Support
By designing a bracket that connects the rotatable wireless charging component to the base component, the problems of users having difficulty adjusting the angle of electronic devices and the tangling of circuits are solved, thereby improving the safety of the wireless charging component and the user experience.
Patent Information
- Application Number
- CN202422910880.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2034-11-27
AI Technical Summary
Existing wireless charging devices make it difficult for users to adjust the operating or viewing angle of electronic devices, and the circuitry of wireless charging components is prone to tangling, posing a safety hazard.
Design a bracket comprising a base assembly and a wireless charging assembly, wherein the charging assembly is rotatably connected to the base assembly, allowing the wireless charging assembly to rotate circumferentially relative to the base assembly with a rotation range not exceeding 360°, and the positioning and buffering of the wireless charging assembly are achieved through a limiting structure and elastic components, and the bracket has an in-position detection function.
The wireless charging component features a rotation function, allowing users to adjust the operating or viewing angle of electronic devices, reducing circuit tangling, ensuring the safety and normal operation of the charging component, and improving the user experience.
Smart Images

Figure CN223797944U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of charging technology, and more particularly to a bracket. Background Technology
[0002] Some related technologies incorporate wireless charging transmitting coils inside the casing, allowing users to wirelessly charge electronic devices such as phones, tablets, and smartwatches simply by placing them on the outer surface of the casing. As wireless charging technology matures, users are placing higher demands on wireless charging devices. Utility Model Content
[0003] In view of this, embodiments of this application aim to provide a stand that enables wireless charging of electronic products while also allowing the wireless charging component to rotate, which helps to adjust the user's viewing angle when operating or viewing the electronic products.
[0004] To achieve the above objectives, the technical solution of this application embodiment is implemented as follows:
[0005] This application provides a bracket, including:
[0006] The base assembly has accommodating space;
[0007] A wireless charging component for wirelessly charging an electronic device, wherein a portion of the wireless charging component is disposed within the accommodating space and is rotatably connected to the base component, so that the entire wireless charging component can rotate circumferentially relative to the base component.
[0008] The rotational range of the wireless charging component relative to the base component does not exceed 360°.
[0009] In some implementations, the overall rotational travel of the wireless charging assembly relative to the base assembly does not exceed 180°.
[0010] In some embodiments, the wireless charging assembly includes a charging pad, a folding bracket, and a connector. The charging circuit is housed inside the charging pad. The connector and the charging pad are connected to opposite ends of the folding bracket. The wireless charging assembly is rotatably connected to the base assembly via the connector.
[0011] In some embodiments, the connector is disposed within the accommodating space, the base assembly has an opening communicating with the accommodating space, the wireless charging assembly includes a retracted state in which the folding bracket is received into the accommodating space through the opening, and at least a portion of the charging pad extends into the opening.
[0012] In some embodiments, the base assembly includes a housing and a support seat disposed within the housing, the housing having an opening communicating with the accommodating space, the support seat and the connecting seat both being cylindrical, the connecting seat being accommodated within the support seat and capable of circumferential rotation relative to the support seat.
[0013] In some embodiments, the support base includes a first cylindrical wall and a first bottom wall connected to each other, and the connecting base includes a second cylindrical wall and a second bottom wall connected to each other. The bottom surface of the second bottom wall has a first protruding structure, and the first bottom wall is provided with a limiting groove. The first protruding structure is disposed in the limiting groove and can rotate within the limiting groove. The rotational stroke of the first protruding structure within the limiting groove does not exceed 360°.
[0014] In some embodiments, the top of the second cylindrical wall of the connecting seat is formed with an outwardly folded first flange structure, the first flange structure being located between the top of the first cylindrical wall and the structure around the opening of the outer shell.
[0015] In some embodiments, the bracket includes a positioning detection component that is at least partially coplanar with the first protrusion, such that the first protrusion can collide with the positioning detection component when rotated to its limit position.
[0016] In some implementations, the positioning detection component includes an elastic component disposed on the bottom surface of the first bottom wall, the bottom surface of the first bottom wall having a second protruding structure;
[0017] When the first protruding structure rotates to the limit position, one end of the elastic component is used to cooperate with the first protruding structure to stop, and the other end of the elastic component is used to abut against the second protruding structure.
[0018] In some implementations, the elastic component has a protrusion on one side and a groove on one side of the first protruding structure, and when the first protruding structure rotates to the limit position, the protrusion is located in the groove.
[0019] In some embodiments, the second protruding structure forms an opening groove, the elastic component is disposed in the opening groove, the elastic component is at least partially disposed between the bottom wall of the opening groove and the first bottom wall and the elastic component is slidable within the gap, the opening of the opening groove is used for the protrusion to extend out, and when the first protruding structure rotates to the limit position, the protrusion engages with the groove.
[0020] In some embodiments, the elastic component includes a spring and a collision block, the collision block being used to collide with the first protruding structure, one end of the spring being used to abut against the collision block, and the other end of the spring being used to abut against the second protruding structure. In some embodiments, the bracket includes an elastic damping element disposed on the support base and in contact with the connecting seat, applying a damping force to the connecting seat at least during rotation of the connecting seat.
[0021] In some embodiments, the bracket includes a circuit board assembly disposed within the accommodating space and electrically connected to the wireless charging component. The bracket also includes multiple data interfaces exposed on the outer surface of the base assembly and electrically connected to the circuit board assembly.
[0022] The bracket provided in this embodiment has a space large enough to accommodate the wireless charging component, contributing to a compact structure and a clean appearance. Secondly, the bracket enables wireless charging of electronic devices via the wireless charging component, and also allows for the rotation of the component, allowing users to adjust the operating or viewing angle of the electronic device, thus increasing user comfort. Furthermore, the overall rotational range of the wireless charging component relative to the base assembly 10 does not exceed 360°, reducing the entanglement of the power supply circuitry and ensuring the circuit safety of the wireless charging component, thereby guaranteeing its normal operation and reducing safety hazards. Attached Figure Description
[0023] Figure 1 A schematic diagram of the structure of the bracket provided in an embodiment of this application at a certain angle;
[0024] Figure 2 for Figure 1 A structural diagram of the structure shown from another angle;
[0025] Figure 3 for Figure 2 A schematic diagram of the cross-section of the structure shown along the AA direction;
[0026] Figure 4 This is a schematic diagram of the structure of the bracket provided in the embodiments of this application;
[0027] Figure 5 for Figure 1 The diagram shown omits a partial structural schematic of the outer shell.
[0028] Figure 6 for Figure 5 A structural diagram of the structure shown from another angle;
[0029] Figure 7 for Figure 6 A schematic diagram of the cross-section of the structure shown along the BB direction;
[0030] Figure 8 for Figure 6 A partial structural diagram of the structure shown.
[0031] Explanation of reference numerals in the attached figures
[0032] 10. Base assembly; 11. Housing; 111. Accommodating space; 112. Opening; 12. Support seat; 121. First cylindrical wall; 122. First bottom wall; 1221. Limiting groove; 1222. First stop wall; 1223. Second stop wall; 1224. Mounting through hole; 1225. Second protruding structure; 1226. Opening groove; 20. Wireless charging assembly; 21. Charging tray; 22. Folding bracket; 221. Arm section; 23. Connecting seat; 231. Second cylindrical wall; 2311. First flange structure; 232. Second bottom wall; 2321. First protruding structure; 2322. Groove; 30. Elastic damping element; 40. Elastic component; 41. Protrusion; 42. Collision block; 43. Spring; 50. Data interface; 60. Circuit board assembly; 70. Connecting wire; 80. Snap-fit part. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.
[0034] The specific technical features described in the specific embodiments can be combined in any suitable manner without contradiction. For example, different combinations of specific technical features can form different embodiments and technical solutions. To avoid unnecessary repetition, the various possible combinations of the specific technical features in this application will not be described separately.
[0035] In the following description, the terms "first," "second," etc., are used merely to distinguish different objects and do not indicate that the objects have the sameness or relationship. It should be understood that the directional descriptions "above," "below," "outside," and "inside" refer to the orientation under normal use conditions, while "left" and "right" refer to the left and right directions shown in the corresponding diagrams, which may or may not be the left and right directions under normal use conditions.
[0036] It should be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Unless otherwise specified, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. "A plurality of" means two or more.
[0037] Please refer to Figures 1 to 8 This application provides a bracket, including a base assembly 10 and a wireless charging assembly 20.
[0038] The base assembly 10 has a receiving space 111, that is, the base assembly 10 provides at least a receiving space 111 for accommodating the relevant components.
[0039] A portion of the wireless charging component 20 is housed within the receiving space 111. That is, the receiving space 111 can at least accommodate the wireless charging component 20, thereby contributing to a compact structure and a clean appearance of the stand.
[0040] In some embodiments, the wireless charging component 20 is rotatably connected to the base component 10, allowing the entire wireless charging component 20 to rotate circumferentially relative to the base component 10. In other words, the entire wireless charging component 20 can rotate circumferentially relative to the base component, facilitating circumferential adjustment of the rotation angle of the wireless charging component 20 by the user, thereby adjusting the rotation angle of the electronic device on the wireless charging component 20. This improves the user's viewing experience and enhances product comfort.
[0041] In some embodiments, the overall circumferential rotation of the wireless charging component 20 relative to the base component 10 does not exceed 360°. Therefore, the fact that the overall circumferential rotation of the wireless charging component 20 relative to the base component 10 in this embodiment of the application does not exceed 360° can reduce the entanglement of the circuit supplying power to the wireless charging component 20, which helps to ensure the circuit safety of the wireless charging component 20, thereby helping to ensure the normal operation of the wireless charging component 20 and reduce safety hazards.
[0042] In some embodiments, the overall circumferential rotation of the wireless charging component 20 relative to the base component 10 does not exceed 180°. By controlling the overall circumferential rotation angle of the wireless charging component 20 to within 180°, the possibility of circuit entanglement is further reduced, and the overall rotation angle of the wireless charging component 20 is ensured to meet the user's adjustment needs as much as possible.
[0043] For example, please refer to Figure 3 The wireless charging assembly 20 includes a charging pad 21, a folding bracket 22, and a connector 23. Electronic devices are placed on the charging pad 21 to achieve wireless charging.
[0044] It is understandable that electronic devices can be placed in the charging tray 21 in various ways. For example, a magnetic element can be provided in the charging tray 21 to fix the electronic device using magnetic attraction. Alternatively, a support or clamping part can be provided in the charging tray 21 to hold the electronic device.
[0045] In this embodiment, the connecting base 23 and the charging pad 21 are connected to opposite ends of the folding bracket 22. Thus, the wireless charging component 20 can be stored or unfolded by folding and unfolding the folding bracket 22.
[0046] In this embodiment, the wireless charging component 20 is rotatably connected to the base component 10 via the connecting seat 23. That is, when the connecting seat 23 rotates, it drives the folding bracket 22 and the charging pad 21 to rotate, thereby realizing the overall rotation of the wireless charging component 20.
[0047] It is understandable that there are multiple ways to achieve folding of the folding bracket 22. For example, the folding bracket 22 can be designed as a telescopic rod to achieve telescopic folding.
[0048] For example, in some embodiments, the folding support 22 includes at least one arm segment 221.
[0049] Please see Figure 3 The folding bracket 22 includes an arm section 221, one end of which is rotatably connected to the connecting seat 23, so that the arm section 221 can rotate around the rotation axis that connects the arm section 221 and the connecting seat 23, thereby driving the charging plate part 21 away from or closer to the connecting seat 223, that is, the distance between the charging plate part 21 and the connecting seat 23 can be adjusted.
[0050] In this embodiment, the charging disk 21 is rotatably connected to the other end of the arm 221, so that the charging disk 21 can rotate around the rotation axis that connects the charging disk 21 and the arm 221. This makes it easy for the charging disk 21 to move closer to or further away from the arm 221, and also makes it easy to adjust the tilt angle of the charging disk 21, thereby making it easy to adjust the tilt angle of the electronic device for user use.
[0051] It should be noted that the rotation axis of the arm section 221 rotatably connected to the connecting seat 23 and the rotation axis of the charging plate part 21 rotatably connected to the arm section 221 are parallel to each other, and the rotation axis of the arm section 221 rotatably connected to the connecting seat 23 and the rotation axis of the wireless charging component 20 as a whole relative to the base component 10 are perpendicular to each other.
[0052] Understandably, in order to position the boom 221 at a certain angle during rotation, one end of the boom 221 can be damped and rotatably connected to the connecting seat 23, or a limiting pin can be provided at one end of the boom 221. Similarly, in order to position the charging plate 21 at a certain angle during rotation, one end of the charging plate 21 can be damped and rotatably connected to the boom 221, or a limiting pin can be provided at the other end of the boom 221.
[0053] Exemplarily, in other embodiments, the folding bracket 22 may include at least two arm segments 221. All arm segments 221 are connected sequentially, and adjacent arm segments 221 are rotatably connected. Arm segments 221 are rotatably connected to the connecting seat 23, and arm segments 221 are rotatably connected to the charging pad portion 21. In this embodiment, the rotation axes of the arm segments 221 rotatably connected to the connecting seat 221, the rotation axes of the charging pad portion 21 rotatably connected to the arm segments 221, and the rotation axes of adjacent arm segments 221 rotatably connected are all parallel to each other, and the rotation axis of the arm segments 221 rotatably connected to the connecting seat 221 and the rotation axis of the wireless charging assembly 20 as a whole relative to the base assembly 10 are perpendicular to each other.
[0054] In other words, the entire wireless charging component 20 can rotate around the circumference of the base component 10, allowing the charging pad 21 to rotate around the rotation axis of the entire wireless charging component 20 relative to the base component 10. The arm segment 221 is rotatably connected to the connecting seat 23, which allows for adjustment of the distance between the charging pad 21 and the connecting seat 23. The arm segment 221 is rotatably connected to the charging pad 21, which allows for adjustment of the tilt angle of the charging pad 21. In other words, the user can adjust the position and tilt angle of the charging pad 21 so that when the electronic device is wirelessly charged using the bracket provided in this embodiment, it can be adjusted to an angle that is convenient for the user to operate and use, thereby improving the user's product comfort.
[0055] For example, in some embodiments, the axis of rotation of the wireless charging assembly 20 relative to the base assembly 10 is vertical, thus enabling the charging pad 21 to rotate circumferentially in the horizontal plane. At this time, the axis of rotation of the arm segment 221 and the connecting seat 221 is horizontal, which also allows the charging pad 21 to be adjusted vertically relative to the connecting seat 23, as well as to adjust the tilt angle of the charging pad 21.
[0056] In some embodiments, the connector 23 is disposed within the accommodating space 111, the base 10 assembly has an opening 112 communicating with the accommodating space 111, and the wireless charging assembly 20 is in a retracted state. (See also...) Figure 3In the stowed state, the folding stand 22 is received into the accommodating space 111 through the opening 112, and at least a portion of the charging pad 21 extends into the opening. That is to say, when the wireless charging component 20 is in the stowed state, the accommodating space 111 can accommodate the connector 23, the folding stand 22, and at least a portion of the charging pad 21. In other words, the wireless charging component 20 can be accommodated in the accommodating space 111, which helps to achieve a compact overall structure of the stand, a neat overall appearance of the stand, and easy portability.
[0057] In some embodiments, such as Figure 3 As shown, the base assembly 10 includes a housing 11 and a support 12 disposed within the housing 11. The housing 11 has an opening 112 communicating with the accommodating space 111. Both the support 12 and the connecting seat 23 are cylindrical. The connecting seat 23 is housed within the support 12 and can rotate circumferentially relative to the support 12. By making both the support 12 and the connecting seat 23 cylindrical, it is convenient for the connecting seat 23 to rotate within the support 12. Furthermore, the cylindrical structure of the support 12 can reduce the offset or wobbling of the connecting seat 23 during rotation.
[0058] It is understood that the accommodating space 111 of the base assembly 10 is the accommodating space 111 of the outer shell 11.
[0059] For example, please refer to Figure 3 The support base 12 includes a first cylindrical wall 121 and a first bottom wall 122 connected to each other. The connecting base 23 includes a second cylindrical wall 231 and a second bottom wall 232 connected to each other. The bottom surface of the second bottom wall 232 has a first protruding structure 2321. The first bottom wall 122 is provided with a limiting groove 1221. The first protruding structure 2321 is disposed in the limiting groove 1221 and can rotate within the limiting groove 1221. The rotational stroke of the first protruding structure 2321 within the limiting groove 1221 does not exceed 360°. On the one hand, the first bottom wall 122 can provide support for the second bottom wall 232, and on the other hand, the limiting groove 1221 can limit the rotation of the first protruding structure 2321. The circumferential rotational stroke of the first protruding structure 2321 within the limiting groove 1221 is used to limit the overall circumferential rotational stroke of the wireless charging component 20 relative to the base component 10.
[0060] It is understandable that there are multiple ways to limit the rotation of the first protruding structure 2321. For example, a protruding part protruding towards the inside of the limiting groove 1221 can be provided on the groove wall of the limiting groove 1221, or an upward protruding part can be provided on the bottom wall of the limiting groove 1221.
[0061] For example, in some embodiments, such as Figure 8As shown, the first base 12 includes a first stop wall 1222 and a second stop wall 1223. Both the first stop wall 1222 and the second stop wall 1223 extend along the bottom wall of the self-limiting groove 1221 toward the second bottom wall 232. The first stop wall 1222 is used to contact the first protruding structure 2321, and the second stop wall 1223 is used to contact the first protruding structure 2321.
[0062] Understandably, the angle between the first stop wall 1222 and the second stop wall 1223 can be determined based on the rotational stroke of the first protruding structure 2321. For example, if the circumferential rotational stroke of the first protruding structure 2321 within the limiting groove 1221 is 360°, then the first stop wall 1222 should coincide with the second stop wall 1223. Alternatively, if the circumferential rotational stroke of the first protruding structure 2321 within the limiting groove 1221 is 180°, then the angle between the first stop wall 1222 and the second stop wall 1223 is 180°.
[0063] In some embodiments, the top of the second cylindrical wall 231 of the connecting seat 23 is formed with an outwardly folded first flange structure 2311, which is located between the top of the first cylindrical wall 121 and the structure around the opening of the outer shell 11. The top of the first cylindrical wall 121 and the structure around the opening of the outer shell 11 limit the first flange structure 2311, thereby limiting the second cylindrical wall 231. During the rotation of the second cylindrical wall 231, this helps to reduce the contact between the second cylindrical wall 231 and the first cylindrical wall 121, thereby reducing the friction between the second cylindrical wall 231 and the first cylindrical wall 121, and also helps to reduce the collision between the first cylindrical wall 121 and the second cylindrical wall 231.
[0064] In some embodiments, the bracket includes an elastic damping element 30, which is disposed on the support base 12 and contacts the connecting base 23, applying a damping force to the connecting base 23 at least during its rotation. This arrangement serves two purposes: firstly, the elastic damping element 30 controls the damping force during the rotation of the connecting base 23; secondly, the contact between the elastic damping element 30 and the connecting base 23 achieves a sense of friction.
[0065] It is understood that in some embodiments, the elastic damping element 30 may be disposed on the inner wall of the first cylindrical wall 121 or the outer wall of the second cylindrical wall 231, which, while providing damping force, also helps to reduce the collision between the first cylindrical wall 121 and the second cylindrical wall 231.
[0066] For example, in some embodiments, the elastic damping member 30 is disposed on the lower surface of the first bottom wall 122, the first bottom wall 122 is provided with a mounting through hole 1224, and the elastic damping member 30 has an elastic protrusion that passes through the mounting through hole 1224 from the lower surface of the first bottom wall 122 and contacts the lower surface of the second bottom wall 232. This arrangement helps to reduce the contact and collision between the second bottom wall 232 and the first bottom wall 122, and also facilitates the fixing of the elastic damping member 30 on the lower surface of the first bottom wall 122.
[0067] For example, such as Figure 8 As shown, the bracket includes multiple snap-fit portions 80, which are disposed on the lower surface of the first bottom wall 122, and each snap-fit portion 80 has a snap-fit groove. Figure 3 As shown, the sidewall of the elastic damping member 30 is located within the snap-fit groove. Multiple snap-fit parts 80 are used to fix the elastic damping member 30.
[0068] In some embodiments, the bracket includes a positioning detection component that is at least partially coplanar with the first protrusion 2321, such that the first protrusion 2321 can collide with the positioning detection component when rotated to its limit position. That is, when the first protrusion 2321 rotates to its limit position, the collision with the positioning detection component will produce a sound to alert the user, thus minimizing the risk of the user forcefully rotating the wireless charging assembly 20 and damaging it.
[0069] For example, the positioning detection component includes a resilient component 40, such as Figure 8 As shown, the elastic component 40 is disposed on the surface of the first bottom wall 122. The bottom surface of the first bottom wall 122 has a second protruding structure 1225. The positioning detection component includes the elastic component 40. When the first protruding structure rotates to the limit position, one end of the elastic component 40 is used to cooperate with the first protruding structure 2321 to stop, and the other end of the elastic component 40 is used to abut against the second protruding structure 1225.
[0070] In this embodiment, when the first protruding structure 2321 rotates to its limit position, it collides with one end of the elastic component 40, causing the first protruding structure 2321 to compress the elastic component 40. The other end of the elastic component 40 compresses the second protruding structure 1225, and the elastic component 40 compresses and stores energy. The elastic component 40 acts as a buffer to minimize the risk of excessive force during rotation, preventing the first protruding structure 2321 from directly colliding with the first bottom wall 122 or one end of the elastic component 40. Furthermore, when the first protruding structure 2321 leaves its limit position, the elastic component 40 can reset by releasing the stored energy, thus providing a reminder when the first protruding structure 2321 rotates to its limit position again.
[0071] For example, one side of the elastic component 40 is provided with a protrusion 41, and one side of the first protruding structure 2321 is provided with a groove 2322. When the first protruding structure 2321 is rotated to its limit position, the protrusion 41 is located in the groove 2322. In this way, when the first protruding structure 2321 is rotated to its limit position, it can cooperate with the elastic component 40, and it is also convenient for the first protruding structure 2321 to collide with the protrusion 41 to generate a collision sound to remind the user.
[0072] In some embodiments, the second protruding structure 1225 forms an opening groove 1226, and the elastic component 40 is disposed within the opening groove 1226. The elastic component 40 is at least partially located between the bottom wall of the opening groove 1226 and the gap between the first bottom wall 122, and the elastic component 40 is slidable within the gap. The opening of the opening groove 1226 is used for the protrusion 41 to extend out. When the first protruding structure 2321 rotates to its limit position, the protrusion 41 engages with the groove 2322. That is, the gap between the bottom wall of the opening groove 1226 and the first bottom wall 122 can limit the elastic component 40 in the extending direction of the first cylindrical wall 121, that is, it can prevent the elastic component 40 from detaching from the first bottom wall 122 during compression and elongation as much as possible. For example, please refer to Figure 8 The elastic component 40 includes a spring 43 and a collision block 42. The collision block 42 is used to collide with the first protruding structure 2321. One end of the spring 43 is used to abut against the collision block 42, and the other end of the spring 43 is used to abut against the second protruding structure 1225. That is, when the first protruding structure 2321 rotates to its limit position, the first protruding structure 2321 collides with the collision block 42, and the collision block 42 compresses the spring 43. The collision block 42 is used to collide with the first protruding structure 2321 to generate sound, and the spring 43 plays a buffering role. When the first protruding structure 2321 leaves the limit position, the spring 43 drives the collision block 40 to reset, so as to provide a reminder when the first protruding structure 2321 rotates to the limit position again.
[0073] It is understandable that protrusion 41 is located on collision block 42.
[0074] Please see Figure 8 In an embodiment where the circumferential rotation stroke of the first protruding structure 2321 within the limiting groove 1221 is 180°, the included angle between the first stop wall 1222 and the second stop wall 1223 is 180°. At this time, there are two positioning detection components, respectively located on the first stop wall 1222 and the second stop wall 1223, and the protrusions 41 of the elastic component 40 protrude from the first stop wall 1222 and the second stop wall 1223, so that the first protruding structure 2321 can collide with the protrusions 41.
[0075] Understandably, at this time, both sides of the protrusion 41 are provided with grooves 2322 to cooperate with the two protrusions 41 respectively.
[0076] Understandably, in other embodiments, the bracket includes a control module and a prompting element. The first protruding structure 2321 is used to trigger the positioning detection component when rotated to the limit position. The control module controls the prompting element to output prompting information based on the positioning detection component. This configuration reminds the user through prompting information, minimizing the risk of the user forcefully rotating the wireless charging component 20 and damaging it.
[0077] It is understood that the prompting device can be a speaker, a buzzer, or a vibration motor, etc. This application embodiment does not limit the type of prompting device, as long as it can serve as a prompt to the user.
[0078] For example, the positioning detection component includes an elastic component 40 and a pressure sensor. One end of the elastic component 40 is used to engage with a stop of a first protrusion 2321 rotated to its limit position. The elastic component 40 is used to transmit the force of the first protrusion 2321 to the pressure sensor.
[0079] In this embodiment, when the first protruding structure 2321 rotates to its limit position, it compresses the elastic component 40. The other end of the elastic component 40 compresses the pressure sensor, and the elastic component 40 compresses and stores energy. The control module receives the pressure signal from the pressure sensor and controls the prompting element to output a prompt message. When the first protruding structure 2321 moves away from its limit position, the elastic component 40 releases the stored energy and resets. In this embodiment, the elastic component 40 can withstand the compression of the first protruding structure 2321 and transmit the pressure to the pressure sensor. It also provides a buffering effect to minimize the risk of the first protruding structure 2321 directly compressing the pressure sensor and damaging it. Furthermore, when the first protruding structure 2321 moves away from its limit position, the elastic component 40 can reset by releasing the stored energy, so as to provide a reminder the next time the first protruding structure 2321 rotates to its limit position.
[0080] In some embodiments, such as Figure 7 and Figure 8 As shown, the bottom wall of the limiting groove 1221 is provided with a limiting through hole. The positioning detection component is disposed on the lower surface of the first bottom wall 122. The first protruding structure 2321 passes through the limiting through hole, and when the first protruding structure 2321 rotates to the limit position, it can contact the positioning detection component. In this way, it is convenient to install the positioning detection component on the lower surface of the first bottom wall 122, and the positioning detection component can be triggered at the limit position simply by the first protruding structure 2321 passing through the limiting through hole.
[0081] In some embodiments, such as Figure 5 and Figure 6As shown, the stand includes a circuit board assembly 60. The circuit board assembly 60 is disposed within the accommodating space 111 and is electrically connected to the wireless charging component. The stand includes multiple data interfaces 50, which are exposed on the outer surface of the base assembly 10 and electrically connected to the circuit board assembly 60. That is, the stand provided in this embodiment not only has wireless charging functionality but also a docking station function. The circuit board assembly 60 is connected to the wireless charging component circuit 20, allowing an external power source to provide power to the wireless charging component 20 through the circuit board assembly 60. Furthermore, the circuit board assembly 60 being disposed within the accommodating space 111 helps to make the stand structure compact and easy to carry, and also helps to make the overall appearance of the stand neat, thus improving user comfort.
[0082] It is understandable that multiple data interfaces 50 are exposed on the outer surface of the base assembly 10, that is, multiple data interfaces 50 are exposed on the outer surface of the housing 10.
[0083] It is understandable that the multiple data interfaces 50 can be any one or any combination of USB, Type-C, HDMI, DP, RJ45, and Type PD.
[0084] In some embodiments, the circuit board assembly 60 is located on the side of the support base 12 away from the charging pad portion 21. This arrangement helps to distinguish between the wireless charging function and the docking station function, ensuring that the wireless charging function and the docking station function do not interfere with each other and can be used simultaneously.
[0085] In some embodiments, the bracket includes a connecting cable 70, which is electrically connected to the circuit board assembly 60. In this case, the connecting cable 70 can connect to an external electronic device. The connecting cable 70 can transmit not only data but also power and other signals. The data signals transmitted by the connecting cable 70 can be transmitted to the circuit board assembly 60, which then transmits them to other devices connected to the data interface 50 via the data interface 50. The power transmitted by the connecting cable 70 can be transmitted to the charging pad 21 via the circuit board assembly 60.
[0086] In the description of this application, the terms "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of the embodiments of this application. In this application, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Furthermore, without contradiction, those skilled in the art can combine different embodiments or examples described in this application, as well as features of different embodiments or examples.
[0087] The above are merely preferred embodiments of this application and are not intended to limit the scope of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application.
Claims
1. A stent, characterized by, The application relates to a wireless charging base, comprising: a base assembly having a containing space; a wireless charging assembly for wirelessly charging an electronic device, at least a part of the wireless charging assembly being arranged in the containing space and being rotationally connected with the base assembly so that the whole wireless charging assembly can rotate circumferentially relative to the base assembly; wherein the rotation stroke of the whole wireless charging assembly relative to the base assembly is no more than 360 degrees; the wireless charging assembly comprises a charging disc part, a folding support and a connecting seat, the connecting seat and the charging disc part being connected to opposite ends of the folding support, and the wireless charging assembly being rotationally connected with the base assembly through the connecting seat.
2. The stent of claim 1, wherein The circumferential rotation stroke of the whole wireless charging assembly relative to the base assembly is no more than 180 degrees.
3. The stent of claim 1, wherein The connecting seat is arranged in the containing space, the base assembly has an opening communicating with the containing space, and the wireless charging assembly comprises a storage state in which the folding support is stored into the containing space through the opening and at least a part of the charging disc part extends into the opening.
4. The stent of claim 1, wherein The base assembly comprises a shell and a supporting seat arranged in the shell, the shell has an opening communicating with the containing space, the supporting seat and the connecting seat are both in a cylindrical shape, the connecting seat is arranged in the supporting seat and can rotate circumferentially relative to the supporting seat.
5. The stent of claim 4, wherein, The supporting seat comprises a first cylindrical wall and a first bottom wall connected with each other, the connecting seat comprises a second cylindrical wall and a second bottom wall connected with each other, the bottom surface of the second bottom wall has a first protruding structure, the first bottom wall is provided with a limiting groove, the first protruding structure is arranged in the limiting groove and can rotate in the limiting groove, and the rotation stroke of the first protruding structure in the limiting groove is no more than 360 degrees.
6. The stent defined in Claim 5, wherein, The top of the second cylindrical wall of the connecting seat is formed with a first flange structure which is outwardly folded, and the first flange structure is located between the top of the first cylindrical wall and the structure around the opening of the shell.
7. The stent defined in Claim 5, wherein, The support comprises at least one in-place detection assembly, the in-place detection assembly is at least partially coplanar with the first protruding structure, so that the first protruding structure can collide with the in-place detection assembly when the first protruding structure rotates to the limit position.
8. The stent defined in Claim 7, wherein, The in-place detection assembly comprises an elastic assembly, the elastic assembly is arranged on the bottom surface of the first bottom wall, and the bottom surface of the first bottom wall has a second protruding structure; when the first protruding structure rotates to the limit position, one end of the elastic assembly is used for abutting against the first protruding structure, and the other end of the elastic assembly is used for abutting against the second protruding structure.
9. The stent defined in Claim 8, wherein, One side of the elastic assembly is provided with a protrusion, one side of the first protruding structure which abuts against the elastic assembly is provided with a groove, and when the first protruding structure rotates to the limit position, the protrusion is located in the groove.
10. The stent of claim 9, wherein, The second protruding structure is formed with an open slot, the elastic component is arranged in the open slot, the elastic component is at least partially arranged between the gap between the bottom wall of the open slot and the first bottom wall, and the elastic component is slidable in the gap, and the opening of the open slot is used for the protrusion to extend out, and when the first protruding structure rotates to the limit position, the protrusion is matched with the groove.
11. The stent defined in Claim 8, wherein, The elastic component includes a spring and a collision block, the collision block is used for colliding with the first protruding structure, one end of the spring is used for abutting against the collision block, and the other end of the spring is used for abutting against the second protruding structure.
12. The stent defined in Claim 4, wherein, The support includes an elastic damping member, the elastic damping member is arranged in the support seat, and the elastic damping member is in contact with the connecting seat. At least in the process of rotating the connecting seat, the elastic damping member exerts a damping force on the connecting seat.
13. The stent defined in any one of claims 1-12, wherein, The support includes a circuit board group, the circuit board group is arranged in the accommodation space, the circuit board group is in circuit connection with the wireless charging assembly, the support includes a plurality of data interfaces, the plurality of data interfaces are exposed on the outer surface of the base assembly and are in circuit connection with the circuit board group.