This application claims priority of Taiwanese application no. 098114018, filed on Apr. 28, 2009.
1. Field of the Invention
This invention relates to an antenna, more particularly to a slot antenna.
2. Description of the Related Art
Circularly polarized antennas are omnidirectional, mitigate Faraday Effect and multipath fading, and thus are suitable for application in technologies such as radio frequency identification (RFID), global positioning system (GPS), and wireless local area network (WLAN). A conventional circularly polarized slot antenna includes an open loop antenna slot, and a perturbation slot that extends inwardly from the open loop antenna slot and that is rectangular in shape.
The aforementioned conventional circularly polarized slot antenna is disadvantageous in that, since the perturbation slot thereof has a relatively large width, the conventional circularly polarized slot antenna has insufficient gain and axial ratio bandwidth and is difficult to adjust to a desired circularly polarized wave.
Therefore, the object of the present invention is to provide a slot antenna that can overcome the aforesaid drawbacks of the prior art.
According to the present invention, a slot antenna comprises a dielectric substrate and an antenna body. The antenna body is formed on the dielectric substrate, and defines an open loop antenna slot that has opposite first and second ends, and an open loop perturbation slot that extends inwardly from the open loop antenna slot, and that has opposite first and second ends, each of which is connected to a respective one of the first and second ends of the open loop antenna slot.
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 slot antenna 10 of this invention operates in a radio frequency identification (RFID) ultra high frequency (UHF) range from 902 MHz to 928 MHZ, and has a low profile, as illustrated in
The dielectric substrate 2 has opposite first and second surfaces 21, 22, is generally square in shape, and has four sides 23, 24, 25, 26. Moreover, in this embodiment, the dielectric substrate 2 is made of FR4.
In some embodiments, the dielectric substrate 2 is made from a ceramic material.
The antenna body 1 is formed on the first surface 21 of the dielectric substrate 2, is a conductive foil, defines an open loop antenna slot 11, an open loop perturbation slot 12, a coupling slot 13, and an impedance matching slot 14, and has inner and outer regions 41, 42.
The open loop antenna slot 11 has opposite first and second ends 111, 112. In this embodiment, the open loop antenna slot 11 has a constant radius of curvature.
The open loop perturbation slot 12 extends radially and inwardly from the open loop antenna slot 11, and has opposite first and second ends 121, 122, each of which is connected to a respective one of the first and second ends 111, 112 of the open loop antenna slot 11. In this embodiment, the open loop perturbation slot 12 is generally U-shaped. Moreover, in this embodiment, the open loop perturbation slot 12 has a narrow width, as illustrated in
It is noted that the open loop perturbation slot 12 provides two orthogonal resonant modes that are excited in equal amplitude and that are 90° out of phase, thereby permitting the slot antenna 10 of this invention to radiate a circularly polarized wave.
The outer region 42 surrounds the open loop antenna slot 11, and has four sides, each of which is flush with a respective one of the sides 23, 24, 25, 26 of the dielectric substrate 2.
The slot antenna 10 further includes a grounding point 15 provided in the outer region 42 and disposed proximate to the side 23 of the dielectric substrate 2.
The coupling slot 13 extends radially and outwardly from the open loop antenna slot 11 at a position between the first and second ends 111, 112 of the open loop antenna slot 11, is generally rectangular in shape, and has a distal end distal from the open loop antenna slot 11.
The inner region 41 is defined by the open loop antenna slot 11 and has a center 43.
The antenna body 1 further defines a first imaginary straight line (L1) that passes through the open loop perturbation slot 12 and the center 43 of the inner region 41, and a second imaginary straight line (L2) that passes through the coupling slot 13 and the center 43 of the inner region 41. In this embodiment, the first and second imaginary straight lines (L1, L2) define therebetween a 135°-degree angle, thereby permitting the slot antenna 10 to radiate a right-hand circularly polarized wave.
In an alternative embodiment, the first and second imaginary straight lines (L1, L2) define therebetween a 45°-degree angle or a 225°-degree angle, thereby permitting the slot antenna 10 to radiate a left-hand circularly polarized wave.
In yet another embodiment, the first and second imaginary straight lines (L1, L2) define therebetween an angle such that the slot antenna 10 radiates an elliptically polarized wave.
The slot antenna 10 further includes a feeding element 3 formed on the second surface 22 of the dielectric substrate 2. The feeding element 3 is in the form of a microstrip line, and has opposite first and second ends 31, 32 that are respectively proximate to and distal from the side 23 of the dielectric substrate 2.
In this embodiment, the coupling slot 13 and the feeding element 3 overlap each other. Moreover, in this embodiment, the coupling slot 13 and the feeding element 3 are transverse to each other. Further, in this embodiment, the open loop perturbation slot 12 and the first end 31 of the feeding element 3 define a first distance therebetween, and the open loop perturbation slot 12 and the second end 32 of the feeding element 3 define a second distance therebetween less than the first distance.
The slot antenna 10 further includes a feeding point 33 provided on the first end of the feeding element 3.
It is noted that signals are fed to the slot antenna 10 through the feeding element 3 via the feeding point 33.
The impedance matching slot 14 is disposed in the outer region 42 and extends from the distal end of the coupling slot 13. In this embodiment, the impedance matching slot 14 is generally circular in shape.
It is noted that the impedance matching slot 14 operates as an open stub and is used for impedance matching of the slot antenna 10.
Based from experimental results, as illustrated in
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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098114018 | Apr 2009 | TW | national |