This U.S. non-provisional patent application claims priority under 35 U.S.C. §119 of Korean Patent Application Nos. 10-2016-0107249, filed on Aug. 23, 2016, and 10-2016-0163877, filed on Dec. 2, 2016, the entire contents of which are hereby incorporated by reference.
The present disclosure herein relates to an electronic device system, and more particularly, to an electronic device system having an open loop shape and realizing resonant wireless power transmission.
A resonant wireless power transmission technology is a technology that transmits energy via wireless through mutual resonance phenomenon by using magnetic resonators having the same resonant frequencies as each other. For the resonant wireless power transmission technology, a resonant coil and a power feeding coil have to be present in each of a transmitting part and a receiving part. However, in order to be loaded in an electronic device, built-in coils may have limited structures according to shapes of the electronic device. Particularly, coils built in an electronic device system (for example, a headset) having an open loop shape may have a structural limitation.
The present disclosure provides an electronic device system with an open loop shape capable of having high inductance.
The object of the present disclosure is not limited to the aforesaid, but other objects not described herein will be clearly understood by those skilled in the art from descriptions below.
An embodiment of the inventive concept provides an electronic device system including: an electronic device having an open loop shape; a coil within the electronic device; and a shield unit configured to shield at least a portion of the coil, wherein the coil includes: a first coil part through which current flows in a first direction; and a second coil part through which current flows in a second direction opposite to the first direction, wherein the shield unit is provided to at least one of the first coil part or the second coil part.
In an embodiment, the coil may be a single coil having the open loop shape, and the first coil part may be a portion of the coil, and the second coil part may be another portion of the coil.
In an embodiment, the coil may have the open loop shape, and the second coil may be provided inside further than the first coil part, and the shield unit may be provided to the second coil part.
In an embodiment, the shield unit may be provided to surround the second coil part.
In an embodiment, the coil may be a receiving-side resonant coil.
In an embodiment, the coil may be a receiving-side power feeding coil.
In an embodiment, at least one of the first coil part or the second coil part may be provided in plurality.
In an embodiment, the coil includes: a receiving-side resonant coil; and a receiving-side power feeding coil, wherein each of the receiving-side resonant coil and the receiving-side power feeding coil includes the first and second coil parts, wherein the shield unit includes: a first shield unit provided to the receiving-side power feeding coil; and a second shield unit provided to the receiving-side resonant coil.
In an embodiment, the electronic device system may further include a wireless charger configured to charge the electronic device.
In an embodiment, the wireless charger may include: a transmitting-side power feeding coil; and a transmitting-side resonant coil.
In an embodiment, the coil may be a receiving-side power feeding coil, wherein the wireless charger includes: a transmitting-side power feeding coil; a transmitting-side resonant coil; and a receiving-side resonant coil.
In an embodiment, the electronic device may be charged when disposed at a charging position adjacent to the wireless charger, and a distance between the electronic device and the wireless charger may be about 10 cm or less at the charging position.
In an embodiment, the electronic device may be a headset.
In an embodiment of the inventive concept, a wireless charger for charging an electronic device includes: a transmitting-side power feeding coil; a transmitting-side resonant coil; and a receiving-side resonant coil.
In an embodiment, the wireless charger may charge the electronic device when the electronic device is disposed at a charging position adjacent to the wireless charger, and a distance between the electronic device and the wireless charger may be about 10 cm or less at the charging position.
Particularities of other embodiments are included in the detailed description and drawings.
The accompanying drawings are included to provide a further understanding of the inventive concept, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the inventive concept and, together with the description, serve to explain principles of the inventive concept. In the drawings:
Advantages and features of the present disclosure, and implementation methods thereof will be clarified through following embodiments described in detail with reference to the accompanying drawings. The present disclosure may, however, be embodied in different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present disclosure to those skilled in the art. Further, the present disclosure is only defined by scopes of claims. Like reference symbols refer to like elements throughout.
In this specification, the terms are used only for explaining specific exemplary embodiments while not limiting the present disclosure. In this specification, the terms of a singular form may include plural forms unless specifically mentioned. The meaning of ‘comprises’ and/or ‘comprising’, when used in this specification, specifies a component, a step, an operation and/or an element described, but does not exclude the presence or addition of one or more other components, steps, operations and/or elements.
Additionally, the embodiments described in this specification will be explained with reference to the cross-sectional views and/or plan views as ideal exemplary views of the present disclosure. In the figures, the thicknesses of films and regions are exaggerated for effective description of the technical contents. Accordingly, shapes of the exemplary views may be modified according to manufacturing techniques and/or allowable errors. Therefore, the embodiments of the present disclosure are not limited to the specific shape illustrated in the exemplary views, but may include other shapes that may be created according to manufacturing processes. Therefore, areas exemplified in the drawings have general properties, and shapes of areas exemplified in the drawings are used to illustrate a specific shape of a device region. Thus, this should not be construed as limited to the scope of the present disclosure.
The electronic device 10 may include a first body 110, an earphone 120, a receiving-side power feeding coil 130, a receiving-side resonant coil 140, a receiving circuit unit 150, and shield units 160 and 162 of
The receiving-side power feeding coil 130, the receiving-side resonant coil 140, and the receiving circuit unit 150 are provided within the first body 110. Referring to
The shield units 160 and 162 may include a first shield unit 160 and a second shield unit 162. The first shield unit 160 may be provided in the receiving-side power feeding coil 130, and the second shield unit 162 may be provided in the receiving-side resonant coil 140. A detail structure of the coil and the shield units 160 and 162 will be described later.
Again, referring to
The electronic device 10 may be charged from the wireless charger 20 by disposing the electronic device 10 to a first charging position adjacent to the wireless charger 20. For example, a distance between the electronic device 10 and the wireless charger 20 may be about 30 cm or less at the first charging position.
The wireless power transmitting device 200 may include the transmitting-side power feeding coil 230 and the transmitting-side resonant coil 240. The transmitting-side power feeding coil 230 is connected to the power source 220, and then current may flow. When the current flows through the transmitting-side power feeding coil 230, induced current may be induced in the transmitting-side resonant coil 240 spaced therefrom by electromagnetic induction. The power transferred to the transmitting-side resonant coil 240 may be transferred to the wireless power receiving device 100 constituting a resonant circuit with the wireless power transmitting device 200 by the magnetic resonant phenomenon. Although not shown, the wireless power transmitting device 200 may further include a convertor and the like to convert one of alternating current, direct current, and RF to another one.
The wireless power receiving device 100 may include the receiving-side power feeding coil 130, the receiving-side resonant coil 140, and the receiving circuit unit 150. The receiving-side resonant coil 140 receives the power transmitted by the transmitting-side resonant coil 240, and current may flow through the receiving-side resonant coil 140. The power transferred to the receiving-side resonant coil 140 may induce the induced current in the receiving-side power feeding coil 130 by the electromagnetic induction. The power transferred to the receiving-side power feeding coil 130 may be transferred to the receiving circuit unit 150. The receiving circuit unit 150 may include a rectifier circuit and/or a load and the like.
The first shield unit 160 may be provided to one of the first coil part 132 and the second coil part 134. For example, the first shield unit 160 may be provided to surround the second coil part 134 as illustrated in
For example, when the inductance measured by using the receiving-side power feeding coil 130 of
According to the concept of the present disclosure, the cancellation of the magnetic field, which is generated due to characteristic of coils having open loop shapes through which the current flow in different directions, may decrease to increase the inductance. Since a shape and a function of the second shield unit 162 are also the same as or similar to those of the first shield unit 160, repeated descriptions will be omitted. Referring to
An electronic device 10′ may include a first body 110, an earphone 120, the receiving-side power feeding coil 130, and a receiving circuit unit 150, and a wireless charger 20′ may include a second body 210, a power source 220, the transmitting-side power feeding coil 230, the transmitting-side resonant coil 240, and the receiving-side resonant coil 140. Although not shown, at least one of the receiving-side power feeding coil 130 or the receiving-side resonant coils 140 may include the above-described shield unit. For example, the receiving-side power feeding coil 130 may include the above-described first shield unit.
The electronic device 10′ may be charged from the wireless charger 20′ by disposing the electronic device 10′ to a second charge position adjacent to the wireless charger 20′. For example, a distance between the electronic device 10′ and the wireless charger 20′ may be about 10 cm or less at the second charging position.
The wireless power transmitting device 200′ may include the transmitting-side power feeding coil 230, the transmitting-side resonant coil 240, and the receiving-side resonant coil 140. On the other hand, the wireless power receiving device 100′ may include the receiving-side power feeding coil 130 and the receiving circuit unit 150. Generally, the inductance required for the receiving-side resonant coil 140 may have a value higher than that of the receiving-side power feeding coil 130. According to the embodiment of the inventive concept, the receiving-side resonant coil 140 is disposed not at the wireless power receiving device 100′ but at the wireless power transmitting device 200′ to reduce limitation of a constitution and/or a shape of the receiving-side resonant coil 140, thereby obtaining a higher value of inductance.
According to the embodiment of the inventive concept, the cancellation of the magnetic field, which is generated due to characteristic of coils having open loop shapes through which current flows in different directions, may decrease to increase the inductance. In addition, according to the embodiment of the inventive concept, the receiving-side resonant coil is disposed not at the wireless power receiving device but at the wireless power transmitting device to obtain the higher value of inductance of the receiving-side resonant coil.
Although the embodiments of the inventive concept are described with reference to the accompanying drawings, those with ordinary skill in the technical field to which the inventive concept pertains will understood that the present disclosure can be carried out in other specific forms without changing the technical idea or essential features. Therefore, the above-disclosed embodiments are to be considered in all aspects as illustrative and not restrictive.
Number | Date | Country | Kind |
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10-2016-0107249 | Aug 2016 | KR | national |
10-2016-0163877 | Dec 2016 | KR | national |