Accommodating mechanism, lifting handle structure and mobile energy storage equipment

By using the gap fit between the rotating part of the sleeve and the base and the cage frame, as well as the abutment protrusion limiting design, the problem of insufficient load-bearing capacity of the receiving mechanism is solved, and the stability and convenience of the handle structure are improved.

CN224249099UActive Publication Date: 2026-05-15ECOFLOW INC
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ECOFLOW INC
Filing Date
2025-04-08
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

The existing containment mechanism has insufficient load-bearing capacity, making the handle structure easily damaged in the event of a collision or fall, and the connection reliability is poor.

Method used

The structure employs a clearance fit between the rotating part of the sleeve and the base and the cage frame, combined with the design of the abutment protrusion and the limiting part, to enhance stress transmission and structural strength, and improve connection stability through integral molding and elastic structure.

Benefits of technology

It improves the load-bearing capacity and connection reliability of the containment mechanism, reduces damage from collisions or drops, and enhances the user experience and the convenience of the data cable.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of data line storage, in particular to a storage mechanism, a handle structure and mobile energy storage equipment, the storage mechanism is applied to a connector for storing a data line, the storage mechanism comprises a sleeve and a seat body, and the sleeve is provided with a first opening for the connector to insert; the seat body comprises a rotating part and a cage frame, the rotating part is rotationally matched with the end, away from the first opening, of the sleeve, the cage frame is arranged on the rotating part and located in the sleeve, the cage frame is configured to be a storage connector, the cage frame is roughly cylindrical, and at least part of the outer side wall of the cage frame is in clearance fit or makes contact with the inner side wall of the sleeve in the radial direction of the cage frame. According to the arrangement, the bearing capacity of the containing mechanism of the handle structure can be improved.
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Description

Technical Field

[0001] This application relates to the field of data cable storage technology, and in particular to a storage mechanism, a handle structure, and a mobile energy storage device. Background Technology

[0002] Portable energy storage devices such as power banks typically have a data cable. In recent years, product designs have emerged that separate the data cable from the power bank and use it as a handle structure.

[0003] In related technologies, the handle structure includes a receiving mechanism for accommodating the connectors at both ends of the data cable. The receiving mechanism typically consists of a receiving cylinder and a rotatable rotating end located at the end of the receiving cylinder. The mating structure of the receiving cylinder and the rotating end is relatively fragile, resulting in insufficient load-bearing capacity and poor reliability of the receiving mechanism. When the handle structure is subjected to collision or drop, the receiving mechanism is easily damaged. Utility Model Content

[0004] In view of this, this application provides a containment mechanism, a handle structure, and a mobile energy storage device, which can improve the load-bearing capacity of the containment mechanism with the handle structure.

[0005] In a first aspect, one embodiment of this application provides a receiving mechanism for receiving a connector of a data cable. The receiving mechanism includes a sleeve and a base. The sleeve has a first opening for inserting the connector. The base includes a rotating part and a cage. The rotating part and the end of the sleeve away from the first opening are rotatably engaged. The cage is disposed in the rotating part and located inside the sleeve. The cage is configured to receive the connector. The cage is generally cylindrical. Along the radial direction of the cage, at least a portion of the outer side wall of the cage and the inner side wall of the sleeve are in clearance engagement or contact.

[0006] By designing the base as a structure including a rotating part and a cage frame, with the cage frame located in the rotating part and inside the sleeve, and the outer side wall of the cage frame and the inner side wall of the sleeve having a clearance fit or contact, the cage frame supports the sleeve, and there is an effective stress transfer structure between the cage frame and the sleeve, thereby improving the strength and load-bearing capacity of the fit structure between the base and the sleeve, and improving the problem that the containment mechanism is easily damaged when it is subjected to collision or fall.

[0007] In at least one embodiment, the sleeve and the seat are rotated to lock or unlock the relative position of the connector and the seat.

[0008] During the use of the handle structure, when the sleeve and the base lock the connector, the data cable harness forms a loop to achieve the function of the handle structure. When the data cable needs to be used, the sleeve and the base unlock the connector so that the connector can extend out of the sleeve and connect to the electronic device to achieve the function of charging or data transmission of the electronic device.

[0009] In at least one embodiment, the outer side wall of the cage frame is provided with an abutment protrusion, and the inner side wall of the sleeve is provided with two limiting parts. The two limiting parts are arranged at intervals along the circumference of the sleeve. The abutment protrusion abuts against the inner side wall of the sleeve. When the sleeve and the seat are locked together, the abutment protrusion is limited and engaged with one of the limiting parts. When the sleeve and the seat are unlocked together, the abutment protrusion is limited and engaged with the other limiting part.

[0010] By incorporating abutment protrusions on the outer wall of the cage frame, the local thickness of the side wall can be increased, enhancing the structural strength of the cage frame. This makes the entire containment mechanism less susceptible to damage during impacts or drops. Furthermore, by setting limiting parts on the sleeve, the abutment protrusion and one limiting part engage in a locking mechanism when the sleeve and base are locked, preventing further rotation of the sleeve and cage frame. This addresses the issue of the joint easily detaching from the sleeve and cage frame when the joint is not fully locked. Conversely, when the sleeve and base are unlocked, the abutment protrusion engages with the other limiting part, preventing further rotation of the sleeve and cage frame. This addresses the issue of the joint being unable to detach from the sleeve and cage frame when the joint is not fully unlocked. The abutment protrusion and the two limiting parts allow the user to know when the lock and unlock are complete, improving the user's handling of the sleeve and base.

[0011] In at least one embodiment, the limiting part is a recessed part, the recessed part has a first curved surface recessed on the outer side wall away from the cage, the first curved surface has a main body section and two transition sections, the two transition sections are distributed on both sides of the main body section along the rotation direction of the sleeve and are respectively connected to the main body section, the transition sections are transitionally connected to the inner side wall of the sleeve, so that the abutting protrusion can be inserted into the main body section through the transition section or moved out of the main body section through the transition section.

[0012] The limiting part is set as a recessed part. When the abutting protrusion is inserted into the recessed part, the surrounding area of ​​the recessed part can limit the abutting protrusion, achieving a good limiting effect. In addition, the first curved surface of the recessed part is provided with two transition sections so that the abutting protrusion can smoothly enter into the main body section or move out of the main body section through the two transition sections.

[0013] In at least one embodiment, the abutment protrusion has a second curved surface protruding toward the inner wall of the sleeve, the second curved surface abutting against the inner wall of the sleeve.

[0014] The second curved surface has no sharp edges, which improves the problem that the sharp edges of the abutment protrusion can easily scratch the inner wall of the sleeve when the abutment protrusion contacts the inner wall of the sleeve.

[0015] In at least one embodiment, the sleeve further includes a second opening for the cage frame to enter the sleeve. The outer side wall of the cage frame is provided with a first sliding portion, and the inner side wall of the sleeve is provided with a second sliding portion. The first sliding portion and the second sliding portion are slidably connected. Along the distribution direction of the first opening and the second opening, the second sliding portion stops at the side of the first sliding portion near the second opening.

[0016] The sliding connection between the first sliding part and the second sliding part can guide the rotation of the cage frame and the sleeve, thereby improving the rotational stability of the cage frame and the sleeve. Furthermore, the second sliding part stops the first sliding part on the side near the second opening, so as to prevent the cage frame from detaching from the second opening 1 when the cage frame and the sleeve rotate, thereby improving the reliability of the rotation of the cage frame and the sleeve.

[0017] In at least one embodiment, the first sliding part is a sliding protrusion, and the second sliding part is a slide rail, with the sliding protrusion slidably connected to the slide rail; wherein the slide rail is provided with two baffles located at both ends of the slide rail to limit the movement stroke of the sliding protrusion.

[0018] The slide rail can increase the local thickness of the sleeve's side wall and act as a "reinforcing rib," thereby increasing the sleeve's structural strength. Similarly, the sliding protrusion can also increase the local thickness of the cage's side wall and act as a "reinforcing rib," thereby improving the cage's structural strength. This makes the entire housing mechanism less susceptible to damage when the handle structure is subjected to collisions or falls. The movement of the sliding protrusion is limited by two baffles to prevent it from detaching from one end of the slide rail along its length, thus improving the reliability of the connection between the sliding protrusion and the slide.

[0019] In at least one embodiment, the first sliding part is a sliding protrusion, the second sliding part is a groove, the groove depth extends radially along the sleeve, the sliding protrusion is at least partially disposed in the groove and slides along the extension direction of the groove, and the two ends of the extension direction of the groove can stop the sliding protrusion to limit the movement stroke of the sliding protrusion.

[0020] The two ends of the extended direction of the slide can stop the sliding protrusion to limit the movement of the sliding protrusion, so that the cage will not detach from the sleeve from the second opening or from one end of the slide along the length of the slide during the movement of the sliding protrusion, thus improving the reliability of the rotation of the cage and the sleeve.

[0021] In at least one embodiment, the outer side wall of the cage frame is provided with ribs. The ribs are located on the side of the cage frame near the rotating part. There are multiple ribs, which are spaced apart along the circumference of the cage frame and contact the inner side wall of the sleeve.

[0022] On the one hand, by setting multiple raised ribs, the cage can act as "reinforcing ribs" to increase its structural strength, thus making the entire housing mechanism less susceptible to damage when the handle structure is subjected to collisions or falls. On the other hand, the multiple raised ribs contact the inner wall of the sleeve, supporting the sleeve and increasing the friction between the cage and sleeve when they rotate. Appropriate friction makes the rotation of the cage and sleeve smoother, reducing excessive rotation due to inertia, which could lead to collisions in the connection structure between the cage and sleeve, causing severe wear. Understandably, the connection structure between the cage and sleeve includes the aforementioned first and second sliding parts, abutment protrusions, and two limiting parts.

[0023] In at least one embodiment, the seat includes a partition disposed within a cage and dividing the cage into two receiving areas, the two receiving areas being configured to respectively receive two connectors.

[0024] The separator allows for precise positioning of the two connectors, facilitating their quick insertion into the cage.

[0025] In at least one embodiment, the rotating part and the cage are integrally formed.

[0026] The integrated structure has no physical interruption inside, and the load is directly transmitted through the material lattice. This can improve the energy dissipation or local deformation at the connection between the rotating part and the cage, thereby improving the structural strength of the rotating part and the cage, and thus improving the problem that the containment mechanism is easily damaged when it is subjected to collision or drop.

[0027] In at least one embodiment, the cage is an elastic structure.

[0028] When the sleeve and cage are subjected to external pressure, the cage can undergo elastic deformation, thereby dispersing the stress generated when the side wall of the cage is subjected to external pressure, and improving the problem of the cage being easily damaged when it is squeezed during the collision or fall of the containment mechanism.

[0029] Secondly, embodiments of this application provide a handle structure, including a data cable and the aforementioned receiving mechanism. The data cable includes a wire harness and two connectors, which are located at both ends of the wire harness along its length and are disposed within the receiving mechanism.

[0030] By applying the aforementioned storage mechanism to the handle structure, the lifespan of the handle structure can be increased because the storage mechanism is not easily damaged. The handle structure can be connected to backpacks, handbags, or electronic devices to facilitate carrying data cables. Furthermore, by storing the two connectors of the data cable through the storage mechanism, the cable bundle is formed into a loop, which can be worn around the neck, making it easy to carry the data cable and preventing users from forgetting to bring it, thus improving user convenience.

[0031] Thirdly, embodiments of this application provide a mobile energy storage device, including a device body and the aforementioned handle structure; the receiving mechanism of the handle structure is connected to the device body.

[0032] By connecting the handle structure to the mobile energy storage device and using the storage mechanism to house the two connectors of the data cable, the cable harness is formed into a loop. The looped cable harness is easy to lift, thus making it easy to carry the mobile energy storage device. When charging the mobile energy storage device, users are less likely to forget to bring the data cable, improving the convenience of using the mobile energy storage device. Attached Figure Description

[0033] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings in the embodiments will be briefly described below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation on the scope.

[0034] Figure 1 This is a perspective view of a mobile energy storage device provided in an embodiment of this application;

[0035] Figure 2 This is a perspective view of a handle structure provided in an embodiment of this application;

[0036] Figure 3 An exploded view of a handle structure provided in an embodiment of this application;

[0037] Figure 4 A perspective view of a receiving mechanism provided in an embodiment of this application;

[0038] Figure 5 An exploded view of a containment facility provided in one embodiment of this application;

[0039] Figure 6 A cross-sectional view of a receiving mechanism provided in an embodiment of this application;

[0040] Figure 7 A first-view structural schematic diagram of the seat of a receiving mechanism provided in an embodiment of this application;

[0041] Figure 8A second-view structural schematic diagram of the base of the receiving mechanism provided in an embodiment of this application;

[0042] Figure 9 A first-view structural schematic diagram of the sleeve of a receiving mechanism provided in an embodiment of this application;

[0043] Figure 10 A second-view structural schematic diagram of the sleeve of a receiving mechanism provided in an embodiment of this application;

[0044] Figure 11 A cross-sectional view of the location of the abutment protrusion of the receiving mechanism provided in an embodiment of this application;

[0045] Figure 12 A cross-sectional view of the location of the first sliding part of the receiving mechanism provided in an embodiment of this application.

[0046] Explanation of main component symbols

[0047] 100. Containment mechanism; 200. Handle structure; 300. Mobile energy storage device; 301. Equipment body; 400. Data cable; 401. Connector; 402. Wiring harness; 403. Stop step;

[0048] 10. Sleeve; 11. Anti-slip layer; 12. Baffle;

[0049] 101. First opening; 102. Second opening; 110. Inner wall; 111. Limiting part; 112. Second sliding part; 113. Rib; 120. Outer surface; 121. First baffle section; 122. Second baffle section;

[0050] 1110. First curved surface; 1111. Main body section; 1112. Transition section;

[0051] 20. Seat; 21. Rotating part; 22. Cage frame; 23. Divider;

[0052] 210. Rotating cover; 211. Rotating handle; 220. Outer wall; 221. Abutting protrusion; 222. First sliding part; 223. Rib; 224. Inner surface; 225. Weight reduction hole; 230. Receiving area; 231. Weight reduction groove;

[0053] 2210. Second curved surface;

[0054] 30. Connecting buckle. Detailed Implementation

[0055] The technical solutions of the embodiments of this application will be described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0056] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the application.

[0057] Mobile energy storage devices (such as power banks) have charging and discharging functions. In recent years, product designs have emerged that separate the data cable from the power bank and use it as a handle structure for the power bank.

[0058] In related technologies, the handle structure includes a receiving mechanism for accommodating the connectors at both ends of the data cable. The receiving mechanism typically consists of a receiving cylinder and a rotatable end head located at the end of the receiving cylinder. Because the rotatable end head is located at the end of the receiving cylinder, the cavity of the receiving cylinder lacks an effective stress transmission structure, which makes the mating structure between the receiving cylinder and the rotatable end head relatively fragile. The receiving cylinder and the rotatable end head have insufficient load-bearing capacity and poor connection reliability. When the handle structure is subjected to collision or drop, the receiving mechanism is easily damaged.

[0059] An embodiment of this application provides a receiving mechanism, which includes a sleeve and a base. The sleeve has a first opening for inserting a connector. The base includes a rotating part and a cage. The rotating part and the end of the sleeve away from the first opening are rotatably engaged. The cage is disposed in the rotating part and located inside the sleeve. The cage is configured to accommodate the connector. The cage is generally cylindrical. Along the radial direction of the cage, at least a portion of the outer side wall of the cage and the inner side wall of the sleeve are in clearance engagement or contact.

[0060] By designing the base as a structure including a rotating part and a cage frame, with the cage frame located in the rotating part and inside the sleeve, and the outer side wall of the cage frame and the inner side wall of the sleeve having a clearance fit or contact, the cage frame supports the sleeve, and there is an effective stress transfer structure between the cage frame and the sleeve, thereby improving the strength and load-bearing capacity of the fit structure between the base and the sleeve, and improving the problem that the containment mechanism is easily damaged when it is subjected to collision or fall.

[0061] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.

[0062] Please see Figure 1 One embodiment of this application provides a housing mechanism 100, a handle structure 200, and a mobile energy storage device 300.

[0063] Please see Figure 2 and Figure 3In some embodiments, the handle structure 200 includes a receiving mechanism 100 and a data cable 400. The data cable 400 includes a wire harness 402 and two connectors 401. The two connectors 401 are located at both ends of the wire harness 402 along its length and are located inside the receiving mechanism 100.

[0064] On the one hand, the aforementioned handle structure 200 can be connected to a backpack, handbag, or electronic device to facilitate carrying the data cable 400; on the other hand, the two connectors 401 of the data cable 400 are housed in the storage mechanism 100, so that the cable bundle 402 forms a loop. The looped cable bundle 402 can be worn around the neck, thus facilitating the carrying of the data cable 400. The storage mechanism 100 can be connected to a name tag or other decorations to enhance aesthetics.

[0065] Electronic devices include mobile phones, tablets, and Bluetooth headsets (with earphone cases and handles attached to the earphone cases).

[0066] Understandably, when the handle structure 200 is connected to an electronic device, it can be connected to the electronic device through a case (such as a mobile phone case, tablet case, and headphone case).

[0067] Please see Figure 1 In some embodiments, the mobile energy storage device 300 includes a handle structure 200 and a device body 301, wherein the receiving mechanism 100 of the handle structure 200 is connected to the device body 301.

[0068] By connecting the handle structure 200 to the mobile energy storage device 300, the loop-shaped cable harness 402 is easy to lift, thus making it easy to carry the mobile energy storage device 300. When charging the mobile energy storage device 300, it is not easy to forget to carry the data cable 400, improving the convenience of users when using the mobile energy storage device 300.

[0069] For example, the mobile energy storage device 300 can be a power bank, which houses a data cable 400 adapted to the power bank through a housing mechanism 100. The data cable 400 and the housing mechanism 100 form a handle structure 200, which is connected to the power bank. Thus, by lifting the handle structure 200, it is possible to easily carry the power bank and the data cable 400.

[0070] Please see Figure 4 , Figure 5 and Figure 6In some embodiments, the receiving mechanism 100 includes a sleeve 10 and a seat 20. The sleeve 10 has a first opening 101 for inserting a connector 401. The seat 20 includes a rotating part 21 and a cage 22. The rotating part 21 and the end of the sleeve 10 away from the first opening 101 are rotatably engaged. The cage 22 is disposed in the rotating part 21 and located inside the sleeve 10. The cage 22 is configured to receive the connector 401. The cage 22 is generally cylindrical. Along the radial direction of the cage 22, at least a portion of the outer sidewall 220 of the cage 22 and the inner sidewall 110 of the sleeve 10 are clearance-fitted or in contact, so that the cage 22 supports the sleeve 10. There is an effective stress transfer structure between the cage 22 and the sleeve 10, thereby improving the strength of the fit structure between the seat 20 and the sleeve 10 and improving the problem that the receiving mechanism 100 is easily damaged when subjected to collision or drop.

[0071] The phrase "roughly cylindrical" indicates that the overall shape of the cage 22 is close to that of a cylinder, but it has some irregular or deformed structures. Specifically, an object that is "roughly cylindrical" usually has side walls and two relatively parallel end walls. The end walls are nearly circular, but their outlines are not perfectly circular. The side walls may have some curved, uneven, or irregular structures.

[0072] For example, at least a portion of the outer wall 220 of the cage 22 is wavy. When the sleeve 10 and the cage 22 are subjected to radial compressive force from the outside, the stress is dispersed in the transition area between the crests and troughs of the wave, rather than concentrated at a specific point, thereby reducing the local stress peak of the cage 22. When the rotating part 21 and the cage 22 are subjected to axial compressive force from the outside, the crests and troughs of the wave not only provide longitudinal support, but also disperse the load through the lateral deformation of the crests and troughs (i.e., the convex direction of the crests and the concave direction of the troughs), thereby dispersing the stress. It can be seen that by making the outer wall 220 of the cage 22 wavy, the problem of easy damage to the cage 22 when subjected to radial and axial compression can be improved.

[0073] Please see Figure 4 and Figure 7 In some embodiments, the rotating part 21 includes a rotating cover 210 and a rotating handle 211. The rotating cover 210 is located outside the sleeve 10 and covers the end of the sleeve 10 away from the first opening 101. The side of the rotating cover 210 near the sleeve 10 is connected to the cage frame 22. The rotating handle 211 is located on the side of the rotating cover 210 away from the sleeve 10. Since the rotating cover 210 is connected to the cage frame 22, the cage frame 22 can be rotated by operating the rotating handle 211. Furthermore, since the rotating handle 211 is located on the side of the rotating cover 210 away from the sleeve 10, it can be operated from the outside of the sleeve 10, improving the convenience of operation.

[0074] Understandably, the handle structure 200 also includes a connecting buckle 30, which is disposed on the rotating handle 211 and is configured to connect to electronic devices or decorative items.

[0075] In some embodiments, the rotating part 21 and the cage 22 are integrally formed structures. The internal structure of the integrally formed structure has no physical interruption, and the load is directly transmitted through the material lattice. This can improve the energy dissipation or local deformation at the connection between the rotating part 21 and the cage 22, thereby improving the structural strength of the rotating part 21 and the cage 22, and thus improving the problem that the housing mechanism 100 is easily damaged when subjected to collision or drop.

[0076] In some embodiments, the cage 22 is an elastic structure so that when the sleeve 10 and the cage 22 are subjected to external pressure, the cage 22 can undergo elastic deformation, thereby dispersing the stress generated when the side wall of the cage 22 is subjected to external pressure, and improving the problem that the cage 22 is easily damaged when it is squeezed during the collision or fall of the housing mechanism 100.

[0077] For example, the rotating part 21 and the cage 22 are formed into an integral structure by injection molding. The integral structure allows for no physical interruption between the rotating part 21 and the cage 22, thereby improving the structural strength of the rotating part 21 and the cage 22. The injection molding process can form an integral injection molded part (i.e., the seat 20). When the integral injection molded part (i.e., the seat 20) is squeezed by the sleeve 10, it can undergo elastic deformation, thereby dispersing the stress generated when the side wall of the cage 22 is subjected to external pressure, and improving the problem of damage caused by concentrated stress during the collision or drop of the housing mechanism 100.

[0078] Please see Figure 2 and Figure 3 In some embodiments, the outer surface 120 of the sleeve 10 is provided with an anti-slip layer 11, and the anti-slip layer 11 is provided with a plurality of anti-slip protrusions. The plurality of anti-slip protrusions are arranged at intervals around the circumference of the sleeve 10, so as to increase the friction of the outer surface of the sleeve 10 through the plurality of anti-slip protrusions, thereby facilitating the operation of the sleeve 10 to rotate.

[0079] In some embodiments, the sleeve 10 and the base 20 rotate to lock or unlock the relative position of the connector 401 and the base 20. During use of the handle structure 200, when the sleeve 10 and the base 20 lock the connector 401, the wire harness 402 of the data cable 400 forms a loop to realize the function of the handle structure 200. When the data cable 400 needs to be used, the sleeve 10 and the base 20 unlock the connector 401 so that the connector 401 can extend out of the sleeve 10 and can be connected to an electronic device to realize the function of charging or data transmission of the electronic device.

[0080] Please see Figure 4 and Figure 6 In some embodiments, the sleeve 10 is provided with a baffle 12 located at the first opening 101. At least part of the baffle 12 protrudes toward the central axis of the sleeve 10 so that the baffle 12 can move to the locking position of the stop joint 401 or the unlocking position of the avoidance joint 401 by the relative rotation of the sleeve 10 and the seat 20.

[0081] Please refer to Figure 3 and Figure 4 A stop step 403 is provided between the wire harness 402 and the connector 401. Both the connector 401 and the stop step 403 are located inside the sleeve 10. When the baffle 12 is in the locked position of stopping the connector 401, the baffle 12 and the stop step 403 are in a limiting fit to prevent the connector 401 from disengaging from the sleeve 10 through the first opening 101. When the baffle 12 is in the unlocked position of avoiding the connector 401, the baffle 12 avoids the stop step 403 so that the connector 401 can disengage from the sleeve through the first opening 101.

[0082] In some embodiments, the baffle 12 is configured as an annular baffle, which includes two first baffle segments 121 and two second baffle segments 122. The two first baffle segments 121 are arranged opposite to each other and protrude toward the central axis of the sleeve 10. The two second baffle segments 122 are arranged opposite to each other. The two ends of each first baffle segment 121 are respectively connected to the two second baffle segments 122, so as to form a first opening 101 by the two first baffle segments 121 and the two second baffle segments 122. The shape of the first opening 101 is similar to the shape of the two stacked connectors 401, so as to facilitate the positioning of the two connectors 401, so that the two connectors 401 can be quickly inserted into the sleeve 10.

[0083] Please refer to Figure 6 , Figure 11 and Figure 12 By rotating the cage frame 22, the positions of the first baffle section 121 and the second baffle section 122 are misaligned with the two connectors 401, so that the first baffle section 121 and the second baffle section 122 are stopped and limited by the stop step 403 of the two connectors 401, thereby locking the connectors 401; when it is necessary to unlock the connectors 401, by rotating the cage frame 22, the two connectors 401 are aligned with the first opening 101, so that the two connectors 401 can be pulled out from the first opening 101, thereby unlocking the two connectors 401.

[0084] In some embodiments, multiple baffles 12 are provided, and the multiple baffles 12 are divided into two groups of stop groups. The two groups of stop groups are arranged opposite to each other. Each group of stop groups has at least one baffle 12, so that when locking the connector 401, the baffle 12 of each group of stop groups is used to limit the stop step 403 between a connector 401 and a wire harness 402.

[0085] In other embodiments, a stop step 403 is provided between the wire harness 402 and the connector 401. The sleeve 10 has a stop end wall. Two first openings 101 are provided, spaced apart and located on the stop end wall. The two first openings 101 are configured to allow the wire harness 402 to pass through. The stop step 403 is located inside the sleeve 10 and engages with the stop end wall for limiting. The sleeve 10 and the seat 20 are detachably connected so that the connector 401 can be locked by locking the sleeve 10 and the seat 20, and the connector 401 can be unlocked by separating the sleeve 10 and the seat 20. After the sleeve 10 and the seat 20 unlock the connector 401, the connector 401 can be pulled out from the end of the sleeve 10 away from the first opening 101 so that the connector 401 can be connected to the electronic device. For example, the sleeve 10 and the seat 20 are connected by threads; or the sleeve 10 and the seat 20 are connected by snap-fit, so as to achieve a detachable connection between the sleeve 10 and the seat 20.

[0086] Please see Figure 6 , Figure 8 and Figure 10 In some embodiments, the outer sidewall 220 of the cage frame 22 is provided with an abutment protrusion 221, and the inner sidewall 110 of the sleeve 10 is provided with two limiting parts 111. The two limiting parts 111 are arranged at intervals along the circumference of the sleeve 10. The abutment protrusion 221 abuts against the inner sidewall 110 of the sleeve 10. When the sleeve 10 and the seat 20 lock the joint 401, the abutment protrusion 221 is limited and engaged with one limiting part 111. When the sleeve 10 and the seat 20 unlock the joint 401, the abutment protrusion 221 is limited and engaged with the other limiting part 111.

[0087] By providing abutment protrusions 221 on the outer sidewall 220 of the cage frame 22, the local thickness of the sidewall of the cage frame 22 can be increased, acting as a "reinforcing rib," thereby improving the structural strength of the cage frame 22. This makes the entire housing mechanism less susceptible to damage when the handle structure is subjected to collisions or falls. Furthermore, by providing a limiting part 111 on the sleeve 10, the abutment protrusion 221 and the limiting part 111 engage in a limiting engagement when the sleeve 10 and the base 20 lock the joint 401, preventing the sleeve 10 and the cage frame 22 from continuing to rotate. This improves the problem of the joint 401 easily detaching from the sleeve 10 and the cage frame 22 due to incomplete locking of the sleeve 10 and the base 20. When the connector 401 is unlocked, the abutment protrusion 221 engages with another limiting part 111 to prevent the sleeve 10 and the cage 22 from continuing to rotate. This improves the problem that the connector 401 cannot disengage from the sleeve 10 and the cage 22 if the sleeve 10 and the cage 22 are not fully unlocked. Furthermore, the abutment protrusion 221 and the two limiting parts 111 allow the user to know when the lock and unlock are in place, thereby improving the user's operating feel for the sleeve 10 and the base 20.

[0088] In some embodiments, two limiting portions 111 and one abutment protrusion 221 form a limiting group, and there are two limiting groups, which are arranged opposite to each other. It can be understood that the two limiting groups include a total of two abutment protrusions 221 and four limiting portions 111. By setting two limiting groups, the limiting stability of the sleeve 10 and the cage 22 can be improved.

[0089] The number of limit groups is not limited to two groups; more than two limit groups can be set according to the actual situation.

[0090] Please see Figure 8 and Figure 10 In some embodiments, the limiting part 111 is a recessed part, and the recessed part has a first curved surface 1110 recessed on the outer side wall 220 away from the cage 22. The first curved surface 1110 has a main body section 1111 and two transition sections 1112. The two transition sections 1112 are distributed on both sides of the main body section 1111 along the rotation direction of the sleeve 10 and are respectively connected to the main body section 1111. The transition sections 1112 are transitionally connected to the inner side wall 110 of the sleeve 10 so that the abutting protrusion 221 can be inserted into the main body section 1111 through the transition section 1112 or moved out of the main body section 1111 through the transition section 1112.

[0091] The limiting part 111 is set as a recessed part. When the abutting protrusion 221 is inserted into the recessed part, the surrounding area of ​​the recessed part can limit the abutting protrusion 221, thereby achieving a good limiting effect. Furthermore, the first curved surface 1110 of the recessed part is provided with two transition sections 1112, so that the abutting protrusion 221 can smoothly enter into the main body section 1111 or move out of the main body section 1111 through the two transition sections 1112.

[0092] In some embodiments, the sleeve 10 further includes a second opening 102 located at one end of the sleeve 10 away from the first opening 101 and configured for the insertion of the cage 22 of the seat 20. The length of the recess extends from the edge of the second opening 102 toward the first opening 101, so that when the cage 22 of the seat 20 is inserted into the sleeve 10 through the second opening 102 during the assembly of the seat 20 and the sleeve 10, the abutment protrusion 221 can be aligned with the recess, and the recess plays a positioning role so that the cage 22 can quickly enter the sleeve 10, thereby improving assembly efficiency.

[0093] Understandably, the curvature of the transition section 1112 is designed to ensure a smooth and continuous transition between the main body section 1111 and the other inner wall surfaces of the inner sidewall 110 of the sleeve 10.

[0094] In other embodiments, the limiting part 111 is configured as a limiting protrusion, which protrudes toward the central axis of the sleeve 10 and abuts against the protrusion 221 and the limiting protrusion stop, so as to realize the limiting cooperation between the abutting protrusion 221 and the limiting protrusion.

[0095] Please see Figure 8 and Figure 10 In some embodiments, the abutment protrusion 221 has a second curved surface 2210 protruding toward the inner sidewall 110 of the sleeve 10, the second curved surface 2210 abutting against the inner sidewall 110 of the sleeve 10.

[0096] The abutment protrusion 221 is provided with a second curved surface 2210. The structure of the second curved surface 2210 has no sharp edges, so as to improve the problem that the sharp edges of the abutment protrusion 221 can easily scratch the inner wall 110 of the sleeve 10 when the abutment protrusion 221 contacts the inner wall 110 of the sleeve 10.

[0097] Please see Figure 7 , Figure 8 and Figure 9 In some embodiments, the second opening 102 allows the cage frame 22 to enter the sleeve 10. The outer side wall 220 of the cage frame 22 is provided with a first sliding part 222, and the inner side wall 110 of the sleeve 10 is provided with a second sliding part 112. The first sliding part 222 and the second sliding part 112 are slidably connected. Along the distribution direction of the first opening 101 and the second opening 102, the second sliding part 112 stops at the side of the first sliding part 222 near the second opening 102.

[0098] The sliding connection between the first sliding part 222 and the second sliding part 112 can guide the rotation of the cage frame 22 and the sleeve 10, thereby improving the rotational stability of the cage frame 22 and the sleeve 10. Furthermore, the second sliding part 112 stops the first sliding part 222 on the side near the second opening 102, so as to prevent the cage frame 22 from disengaging from the sleeve 10 through the second opening 102 when the cage frame 22 and the sleeve 10 rotate, thereby improving the reliability of the rotation of the cage frame 22 and the sleeve 10.

[0099] In some embodiments, the first sliding part 222 is a sliding protrusion, and the second sliding part 112 is a slide rail, with the sliding protrusion slidably connected to the slide rail. The slide rail is provided with two baffles 113 located at both ends of the slide rail to limit the movement of the sliding protrusion and prevent it from detaching from one end of the slide rail along its length, thereby improving the reliability of the connection between the sliding protrusion and the slide rail. Furthermore, the slide rail can also increase the local thickness of the side wall of the sleeve 10 and act as a "reinforcing rib", thereby increasing the structural strength of the sleeve 10. Similarly, the sliding protrusion can also increase the local thickness of the side wall of the cage 22 and act as a "reinforcing rib", thereby improving the structural strength of the cage 22. This makes the entire housing mechanism less susceptible to damage when the handle structure is subjected to collisions or falls.

[0100] Understandably, the slide rail protrudes toward the central axis of the sleeve 10, and the length of the slide rail extends along the circumference of the sleeve 10, so as to guide the sleeve 10 and the seat 20 to rotate around the central axis of the sleeve 10 through the sliding fit of the slide rail and the sliding protrusion.

[0101] In other embodiments, the first sliding part 222 is a sliding protrusion, and the second sliding part 112 is a groove. The groove depth extends radially along the sleeve 10. The sliding protrusion is at least partially disposed in the groove and slides along the extension direction of the groove. The two ends of the extension direction of the groove can stop the sliding protrusion to limit the movement stroke of the sliding protrusion. During the movement of the sliding protrusion, the cage 22 will not detach from the second opening 102 and the sleeve 10, nor will it detach from one end of the groove in the length direction, thereby improving the reliability of the rotation of the cage 22 and the sleeve 10.

[0102] Understandably, depending on the actual situation, the first sliding part 222 can be configured as a sliding groove or a sliding rail with baffle 113, and the second sliding part 112 can be configured as a sliding protrusion. The specific structure is not limited to the above embodiment.

[0103] In some embodiments, the first sliding part 222 is configured as a sliding protrusion. The sliding protrusion and the abutting protrusion 221 are distributed along the insertion direction of the cage frame 22 into the sleeve 10. The sliding protrusion and the abutting protrusion 221 together act as "reinforcing ribs" to further strengthen the structural strength of the cage frame 22, so that the entire housing mechanism is not easily damaged when the handle structure is subjected to collision or drop.

[0104] Please see Figure 7 and Figure 8 In some embodiments, the outer side wall 220 of the cage frame 22 is provided with ribs 223. The ribs 223 are located on the side of the cage frame 22 near the rotating part 21. There are multiple ribs 223. The multiple ribs 223 are arranged at intervals along the circumference of the cage frame 22 and contact the inner side wall 110 of the sleeve 10.

[0105] On the one hand, by setting multiple ribs 223, they can act as "reinforcing ribs" to increase the structural strength of the cage frame 22, thereby making the entire housing mechanism less susceptible to damage when the handle structure is subjected to collisions or falls. On the other hand, the multiple ribs 223 contact the inner wall 110 of the sleeve 10, which can support the sleeve 10 and increase the friction between the cage frame 22 and the sleeve 10 when they rotate. Appropriate friction can make the rotation of the cage frame 22 and the sleeve 10 smoother, thereby reducing the problem of excessive rotation of the cage frame 22 and the sleeve 10 due to inertia, which could lead to collisions in the connection structure between the cage frame 22 and the sleeve 10, resulting in severe wear of the connection structure. Understandably, the connection structure between the cage frame 22 and the sleeve 10 includes the aforementioned first sliding part 222 and second sliding part 112, abutment protrusion 221, and two limiting parts 111.

[0106] Understandably, the first sliding part 222, the abutting protrusion 221, and the multiple ribs 223 are all integrally formed with the cage frame 22, so that there is no physical interruption between the first sliding part 222, the abutting protrusion 221, the multiple ribs 223 and the cage frame 22, thereby ensuring the structural strength of the cage frame 22; and the first sliding part 222, the abutting protrusion 221 and the multiple ribs 223 are all elastic structures, so that the first sliding part 222, the abutting protrusion 221 and the multiple ribs 223 have good elasticity.

[0107] Please see Figure 6 , Figure 7 and Figure 8 In some embodiments, the seat 20 includes a partition 23 disposed within the cage 22, dividing the cage 22 into two receiving areas 230, each configured to receive two connectors 401. The partition 23 allows for the positioning of the two connectors 401, facilitating their rapid insertion into the cage 22.

[0108] Please see Figure 6 and Figure 7 In some embodiments, the partition 23 is provided with a plurality of weight-reducing grooves 231, which are distributed on both sides of the distribution direction of the two receiving areas 230 of the partition 23, so as to reduce the weight of the seat 20 by providing a plurality of weight-reducing grooves 231.

[0109] Please see Figure 7 and Figure 8 In some embodiments, the cage frame 22 is provided with a plurality of weight-reducing holes 225, which are spaced apart along the circumference of the cage frame 22 to reduce the weight of the cage frame 22.

[0110] In some embodiments, the shape of the inner surface 224 of the cage frame 22 is similar to the shape of the two stacked connectors 401, so that the cage frame 22 can position the two connectors 401 so that the two connectors 401 can be quickly inserted into the cage frame 22.

[0111] Furthermore, those skilled in the art should recognize that the above embodiments are merely illustrative of this application and are not intended to limit this application. Any appropriate changes and variations made to the above embodiments within the essential spirit and scope of this application fall within the scope of this application's disclosure.

Claims

1. A receiving mechanism for storing the connector of a data cable, characterized in that, The containment facilities include: A sleeve having a first opening for insertion of the connector; The base includes a rotating part and a cage frame. The rotating part and the end of the sleeve away from the first opening are rotatably engaged. The cage frame is disposed in the rotating part and located inside the sleeve. The cage frame is constructed to accommodate the connector. The cage frame is generally cylindrical. Along the radial direction of the cage frame, at least a portion of the outer side wall of the cage frame and the inner side wall of the sleeve are in clearance engagement or contact.

2. The containment mechanism according to claim 1, characterized in that, The sleeve and the seat rotate to lock or unlock the relative position of the connector and the seat.

3. The containment mechanism according to claim 2, characterized in that, The outer side wall of the cage is provided with an abutting protrusion, and the inner side wall of the sleeve is provided with two limiting parts. The two limiting parts are arranged at intervals along the circumference of the sleeve. The abutting protrusion abuts against the inner side wall of the sleeve. When the sleeve and the seat lock the connector, the abutting protrusion is limited and engaged with one of the limiting parts. When the sleeve and the seat unlock the connector, the abutting protrusion is limited and engaged with the other limiting part.

4. The containment mechanism according to claim 3, characterized in that, The limiting portion is a recessed portion, which has a first curved surface recessed on the outer side wall away from the cage frame. The first curved surface has a main body section and two transition sections. The two transition sections are distributed on both sides of the main body section along the rotation direction of the sleeve and are respectively connected to the main body section. The transition sections are transitionally connected to the inner side wall of the sleeve, so that the abutting protrusion can be inserted into the main body section through the transition section or moved out of the main body section through the transition section; and / or The abutting protrusion has a second curved surface protruding toward the inner wall of the sleeve, the second curved surface abutting against the inner wall of the sleeve.

5. The containment mechanism according to claim 1, characterized in that, The sleeve also has a second opening for the cage frame to enter the sleeve. The outer side wall of the cage frame is provided with a first sliding part, and the inner side wall of the sleeve is provided with a second sliding part. The first sliding part and the second sliding part are slidably connected. Along the distribution direction of the first opening and the second opening, the second sliding part stops at the side of the first sliding part near the second opening.

6. The containment mechanism according to claim 5, characterized in that, The first sliding part is a sliding protrusion, and the second sliding part is a slide rail, with the sliding protrusion slidably connected to the slide rail; wherein the slide rail is provided with two baffles located at both ends of the slide rail to limit the movement stroke of the sliding protrusion; or The first sliding part is a sliding protrusion, and the second sliding part is a groove. The groove depth extends radially along the sleeve. The sliding protrusion is at least partially disposed within the groove and slides along the extension direction of the groove. The two ends of the groove in the extension direction can stop the sliding protrusion to limit its movement.

7. The containment mechanism according to any one of claims 1 to 6, characterized in that, The outer wall of the cage frame is provided with ribs. The ribs are located on the side of the cage frame near the rotating part. There are multiple ribs. The multiple ribs are spaced apart along the circumference of the cage frame and contact the inner wall of the sleeve.

8. The containment facility according to any one of claims 1 to 6, characterized in that, The seat includes a partition disposed within the cage and dividing the cage into two receiving areas, the two receiving areas being configured to respectively receive the two connectors.

9. The containment facility according to any one of claims 1 to 6, characterized in that, The rotating part and the cage frame are integrally formed; and / or, The cage frame is an elastic structure.

10. A handle structure, characterized in that, include: The containment facility as described in any one of claims 1 to 9; The data cable includes a wire harness and two connectors, which are located at both ends along the length of the wire harness and are housed within the receiving mechanism.

11. A mobile energy storage device, characterized in that, include: The handle structure as described in claim 10; The main body of the device, and the receiving mechanism of the handle structure are connected to the main body of the device.