The disclosure generally relates to antenna structures, and particularly to an antenna structure having a metallic housing, and a wireless communication device using the same.
Antennas are used in wireless communication devices such as mobile phones. The wireless communication device uses a multiband antenna to receive/transmit wireless signals at different frequencies.
Many aspects of the disclosure can be better understood with reference to the drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the views.
The disclosure is illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references mean “at least one.”
The wireless communication device 200 further includes a printed circuit board (PCB) 220, a metal member 240, and a matching circuit 260 shown in
The metal member 240 is located at a first side of the PCB 220, and is coupled to the ground plane of the PCB 220. In one exemplary embodiment, the metal member 240 is a rectangular board. The second antenna 50 is configured as a metallic housing of the wireless communication device 200. The second antenna 50 is substantially coplanar with the metal member 240, and a gap S is defined between the second antenna 50 and the metal member 240. An insulation material, such as a rubber, can be filled in the gap S for physically connecting the second antenna 50 to the metal member 240. In addition, the second antenna 50 and the metal member 240 are isolated from each other by the insulation material.
The first antenna 30 can be a rectangular board, and a length of the first antenna 30 is substantially equal to a length of the PCB 220. The first antenna 30 is located at a second side of the PCB 220, and is adjacent to a distal end of the PCB 220. The first antenna 30 is connected to the feed end 10 and the ground end 21. Current flowing on the first antenna 30 can be adjusted by changing a position of the first antenna 30 relative to the feed end 10 and the ground end 21, thereby receiving and transmitting wireless signals having a first central frequency. In at least one embodiment, a dimensions of the second antenna 30 is about 68 mm*7 mm.
The second antenna 50 is a parasitic antenna because the second antenna 50 is not directly connected to the feed pin 221 and instead is coupled to the feed pin 221 through the first antenna 30. In one exemplary embodiment, the second antenna 50 is a rectangular board, and a length of the second antenna 50 is substantially equal to a width of the PCB 220. The second antenna 50 is located at the first side of the PCB 220, and is opposite to the first antenna 30. The second antenna 50 is connected to the second ground end 22. Current flowing on the first antenna 50 can be adjusted by changing a position of the second antenna 50 relative to the second ground end 22, thereby receiving and transmitting wireless signals having a second central frequency. In at least one embodiment, a dimensions of the second antenna 50 is about 68 mm*10 mm.
The holder 70 is made of insulation materials. In one exemplary embodiment, the holder 70 is a rectangular board, and is substantially and perpendicularly connected between the first antenna 30 and the second antenna 50, for cooperatively defining a receiving space to receive the distal end of the PCB 220. In one exemplary embodiment, the holder 70 is connected to a side of the first antenna 30 opposite to the feed end 10, and is connected to a side of the second antenna 50 opposite to the second ground end 22.
When current is input to the feed end 10 from the PCB 220, the current flows to the first antenna 30, and is grounded via the ground end 21. Thus, the first antenna 30 is activated to receive and transmit wireless signals at a first bandwidth, which can be for example about 1710-1900 MHZ. Additionally, the second ground end 22 receives the current from the ground plane of the PCB 220, and then the second antenna 50 is activated to receive and transmit wireless signals at a second bandwidth, which can be for example about 1900-2690 MHZ. Furthermore, an impedance of the first antenna 30 is adjusted by the matching circuit 260 to allow the first antenna 30 to receive and transmit wireless signals at a third bandwidth, which can be for example about 704-746 MHz or 824-960 MHZ.
In summary, the second antenna 50 is served as a metallic housing of the wireless communication device 200. Thus, the wireless communication device 200 does not need to employ any additional antennas, which can effectively utilize a space of the wireless communication device 200. In addition, a radiating capability of the antenna structure 100 of the wireless communication device 200 is effectively improved because of the matching circuit 260.
It is to be understood, however, that even through numerous characteristics and advantages of the present disclosure have been set forth in the foregoing description, together with details of assembly and function, the disclosure is illustrative only, and changes may be made in detail, especially in the matters of shape, size, and arrangement of parts within the principles of the disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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2013 1 03672504 | Aug 2013 | CN | national |
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Number | Date | Country | |
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20150054694 A1 | Feb 2015 | US |