The present invention relates to a microstrip path antenna having high gain and wideband for satellite broadcasting system and satellite communication system and an array antenna having arranged a plurality of the microstrip patch antennas.
A microstrip patch antenna has been spotlighted as a mobile planar antenna for receiving satellite broadcasting signal. The microstrip patch antenna has been used in various fields because it can be easily manufactured as a small sized, light weighted, flatted.
However, the microstrip patch antenna also has weak point. It is difficult to manufacture the microstrip patch array antenna to have wideband and high gain characteristic although the microstrip patch array antenna is manufactured by arranging a plurality of microstrip patch antenna each of which having 5% of wideband which is VSWR<2 and 4 to 6 dB gain.
For overcoming the weak point of the microstrip patch array antenna, a microstrip patch array antenna having a stacked-layer structure is introduced. In the microstrip patch array antenna having stacked layer structure, a parasitic patch is stacked in radiation direction on a radiation patch. The microstrip patch array antenna having stacked-layer structure has 7 to 9 dBi gain as unit patch gain and 10 to 15% wideband.
In a prior art, a microstrip patch antenna has been manufactured by stacking and arranging patch elements in signal layer or double layers for obtaining desired gain for reception of satellite broadcasting signal.
However, the above mentioned convention microstrip patch antennas has disadvantages as follows.
A size of the conventional microstrip patch antennas is comparatively large. For arranging and stacking a plurality of antenna elements, complicated feeding circuit is used. Such a complicated feeding circuit causes loss of gain and it leads to cause degradation of antenna efficiency. Therefore, additional antenna elements are used for obtaining desired gain and the size of the microstrip patch antenna becomes increased.
Moreover, in an active phase array antenna, a plurality of active and passive antenna elements is coupled in a back side of antenna and it requires more number of active and passive elements. Thus, a cost of manufacturing the active phase array antenna is increased.
For using the microstrip patch antenna in mobile antenna system for satellite broadcast, the microstrip patch elements must have wideband characteristics, have transmitting/receiving feeding circuit for bidirectional communication, be small sized and have improved gain characteristics.
It is, therefore, an object of the present invention to provide a microstrip patch antenna having high gain and wideband by using a radiation patch having receiving/transmitting feeding circuit and two parasitic patches for impedance matching and director.
It is another object of the present invention to provide a microstrip patch array antenna having a plurality of a microstrip patch antenna having high gain and wideband by using a radiation patch having receiving/transmitting feeding circuit and two parasitic patches for impedance matching and director.
In accordance with an aspect of the present invention, there is provided a microstrip patch antenna having a high gain and wide band, including: a first patch antenna layer including a ground surface and a first dielectric layer for radiating a energy supplied from transmitting/receiving feeding circuit and a first radiation patch electrically coupled to the first dielectric layer and supplying the energy to a receiving feeding circuit electrically coupled with the first radiation patch, wherein the energy is supplied by electromagnetic coupling of a first parasitic patch and second parasitic patch; a second patch antenna layer including a second dielectric layer and third dielectric layer for improving impedance bandwidth of energy received through the first parasitic patch arranged in between the second dielectric layer and the third dielectric layer and radiating the improved impedance bandwidth; and a third patch antenna layer including a fourth dielectric layer and fifth dielectric layer for improving a gain of the energy received through the second parasitic patch arraigned in between the fourth dielectric layer and the fifth dielectric layer.
In accordance with an aspect of the present invention, there is also provided a microstrip patch array antenna, including: a plurality of microstrip patch antennas being arranged in a serial manner and coupled by electrically coupling transmitting feeding circuits of the microstrip patch antennas to a transmitting port and electrically coupling receiving feeding circuits of the microstrip patch antennas to a receiving port, wherein the microstrip patch antenna includes a first patch antenna layer including a ground surface and a first dielectric layer for radiating a energy supplied from transmitting/receiving feeding circuit and a first radiation patch electrically coupled to the first dielectric layer and supplying the energy to a receiving feeding circuit electrically coupled with the first radiation patch, wherein the energy is supplied by electromagnetic coupling of a first parasitic patch and second parasitic patch; a second patch antenna layer including a second dielectric layer and third dielectric layer for improving impedance bandwidth of energy received through the first parasitic patch arranged in between the second dielectric layer and the third dielectric layer and radiating the improved impedance bandwidth; and a third patch antenna layer including a fourth dielectric layer and fifth dielectric layer for improving a gain of the energy received through the second parasitic patch arraigned in between the fourth dielectric layer and the fifth dielectric layer.
The above and other objects and features of the present invention will become apparent from the following description of the preferred embodiments given in conjunction with the accompanying drawings, in which:
Other objects and aspects of the invention will become apparent from the following description of the embodiments with reference to the accompanying drawings, which is set forth hereinafter.
Referring to
In the above mentioned structure of the microstrip antenna, the first parasitic patch 150 and the second parasitic patch 180 are electrically coupled to the first radiation patch 130 and the electric coupling of the first parasitic patch 150 and the second parasitic patch 180 to the first radiation patch 130 increase a gain and bandwidth. Also, an amount of electrical coupling is varied according to a thickness of dielectric layers 120, 140 and 170_and it also influences to the gain and bandwidth. Therefore, appropriate thickness of the dielectric layer is predetermined for obtaining desired microstrip patch characteristics.
For electromagnetic coupling of the first radiation patch 130, the first parasitic patch 150 and the second parasitic patch 180, they are arranged as an overlapped manner.
Also, the first low dielectric layer 140 and the second low dielectric layer 170 must have lower electric permittivity than the first to third dielectric layers for effective electromagnetic coupling of the first radiation patch 130, the first parasitic patch 150 and the second parasitic patch 180.
The transmitting/receiving feeding circuits 131 and 132 directly and separately feed energy to the first radiation 130 and it is implemented in same layer of the first radiation patch 130 for being simultaneously operated as the transmitting/receiving antenna. Also, the transmitting/receiving feeding circuits 131 and 132 are orthogonally arranged for electrically coupled to the first radiation patch 130.
The third dielectric layer 190 supports the second parasitic patch 180 and, at the same time, works as a radome.
Hereinafter, a microstrip patch antenna having high gain and wideband of the present invention is explained in detail.
The transmitting feeding circuit 131 supplies energy to the first radiation patch 130 and the energy is passed to the first parasitic patch 150 and the second parasitic patch 180. By the first parasitic patch 150 and the second parasitic patch 180, the energy is radiated.
In a mean time, the energy received at the first parasitic patch 150 and the second parasitic patch 180 is passed to the first radiation patch 130 and the first radiation patch 130 passes the energy to the receiving feeding circuit 132.
Referring to
Referring to
Referring to
Also, in the preferred embodiment of the present invention, the transmitting/receiving feeding circuit can implemented by using a predetermined number of coupled electric circuits or serial/parallel distributing circuits for not decreasing pattern performance and minimizing loss in transmitting/receiving bandwidth.
Referring to
As mentioned above, the present invention can simultaneously transmit and receive signal by directly feeding energy to one radiation patch. Also, by using one radiation patch, the microstrip patch array antenna of the present invention can be manufactured as small sized.
Moreover, the present invention can obtain high gain and wide bandwidth by using radiation patch and two parasitic patches which are electrically coupled. Therefore, the number of antenna elements for constructing the microstrip patch array antenna is decreased and the size of array antenna can be reduced.
Furthermore, in case that the present invention is used in an active array antenna, the number of active or passive antenna elements is reduced. Therefore, a cost of manufacturing active array antenna can be reduced.
While the present invention has been described with respect to certain preferred embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the scope of the invention as defined in the following claims.
Number | Date | Country | Kind |
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10-2003-0063195 | Sep 2003 | KR | national |
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Number | Date | Country | |
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20050054317 A1 | Mar 2005 | US |