1. Field of the Invention
The invention relates to an electronic device and, more particularly, to an electronic device with an antenna element.
2. Description of the Related Art
Nowadays, besides various functions, the appearance of electronic devices becomes even more important. For example, a metal housing and a nameplate are used to improve the appearance and more stylish. However, a near-field communication (NFC) antenna disposed at the surface of the metal housing is usually affected by a metal shielding effect, and thus the communication quality of the NFC antenna is poor.
An electronic device is provided. The electronic device uses an insulation structure to generate second current, and uses the second current to improve the communication quality of a second antenna element. Thus, the affection from a conductive element and a conductive housing on the second antenna element is reduced.
An electronic device includes a conductive housing, a first antenna element, a second antenna element and an insulation structure. The first antenna element is disposed in the conductive housing. The second antenna element is disposed at the external surface of the conductive housing and is opposite to the first antenna element. The conductive housing generates first current in response to the operation of the second antenna element. The insulation structure penetrates through the conductive housing and extends from at least one side of the conductive housing to the second antenna element. The conductive housing generates induction current in response to the operation of the first antenna element, and the insulation structure blocks the induction current to make the conductive housing generate second current. A direction of the first current is the same as a direction of the second current.
As stated above, the insulation structure penetrates through the conductive housing and extends from at least one side of the conductive housing to the second antenna element. Under the block of the insulation structure, the induction current generated in the conductive housing in response to the operation of the first antenna element is converted to the second current whose direction is the same as that of the first current. Moreover, the second current can help increasing magnetic flux of the second antenna element, and reduce the affection from the conductive element and the conductive housing on the second antenna element.
These and other features, aspects and advantages of the present invention will become better understood with regard to the following description, appended claims, and accompanying drawings.
The first antenna element 120 is disposed in the conductive housing 110. For example, the conductive housing 110 has an accommodating space, and the first antenna element 120 is disposed in the accommodating space. The first antenna element 120 may be a coil antenna, and receives a feeding signal from a transceiver (not shown) of the electronic device 100. When the first antenna element 120 (such as a coil antenna) is triggered by the feeding signal, it generates an alternating magnetic field.
The second antenna element 130 is disposed at the external surface of the conductive housing 110, and the second antenna element 130 is electrically insulated from the external surface of the conductive housing 110. For example, an insulation layer is disposed between the second antenna element 130 and the conductive housing 110. Moreover, the second antenna element 130 is opposite to the first antenna element 120 across the conductive housing 110, and the second antenna element 130 is close to the insulation structure 140. The second antenna element 130 is used as an NFC antenna, and guides the alternating magnetic field generated by the first antenna element 120. Thus, the electronic device 100 can transmit information via the alternating magnetic field. Relatively, the conductive housing 110 generates the first current in response of the operation of the second antenna element 130.
The insulation structure 140 penetrates through the conductive housing 110, and extends from at least one side of the conductive housing 110 to the second antenna element 130. For example, at least one side of the conductive housing 110 includes a first side SD11 and a second side SD12, and the first side SD11 is opposite to the second side SD12. Furthermore, the insulation structure 140 extends from the first side SD11 and the second side SD12 to the second antenna element 130, respectively, and the insulation structure 140 intersects with the first side SD11 and the first side SD12 of the conductive housing 110. That is, the insulation structure 140 cuts the first side SD11 and the first side SD12 of the conductive housing 110.
In the embodiment in
The alternating magnetic field generated by the first antenna element 120 may make the conductive housing 110 generate the induction current. In other words, the conductive housing 110 also generates the induction current in response to the operation of the first antenna element 120. The insulation structure 140 which penetrates through the conductive housing 110 blocks the induction current generated in the conductive housing 110, and makes the conductive housing 110 generate the second current. A direction of the first current is the same as a direction of the second current.
For example,
As shown in
In other words, under the block of the insulation structure 140, the induction current generated in the conductive housing 110 in response to the operation of the first antenna element 120 would be converted to the second current whose direction is the same as that of the first current. Thus, the second current helps increasing the magnetic flux of the second antenna element 130 (which is an NFC antenna), improves the communication quality of the second antenna element 130, and reduces the affection from the conductive element 150 and the conductive housing 110 on the second antenna element 130.
The insulation structure 140 in
In detail, the insulation structure 340 includes an insulation wire 341. The insulation wire 341 is perpendicular to the first side SD31. A first end of the insulation wire 341 intersects with the first side SD31, and a second end of the insulation wire 341 is close to the second antenna element 130.
Furthermore, under the block of the insulation structure 340, the induction current 210 is converted to the second current 220 whose direction is the same as that of the first current 230. Thus, the second current 220 helps increasing the magnetic flux of the second antenna element 130, and reduces the affection from the conductive element 150 and the conductive housing 310 on the second antenna element 130. Other components in
In sum, the conductive housing generates the first current in response to the operation of the second antenna element. The insulation structure penetrates through the conductive housing, and extends from at least one side of the conductive housing to the second antenna element. Consequently, under the block of the insulation structure, the induction current generated in the conductive housing in response to the operation of the first antenna element is converted to the second current whose direction is the same as that of the first current. The second current helps increasing the magnetic flux of the second antenna element, and further reduces the affection from the conductive element and the conductive housing on the second antenna element.
Although the present invention has been described in considerable detail with reference to certain preferred embodiments thereof, the disclosure is not for limiting the scope. Persons having ordinary skill in the art may make various modifications and changes without departing from the scope. Therefore, the scope of the appended claims should not be limited to the description of the preferred embodiments described above.
Number | Date | Country | Kind |
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102145212 | Dec 2013 | TW | national |
This application claims the priority benefit of U.S. provisional application Ser. No. 61/753,439, filed on Jan. 17, 2013 and TW application serial No. 102145212, filed on Dec. 9, 2013. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
Number | Date | Country | |
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61753439 | Jan 2013 | US |