Claims
- 1. An endfire antenna for providing a horizontally polarized radiation pattern, comprising:an array of radiator elements arranged in a grid, each of said radiator elements being comprised of a plurality of flat segments of metallization having side edges defining a predetermined number of crossed cavity backed slots and mutually opposing inner corners and being located above a ground plane, each said flat segment further having a short circuit connection to the ground plane; an RF feed circuit providing a plurality of contributing field vectors from respective launch points at each segment of metallization of said radiator elements from a respective common RF feed point located at least two crossed slots of said predetermined number of crossed cavity backed slots and surrounded by said mutually opposing inner corners of said plurality of segments of the respective radiator element, and respective feed members extending across the slots from one segment of said plurality of segments of metallization to an immediate adjacent segment of each of said radiator elements for generating said launch points, and wherein a same one end of said feed members of each of said radiator elements is connected to said common RF feed point and the other end is open circuited.
- 2. An endfire antenna according to claim 1 wherein the segments of metallization are supported above the ground plane by an intermediate layer of dielectric material.
- 3. An endfire antenna according to claim 1 wherein said crossed slots comprise orthogonal slots.
- 4. An endfire antenna according to claim 1 wherein said side edges of said segments of metallization comprise substantially linear edges.
- 5. An endfire antenna according to claim 1 wherein all of said segments of metallization have a same multi-lateral geometric shape and said short circuit connection to the ground comprises a generally centralized short circuit connection.
- 6. An endfire antenna according to claim 5 wherein said segments of metallization are rectangular in shape.
- 7. An endfire antenna according to claim 5 wherein said segments of metallization are square in shape.
- 8. An endfire antenna according to claim 5 wherein said segments of metallization are triangular in shape.
- 9. An endfire antenna according to claim 1 wherein said at least two crossed slots comprise multiple pairs of crossed slots and said respective common RF feed point is located at respective crossing points of said pairs of crossed slots.
- 10. An endfire antenna according to claim 1 and additionally including at least one parasitic conductor element located at the intersection of said crossed slots.
- 11. An endfire antenna according to claim 10 wherein said at least one parasitic conductor comprises a crossed segment of metallization located between said segments of metallization of said antenna element.
- 12. An endfire antenna according to claim 11 wherein said segments of metallization are supported above the ground plane by an intermediate layer of dielectric material and wherein said crossed segment of metallization is fabricated on an outer surface of said dielectric layer between said segments of metallization.
- 13. An endfire antenna according to claim 10 wherein said at least one parasitic conductor comprises a loop of metallization located beneath said segments of metallization at said mutually opposing inner corners.
- 14. An endfire antenna according to claim 13 wherein said segments of metallization are supported above the ground plane by an intermediate layer of dielectric material and said loop of metallization is embedded in said layer of dielectric material.
- 15. An endfire antenna according to claim 14 wherein said loop of metallization comprises a generally rectangular loop of metallization.
- 16. An endfire antenna according to claim 1 and additionally including two floating parasitic conductor elements located at the intersection of said crossed slots.
- 17. An endfire antenna according to claim 16 wherein one of said two parasitic conductor elements comprises a crossed segment of metallization located between said segments of metallization and the other of said two parasitic conductor elements comprises a loop of metallization located beneath said segments of metallization at said mutually opposing inner corners.
- 18. An endfire antenna according to claim 17 and additionally including a layer of dielectric material supporting said segments of metallization on said ground plane, wherein said one parasitic conductor element is mounted on an external surface of said layer of dielectric material and said other parasitic conductor element is embedded in said layer of dielectric material.
- 19. An endfire antenna according to claim 18 wherein all of said segments of metallization have the same geometric shape.
- 20. An endfire antenna according to claim 19 wherein said short circuit connection comprises a generally centralized short circuit connection of said segments to the ground plane.
- 21. A method of providing a horizontally polarized endfire radiation pattern, comprising the steps of:arranging an array of radiator elements in a grid, wherein each of said radiator elements is comprised of a plurality of flat segments of metallization having side edges defining a predetermined number of crossed cavity backed slots and mutually opposing inner corners; locating the segments above a ground plane; shorting each of said flat segments to the ground plane; generating a plurality of launch points for contributing field vectors at each segment of metallization of said radiator elements from a respective common RF feed point located at at least two crossed slots of said predetermined number of crossed cavity backed slots and surrounded by said mutually opposing inner corners of said plurality of segments of the respective radiator element, by extending respective feed members extending across the slots from one segment of said plurality of segments of metallization to an immediate adjacent segment of each of said radiator elements for generating said launch points and connecting a same one end of said feed members of each of said radiator elements to said common RF feed point and leaving the other end open circuited.
- 22. A method according to claim 21 and additionally including the step of supporting the segments of metallization above the ground plane by an intermediate layer of dielectric material.
- 23. A method according to claim 21 and additionally including the step of extending the open circuited other end of the feed members about a quarter wavelength past the respective slots.
- 24. A method according to claim 21 wherein said side edges of said segments of metallization comprise substantially linear edges.
- 25. A method according to claim 21 wherein all of said segments of metallization have a same multi-lateral geometric shape and wherein said shorting step comprises shorting said segments to the ground substantially at the respective midpoints thereof.
- 26. A method according to claim 25 wherein said segments of metallization are rectangular in shape.
- 27. A method according to claim 25 wherein said segments of metallization are square in shape.
- 28. A method according to claim 25 wherein said segments of metallization are triangular in shape.
- 29. A method according to claim 21 and additionally including the step of locating at least one parasitic conductor element at the intersection of said crossed slots.
- 30. A method according to claim 29 wherein said at least one parasitic conductor comprises a crossed segment of metallization located between said segments of metallization of said antenna element.
- 31. A method according to claim 29 wherein said at least one parasitic conductor comprises a loop of metallization located beneath said segments of metallization at said mutually opposing inner corners.
- 32. A method according to claim 21 and additionally including the step of locating two floating parasitic conductor elements at the intersection of said crossed slots.
- 33. A method according to claim 32 wherein one of said two parasitic conductor elements comprises a crossed segment of metallization located between said segments of metallization and the other of said two parasitic conductor elements comprises a loop of metallization located beneath said segments of metallization at said mutually opposing inner corners.
- 34. A method according to claim 33 and additionally including the steps of supporting said segments of metallization on said ground plane by a layer of dielectric material, mounting said one parasitic conductor element on an external surface of said layer of dielectric material, and embedding said other parasitic conductor element in said layer of dielectric material.
- 35. A method according to claim 34 wherein all of said segments of metallization have the same geometric shape.
REFERENCE TO RELATED APPLICATION
This application is a Non-Provisional application claiming the benefit under 35 U.S.C. § 1.19(e) of U.S. Provisional Application Ser. No. 60/371,128, filed Apr. 10, 2002, the entire contents of which are meant to be incorporated herein by reference.
US Referenced Citations (6)
Provisional Applications (1)
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Number |
Date |
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60/371128 |
Apr 2002 |
US |