1. Technical Field
The present disclosure generally relates to antennas for portable wireless communication devices, particularly to a triple-band antenna.
2. Discussion of the Related Art
With the developments of wireless communication and information processing technologies, portable wireless communication devices such as mobile phones and personal digital assistants (PDAs) are now in widespread use, and consumers may now enjoy the full convenience of high-end electronics products almost anytime and anywhere.
Typical portable wireless communication devices generally include a single band antenna to transmit and receive electromagnetic waves. The single band antenna provides only one frequency band for communication and cannot satisfy the consumer's desire that their electronic device be operated at multiple frequency bands. A dual-band antenna can solve the aforesaid problems. However, the volume of the conventional dual-band antenna is relatively large, and occupies a relatively large space within the portable wireless communication device. In addition, the conventional dual-band antenna is not suitable for developing a communicating system providing more than two frequency bands.
Therefore, there is room for improvement within the art.
Many aspects of the present triple-band antenna can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present triple-band antenna. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The triple-band antenna 30 includes a feed line 31, a first radiating body 33, a second radiating body 35, a first grounding sheet 36 and a second grounding sheet 37. The first radiating body 33 is a substantially rectangular sheet, having a length of about a quarter of a wavelength of a first resonant frequency, which is about 900 MHz. One end of the first radiating body 33 is electrically connected to an end of the feed line 31, and the other end of the first radiating body 33 is a free end parallel with the feed line 31.
The first radiating body 33 includes a first radiating arm 331, a second radiating arm 332, a third radiating arm 333 and a fourth radiating arm 334 electrically connected in series to each other. The first radiating arm 331 is perpendicular and electrically connected to the feed line 31. The fourth radiating arm 334 is parallel with the feed line 31, and parallel with the second radiating arm 332. An end of the fourth radiating arm 334 is spaced from the junction of the first radiating arm 331 and the feed line 31.
The second radiating body 35 includes three bar-shaped sheets extending from the second radiating arm 332 toward the fourth radiating arm 334. The three sheets of the second radiating body 35 are parallel with each other, and are equally spaced. The second radiating body 35 is surrounded by the first radiating body 33.
The first grounding sheet 36 and the second grounding sheet 37 are disposed at opposite sides of the feed line 31. The first and second grounding sheets 36, 37 are equally spaced from the feed line 31, and a distance between the first grounding sheet 36 and the feed line 31 is adjustable to adjust a third resonant frequency of the triple-band antenna 30.
When the triple-band antenna 30 is in use, the feed line 31 receives outer signals and transmits the signals from the first radiating body 33 and the second radiating body 35 to form three different transmission routes of different lengths. The first radiating body 33 and the second radiating body 35 form three different signal currents and generate three different operating frequencies respectively to make the triple-band antenna 30 able to work with three communication systems, e.g. GSM900, DCS1800 and WLAN2450. When the signals are transmitted along the first radiating body 33, a first resonant operating frequency of 900 MHz can be generated to allow the triple-band antenna to work on GSM900 communication system. When the signals are transmitted along the second radiating body 35, a second resonance operating frequency of 1800 MHz can be generated to allow the triple-band antenna to work on DCS1800 communication system. When the signals are transmitted along the first radiating body 33 and the second radiating body 35, a third resonance operating frequency of 2450 MHz can be generated to allow the triple-band antenna 30 to work on WLAN2450 communication system.
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Finally, it is to be understood, however, that even though numerous characteristics and advantages of the present disclosure have been set fourth in the foregoing description, together with details of the structure and function of the present disclosure, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of present disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
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Number | Date | Country | |
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20100039344 A1 | Feb 2010 | US |