Box assembly, storage assembly and tool assembly
By setting matching child and female parts on the surface of the storage box, the problem of inconvenient overlapping operation of the existing storage box is solved, flexible connection and simple overlap between the boxes are realized, and multi-directional combination is supported.
Patent Information
- Application Number
- CN202422308020.7
- 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
The existing storage boxes need to be operated in a specific way when overlapping, resulting in inconvenient operation.
The first surface and the second surface of the design storage box are respectively provided with a child and a female member, and the child and the female member can be matched and connected, allowing the box body to contact and overlap with each other through any surface, including magnets, sockets, plugs, Velcro and other connection methods.
A simple overlapping operation between storage boxes is achieved, connecting reliability and flexibility is enhanced, and the combination of vertical and horizontal directions is supported.
Smart Images

Figure CN223057705U_ABST
Abstract
Description
Technical Field
[0001] The present 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. Although the storage boxes in the prior art can be overlapped, when overlapping, only two specific surfaces of the two storage boxes can be in contact. Therefore, when an operator overlaps them, the storage boxes need to be placed in a specific manner, which causes inconvenience in operation. Summary of the Utility Model
[0003] The purpose of the present application is to provide a box component, a storage component, and a tool component to achieve more convenient overlapping of storage boxes.
[0004] The embodiments of the present application are implemented as follows:
[0005] In a first aspect, an embodiment of the present application provides a box component, including a storage box. The storage box includes a box body having opposite first and second surfaces, a male member and a female member provided on the first surface, and a male member and a female member provided on the second surface. The male member on the first surface corresponds to the female member on the second surface, and the male member on the second surface corresponds to the female member on the first surface; the male member and the female member can be matched and connected.
[0006] In the above technical solution, since the first surface and the second surface in the box body are oppositely arranged, both the first surface and the second surface are provided with a male member and a female member, and the male member and the female member correspond in position and can be matched and connected. Therefore, when using multiple storage boxes provided by the above technical solution for overlapping, the male member on the first surface of one box body can be connected to the female member on the second surface of another box body, and the male member on the first surface of one box body can be connected to the female member on the second surface of another box body; it is also possible that the male member on the first surface of one box body is connected to the male member on the first surface of another box body, and the male member on the first surface of one box body is connected to the female member on the first surface of another box body. That is, the two box bodies can be overlapped by any surface in contact with each other, and the operation is simpler when overlapping the storage boxes.
[0007] 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 having opposite first and second surfaces, a male member and a female member provided on the first surface, and a male member and a female member provided on the second surface. When any surface of one storage box overlaps with another storage box, the male member of the storage box is connected to the female member of the adjacent storage box.
[0008] In the above technical solution, since any surface of one storage box can overlap with that of another storage box. For example, the two storage boxes can overlap by means of the two first surfaces contacting each other, or by means of the first surface and the second surface contacting each other. When overlapping the storage boxes, the operation is simpler and the overlapping can be achieved without distinguishing the front and back sides.
[0009] In some alternative embodiments, the first surface includes two sub-pieces and two mother-pieces, and the second surface includes two sub-pieces and two mother-pieces.
[0010] In the above technical solution, since both the first surface and the second surface have two sub-pieces and two mother-pieces, when connecting the two boxes, the two boxes can be connected by the two sub-pieces of one box on the first surface and the two mother-pieces of the other box, or by the two mother-pieces of one box on the first surface and the two sub-pieces of the other box. There are more connection positions, making the connection between the two boxes more reliable.
[0011] In some alternative embodiments, along the circumferential direction of the first surface, one sub-piece, one mother-piece, another sub-piece and another mother-piece on the first surface are arranged in sequence; and in the first surface, the arrangement positions of the sub-pieces and the mother-pieces are symmetrically arranged along the midline of the first surface.
[0012] In the above technical solution, the sub-pieces and mother-pieces of the first surface are respectively arranged corresponding to the mother-pieces and sub-pieces of the second surface; since the sub-pieces and mother-pieces of the first surface are also alternately arranged, and the arrangement positions of the sub-pieces and the mother-pieces are symmetric along the midline of the first surface, therefore, when connecting the first surface or the second surface of another box by the sub-pieces and mother-pieces of the first surface of one box, the vertical overlapping direction of the two storage boxes is not restricted.
[0013] In some alternative embodiments, the sub-piece is the N pole of a magnet, and the mother-piece is the S pole of the magnet.
[0014] In the above technical solution, using magnets to achieve the connection between the two boxes makes the connection method simpler.
[0015] In some alternative embodiments, the N pole of the first surface and the S pole of the second surface are located at both ends of the same magnet.
[0016] In the above technical solution, the sub-piece of the first surface and the mother-piece of 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-piece of the second surface in the first surface is provided with a sub-piece, facilitating the assembly of the storage box.
[0017] In some alternative embodiments, the box body has a square structure, and the number of the magnets is four, and the four magnets are located at the four corners of the box body.
[0018] In the above technical solution, since the four magnets are located at the four corners of the box body, the magnets can endow the first surface, the second surface and the side surface of the box body with magnetic force. As a result, the two storage boxes can not only be vertically overlapped with the first surface facing the second surface or facing each other, but also the two storage boxes can be connected from the side.
[0019] In some alternative embodiments, the sub-component is a magnet, and the mother-component is a ferromagnetic structural component.
[0020] 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 misorienting the magnetic poles can be reduced, and magnetic connection can be conveniently achieved, and the connection structure is relatively simple.
[0021] In some alternative embodiments, a fitting groove for accommodating fittings is recessed on the first surface of the box body.
[0022] In some alternative embodiments, the box body includes an upper box body and a lower box body that can be magnetically snap-fitted together. The upper box body and the lower box body are both 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.
[0023] In some alternative embodiments, the sub-component is a jack, and the mother-component is a plug, and the jack and the plug can be structurally plugged together.
[0024] 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 face of the free end is a chamfered structure. When the plug is connected to the jack, the two free ends can approach each other to simultaneously extend into a jack, and can move away from each other and rebound to be in interference fit with the jack.
[0025] In the above technical solution, since the end face of the free end has a chamfered structure, the plug can enter the jack more easily; since there is a gap between the two free ends, space is provided for the deformation of the free ends so that the free ends can extend into the jack; the interference fit between the free ends and the jack after rebounding can make the connection relatively stable.
[0026] In some alternative embodiments, the hole wall of the jack has elastic pieces, and when the plug is connected to the jack, the plug is fixed by the elastic pieces and the hole wall of the jack.
[0027] In the above technical solution, by providing a spring piece on the inner wall of the jack, after the plug enters the socket, the plug is squeezed under the action of the spring piece, thereby achieving the fixation of the plug.
[0028] In some alternative embodiments, the cross-sectional area of the jack perpendicular to the insertion direction of the plug is smaller than the cross-sectional area of the plug, so that the jack and the plug are in interference fit to achieve connection.
[0029] In the above technical solution, the plug and the jack can be connected by interference fit, thereby achieving the connection between the two boxes. Using interference fit for connection makes the structures of the plug and the jack relatively simple.
[0030] In some alternative embodiments, the sub-component is the hook surface of the Velcro, and the mother-component is the fuzzy surface of the Velcro.
[0031] In the above technical solution, the two boxes can be connected by Velcro, which is convenient for connection.
[0032] In some alternative embodiments, the box body further has opposite first and second side surfaces. The first side surface is provided with a first structural member, and a second structural member is provided at the corresponding position on the second side surface. The first structural member and the second structural member can be structurally connected.
[0033] In the above technical solution, the first side surface of the box body is provided with a first structural member, the opposite second side surface is provided with a second structural member, and the first structural member and the second structural member can cooperate with each other structurally. Therefore, the two boxes can be connected through the first structural member on the first side surface and the second structural member on the second side surface to achieve the splicing of the box bodies of the storage box in the horizontal direction.
[0034] In some alternative embodiments, the box body further has opposite first and second side surfaces. The first side surface is provided with a first structural member, and a second structural member is provided at the corresponding position on the second side surface. When the first side surface of one storage box is spliced with the second side surface of another storage box, the first structural member of one storage box is connected to the second structural member of the adjacent storage box.
[0035] In the above technical solution, the two storage boxes in the box assembly can be connected through the first structural member on the first side surface of one box body and the second structural member on the second side surface of the other box body to achieve the splicing of the box bodies of the two storage boxes in the horizontal direction.
[0036] In some alternative embodiments, the first structural member and the second structural member are a plug and a jack that can structurally cooperate with each other.
[0037] In the above technical solution, the two boxes can be spliced in the horizontal direction through the jack and the plug.
[0038] In some alternative embodiments, an end portion of the plug has a bent portion, and the plug and the jack are configured such that after the plug 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.
[0039] In the above technical solution, after the plug is inserted into the jack, the two storage boxes slide relative to each other perpendicular to the insertion direction, so that the bent portion at the end of the plug can hook on the inner wall of the jack, thereby restricting the relative movement between the two storage boxes and making the connection between the two storage boxes more reliable.
[0040] In some alternative embodiments, both the first side surface and the second side surface are 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 center line 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.
[0041] In the above technical solution, since both the first side surface and the second side surface are 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, not only can the two boxes be spliced in the horizontal direction, but also one box can be connected to another box in such a way that the first side surface faces the first side surface of the other box, or in such a way that the first side surface faces the second side surface of the other box. The horizontal splicing methods are diversified and the horizontal splicing is more convenient.
[0042] 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.
[0043] In the above technical solution, the first structural member and the second structural member are a chute and a guide rail. When the two 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.
[0044] In some alternative embodiments, a boss is arranged in the chute, and the slide rail and the boss are configured such that the boss can pop out from the entrance end of the chute to keep the slide rail in the chute.
[0045] In a third aspect, an embodiment of the present application provides a storage assembly, including a main unit storage bin and the box assembly provided in the first aspect or the second aspect. The main unit storage bin is located outside the box body and is detachably connected to the box body.
[0046] In combination with the third aspect, in some alternative embodiments, the main unit storage compartment is provided with a magnetic body, and the main unit storage compartment is detachably connected to the box body through the magnetic body.
[0047] In a fourth aspect, an embodiment of the present application provides a tool assembly, including a main unit, accessories, and the storage assembly provided in the third aspect. The main unit is placed in the main unit storage compartment, and the accessories are placed in the box body. Description of the Drawings
[0048] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present application, and thus should not be regarded as limiting the scope. For those of ordinary skill in the art, other related drawings can also be obtained based on these drawings without creative efforts.
[0049] Figure 1 It is an exploded view of the main unit storage compartment and the box assembly provided for the embodiment of the present application;
[0050] Figure 2 It is a schematic diagram of the box assembly provided for an embodiment of the present application;
[0051] Figure 3 For Figure 2 It is a side view of the box assembly provided;
[0052] Figure 4 It is a schematic diagram of the box assembly spliced in the length direction provided for an embodiment of the present application;
[0053] Figure 5 It is a schematic diagram of the box assembly spliced in the width direction provided for an embodiment of the present application;
[0054] Figure 6 It is an overlapping schematic diagram of the box assembly provided for an embodiment of the present application;
[0055] Figure 7 For Figure 6 It is a cross-sectional view of the box assembly shown;
[0056] Figure 8 It is an overlapping schematic diagram of the box assembly provided for an embodiment of the present application;
[0057] Figure 9 It is a schematic diagram of the box assembly provided for an embodiment of the present application;
[0058] Figure 10 For Figure 9 It is a bottom view of the box assembly provided;
[0059] Figure 11 For Figure 9Bottom view of the provided box component;
[0060] Figure 12 Schematic diagram of setting a plug on the upper surface of the box body;
[0061] Figure 13 Schematic diagram of setting a shrapnel in the jack;
[0062] Figure 14 Schematic diagram of the storage box provided by an embodiment of the present application;
[0063] Figure 15 Schematic diagram of the storage box provided by an embodiment of the present application;
[0064] Figure 16 Schematic diagram of the box component provided by an embodiment of the present application;
[0065] Figure 17 Overlap schematic diagram of the box component provided by an embodiment of the present application;
[0066] Figure 18 Horizontal splicing schematic diagram of the box component provided by an embodiment of the present application;
[0067] Figure 19 Schematic diagram of the connection between the jack and the plug provided by an embodiment of the present application;
[0068] Figure 20 Schematic diagram of the box component provided by an embodiment of the present application;
[0069] Figure 21 For Figure 20 Schematic diagram of the provided box component from another perspective;
[0070] Figure 22 Schematic diagram of setting a plug on the side of the box body provided by an embodiment of the present application;
[0071] Figure 23 Schematic diagram of the lower box body provided by an embodiment of the present application;
[0072] Figure 24 For Figure 23 Side view of the lower box body;
[0073] Figure 25 Schematic diagram of the box body provided by an embodiment of the present application;
[0074] Figure 26 For Figure 25 Cross-sectional view of the shown box body;
[0075] Figure 27 Schematic diagram of the box body provided by an embodiment of the present application;
[0076] Figure 28Schematic diagram of a box component provided by an embodiment of the present application;
[0077] Figure 29 Schematic diagram of a lower box body provided by an embodiment of the present application;
[0078] Figure 30 Schematic diagram of a storage box provided by an embodiment of the present application.
[0079] Icons: 100 - box component; 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 - accessory slot; 1118 - upper box body; 1119 - lower box body; 11110 - outer shell; 11111 - inner lining; 112 - sub - component; 113 - mother component; 114 - first structural member; 115 - second structural member; 116 - magnet; 117 - jack; 1171 - groove; 1172 - elastic piece; 118 - plug - in component; 1181 - bending part; 1182 - free end; 1183 - interval; 200 - main unit storage bin. Detailed implementation manners
[0080] 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. Obviously, the described embodiments are some, but not all, of the embodiments of the present application. The components of the embodiments of the present application usually described and illustrated in the accompanying drawings here can be arranged and designed in various different configurations.
[0081] 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 selected embodiments of the present application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present application without creative efforts fall within the scope of protection of the present application.
[0082] 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.
[0083] In the description of the present application, it should be noted that the orientation or positional relationship indicated by terms such as "center", "upper", "lower", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship in which the products of this application are 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 construed as a limitation to the present application. In addition, terms such as "first", "second", "third", etc. are only used for distinguishing descriptions and cannot be construed as indicating or implying relative importance.
[0084] 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.
[0085] In the description of the present application, it should also be noted that unless otherwise clearly specified and limited, the terms "set", "installed", "connected", "coupled" 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 elements. 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.
[0086] An embodiment of the present application provides a tool assembly, including a main body, accessories, and a storage assembly. As Figure 1 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 2 to 11 shown, the box assembly 100 includes a storage box 110, and the storage box 110 includes a box body 111, and the box body 111 is used to accommodate accessories. The main body storage bin 200 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, which is more convenient to operate. 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 box body 111 containing the accessories to be used, facilitating carrying and use.
[0087] In some embodiments, the main unit storage compartment 200 and the box body 111 are detachably connected by magnetic attraction. Specifically, a magnetic body can be provided in the main unit storage compartment 200. Here, the magnetic body is an object that can generate a magnetic force with a magnet. For example, the magnetic body can be a magnet or a ferromagnetic structural member such as iron or nickel. For example, a magnet is provided on one of the main unit storage compartment 200 and the box body 111, and a magnet or a ferromagnetic structural member is provided on the other one.
[0088] In some embodiments, such as Figure 2 and Figure 3 , Figure 10 and Figure 11 As shown, the box body 111 includes opposite first surface 1111 and second surface 1112. 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 groove 1117 for accommodating fittings. The fitting groove 1117 should have a pick-up opening for taking out the fittings. When using the storage box 110, when the pick-up opening is placed 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 pick-up opening is placed 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 3 and Figure 11 the direction indicated by the arrow Z in
[0089] In some embodiments, the box body 111 is Figure 2 and Figure 3 As shown in the figure, the fitting groove 1117 is recessed in the first surface 1111 of the box body 111, that is, it is recessed downward on the upper surface of the box body 111.
[0090] In some other embodiments, such as Figure 27As shown, the box body 111 includes an outer shell 11110 and a lining 11111. The lining 11111 is inserted into the outer shell 11110. The accessory slot 1117 is provided on the lining 11111. The lining 11111 can be pulled out from the outer shell 11110 to access the accessories. In this embodiment, the first surface 1111 and the second surface 1112 of the box body 111 are two opposite surfaces in the outer shell 11110; that is, when using the storage box 110, when the access opening in the accessory slot 1117 is placed 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 placed upward, the surface of the outer shell 11110 extending in the vertical direction is the side surface.
[0091] 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 some other embodiments, as Figure 5 shown, the structures of the storage boxes 110 can also be different. The reasons for the differences include the different types of accessories to be accommodated. Therefore, there are differences in the structures of the accessory slots 1117 of the storage boxes 110, while the structures of other parts of the box body 111 may not change with the different types of accessories accommodated in the box body 111. In some embodiments, as Figure 5 , 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 bit slot; while in the box body 111 of the storage box 110 for accommodating the grinding heads, the grinding heads can move freely in the accessory slot 1117. Therefore, in the box body 111 for accommodating the grinding heads, a cover plate 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.
[0092] The box body 111 of the storage box 110 further includes a sub-component 112 and a mother-component 113 provided on the first surface 1111 of the box body 111, and a sub-component 112 and a mother-component 113 provided on the second surface 1112 of the box body 111. Moreover, 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, and the position of the sub-component 112 on the second surface 1112 corresponds to the position of the mother-component 113 on the first surface 1111; the sub-component 112 and the mother-component 113 can be matched and connected. 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 position correspondence 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 3 In the direction indicated by arrow Z, the position of the projection of the sub-component 112 on the first surface 1111 coincides at least partially with the position of the projection of the parent component 113 on the second surface 1112, and the position of the projection of the parent component 113 on the first surface 1111 coincides at least partially with the position of the projection of the sub-component 112 on the second surface 1112, so that the sub-component 112 and the parent component 113 on the first surface 1111 of a box body 111 can be aligned with the parent component 113 and the sub-component 112 at the corresponding positions on the second surface 1112 of another box body 111, thereby realizing connection. The ability of the sub-component 112 and the parent component 113 to match and realize connection does not mean that the sub-component 112 and the parent component 113 on the same box body 111 are connected to each other, but means that after the sub-components 112 of different box bodies 111 and the parent components 113 are matched with each other, they can act as connecting parts. As Figures 4 to 8 As shown, 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 can be connected to the parent component 113 in another adjacent box body 111, thereby realizing the connection of the two box bodies 111 of the storage box 110. The way for the sub-component 112 and the parent component 113 to realize connection can be achieved through structure or through physical properties, such as, through magnetic force.
[0093] In the foregoing embodiment where one storage box 110 is used to store the bit and the other storage box 110 is used to store the electric grinding head, 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-components 112 and the parent components 113 of different box bodies 111 are 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 connected.
[0094] In the storage box 110 provided by the above embodiment, since the positions of the sub-component 112 on the first surface 1111 and the parent component 113 on the second surface 1112 correspond to each other, the sub-component 112 and the parent component 113 can match and realize connection. When any surface of one storage box 110 overlaps with another storage box 110, the sub-component 112 of the storage box 110 is connected to the parent component 113 of the adjacent storage box 110, and the two storage boxes 110 can be overlapped in the vertical direction. It can be that the sub-component 112 on the first surface 1111 in one box body 111 is connected to the parent component 113 on the first surface 1111 in another box body 111. For example, the box bodies 111 in the two Figure 11 shown storage boxes 110 overlap by the way that the two first surfaces 1111 are in contact with each other, obtaining Figure 6 and Figure 7 shown box assembly 100; it can also be that the sub-component 112 on the first surface 1111 in one box body 111 is connected to the parent component 113 on the second surface 1112 in another box body 111. For example, the twoFigure 11 The box body 111 in the storage box 110 shown overlaps by the way that the first surface 1111 and the second surface 1112 are in contact with each other, obtaining Figure 8 the box assembly 100 shown. 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.
[0095] In some embodiments, the number of the sub-pieces 112 in the first surface 1111 is equal to the number of the mother pieces 113 in the second surface 1112, and the number of the mother pieces 113 in the first surface 1111 is equal to the number of the sub-pieces 112 in the second surface 1112. In some embodiments, the number of the sub-pieces 112 in the first surface 1111 may also not be equal to the number of the mother pieces 113 in the second surface 1112, or the number of the mother pieces 113 in the first surface 1111 is not equal to the number of the sub-pieces 112 in the second surface 1112, as long as the redundant sub-pieces 112 or mother pieces 113 will not cause interference when the two box bodies 111 are connected so that the two box bodies 111 cannot be connected.
[0096] Furthermore, the number of the sub-pieces 112 in the first surface 1111 is equal to the number of the mother pieces 113 in the first surface 1111, and the number of the sub-pieces 112 in the second surface 1112 is equal to the number of the mother pieces 113 in the second surface 1112, and the four are equal.
[0097] In some embodiments, the first surface includes two sub-pieces 112 and two mother pieces 113, and the second surface 1112 includes two sub-pieces 112 and two mother pieces 113. It is not difficult to understand that in the case where the two storage boxes 110 overlap vertically, there can be four connection positions between the two box bodies 111, making the connection between the two box bodies 111 more reliable. Furthermore, as Figure 2 shown in Figure 10 When the box body 111 is of a square structure, the first surface 1111 is a roughly rectangle, and the two sub-pieces 112 and the two mother pieces 113 of the first surface 1111 can be respectively located at a vertex position of the first surface 1111. So that when the two box bodies 111 overlap and are connected through the sub-pieces 112 and the mother pieces 113, the force distribution is more uniform. In some other embodiments, other numbers of sub-pieces 112 and mother pieces 113 can also be provided on the first surface 1111 and the second surface 1112, as Figure 14 shown in Figure 15 Only one sub-pieces 112 and one mother piece 113 are provided on the first surface 1111 of the box body 111.
[0098] Furthermore, as Figure 2 shown in 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 alternately arranged, and the setting positions of the sub-components 112 and the mother-components 113 are symmetrically arranged along the center line 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 setting positions of the sub-components 112 and the mother-components 113 are symmetrically arranged along the center line of the first surface 1111, where the center line of the first surface 1111 includes both the center line extending along the length direction of the box body 111 (i.e., Figure 10 the direction indicated by the arrow X in Figure 10 the center line extending along the arrow X), and the center line extending along the width direction of the box body 111 (i.e., Figure 10 the direction indicated by the arrow Y in Figure 10 the center line extending along the direction indicated by the arrow Y).
[0099] According to Figure 8 the manner shown for arranging the sub-components 112 and the mother-components 113, when the two storage boxes 110 are overlapped, it can be Figure 6 the first surfaces 1111 of the two box bodies 111 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 connected to the mother-component 113 at the first end of the other box body 111 in the length direction, or the sub-component 112 at the first end of one box body 111 in the length direction is connected to the mother-component 113 at the second end of the other box body 111 in the length direction. It can also be Figure 8The first surface 1111 of a box body 111 as shown is in contact with the second surface 1112 of another box body 111. Further, it can be that a sub-component 112 at the first end of a box body 111 in the length direction is connected to a mother-component 113 at the first end of another box body 111 in the length direction, or it can be that a sub-component 112 at the first end of a box body 111 in the length direction is connected to a mother-component 113 at the second end of another box body 111 in the length direction. In this way, the two box bodies 111 can overlap by the upper surface of one box body 111 being in contact with the upper surface of the other box body 111, and it can be that the first end of one box body 111 corresponds to the first end of the other box body 111, or it can be that the first end of one box body 111 corresponds to the second end of the other box body 111; at the same time, one box body 111 can also overlap by the upper surface being in contact with the lower surface of the other box body 111, and in this overlapping manner, it can also be that the first end of one box body 111 corresponds to the first end of the other box body 111, or it is the overlapping manner where the first end of one box body 111 corresponds to the second end of the other box body 111, which is called that the overlapping direction of the two storage boxes 110 is not restricted.
[0100] In some embodiments, refer to Figures 2 to 5 , the sub-component 112 is a magnet, and the mother-component 113 is also a magnet. Further, the sub-component 112 is the N pole of the magnet 116, and the mother-component 113 is the S pole of the magnet 116. In some embodiments, the N pole of the first surface 1111 and the S pole of the second surface 1112 are located at both ends of the same magnet 116, that is, the sub-component 112 in the first surface 1111 and the mother-component 113 at the corresponding position of the second surface 1112 are the two magnetic poles of the same magnet 116. Further, in some embodiments, the box body 111 is of a square structure, and a vertically extending magnet 116 is provided at each of the four vertex positions of the box body 111, and one end of each magnet 116 is the sub-component 112 or the mother-component 113 of the first surface 1111, and the other end is the mother-component 113 or the sub-component 112 of the second surface 1112. Since the magnet 116 is provided at the vertex position of the box body 111, therefore, each magnet 116 can simultaneously make the first surface 1111, the second surface 1112 and two adjacent side surfaces of the box body 111 have magnetic force; among them, that the first surface 1111 has magnetic force means that the box body 111 can connect other objects (such as another box body 111) to its own first surface 1111 through magnetic force; that the second surface 1112 has magnetic force means that the box body 111 can connect other objects (such as another box body 111) to its own second surface 1112 through magnetic force; that the side surface of the box body 111 has magnetic force means that the box body 111 can connect other objects (such as another box body 111) to the side surface with magnetic force of itself.
[0101] The above method of setting magnets 116 at the four corners of the box body 111 can not only make the first surface 1111 and the second surface 1112 of the box body 111 have magnetic force, but also make the first side surface 1113 and the second side surface 1114 of the box body 111 have magnetic force. Therefore, the above setting method of the magnet 116 not only enables the two box bodies 111 of the storage box 110 to be vertically overlapped with the first surface 1111 and the second surface 1112 facing each other or opposite, but also can Figure 4 and Figure 5 as shown, enable the two storage boxes 110 of the box body 111 to be spliced in the horizontal direction (the horizontal direction includes Figure 2 the length direction and the width direction shown). Further, when the box body 111 is square and the magnetic poles of the magnets 116 located at the four corners of the box body 111 on the first surface 1111 are alternately arranged, not only can the vertical overlapping direction of the two box bodies 111 of the storage box 110 be unrestricted, but also the splicing directions of the two box bodies 111 of the storage box 110 in the length direction and the width direction can be unrestricted.
[0102] Taking Figure 10 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 unrestricted splicing direction of the storage box 110 in the width direction means that one box body 111 can be spliced 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 spliced 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 10 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 unrestricted splicing direction of the storage box 110 in the length direction means that one box body 111 can be spliced 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 on the same side; one box body 111 can also be spliced 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 on the same side.
[0103] In some other embodiments, the sub-component 112 in the first surface 1111 and the corresponding mother-component 113 in the second surface 1112 can also be different magnets 116. That is, the N pole of a magnet 116 close to the first surface 1111 is the sub-component 112 of the first surface 1111, and the S pole of another magnet 116 close to the second surface 1112 is the mother-component 113 of the second surface 1112.
[0104] In some other embodiments where the sub-component 112 and the mother-component 113 are connected through physical properties, it can also be that the sub-component 112 is a magnet 116 and the mother-component 113 is a ferromagnetic structural member (such as metal structural members like iron, nickel, cobalt, etc.). The connection between the two boxes 111 is realized through the magnetic attraction of the sub-component 112 to the mother-component 113. In this embodiment, the number of magnets 116 included in the storage box 110 is small. Therefore, when installing the sub-component 112 and the mother-component 113, the situation of incorrect magnetic pole orientation can be reduced.
[0105] As Figure 6 and Figure 7 shown, in some embodiments where the sub-component 112 and the mother-component 113 are connected through a structure, the sub-component 112 is a jack 117 and the mother-component 113 is a plug 118. The jack 117 and the plug 118 can be plugged in structurally. That is, by inserting the mother-component 113 into the sub-component 112, the connection between the sub-component 112 and the mother-component 113 can be realized. Further, the jack 117 can be Figure 7 the blind hole shown, or it can also be a through hole.
[0106] Further, as Figure 12As shown, in some embodiments, 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 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 inserting 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 vertically up and down. 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.
[0107] In some embodiments, the connection can also be achieved by controlling the sizes of the jack 117 and the plug 118 so that they 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 inserting 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 inserting 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, so 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.
[0108] In some embodiments, such as Figure 13As shown, the hole wall of the jack 117 has a resilient piece 1172. When the plug-in 118 is connected to the jack 117, the plug-in 118 is fixed to the hole wall of the jack 117 through the resilient piece 1172. That is, under the action of the resilient piece 1172, the plug-in 118 is squeezed and pressed against the hole wall of the jack 117, so that the connection between the jack 117 and the plug-in 118 is more reliable. In some embodiments, the resilient piece 1172 is provided on one side hole wall of the jack 117, and one end of the resilient piece 1172 is connected to the hole wall of the jack 117 and the other end is inclined away from the entrance of the jack 117 to facilitate inserting the plug-in 118 into the jack 117. In some other embodiments, the resilient pieces 1172 can also be provided on two side walls of the jack 117; further, the two resilient pieces 1172 are respectively provided on two opposite side walls of the hole wall; or the two resilient pieces 1172 are respectively provided on two adjacent side walls of the hole wall. In some embodiments, the resilient piece 1172 is a metal structural member; in other embodiments, the resilient piece 1172 can also be a structural member made of other materials.
[0109] In the case where the sub-component 112 is the jack 117 and the mother-component 113 is the plug-in 118 as described above, the sub-component 112 and the box body 111, and the mother-component 113 and the box body 111 can be integrally formed structural members. For example, the sub-component 112 and the mother-component 113 can be formed on the box body 111 by injection molding or the like; of course, in the case where the sub-component 112 is the jack 117 and the mother-component 113 is the plug-in 118 as described above, the sub-component 112 and the mother-component 113 can also be structural members independently processed and manufactured from the box body 111.
[0110] In the above embodiments where the sub-component 112 is the N pole of the magnet 116 and the mother-component 113 is the S pole of the magnet 116, and in the embodiments where the sub-component 112 is the magnet 116 and the mother-component 113 is a ferromagnetic structural member, the sub-component 112 and the mother-component 113 can be structures independently processed and manufactured from the box body 111.
[0111] In some other embodiments, the sub-component 112 and the mother-component 113 can also be structures that cooperate with each other in the prior art to play a connecting role. For example, in some embodiments, the sub-component 112 is the hook surface of the Velcro and the mother-component 113 is the fuzzy surface of the Velcro.
[0112] In some embodiments of the present application, such as Figures 15 to 22As shown, the storage box 110 includes a first structural member 114 and a second structural member 115 that can cooperate with each other structurally; that is, the first structural member 114 and the second structural member 115 have a corresponding relationship structurally, such that the first structural member 114 and the second structural member 115 can be connected. The box body 111 has opposite first side surface 1113 and second side surface 1114. The first structural member 114 is provided on the first side surface 1113, and the corresponding position of the second side surface 1114 is provided with the second structural member 115. When two storage boxes 110 are spliced in the horizontal direction, the first structural member 114 in one storage box 110 is connected to the second structural member 115 in the other storage box 110. Among them, the first side surface 1113 is provided with the first structural member 114 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 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.
[0113] In some embodiments, the first structural member 114 and the second structural member 115 are plugs 118 and sockets 117 that can cooperate with each other structurally. For example, the first structural member 114 is a plug 118 and the second structural member 115 is a socket 117. In some other embodiments, the first structural member 114 and the second structural member 115 can also be other structures that can cooperate structurally. For example, the first structural member 114 is the hook surface of a magic tape and the second structural member 115 is the fuzzy surface of a magic tape.
[0114] Furthermore, in some embodiments, the first structural member 114 can be a plug 118 that is the same as the female member 113 structurally, and the second structural member 115 can be a socket 117 that is the same as the male member 112 structurally. In some other embodiments, the first structural member 114 and the female member 113 can also be plugs 118 with different structures, and the second structural member 115 and the male member 112 are sockets 117 with different structures. As Figure 22 shown, the first structural member 114 can also be a plug 118 having two free ends 1182 and having a gap 1183 between the two free ends 1182.
[0115] As Figure 15 、 Figure 18 and Figure 19As shown, in some embodiments where the first structural member 114 is a plug 118 and the second structural member is a socket 117, one end of the plug 118 further has a bent portion 1181. The bent portion 1181 extends towards the box body 111 and forms a hook-like structure. And after the plug 118 is inserted into the socket 117, it can slide relative to each other, so that the bent portion 1181 hooks on the inner wall of the socket 117. It is not difficult to understand that since the bent portion 1181 hooks on the inner wall of the socket 117, the connection between the socket 117 and the plug 118 can be made more reliable.
[0116] As Figure 19 shown, in some embodiments, a groove 1171 is provided in the area of the inner wall of the box body 111 close to the socket 117. Inserting the plug 118 into the socket 117 and sliding the plug 118 in a 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 socket 117, the bent portion 1181 undergoes elastic deformation under the action of the mouth of the socket 117. When the bent portion 1181 deforms and enters the area within the groove 1171, the bent portion 1181 rebounds and hooks on the groove 1171 at the mouth of the socket 117, so as to make the connection between the socket 117 and the plug 118 more reliable.
[0117] In some embodiments of the present application, as Figure 19 shown, the first structural member 114 and the second structural member 115 are both provided on the first side surface 1113 and the second side surface 1114 of the box body 111. And, the setting position of the first structural member 114 on the first side surface 1113 corresponds to the setting position of the second structural member 115 on the second side surface 1114, and the setting position of the second structural member 115 on the first side surface 1113 corresponds to the setting position of the first structural member 114 on the second side surface 1114, that is, along as Figure 16In the direction indicated by arrow Y, the position where the projection of the first structural member 114 in the first side surface 1113 is located at least partially coincides with the position where the projection of the second structural member 115 in the second side surface 1114 is located, and the position where the projection of the second structural member 115 in the first side surface 1113 is located at least partially coincides with the position where the projection of the first structural member 114 in the second side surface 1114 is located. In this embodiment, a box body 111 can connect the second structural member 115 and the first structural member 114 of the first side surface 1113 in another box body 111 through the first structural member 114 and the second structural member 115 of the first side surface 1113, or can also connect the second structural member 115 and the first structural member 114 of the second side surface 1114 in another box body 111 through the first structural member 114 and the second structural member 115 of the first side surface 1113, so that the direction of splicing the storage box 110 in the horizontal direction is not restricted.
[0118] Furthermore, in the first side surface 1113, the arrangement positions of the first structural member 114 and the second structural member 115 are symmetric about the vertical center line of the first side surface 1113. In this case, regardless of whether the box bodies 111 in the two connected storage boxes 110 are connected in a manner that the first side surface 1113 faces the second side surface 1114, or in a manner that the first side surface 1113 of one box body 111 faces the second side surface 1114 of another box body 111, both ends of the two connected box bodies 111 in the length direction can be aligned.
[0119] Of course, in some other embodiments, as Figure 16 shown, it is also possible that only the first structural member 114 is provided on the first side surface 1113 and only the second structural member 115 is provided on the second side surface 1114. That is, when the two storage boxes 110 are spliced in the horizontal direction, the first side surface 1113 of one box body 111 faces and contacts the second side surface 1114 in another box body 111.
[0120] In some embodiments of the present application, 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 a chute and the second structural member 115 is a 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 them, 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.
[0121] In some embodiments where the first structural member 114 is a chute and the second structural member 115 is a slide rail, a boss is provided in the chute. The boss can pop out from the entrance end of the chute to keep the slide rail in the chute. For example, in some embodiments, the boss is provided on a side wall at the entrance end of the chute. The boss is connected to a spring in a compressed state. Under the action of the spring, one end of the boss protrudes above the side wall of the chute. During the process of inserting the slide rail into the chute, the slide rail first squeezes the boss to cause the spring to expand and contract, and then it can slide into the chute. After the slide rail completely slides into the chute and separates from the boss, the boss pops out and is higher than the side wall of the chute to restrict the process of the slide rail sliding out of the chute and keep the slide rail in the chute. Further, inclined surfaces or arc surfaces are provided on both sides of the boss in the extending direction of the chute, so that during the process of the slide rail sliding into or out of the chute, the slide rail can more easily press the boss into the side wall of the chute, making the disassembly more convenient.
[0122] In some embodiments, it can also be that a boss is provided on the side wall of the chute, and the boss is connected to a spring in a compressed state. A groove that can cooperate with the boss is provided on the slide rail. During the process of sliding the slide rail into the chute, the slide rail first presses the boss into the chute. When the groove on the slide rail moves to a position corresponding to the boss, the boss pops up again, so that the top end of the boss extends into the groove of the slide rail, thereby restricting the movement of the slide rail and keeping the slide rail in the chute.
[0123] In some embodiments, the sub-member 112 and the mother member 113 for realizing the overlap of the two storage boxes 110 can also be a chute and a slide rail structure. For example, Figure 28 in the illustrated embodiment, the sub-member 112 is a slide rail and the mother member 113 is a chute.
[0124] In some embodiments, as Figures 23 to 26 shown, the box body 111 includes an upper box body 1118 and a lower box body 1119 that can be magnetically coupled. 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. 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 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.
[0125] Further, in the embodiment where the jack 117 is provided on the lower surface of the box body 111 as the sub-component 112 and the plug 118 is provided as the mother component 113, the lower box body 1119 can be Figure 23 the structure shown in Figure 24 In the embodiment where the slide rail is provided on the lower surface of the box body 111 as the sub-component 112 and the chute is provided as the mother component 113, the lower box body 1119 can be Figure 29 the structure shown in
[0126] Further, the first structural member 114 and the second structural member 115 for realizing the splicing of the two box bodies 111 in the horizontal direction are evenly distributed on the sides of the upper box body 1118 and the lower box body 1119. In some embodiments, as Figure 30 shown, on one side of the box body 111, both the upper box body 1118 and the lower box body 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 body 111, the upper box body 1118 only has the first structural member 114 and the lower box body 1119 only has the second structural member 115. In other embodiments, the first structural member 114 and the second structural member 115 can also be arranged on the upper box body 1118 and the lower box body 1119 in other ways.
[0127] The above are only the preferred embodiments of the present application and are not used to limit the present application. For those skilled in the art, the present application can have various changes and modifications. 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 having opposite first and second surfaces, a male part and a female part disposed on the first surface, and a male part and a female part disposed on the second surface. The positions of the male part on the first surface and the female part on the second surface correspond to each other, and the positions of the male part on the second surface and the female part on the first surface correspond to each other; the male part and the female part can be matched and connected.
2. A box component, characterized in that, It includes at least two storage boxes. Each storage box includes a box body having opposite first and second surfaces, a male part and a female part disposed on the first surface, and a male part and a female part disposed on the second surface. When any surface of one storage box overlaps with that of another storage box, the male part of the storage box is connected to the female part of the adjacent storage box.
3. The cartridge assembly according to claim 1 or 2, wherein The first surface includes two male parts and two female parts, and the second surface includes two male parts and two female parts.
4. The cartridge assembly according to claim 3, wherein, Along the circumferential direction of the first surface, a male part, a female part, another male part, and another female part on the first surface are arranged in sequence; and in the first surface, the setting positions of the male parts and the female parts are symmetrically arranged along the midline of the first surface.
5. The cartridge assembly according to claim 4, wherein, The male part is the N pole of a magnet, and the female part is the S pole of a magnet.
6. The cartridge assembly according to claim 5, wherein The N pole on the first surface and the S pole on the second surface are located at both ends of the same magnet.
7. The cartridge assembly according to claim 6, wherein The box body is of a square structure, and the number of the magnets is four. The four magnets are located at the four corners of the box body.
8. The cartridge assembly according to claim 4, wherein The male part is a magnet, and the female part is a ferromagnetic structural member.
9. The cartridge assembly according to any one of claims 4-8, characterized in that, A fitting groove for accommodating fittings is recessed on the first surface of the box body.
10. The cartridge assembly according to any one of claims 4-8, characterized in that, The box body includes an upper box body and a lower box body that can be magnetically snap-fitted. 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.
11. The cartridge assembly according to claim 4, wherein, The male part is a jack, and the female part is a plug. The jack and the plug can be structurally plugged.
12. The cartridge assembly according to claim 11, 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 face of the free end is a chamfered structure. When the plug is connected to the jack, the two free ends can approach each other to simultaneously extend into a jack, and can move away from each other and rebound to be in interference fit with the jack.
13. The cartridge assembly according to claim 11, wherein, The hole wall of the jack has elastic pieces. When the plug is connected to the jack, the plug is fixed by the elastic pieces and the hole wall of the jack.
14. The cartridge assembly according to claim 11, wherein, The cross-sectional area of the jack perpendicular to the insertion direction of the plug is smaller than the cross-sectional area of the plug, so that the jack and the plug are in interference fit to achieve connection.
15. The cartridge assembly according to claim 4, wherein The male part is the hook surface of a magic tape, and the female part is the fuzzy surface of a magic tape.
16. The cartridge assembly according to claim 1, wherein, The box body also has opposite first and second side surfaces. A first structural member is provided on the first side surface, and a second structural member is provided at the corresponding position on the second side surface. The first structural member and the second structural member can be structurally connected.
17. The cartridge assembly according to claim 2, wherein, The box body further has opposite first and second side surfaces. A first structural member is provided on the first side surface, and a second structural member is provided at a corresponding position on the second side surface. When the first side surface of one storage box is spliced with the second side surface of another storage box, the first structural member of one storage box is connected to the second structural member of the adjacent storage box.
18. The cartridge assembly according to claim 16 or 17, characterized in that, The first structural member and the second structural member are a plug and a socket that can cooperate with each other structurally.
19. The cartridge assembly according to claim 18, wherein The end of the plug has a bent portion, and the plug and the socket are configured such that after the plug is inserted into the socket, they can slide relative to each other so that the bent portion hooks on the inner wall of the socket.
20. The cartridge assembly according to claim 18, wherein, Both the first side surface and the second side surface are 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 center line of the first side surface. The position where the second structural member is provided on the first side surface corresponds to the position where the first structural member is provided on the second side surface; the position where the first structural member is provided on the first side surface corresponds to the position where the second structural member is provided on the second side surface.
21. The cartridge assembly according to claim 16 or 17, 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.
22. The cartridge assembly according to claim 21, wherein, A boss is provided in the chute, and the slide rail and the boss are configured such that the boss can pop out from the entrance end of the chute to keep the slide rail in the chute.
23. A storage component, characterized in that, It includes a main machine storage bin and the box assembly according to any one of claims 1-22. The main machine storage bin is located outside the box body and is detachably connected to the box body.
24. The storage component according to claim 23, wherein The main machine storage bin is provided with a magnetic body, and the main machine storage bin is detachably connected to the box body through the magnetic body.
25. A tool component, characterized in that, It includes a main machine, accessories and the storage assembly according to claim 24. The main machine is placed in the main machine storage bin, and the accessories are placed in the box body.