Microstrip antenna transceiver
09742068 · 2017-08-22
Assignee
Inventors
Cpc classification
H01Q9/0407
ELECTRICITY
H01Q3/24
ELECTRICITY
International classification
Abstract
A microstrip antenna transceiver with switchable polarization, used in a satellite signal reception device, includes a base board, having a first surface and a second surface; a ground metal plate, disposed on the first surface of the base board; an antenna module, disposed on the ground metal plate, having a radiating metal patch, a vertically polarized feeding hole and a horizontally polarized feeding hole; a first switch, set on the second surface of the base board; a second switch, set on the second surface of the base board; a first microstrip wire, electrically connected between the vertically polarized feeding hole of the antenna module and the first switch; and a second microstrip wire, electrically connected between the horizontally polarized feeding hole of the antenna module and the second switch.
Claims
1. A microstrip antenna transceiver with switchable polarizations, used in a satellite signal reception device, comprising: a base board, comprising a first surface and a second surface; a ground metal plate, disposed on the first surface of the base board; an antenna module, disposed on the ground metal plate, comprising a radiating metal patch, a vertically polarized feeding hole and a horizontally polarized feeding hole; a first switch, disposed on the second surface of the base board; a second switch, disposed on the second surface of the base board; a first microstrip wire, electrically connected between the vertically polarized feeding hole of the antenna module and the first switch; and a second microstrip wire, electrically connected between the horizontally polarized feeding hole of the antenna module and the second switch; wherein the radiating metal patch of the antenna module has a six-sided shape, and two opposite corners of a quadrilateral is trimmed to form the six-sided shape; wherein the vertically polarized feeding hole and the horizontally polarized feeding hole are symmetrical with respect to a diagonal line connecting the two opposite corners; wherein the first switch and the second switch do not electrically connect to the ground metal plate.
2. The microstrip antenna transceiver of claim 1, wherein the vertically polarized feeding hole is set on the first surface of the base board and set on a first location of a first direction along the first direction, the horizontally polarized feeding hole is set on the first surface of the base board and set on a second location of a second direction along the second direction, and the first direction is substantially vertical to the second direction.
3. The microstrip antenna transceiver of claim 2, wherein a shape of the radiating metal patch of the antenna module is a hexagon formed by a quadrilateral cutting two opposite corners.
4. The microstrip antenna transceiver of claim 1, wherein the microstrip antenna transceiver feeds a signal into the vertically polarized feeding hole via the first switch cooperating with the first microstrip wire, to generate a left-handed polarized signal.
5. The microstrip antenna transceiver of claim 1, wherein the microstrip antenna transceiver feeds a signal into the horizontally polarized feeding hole via the second switch cooperating with the second microstrip wire, to generate a right-handed polarized signal.
6. The microstrip antenna transceiver of claim 1, wherein the first switch and the second switch are transistors or diodes elements.
7. The microstrip antenna transceiver of claim 1, wherein when the first switch is conducted, a signal connection from the first switch, through the first microstrip wire and the vertically polarized feeding hole, to the radiating metal patch is established, and when the second switch is conducted, another signal connection from the second switch, through the second microstrip wire and the horizontally polarized feeding hole, to the radiating metal patch is established.
8. The microstrip antenna transceiver of claim 1, wherein the first switch is utilized for receiving a first signal, and the second switch is utilized for receiving a second signal; wherein when the first switch is conducted, the first switch transmits the received first signal to the vertically polarized feeding hole through the first microstrip wire, so as to feed the first signal to the radiating metal patch, and when the second switch is conducted, the second switch transmits the received second signal to the horizontally polarized feeding hole through the second microstrip wire, so as to feed the second signal to the radiating metal patch.
9. A microstrip antenna transceiver with switchable polarizations, used in a satellite signal reception device, comprising: a base board, comprising a first surface and a second surface; a ground metal plate, disposed on the first surface of the base board; an antenna module, disposed on the ground metal plate, comprising a radiating metal patch, a vertically polarized feeding hole and a horizontally polarized feeding hole; a first switch, disposed on the second surface of the base board; a second switch, disposed on the second surface of the base board; a first microstrip wire, electrically connected between the vertically polarized feeding hole of the antenna module and the first switch; and a second microstrip wire, electrically connected between the horizontally polarized feeding hole of the antenna module and the second switch; wherein the vertically polarized feeding hole is set on the first surface of the base board and set on a third location comprising a first displacement with a location of a third direction along the third direction, the horizontally polarized feeding hole is set on the first surface of the base board and set on a fourth location comprising a second displacement with a location of a fourth direction along the fourth direction, and the third direction is substantially vertical to the fourth directions; wherein the first switch and the second switch do not electrically connect to the ground metal plate.
10. The microstrip antenna transceiver of claim 9, wherein the microstrip antenna transceiver feeds a signal into the vertically polarized feeding hole via the first switch cooperating with the first microstrip wire, to generate a left-handed polarized signal.
11. The microstrip antenna transceiver of claim 9, wherein the microstrip antenna transceiver feeds a signal into the horizontally polarized feeding hole via the second switch cooperating with the second microstrip wire, to generate a right-handed polarized signal.
12. The microstrip antenna transceiver of claim 9, wherein the first switch and the second switch are transistors or diodes elements.
13. The microstrip antenna transceiver of claim 9, wherein when the first switch is conducted, a signal connection from the first switch, through the first microstrip wire and the vertically polarized feeding hole, to the radiating metal patch is established, and when the second switch is conducted, another signal connection from the second switch, through the second microstrip wire and the horizontally polarized feeding hole, to the radiating metal patch is established.
14. The microstrip antenna transceiver of claim 9, wherein the first switch is utilized for receiving a first signal, and the second switch is utilized for receiving a second signal; wherein when the first switch is conducted, the first switch transmits the received first signal to the vertically polarized feeding hole through the first microstrip wire, so as to feed the first signal to the radiating metal patch, and when the second switch is conducted, the second switch transmits the received second signal to the horizontally polarized feeding hole through the second microstrip wire, so as to feed the second signal to the radiating metal patch.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(11) Please refer to
(12) In brief, the microstrip antenna transceiver 20 transmits or receives signals with different polarizations (i.e. left-handed polarized signal and the right-handed polarized signal) by controlling the first switch 206 and the second switch 208, so that the microstrip antenna transceiver 20 can handle the signals with different polarizations by the switching operations, to save the cost and handle the signals with different polarizations by using the same one antenna transceiver.
(13) Please further refer to
(14) For the operations of transmitting a signal T, when the first switch 206 is conducted but the second switch 208 is off (i.e. the second switch 208 is not conducted), the signal T enters the microstrip antenna transceiver 20 from the first switch 206 and is fed to the vertically polarized feeding hole 216 via the first microstrip wire 210 so as to generate the vertically polarized signal SV_2 in the antenna module 204 and radiate the vertically polarized signal SV_2 on the air. However, since the radiating metal patch 214 has two cutting corners, part of the signal T would be transformed into the horizontally polarized signal SH_2. The transformed horizontally polarized signal SH_2 further enters the horizontally polarized feeding hole 218 to reach the off-status second switch 208 by way of the second microstrip wire 212 and reflects back to the horizontally polarized feeding hole 218, so that the antenna module 204 generates the horizontally polarized signal SH_2 and radiates the horizontally polarized signal SH_2 on the air. Note that, the microstrip antenna transceiver 20 can adjust the cutting corners of the radiating metal patch 214 or displacements of the vertically polarized feeding hole 216 and the horizontally polarized feeding hole 218 to make the energies of the vertically polarized signal SV_2 and the horizontally polarized signal SH_2 be equal, and further adjust the length L2 of the second microstrip wire 212 to make the vertically polarized signal SV_2 lead 90 degrees to the horizontally polarized signal SH_2, to generate the left-handed polarized antenna pattern. Besides, an antenna dimension and an electromagnetic field solution can be obtained when the reflection phase of the second switch 208 of the microstrip antenna transceiver 20 is 180 degrees. Then, when the reflection phase of the second switch 208 of the microstrip antenna transceiver 20 is not 180 degrees, the reflection phase can be adjusted to 180 degrees by adjusting the length L2 of the second microstrip wire 212. In other words, the microstrip antenna transceiver 20 can adjust the length L2 of the second microstrip wire 212 to the 180-degree reflection phase so as to obtain the same electromagnetic field solution without changing the antenna dimension.
(15) For the same reason, when the second switch 208 is conducted but the first switch 206 is off, the signal T enters the microstrip antenna transceiver 20 from the second switch 208 and is fed to the horizontally polarized feeding hole 218 via the second microstrip wire 212 so as to generate the horizontally polarized signal SH_2 in the antenna module 204 and radiate the horizontally polarized signal SH_2 on the air. However, since the radiating metal patch 214 has two cutting corners, part of the signal T would be transformed into the vertically polarized signal SV_2. The transformed vertically polarized signal SV_2 further enters the vertically polarized feeding hole 216 to reach the off-status first switch 206 byway of the first microstrip wire 210 and reflects back to the vertically polarized feeding hole 216, so that the antenna module 204 generates the vertically polarized signal SV_2 and radiates the vertically polarized signal SV_2 on the air. Note that the microstrip antenna transceiver 20 can adjust the cutting corners of the radiating metal patch 214 or displacements of the vertically polarized feeding hole 216 and the horizontally polarized feeding hole 218 to make the energies of the vertically polarized signal SV_2 and the horizontally polarized signal SH_2 be equal, and further adjust the length L1 of the first microstrip wire 210 to make the vertically polarized signal SV_2 lag 90 degrees to the horizontally polarized signal SH_2, to generate the right-handed polarized antenna pattern. Identically, when the reflection phase of the first switch 206 of the microstrip antenna transceiver 20 is not 180 degrees, the reflection phase can be adjusted to 180 degrees by adjusting the length L1 of the first microstrip wire 210. In other words, the microstrip antenna transceiver 20 can adjust the length L1 of the first microstrip wire 210 to the 180-degree reflection phase so as to obtain the same electromagnetic field solution without changing the antenna dimension. Note that, the first switch 206 and the second switch 208 can be performed by transistors or diode elements, but not limited herein.
(16) Moreover, for the receiving operations, via controlling the first switch 206 and the second switch 208, the microstrip antenna transceiver 20 can also transmit the left-handed polarized signal or the right-handed polarized signal received from the antenna module 204 to a backend circuit module (which is not illustrated on
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(18) The microstrip antenna transceiver 20 is an example of the present invention. Those skilled in the art should readily make combinations, modifications and/or alterations on the abovementioned description and examples. For example, please continue to refer to
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(20) AS seen above, the microstrip antenna transceiver of the present invention transmits or receives signals with different polarizations in different time and saves the cost by controlling switches and adjusting cutting corners of radiating metal patch, displacements of feeding holes or lengths of microstrip wires connected between switches and feeding holes.
(21) Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.