Wireless charger
By designing the wireless charger as a two-part rotatable structure with multiple charging positions and decompression function, the problem of limited functionality in existing wireless chargers is solved, improving the user experience and the charger's practicality.
Patent Information
- Application Number
- CN202421647140.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-12
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-07-12
AI Technical Summary
Existing wireless chargers have limited functionality, only offering charging capabilities, resulting in a poor user experience.
Design a wireless charger. The charger body is divided into upper and lower parts. The upper part can rotate continuously through a linkage component. It is equipped with three charging positions for different electronic devices and can also be used as a decompression toy. The linkage component makes a clicking sound to enhance the decompression effect.
It enhances the functionality and practicality of the charger, provides multiple charging slots for various devices, improves the user experience, and can also be used as a phone stand to extend the charger's lifespan.
Smart Images

Figure CN223553101U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a wireless charger, which is applied in the field of electronic product charging equipment technology. Background Technology
[0002] In our daily lives, we use a large number of electronic devices, such as mobile phones, smartwatches that come with them, and wireless Bluetooth headsets. Previously, we used data cables to charge these electronic devices. However, thanks to scientific improvements, wireless magnetic induction charging technology can recharge properly configured electronic devices without the need for mechanical interconnection through electrical connectors. This significantly simplifies the recharging process and simplifies / improves the environmental sealing of electronic devices. As a result, wireless magnetic induction charging is becoming increasingly widely used in the market.
[0003] Generally speaking, there are two types of wireless chargers on the market. One type is like a power bank, which is rectangular in shape and has a side for placing electronic devices to charge. However, this type is extremely inconvenient for users to use their phones while charging. The existing chargers are based on the design of the previous type and are three-in-one wireless chargers that can charge mobile phones, watches and wireless Bluetooth headsets. Although this type of charger adds charging slots for watches and wireless Bluetooth headsets compared to the previous type, it only has the function of charging and is relatively simple. Summary of the Invention
[0004] In view of the problem that the existing wireless chargers mentioned above have limited functionality and only have a charging function, this utility model provides a wireless charger that, in addition to charging, also has a decompression function.
[0005] The technical solution adopted by this utility model to solve its technical problem is: a wireless charger, the wireless charger including a charger body and a linkage component, the charger body including an upper half and a lower half, the upper half being able to rotate continuously relative to the lower half through the linkage component.
[0006] Furthermore, the upper part can continuously rotate 360° clockwise or counterclockwise relative to the lower part via the linkage assembly.
[0007] Furthermore, the linkage assembly includes a first chassis, a second chassis, an elastic element, and a ball. The first chassis is connected to the lower half, and the second chassis is also connected to the lower half. The first chassis has a circular groove, and the sidewall of the groove has multiple concave arc surfaces that are connected to each other. The second chassis has a ring inserted into the groove and a first mounting groove. The sidewall of the ring has an opening, and the first mounting groove communicates with the opening. The elastic element is installed in the first mounting groove and is located at the opening, abutting against the ball. The ball is located within one of the concave arc surfaces. When the upper half rotates relative to the lower half, the first chassis rotates, and the ball moves within an adjacent concave arc surface.
[0008] Furthermore, multiple concave arc surfaces are connected to cover the sidewalls of the groove.
[0009] Furthermore, the lower half includes a bottom shell, a main control circuit board, and a charging interface; the upper half includes a shell and a conductive plate; the shell covers the bottom shell; the second chassis is installed inside the shell; the main control circuit board is disposed inside the bottom shell; and the charging interface is disposed on the bottom shell and electrically connected to the main control circuit board; the first chassis is disposed above the main control circuit board; the top surface of the main control circuit board facing the first chassis is provided with a charging pin assembly; the first chassis is provided with a through hole for the charging pin assembly to pass through; the second chassis has a second mounting groove on one side of the ring; the conductive plate is installed in the second mounting groove; and the charging pin assembly is electrically connected to the conductive plate.
[0010] Furthermore, the charger body is cylindrical in shape.
[0011] Furthermore, the wireless charger also includes a first support frame, and the charger body is provided with a first storage slot. The first support frame can be folded and disposed in the first storage slot. The first support frame is provided with a first magnetic induction charging position that can be used for charging mobile phones.
[0012] Furthermore, the wireless charger also includes a second support frame, and the charger body is provided with a second storage slot. The second support frame can be folded and disposed in the second storage slot. The second support frame is provided with a second magnetic induction charging position that can be used to charge the watch.
[0013] Furthermore, the wireless charger also includes a third support frame, and the charger body is provided with a third storage slot. The third support frame can be folded and disposed in the third storage slot. The third support frame is provided with a three-magnetic induction charging position that can be used to charge wireless Bluetooth headphones.
[0014] Furthermore, both the third and second storage slots are located on the side wall of the charger body, and the first storage slot is located on the top surface of the charger body.
[0015] The beneficial effects of this utility model are as follows: This utility model provides a wireless charger that, in addition to charging, also has a decompression function. By dividing the charging body into upper and lower parts, which can rotate continuously relative to each other through a linkage component, the charger can be used as a decompression toy when the user is not charging, thus increasing its functionality and practicality. The charger is equipped with three charging positions for charging three different electronic devices, thereby enhancing the user experience. The first support frame is set on the top surface to support the mobile phone, so the user can use it as a mobile phone stand. Attached Figure Description
[0016] Figure 1 This is a perspective view of the charger provided by this utility model;
[0017] Figure 2 This is a partial exploded view of the charger provided by this utility model;
[0018] Figure 3 This is an exploded view of the charger provided by this utility model;
[0019] Figure 4 This is an exploded view of the linkage component provided by this utility model;
[0020] Figure 5 This is an exploded view of the linkage component provided by this utility model. Detailed Implementation
[0021] To make the objectives, technical solutions, and effects of this utility model clearer and more explicit, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.
[0022] Please see Figure 1-5This utility model provides a wireless charger, which includes a charger body 1 and a linkage component 2. The charger body 1 includes an upper part 11 and a lower part 12. The upper part 11 can rotate continuously relative to the lower part 12 through the linkage component 2. That is, when the user manually rotates the lower part, the lower part can rotate continuously in one direction and will not fall off the upper part. When the user is not charging, it can be used as a stress-relieving toy, increasing the functionality and practicality of the charger. When the user rotates the lower part, the linkage component can emit a "click-click" stress-relieving sound and have a continuous tactile feedback when rotating. Alternatively, there may be no "click-click" stress-relieving sound, only a tactile feedback. Alternatively, the user can rotate it directly without any tactile feedback or "click-click" stress-relieving sound. In this embodiment, it is preferable that when the user rotates the lower part, the linkage component can emit a "click-click" stress-relieving sound and have a continuous tactile feedback when rotating, which improves the user's stress-relieving experience and enhances the user's overall experience.
[0023] In this embodiment, the upper half 11 can rotate continuously clockwise or counterclockwise 360° relative to the lower half 12 via the linkage component 2, which is convenient for users to handle. If it can only rotate continuously clockwise or counterclockwise 360°, users have different habits. If they twist it in the opposite direction, it is easy to damage the charger. Therefore, it is preferable that the upper half 11 can rotate continuously clockwise or counterclockwise 360° relative to the lower half 122, so that the charger is not easily damaged in either direction, and the life of the charger is longer.
[0024] In this embodiment, the linkage component 2 includes a first base 21, a second base 22, an elastic element 23, and a ball 24. The first base 21 is connected to the lower half 12, and the second base 22 is also connected to the lower half 12. The first base 21 has a circular groove 211, and the sidewall of the groove 211 has multiple concave arc surfaces 212 connected to each other. The second base 22 has a ring 221 inserted into the groove 211, and the second base 22 also has a first mounting groove 222. The sidewall of the ring 221 has an opening 223. 2. The elastic element 23 is installed in the first mounting groove 222 and connected to the opening 223. The elastic element 23 is located at the opening 223 and abuts against the ball 24. The ball 24 is located in one of the concave arc surfaces 212. When the upper half 11 rotates relative to the lower half 12, the first base 21 rotates and the ball 24 moves in the adjacent concave arc surface 212. The main purpose of this structure is that when the lower part rotates relative to the upper part, the linkage component can make a "click-click" decompression sound and there is a continuous jolt when rotating, so that the user can play with it and achieve a better decompression effect.
[0025] In this embodiment, multiple concave arc surfaces 212 are connected to the sidewalls covered with grooves 211, so that they can be continuously rotated counterclockwise or clockwise.
[0026] In this embodiment, the lower half 12 includes a bottom shell 121, a main control circuit board 122, and a charging interface 123. The upper half 11 includes a outer shell 111 and a conductive plate 112. The outer shell 111 covers the bottom shell 121. The second chassis 22 is installed inside the outer shell 111. The main control circuit board 122 is disposed inside the bottom shell 121, and the charging interface 123 is disposed on the bottom shell 121 and electrically connected to the main control circuit board 122. The first chassis 21 is disposed above the main control circuit board 122, with the top of the main control circuit board 122 facing the first chassis 21. The first base 21 has a through hole 213 for the charging pin assembly 1221 to pass through. The second base 22 has a ring 221 on one side and a second mounting groove 224 on the other side. The conductive plate 112 is installed in the second mounting groove 224 and the charging pin assembly 1221 is electrically connected to the conductive plate 112. This structure mainly solves the problem of how the lower half 12 can rotate continuously relative to the lower half when there are electrical connectors in both the upper and lower parts, and the assembly is more stable and will not damage the electrical connectors.
[0027] In this embodiment, the charger body 1 is cylindrical in shape, which makes it easier for users to handle and assemble the structure.
[0028] In this embodiment, the wireless charger also includes a first support frame 3. The charger body 1 has a first storage slot 101. The first support frame 3 can be folded and disposed within the first storage slot 101. The first support frame 3 has a first magnetic induction charging position 31 that can be used for charging mobile phones. The first support frame is preferably disposed on the top of the charger. The first support frame can support electronic products, allowing users to use the device while charging.
[0029] The first support frame includes a first connector and a first support base. One end of the first connector is movably connected to the charger body, and the first support base is movably disposed at the other end of the first connector. The first magnetic induction charging position is disposed on the first support base. In other words, since the first connector is movably connected to the charger body and the first support base is also movably connected to the first connector, the support base can be adjusted at an angle relative to the first connector, and the first connector can be adjusted at an angle relative to the charger body. This allows users to adjust the angle of the electronic device from multiple angles, increasing the user experience.
[0030] In this embodiment, the wireless charger also includes a second support frame 4. The charger body 1 is provided with a second storage slot 102. The second support frame 4 can be folded and disposed in the second storage slot 102. The second support frame 4 is provided with a second magnetic induction charging position 41 that can be used to charge a watch. The second support frame 4 is preferably disposed on the outer side of the side wall of the charger body. The second support frame can be rotated to be perpendicular to the side wall of the charger body, but is not limited to rotating to be perpendicular to the side wall of the charger body 1. It also increases the charging position, making it convenient for users to charge multiple electronic devices.
[0031] In this embodiment, the wireless charger also includes a third support frame 5. The charger body 1 is provided with a third storage slot 103. The third support frame 5 can be folded and disposed in the third storage slot 103. The third support frame 5 is provided with a three-magnetic induction charging position 51 that can be used to charge wireless Bluetooth headsets. The third support frame is preferably disposed on the outer side of the side wall of the charger body. The third support frame can be rotated to be perpendicular to the side wall of the charger body, but is not limited to rotating to be perpendicular to the side wall of the charger body 1. This makes it convenient for users to use and store the device, and also increases the number of charging positions, making it convenient for users to charge multiple electronic devices.
[0032] In summary, the wireless charger in this embodiment is a three-in-one wireless charger. When not in use, the charger can also be used as a decompression toy for users, and it can also be used as a phone stand. Overall, the wireless charger in this embodiment is highly practical and easy for users to use.
[0033] It should be understood that the application of this utility model is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.
Claims
1. A wireless charger, characterized in that, The wireless charger includes a charger body (1) and a linkage component (2). The charger body (1) includes an upper part (11) and a lower part (12). The upper part (11) can rotate relative to the lower part (12) continuously through the linkage component (2).
2. A wireless charger according to claim 1, characterized in that, The upper part (11) can rotate continuously clockwise or counterclockwise 360° relative to the lower part (12) via the linkage component (2).
3. A wireless charger according to claim 1, characterized in that, The linkage assembly (2) includes a first base (21), a second base (22), an elastic element (23), and a ball (24). The first base (21) is connected to the lower half (12), and the second base (22) is connected to the lower half (12). The first base (21) has a circular groove (211), and the sidewall of the groove (211) has multiple concave arc surfaces (212) connected to each other. The second base (22) has a ring (221) inserted into the groove (211), and the second base (22) also has a first mounting groove (22). 2) An opening (223) is provided on the side wall of the ring (221), the first mounting groove (222) is connected to the opening (223), the elastic element (23) is installed in the first mounting groove (222), the elastic element (23) is located at the opening (223), and the elastic element (23) abuts against the ball (24), and the ball (24) is located in one of the concave arc surfaces (212). When the upper half (11) rotates relative to the lower half (12), the first chassis (21) rotates, and the ball (24) moves in the adjacent concave arc surface (212).
4. A wireless charger according to claim 3, characterized in that, Multiple concave arc surfaces (212) are connected to each other and cover the sidewalls of the groove (211).
5. A wireless charger according to claim 3, characterized in that, The lower half (12) includes a bottom shell (121), a main control circuit board (122), and a charging interface (123). The upper half (11) includes a shell (111) and a conductive plate (112). The shell (111) covers the bottom shell (121). The second chassis (22) is installed inside the shell (111). The main control circuit board (122) is disposed inside the bottom shell (121), and the charging interface (123) is disposed on the bottom shell (121) and electrically connected to the main control circuit board (122). The first chassis (22) 1) The main control circuit board (122) is located above the main control circuit board (122). The main control circuit board (122) has a charging pin assembly (1221) on its top surface facing the first chassis (21). The first chassis (21) has a through hole (213) for the charging pin assembly (1221) to pass through. The second chassis (22) has a second mounting groove (224) on one side of the ring (221). The conductive plate (112) is installed in the second mounting groove (224), and the charging pin assembly (1221) is electrically connected to the conductive plate (112).
6. A wireless charger according to claim 1, characterized in that, The charger body (1) is cylindrical in shape.
7. A wireless charger according to claim 1, characterized in that, The wireless charger also includes a first support frame (3), and the charger body (1) is provided with a first storage slot (101). The first support frame (3) can be folded and disposed in the first storage slot (101). The first support frame (3) is provided with a first magnetic induction charging position (31) that can be used for charging mobile phones.
8. A wireless charger according to claim 7, characterized in that, The wireless charger also includes a second support frame (4), and the charger body (1) is provided with a second storage slot (102). The second support frame (4) can be folded and disposed in the second storage slot (102). The second support frame (4) is provided with a second magnetic induction charging position (41) that can be used to charge the watch.
9. A wireless charger according to claim 8, characterized in that, The wireless charger also includes a third support frame (5), and the charger body (1) is provided with a third storage slot (103). The third support frame (5) can be folded and disposed in the third storage slot (103). The third support frame (5) is provided with a three-magnetic induction charging position (51) that can be used for charging wireless Bluetooth headphones.
10. A wireless charger according to claim 9, characterized in that, The third storage slot (103) and the second storage slot (102) are both disposed on the side wall of the charger body (1), and the first storage slot (101) is disposed on the top surface of the charger body (1).