Claims
- 1. An E-plane waveguide comprising a housing having opposed walls and defining a waveguide channel therebetween,at least two elements spaced apart in a direction along the waveguide channel and defining an aperture therebetween, said elements being disposed between and spaced from said opposed walls and defining a resonant cavity therebetween with said waveguide channel, wherein at least one of said opposed walls has both respective first and second regions separated in a direction along said waveguide channel, at least one of said first and second regions being disposed opposite said aperture defined between said elements, and a respective third region between said first and second regions, and wherein said first and second regions protrude into said waveguide channel relative to said third region, and the spacing between said first and second regions in a direction along said waveguide channel is less than half a wavelength of the resonant frequency of said resonant cavity.
- 2. An E-plane waveguide as claimed in claim 1, wherein at least one of said first and second regions comprises a discrete protrusion extending into the waveguide channel relative to said third region, and at least a portion of said discrete protrusion is disposed opposite said aperture.
- 3. An E-plane waveguide as claimed in claim 2, wherein said first and second regions each comprises a discrete protrusion extending into said waveguide channel relative to said third region, and at least a portion of at least one of said first and second discrete protrusions is disposed opposite said aperture.
- 4. An E-plane waveguide as claimed in claim 1, wherein the spacing between said first and second regions in a direction along said waveguide channel is about one third of the wavelength of said resonant frequency or less.
- 5. An E-plane waveguide as claimed in claim 1, wherein at least one dimension of said first region is different to at least one corresponding dimension of said second region.
- 6. An E-plane waveguide as claimed in claim 5, wherein said first and second regions each define a protrusion and wherein said dimension is one of:(a) the distance which said first and second regions extend into said waveguide channel relative to said third region, (b) the dimension of said first and second regions in a direction along the length of said waveguide channel, and (c) the dimension of said first and second regions in a direction transverse to said waveguide channel.
- 7. An E-plane waveguide as claimed in claim 2, wherein each of said first and second regions comprises a discrete protrusion and the maximum dimension of each discrete protrusion transverse to a line perpendicular to the plane of the opposed wall from which the protrusion extends is less than or equal to the spacing between itself and the other said discrete protrusion.
- 8. An E-plane waveguide as claimed in claim 7, wherein each protrusion comprises a post.
- 9. An E-plane waveguide as claimed in claim 2, wherein each discrete protrusion is adapted such that the distance which the protrusion extends into said waveguide channel is adjustable by varying the position of the protrusion relative to the opposed wall from which the protrusion extends.
- 10. An E-plane waveguide as claimed in claim 9, wherein each protrusion is adapted to engage the opposed wall from which it extends such that the distance which said protrusion extends into said waveguide channel is adjustable by varying the angular position of said protrusion relative to the opposed wall from which it extends.
- 11. An E-plane waveguide as claimed in claim 10, wherein the protrusion threadably engages said wall.
- 12. An E-plane waveguide as claimed in claim 1, comprising one or more further regions spaced apart from each other and from said first and second regions in a direction along said waveguide channel and which protrude into said waveguide channel relative to said third region, and wherein the separation between adjacent protruding regions in a direction along said waveguide channel is less than half said wavelength.
- 13. An E-plane waveguide as claimed in claim 1, wherein the maximum dimension across the end of at least one of said first and second regions in a direction along the length of the waveguide channel is less than half of said wavelength.
- 14. A housing section for an E-plane waveguide comprising a first wall and a second wall for forming part of said waveguide and for defining part of a waveguide channel, said first wall adjoining said second wall, and said first wall spacing said second wall from a septum of said E-plane waveguide, and wherein the side of said second wall which faces the waveguide channel has first and second regions spaced apart in a direction along said housing section, and a third region positioned between said first and second regions, said first and second regions protruding from said second wall relative to said third region, and wherein the spacing between said first and second regions in a direction along the waveguide housing section is such that resonance between said first and second regions of the frequency to be resonated within a cavity of an E-plane waveguide formed by said housing section is prevented.
- 15. A housing section as claimed in claim 14, wherein the spacing between said first and second regions in a direction along said housing section is equal to or less than the height of the side of said second wall which faces said waveguide channel.
- 16. A housing section as claimed in claim 14, wherein at least one of said first and second regions comprises a discrete protrusion extending from said second wall.
- 17. A housing section as claimed in claim 14, wherein the maximum dimension of at least one of said first and second regions in a direction transverse to a line extending perpendicular from said second wall is less than or equal to the spacing between said first and second regions.
- 18. A housing section as claimed in claim 14, wherein said first and second regions protrude a distance from said second wall, and the distance which at least one of said first and second regions extends from said second wall is adjustable by varying the position of said at least one of said first and second regions relative to said second wall.
- 19. A housing section as claimed in claim 18, wherein said extent is adjustable by varying the angular position of at least one of said first and second regions.
- 20. A resonator for resonating an RF wave having a predetermined frequency and wavelength, the resonator comprising a resonant cavity having opposed walls and first and second elements disposed between said walls and displaced therefrom and spaced apart in a direction along said walls, and wherein at least one of said walls has first and second regions spaced apart in a direction of the spacing between said elements, and a third region between said first and second regions, wherein said first and second regions extend into said cavity relative to said third region, and the spacing between said first and second regions in a direction along said wall is such as to prevent resonance between said first and second regions of said predetermined frequency.
- 21. A resonator as claimed in claim 20, wherein the spacing between said first and second regions is less than the spacing between said elements.
- 22. A resonator as claimed in claim 21, wherein said first and second regions are integral with said wall.
- 23. A waveguide comprising a channel for receiving electromagnetic waves and having opposed walls, the surface of at least one of said opposed walls being defined by at least two projections spaced apart in a direction along the length of said channel, wherein the spacing between the projections in a direction along the length of the channel is less than half a predetermined resonant wavelength of electromagnetic waves to be passed by said waveguide, andan element between said opposed walls and extending in a direction along the length of said channel and defining an aperture through said element, the dimension of said aperture in a direction along the length of said channel defining said predetermined resonant wavelength, and wherein at least a portion of at least one of said projections is positioned opposite said aperture.
- 24. A waveguide as claimed in claim 23, wherein said element comprises a plurality of apertures positioned successively along the length of said channel, a dimension of each aperture along the length of said channel defining a resonant wavelength of an RF wave to be passed through said waveguide.
- 25. An E-plane waveguide as claimed in claim 1, wherein each of said first and second regions has a volume and the volume of said first region is different to the volume of said second region.
Parent Case Info
This application claims the benefit of Provisional Application No. 60/241,000, filed Oct. 18, 2000.
US Referenced Citations (9)
Foreign Referenced Citations (2)
Number |
Date |
Country |
57041702 |
Mar 1982 |
JP |
57070942 |
Apr 1982 |
JP |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/241000 |
Oct 2000 |
US |