This application claims priority of Taiwanese Application No. 099221770, filed on Nov. 10, 2010.
1. Field of the Invention
The present invention relates to a broadband antenna, more particularly to a broadband antenna realized by improving bandwidth of an inverted F antenna.
2. Description of the Related Art
Owing to flourishing development of wireless communications technology, communications protocols in different frequency bands continue to be established. For conforming with a design trend of miniaturization in current electronic devices, reducing dimensions of an antenna and increasing operation bandwidth of an antenna so as to decrease a number of antennas to be deployed have become a development direction of antennas.
A dual band antenna realized by improvement of an inverted F antenna is disclosed in Taiwanese Patent Number 563274. The dual band antenna disclosed therein is capable of operating in a low frequency band and a high frequency band. Accordingly, if a broadband antenna with broader bandwidth may be realized by further improvement of the aforementioned dual band antenna so as to be applied in different communications protocols, such an antenna may further achieve a goal of antenna development and increase convenience in usage of wireless electronic devices.
Therefore, an object of the present invention is to provide a broadband antenna that has increased operation frequency bandwidth.
Accordingly, the broadband antenna of the present invention includes a substrate, a radiator element, a grounding element, a conductor element, a conductor arm, and a conductor piece. The substrate has a first surface and a second surface that are spaced apart from each other. The radiator element is disposed on the first surface of the substrate. The grounding element is disposed on the first surface of the substrate, is spaced apart from the radiator element, and is provided with a grounding point. The conductor element is disposed on the first surface of the substrate and is provided with a feed point for feeding with signals. The conductor element includes a first conductor section extending from the radiator element toward the grounding element, a second conductor section extending from the grounding element toward the radiator element, and a third conductor section interconnecting the first conductor section and the second conductor section. The first conductor section configures the radiator element into a first radiator portion for resonating in a high frequency band and a second radiator portion for resonating in a low frequency band. The conductor arm is disposed on the first surface of the substrate. The conductor arm extends from the third conductor section toward the second radiator portion and is spaced apart from the second radiator portion to form a coupling clearance therebetween. The conductor piece is disposed on the second surface of the substrate and is conductively coupled to the radiator element. The conductor piece overlaps with projections of the first radiator portion, the first conductor section, the first part, and the conductor arm onto the second surface.
The effect of the present invention resides in that by using the conductor arm and the conductor piece to adjust matching of low frequency resonating mode and high frequency resonating mode, the operation bandwidth may be increased.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment with reference to the accompanying drawings, of which:
Referring to
The radiator element 2 is disposed on the first surface 11 of the substrate 1, and extends along and adjacent to the first edge of the substrate 1. The radiator element 2 is substantially in a shape of a strip, and has an end extending at an angle of substantially 90 degrees toward the second edge along the third edge and further extending at an angle of substantially 90 degrees toward the fourth edge. The bent radiator element 2 is capable of reducing dimensions of the broadband antenna 100.
The grounding element 3 is disposed on the first surface 11 of the substrate 1, is spaced apart from the radiator element 2, and is disposed adjacent to the second edge of the substrate 1. The grounding element 3 is substantially in a shape of a strip and extends along the second edge of the substrate 1 such that the radiator element 2 has a portion parallel to the grounding element 3. The grounding element 3 is provided with a grounding point 30 and is to be connected to a conductive foil 8 for increasing grounding area.
The conductor element 4 is disposed on the first surface 11 of the substrate 1 and is provided with a feed point 40 for feeding with signals. The conductor element 4 includes a first conductor section 41, which is substantially triangular in shape, extending from the radiator element 2 toward the grounding element 3, a second conductor section 42 extending from the grounding element 3 toward the radiator element 2, and a third conductor section 43, which is substantially perpendicular to the second conductor section 42, interconnecting the first conductor section 41 and the second conductor section 42. The third conductor section 43 is substantially parallel to the grounding element 3. The third conductor section 43 includes a first part 431 connected to the first conductor section 41, and a second part 432 connected between the first part 431 and the second conductor section 42. The first conductor section 41 configures the radiator element 2 into a first radiator portion 21 for resonating in a high frequency band and a second radiator portion 22 for resonating in a low frequency band. The first radiator portion 21 is disposed at one side of a junction of the first conductor section 41 and the second radiator portion 22 which is proximate to the fourth edge of the substrate 1. The second radiator portion 22 is disposed at another side of the junction of the first conductor section 41 and the second radiator portion 22 which is proximate to the third edge of the substrate 1. The first radiator portion 21 has a length shorter than that of the second radiator portion 22. The length of each of the first radiator portion 21 and the second radiator portion 22 is substantially equal to one fourth of a respective one of wavelengths of center frequencies of the high frequency band and the low frequency band. The feed point 40 is located in a junction of the first conductor section 41 and the third conductor section 43. The grounding point 30 is adjacent to the feed point 40. The first conductor section 41, which is substantially triangular in shape, is configured for increasing bandwidth of a resonant mode of the low frequency band.
The conductor arm 5 is disposed on the first surface 11 of the substrate 1. The conductor arm 5 extends from the first part 431 of the third conductor section 43 toward the second radiator portion 22 and is spaced apart from the second radiator portion 22 to form a coupling clearance therebetween. The coupling clearance enables the radiator arm 5 to couple capacitively to the second radiator portion 22 for adjusting matching of each of the resonant mode of the low frequency band and a resonant mode of the high frequency band so as to increase bandwidths thereof.
The conductor piece 6 is disposed on the second surface 12 of the substrate 1 and is conductively coupled to the radiator element 2. The conductor piece 6 overlaps with projections of the first radiator portion 21, the first conductor section 41, the first part 431, the conductor arm 5, and a portion of the second radiator portion 21 onto the second surface 12 but does not overlap with projections of the second part 432 and the grounding element 3 onto the second surface 12. The conductor piece 6 is configured for adjusting matching of the resonant modes of each of the low frequency band and the high frequency band so as to increase bandwidth of the resonant mode of the high frequency band. In this embodiment, the broadband antenna 100 further includes a plurality of conductive vias 7 formed through the radiator element 2, the substrate 1, and the conductor piece 6. The radiator element 2 is coupled electrically to the conductor piece 6 through the conductive vias such that the radiator element 2 is conductively coupled to the conductor piece 6. Certainly, the broadband antenna 100 may also use conductive wires interconnecting blind vias (not shown) disposed in the substrate 1, or one of iron pieces and conductive wires disposed on surfaces of the substrate 1 and interconnecting the radiator element 2 and the conductor piece 6 such that the radiator element 2 is conductively coupled to the conductor piece 6. In another preferred embodiment, the conductor piece 6 may merely overlap with projections of the first radiator portion 21 and the conductor arm 5 onto the second surface 12 without overlapping with projections of the second radiator portion 22, the first conductor section 41, and the first part 431 onto the second surface 12.
Referring to
In summary, the broadband antenna 100 of the preferred embodiment uses the conductor piece 6 disposed on the second surface 12 to adjust matching of the resonant modes of each of the low frequency band and the high frequency band so as to increase bandwidth of the resonant mode of the high frequency band. Meanwhile, the first conductor section 41 and the conductor arm are adopted for increasing bandwidth of the low frequency band and adjusting matching of the resonant modes of each of the low frequency band and the high frequency band.
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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099221770 | Nov 2010 | TW | national |