings; the first surface is the surface of the upper box body that is away from the access opening, and the second surface is the surface of the lower box body that is away from the access opening.

11. The cartridge assembly according to claim 1 or 2, characterized in that, Both the first side surface and the second side surface are provided with the first structural component and the second structural component, and the first structural component and the second structural component on the first side surface are symmetric along the midline in the vertical direction of the first side surface; the setting position of the second structural component in the first side surface corresponds to the setting position of the first structural component in the second side surface; the setting position of the first structural component in the first side surface corresponds to the setting position of the second structural component in the second side surface.

12. The cartridge assembly according to claim 11, wherein The first structural component is a jack and the second structural component is a plug, and the jack and the plug can be structurally plugged together.

13. The cartridge assembly according to claim 12, wherein, The end of the plug away from the box body has two protruding free ends, and there is a gap between the two free ends. The end of the free end has a chamfer. When the plug-in is connected to the jack, the two free ends can be squeezed towards the interval to simultaneously extend into one of the jacks, and can rebound away from each other to be in interference fit with the jack.

14. The cartridge assembly according to claim 12, wherein, The hole wall of the jack has a spring piece, and when the plug-in is connected to the jack, the plug-in is fixed by the spring piece and the hole wall of the jack.

15. The cartridge assembly according to claim 12, wherein, The cross-sectional area of the jack perpendicular to the insertion direction of the plug-in is smaller than the cross-sectional area of the plug-in, so that the jack and the plug-in are in interference fit to achieve connection.

16. The cartridge assembly according to claim 12, wherein, The end of the plug-in has a bent portion, and the plug-in and the jack are configured such that after the plug-in is inserted into the jack, they can slide relative to each other so that the bent portion hooks on the hole wall of the jack.

17. The cartridge assembly according to claim 16, wherein, A groove is provided in the area of the inner wall of the box body close to the jack. The bent portion extends towards the box body and forms a hook-like structure. The plug-in and the jack are configured such that when the plug-in is inserted into the jack and the plug-in is slid along a direction perpendicular to the insertion direction, the hook-like structure can hook the groove.

18. The cartridge assembly according to claim 11, wherein, The first structural member is the hook surface of a magic tape, and the second structural member is the loop surface of the magic tape.

19. The cartridge assembly according to claim 1 or 2, characterized in that, The first structural member and the second structural member are a chute and a slide rail that can cooperate with each other structurally.

20. A storage component, characterized in that, It includes a main unit storage bin and the box assembly according to any one of claims 1-19. The main unit storage bin is located outside the box body and is detachably connected to the box body.

21. A tool component, characterized in that, It includes a main unit, accessories and the storage assembly according to claim 20. The main unit is placed in the main unit storage bin, and the accessories are placed in the box body.