All-in-one all-electric wireless charger
By introducing the first and second driving components into the all-in-one all-electric wireless charging, the height and angle adjustment of the rotary charging base is achieved, and the problem of restricted rotation in the prior art is solved, and the applicability and user experience of the equipment are improved.
Patent Information
- Application Number
- CN202520678459.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2035-04-11
AI Technical Summary
The existing all-in-one all-electric wireless charging has limited rotation and cannot meet the user's usage needs.
An all-in-one fully electric wireless charging is designed, including a charging base, a first drive assembly, a rotary charging base, and a second drive assembly. The first driving assembly drives the rotating body to rotate within a predetermined angle so that the charging body selectively approaches or distances from the charging base. The second driving component drives the charging body to rotate about the central axis of the rotating charging base to adjust the height and angle of the charging body.
Through height and angle adjustment, the charging body can be in a suitable position to meet users' usage needs in different scenarios, improve the applicability of all-in-one all-electric wireless charging, and simplify user operations.
Smart Images

Figure CN222884380U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of all-in-one full-electric wireless charger, and in particular to an all-in-one full-electric wireless charger. Background Art
[0002] The all-in-one all-electric wireless charger is a device that uses the principles of electromagnetic induction, magnetic resonance or electric field coupling to achieve wireless transmission of electrical energy. The all-in-one all-electric wireless charger does not require a cable connection. It can transmit electrical energy from the all-in-one all-electric wireless charger to electronic devices through electromagnetic wave propagation, thereby achieving wireless charging and improving the convenience of charging electronic devices.
[0003] However, the rotation of the all-in-one all-electric wireless charger in the related art is limited and cannot meet the usage needs of users. Utility Model Content
[0004] The embodiment of the utility model proposes an all-in-one all-electric wireless charger to improve the above technical problems.
[0005] The implementation method of the utility model achieves the above-mentioned purpose through the following technical solutions.
[0006] The utility model provides an all-in-one all-electric wireless charger, which includes a charging base, a first drive assembly, a rotating charging base, and a second drive assembly. The first drive assembly is installed on the charging base. The rotating charging base includes a charging body and a rotating body connected to each other. The rotating body is located between the charging base and the charging body. The first drive assembly is connected to the rotating body in a transmission manner. The first drive assembly is suitable for driving the rotating body to rotate within a predetermined angle so that the charging body selectively approaches or moves away from the charging base. The second drive assembly is installed on the rotating body and is connected to the charging body in a transmission manner. The second drive assembly is suitable for driving the charging body to rotate around the central axis of the rotating charging base.
[0007] In some embodiments, the first drive assembly includes a first driving member and a first active member, the driving shaft of the first driving member is connected to the first active member, the first active member is provided with a first active tooth portion, and a first driven tooth portion is provided on the side of the rotating body facing the charging base, and the first driven tooth portion is engaged with the first active tooth portion.
[0008] In some embodiments, the all-in-one all-electric wireless charger also includes a magnetic component and a limit component. The magnetic component is installed on the side of the rotating body facing the charging base, and the limit component is installed on the side of the charging base facing the rotating body. The magnetic component and the limit component cooperate in a limited manner.
[0009] In some embodiments, the limit member includes a first Hall ligand and a second Hall ligand, the first Hall ligand and the second Hall ligand are respectively connected to the first driving member signal, the rotating body has a first limit state and a second limit state, when the rotating body is in the first limit state, the magnetic attraction member is limited and matched with the first Hall ligand; when the rotating body is in the second limit state, the magnetic attraction member is limited and matched with the second Hall ligand.
[0010] In some embodiments, a dimension of the second Hall ligand along the height direction is greater than a dimension of the first Hall ligand along the height direction of the all-in-one all-electric wireless charger.
[0011] In some embodiments, the second drive assembly includes a second driving member and a second active member, the driving shaft of the second driving member is connected to the second active member, the second active member is provided with a second active tooth portion, and a second driven tooth portion is provided on the side of the charging body facing the second active member, and the second driven tooth portion is engaged with the second active tooth portion.
[0012] In some embodiments, the all-in-one all-electric wireless charger further includes an infrared sensor installed on the charging base, and the infrared sensor signal is connected to the first drive component and the second drive component.
[0013] In some embodiments, the all-in-one all-electric wireless charger further includes a touch sensing element, which is mounted on the charging base, and the touch sensing element signal is connected to the first drive component and the second drive component.
[0014] In some embodiments, the all-in-one all-electric wireless charger further includes a buffer pad, which is installed on a side of the charging base facing away from the charging body.
[0015] In some embodiments, the charging base includes a first charging portion and a second charging portion, and the first charging portion and the second charging portion are respectively located at two ends of the charging base in a width direction.
[0016] The utility model provides an all-in-one all-electric wireless charger, wherein the first driving component of the all-in-one all-electric wireless charger is installed on the charging base, and the rotating charging base includes a connected charging body and a rotating body, and the rotating body is located between the charging base and the charging body. The electronic device can be placed on the charging body for charging to meet the charging needs of the electronic device. The first driving component is connected to the rotating body in a transmission manner, and the first driving component is suitable for driving the rotating body to rotate within a predetermined angle so that the charging body selectively approaches or moves away from the charging base. The second driving component is installed on the rotating body and connected to the charging body in a transmission manner, and the second driving component is suitable for driving the charging body to rotate around the central axis of the rotating charging base. In this way, the first driving component can drive the charging body to adjust the height, so that the charging body can be at a suitable height position, and the electronic device can also be at a suitable height position. The second driving component can drive the charging body to adjust the angle, so that the charging body can be at a suitable angle position, and the electronic device can also adjust the angle, thereby realizing the switching of the electronic device between the horizontal screen and the vertical screen. The charging body can be rotated to a suitable position under the drive of the first driving component and the second driving component, which helps to meet the user's usage needs in different scenarios and helps to improve the applicability of the all-in-one all-electric wireless charger. In addition, the all-in-one all-electric wireless charger can charge different electronic devices separately through the charging base and the rotating charging stand, which helps to enrich the functions of the all-in-one all-electric wireless charger. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions in the implementation modes of the present invention, the drawings required for use in the description of the implementation modes will be briefly introduced below. Obviously, the drawings described below are only some implementation modes of the implementation modes of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
[0018] Figure 1 A schematic structural diagram of an all-in-one all-electric wireless charger provided by an embodiment of the utility model is shown.
[0019] Figure 2 Shows Figure 1 Schematic diagram of the structure of the all-in-one all-electric wireless charger in another state.
[0020] Figure 3 Shows Figure 1 An exploded view of the all-in-one all-electric wireless charger.
[0021] Figure 4 Shows Figure 1 A longitudinal cross-sectional diagram of an all-in-one all-electric wireless charger.
[0022] Figure 5 Shows Figure 1 Schematic diagram of the cross-sectional structure of part of the all-in-one all-electric wireless charger.
[0023] Figure 6 Shows Figure 2 Schematic diagram of the cross-sectional structure of part of the all-in-one all-electric wireless charger.
[0024] Figure 7 Shows Figure 1 A longitudinal cross-sectional schematic diagram of the all-in-one all-electric wireless charger in another direction.
[0025] Figure 8 Shows Figure 1 Schematic diagram of the structure of the all-in-one all-electric wireless charger from another perspective.
[0026] Fig. 9 Shows Figure 2 Schematic diagram of the structure of the all-in-one all-electric wireless charger in another state. DETAILED DESCRIPTION
[0027] In order to enable those skilled in the art to better understand the implementation scheme of the present utility model, the technical scheme in the implementation scheme of the present utility model will be clearly and completely described below in conjunction with the drawings in the implementation scheme of the present utility model. Obviously, the described implementation scheme is only a part of the implementation scheme of the present utility model, not all of the implementation schemes. Based on the implementation scheme in the implementation scheme of the present utility model, all other implementation schemes obtained by those skilled in the art without making creative work are within the scope of protection of the implementation scheme of the present utility model.
[0028] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the accompanying drawings in the embodiments of the present invention.
[0029] See also Figure 1 The embodiment of the utility model provides an all-in-one all-electric wireless charger 100, which can be used to charge electronic devices such as mobile phones, watches, headphones, etc., thereby meeting the charging needs of different electronic devices.
[0030] See also Figure 1 and Figure 2 In some embodiments, the all-in-one all-electric wireless charger 100 includes a charging base 11 and a rotating charging base 13 , and the rotating charging base 13 is rotatably mounted on the charging base 11 .
[0031] In this way, the all-in-one all-electric wireless charger 100 can charge different electronic devices respectively through the charging base 11 and the rotating charging seat 13, which helps to enrich the functions of the all-in-one all-electric wireless charger 100.
[0032] In some embodiments, the rotating charging stand 13 includes a charging body 131 and a rotating body 132 connected to each other. The rotating body 132 is located between the charging base 11 and the charging body 131. The electronic device can be placed on the charging body 131 for charging to meet the charging needs of the electronic device.
[0033] See also Figures 1 to 4 In some embodiments, the all-in-one all-electric wireless charger 100 further includes a first drive assembly 12 and a second drive assembly 14. The first drive assembly 12 is mounted on the charging base 11. The first drive assembly 12 is transmission-connected to the rotating body 132. The first drive assembly 12 is suitable for driving the rotating body 132 to rotate within a predetermined angle so that the charging body 131 selectively approaches or moves away from the charging base 11. The second drive assembly 14 is mounted on the rotating body 132 and transmission-connected to the charging body 131. The second drive assembly 14 is suitable for driving the charging body 131 to rotate around the central axis X of the rotating charging base 13.
[0034] In this way, the first drive component 12 can drive the charging body 131 to adjust its height, so that the charging body 131 can be at a suitable height position, and the electronic device can also be at a suitable height position. The second drive component 14 can drive the charging body 131 to adjust its angle, so that the charging body 131 can be at a suitable angle position, and the electronic device can also adjust its angle, thereby realizing the switching of the electronic device between horizontal and vertical screens. The charging body 131 can be rotated to a suitable position under the drive of the first drive component 12 and the second drive component 14, which helps to meet the user's usage needs in different scenarios and helps to improve the applicability of the all-in-one all-electric wireless charger 100.
[0035] Exemplarily, when a user needs to watch a TV series while the electronic device is charging, the first driving component 12 can drive the charging body 131 to adjust the height, so that the charging body 131 drives the electronic device being charged to adjust the height synchronously to adapt to the height position of the user; the second driving component 14 drives the charging body 131 to adjust the angle, so that the charging body 131 drives the electronic device being charged to adjust the angle, for example, adjusting the electronic device to a horizontal screen state, to meet the user's needs for watching TV series.
[0036] For another example, when a user needs to read a novel while the electronic device is charging, the first drive component 12 can drive the charging body 131 to adjust its height, so that the charging body 131 drives the electronic device being charged to adjust its height synchronously to adapt to the height position of the user; the second drive component 14 drives the charging body 131 to adjust its angle, so that the charging body 131 drives the electronic device being charged to adjust its angle, for example, adjusting the electronic device to a vertical screen state, to meet the user's need to read novels.
[0037] This helps meet the user's usage needs in different scenarios, helps improve the applicability of the all-in-one all-electric wireless charger 100, and the user does not need to manually turn the rotating charging stand 13 or manually adjust the angle of the electronic device, which helps simplify the user's operation.
[0038] In some embodiments, the first driving assembly 12 includes a first driving member 121 and a first active member 122, the driving shaft of the first driving member 121 is connected to the first active member 122, the first active member 122 is provided with a first active tooth portion 1221, and the side of the rotating body 132 facing the charging base 11 is provided with a first driven tooth portion 1321, and the first driven tooth portion 1321 is engaged with the first active tooth portion 1221.
[0039] Thus, the first driving member 121 can drive the first active member 122 to move, and the first active tooth portion 1221 can drive the first driven tooth portion 1321 to synchronize the rotation body 132. The first driving assembly 12 is simple in electrically driving the rotation body 132 to move, and is easy to manufacture.
[0040] Exemplarily, the first driving member 121 can be a motor, the first active member 122 can be a driving wheel, the first active tooth portion 1221 is arranged on the circumferential side of the driving wheel, the driving wheel passes through the charging base 11, and the first driven tooth portion 1321 is arranged at the bottom of the rotating body 132 and is in a strip shape. For example, the first driven tooth portion 1321 can extend from the bottom of the rotating body 132 to both sides, and for another example, the first driven tooth portion 1321 can extend from the bottom of the rotating body 132 toward one side, and the first driven tooth portion 1321 is engaged with the first active tooth portion 1221, thereby limiting the rotation path of the rotating body 132.
[0041] In some implementations, the first driven tooth portion 1321 may be disposed at the bottom of the rotating body 132 and extend toward one side.
[0042] Since the first driven tooth portion 1321 extends from the bottom of the rotating body 132 to both sides, the height of the rotating body 132 adjusted by rotating from its bottom to both sides is the same, the first driven tooth portion 1321 on one side can be omitted to simplify the structure of the rotating body 132, and the rotating body 132 can also be moved to one side through the first driving component 12, thereby simplifying the movement mode of the rotating body 132.
[0043] The rotating body 132 can rotate within a predetermined angle relative to the charging base 11 . The predetermined angle can be 30°, 40°, 50°, or 60°, and can be set according to actual conditions.
[0044] See also Figure 3 , Figure 5 and Figure 6 In some embodiments, the all-in-one all-electric wireless charger 100 further includes a magnetic member 15 and a stopper 16. The magnetic member 15 is mounted on the side of the rotating body 132 facing the charging base 11, and the stopper 16 is mounted on the side of the charging base 11 facing the rotating body 132. The magnetic member 15 and the stopper 16 are in positional cooperation. The magnetic member 15 can be a permanent magnet.
[0045] In this way, the limiting member 16 can limit the rotating body 132 so that the rotating body 132 can rotate within a preset path, which helps to reduce the situation where the rotating body 132 deviates from the preset path and helps to reduce the situation where the rotating body 132 is separated from the charging base 11.
[0046] The rotating body 132 may be provided with a mounting portion, the mounting portion is protruding from the side of the rotating body 132 facing the charging base 11, and the magnetic attraction member 15 is mounted on the mounting portion. The charging base 11 includes a circuit board, which is mounted on the charging base 11 and opposite to the mounting portion, and the stopper 16 is mounted on the circuit board.
[0047] The limiting member 16 and the first driving member 121 are respectively located on both sides of the axial direction of the first active member 122 , so as to reasonably arrange the positions of the limiting member 16 and the first driving member 121 and improve the compactness of the device structure.
[0048] The position-limiting member 16 may be a magnetically attracted fitting member, and the magnetically attracted fitting member and the magnetically attracted member 15 may be limitedly matched; the position-limiting member 16 may be a Hall element, and the Hall element and the magnetically attracted member 15 may be limitedly matched, and the specific configuration may be based on actual conditions. The following description will be made by taking the position-limiting member 16 as a Hall element, and the Hall element and the magnetically attracted member 15 as an example.
[0049] In some embodiments, the limiter 16 includes a first Hall mate 161 and a second Hall mate 162, the first Hall mate 161 and the second Hall mate 162 are respectively connected to the first driving member 121 by signal, and the rotating body 132 has a first limit state and a second limit state. When the rotating body 132 is in the first limit state, Figure 5 As shown, the magnetic element 15 is limitedly matched with the first Hall matching body 161; when the rotating body 132 is in the second limited state, as shown Figure 6 As shown, the magnetic attraction member 15 is limitedly matched with the second Hall matching body 162.
[0050] In this way, the first Hall mate 161 and the second Hall mate 162 can respectively limit the rotation of the rotating body 132 at both ends of the preset path, which helps the all-in-one all-electric wireless charger 100 to achieve automatic limiting, helps to improve the limiting effect of the limiting member 16 on the rotating body 132, helps to better ensure that the rotating body 132 rotates within the preset path, helps to reduce the situation where the rotating body 132 deviates from the preset path and causes the first driven tooth portion 1321 at the bottom of the rotating body 132 to be exposed, helps to reduce the situation where the first driven tooth portion 1321 is exposed and damaged, and also helps to ensure the aesthetics of the all-in-one all-electric wireless charger 100 during use.
[0051] Exemplarily, when the rotating body 132 is in the first limiting state, Figure 5 As shown, the magnetic component 15 is limitedly matched with the first Hall mate 161. The first Hall mate 161 can output a corresponding Hall voltage through a magnetic field induced by the distance from the magnetic component 15. The first Hall mate 161 can detect the position change of the magnetic component 15 according to the Hall voltage it outputs. When the Hall voltage output by the first Hall mate 161 reaches a threshold value, it indicates that the position of the magnetic component 15 has reached a critical position, that is, the rotating body 132 has reached a critical position. The first Hall mate 161 outputs a signal to control the first driving component 121 to stop working, thereby limiting the rotation of the rotating body 132.
[0052] For another example, when the rotating body 132 is in the second limiting state, Figure 6 As shown, the magnetic component 15 and the second Hall mate 162 are limitedly matched. The second Hall mate 162 can output a corresponding Hall voltage through the magnetic field induced by the distance from the magnetic component 15. The second Hall mate 162 can detect the position change of the magnetic component 15 according to the Hall voltage it outputs. When the Hall voltage output by the second Hall mate 162 reaches the threshold, it means that the position of the magnetic component 15 has reached the critical position, that is, the rotating body 132 has reached the critical position. The second Hall mate 162 outputs a signal to control the first driving component 121 to stop working, thereby limiting the rotation of the rotating body 132.
[0053] When the rotating body 132 is in the first limiting state, the charging body 131 is flush with the horizontal plane, and when the rotating body 132 is in the second limiting state, an angle exists between the charging body 131 and the horizontal plane.
[0054] In some embodiments, the dimension of the second Hall ligand 162 along the height direction Y is greater than the dimension of the first Hall ligand 161 along the height direction Y of the all-in-one all-electric wireless charger 100 .
[0055] When the rotating body 132 is in the first limit state, the magnetic component 15 is level with the horizontal plane, and when the rotating body 132 is in the second limit state, the magnetic component 15 is set at an angle with the horizontal plane. The distance between the magnetic component 15 in the first limit state and the horizontal plane will be smaller than the distance between the magnetic component 15 in the second limit state and the horizontal plane. The trigger sensing distance between the Hall element and the magnetic component 15 needs to be within a certain range so that the magnetic component 15 can trigger the Hall element sensing.
[0056] The present application shortens the distance between the second Hall ligand 162 and the magnetic component 15 by setting the size of the second Hall ligand 162 along the height direction Y of the all-in-one all-electric wireless charger 100 to be larger than the size of the first Hall ligand 161 along the height direction Y of the all-in-one all-electric wireless charger 100, so that the distance between the second Hall ligand 162 and the magnetic component 15 can be located at the triggering sensing distance between the second Hall ligand 162 and the magnetic component 15, thereby ensuring that the magnetic component 15 can trigger the induction of the second Hall ligand 162.
[0057] The trigger sensing distance between the first Hall ligand 161 and the magnetic element 15 is equal to the trigger sensing distance between the second Hall ligand 162 and the magnetic element 15 , which can be set according to actual conditions.
[0058] See also Figure 4 and Figure 7 In some embodiments, the second driving assembly 14 includes a second driving member 141 and a second active member 142, the driving shaft of the second driving member 141 is connected to the second active member 142, the second active member 142 is provided with a second active tooth portion 1421, and the charging body 131 is provided with a second driven tooth portion 1311 on the side facing the second active member 142, and the second driven tooth portion 1311 is meshed with the second active tooth portion 1421.
[0059] Thus, the second driving member 141 can drive the second active member 142 to move, and the second active tooth portion 1421 can drive the second driven tooth portion 1311 to move the charging body 131. The second driving component 14 is simple in electrically driving the charging body 131 to move, and is easy to manufacture.
[0060] Exemplarily, the second driving member 141 can be a motor, the second active member 142 can be a driving wheel, the second active tooth portion 1421 is arranged on the peripheral side of the driving wheel, the second driven tooth portion 1311 is arranged on the peripheral side of the second active member 142, and the second driven tooth portion 1311 is arranged around the outer periphery of the first driven tooth portion 1321, and the second driven tooth portion 1311 is engaged with the second active tooth portion 1421, thereby driving the charging body 131 to rotate.
[0061] See also Figure 8In some embodiments, the all-in-one all-electric wireless charger further includes an infrared sensor 17 , which is mounted on the charging base 11 , and the infrared sensor 17 is signal-connected to the first drive component 12 and the second drive component 14 .
[0062] In this way, the infrared sensor 17 can sense the user's gesture movements, and then transmit the user's input signals to the first drive component 12 and the second drive component 14 respectively, so as to drive the rotating body 132 to rotate to a suitable position by the first drive component 12 and the second drive component 14 respectively, so as to meet the user's usage needs in different scenarios.
[0063] Re-read Figure 1 and Figure 3 In some embodiments, the all-in-one all-electric wireless charger further includes a touch sensor 18 , which is mounted on the charging base 11 , and the touch sensor 18 is signal-connected to the first drive component 12 and the second drive component 14 .
[0064] In this way, the touch sensing element 18 can sense the user's touch action, and then transmit the user's input signal to the first drive component 12 and the second drive component 14 respectively, so as to drive the rotating body 132 to rotate to a suitable position by the first drive component 12 and the second drive component 14 respectively, so as to meet the user's usage needs in different scenarios.
[0065] In this way, the all-in-one all-electric wireless charger 100 can control the actions of the first drive component 12 and the second drive component 14 through the infrared sensor 17, and the all-in-one all-electric wireless charger 100 can also control the actions of the first drive component 12 and the second drive component 14 through the touch sensor 18, which helps to enrich the functions of the all-in-one all-electric wireless charger 100 and also helps to facilitate user operation.
[0066] In some embodiments, the all-in-one all-electric wireless charger further includes a buffer pad 19 , which is installed on a side of the charging base 11 away from the charging body 131 .
[0067] In this way, the buffer pad 19 can absorb and disperse vibration and impact force, which helps to reduce the impact of vibration and impact force on the internal electronic components of the all-in-one all-electric wireless charger 100, helps to extend the service life of the all-in-one all-electric wireless charger 100, and also helps to increase the friction between the charging base 11 and the placement surface, which helps to reduce the sliding or displacement of the all-in-one all-electric wireless charger 100 during use. The buffer pad 19 can also absorb part of the sound waves, which helps to reduce the vibration and noise generated when the all-in-one all-electric wireless charger 100 is working.
[0068] See also Figure 1 and Fig. 9In some embodiments, the charging base 11 includes a first charging portion 111 and a second charging portion 112 , and the first charging portion 111 and the second charging portion 112 are respectively located at two ends of the charging base 11 in a width direction.
[0069] In this way, the charging base 11 can charge two electronic devices through the first charging part 111 and the second charging part 112, which helps to enrich the functions of the charging base 11 and also helps to better enrich the functions of the all-in-one all-electric wireless charger 100.
[0070] Among them, the first charging unit 111 and the second charging unit 112 can have the same structure to charge the same type of electronic devices; the first charging unit 111 and the second charging unit 112 can also have different structures to charge different types of electronic devices, which can be specifically set according to actual conditions.
[0071] Among them, the first charging unit 111 can be rotated relative to the charging base 11 to be selectively in an expanded or stored state, and the second charging unit 112 can be rotated relative to the charging base 11 to be selectively in an expanded or stored state, thereby facilitating the use of the first charging unit 111 and the second charging unit 112, and also facilitating the storage of the first charging unit 111 and the second charging unit 112 when not in use.
[0072] In summary, the all-in-one all-electric wireless charger 100 provided by the embodiment of the utility model, the first driving component 12 of the all-in-one all-electric wireless charger 100 is installed on the charging base 11, and the rotating charging base 13 includes a charging body 131 and a rotating body 132 connected to each other, and the rotating body 132 is located between the charging base 11 and the charging body 131. The electronic device can be placed on the charging body 131 for charging to meet the charging needs of the electronic device. The first driving component 12 is connected to the rotating body 132 by transmission, and the first driving component 12 is suitable for driving the rotating body 132 to rotate within a predetermined angle so that the charging body 131 selectively approaches or moves away from the charging base 11. The second driving component 14 is installed on the rotating body 132 and is connected to the charging body 131 by transmission, and the second driving component 14 is suitable for driving the charging body 131 to rotate around the central axis X of the rotating charging base 13. In this way, the first driving component 12 can drive the charging body 131 to adjust the height, so that the charging body 131 can be at a suitable height position, and the electronic device can also be at a suitable height position. The second drive component 14 can drive the charging body 131 to adjust the angle, so that the charging body 131 can be at a suitable angle, and the electronic device can adjust the angle, thereby realizing the switching of the electronic device between the horizontal screen and the vertical screen. The charging body 131 can be rotated to a suitable position under the drive of the first drive component 12 and the second drive component 14, which helps to meet the user's usage needs in different scenarios and helps to improve the applicability of the all-in-one all-electric wireless charger 100. In addition, the all-in-one all-electric wireless charger 100 can charge different electronic devices respectively through the charging base 11 and the rotating charging seat 13, which helps to enrich the functions of the all-in-one all-electric wireless charger 100.
[0073] In addition, the terms "first", "second", etc. are only used to distinguish descriptions and cannot be understood as specific or special structures. The description of the term "some embodiments" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the embodiment of the utility model. In the embodiments of the utility model, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art can combine and combine different embodiments or examples described in the embodiments of the utility model and the features of different embodiments or examples without contradiction.
[0074] The above embodiments are only used to illustrate the technical solutions of the embodiments of the present utility model, rather than to limit them. Although the embodiments of the present utility model are described in detail with reference to the aforementioned embodiments, ordinary technicians in this field should understand that they can still modify the technical solutions recorded in the aforementioned embodiments, or replace some of the technical features therein with equivalents. These modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of each embodiment of the embodiments of the present utility model, and should all be included in the protection scope of the embodiments of the present utility model.
Claims
1. An all-in-one fully electric wireless charger, characterized in that: include: Charging base; a first driving assembly, the first driving assembly being mounted on the charging base; A rotating charging base, the rotating charging base comprising a charging body and a rotating body connected to each other, the rotating body being located between the charging base and the charging body, the first driving component being transmission-connected to the rotating body, the first driving component being adapted to drive the rotating body to rotate within a predetermined angle so that the charging body selectively approaches or moves away from the charging base; as well as A second driving assembly is installed on the rotating body and is transmission-connected to the charging body. The second driving assembly is suitable for driving the charging body to rotate around the central axis of the rotating charging seat.
2. The all-in-one all-electric wireless charger according to claim 1, characterized in that: The first driving assembly includes a first driving member and a first active member, the driving shaft of the first driving member is connected to the first active member, the first active member is provided with a first active tooth portion, the side of the rotating body facing the charging base is provided with a first driven tooth portion, and the first driven tooth portion is engaged with the first active tooth portion.
3. The all-in-one all-electric wireless charger according to claim 2, characterized in that: The all-in-one all-electric wireless charger also includes a magnetic component and a limiting component. The magnetic component is installed on a side of the rotating body facing the charging base, and the limiting component is installed on a side of the charging base facing the rotating body. The magnetic component and the limiting component cooperate in a limiting manner.
4. The all-in-one all-electric wireless charger according to claim 3, characterized in that: The limiting component includes a first Hall mate and a second Hall mate, the first Hall mate and the second Hall mate are respectively connected to the first driving component signal, the rotating body has a first limiting state and a second limiting state, when the rotating body is in the first limiting state, the magnetic attraction component is limitedly matched with the first Hall mate; when the rotating body is in the second limiting state, the magnetic attraction component is limitedly matched with the second Hall mate.
5. The all-in-one all-electric wireless charger according to claim 4, characterized in that: The dimension of the second Hall ligand along the height direction of the all-in-one all-electric wireless charger is greater than the dimension of the first Hall ligand along the height direction of the all-in-one all-electric wireless charger.
6. The all-in-one all-electric wireless charger according to claim 1, characterized in that: The second driving assembly includes a second driving member and a second active member, the driving shaft of the second driving member is connected to the second active member, the second active member is provided with a second active tooth portion, the charging body is provided with a second driven tooth portion on the side facing the second active member, and the second driven tooth portion is meshed with the second active tooth portion.
7. The all-in-one all-electric wireless charger according to claim 1, characterized in that: The all-in-one all-electric wireless charger also includes an infrared sensor, which is installed on the charging base, and the infrared sensor signal is connected to the first drive component and the second drive component.
8. The all-in-one all-electric wireless charger according to claim 1, characterized in that: The all-in-one all-electric wireless charger also includes a touch sensing component, which is installed on the charging base, and the touch sensing component signal is connected to the first driving component and the second driving component.
9. The all-in-one all-electric wireless charger according to claim 1, characterized in that: The all-in-one all-electric wireless charger also includes a buffer pad, which is installed on a side of the charging base away from the charging body.
10. The all-in-one all-electric wireless charger according to claim 1, characterized in that: The charging base includes a first charging part and a second charging part, and the first charging part and the second charging part are respectively located at two ends of the charging base in a width direction.