This application claims the benefit of Korean Patent Application No. 10-2008-0100498, filed with the Korean Intellectual Property Office on Oct. 14, 2008, the disclosure of which is incorporated herein by reference in its entirety.
1. Field
The following description relates to a broadband antenna, more specifically to a broadband circularly-polarized fractal antenna.
2. Description of the Related Art
An antenna is a transducer that is designed to efficiently radiate electromagnetic waves in space for wireless communication or to efficiently maintain an electromotive force by the electromagnetic waves, and is an apparatus for transmitting or receiving electromagnetic waves in the space for transmission.
Among various types of antennas, the microstrip patch antenna is a popular antenna type and has useful applications in various microwave communications because it is small, light and thin and is simple to fabricate so that mass production may be possible.
However, since the microstrip patch antenna has a narrow impedance bandwidth of around 1 to 2%, it may be difficult to implement a broadband circularly-polarized antenna by using such microstrip patch components.
In order to implement a broadband circularly-polarized antenna by using the microstrip patch component, the conventional technology has proposed that a phase distribution circuit is coupled and a multilayer substrate is used. However, since the conventional technology employs coupling of an additional circuit and use of a multilayer substrate, resulting in decreased efficiency due to the increase in the volume of the antenna and the increase in the cost of production.
Exemplary embodiments may provide a small broadband circularly-polarized antenna that is inexpensive to manufacture.
In one general aspect, a broadband circularly-polarized antenna includes a dielectric substrate, a ground surface, which is formed on an upper part of the dielectric substrate, a slot, which is formed in the shape of a spidron fractal and in which the slot is formed in the ground surface, and a microstripline, which feeds the spidron fractal slot of the ground surface through the substrate.
Also, the slot in the shape of a spidron fractal can be formed in such a way that a reduction ratio of each isosceles triangle forming the spidron fractal shape is 1/√{square root over (3)}.
Also, the slot in the shape of a spidron fractal can be structured in such a way that a same isosceles triangle is repeatedly coupled to another at least twice.
Also, a height of the microstripline can be 23 unit lengths, and a distance between a center of the microstripline and a point at which a vertex of a first isosceles triangle and a vertex of a second isosceles triangle meet each other can be 17 unit lengths. Here, the first isosceles triangle and the second isosceles triangle form the spidron fractal.
Also, a radiation component can be formed in the shape of a square, one side of which can be 40 unit lengths, and a width of the microstripline can be 3.4 unit lengths.
Additional aspects and advantages of the present invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention.
A broadband circularly-polarized spidron fractal antenna according to a certain embodiment of the present invention will be described below in more detail with reference to the accompanying drawings.
The spidron is a continuous geometric shape that consists of isosceles triangles, where, for every pair of joining triangles, each has a side of the other as one of its sides. As illustrated in Iteration 1 of
The structure illustrated in Iteration 3 of
In the present invention, it is preferable that, in the example illustrated in
and a same isosceles triangle is repeatedly coupled to another at least twice.
A 50Ω microstripline 25 is also formed on the other surface of the dielectric substrate 24. The 50Ω microstripline 25, which has height fh and width fw, performs a function of a feeding line. The microstripline 25 has its center located at a place separated by distance fs in the direction of x-axis from the point where the vertex of the first isosceles triangle and the vertex of the second isosceles triangle of the spidron structure meet each other.
Here, an RF-35 substrate or a PCB substrate such as a glass epoxy (FR-4), can be used as the dielectric substrate 24. In one possible embodiment of the present invention, an RF-35 substrate with a thickness of 1.52 mm and a relative dielectric constant of 3.5 can be used as the dielectric substrate 24.
After the results of performing a number of experiments by adjusting the above-described variables show that optimal resonance frequency band, axial ratio and radiation pattern are obtained when fs=17 mm and fh=23 mm. At this time, it can be seen that gw and gh are 40 mm, p1 is 30 mm, and fw is 3.4 mm.
Also, an SMA connector 23 is connected to the microstripline 25 and the ground surface 21 by being adhered to the dielectric substrate 24.
Referring to
Referring to
As described above, the broadband antenna of the present invention can realize a bandwidth exceeding 70% without using a multilayer substrate to implement the broadband properties, by forming a geometric structure of a slot, i.e., a spidron fractal, which has not been used in the conventional antennas, on the ground surface of the antenna.
The present invention can also induce the radiation properties of a circularly-polarized wave from the properties of the spidron fractal shape, without employing an additional secondary circuit such as a phase distribution circuit for implementing the circularly-polarized wave.
Due to such properties described above, the present invention can implement a small broadband circularly-polarized antenna that costs less to manufacture.
While the spirit of the present invention has been described in detail with reference to a particular embodiment, the embodiment is for illustrative purposes only and shall not limit the present invention. It is to be appreciated that those skilled in the art can change or modify the embodiment without departing from the scope and spirit of the present invention.
As such, many embodiments other than that set forth above can be found in the appended claims.
Number | Date | Country | Kind |
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10-2008-0100498 | Oct 2008 | KR | national |
Number | Name | Date | Kind |
---|---|---|---|
4847625 | Dietrich et al. | Jul 1989 | A |
20020175874 | Eason | Nov 2002 | A1 |
20080094297 | Petkov et al. | Apr 2008 | A1 |
Number | Date | Country | |
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20100090918 A1 | Apr 2010 | US |