1. Technical Field
Embodiments of the present disclosure relate to antennas, and especially to a multiband antenna.
2. Description of Related Art
Planar inverter-F antennas (PIFA) are widely applied in research and application, due to their capacity for minimal volume in various shapes.
However, PIFA operational frequency bands narrow when physical dimensions of the PIFA are decreased, to a point where working bands of the host device may not be covered. In one example, the problem may be reduced by increasing the distance between the PIFA and ground, but this method increases device volume of the host device. Another method is to change the shape of the PIFA, but this method requires a redesign of the PIFA antenna, which may be costly. In yet another method, a monopole antenna rather than PIFA may be used, but the monopole antenna generally exhibits a higher specific absorption rate (SAR), and is harder for impedance matching.
Referring to
The feed portion 10 supplies electromagnetic signals, and is rectangularly shaped.
The radiating portion 20 is electrically connected to the feed portion 10, to transceive electromagnetic signals. In one embodiment, a profile of the radiating portion 20 is substantially rectangularly shaped, and defines a plurality of slots 40. The radiating portion 20 comprises a first radiator 210, a second radiator 220 and a third radiator 230.
The first radiator 210 is substantially inverted-C shaped, and connected to the feed portion 10. The first radiator 210 comprises a first free end 211, a first horizontal section 212, a perpendicular section 213 and a second free end 214. In one embodiment, the first free end 211 is perpendicular to the second free end 214, the first free end 211 is parallel to the first perpendicular section 213, and the second free end 214 is parallel to the first horizontal section 212. The second free end 214 is shorter than the first horizontal section 212. The first horizontal section 212 comprises a first protrusion 2120 in the center. The feed portion 10 and the matching portion 30 are configured on the two ends of the first horizontal section 212 to define slots 40 with the first protrusion 2120.
The matching portion 30 is rectangularly shaped, and electrically connected to the first radiator 210, for impedance matching. In one embodiment, the matching portion 30 and the feed portion 10 are configured on the same side of the radiating portion 20.
The second radiator 220 is bent, and comprises a first feed end 221, a second horizontal section 222, a second perpendicular section 223 and a third free end 224. In one embodiment, the first feed end 221 is connected to feed portion 10 by the first perpendicular section 213. The second horizontal section 222 comprises a second protrusion 2220, and the third free end 224 comprises a third protrusion 2240, to adjust frequency bands of the second radiator 220.
The third radiator 230 is substantially L shaped, and comprises a second feed end 231, a third perpendicular section 232 and a fourth free end 233. In one embodiment, the second feed end 231 is electrically connected to the feed portion 10. The second feed portion 231 comprises a fourth protrusion 2310, the juncture of the feed portion 231 and the third perpendicular section 232 comprises a fifth protrusion 2320, to adjust frequency bands of the third radiator 230. The fourth free end 233 is wave-shaped. The fourth free end 223 and the third free end 224 are in the same line and parallel to the second free end 214, to radiate directionally. In one embodiment, the second radiator 220 and the third radiator 230 are operable in low frequency bands, such as, approximately 1.0 GHz.
In another embodiment, the radiating portion 20 comprises a plurality of radiators 210, 220230, each radiator constituting one or more L shaped radiating sections connected in series. For example, the first radiator 210 may comprise a L shape consisting of the first free end 211 and the first horizontal section 212, and a L shape consisting of the first perpendicular section 213 and the second free end 214. One end of each radiator 210, 220 and 230 is connected to the feed portion 10, for example radiating section 231 of the radiator 230 electrically connecting to the feed portion 10. Protrusions are configured on one or more radiating sections on the radiators 210, 220 and 230, such as, for example, on the radiating section 212.
The first protrusion 2120, the second protrusion 2220, the third protrusion 2240, the fourth protrusion 2310, and the fifth protrusion 2320 may be rectangular, triangular, or L shaped.
The slots 40 are defined by the bend of the radiating portion 20, and junctures of the feed portion 10 and the radiating portion 20 and junctures of the matching portion 30 and the radiating portion 10, to add couple effectiveness.
Referring to
Although the features and elements of the present disclosure are described as embodiments in particular combinations, each feature or element can be used alone or in other various combinations within the principles of the present 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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200920305547.7 | Jul 2009 | CN | national |