This application claims priority of Chinese Application No. 201010255303.X, filed on Aug. 13, 2010.
1. Field of the Invention
The present invention relates to an antenna system and an electronic apparatus having the same, more particularly to a loop array antenna system and an electronic apparatus having the same.
2. Description of the Related Art
Modern wireless network devices, such as wireless access points, generally include lightweight, low-profile antennas. Taiwanese Patent No. M357719 and U.S. Pat. No. 7,675,466 disclose conventional printed-type planar array antennas, respectively, which are operable in a 5-GHz frequency band and are suitable for outdoor network establishment.
However, such planar array antennas have structures having resonant lengths of one-half wavelength, and hence occupy larger surface areas. For example, a 2×2 planar array antenna configuration operating in the 5-GHz frequency band occupies a surface area of 50 mm×50 mm. Furthermore, such planar array antennas generally exhibit poor gain and must be disposed on surfaces of system circuit boards.
Therefore, the need for a relatively small, lightweight, low-profile antennas still exists in the market.
Therefore, an object of the present invention to provide a relatively small, low-profile antenna device that is suitable for use in WLAN frequency bands.
Accordingly, an antenna device of the present invention includes:
a substrate having opposite first and second surfaces;
a signal-feed network including a micro-strip portion disposed on the first surface of the substrate, and a grounding portion disposed on the second surface of the substrate and corresponding in position with the micro-strip portion, the micro-strip portion including a signal-feed section for feeding of signals, and a plurality of first connecting sections that are electrically connected to the signal-feed section; and
a plurality of first loop antennas arranged along a first peripheral edge of the grounding portion, each of the first loop antennas including a first radiator portion disposed on the first surface and electrically connected to a respective one of the first connecting sections, and a second radiator portion disposed on the second surface and electrically interconnecting the first radiator portion of the first loop antenna and the grounding portion, the first and second radiator portions of each of the first loop antennas cooperating to form a loop.
Another object of the present invention is to provide a relatively small, low-profile loop array antenna system that exhibits high gain and high radiation directivity, and that is suitable for use in WLAN frequency bands.
Accordingly, a loop array antenna system of the present invention includes:
an antenna device including
a system module having a grounding plane that is spaced apart from the substrate and faces toward the second surface of the substrate, and that serves as a reflector for reflecting electromagnetic waves from the antenna device.
Yet another object of the present invention is to provide an electronic apparatus with a loop array antenna system.
Accordingly, an electronic apparatus of the present invention includes:
a housing having a base plate and a cover body disposed on the base plate;
a system module disposed on the base plate and having a grounding plane facing away from the base plate; and
an antenna device including
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiments with reference to the accompanying drawings, of which:
Before the present invention is described in greater detail, it should be noted that like elements are denoted by the same reference numerals throughout the disclosure.
Referring to
The antenna device 2 includes a substrate 21, a signal-feed network 22, a plurality of first loop antennas 23, a plurality of second loop antennas 24, and a signal transmission line 25 (e.g., a coaxial cable). In this embodiment, the first and second loop antennas 23, 24 cooperate to form a 2×2 loop-antenna array configuration. The substrate 21 has a substrate body 211 made of a dielectric material (e.g., glass fiber, FR4), and having opposite first and second surfaces 212, 213. It is to be noted that, in this embodiment, each of the first and second loop antennas 23, 24 is a folded-loop antenna disposed on the substrate 21 using printed circuit board (PCB) techniques. Furthermore, each of the first and second loop antennas 23, 24 is a full-wavelength loop antenna having a balanced structure and characterized by high-gain and directional radiation. In addition, in comparison with conventional planar array antennas, the 2×2 loop—antenna array cooperatively formed by the first and second loop antennas 23, 24, according to the present embodiment, has advantages such as relatively small dimensions and better radiation characteristics.
Referring to
The micro-strip portion 221 has a signal-feed section 261 having opposite ends, a plurality of first connecting sections 262a connected electrically and respectively to the opposite ends of the signal-feed section 261, a plurality of second connecting sections 262b connected electrically and respectively to the opposite ends of the signal-feed section 261, and a feed-in section 263 disposed at the center of the signal-feed section 261 for feeding of signals therethrough.
Each of the first connecting sections 262a cooperates with a respective one of the second connecting sections 262b to form a T-shaped connecting section. Each of the first connecting sections 262a has a distal end 264 distal from the signal-feed section 261 and flush with a first peripheral edge 223 of the grounding portion 222. Each of the second connecting sections 262b has a distal end 265 distal from the signal-feed section 261 and flush with a second peripheral edge 224 of the grounding portion 222, which, in this embodiment, is disposed parallel and opposite to the first peripheral edge 223.
In the present embodiment, the signal-feed section 261 is relatively narrow in width and has an impedance of 100Ω. Furthermore, each of the T-shaped connecting sections formed by a corresponding pair of the first and second connecting sections 262a, 262b is relatively wider in width and has an impedance of 50Ω. However, configuration of the micro-strip portion 221 is not limited to such, and may be adjusted according to operating frequencies of the first and second loop antennas 23, 24. The distal end 264 of each of the first connecting sections 262a is connected electrically to a corresponding one of the first loop antennas 23. The distal end 265 of each of the second connecting sections 262b is connected electrically to a corresponding one of the second loop antennas 24.
Referring to
Referring to
Referring again to
Referring to
In this embodiment, the signal-feed network 22 is configured to feed signals to the first and second loop antennas 23, 24 such that signals radiated thereby are substantially identical in amplitude and phase, thereby achieving efficient radiation of signals. In addition, the antenna device 2 of this embodiment is implemented by means of printed circuit board processes, and hence has relatively low costs and small dimensions.
Referring again to
It is to be noted that, in comparison with conventional planar array antennas, the antenna device 2 of the present embodiment is operable without requiring connection to the grounding plane 31, which, in the present embodiment, merely serves to reflect signals from the antenna device 2 such that signals radiated by the antenna device 2 are directional instead of bi-directional. Such a configuration of the grounding plane 31 increases the overall antenna gain of the antenna device 2 by 2.5 dB.
Furthermore, the substrate body 211 occupies an area not larger than that occupied by the system module 3, thereby ensuring that the grounding plane 31 is able to completely reflect signals radiated by the antenna device 2. Referring to
Referring to
Referring to
Referring to
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The antenna device 5 of the second preferred embodiment includes a substrate 51, a signal-feed network 52, a plurality of first loop antennas 23, a plurality of second loop antennas 24, and a signal transmission line 25. In this embodiment, configurations of the first and second loop antennas 23, 24 with respect to the signal-feed network 52 are substantially identical to those of the first and second loop antennas 23, 24 with respect to the signal-feed network 22 in the first preferred embodiment. The substrate 51 has a substrate body 511, and opposite first and second surfaces 512, 513.
The signal-feed network 52 of the antenna device 5 includes a micro-strip portion 521 that is disposed on the first surface 512, and a grounding portion 522 that is disposed on the second surface 513, that corresponds in position with the micro-strip portion 521, and that extends between opposite sides of the substrate body 511.
The micro-strip portion 521 has: a first signal-feed section 561 having opposite ends; a plurality of first connecting sections 562a connected electrically and respectively to the opposite ends of the first signal-feed section 561; a plurality of second connecting sections 562b connected electrically and respectively to the opposite ends of the first signal-feed section 561; a plurality of second signal-feed sections 563 each of which is in alignment with the first signal-feed section 561, is connected electrically to a junction of a respective pair of the first and second connecting sections 562a, 562b, and has a distal end distal from the respective pair of the first and second connecting sections 562a, 562b; a plurality of third connecting sections 564a each of which is connected electrically to the distal end of a respective one of the second signal-feed sections 563; a plurality of fourth connecting sections 564b each of which is connected electrically to the distal end of a respective one of the second signal-feed sections 563; and a feed-in section 565 disposed at the center of the signal-feed section 561 for feeding of signals therethrough. Each of the first and third connecting sections 562a, 564a has a distal end 566 that is distal from a central line extending along the first signal-feed section 561 and that is flush with a first peripheral edge 523 of the grounding portion 522. Each of the second and fourth connecting sections 562b, 564b has a distal end 567 that is distal from the central line extending along the first signal-feed section 561 and that is flush with a second peripheral edge 524 of the grounding portion 522. Identical to the first preferred embodiment, the second peripheral edge 524 is disposed opposite to the first peripheral edge 523. Each of the distal ends 566 of the first and third connecting sections 562a, 564a is connected electrically to a respective one of the first loop antennas 23, and each of the distal ends 567 of the second and fourth connecting sections 562b, 564b is connected electrically to a respective one of the second loop antennas 24. Moreover, the first loop antennas 23 are symmetric to the second loop antennas with respect to the central line extending along the first signal-feed section 561.
Of course, the first and second loop antennas 23, 24 may be increased in number to thereby improve radiation performance.
Referring to
The antenna device 8 of the third preferred embodiment includes a substrate 81, a signal-feed network 82, a plurality of first loop antennas 23, and a signal transmission line (not shown in
The signal-feed network 82 of the antenna device 8 includes a micro-strip portion 821 that is disposed on the first surface 812, and a grounding portion 822 that is disposed on the second surface 813, that corresponds in position with the micro-strip portion 821, and that extends between opposite sides of the substrate body 811.
The micro-strip portion 821 has: a first signal-feed section 861 having opposite ends; a plurality of first connecting sections 862 connected electrically and respectively to the opposite ends of the first signal-feed section 861; a plurality of second signal-feed sections 863 each of which is in alignment with the first signal-feed section 861, is connected electrically to a respective one of the opposite ends of the first signal-feed section 861, and has a distal end distal from the first signal-feed section 861; a plurality of second connecting sections 864 each of which is connected electrically to the distal end of a respective one of the second signal-feed sections 863; an input signal-feed section 865 connected to the distal end of one of the second signal-feed sections 863, and having a distal end distal therefrom; and a feed-in section 866 disposed at the distal end of the input signal-feed section 865 for feeding of signals therethrough. Each of the first and second connecting sections 862, 864 is connected electrically to a respective one of the first loop antennas 23.
In summary, the antenna devices 2, 5, 8 have relatively small dimensions, and high-directivity and high-gain radiation patterns when used with the system modules 3, 6, 9 such that the antenna devices 2, 5, 8 are suitable for outdoor applications.
While the present invention has been described in connection with what are considered the most practical and preferred embodiments, it is understood that this invention is not limited to the disclosed embodiments 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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2010 1 0255303 | Aug 2010 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
6825816 | Aikawa et al. | Nov 2004 | B2 |
7372407 | Shi | May 2008 | B2 |
7675466 | Gaucher et al. | Mar 2010 | B2 |
20030184479 | Collins | Oct 2003 | A1 |
Number | Date | Country |
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M357719 | May 2009 | TW |
Number | Date | Country | |
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20120038534 A1 | Feb 2012 | US |