Claims
- 1. A wideband diplexer having a sharp frequency cut-off for separating an incoming wideband microwave frequency signal into upper and lower frequency bands, comprising:
- means for splitting said incoming signal into a first output signal having only said lower band of frequencies and into first and second intermediate signals each having both said upper and lower bands of frequencies and possessing essentially equal energy;
- a pair of waveguide assembies for respectively removing the frequencies in said lower band from said first and second intermediate signals, each of said waveguide assemblies including:
- (1) a first ridged waveguide tuned for shifting the phase of the lower frequency band, wherein said first ridged waveguide includes an elongate hollow waveguide body defining a waveguide cavity, said body having a pair of opposing ridges within said cavity, and a plurality of longitudinally spaced tuning elements extending through said ridges and into said cavity,
- (2) a second ridged waveguide for filtering out the lower frequency band; and
- means coupled with said waveguide assemblies for combining the filtered intermediate signals and having an output for delivering a second output signal having only said upper band of frequencies.
- 2. The wideband diplexer of claim 1, including means for adjusting the depth of penetration of said tuning elements into said cavity.
- 3. The widband diplexer of claim 1, wherein the depth of penetration of said tuning elements into said cavity is defined by a tapered distribution.
- 4. A wideband diplexer having a sharp frequency cut-off for separating an incoming wideband microwave frequency signal into upper and lower frequency bands, comprising:
- means for splitting said incoming signal into a first output signal having only said lower band of frequencies and into first and second intermediate signals each having both said upper and lower bands of frequencies and possessing essentially equal energy;
- a pair of waveguide assemblies for respectively removing the frequencies in said lower band from said first and second intermediate signals, each of said waveguide assemblies including:
- (1) a first ridged waveguide having a cavity and being tuned for shifting the phase of the lower frequency band, wherein said waveguide cavity is generally H-shaped in cross-section, and further including a plurality of longitudinally spaced tuning elements extending into said H-shaped cavity;
- (2) a second ridge waveguide for filtering out the lower frequency band; and
- means coupled with said waveguide assemblies for combining the filtered intermediate signals and having an output for delivering a second output signal having only said upper band of frequencies.
- 5. A wideband diplexer having a sharp frequency cut-off for separating an incoming wideband microwave frequency signal into upper and lower frequency bands, comprising:
- means for splitting said incoming signal into a first output signal having only said lower band of frequencies and into first and second intermediate signals each having both said upper and lower bands of frequencies and possessing essentially equal energy;
- a pair of waveguide assembies for respectively removing the frequencies in said lower band from said first and second intermediate signals, each of said waveguide assemblies including:
- (1) a first ridged waveguide tuned for shifting the phase of the lower frequency band,
- (2) a second ridged waveguide for filtering out the lower frequency band wherein said second ridged waveguide includes an elongate, hollow waveguide body defining a waveguide cavity, said body has a pair of opposing ridges within said cavity, and said body includes opposed tapered sidewalls on each end thereof; and
- means coupled with said waveguide assemblies for combining the filtered intermediate signals and having an output for delivering a second output signal having only said upper band of frequencies.
- 6. The wideband diplexer of claim 5 wherein the tapered sidewalls comprise a shape in accordance with an exponential function raised to a cosine squared power.
- 7. The wideband diplexer of claim 6 wherein the exponential function comprises: ##EQU2##
- 8. A wideband diplexer having a sharp frequency cut-off for separating an incoming wideband microwave frequency signal into upper and lower frequency bands, comprising:
- means for splitting said incoming signal into a first output signal having only said lower band of frequencies and into first and second intermediate signals each having both said upper and lower bands of frequencies and possessing essentially equal energy;
- a pair of waveguide assembies for respectively removing the frequencies in said lower band from said first and second intermediate signals, each of said waveguide assemblies including:
- (1) a first ridged waveguide tuned for shifting the phase of the lower frequency band,
- (2) a second ridged waveguide for filtering out the lower frequency band;
- wherein each of said assemblies further includes a third waveguide for introducing a line delay and an associated insertion phase shift in the corresponding intermediate signal; and
- means coupled with said waveguide assemblies for combining the filtered intermediate signals and having an output for delivering a second output signal having only said upper band of frequencies.
- 9. The wideband diplexer of claim 8 wherein said third waveguide comprises a rectangular cross-section.
- 10. The wideband diplexer of claim 8 wherein said third waveguide comprises ridged waveguide.
- 11. The wideband diplexer of claim 10 wherein said ridged waveguide comprises double-ridged waveguide.
- 12. A device for splitting an incoming, wideband microwave frequency signal into first and second output signals respectively of upper and lower frequency bands, comprising:
- first means for receiving said incoming signal and for dividing said incoming signal into an output signal having only said lower frequency band and into first and second intermediate signals, said first and second intermediate signals being of essentially equal energy and possessing frequencies in said upper and lower bands;
- means for shifting the phase of said first intermediate signal, said phase shifting means including a ridged waveguide;
- a pair of ridged waveguide filters for respectively receiving the phase shifted first intermediate signal and said second intermedite signal, said filters being operative to pass said upper frequency bands and to reflect said lower frequency bands with a sharp frequency cut-off therebetween, wherein each of said ridged waveguides includes an elongate, hollow waveguide body defining a waveguide cavity, the ridge in said waveguide being defined by a pair of opposed ridge portions extending into said cavity;
- means coupled with one of said filters for balancing the phase shifting effect of said phase shifting means; and,
- means for combining the signals output by said filters to form said second output signal.
- 13. The device of claim 12, wherein each of said ridged waveguide filters includes a plurality of longitudinally spaced tuning elements extending through said ridge portions and into said cavity.
- 14. The device of claim 11, wherein each of said ridged waveguide filters includes a pair of opposed, tapered sidewalls at each end thereof.
- 15. The device of claim 14 wherein the tapered sidewalls comprise a shape in accordance with an exponential function raised to a cosine squared power.
- 16. The device of claim 15 wherein the exponential function comprises: ##EQU3##
- 17. The wideband diplexer of claim 12 wherein said means for balancing comprises a waveguide having a rectangular cross-section.
- 18. The wideband diplexer of claim 12 wherein said means for balancing comprises a ridged waveguide.
- 19. The wideband diplexer of claim 18 wherein said ridged waveguide comprises double-ridged waveguide.
- 20. A device for shifting the phase of a traveling electromagnetic wave, comprising:
- an elongate, hollow waveguide body defining a waveguide cavity through which said electromagnetic wave may travel,
- said waveguide body having a pair of opposed, spaced apart ridges extending into said cavity and along essentially the entire length of said waveguide body; and,
- a plurality of tuning elements longitudinally spaced along said waveguide body and extending through said ridges into said cavity, said tuning elements being inductively coupled with said wave.
- 21. The device of claim 20, wherein said cavity is H-shaped in cross-section and further comprises a pair of opposed, tapered sidewalls at each end thereof, the taper of each sidewall comprising a shape in accordance with an exponential function raised to a cosine squared power.
- 22. The device of claim 21 wherein the exponential function comprises: ##EQU4##
- 23. A device for filtering preselected frequencies from a traveling electromagnetic wave, comprising:
- an elongate, hollow waveguide body having opposing top and bottom walls and opposing side walls defining a waveguide cavity through which said electromagnetic wave may travel, said top and bottom walls being spaced apart from each other by substantially the same distance along their lengths.
- said waveguide body having a pair of opposed spaced apart ridges attached to the top and bottom walls respectively and extending into said cavity along the entire length of said waveguide body,
- said side walls of said waveguide body being tapered outwardly to each end of said waveguide body.
- 24. The device of claim 23, wherein said opposing ridges are disposed between said tapered walls.
- 25. The device of claim 24 wherein the tapered sidewalls comprise a shape in accordance with an exponential function raised to a cosine squared power.
- 26. The device of claim 25 wherein the exponential function comprises: ##EQU5##
Parent Case Info
This is a continuation-in-part of application Ser. No. 107,000 filed Oct. 5, 1987 now abandoned, which was a continuation of application Ser. No. 811,597 filed Dec. 19, 1985 now abandoned.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3235821 |
Wilkinson |
Feb 1966 |
|
4060778 |
Hefni et al. |
Nov 1977 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
729405 |
May 1955 |
GBX |
Continuations (1)
|
Number |
Date |
Country |
Parent |
811597 |
Dec 1985 |
|
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
107000 |
Oct 1987 |
|