Claims
- 1. An antenna, comprising:
- a ground plane;
- a first dielectric contacting the ground plane and having a dielectric constant .epsilon..sub.r1 ;
- a conductive patch having a length L and contacting said first dielectric so as to sandwich at least a portion of said first dielectric between said patch and said ground plane, said patch forming a radiating element.
- a second dielectric covering the first dielectric and having a dielectric constant with a value .epsilon..sub.r2 representing a geometric mean value between the value .epsilon..sub.r3 and an ambient dielectric constant of an ambient dielectric propagating medium;
- said radiating element being the only radiating element between said first dielectric and the ambient dielectric propagating medium;
- said first dielectric covering substantially all of said ground plane and having a substantially continuous thickness and uniform dielectric constant;
- said second dielectric covering the first dielectric being a dielectric-constant-matching dielectric layer for matching the dielectric constant of the ambient dielectric propagating medium.
- 2. An antenna as in claim 1, wherein the thickness d of the second dielectric is less than half a resonant wavelength of the radiation in the second dielectric.
- 3. An antenna as in claim 2, wherein d=L.epsilon..sub.r2 /2.
- 4. An antenna as in claim 1, wherein the thickness d of the second dielectric is less than half of the length L.
- 5. An antenna as in claim 1, wherein the thickness d of the second dielectric is substantially equal to .lambda./4 where .lambda. is a wavelength radiation in the second dielectric.
- 6. An antenna as in claim 1, wherein L=.lambda..sub.o /2S where .lambda..sub.o is the wavelength of a propagating signal at which the antenna operates and S is a shrinking factor with S=2.sqroot..epsilon..sub.r1 to .sqroot..epsilon..sub.r1 /2.
- 7. An antenna as in claim 6, wherein S=.sqroot..epsilon..sub.r1 .
- 8. An antenna as in claim 1, wherein said second dielectric includes a plurality of matching layers, each of said layers having a dielectric constant less than the dielectric constant of the layer closer to the first dielectric and wherein each of said layers has a dielectric constant that is the geometric mean between the adjacent layers.
- 9. An antenna as in claim 7, wherein the number of matching layers is n and each layer has a position p=n . . . 2,1 relative to the first dielectric, and the respective dielectric layers have dielectric constants .epsilon.hd r1.sup.p/(n-1).
- 10. An antenna as in claim 1, wherein the patch is embedded in the first dielectric.
- 11. An antenna as in claim 1, wherein the patch overlies the first dielectric and lies between the first dielectric and the second dielectric.
- 12. An antenna as in claim 1, wherein the first dielectric includes two dielectric layers having the same dielectric constant and the patch lies between the two dielectric layers.
- 13. An antenna as in claim 1, wherein, said patch being embedded in said first dielectric and said ground plane underlying said first dielectric.
- 14. An antenna as in claim 1 wherein the patch is embedded in the first dielectric.
- 15. An antenna, comprising:
- a conductive arrangement having an overall dimension L=.lambda..sub.o /2S where .lambda..sub.o is a propagating wavelength of the antenna and S is a shrinking factor by which the length of the conducting arrangement is reduced from a half wavelength of .lambda..sub.o ;
- a first dielectric supporting the conductive arrangement and having a dielectric constant .epsilon..sub.r1 ;
- a free-space matching second dielectric between said first dielectric and free space and having a dielectric constant .epsilon..sub.r2 representing a geometric mean value between the value .epsilon..sub.r1 and an ambient dielectric constant of an ambient dielectric propagating medium;
- said first dielectric covering substantially all of said ground plane and having a substantially continuous thickness and uniform dielectric constant;
- said conductive arrangement being a patch antenna section including a patch having the length L and a ground plane, said patch and said ground plane sandwiching at least a portion of the first dielectric between them; and
- said patch forming a radiating element and being the only radiating element between the first dielectric and the ambient dielectric propagating medium.
- 16. An antenna as in claim 15, wherein the patch is embedded in the first dielectric.
- 17. An antenna as in claim 15, wherein the patch overlies the first dielectric and lies between the first dielectric and the second dielectric.
- 18. An antenna as in claim 16, wherein the first dielectric includes two dielectric layers having the same dielectric constant and the patch lies between the two dielectric layers.
- 19. An antenna as in claim 15, wherein said patch and said ground plane sandwich said first dielectric between them; said first dielectric and said second dielectric sandwich said patch between them.
- 20. An antenna as in claim 15, wherein said propagating medium is free space and .epsilon..sub.r2 =.sqroot..epsilon..sub.r1 and .epsilon..sub.r2 >1.
- 21. The method of forming a patch antenna, comprising
- placing a first dielectric having a substantially uniform dielectric constant .epsilon..sub.r1 and a substantially continuous thickness on a ground plane;
- supporting a microstrip patch having a length L with the first dielectric so as to form a microstrip patch antenna section with said first dielectric and said ground plane so said patch forms a radiating element;
- covering the first dielectric, having the substantially continuous thickness and substantially uniform dielectric constant, with a second dielectric having a dielectric constant .epsilon..sub.r2 =.sqroot..epsilon..sub.r1 .+-.30%, and a thickness d=L/(2.sqroot..epsilon..sub.r1 ).+-.30%, and .sqroot..epsilon..sub.r1 >1, so as to match the dielectric constant of the first dielectric with the dielectric constant of 1 by means of a dielectric constant which is a substantial geometric mean of the first dielectric constant and 1; and
- maintaining said first dielectric and said second dielectric free of radiating elements other than said patch.
- 22. The method as in claim 21, wherein the patch is placed on the first dielectric and the first and second dielectric sandwich the patch.
RELATED APPLICATIONS
This is a continuation application of Ser. No. 08/351,912 filed Dec. 8, 1994 now abandoned. This application is related to our copending applications entitled "HIGH EFFICIENCY ANTENNAS" (Evans 18-24-8) and "ANTENNAS WITH MEANS FOR BLOCKING CURRENTS IN GROUND PLANES" (Evans 20-26-10), filed concurrently herewith, and assigned to the same assignee as this application. This application is also related to our copending applications "HI EFFICIENCY MICROSTRIP ANTENNAS" (Evans 21-27-11) Ser. No. 08/351,904, filed Dec. 8, 1994, now U.S. Pat. No. 5,598,168 and "ANTENNAE WITH MEANS FOR BLOCK CURRENT IN GROUND PLANES", (Evans 22-28-12), Ser. No. 08/351,905, filed Dec. 8, 1994 now U.S. Pat. No. 5,559,521.
US Referenced Citations (17)
Foreign Referenced Citations (3)
Number |
Date |
Country |
3834075 |
Apr 1989 |
DEX |
0186805 |
Jul 1990 |
JPX |
1552233 |
Sep 1979 |
GBX |
Non-Patent Literature Citations (5)
Entry |
Johnson et al, Antenna Engineering Handbook, 1984, pp. 7-2-7-27. |
Katehi et al, "A Bandwidth Enhancement Method for Microstrip Antennas", Jul. 1985, pp. 405-408. |
"Superstrate Loading Effect on the Circular Polarization and Cross Polarization Characteristics of a Rectangular Microstrip Patch Antenna" from the IEEE Transactions on Antennas and Propagation, vol. 42, No. 2, Feb. 1994, New York, US, pp. 260-264, by Wen-Shyang Chen et al. |
"Modified Wolff Model for Determination of Resonance Frequency of Dielectric Covered Circular Microstrip Patch Antenna", Electronics Letters, vol. 27, No. 24, Nov. 21, 1991, pp. 2234-2236, by A.K. Verma et al. |
"Microstrip Elements and Arrays with Spherical Dielectric Overlays" published in the IEEE proceedings part H Microwaves, Antennas and Propagation, vol. 133, No. 6, Dec. 1986, pp. 474-482, by J.R. James et al. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
351912 |
Dec 1994 |
|