Connecting assembly, container, combined container and hook structure

Through the combination of slide rail structure and interlocking structure, the complex problem of tool box connection is solved, stable connection and convenient disassembly of the module are achieved, and operating efficiency and space utilization are improved.

CN223224819UActive Publication Date: 2025-08-15MERIDIAN INT
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Patent Information

Application Number
CN202422616342.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-28
Publication Date
2025-08-15
Estimated Expiration
2034-10-28

AI Technical Summary

Technical Problem

In the prior art, the connecting mechanism of the tool box is complex, the operation is complicated, and it is difficult to effectively combine and fix, resulting in inconvenient portability and waste of space resources.

Method used

The slide rail structure and the interlocking structure are adopted. The slide rail structure realizes the sliding connection of the module through the barrier part and the clamping part. The interlocking structure restricts the sliding in the locked state to ensure stable connection of the module; the slide rail structure and the interlocking structure combine to achieve stable locking of the module, which is convenient for disassembly and installation.

Benefits of technology

Simplifies the connection operation of the tool box, improves disassembly and installation efficiency, and reduces portability and space waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a connecting assembly, a container, a combined container and a hook structure, the connecting assembly comprises a sliding rail structure, the sliding rail structure comprises at least one blocking part arranged on a first module and at least one clamping part arranged on a second module, and when the blocking part is clamped with the clamping part, the sliding rail structure is connected with the first module; the first module and the second module are in sliding connection; the interlocking structure is arranged on the first module and the second module and has a locking state and an unlocking state; and when the interlocking structure is in a locking state and the blocking part is clamped with the clamping part, the first module and the second module are mutually locked. Thus, the first module and the second module are mutually locked through combination of the sliding rail structure and the interlocking structure, the structure is simple, the first module and the second module are convenient to disassemble and assemble, time and labor are saved, and operation is easy.
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Description

Technical Field

[0001] The present application relates to the field of connection technology, and in particular to a connection assembly, a container, a combined container and a hook structure. Background Art

[0002] During assembly and disassembly work, users often need to carry multiple tool boxes to the site to select the most suitable hand tools according to the task requirements. Furthermore, for easy transportation, multiple tool boxes need to be stacked and connected together. In the prior art, the connection mechanism between two adjacent tool boxes is relatively complex, cumbersome, labor-intensive, and results in low disassembly efficiency.

[0003] However, given the wide variety and size of hand tools, the corresponding tool boxes also come in a variety of shapes and sizes. This makes it difficult for users to effectively combine and secure multiple tool boxes when carrying them, greatly increasing the inconvenience of carrying them. Furthermore, these tool boxes of varying shapes are difficult to arrange neatly when storing them, resulting in a waste of space resources. Utility Model Content

[0004] In view of this, the present application provides a connecting assembly, a container, a combined container and a hook structure, which are simple in structure and easy to operate.

[0005] In order to achieve the above objectives, this application provides the following technical solutions:

[0006] A connection assembly for connecting a first module and a second module, comprising:

[0007] a slide rail structure comprising at least one blocking portion provided on the first module and at least one holding portion provided on the second module, wherein when the blocking portion is engaged with the holding portion, the first module and the second module are slidably connected;

[0008] an interlocking structure, provided on the first module and the second module, having a locked state and an unlocked state;

[0009] When the interlocking structure is in a locked state and the blocking portion is engaged with the holding portion, the first module and the second module are locked with each other.

[0010] Optionally, the slide rail structure includes:

[0011] The first slide rail structure includes a first blocking portion provided on the first module and a first holding portion provided on the second module and capable of engaging with the first blocking portion;

[0012] The second slide rail structure includes a second blocking portion provided on the first module and a second holding portion provided on the second module and capable of engaging with the second blocking portion.

[0013] Optionally, the first blocking portion and the second blocking portion extend in opposite directions, and the first holding portion and the second holding portion extend in opposite directions.

[0014] Optionally, at least one of the first slide rail structure and the second slide rail structure is located on one side of the first module and the second module.

[0015] Optionally, a plurality of blocking portions are provided and arranged along the extension direction of the slide rail structure; and a plurality of holding portions are provided and arranged along the extension direction of the slide rail structure.

[0016] Optionally, the interlocking structure includes an interlocking buckle and a closing portion spaced apart from the interlocking buckle. The locking direction of the interlocking structure is not parallel to the extension direction of the slide rail structure. When the holding portion is engaged with the blocking portion, the closing portion can abut against the holding portion.

[0017] Optionally, the closing portion is provided on the first module, and the closing portion is provided at a position between the blocking portion and the first module.

[0018] Optionally, the distance between the closing portion and the closest blocking portion is smaller than the length of the holding portion corresponding to the blocking portion.

[0019] A container is connected to another container via any one of the above connection components.

[0020] A combined container, comprising:

[0021] adjacent first and second modules;

[0022] A connection component, configured as any one of the connection components described above;

[0023] The first module and the second module are locked to each other via the connecting assembly.

[0024] Optionally,

[0025] The first module and the second module have the same volume;

[0026] Alternatively, the volume of the first module is smaller than that of the second module, and the arrangement direction of the plurality of first modules is parallel to the extension direction of the slide rail structure, and the plurality of first modules are locked with one second module at the same time;

[0027] Alternatively, the volume of the first module is smaller than that of the second module, and the arrangement direction of the plurality of first modules is perpendicular to the extension direction of the slide rail structure, and the plurality of first modules are locked with one second module at the same time.

[0028] A hook structure, comprising:

[0029] In the connection assembly as described in any of the above items, at least one blocking portion of the slide rail structure is arranged on the first module, and at least one holding portion is arranged in the second module; the first module is connected to the second module through the slide rail structure.

[0030] Optionally, the holding portion extends upward from the bottom of the second module, and the closing portion of the interlocking structure is provided on a side of the first module away from the interlocking buckle.

[0031] The connection assembly, container, combined container and hook structure provided in the present application can realize the sliding connection between the first module and the second module through the slide rail structure, and the slide rail structure can be locked through the interlocking structure to limit the movement of the slide rail structure, thereby limiting the relative sliding of the first module and the second module. The slide rail structure and the interlocking structure are combined to realize the mutual locking of the first module and the second module. The structure is simple, which facilitates the disassembly and installation of the first module and the second module, saves time and effort, and is simple to operate. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without any creative work.

[0033] Figure 1 A perspective view of the interlocking first and second modules shown for some embodiments;

[0034] Figure 2 A cross-sectional view showing interlocking first and second modules for some embodiments;

[0035] Figure 3 A cross-sectional view showing the first module and the second module being unlocked, as shown in some embodiments;

[0036] Figure 4 A perspective view of a first module is shown for some embodiments;

[0037] Figure 5 A perspective view of a second module is shown for some embodiments;

[0038] Figure 6A perspective view showing the interlocking of a first module and a second module in another embodiment;

[0039] Figure 7 A perspective view of a first module shown as another embodiment;

[0040] Figure 8 A perspective view of a second module shown as another embodiment;

[0041] Figure 9 An exploded view of a locking member according to another embodiment;

[0042] Figure 10 A schematic diagram of assembling multiple modules of different sizes according to some embodiments;

[0043] Figure 11 A schematic diagram showing a plurality of modules of different sizes according to some embodiments;

[0044] Figure 12 This is a schematic diagram of the connection between the first module and the second module in the hook structure shown in some embodiments.

[0045] In the picture:

[0046] 1. Interlocking buckle; 10. Locking member; 11. Locking groove; 12. Operating member; 13. Lock tongue; 14. First elastic member;

[0047] 2. Slide rail structure; 21. First blocking portion; 211. First straight surface; 212. First inclined surface; 22. Second blocking portion; 221. Second straight surface; 222. Second inclined surface; 23. First holding portion; 231. Third straight surface; 232. Third inclined surface; 24. Second holding portion; 241. Fourth straight surface; 242. Fourth inclined surface; 25. Closing portion; 26. Avoidance groove;

[0048] 100, first module; 200, second module. DETAILED DESCRIPTION

[0049] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0050] like Figures 1-12As shown, an embodiment of the present application provides a connection assembly for connecting a first module 100 and a second module 200, which includes a slide rail structure 2 and an interlocking structure. The first module 100 and the second module 200 are adjacent to each other, for example, the first module 100 and the second module 200 are stacked one above the other, or the first module 100 and the second module 200 are arranged in abutment with each other. The connection assembly can be applied to containers such as toolboxes, tool boxes, storage boxes, storage baskets, drawer boxes, roller boxes, tool bags, etc. The connection assembly can also be applied to a rigid platform such as a flatbed truck, external board, adapter board, workbench, drawing board, etc. The connecting component is mainly used for interlocking between two modules; the first module 100 can be a container, the second module 200 can also be a container, and the connecting component enables the containers to be interlocked; the first module 100 / the second module 200 can be a container, the second module 200 / the first module 100 can be a rigid platform, and the connecting component enables the container to be interlocked with the rigid platform; the first module 100 can be a rigid platform, the second module 200 can also be a rigid platform, and the connecting component enables the rigid platforms to be interlocked with each other.

[0051] This solution is described by taking the stacking of the first module 100 and the second module 200 as an example.

[0052] The slide rail structure 2 includes at least one blocking portion and at least one holding portion. In the embodiments of the present application, the number of blocking portions and holding portions is the same, and both are provided with two, three, or four, and the blocking portions and holding portions correspond to each other. The blocking portion is provided on the first module 100, and the holding portion is provided on the second module 200. When the blocking portion and the holding portion are engaged with each other, that is, the blocking portion is engaged between the holding portion and the second module 200, and the holding portion is engaged between the blocking portion and the first module 100, thereby restricting the first module 100 and the second module 200 from moving in a direction away from each other. At this time, the first module 100 and the second module 200 are slidably connected, and the sliding direction is perpendicular to or forms an angle with the arrangement direction of the first module 100 and the second module 200.

[0053] Among them, a plurality of blocking parts are provided and arranged along the extension direction of the slide rail structure 2, and a plurality of holding parts are provided and arranged along the extension direction of the slide rail structure 2. For example, there are two blocking parts and two holding parts. In this way, by cooperating with multiple groups of blocking parts and holding parts, the connection between the first module 100 and the second module 200 can be made more stable and reliable in the extension direction of the slide rail structure 2. Here, the distance between two adjacent blocking parts is greater than the length of the holding parts, and the length of two adjacent holding parts is greater than the length of the blocking parts. When the first module 100 and the second module 200 are docked, there is no need for the first module 100 and the second module 200 to be completely misaligned. It is only necessary to misalign the holding parts and the blocking parts. The holding parts can be inserted between the blocking parts and the first module 100, and the blocking parts can be inserted between the holding parts and the second module 200. The operation is convenient and time-saving and labor-saving.

[0054] In a preferred embodiment, the slide rail structure 2 includes a first slide rail structure and a second slide rail structure, wherein the first slide rail structure includes a first blocking portion 21 and a first clamping portion 23. The first blocking portion 21 is provided on the first module 100, and the first clamping portion 23 is provided on the second module 200. The first blocking portion 21 and the first clamping portion 23 can engage with each other, thereby restricting the first module 100 and the second module 200 from moving away from each other. The second slide rail structure includes a second blocking portion 22 and a second clamping portion 24. The second blocking portion 22 is provided on the first module 100, and the second clamping portion 24 is provided on the second module 200. The second blocking portion 22 and the second clamping portion 24 can engage with each other, thereby restricting the first module 100 and the second module 200 from moving away from each other. Here, the first slide rail structure and the second slide rail structure are spaced apart and arranged in parallel, that is, the relative sliding direction of the first clamping portion 23 and the first blocking portion 21 is parallel to the relative sliding direction of the second blocking portion 22 and the second clamping portion 24, and are not in a straight line. In this way, through the design of the first slide rail structure and the second slide rail structure, the sliding connection between the first module 100 and the second module 200 can be ensured to be stable and reliable, thereby improving the stability of disassembly and installation.

[0055] In one embodiment of the present application, the first blocking portion 21 and the second blocking portion 22 both protrude from the first module 100 and extend in opposite directions, and the first holding portion 23 and the second holding portion 24 both protrude from the second module 200 and extend in opposite directions. For example, the extension directions of the first blocking portion 21 and the second blocking portion 22 are opposite to each other, and the extension directions of the first holding portion 23 and the second holding portion 24 are towards each other. When the first blocking portion 21 is engaged with the first holding portion 23, and the second blocking portion 22 is engaged with the second holding portion 24, the first slide rail structure and the second slide rail structure are interlocked. At this time, under the dual action of the first slide rail structure and the second slide rail structure, the first module 100 and the second module 200 can neither move in a direction away from each other nor move in the arrangement direction of the first slide rail structure and the second slide rail structure (the arrangement direction is the arrangement direction of the first blocking portion and the second blocking portion, and the arrangement direction of the first holding portion and the second holding portion, and is perpendicular to the extension direction of the first slide rail structure and the second slide rail structure). As a result, the first module 100 and the second module 200 can only slide in the extension direction of the first slide rail structure and the second slide rail structure. In another embodiment of the present application, the first blocking portion 21 and the second blocking portion 22 both protrude from the first module 100 and extend in opposite directions, and the first holding portion 23 and the second holding portion 24 both protrude from the second module 200 and extend in opposite directions.

[0056] like Figure 10-11 As shown, in one embodiment of the present application, at least one of the first and second slide rail structures is disposed on a side edge of the first and second modules 100, 200. When the first and second modules 100, 200 are docked, it is necessary to keep one side edge of the first and second modules 100 aligned. In this case, one of the first and second slide rail structures is disposed at the aligned side edge position. In this way, disposing the first or second slide rail structure at the side edge position can avoid affecting the internal space of the first and second modules 100, 200.

[0057] Specifically, the first slide rail structure and the second slide rail structure are respectively arranged on two opposite sides of the first module 100 or the second module 200. Here, the arrangement direction of the first slide rail structure and the second slide rail structure is taken as the reference direction (i.e. Figure 11The left and right directions in the reference direction are defined as the widths of the first and second modules, that is, the extension directions of the first and second slide rail structures are defined as the length directions of the first and second modules. When the width of the first module 100 is greater than that of the second module 200, the first and second slide rail structures are respectively arranged on both sides of the second module 200. Correspondingly, one of the first and second slide rail structures is arranged on a side of the first module 100 and the other is arranged in the middle of the first module 100. When the width of the first module 100 is less than that of the second module 200, the first and second slide rail structures are respectively arranged on both sides of the first module 100. Correspondingly, one of the first and second slide rail structures is arranged on a side of the second module 200 and the other is arranged in the middle of the second module 200. When the width of the first module 100 is the same as that of the second module 200, the first and second slide rail structures are respectively arranged on both sides of the first module 100 and the second module 200. In this way, the mating connection of modules of various widths can be achieved.

[0058] In some preferred embodiments, a first straight surface 211 is provided on the side of the first blocking portion 21 away from the first module 100, a second straight surface 231 is provided on the side of the first holding portion 23 away from the second module 200, a third straight surface 221 is provided on the side of the second blocking portion 22 away from the first module 100, and a fourth straight surface 241 is provided on the side of the second holding portion 24 away from the second module 200. When the first module 100 and the second module 200 abut, the first straight surface 211 and the third straight surface 221 both abut against the second module 200, while the second straight surface 231 and the fourth straight surface 241 both abut against the first module 100. To ensure smooth sliding when the holding portion and the blocking portion engage, the second straight surface 231 and the fourth straight surface 241 do not contact the first module 100.

[0059] Furthermore, a first inclined surface 212 is provided on the side of the first blocking portion 21 close to the second blocking portion 22, which is inclined relative to the first straight surface 211. A third inclined surface 222 is provided on the side of the second blocking portion 22 close to the first blocking portion 21, which is inclined relative to the third straight surface 221. A second inclined surface 232 is provided on the side of the first holding portion 23 away from the second holding portion 24, which is inclined relative to the second straight surface 231. A fourth inclined surface 242 is provided on the side of the second holding portion 24 away from the first holding portion 23, which is inclined relative to the fourth straight surface 241. When the first module 100 and the second module 200 are slidably connected, the first inclined surface 212 abuts against the second inclined surface 232, and the third inclined surface 222 abuts against the fourth inclined surface 242.

[0060] In this way, by providing straight surfaces and inclined surfaces on the blocking portion and the holding portion, the sliding connection between the first module 100 and the second module 200 can be made tighter and more stable, thereby improving the installation stability of the first module 100 and the second module 200.

[0061] In this solution, the interlocking structure is provided on the adjacent first module 100 and the second module 200, for example, the interlocking structure is provided on the contacting surfaces of the first module 100 and the second module 200, or on the side portions of the first module 100 and the second module 200 that are close to each other. The interlocking structure has a locked state and an unlocked state, and the interlocking structure can switch between the locked state and the unlocked state through its own movement. When the interlocking structure is in the locked state, it can limit the movement of the slide rail structure 2, that is, limit the relative sliding of the blocking portion and the holding portion in the slide rail structure 2, thereby locking the first module 100 and the second module 200 together. When the interlocking structure is in the unlocked state, the mutually engaged blocking portion and the holding portion can slide relative to each other, thereby allowing the first module 100 and the second module 200 to slide relative to each other, thereby allowing the mutually engaged blocking portion and the holding portion to slide to a dislocated position, thereby separating the first module 100 and the second module 200.

[0062] With such a configuration, the sliding connection between the first module 100 and the second module 200 can be achieved through the slide rail structure 2, and the slide rail structure 2 can be locked through the interlocking structure to limit the movement of the slide rail structure 2, thereby limiting the relative sliding of the first module 100 and the second module 200. The slide rail structure 2 and the interlocking structure are combined to achieve mutual locking of the first module 100 and the second module 200. The structure is simple, which facilitates the disassembly and installation of the first module 100 and the second module 200, saves time and effort, and is simple to operate.

[0063] In some embodiments, the interlocking structure includes an interlocking buckle 1 and a closing portion 25, wherein the locking direction of the interlocking buckle 1 is not the same as the extension direction of the slide rail structure 2, so that the locking direction of the interlocking buckle 1 forms an angle with the extension direction of the slide rail structure 2. For example, the angle is set to a right angle so that the movement directions of the interlocking buckle 1 and the slide rail structure 2 interfere with each other, and the locking of the first module 100 and the second module 200 is achieved by mutual locking.

[0064] The closing portion 25 is disposed on the first module 100. The closing portion 25 and the blocking portion are arranged along the extension direction of the slide rail structure 2. The distance between the closing portion 25 and the closest blocking portion is less than the length of the corresponding retaining portion of the blocking portion (the distance between the closing portion 25 and the blocking portion can be zero, i.e., the closing portion 25 is disposed on the blocking portion). When the blocking portion and the retaining portion engage, the retaining portion and the closing portion 25 abut, and the first module 100 and the second module 200 are aligned. In this way, the design of the closing portion 25 prevents the retaining portion from sliding excessively relative to the blocking portion and helps to position the first module 100 and the second module 200 in the aligned position. In some embodiments, the closing portion 25 is disposed between the blocking portion and the first module 100; this arrangement facilitates the insertion and engagement of the retaining portion of the second module 200 from either side of the blocking portion.

[0065] In a preferred embodiment, the interlocking buckle 1 includes a locking member 10 and a locking groove 11. The locking groove 11 is provided on the first module 100, and the locking member 10 is provided on the second module 200. For example, when the first module 100 and the second module 200 are docked, the locking member 10 and the locking groove 11 are both located on the sides of the first module 100 and the second module 200 to facilitate locking and unlocking. Furthermore, the locking member 10 is capable of moving relative to the second module 200 (this movement can be configured as rotation or sliding, i.e., the locking member 10 is rotationally or slidably connected to the second module 200) so that the locking member 10 can extend into and out of the locking groove 11. When the interlocking buckle 1 is in the locked state, the locking member 10 extends into the locking groove 11. When the interlocking buckle 1 is in the unlocked state, the locking member 10 extends out of the locking groove 11. By extending the locking member 10 into and out of the locking groove 11, the interlocking buckle 1 can be switched between the unlocked and locked states.

[0066] Furthermore, the interlocking buckle 1 further includes a first elastic member 14, which is connected between the locking member 10 and the second module 200 and is capable of driving the locking member 10 relative to the second module 200, so that the locking member 10 moves until it interferes with the locking groove 11 (i.e., the locking member 10 extends into the locking groove 11), thereby automatically maintaining the interlocking buckle 1 in the locked state. When the first module 100 and the second module 200 are connected and the interlocking buckle 1 is in the locked state, the first elastic member 14 presses against the locking member 10 to align the locking member 10 with the locking groove 11, thereby automatically locking the locking member 10 with the locking groove 11 under the action of the first elastic member 14.

[0067] The present solution will be described in detail below in conjunction with the above embodiments.

[0068] like Figure 6-9In the illustrated embodiment, the second module 200 is stacked above the first module 100. The interlocking buckle 1 is configured as a flip buckle. The locking member 10 includes an operating member 12 and a locking tongue 13. The operating member 12 is connected to the second module 200 and can flip relative to the second module 200. Specifically, a flip groove is provided on the side of the second module 200. One end of the flip groove is open, so that the open end of the flip groove is connected to the side of the second module 200. A first elastic member 14 is connected between the operating member 12 and the second module 200. This first elastic member 14 can be configured as a spring. Under the action of the first elastic member 14, the operating member 12 can automatically flip in the locking direction. Specifically, the first end of the operating member 12 is rotatably connected to the bottom of the flip groove via a rotating shaft. The first elastic member 14 is located between the bottom of the flip groove and the middle of the operating member 12, thereby driving the second end of the operating member 12 to swing and flip. The locking tongue 13 is located at the second end of the operating member 12, near the open end of the sliding groove, and can extend downward to the position of the locking groove 11.

[0069] The locking slot 11 is provided on the first module 100 and opens toward the second module 200. When the first and second modules 100, 200 are aligned, the locking slot 11 and the locking tongue 13 are aligned. Under the action of the first elastic member 14, the operating member 12 causes the locking tongue 13 to tilt downward into the locking slot 11, locking the interlocking catch 1, thereby preventing the slide rail structure 2 from moving and, in turn, preventing the first and second modules 100, 200 from sliding relative to each other. Manual force causes the operating member 12 to tilt upward and causes the locking tongue 13 to extend from the locking slot 11, unlocking the interlocking catch 1, allowing the slide rail structure 2 to move and, in turn, allowing the first and second modules 100, 200 to slide relative to each other.

[0070] In one embodiment of the present application, Figure 12 As shown, this connection assembly is used on the hook structure of two containers. At least one blocking portion of the slide rail structure is provided on the first module 100, and at least one retaining portion is provided on the second module 200. The first module 100 is connected to the second module 200 via the slide rail structure; at this time, the first module 100 abuts the bottom of the second module 200. In a preferred embodiment, the retaining portion extends upward from the bottom of the second module 200, and the closing portion 25 is provided on the side of the first module 100 away from the interlocking buckle 1. In this case, the end of the retaining portion of the first module 100 away from the bottom abuts the closing portion 25, and the first module 100 does not abut the bottom of the second module 200, thereby not occupying the bottom space of the second module 200.

[0071] like Figure 10-11As shown, the embodiment of the present application provides a modular container, including a first module 100 and a second module 200, which are connected by the connecting assembly of the above embodiment. This arrangement has a simple structure and facilitates the disassembly and installation of the first module 100 and the second module 200, saving time and effort.

[0072] In some preferred embodiments, the first module 100 and the second module 200 have the same volume, and the first module 100 and the second module 200 are both full-size modules, or both are half-size modules, or both are quarter-size modules. After the first module 100 and the second module 200 are stacked, their shapes are symmetrical, which is convenient for storage and transportation.

[0073] In other preferred embodiments, the volume of the first module 100 is smaller than the volume of the second module 200. For example, the volume of the second module 200 is twice the volume of the first module 100. Of course, it can also be three or four times, so that the second module 200 is full-size and the first module 100 is half-size or one-quarter-size. Moreover, multiple first modules 100 can be simultaneously connected and locked with one second module 200 through a connecting assembly, thereby forming a stack of multiple first modules 100 and one second module 200. In this way, stacking cooperation between modules of multiple sizes can be achieved.

[0074] Among the above-mentioned multiple first modules 100 , the arrangement direction of the multiple first modules 100 can be parallel to the extension direction of the slide rail structure 2 or perpendicular to the extension direction of the slide rail structure 2 .

[0075] It can be understood that the above description that the volume of the second module 200 is twice the volume of the first module 100 can be defined as: in the arrangement direction of the first slide rail structure and the second slide rail structure, the size of the second module 200 is twice the size of the first module 100; or, on the docking surface between the first module 100 and the second module 200, the side length of the second module 200 is twice the side length of the first module 100.

[0076] The basic principles of the present application have been described above in conjunction with specific embodiments. However, it should be noted that the advantages, strengths, and effects mentioned in this application are merely illustrative and not restrictive, and it should not be assumed that these advantages, strengths, and effects are required of each embodiment of this application. In addition, the specific details disclosed above are merely illustrative and facilitating understanding, and are not restrictive. The above details do not limit this application to necessarily being implemented using the above specific details.

[0077] The block diagrams of the devices, devices, equipment, and systems involved in this application are merely illustrative examples and are not intended to require or imply that they must be connected, arranged, or configured in the manner shown in the block diagrams. As will be appreciated by those skilled in the art, these devices, devices, equipment, and systems can be connected, arranged, or configured in any manner. Words such as "include," "comprise," "have," and the like are open-ended words, meaning "including but not limited to," and can be used interchangeably therewith. The words "or" and "and" used herein refer to the words "and / or" and can be used interchangeably therewith, unless the context clearly indicates otherwise. The word "such as" used herein refers to the phrase "such as but not limited to," and can be used interchangeably therewith.

[0078] It should also be noted that in the apparatus, device, and method of the present application, each component or each step can be decomposed and / or recombined, and such decomposition and / or recombination should be regarded as equivalent solutions of the present application.

[0079] The above description of the disclosed aspects is provided to enable any person skilled in the art to make or use the present application. Various modifications to these aspects will be readily apparent to those skilled in the art, and the general principles defined herein may be applied to other aspects without departing from the scope of the present application. Therefore, the present application is not intended to be limited to the aspects shown herein, but rather to be accorded the widest scope consistent with the principles and novel features disclosed herein.

[0080] It should be understood that the qualifiers "first", "second", "third", "fourth", "fifth" and "sixth" used in the description of the embodiments of the present application are only used to more clearly illustrate the technical solutions and cannot be used to limit the scope of protection of the present application.

[0081] The above description has been provided for the purpose of illustration and description. Furthermore, this description is not intended to limit the embodiments of the present application to the forms disclosed herein. Although a number of example aspects and embodiments have been discussed above, those skilled in the art will recognize certain variations, modifications, alterations, additions, and sub-combinations thereof.

Claims

1. A connection assembly, characterized in that: Used to connect the first module and the second module, including: a slide rail structure comprising at least one blocking portion provided on the first module and at least one holding portion provided on the second module, wherein when the blocking portion is engaged with the holding portion, the first module and the second module are slidably connected; an interlocking structure, provided on the first module and the second module, having a locked state and an unlocked state; When the interlocking structure is in a locked state and the blocking portion is engaged with the holding portion, the first module and the second module are locked with each other.

2. The connection assembly according to claim 1, characterized in that The slide rail structure comprises: The first slide rail structure includes a first blocking portion provided on the first module and a first holding portion provided on the second module and capable of engaging with the first blocking portion; The second slide rail structure includes a second blocking portion provided on the first module and a second holding portion provided on the second module and capable of engaging with the second blocking portion.

3. The connection assembly according to claim 2, characterized in that The first blocking portion and the second blocking portion extend in opposite directions, and the first clamping portion and the second clamping portion extend in opposite directions.

4. The connection assembly according to claim 2, characterized in that At least one of the first slide rail structure and the second slide rail structure is located on one side of the first module and the second module.

5. The connection assembly according to claim 1, characterized in that The blocking portions are provided in plurality and are arranged along the extension direction of the slide rail structure; and the clamping portions are provided in plurality and are arranged along the extension direction of the slide rail structure.

6. The connection assembly according to claim 1, characterized in that The interlocking structure includes an interlocking buckle and a closing portion spaced apart from the interlocking buckle. The locking direction of the interlocking structure is not parallel to the extending direction of the slide rail structure. When the holding portion is engaged with the blocking portion, the closing portion can abut against the holding portion.

7. The connection assembly according to claim 6, characterized in that The closing portion is provided on the first module, and the closing portion is provided at a position between the blocking portion and the first module.

8. The connection assembly according to claim 6, characterized in that The distance between the closing portion and the closest blocking portion is smaller than the length of the clamping portion corresponding to the blocking portion.

9. A container, characterized in that: One container is connected to another container via the connecting assembly according to any one of claims 1 to 8.

10. A combined container, characterized in that: include: adjacent first and second modules; A connecting component, configured as the connecting component according to any one of claims 1 to 8; The first module and the second module are locked to each other via the connecting assembly.

11. The modular container according to claim 10, characterized in that: The first module and the second module have the same volume; Alternatively, the volume of the first module is smaller than that of the second module, and the arrangement direction of the plurality of first modules is parallel to the extension direction of the slide rail structure, and the plurality of first modules are locked with one second module at the same time; Alternatively, the volume of the first module is smaller than that of the second module, and the arrangement direction of the plurality of first modules is perpendicular to the extension direction of the slide rail structure, and the plurality of first modules are locked with one second module at the same time.

12. A hook structure, characterized in that: include: According to the connection assembly according to any one of claims 1 to 8, at least one blocking portion of the slide rail structure is arranged on the first module, and at least one holding portion is arranged in the second module; the first module is connected to the second module through the slide rail structure.

13. The hook structure according to claim 12, characterized in that: The holding portion extends upward from the bottom of the second module, and the closing portion of the interlocking structure is arranged on a side of the first module away from the interlocking buckle.