Claims
- 1. An antenna, suitable for transmitting and receiving electromagnetic signals of wavelength λ, said antenna comprising:
a nonconductive substantially planar substrate having front and rear surfaces bounded by a common peripheral edge, said peripheral edge enclosing an antenna axis orthogonal to said front surface; a transmission line disposed on said rear surface; a conductive layer disposed on said front surface, said conductive layer including a plurality of slotted openings arrayed about said antenna axis, said conductive layer further including a surface-wave suppression region enclosing said array of slotted openings; and a plurality of peripheral openings disposed between said surface-wave suppression region and said peripheral edge, said peripheral openings extending through said conductive layer and said substrate; such that an electromagnetic signal fed into said transmission line is coupled sequentially into respective said slotted openings and transmitted from said slotted openings substantially in the direction of said antenna axis.
- 2. The antenna of claim 1 wherein said transmission line has a guided-wave length of at least λ.
- 3. The antenna of claim 1 wherein said transmission line is circular in shape so as to substantially enclose said antenna axis.
- 4. The antenna of claim 1 wherein said transmission line comprises a plurality of coupling regions, each said coupling region corresponding to one of said slotted openings.
- 5. The antenna of claim 1 wherein said surface-wave suppression region comprises a member of the group consisting of: photonic bandgap material and photonic crystal.
- 6. The antenna of claim 1 wherein said surface-wave suppression region comprises a plurality of concentric grooves.
- 7. The antenna of claim 6 wherein said concentric grooves are spaced at approximate intervals of
- 8. The antenna of claim 1 wherein said antenna has an approximate diameter of 6.25 inches.
- 9. The antenna of claim 1 further comprising a reflector disposed adjacent said antenna and RF material disposed between said reflector and said antenna.
- 10. A method of transmitting an electromagnetic signal of wavelength λ, said method comprising the steps of:
providing a nonconductive substantially planar substrate having front and rear surfaces bounded by a common peripheral edge, said peripheral edge enclosing an antenna axis orthogonal to said front surface; inputting the electromagnetic signal into a transmission line disposed on said rear surface; coupling the electromagnetic signal into a plurality of slotted openings arrayed about said antenna axis, said slotted openings formed in a conductive layer disposed on said front surface; attenuating surface waves propagating along said conductive layer by means of a surface-wave suppression region enclosing said slotted openings; and attenuating surface waves propagating through said substrate by means of a plurality of peripheral openings disposed between said surface-wave suppression region and said peripheral edge, said peripheral openings extending through said conductive layer and said substrate.
- 11. The method of claim 10 wherein said transmission line comprises a plurality of coupling regions, each said coupling region corresponding to one of said slotted openings.
- 12. The method of claim 10 wherein said surface-wave suppression region comprises a member of the group consisting of: photonic bandgap material and photonic crystal.
- 13. The method of claim 10 wherein said surface-wave suppression region comprises a plurality of concentric grooves.
- 14. An antenna, suitable for transmitting and receiving electromagnetic signals of wavelength λ, said antenna comprising:
a nonconductive substantially planar substrate having front and rear surfaces bounded by a common peripheral edge, said peripheral edge enclosing an antenna axis orthogonal to said front surface; a transmission line disposed on said rear surface, said transmission line having a guided-wave length of at least λ; a conductive layer disposed on said front surface, said conductive layer including twelve slotted openings arrayed about said antenna axis, said conductive layer further including a surface-wave suppression region enclosing said array of slotted openings; and at least one hundred twelve peripheral openings disposed between said surface-wave suppression region and said peripheral edge, said peripheral openings extending through said conductive layer and said substrate; such that an electromagnetic signal fed into said transmission line is coupled sequentially into respective said slotted openings and transmitted from said slotted openings substantially in the direction of said antenna axis.
- 15. The antenna of claim 14 wherein said transmission line comprises twelve coupling regions, each said coupling region corresponding to one of said slotted openings.
- 16. The antenna of claim 14 wherein said surface-wave suppression region comprises a member of the group consisting of: photonic bandgap material and photonic crystal.
- 17. The antenna of claim 14 wherein said surface-wave suppression region comprises at least ten concentric grooves.
- 18. The antenna of claim 17 wherein said concentric grooves are spaced at approximate intervals of
- 19. The antenna of claim 14 wherein said antenna has an approximate diameter of 6.25 inches.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of commonly-assigned copending U.S. patent application Ser. No. 09/373,319, which was filed on Aug. 16, 1999, by W. Kunysz for an Aperture Coupled Slot Array Antenna.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09373319 |
Aug 1999 |
US |
Child |
09732849 |
Dec 2000 |
US |