Mounting structure and storage system

By designing multiple connection methods of connectors and mating parts, the problem of single connection methods of conventional hook structures on different load-bearing structures is solved, and convenient, firm and flexible installation structure adaptability is achieved to meet various usage needs.

WO2025161082A1PCT designated stage Publication Date: 2025-08-07HANGZHOU GREAT STAR IND CO LTD
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Patent Information

Application Number
PCT/CN2024/080006
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-01-30
Filing Date
2024-03-05
Publication Date
2025-08-07

AI Technical Summary

Technical Problem

Conventional hooks and other hook structures have single connection methods on load-bearing structures of different forms, and lack of functional flexibility, so they are not easy to replace according to needs.

Method used

It provides an installation structure, including a connector and a mating member. By providing a variety of mating structures and locking members, it realizes detachable or integrated molding connection with the load-bearing structure, enhances the firmness and flexibility of the connection, and supports the adaptation of the load-bearing structures.

Benefits of technology

It realizes convenient connection and flexible replacement of the installation structure on different load-bearing structures, improves the firmness and functional adaptability of the connection, and meets various usage needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

A mounting structure (100) and a storage system (200). The mounting structure (100) is mounted on a load-bearing structure (200), and comprises a connecting member (10) and a mating member (20); the mating member (20) is connected to the load-bearing structure (200) by means of the connecting member (10), and is used for bearing an item to be mounted. According to the present application, connecting members (10) matching different load-bearing structures (200) can be customized according to different usage requirements; thus, the mating member (20) can be conveniently connected to the load-bearing structure (200) by means of the connecting member (10), effectively improving the connection convenience and functional flexibility of the mounting structure (100).
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Description

Installation structure and storage system

[0001] Related applications

[0002] This application claims priority to Chinese patent application number 202410133378.2, filed on January 30, 2024, entitled “Installation Structure and Storage System,” which is hereby incorporated by reference in its entirety. Technical Field

[0003] The present application relates to the technical field of storage tools, and in particular to an installation structure and a storage system. Background Art

[0004] Conventional hanging structures such as hooks are usually directly bonded to load-bearing structures such as walls. They have a single connection method, which makes it inconvenient to flexibly connect with load-bearing structures of different forms. In addition, they lack functional flexibility and are not easy to replace according to needs.

[0005] Summary of the Invention

[0006] According to various embodiments of the present application, a mounting structure and a storage system are provided.

[0007] A mounting structure is mounted on a load-bearing structure. The mounting structure comprises a connecting piece and a matching piece. The matching piece is connected to the load-bearing structure via the connecting piece, and the matching piece is used to carry items to be mounted.

[0008] The details of one or more embodiments of the present application are set forth in the accompanying drawings and the description below. Other features, objects, and advantages of the present application will become apparent from the description, drawings, and claims. BRIEF DESCRIPTION OF THE DRAWINGS

[0009] In order to better describe and illustrate the embodiments and / or examples of the inventions disclosed herein, reference may be made to one or more of the accompanying drawings. The additional details or examples used to describe the accompanying drawings should not be considered to limit the scope of the disclosed inventions, the presently described embodiments and / or examples, and any of the best modes currently understood for these inventions.

[0010] FIG1 is a schematic diagram of a storage system provided in this application.

[0011] FIG2 is an enlarged schematic diagram of point A in FIG1 .

[0012] FIG3 is a schematic diagram of the first assembly method of the box body and the connector.

[0013] FIG4 is a schematic diagram of the second assembly method of the box body and the connector.

[0014] FIG5 is a side view of the connecting member in FIG4 .

[0015] FIG. 6 is a side view of the mounting structure in cooperation with the waist belt.

[0016] FIG. 7 is an exploded view of an embodiment of a mounting structure.

[0017] FIG8 is an exploded view of the installation structure shown in FIG7 from another perspective.

[0018] FIG9 is a side view of the connecting member and the locking member in FIG7 when assembled.

[0019] FIG10 is an exploded view of FIG9 .

[0020] FIG. 11 is a front view of an embodiment of a mounting structure when assembled with a tool package.

[0021] FIG12 is an axonometric view of the mounting structure shown in FIG11 .

[0022] FIG. 13 is a schematic diagram of an embodiment of a mounting structure.

[0023] FIG14 is a cross-sectional view of FIG13 taken along line BB.

[0024] FIG. 15 is a side view of an embodiment of a mounting structure.

[0025] FIG. 16 is a front view of an embodiment of a mounting structure.

[0026] FIG17 is a cross-sectional view taken along line CC of FIG16 .

[0027] FIG. 18 is an exploded view of an embodiment of a mounting structure.

[0028] FIG19 is a schematic diagram of the fitting in FIG18 .

[0029] FIG20 is a cross-sectional view of FIG19 taken at DD.

[0030] FIG21 is a front view of the connector 10 in FIG18 .

[0031] FIG22 is a cross-sectional view of FIG21 taken at EE.

[0032] FIG. 23 is an exploded view of an embodiment of a mounting structure.

[0033] FIG. 24 is an exploded view of an embodiment of a mounting structure.

[0034] FIG. 25 is a schematic diagram of an embodiment of a mounting structure.

[0035] FIG. 26 is a schematic diagram of an embodiment of a mounting structure.

[0036] FIG. 27 is a schematic diagram of an embodiment of a mounting structure.

[0037] FIG. 28 is an exploded view of an embodiment of a mounting structure.

[0038] FIG. 29 is a schematic diagram of an embodiment of a mounting structure.

[0039] FIG30 is a schematic diagram of an embodiment of a mounting structure.

[0040] Figure 31 is an exploded view of Figure 30.

[0041] FIG. 32 is a schematic diagram of an embodiment of a mounting structure.

[0042] FIG33 is a schematic diagram of an embodiment of a mounting structure.

[0043] FIG34 is a schematic diagram of an embodiment of a mounting structure.

[0044] FIG35 is a schematic diagram of an embodiment of a mounting structure.

[0045] FIG36 is a schematic diagram of the functional portion in FIG35 when it is flipped.

[0046] FIG37 is an exploded view of FIG35 .

[0047] FIG38 is a schematic diagram of the fitting in FIG35.

[0048] Reference numerals: 1, storage system; 100, mounting structure; 10, connector; 11, first matching structure; 111, protrusion; 112, limiting convex edge; 12, through hole; 13, slide groove; 14, through groove; 15, mounting surface; 16, matching surface; 17, snap hook; 18, matching hole; 191, fixing portion; 192, movable portion; 193, locking portion; 20, matching member; 21, second matching structure; 201, matching groove; 22, third matching structure; 202, Clamping block; 203, limiting hole; 211, first opening; 212, flange; 213, second opening; 23, assembly cavity; 231, first opening; 232, second opening; 24, functional area; 25, adapter; 251, clamping assembly; 251a, clamping arm; 252, assembly hole; 253, front cover; 253a, first slot; 254, rear cover; 254a, second slot; 255, clamping slot; 256, functional plane; 257, assembly slot; 258, interface; 26. Functional part; 261. Hook; 262. Lamp; 262a. Articulated axis; 263. Hook; 264. Hanger; 265. Hook body; 266. Frame structure; 267. Tray; 268. Ball frame; 269. Sheet metal frame; 27. Avoidance gap; 30. Locking member; 31. Main body; 311. Limit block; 312. Lock pin; 32. Protrusion; 321. Guide slope; 33. Auxiliary push block; 302. Second slope; 331. Matching hook; 332. First inclined surface; 34. First elastic return member; 35. Baffle; 351. Perforation; 36. Transmission button; 361. Transmission inclined surface; 37. Stop block; 38. Second elastic return member; 39. Elastic support member; 200. Load-bearing structure; 210. Load-bearing plate; 220. Guide rail; 221. Hanging structure; 222. Hook; 223. Hole; 230. Hanging strip; 240. Box; 250. Screw; 260. Positioning hole; 300. Items to be installed; 310. Tool kit. DETAILED DESCRIPTION

[0049] To make the above-mentioned objects, features, and advantages of the present application more clearly understood, the specific embodiments of the present application are described in detail below with reference to the accompanying drawings. The following description sets forth many specific details to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways than those described herein, and those skilled in the art can make similar improvements without violating the scope of the present application. Therefore, the present application is not limited to the specific embodiments disclosed below.

[0050] It should be noted that when a component is referred to as being "fixed to" or "disposed on" another component, it may be directly on the other component or there may be a central component. When a component is considered to be "connected to" another component, it may be directly connected to the other component or there may be a central component at the same time. The terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used in the specification of this application are for illustrative purposes only and do not represent the only implementation method.

[0051] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of such features. Throughout the description of this application, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.

[0052] In this application, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may mean that the first feature is directly offset from the second feature, or that the first feature and the second feature are indirectly offset through an intermediary. Furthermore, a first feature being "above," "above," or "above" a second feature may mean that the first feature is directly above or diagonally above the second feature, or simply means that the first feature is higher in level than the second feature. A first feature being "below," "below," or "below" a second feature may mean that the first feature is directly below or diagonally below the second feature, or simply means that the first feature is lower in level than the second feature.

[0053] Unless otherwise defined, all technical and scientific terms used in the specification of this application have the same meaning as commonly understood by those skilled in the art to which this application belongs. The terms used in the specification of this application are only for the purpose of describing specific embodiments and are not intended to limit this application. The term "and / or" used in the specification of this application includes any and all combinations of one or more of the relevant listed items.

[0054] Referring to Figures 1 to 6, the present application provides a mounting structure 100, which is mounted on a load-bearing structure 200. Figures 1, 3, and 4 are schematic diagrams of the assembly of the mounting structure 100 and the load-bearing structure 200, respectively. The mounting structure 100 includes a connector 10 and a mating member 20, the mating member 20 being connected to the load-bearing structure 200 via the connector 10, and the mating member 20 being used to carry items to be mounted. By providing the connector 10, the connector 10 can be customized to match different load-bearing structures 200 according to different usage requirements, thereby facilitating the connection of the mating member to the load-bearing structure 200 via the connector 10.

[0055] In some embodiments, the fitting member 20 is non-detachably connected to the connecting member 10 .

[0056] In one embodiment, the fitting part 20 and the connecting part 10 are integrally formed, for example, the fitting part 20 and the connecting part 10 are integrally injection molded; or, the fitting part 20 and the connecting part 10 are adhesively connected; or, the fitting part 20 and the connecting part 10 are riveted.

[0057] The fitting member 20 is detachably connected to the connecting member 10 .

[0058] Referring now to Figures 7 to 10 , the connector 10 is provided with a first mating structure 11, and the mating member 20 is provided with a second mating structure 21. At least a portion of the second mating structure 21 is press-fitted to the first mating structure 11 along the direction of gravity X, thereby preventing the mating member 20 from separating from the connector 10 along the direction of gravity X. Under the influence of its own weight and the weight of the object to be mounted, the mating member 20 is press-fitted to the first mating structure 11 via the second mating structure 21, thereby achieving a secure connection with the connector 10 and preventing it from separating from the connector 10 along the direction of gravity X.

[0059] In one embodiment, as shown in Figures 8 and 9, the first mating structure 11 is configured as a protrusion 111 protruding from the surface of the connector 10, and the second mating structure 21 is configured as a mating groove 201. The mating groove 201 has a first opening 211 disposed opposite the protrusion 111. The mating groove 201 can be sleeved onto the protrusion 111 through the first opening 211, and the upper wall surface of the mating groove 201 is pressed against the protrusion 111 along the gravity direction X. In this way, the release area between the first mating structure 11 and the second mating structure 21 can be increased, thereby making the connection between the mating member 20 and the connector 10 more secure.

[0060] Furthermore, as shown in FIG9 , the outer peripheral wall of the protrusion 111 is provided with a limiting flange 112, which is spaced apart from the surface of the connector 10. The first opening 211 is provided with a flange 212 extending toward the center of the first opening 211, and the flange 212 is stopped between the limiting flange 112 and the surface of the connector 10. By providing the flange 212 to stop between the limiting flange 112 and the surface of the connector 10, the mating component 20 can be prevented from separating from the connector 10 in a direction perpendicular to the surface of the connector 10.

[0061] Furthermore, the mating groove 201 has a second opening 213 that communicates with the first opening 211. Along the direction of gravity X, the protrusion 111 of the mating member 20 can sequentially pass through the second opening 213 and the first opening 211 and extend into the mating groove 201. The second opening 213 facilitates fitting the mating groove 201 onto the surface of the protrusion 111.

[0062] The mounting structure 100 further includes a locking member 30 for limiting the mating member 20 from separating from the connecting member 10 along the anti-gravity direction Y. Exemplarily, three forms of the locking member 30 are described below. It is understood that the specific structure of the locking member 30 is not limited to the following three forms.

[0063] First, the first embodiment of the locking member 30 is introduced:

[0064] Continuing with Figures 7 to 9, the mating member 20 is provided with a third mating structure 22, and the locking member 30 is movably connected to the connecting member 10. Furthermore, at least a portion of the locking member 30 can be moved to a position where it protrudes from the surface of the connecting member 10 near the mating member 20, thereby forming a stop above the third mating structure 22 along the gravity direction X. The locking member 30 can be moved to a position where it no longer protrudes from the surface of the connecting member 10 near the mating member 20, thereby releasing the stop between the third mating structure 22. Because the first mating structure 11 and the second mating structure 21 cooperate to restrict the mating member 20 from separating from the connecting member 10 along the gravity direction X, by providing at least a portion of the locking member 30 to form a stop above the third mating structure 22 along the gravity direction X, the mating member 20 can be restricted from separating from the connecting member 10 along the counter-gravity direction Y, thereby completely locking the mating member 20 with the connecting member 10. Furthermore, by moving the locking member 30 , the stop between the locking member 30 and the third matching structure 22 can be released, thereby unlocking the matching member 20 and the connecting member 10 , making it easier to remove the matching member 20 from the connecting member 10 .

[0065] The connector 10 defines a through-hole 12. The locking member 30 includes a main body 31 and a protrusion 32, which are connected to each other. The protrusion 32 extends through the through-hole 12 to the surface of the connector 10 near the mating member 20. The main body 31 is movably connected to the connector 10 and can drive the protrusion 32 out of the through-hole 12. In other words, the protrusion 32 is used to engage with the third mating structure 22.

[0066] For example, as shown in Figures 8 and 10, the through hole 12 is formed in the protrusion 111, and the third mating structure 22 is configured as a block 202 that protrudes from the interior of the mating groove 201. In this way, the space of the connector 10 along the gravity direction X can be fully utilized, thereby shortening the length of the connector 10 and the corresponding mating member 20, saving materials and reducing costs.

[0067] The locking member 30 also includes an elastic support member 39. One end of the elastic support member 39 is connected to the connector 10, and the other end is press-fitted to the main body 31 along the axial direction of the through-hole 12, thereby ensuring that the protrusion 32 remains protruding from the through-hole 12. In this manner, the elastic support member 39 allows the protrusion 32 to maintain a stop engagement with the third mating structure 22, thereby enhancing the secure connection between the mating member 20 and the connector 10. Specifically, the elastic support member 39 may be a metal spring.

[0068] The protrusion 32 is provided with a guiding slope 321; when the main body 31 moves a preset distance along the anti-gravity direction Y, the protrusion 32 can disengage from the through hole 12 along the guiding slope 321. The guiding slope 321 serves as a guide, making it easier for the protrusion 32 to disengage from the through hole 12. Specifically, when it is necessary to disassemble the mating component 20, it is only necessary to push the main body 31 along the anti-gravity direction Y so that the protrusion 32 disengages from the through hole 12 along the guiding slope 321, thereby releasing the stop engagement between the protrusion 32 and the third mating structure 22. Then, the mating component 20 is moved along the anti-gravity direction Y so that the second mating structure 21 and the first mating structure 11 are released from the limit, thereby enabling the mating component 20 to be removed from the connector 10. Specifically, the guiding slope 321 is provided above the protrusion 32.

[0069] The connector 10 is provided with a slide groove 13, and the end of the main body 31 away from the protrusion 32 can slide along the side wall of the slide groove 13 along the gravity direction X or the anti-gravity direction Y. The slide groove 13 acts as a guide, so that the main body 31 can slide more smoothly relative to the connector 10.

[0070] The locking member 30 further includes an auxiliary push block 33 , which is connected to one end of the main body 31 relatively away from the protrusion 32 . By pushing the auxiliary push block 33 along the anti-gravity direction Y, the protrusion 32 can be driven out of the through hole 12 .

[0071] Specifically, the auxiliary push block 33 is connected to the side of the main body 31 near the mating member 20. Furthermore, the mating member 20 is provided with an escape notch 27 corresponding to the auxiliary push block 33, through which the auxiliary push block 33 is exposed. This facilitates the operator's use of the auxiliary push block 33 to push the main body 31 in the anti-gravity direction Y.

[0072] The locking member 30 further includes a first elastic reset member 34 . One end of the first elastic reset member 34 is connected to the upper wall of the sliding groove 13 , and the other end elastically acts on the auxiliary push block 33 along the gravity direction X.

[0073] As such, when the operator applies force to the auxiliary push block 33 to move it in the counter-gravity direction Y, the first elastic return member 34 is compressed. When the operator stops applying force to the auxiliary push block 33, the first elastic return member 34 pushes the auxiliary push block 33 and the main body 31 to return to its original position, thereby returning the protrusion 32 to its position restrained by the through hole 12. The first elastic return member 34 can be configured as a spring.

[0074] Next, a second embodiment of the locking member 30 is introduced:

[0075] Please refer to Figures 11 to 17. A third matching structure 22 is provided on the connecting member 10. The third matching structure 22 is configured as a limiting hole 203. The locking member 30 is elastic and fixedly connected to the matching member 20. As the matching member 20 moves relative to the connecting member 10, the locking member 30 can be deformed and extend into the limiting hole 203.

[0076] Furthermore, as shown in FIG. 14 , the locking member 30 may be configured to be hook-shaped, so as to be easily inserted into the limiting hole 203 and stopped below the upper wall of the limiting hole 203 along the gravity direction X.

[0077] In one embodiment, the locking member 30 and the matching member 20 are both plastic members and are integrally formed by injection molding.

[0078] The mounting structure 100 also includes an auxiliary push block 33, which is movably connected to the mating member 20. As the auxiliary push block 33 moves relative to the mating member 20, it causes the locking member 30 to deform and disengage from the retaining hole 203. Thus, an operator can push the auxiliary push block 33 to disengage the locking member 30 from the retaining hole 203, thereby unlocking the mating member 20 and the connecting member 10.

[0079] Furthermore, the auxiliary pushing block 33 is provided with a mating hook 331, which is slidably connected to the bottom of the locking member 30. As the mating hook 331 slides upward relative to the mating member 20, the mating hook can apply a force to the locking member 30 away from the connecting member 10, thereby causing the locking member 30 to deform and disengage from the limiting hole 203.

[0080] Specifically, the engaging hook 331 is provided with a first inclined surface 332, and the locking member 30 is provided with a second inclined surface 302. The first inclined surface 332 slides against the bottom of the first inclined surface, and along the direction of gravity, the first inclined surface 332 and the second inclined surface both extend in a direction away from the connecting member 10. As a result, when the engaging hook 331 moves upward, the first inclined surface 332 can exert a force on the locking member 30 away from the connecting member 10 through the second inclined surface 302, thereby causing the locking member 30 to deform and disengage from the limiting hole 203.

[0081] Next, a third embodiment of the locking member 30 is introduced:

[0082] Please refer to Figures 18 to 22. The connecting member 10 is provided with a third matching structure 22, and the locking member 30 is movably connected to the matching member 20; at least a portion of the locking member 30 can be moved to a surface protruding from the matching member 20 close to the connecting member 10, and is used to stop below the third matching structure 22 along the gravity direction X; the locking member 30 can be moved to a surface not protruding from the matching member 20 close to the connecting member 10 to release the stop between the third matching structure 22.

[0083] The fitting member 20 has an assembly cavity 23 having a first opening 231 disposed toward the connector 10 . The locking member 30 is movably accommodated in the assembly cavity 23 , and at least a portion of the locking member 30 can extend through the first opening 231 .

[0084] Furthermore, as shown in Figure 20, the assembly cavity 23 has a second opening 232 set toward the anti-gravity direction Y; the locking member 30 includes a baffle 35 and a transmission button 36, the baffle 35 extends through the first opening 231, one end of the transmission button 36 extends through the second opening 232, and the other end is movably connected to the baffle 35; as the transmission button 36 moves along the gravity direction X, the transmission button 36 can push the baffle 35 to retract into the assembly cavity 23.

[0085] The baffle 35 is configured to stop below the third mating structure 22 along the direction of gravity X. The operator presses the transmission button 36 along the direction of gravity X, which drives the baffle 35 toward the assembly cavity 23 until the baffle 35 no longer extends beyond the first opening 231, thereby releasing the baffle 35 from the third mating structure 22. In other words, pressing the transmission button 36 unlocks the mating component 20 and the connector 10.

[0086] The sidewall of the transmission button 36 facing away from the first opening 231 is configured as a transmission ramp 361. The baffle 35 defines a through-hole 351, through which the transmission button 36 is inserted, with the transmission ramp 361 pressing against the inner wall of the through-hole 351. As the transmission button 36 moves in the direction of gravity (X), the transmission ramp 361 exerts a force on the inner wall of the through-hole 351, directed from the first opening 231 toward the assembly cavity 23. The provision of the transmission ramp 361 converts the movement of the transmission button 36 in the direction of gravity (X) into movement of the baffle 35 into the assembly cavity 23.

[0087] The locking member 30 further includes a stopper 37 connected to the transmission button 36 and stopped below the baffle 35 along the gravity direction X. In this way, the stopper 37 can prevent the transmission button 36 from escaping from the second opening 232 along the counter-gravity direction Y.

[0088] Furthermore, the locking member 30 includes a second elastic return member 38 , one end of which is connected to the bottom wall of the assembly cavity 23 , and the other end of which elastically acts on the stopper 37 along the counter-gravity direction Y. The second elastic return member 38 abuts against the stopper 37 , thereby applying a force along the counter-gravity direction Y to the baffle 35 , thereby keeping the baffle 35 confined within the assembly cavity 23 .

[0089] The connecting member 10 has at least one mounting surface 15 and at least one mating surface 16 . The mounting surface 15 is used to connect to the load-bearing structure 200 , and the mating surface 16 is used to connect to the mating member 20 .

[0090] In one embodiment, as shown in FIG18 , the connector 10 has a mounting surface 15 and a mating surface 16, with the mounting surface 15 and the mating surface 16 disposed opposite each other. In this embodiment, each connector 10 is mounted with a corresponding mating component 20, and the load-bearing structure 200 and the mating component 20 are located on opposite sides of the connector 10, making the connector 10 more compact.

[0091] In another embodiment, the connector 10 has multiple mating surfaces 16 , so that multiple mating components 20 can be installed on the same connector 10 at the same time.

[0092] In another embodiment, the connector 10 has multiple mounting surfaces 15 , and the multiple mounting surfaces 15 are suitable for different load-bearing structures 200 , so that the connector 10 can be switched between the multiple load-bearing structures 200 .

[0093] The fitting member 20 includes a transition portion 25 and a functional portion 26 . The functional portion 26 is connected to the transition portion 25 and is connected to the connector 10 through the transition portion 25 .

[0094] The functional portion 26 is detachably connected to the adapter portion 25. In this way, the functional portion 26 can be detached from the adapter portion 25, so that the functional portion 26 can be replaced according to actual practical needs.

[0095] 8 , the adapter portion 25 is provided with at least one set of clamping assemblies 251. Each set of clamping assemblies 251 includes two spaced and opposed clamping arms 251a, which are used to clamp the functional portion 26. The clamping arms 251a are elastic, making it easy to clamp the functional portion between the corresponding set of clamping arms 251a.

[0096] 18 and 23 , the adapter 25 has an assembly groove 257 in which the functional portion 26 is engaged. The portion of the functional portion 26 located in the assembly groove 257 can be configured as a strip to increase the contact area between the functional portion 26 and the assembly groove 257.

[0097] The adapter portion 25 has an assembly hole 252 , and the functional portion 26 is passed through the assembly hole 252 .

[0098] Specifically, referring to Figure 28, the adapter 25 includes a front cover 253 and a rear cover 254 that are detachably connected. The rear cover 254 is located between the front cover 253 and the connector 10. In addition, the front cover 253 is provided with a first groove 253a, and the rear cover 254 is provided with a second groove 254a. The second groove 254a and the first groove 253a form an assembly hole 252.

[0099] Please refer to FIG. 24 . A slot 255 is defined on the surface of the adapter portion 25 . A hook 261 is provided on the functional portion 26 . The hook 261 is locked in the slot 255 .

[0100] Each functional portion 26 is correspondingly connected to at least one adapter portion 25 .

[0101] For example, in the embodiments shown in Figures 7 to 31 , each functional portion 26 is connected to a corresponding adapter portion 25 . In the embodiments shown in Figures 32 to 34 , the functional portion 26 is relatively large, and multiple adapter portions 25 jointly support the same functional portion 26 .

[0102] The functional portion 26 is movably connected to the adapter portion 25. This facilitates adjusting the position of the functional portion 26 relative to the adapter portion 25 according to usage requirements. For example, referring to Figures 35 to 38, the functional portion 26 is configured as a lamp 262, which is hinged to the adapter portion 25.

[0103] The functional portion 26 is non-detachably connected to the adapter portion 25 .

[0104] In one embodiment, in some embodiments, the functional portion 26 may be non-detachably connected to the transition portion 25 by bonding, riveting, or the like.

[0105] Of course, the functional part 26 can also be set integrally with the adapter part 25. For example, in Figure 12, the functional part 26 is configured as a functional plane 256 on the adapter part 25. This functional plane 256 is used to install the tool kit 310, and the functional plane 256 can also be used to stick to the installation items.

[0106] Furthermore, as shown in FIG13 , the connector 10 in FIG11 can be configured in the same manner as the connector 10 shown in FIG7 to FIG10 , or in the same manner as the connector 10 shown in FIG15 to FIG17 . In FIG15 to FIG17 , the connector 10 is provided with a mating hole 18 , and the connector 10 is movably mounted on the outer periphery of the mounting structure 100 through the mating hole 18. Specifically, the mounting structure 100 can be configured as a waist belt (not shown), so that the connector 10 can be slidably mounted on the waist belt.

[0107] The function of the functional unit 26 is described below using several specific embodiments as examples.

[0108] 18 to 29 , the functional portion 26 is configured as a hook 263 for hanging a reception installation item 300 .

[0109] 18 to 27 , the hook 263 can be provided as a single hook 263 , which extends from the bottom of the adapter 25 . The hook 263 can also be directly connected to the side of the adapter 25 facing away from the connector 10 .

[0110] As shown in FIG. 28 to FIG. 29 , the hook 263 may also be configured as a double hook.

[0111] 30 to 31 , the functional portion 26 is configured as a hanger 264 , on which a plurality of hooks 265 are provided at intervals. The plurality of hooks 265 are used to expand the hanging space of the hanger 264 , thereby being able to hang more items to be installed.

[0112] 32 to 34 , the functional portion 26 is configured as a frame structure 266 , one frame structure 266 is correspondingly connected to at least two adapter portions 25 , and the frame structure 266 can be used to install a tray 267 , a ball frame 268 or a sheet metal frame 269 .

[0113] Referring to Figures 35 to 38 , the functional portion 26 is configured as a lamp 262. Lamp 262 is hinged to one side of the adapter portion 25 via a hinge axis 262a. Lamp 262 can be rotated 270° relative to the adapter portion 25. Lamp 262 is rotatably connected to hinge axis 262a via a rotating shaft 262b, allowing lamp 262 to rotate 360° relative to the adapter portion 25. This allows the user to easily adjust the lighting angle of lamp 262 according to their needs.

[0114] Furthermore, an interface 258 is provided below the adapter portion 25 , and the interface 258 is used for plugging a tripod, so that the lamp 262 can be installed on the tripod for use.

[0115] Please refer to Figures 1 to 6 again. The present application also provides a storage system 1, which includes a load-bearing structure 200 and an installation structure 100 according to any one of claims 1 to claim 34.

[0116] The connecting member 10 of the mounting structure 100 is fixedly mounted on the load-bearing structure 200 .

[0117] In one embodiment, as shown in FIG1 , the load-bearing structure 200 is configured as a load-bearing plate 210 , and the connector 10 is screwed to the load-bearing plate 210 by screws 250 . Alternatively, as shown in FIG3 , the load-bearing structure 200 is configured as a box 240 , and the connector 10 is connected to the box 240 by screws 250 .

[0118] The connecting member 10 can also be directly bonded and fixed to the load-bearing structure 200 .

[0119] The connecting member 10 of the mounting structure 100 is detachably connected to the load-bearing structure 200 .

[0120] The mounting structure 100 is movably mounted on the load-bearing structure 200 . This facilitates adjusting the mounting position of the mounting structure 100 relative to the load-bearing structure 200 .

[0121] In one embodiment, as shown in Figures 1, 2, and 9, the load-bearing structure 200 includes a guide rail 220. A through slot 14 is provided at each of the two opposite ends of the mounting structure 100. The two edges of the guide rail 220 are slidably engaged within the two through slots 14. In this manner, the mounting structure 100 can slide along the extension direction of the guide rail 220. The through slot 14 is provided in the connector 10.

[0122] In one embodiment, the guide rail 220 is fixed to the bearing plate 210 by screws 250. That is, the guide rail 220 can be used in conjunction with the bearing plate 210.

[0123] Furthermore, as shown in Figures 2 and 9, a plurality of positioning holes 260 are provided at intervals along the extension direction of the guide rail 220. A locking pin 312 is provided in at least one of the two through slots 14. The locking pin 312 can be inserted into any of the positioning holes 260 to position and install the mounting structure 100 on the guide rail 220. In this way, when the mounting structure 100 slides along the guide rail 220 to a certain positioning hole 260, the mounting structure 100 can be locked on the guide rail 220 by inserting the locking pin 312 into the positioning hole 260.

[0124] For example, referring to FIG9 , a stopper 311 is provided at one end of the main body 31 away from the protrusion 32. The stopper 311 is spaced apart from the connector 10 and forms a through slot 14 with the connector 10. The through slot 14 is configured to slide with the load-bearing structure 200. Thus, the main body 31 not only drives the protrusion 32 but also forms a through slot 14 with the connector 10 for sliding engagement with the guide rail 220.

[0125] Furthermore, the limiting block 311 is provided with a locking pin 312 , and the locking pin 312 can follow the auxiliary pushing block 33 to move to be plugged into and engaged with the positioning hole 260 on the load-bearing structure 200 .

[0126] Specifically, when the auxiliary pushing block 33 drives the main body 31 to move upward a preset distance along the anti-gravity direction Y, the locking pin 312 follows the main body 31 to move upward along the anti-gravity direction Y, thereby disengaging from the positioning hole 260, thereby unlocking the installation structure 100 locked on the guide rail 220, and the installation structure 100 can continue to slide along the extension direction of the guide rail 220 to adjust its position.

[0127] Of course, as shown in Figure 22, a limit block 311 can also be set separately. The limit block 311 is slidably connected to the connecting member 10 along the gravity direction X or the anti-gravity direction Y, and a through groove 14 is formed between the limit block 311 and the connecting member 10. The locking pin 312 is connected to the limit block 311 and can slide relative to the connecting member 10 along with the limit block 311.

[0128] As shown in Figure 2, the guide rail 220 is comprised of multiple sections, each of which is provided with a connecting structure 221 at each end along its extension direction. Adjacent sections of the guide rail 220 can be connected and extended together via the connecting structures 221. This allows the length of the guide rail 220 to be increased or decreased based on actual needs, and facilitates transportation of the guide rail 220. Of course, the guide rail 220 can also be provided in a single, non-connectable section.

[0129] Specifically, the hanging structure 221 includes a hook 222 and a hole 223 ; a hook 222 is provided at one end of each guide rail 220 , and a hole 223 is opened at the other end, and the hook 222 can be inserted into the hole 223 to connect two adjacent guide rails 220 .

[0130] 4 , the load-bearing structure is configured as a box 240, the load-bearing structure 200 is provided with a hanging bar 230, and the connector 10 has a snap hook 17, which is slidably snapped onto the hanging bar 230. In this way, the position of the connector 10 on the load-bearing structure 200 can be freely adjusted.

[0131] Furthermore, there are two snap hooks 17, which are spaced apart and respectively used to clamp the upper and lower edges of the hanging bar 230. In this way, the connection between the connector 10 and the hanging bar 230 can be strengthened.

[0132] Furthermore, at least one of the snap hooks 17 is elastic, and by bending the snap hook 17 , the upper edge or the lower edge of the hanging bar 230 can be loosened, thereby facilitating the removal of the connector 10 from the hanging bar 230 .

[0133] 6 , the connector 10 is provided with a mating hole 18, through which the connector 10 is movably mounted on the outer periphery of the mounting structure 100. In this embodiment, the mounting structure 100 can be configured as a belt (not shown), so that the connector 10 can be slidably mounted on the belt.

[0134] Furthermore, the connector 10 includes a fixed portion 191 and a movable portion 192. The fixed portion 191 is used to connect to the mating member 20. The movable portion 192 is hinged to the fixed portion 191 at one end and can be connected to the fixed portion at the other end. The middle of the movable portion 192 and the middle of the fixed portion 191 form a mating hole 18. Thus, by flipping the movable portion 192, the mating hole 18 can be opened, allowing the connector 10 to be removed from the belt.

[0135] Furthermore, the connecting member 10 further includes a locking portion 193 , which is used to lock the movable portion 192 and the fixed portion 191 .

[0136] In one embodiment, the locking portion 193 is connected to the movable portion 192 and can rotate relative to the movable portion 192. When the movable portion 192 rotates to abut against the fixed portion 191, the movable portion 192 and the fixed portion 191 can be put together and locked by flipping the locking portion 193.

[0137] The technical features of the above-mentioned embodiments can be combined arbitrarily. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0138] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that a person of ordinary skill in the art may make various modifications and improvements without departing from the spirit of the present application, all of which fall within the scope of protection of the present application. Therefore, the scope of patent protection for the present application shall be determined by the appended claims.

Claims

1. A mounting structure, mounted on a load-bearing structure, characterized in that: include: Connectors; as well as A matching piece is connected to the load-bearing structure through the connecting piece, and the matching piece is used to carry the items to be installed.

2. The mounting structure according to claim 1, wherein: The matching piece is non-detachably connected to the connecting piece.

3. The mounting structure according to claim 1, wherein: The matching piece is detachably connected to the connecting piece.

4. The mounting structure according to claim 3, wherein: The connecting member is provided with a first matching structure, and the matching member is provided with a second matching structure, at least part of the second matching structure is pressed against the first matching structure along the gravity direction X to limit the matching member from separating from the connecting member along the gravity direction X.

5. The mounting structure according to claim 4, wherein: The first mating structure is configured as a convex portion protruding from the surface of the connecting piece, and the second mating structure is configured as a mating groove. The mating groove has a first opening arranged opposite to the convex portion. The mating groove can be sleeved on the convex portion through the first opening, and the upper wall surface of the mating groove is pressed onto the convex portion along the gravity direction X.

6. The mounting structure according to claim 5, wherein: The outer peripheral wall of the convex portion is provided with a limiting convex edge, and the limiting convex edge is spaced apart from the surface of the connecting member. The first opening is provided with a flange extending toward the center of the first opening, and the flange is stopped between the limiting convex edge and the surface of the connecting member.

7. The mounting structure according to claim 6, wherein: The matching groove further has a second opening, and the second opening is connected to the first opening; Along the gravity direction X, the protrusion of the matching piece can sequentially pass through the second opening and the first opening and extend into the matching groove.

8. The mounting structure according to claim 3, wherein: The mounting structure further includes a locking member, which is used to limit the mating member from separating from the connecting member along the anti-gravity direction Y.

9. The mounting structure according to claim 8, wherein: The matching piece is provided with a third matching structure, and the locking piece is movably connected to the connecting piece; Furthermore, at least a portion of the locking member can be moved to a position where it protrudes from the surface of the connecting member close to the mating member, and is used to form a stop above the third mating structure along the gravity direction X; the locking member can be moved to a position where it does not protrude from the surface of the connecting member close to the mating member, so as to release the stop between the third mating structure and the locking member.

10. The mounting structure according to claim 9, wherein: The connecting piece is provided with a through hole; The locking member includes a main body and a protrusion connected to each other, and the protrusion can extend through the through hole to the surface of the connecting member close to the matching member; the main body is movably connected to the connecting member and can drive the protrusion to disengage from the through hole.

11. The mounting structure according to claim 10, wherein: The locking member further includes an elastic support member, one end of which is connected to the connecting member, and the other end of which is pressed against the main body along the axial direction of the through hole, so that the protrusion can remain extended out of the through hole.

12. The mounting structure according to claim 10, wherein: The protrusion is provided with a guiding inclined surface; when the main body moves a preset distance along the anti-gravity direction Y, the protrusion can be separated from the through hole along the guiding inclined surface.

13. The mounting structure according to claim 12, wherein: The connecting member is provided with a sliding groove, and the end of the main body away from the protrusion can be slidably matched with the side wall of the sliding groove along the gravity direction X or the anti-gravity direction Y.

14. The mounting structure according to claim 13, wherein: The locking member further includes an auxiliary pushing block connected to an end of the main body relatively away from the protrusion; By pushing the auxiliary pushing block along the anti-gravity direction Y, the protrusion can be driven to separate from the through hole.

15. The mounting structure according to claim 14, wherein: The locking member further includes a first elastic reset member, one end of which is connected to the upper wall surface of the sliding groove, and the other end of which elastically acts on the auxiliary pushing block along the gravity direction X.

16. The mounting structure according to claim 14, wherein: A limiting block is provided at one end of the main body away from the protrusion. The limiting block is spaced apart from the connecting member and a through slot is formed between the limiting block and the connecting member. The through slot is used for sliding cooperation with the load-bearing structure.

17. The mounting structure according to claim 16, wherein: The limiting block is provided with a locking pin, and the locking pin can follow the auxiliary pushing block to move to be plugged into and matched with the load-bearing structure.

18. The mounting structure according to claim 10, wherein: The connecting member is provided with a first matching structure, and the matching member is provided with a second matching structure, at least a portion of the second matching structure is pressed against the first matching structure along the gravity direction X to restrict the matching member from being separated from the connecting member along the gravity direction X; The first matching structure is configured as a convex portion protruding from the surface of the connecting member, and the second matching structure is configured as a matching groove. The matching groove has a first opening arranged opposite to the convex portion. The matching groove can be sleeved on the convex portion through the first opening, and the upper wall surface of the matching groove is pressed against the convex portion along the gravity direction X; The through hole is opened in the convex portion, and the third matching structure is configured as a clamping block protruding inside the matching groove.

19. The mounting structure according to claim 8, wherein: The connecting piece is provided with a third matching structure, and the locking piece is movably connected to the matching piece; At least part of the locking member can be moved to a surface protruding from the mating member close to the connecting member, and is used to stop below the third mating structure along the gravity direction X; the locking member can be moved to a surface not protruding from the mating member close to the connecting member to release the stop between the third mating structure.

20. The mounting structure according to claim 19, wherein: The matching piece has an assembly cavity having a first opening arranged toward the connecting piece. The locking piece is movably accommodated in the assembly cavity, and at least a portion of the locking piece can extend through the first opening.

21. The mounting structure according to claim 20, wherein: The assembly cavity has a second opening arranged in the anti-gravity direction Y; the locking member includes a baffle and a transmission button, the baffle extends through the first opening, one end of the transmission button extends through the second opening, and the other end is movably connected to the baffle; As the transmission button moves along the gravity direction X, the transmission button can push the baffle to retract into the assembly cavity.

22. The mounting structure according to claim 21, wherein: The side wall of the transmission button away from the first opening is configured as a transmission inclined surface, the baffle is provided with a through hole, the transmission button is passed through the through hole, and the transmission inclined surface is pressed against the inner wall of the through hole; As the transmission button moves along the gravity direction X, the transmission inclined surface can exert a force on the inner wall of the through hole directed from the first opening to the assembly cavity.

23. The mounting structure according to claim 22, wherein: The locking member further includes a stopper connected to the transmission button and stopped below the baffle along the gravity direction X.

24. The mounting structure according to claim 23, wherein: The locking member further includes a second elastic reset member, one end of which is connected to the bottom wall of the assembly cavity, and the other end of which elastically acts on the stop block along the anti-gravity direction Y.

25. The mounting structure according to claim 8, wherein: The connecting member is provided with a third matching structure, the third matching structure is configured as a limiting hole, the locking member is elastic, and the locking member is fixedly connected to the matching member; As the matching member moves relative to the connecting member, the locking member can be deformed and extend into the limiting hole.

26. The mounting structure according to claim 25, wherein: The mounting structure further includes an auxiliary pushing block, wherein the auxiliary pushing block is movably connected to the matching member; As the auxiliary pushing block moves relative to the matching member, the auxiliary pushing block can drive the locking member to deform and disengage from the limiting hole.

27. The mounting structure according to claim 1, wherein: The matching component includes a transition portion and a functional portion, wherein the functional portion is connected to the transition portion and is connected to the connecting component through the transition portion.

28. The mounting structure according to claim 27, wherein: The functional part is detachably connected to the adapter part.

29. The mounting structure according to claim 28, wherein: The adapter portion is provided with at least one group of clamping components, and each group of the clamping components includes two clamping arms that are spaced apart and arranged opposite to each other, and the clamping arms are used to clamp the functional portion.

30. The mounting structure according to claim 28, wherein: The adapter portion has an assembly hole, and the functional portion is passed through the assembly hole.

31. The mounting structure according to claim 30, wherein: The adapter portion includes a front cover and a rear cover that are detachably connected. The rear cover is located between the front cover and the connector. The front cover is provided with a first groove, and the rear cover is provided with a second groove. The second groove and the first groove enclose each other to form the assembly hole.

32. The mounting structure according to claim 28, wherein: A card slot is provided on the surface of the adapter portion, and a card hook is provided on the functional portion. The card hook is locked in the card slot.

33. The mounting structure according to claim 27, wherein: Each of the functional parts is correspondingly connected to at least one of the adapter parts.

34. The mounting structure according to claim 1, wherein: The connecting member has at least one mounting surface and at least one matching surface, wherein the mounting surface is used to connect to the load-bearing structure, and the matching surface is used to connect to the matching member.

35. The mounting structure according to claim 34, wherein: The connecting piece has a mounting surface and a mating surface, and the mounting surface is arranged opposite to the mating surface.

36. A storage system, characterized in that: The storage system includes a load-bearing structure and an installation structure according to any one of claims 1 to 35.

37. The storage system according to claim 36, wherein: The connecting member of the mounting structure is fixedly mounted on the load-bearing structure.

38. The storage system according to claim 36, wherein: The connecting piece of the installation structure is movably installed on the load-bearing structure.

39. The storage system according to claim 38, wherein: The load-bearing structure includes a guide rail. Two opposite ends of the mounting structure are respectively provided with a through slot. Two edges of the guide rail are respectively slidably clamped in the two through slots.

40. The storage system according to claim 39, wherein Along the extension direction of the guide rail, the edge of the guide rail is provided with a plurality of positioning holes distributed at intervals, and at least one of the two through grooves is provided with a locking pin, which can be inserted into any one of the positioning holes to position the mounting structure on the guide rail.

41. The storage system according to claim 40, wherein: The guide rails are in multiple sections, and each section of the guide rails is provided with hanging structures at both ends along its own extension direction. Two adjacent sections of the guide rails can be spliced and extended with each other through the hanging structures.

42. The storage system of claim 38, wherein: The load-bearing structure is provided with a hanging bar, and the connecting piece is provided with a clamping hook, and the clamping hook is slidably clamped on the hanging bar.

43. The storage system according to claim 37, wherein: The connecting piece is provided with a matching hole, and the connecting piece is movably sleeved on the outer periphery of the mounting structure through the matching hole.

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