Rechargeable accommodating box of intelligent glasses

By designing a nose pad placement slot and a lens storage slot in the charging case, combined with elastic clamping and magnetic positioning, the problem of the charging case not being able to accommodate glasses and lenses at the same time is solved, ensuring stable charging and convenient use.

CN224219634UActive Publication Date: 2026-05-12HUIZHOU CCA IND CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUIZHOU CCA IND CO LTD
Filing Date
2025-07-24
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing charging cases cannot accommodate both smart glasses and detachable lenses simultaneously, and the charging structure is prone to poor contact and interruptions.

Method used

A rechargeable housing for smart glasses has been designed, including a charging bracket inside the storage compartment. The bracket has a first placement slot that matches the nose pads of the smart glasses and a second placement slot for storing the lenses. It uses elastic and anti-slip components to provide stable clamping, and the clamping component has a magnetic component to achieve precise positioning. The charging pin makes vertical contact to ensure stable charging, and the charging status is displayed by an LED light-emitting element.

Benefits of technology

It achieves stable storage and charging of smart glasses and lenses, improves the contact yield of the charging structure, prevents lens scratches, provides convenient charging status display, and enhances user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of intelligent glasses, and provides a rechargeable accommodating box for intelligent glasses, the rechargeable accommodating box comprises a box body, a storage chamber is arranged in the box body, a charging support is arranged in the storage chamber, and the charging support comprises a base body mounted on one inner wall of the storage chamber and a fixing assembly mounted on the top of the base body; the fixing assembly comprises a fixing piece and a clamping piece which are arranged at an interval, the fixing piece is arranged far away from the inner wall of the storage chamber, and the clamping piece is located between the fixing piece and the inner wall of the storage chamber; a first containing groove is formed between the fixing piece and the clamping piece, and a second containing groove is formed between the clamping piece and the inner wall of the containing chamber. The top of the base body is provided with a charging part located in the first placing groove. The continuity and stability of the charging process of the intelligent glasses can be guaranteed, and the problem of simultaneous storage of the intelligent glasses and the lenses is effectively solved.
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Description

Technical Field

[0001] This utility model relates to the field of smart glasses technology, and in particular to a rechargeable housing for smart glasses. Background Technology

[0002] A charging case is a portable charging device specifically designed for smart glasses. Resembling a traditional glasses case, it contains a built-in lithium battery and typically features a Type-C interface or a wireless charging module. When out and about, smart glasses can be placed inside to charge, addressing their short battery life while also providing storage and protection, keeping the lenses clean – making it a practical accessory for smart glasses users. Currently, some smart glasses are equipped with detachable sunglasses lenses to switch between visual modes, thus expanding their usage scenarios. However, most charging cases on the market are designed only to accommodate the glasses themselves, making it impossible to simultaneously hold both smart glasses and sunglasses lenses, causing inconvenience for users. Furthermore, the charging structures of existing charging cases often use magnetic contacts, which, due to insufficient contact quality, are prone to charging interruptions, resulting in a poor user experience. Utility Model Content

[0003] This application aims to solve at least one of the above-mentioned technical defects. In view of this, this application provides a rechargeable housing for smart glasses to solve the technical defects in the prior art, such as the inability of the charging case to simultaneously accommodate the glasses and lenses, and the ease with which charging can be interrupted.

[0004] This utility model provides a rechargeable housing for smart glasses, including a housing body, a storage chamber in the housing body, a charging bracket in the storage chamber, and a base mounted on an inner wall of the storage chamber and a fixing component mounted on the top of the base.

[0005] The fixing component includes a fixing member and a clamping member spaced apart. The fixing member is disposed away from the inner wall of the storage chamber, and the clamping member is located between the fixing member and the inner wall of the storage chamber. A first placement groove is formed between the fixing member and the clamping member, and a second placement groove is formed between the clamping member and the inner wall of the storage chamber. A charging member is provided on the top of the base in the first placement groove.

[0006] The smart glasses and lenses (such as sunglasses) can be stored simultaneously in the case. The first and second placement slots formed on the charging bracket are used to hold the smart glasses and lenses, respectively. The shape of the first placement slot matches the structure of the nose pad of the smart glasses, facilitating their positioning. Simultaneously, the charging component precisely matches the charging contacts of the smart glasses in the first placement slot, achieving electrical connection. The second placement slot, through the coordinated constraint of the clamping component and an inner wall of the storage chamber, stably holds the lenses, preventing them from shifting and scratching the lens surface. Furthermore, the clamping component and the fixing component securely hold the smart glasses on both sides of the nose pad, effectively improving the placement stability of the smart glasses. Therefore, this rechargeable case not only provides continuous and stable charging for the smart glasses through the first placement slot but also allows for proper storage of the lenses using the second placement slot. By cleverly combining the first and second placement slots, the contact yield of the charging structure is effectively improved, and its storage function is expanded, achieving a dual optimization effect.

[0007] In a preferred embodiment of this invention, the fixing member includes an elastic member and an anti-slip member. The anti-slip member is installed on the top of the base, one end of the elastic member is fixed in the anti-slip member, and the other end of the elastic member is installed in the top of the base.

[0008] The elastic element and the anti-slip element are interconnected. One end of the elastic element is fixed to the top of the base, using its connection point with the base as a fulcrum. Through the elastic deformation generated when the smart glasses are placed, it works in conjunction with the clamping element to provide clamping force, thereby limiting the displacement of the smart glasses and ensuring that the charging component and the charging contacts of the smart glasses remain effectively connected. In addition, the anti-slip element provides frictional damping, further suppressing the movement of the smart glasses.

[0009] In a preferred embodiment of this invention, the clamping member includes a magnetic component.

[0010] In daily use, the detachable lenses of smart glasses usually adopt a magnetic design, which can achieve quick adsorption and precise positioning. Users can install or remove the lenses with one hand without complicated operations. Correspondingly, the clamp is equipped with a magnetic component to match the magnet on the lens to complete the adsorption and fixation, avoiding the mechanical wear problem of traditional buckles.

[0011] In a preferred embodiment of this invention, the anti-slip component has a plurality of protrusions distributed on it, and the plurality of protrusions are located in the first placement groove.

[0012] The anti-slip component features multiple regularly arranged protrusions on the inner side of the first placement slot. This design effectively reduces the gap between the anti-slip component and the clamping component, creating a compact clamping space. The protrusions also enhance the frictional resistance of the contact surface with the nose pad of the smart glasses, reducing the risk of scratches caused by displacement of the smart glasses during storage and charging.

[0013] In a preferred embodiment of this invention, the top of the base is provided with an installation groove, and the anti-slip component is inserted into the installation groove.

[0014] The mounting groove serves as a dedicated installation location for the anti-slip component. Its precise groove structure effectively limits the physical positioning of the anti-slip component. This design not only ensures the accurate positioning of the anti-slip component on the substrate but also prevents it from shifting or falling off during use, thus providing a stable foundation for the coordinated operation of the elastic and anti-slip components.

[0015] In a preferred embodiment of this invention, the charging component includes a PIN pin, a charging hole is provided at the bottom of the first placement groove, one end of the PIN pin passes through the charging hole and is disposed in the first placement groove, and the other end of the PIN pin is fixed in the top of the base.

[0016] The charging port is located at the bottom of the first placement slot, which precisely aligns the contact position of the charging PIN pin with the parking area of ​​the smart glasses' charging contacts. Furthermore, the vertical connection method, compared to lateral contact, more effectively avoids contact problems caused by angular deviations.

[0017] In a preferred embodiment of this utility model, the box body includes a flip-up portion and a storage portion connected to each other. The flip-up portion covers the storage portion, and the storage portion forms the storage chamber. A buckle assembly is installed on the flip-up portion, a through hole is provided on the storage portion, and a slot matching the buckle assembly is provided on the base. The buckle assembly passes through the through hole and is engaged in the slot.

[0018] The box is divided into two parts: a flip-up lid and a storage compartment. The flip-up lid flips over to cover the storage compartment, effectively protecting the smart glasses and lenses. A latching assembly acts as the opening and closing mechanism, precisely engaging with a slot to allow for a detachable connection between the flip-up lid and the storage compartment, greatly facilitating the storage and retrieval of the smart glasses and lenses.

[0019] In a preferred embodiment of this invention, the buckle assembly includes a light-transmitting element for engaging the card slot, an FPC cable is provided in the substrate, an LED light-emitting element is mounted on the FPC cable, and the LED light-emitting element is positioned close to the card slot.

[0020] The light-transmitting component allows visible light to pass through, and the LED light-emitting element is controlled via an FPC cable to emit light when the charging component discharges, making the light-transmitting component clearly luminous. With this design, when the rechargeable housing is charging the smart glasses, the user can visually view the charging status and obtain connection information through the light-transmitting component, making it easy to quickly determine whether the smart glasses have disconnected from charging.

[0021] In a preferred embodiment of this invention, a power switch is provided on the storage section, and the power switch is electrically connected to the FPC cable.

[0022] The power switch controls the charging function of the rechargeable storage box. When the power switch is electrically connected to the FPC cable, the charging status of the rechargeable storage box can be displayed simultaneously when charging is started, so that users can obtain connection information in a timely manner.

[0023] In a preferred embodiment of this utility model, a support base is fixed on the other inner wall of the storage chamber, and an energy storage cavity is formed between the support base and the other inner wall of the storage chamber. A battery and a controller are installed in the energy storage cavity, and the battery is electrically connected to the controller and the charging component.

[0024] The support base provides stable support when the smart glasses are placed, effectively distributing the pressure on the charging bracket. The battery is electrically connected to the controller and charging components. The controller precisely regulates the battery's output power and flexibly adjusts the discharge rate of the charging components, thereby intelligently optimizing the charging speed of the smart glasses.

[0025] As can be seen from the above technical solution, this application provides a rechargeable storage case for smart glasses. This rechargeable storage case is equipped with a storage chamber and an internal charging bracket. The charging bracket has a first placement slot and a second placement slot. The first placement slot is adapted to the nose pad structure of the smart glasses, providing stable support for the nose pad and ensuring reliable positioning of the smart glasses. It also ensures precise connection between the charging component and the charging contacts of the smart glasses. Furthermore, the second placement slot can simultaneously accommodate the smart glasses lenses within the case. Through this design, the rechargeable storage case fundamentally solves the problem of intermittent charging interruptions caused by loose connections, ensuring the continuity and stability of the charging process, and effectively solving the problem of simultaneously storing smart glasses and lenses. Attached Figure Description

[0026] Figure 1 This is a perspective view of the rechargeable housing of the smart glasses according to an embodiment of this application;

[0027] Figure 2 This is a schematic diagram of the structure of the rechargeable storage box for the smart glasses according to an embodiment of this application. Figure 1 ;

[0028] Figure 3 This is a schematic diagram of the structure of the rechargeable storage box for the smart glasses according to an embodiment of this application. Figure 2 ;

[0029] Figure 4 This is a schematic diagram of the structure of the rechargeable storage box for the smart glasses according to an embodiment of this application. Figure 3 ;

[0030] Figure 5 This is a front view of the rechargeable housing of the smart glasses according to an embodiment of this application;

[0031] Figure 6 This is a rear view of the rechargeable housing of the smart glasses according to an embodiment of this application.

[0032] Figure label:

[0033] 1. Box body; 11. Flip-up part; 12. Storage part; 13. Power switch;

[0034] 2. Charging bracket; 21. Base; 211. Mounting slot; 212. Card slot; 22. Fixing component; 221. Elastic component; 222. Anti-slip component; 2221. Protrusion; 23. Clamping component; 231. Magnetic component;

[0035] 3. First placement slot;

[0036] 4. Second placement slot;

[0037] 5. Charging component; 51. PIN pin;

[0038] 6. Buckle assembly; 61. Light-transmitting component;

[0039] 7. FPC cable; 71. LED light-emitting element;

[0040] 8. Support base. Detailed Implementation

[0041] Preferred embodiments of the present invention will now be described in more detail with reference to the accompanying drawings. While preferred embodiments of the present invention are shown in the drawings, it should be understood that the present invention may be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that the present invention will be thorough and complete, and will fully convey the scope of the present invention to those skilled in the art.

[0042] In the description of this utility model, the terms "upper", "lower", "left" and "right" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and do not require that this utility model must be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0043] Example 1

[0044] See Figure 1 , 2 As shown in Figure 4, this application provides a rechargeable housing for smart glasses, including a housing 1, a storage chamber in the housing 1, a charging bracket 2 in the storage chamber, and a base 21 installed on an inner wall of the storage chamber and a fixing component installed on the top of the base 21.

[0045] The fixing assembly includes a fixing member 22 and a clamping member 23 spaced apart. The fixing member 22 is disposed away from the inner wall of the storage chamber, and the clamping member 23 is located between the fixing member 22 and the inner wall of the storage chamber. A first placement groove 3 is formed between the fixing member 22 and the clamping member 23, and a second placement groove 4 is formed between the clamping member 23 and the inner wall of the storage chamber. A charging member 5 located in the first placement groove 3 is provided on the top of the base 21.

[0046] Specifically, the box body 1 is made of PU material and has a storage chamber for storing the glasses. The storage chamber has an inner support bracket for mounting the base 21, which serves as part of the inner wall of the storage chamber. The inner support bracket is lined with a scratch-resistant fabric to prevent wear and scratches on the smart glasses. The charging bracket 2 includes an ABS base 21 and a fixing component mounted on top of the base 21. The base 21 is curved and fits snugly against the side wall of the storage chamber. The fixing component 22 is located on one side of the top of the base 21, leaving a gap between it and the front inner wall of the storage chamber. A clamping component 23 is added in this gap. The base 21, the clamping component 23, and the front inner wall of the storage chamber together form a second, upward-facing placement groove 4 for securing the lenses. Simultaneously, the clamping component 23, the base 21, and the fixing component 22 together form a first placement groove 3. Furthermore, the charging component 5 precisely matches the charging contacts of the smart glasses to achieve electrical connection, enabling this setup to not only secure the smart glasses but also provide charging functionality. Through the above design, the rechargeable storage case can not only provide continuous and stable charging for the smart glasses through the first placement slot 3, but also properly store the lenses with the help of the second placement slot 4. By cleverly combining the first placement slot 3 and the second placement slot 4, the contact yield of the charging structure of the charging case is effectively improved, and its storage function is expanded, achieving a dual optimization effect.

[0047] See Figure 3 As shown, the fastener 22 includes an elastic member 221 and an anti-slip member 222. The anti-slip member 222 is installed on the top of the base 21. One end of the elastic member 221 is fixed in the anti-slip member 222, and the other end of the elastic member 221 is installed in the top of the base 21.

[0048] Specifically, the anti-slip component 222 wraps around one end of the elastic component 221, and this end of the elastic component 221 is hook-shaped, which increases the contact area with the anti-slip component 222 and makes the connection between the two more stable. The other end of the elastic component 221 is installed in the top of the base 21 by screws. It can use the connection between itself and the base 21 as a fulcrum to provide clamping force through the elastic deformation when the smart glasses are placed, restricting the displacement of the smart glasses and maintaining the effective connection between the charging component 5 and the charging contacts of the smart glasses; while the anti-slip component 222 provides frictional damping to further suppress the movement of the smart glasses.

[0049] See Figure 3 As shown, the clamping member 23 includes a magnetic element 231.

[0050] Specifically, in daily use, the detachable lenses of smart glasses typically employ a magnetic design, enabling rapid attachment and precise positioning. Users can install or remove the lenses with one hand without complex operations. Correspondingly, the clamp 23 incorporates magnetic components to engage with the magnets on the lenses, thus achieving magnetic fixation and effectively avoiding the mechanical wear issues associated with traditional snap-fit ​​methods. These magnetic components 231 are located at both ends of the top of the clamp 23 and are covered with silicone sleeves. The orientation of the magnetic components 231 can be adjusted according to the polarity of the magnets on the lenses to ensure secure attachment.

[0051] See Figure 3 As shown, the top of the base 21 has a mounting groove 211, and the anti-slip component 222 is inserted into the mounting groove 211.

[0052] Specifically, the mounting groove 211 is located on the side of the base 21 away from the storage chamber sidewall, and is a square groove with notches on both sides. The bottom opening of the mounting groove 211 allows one end of the elastic element 221 to extend into the base 21 for embedding. As a dedicated mounting position for the anti-slip element 222, the mounting groove 211 physically limits the anti-slip element 222 through a precise groove structure, ensuring the accurate positioning of the anti-slip element 222 on the base 21 and preventing it from shifting or falling off during use, thus providing a stable base platform for the synergistic effect of the elastic element 221 and the anti-slip element 222.

[0053] See Figure 2 As shown, the charging component 5 includes a PIN pin 51. A charging hole is provided at the bottom of the first placement groove 3. One end of the PIN pin 51 passes through the charging hole and is placed in the first placement groove 3. The other end of the PIN pin 51 is fixed in the top of the base 21.

[0054] Specifically, the charging component 5 has two vertical PIN pins 51, and two charging holes are located at the bottom of the first placement slot 3. This allows the contacts of the PIN pins 51 to be precisely aligned with the parking area of ​​the charging contacts on the smart glasses. Furthermore, the vertical connection method can better avoid poor contact caused by angular deviation. Secondly, this design allows the weight of the smart glasses to provide contact pressure between the charging component 5 and the charging contacts, maintaining a good charging connection.

[0055] See Figure 4 As shown, a support base 8 is fixed on the rear inner wall of the storage chamber, and an energy storage cavity is formed between the support base 8 and the rear inner wall of the storage chamber. A battery and a controller are installed in the energy storage cavity, and the battery is electrically connected to the controller and the charging component 5.

[0056] Specifically, the support base 8 can be a funnel-shaped ABS cover, which can support the temples when the smart glasses are placed, effectively distributing the pressure on the charging bracket 2. The support base 8 is also equipped with a scratch-resistant lining to increase scratch protection for the temples. The controller is a control motherboard. The rechargeable battery is electrically connected to the controller and the charging component 5. The controller can adjust the discharge rate of the charging component 5 by controlling the output power of the battery, thereby intelligently adjusting the charging speed of the smart glasses, making the rechargeable container intelligent.

[0057] In addition, a charging port with an embedded connector is located at the bottom of the housing 1. This connector connects directly to the battery. The battery can be charged via the electrical connection between the connector and the data cable, ensuring continuous device operation. To improve charging efficiency and safety, the charging port is designed with fast charging technology, supporting multiple charging modes to meet charging needs in different environments.

[0058] Example 2

[0059] See Figure 3 As shown, based on the above embodiment 1, this embodiment provides a rechargeable housing for smart glasses. The anti-slip part 222 has a plurality of protrusions 2221 distributed on it, and the plurality of protrusions 2221 are located in the first placement groove 3.

[0060] Specifically, the anti-slip component 222 has multiple vertically parallel protrusions 2221 arranged inside the first placement groove 3, with the protrusions 2221 spaced at equal intervals. This design effectively reduces the gap between the anti-slip component 222 and the front inner wall of the storage chamber, creating a compact clamping space. The protrusions 2221 enhance the frictional resistance of the contact surface with the nose pad of the smart glasses, reducing the risk of the smart glasses shifting and getting scratched during storage and charging. This not only improves the stability of the smart glasses during storage and charging but also makes the entire rechargeable storage box more practical.

[0061] See Figure 5As shown, the box body 1 includes a flip-up part 11 and a storage part 12 connected to each other. The flip-up part 11 covers the storage part 12, and a storage chamber is formed in the storage part 12. A buckle assembly 6 is installed on the flip-up part 11. A through hole is opened on the storage part 12. A slot 212 matching the buckle assembly 6 is opened on the base 21. The buckle assembly 6 passes through the through hole and is snapped into the slot 212.

[0062] Specifically, the flip-top 11 is the flip-top cover of the housing 1, and the storage section 12 is the structural part used to accommodate the smart glasses and lenses. The flip-top 11 can be flexibly flipped over and covers the storage section 12. The flip-top 11 and the storage section 12 are integrally formed to protect the smart glasses. Through holes are opened in the inner lining bracket and the scratch-resistant lining fabric. The buckle assembly 6 is the opening and closing switch of the housing 1. Through the engagement of the buckle assembly 6 and the slot 212, the flip-top 11 and the storage section 12 can be detachably connected, which facilitates the storage or removal of the smart glasses and lenses. The buckle assembly 6 also includes a metal ring. Two semi-circular magnets are installed in the inner lining bracket. The magnetic attraction between the magnets and the metal ring can strengthen the connection and tightness between the buckle assembly 6 and the slot 212.

[0063] See Figure 5 As shown, the snap-fit ​​assembly 6 includes a light-transmitting element 61 for snapping into the card slot 212, an FPC cable 7 is disposed in the base 21, an LED light-emitting element 71 is mounted on the FPC cable 7, and the LED light-emitting element 71 is disposed close to the card slot 212.

[0064] Specifically, the light-transmitting element 61 allows visible light to pass through, and the FPC cable 7 enables the LED light-emitting element 71 to emit light. The FPC cable 7 extends downwards along the interior of the substrate 21, and the controller is electrically connected to the FPC cable 7. Thus, the FPC cable 7 controls the LED light-emitting element 71 to emit light when the charging component 5 discharges, thereby making the light-transmitting element 61 clearly illuminate. With this design, when the rechargeable housing is charging the smart glasses, the user can visually view the charging status and obtain connection information through the light-transmitting element 61, making it easy to quickly determine whether the smart glasses are disconnected from charging.

[0065] Furthermore, the upper end of the FPC cable 7 extends upward to form an extension portion. A second LED light-emitting element is provided on the extension portion, located near the front inner wall of the storage chamber. At the corresponding position of the second LED light-emitting element, the storage portion 12 has a second through-hole, and a photosensitive film located outside the storage chamber is provided on the second through-hole. The second LED light-emitting element causes the photosensitive film to emit light, thereby more significantly alerting the user.

[0066] See Figure 6 As shown, the storage section 12 is equipped with a power switch 13, which is electrically connected to the FPC cable 7.

[0067] Specifically, the power switch 13 can be a push-button type. The power switch 13 is connected to one end of the FPC cable 7 and can simultaneously display the charging status of the rechargeable container when charging is turned on, so that the user can obtain connection information in a timely manner.

[0068] Example 3

[0069] See Figure 3 As shown, based on Embodiment 2, this embodiment provides a rechargeable housing for smart glasses, and further, the anti-slip component 222 is T-shaped.

[0070] Specifically, the horizontal structure of the T-shaped anti-slip component 222 can increase the anti-slip friction surface while maintaining the original installation connection area, and disperse the clamping stress through the larger anti-slip friction surface, making it less prone to damage and improving durability.

[0071] Furthermore, the elastic element 221 is a memory steel sheet, and the anti-slip element 222 is a silicone block.

[0072] Specifically, the memory steel sheet can return to its original shape after repeated elastic deformation, maintaining excellent elasticity. This allows the elastic element 221 to stably exert its clamping force, ensuring the smart glasses are securely stored. Furthermore, the lightweight material of the memory steel sheet does not increase the overall weight of the rechargeable case, making it more convenient for users to carry and use. Simultaneously, the memory steel sheet has good corrosion resistance, effectively resisting the effects of environmental factors such as moisture and oxidation on the rechargeable case, extending the product's lifespan. The anti-slip element 222, made of silicone, has a stable coefficient of friction, ensuring the item remains stable and reducing the occurrence of slippage on the smart glasses. Its soft material also helps prevent scratches on the nose pad structure of the smart glasses, thereby improving the user experience.

[0073] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A rechargeable housing for smart glasses, comprising a housing (1), wherein the housing (1) has a storage compartment, characterized in that: The storage compartment is provided with a charging bracket (2), which includes a base (21) installed on an inner wall of the storage compartment and a fixing component installed on the top of the base (21); The fixing assembly includes a fixing member (22) and a clamping member (23) spaced apart. The fixing member (22) is disposed away from the inner wall of the storage chamber, and the clamping member (23) is located between the fixing member (22) and the inner wall of the storage chamber. A first placement groove (3) is formed between the fixing member (22) and the clamping member (23), and a second placement groove (4) is formed between the clamping member (23) and the inner wall of the storage chamber. A charging member (5) is provided on the top of the base (21) in the first placement groove (3).

2. The rechargeable storage box according to claim 1, characterized in that: The fastener (22) includes an elastic element (221) and an anti-slip element (222). The anti-slip element (222) is installed on the top of the base (21). One end of the elastic element (221) is fixed in the anti-slip element (222), and the other end of the elastic element (221) is installed in the top of the base (21).

3. The rechargeable storage box according to claim 1, characterized in that: The clamping member (23) includes a magnetic element (231) therein.

4. The rechargeable storage box according to claim 2, characterized in that: The anti-slip component (222) has a plurality of protrusions (2221) distributed on it, and the plurality of protrusions (2221) are located in the first placement groove (3).

5. The rechargeable storage box according to claim 2, characterized in that: The top of the base (21) is provided with a mounting groove (211), and the anti-slip component (222) is inserted into the mounting groove (211).

6. The rechargeable storage box according to claim 1, characterized in that: The charging component (5) includes a PIN pin (51), and a charging hole is provided at the bottom of the first placement groove (3). One end of the PIN pin (51) passes through the charging hole and is placed in the first placement groove (3), and the other end of the PIN pin (51) is fixed in the top of the base (21).

7. The rechargeable storage box according to claim 1, characterized in that: The box body (1) includes a flip-up part (11) and a storage part (12) connected to each other. The flip-up part (11) covers the storage part (12), and the storage room is formed in the storage part (12). A buckle assembly (6) is installed on the flip-up part (11). A through hole is opened on the storage part (12). A slot (212) matching the buckle assembly (6) is opened on the base (21). The buckle assembly (6) passes through the through hole and is snapped into the slot (212).

8. The rechargeable storage box according to claim 7, characterized in that: The buckle assembly (6) includes a light-transmitting element (61) for snapping into the card slot (212). An FPC cable (7) is provided in the substrate (21). An LED light-emitting element (71) is installed on the FPC cable (7). The LED light-emitting element (71) is located close to the card slot (212).

9. The rechargeable storage box according to claim 8, characterized in that: The storage section (12) is equipped with a power switch (13), which is electrically connected to the FPC cable (7).

10. The rechargeable storage box according to claim 1, characterized in that: A support base (8) is fixed on the other inner wall of the storage chamber. An electric storage cavity is formed between the support base (8) and the other inner wall of the storage chamber. A battery and a controller are installed in the electric storage cavity. The battery is electrically connected to the controller and the charging component (5).