1. Field of the Invention
The present invention relates to a multi-frequency antenna, and more particularly, to a multi-frequency antenna which enables broadband transmission through slot adjustments.
2. Description of the Related Art
With technology advancement, wireless transmission system has become prevalent amongst electronic products. However, the traditional antenna can no longer satisfy the needs for the transmission process of large data volume, such as the multi-media files; therefore, an antenna with a larger transmission bandwidth is needed.
The prior art technology discloses a type of antenna. Please refer to
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Therefore, it is desirable to provide a new multi-frequency antenna design in order to solve the aforementioned problem.
A main object of the present invention is to provide a multi-frequency antenna which enables broadband transmission through slot adjustments.
Another object of the present invention is to provide an electronic device which comprises the multi-frequency antenna.
In order to achieve the above objectives, the electronic device according to an embodiment of the invention comprises a multi-frequency antenna and a wireless signal module. The multi-frequency antenna is electrically coupled with the wireless signal module. The multi-frequency antenna comprises a base board, a radiating element, a grounding element, a shorting element, and a feeding point. The radiating element, the grounding element and the shorting element are disposed on the base board and the grounding element is used for grounding the multi-frequency antenna. The shorting element comprises a first end and a second end; the first end is connected to the radiating element and the second end is connected to the grounding element; wherein, a first slot is disposed between the radiating element and the shorting element. The feeding point is used to feed a signal; wherein the feeding point is substantially disposed between one edge of the base board and the shorting element.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
The advantages and innovative features of the invention will become more apparent from the following preferred embodiments.
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In the first embodiment, a multi-frequency antenna 10a is a flat board structure. The multi-frequency antenna 10a comprises a base board 20, a radiating element 30, a grounding element 40, a shorting element 50, and a feeding point F. The base board 20 can be a printed circuit board (PCB), a plastic board, or a glass fiber board, but the base board 20 of the invention is not only limited to these materials. The radiating element 30, the grounding element 40, and the shorting element 50 can either be printed directly onto the base board 20, or they can be produced as a separate iron piece and then attached to the baseboard 20. When current is fed into the radiating element 30, the radiating element 30 emits radiation energy. The radiating element 30 comprises a first radiation area 311, a second radiation area 312, and a matching element 32. The matching element 32 comprises a first matching area 321 and a second matching area 322. The grounding element 40 is used for grounding the multi-frequency antenna 10a. The shorting element 50 comprises a first end 51 and a second end 52; the first end 51 is connected to the radiating element 30 and the second end 52 is connected to the grounding element 40.
A first slot S1 is mounted between the radiating element 30 and the shorting element 50; a second slot S2 is mounted between the first radiation area 311 and the second radiation area 312; a third slot S3 is mounted between the first matching area 321 and the second matching area 322. The second slot S2 and the third slot S3 are substantially parallel to the first radiation area 311. The matching impedance of the radiating element 30 can be tuned by adjusting the length of the first slot S1, the second slot S2, and the third slot S3 to yield different resonance frequency bands. In order to obtain a desirable effect from the resonance, both the length of the first slot S1 and the length L2 of the second radiation area 312 must exceed half the length L1 of the first radiation area 311, and the length of the third slot S3 must exceed half the length L3 of the first matching area 321. Also, the height of the second radiation area 312 must exceed the height of the first slot S1; the height of the second matching area 322 must exceed the height of the third slot S3.
The multi-frequency antenna 10a further comprises the feeding point F; the feeding point F is substantially disposed between the edge of the base board 20 and the shorting element 50. In the first embodiment of the invention, the feeding point F is mounted on the radiating element 30, and is substantially mounted at the midpoint between the first end 51 of the shorting element 50 and the edge of matching element 32. The feeding point F is electrically coupled with a feeding wire (not shown) to feed the electric signals. The feeding wire can be a RF cable, but the invention is not limited to this material.
Through the above mentioned slots and the configuration of the multi-frequency antenna 10a, a frequency band at approximately 2 GHz can be resonated by the first radiation area 311; a frequency band at approximately 3 GHz can be resonated by the second radiation area 312; a frequency band at approximately 5 GHz can be resonated by the second matching area 322;
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The multi-frequency antenna 10a of the invention is not only limited to the configuration as mentioned in the first embodiment. Next, please refer to
In the second embodiment of the invention, the radiating element 30a of a multi-frequency antenna 10b is entirely formed of a metal board. By comparing the second embodiment with
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In the third embodiment of the invention, the radiating element 30b of a multi-frequency antenna 10c only comprises the first radiation area 311 and the second radiation area 312, and does not comprise the matching element 32 as shown in
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In the fourth embodiment of the invention, the feeding point F and the radiating element 30 of a multi-frequency antenna 10d are mounted on opposite surfaces of the base board 20. The feeding point F is substantially located between the edge of the base board 20 and the projection of the shorting element 50. The grounding element 40 is extended to the opposite surface of the base board 20. In this configuration, the multi-frequency antenna 10d has the VSWR as shown in
Take note that the shape and position of the slots for the invention are not only limited to the above mentioned configurations.
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In the fifth embodiment of the invention, the shape of a second slot S2′ of a multi-frequency antenna 10e is different from the second slot S2 as mentioned in the previous embodiments. The second slot S2′ is L-shaped, wherein the opening is substantially perpendicular to the first radiation area 311. Therefore, a frequency band at approximately 3 GHz can be resonated by the first radiation area 311; a frequency band at approximately 2 GHz can be resonated by the second radiation area 312. In this configuration, the multi-frequency antenna 10e has the VSWR as shown in
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In the sixth embodiment of the invention, the shape of a third slot S3′ of a multi-frequency antenna 10f is also L-shaped, and it is substantially perpendicular to the first radiation area 311. In this configuration, the multi-frequency antenna 10f has the VSWR as shown in
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The position of the connection between the shorting element 50 and the grounding element 40 can be adjusted. In the seventh embodiment of the invention, the connection between the second end 52 and the grounding element 40 of a multi-frequency antenna 10g is closely located to a bottom of the grounding element 40. In this configuration, the multi-frequency antenna 10g has the VSWR as shown in
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In one embodiment, an electronic device 60 can be a device such as a laptop computer, but the invention is not only limited to this device. As shown in
Take note that the device 60 is not only limited to comprise the multi-frequency antenna 10a. In order to receive or transmit wireless signals at various frequency bands, the multi-frequency antenna 10a can be replaced by anyone of the multi-frequency antennas 10b˜10g for different design requirements.
Although the present invention has been explained in relation to its preferred embodiment, it is also of vital importance to acknowledge that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
Number | Date | Country | Kind |
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097139622 | Oct 2008 | TW | national |