Claims
- 1. A communications system for communicating information, comprising:
a transmitter for transmitting information from a first location, comprising:
a transmitter antenna system comprising a plurality of antenna elements; and transmitter electronics producing a transmitter rotational signal corresponding to a rotation frequency, said transmitter electronics launching from said transmitter antenna system a modulated carrier wave propagating along an axis, said modulated carrier wave having a carrier frequency and modulated with said information, said modulated carrier wave having an electric field vector rotating about said axis at an angular velocity corresponding to said rotation frequency, said rotation frequency being between said carrier frequency and zero; and a receiver for receiving information from said transmitter at a second location remote from said first location, comprising:
a receiver antenna system comprising a plurality of antenna elements for producing received signals in response to said modulated carrier wave impinging upon said plurality of antenna elements; and receiver electronics producing a receiver rotational signal corresponding to said rotation frequency, said receiver electronics reproducing said information in response to said received signals and said receiver rotational signal.
- 2. A communications system for transmitting information, comprising:
a plurality of transmitters for transmitting information, each transmitter comprising:
a transmitter antenna system comprising a plurality of antenna elements; and transmitter electronics including a transmitter rotation frequency source circuit, said transmitter rotation frequency source circuit producing a transmitter rotational signal corresponding to a rotation frequency different from said rotation frequency of all other transmitters of said plurality of transmitters, said transmitter electronics launching from said transmitter antenna system a modulated carrier wave propagating along an axis, said modulated carrier wave modulated with said information and having a carrier frequency the same as said carrier frequency of all other said transmitters of said plurality of transmitters, said modulated carrier wave having an electric field vector rotating about said axis at an essentially constant angular velocity corresponding to said rotation frequency, said rotation frequency being between said carrier frequency and zero.
- 3. A communications system for receiving information, comprising:
a plurality of receivers for receiving information, each receiver comprising:
a receiver antenna system comprising a plurality of antenna elements for producing received signals in response to a modulated carrier wave impinging upon said plurality of antenna elements, said carrier wave modulated with said information and having an electric field vector rotating about said axis at an essentially constant angular velocity corresponding to a rotation frequency, said rotation frequency being between said carrier frequency and zero; and receiver electronics including a receiver rotation frequency source circuit producing a receiver rotational signal corresponding to a rotation frequency, said receiver electronics reproducing said information in response to said received signals and said receiver rotational signal.
- 4. A transmitter for transmitting a carrier signal having a carrier frequency and modulated with information, comprising:
a rotation frequency source, said rotation frequency source producing a rotation signal having a rotation frequency less than said carrier frequency and having a rotation wavelength; a plurality of phase systems, each said phase system corresponding to one of said antenna elements, each said phase system producing a corresponding time-delayed signal in response to said rotation signal and a time-delay corresponding to said phase system and different from said time-delay corresponding to all other said phase systems, each phase system having an amplitude modulator for producing an amplitude-modulated signal in response to said carrier signal and said time-delayed signal, said amplitude-modulated signal being modulated with said time-delayed signal; and a plurality of antenna elements, each antenna element corresponding to one of said phase systems and receiving said amplitude-modulated signal from said corresponding phase system, and each antenna element being a dipole and having in an angular orientation different from an angular orientation of all other said antenna elements.
- 5. The transmitter recited in claim 4, wherein said antenna elements are radially arrayed with respect to a center point at equal angular spacings from one another.
- 6. The transmitter recited in claim 5, wherein:
said plurality of antenna elements consists of N antenna elements; and said plurality of corresponding phase systems consists of N phase systems; and said time-delay corresponding to each said phase system is different from said time-delay corresponding to one other of said phase systems by a time substantially corresponding to said rotation wavelength divided by N.
- 7. The transmitter recited in claim 5, wherein said plurality of antenna elements comprises three antenna elements.
- 8. A receiver for receiving a modulated carrier wave modulated with information, having a carrier frequency, and having a constant electric field angular velocity less than said carrier frequency, comprising:
a plurality of antenna elements, each antenna element being a dipole and having an angular orientation different from an angular orientation of all other said antenna elements, each antenna element producing a corresponding amplitude-modulated signal in response to the modulated carrier wave impinging upon said element; a rotation frequency source, said rotation frequency source producing a rotation signal having a rotation frequency less than said carrier frequency and having a rotation wavelength; a plurality of phase systems, each said phase system corresponding to one of said antenna elements and receiving an amplitude-modulated signal corresponding to said antenna element, each said phase system producing a corresponding time-delayed signal in response to said rotation signal and a time-delay corresponding to said phase system and different from said time-delay corresponding to all other said phase systems, each phase system having an amplitude demodulator for producing an amplitude-demodulated signal in response to said corresponding amplitude-modulated signal and and said time-delayed signal, said amplitude modulated signal having an amplitude modulated with said time-delayed signal; and a combiner for summing said amplitude-modulated signal produced by each phase system with said amplitude-modulated signal produced by all other of said phase systems.
- 9. The receiver recited in claim 8, wherein said antenna elements are radially arrayed with respect to a center point at equal angular spacings from one another.
- 10. The receiver recited in claim 9, wherein:
said plurality of antenna elements consists of N antenna elements; and said plurality of corresponding phase systems consists of N phase systems; and said time-delay corresponding to each said phase system is different from said time-delay corresponding to one other of said phase systems by a time substantially corresponding to said rotation wavelength divided by N.
- 11. The receiver recited in claim 10, wherein said plurality of antenna elements comprises three antenna elements.
- 12. A communications system for communicating information, comprising:
a plurality of transmitters, each for transmitting a carrier wave propagating along an axis, said carrier wave having a carrier frequency and an electric field vector rotating about said axis at an angular velocity corresponding to a rotation frequency between said carrier frequency and zero, said rotation frequency corresponding to said angular velocity of said electric field vector of said carrier wave transmitted by one of said transmitters being different from said rotation frequency corresponding to said angular velocity of said electric field vector of said carrier wave transmitted by all other transmitters of said plurality; and a plurality of receivers, each for receiving one of said carrier waves.
- 13. A method for radio communications, comprising the steps of:
producing a transmitter rotation signal having a rotation frequency; launching from a transmitter antenna system a carrier wave propagating along an axis, said modulated carrier wave having a carrier frequency and modulated with information, said modulated carrier wave having an electric field vector rotating about said axis at an angular velocity corresponding to said rotation frequency, said rotation frequency being between said carrier frequency and zero; producing a received signal in response to said modulated carrier wave impinging upon a receiver antenna system remote from said transmitter antenna system; synchronizing a receiver rotation signal to said rotation frequency of said transmitter rotation signal; and reproducing said information in response to said received signal and said receiver rotation signal.
- 14. A transmitter for transmitting a carrier signal having a carrier frequency and modulated with information, comprising:
a lower modulator circuit for producing a lower differential carrier signal having a frequency lower than said carrier frequency by a value equal to a rotation frequency and for modulating said lower differential carrier signal with said information; an upper modulator circuit for producing an upper differential carrier signal having a frequency higher than said carrier frequency by a value equal to said rotation frequency and for modulating said upper differential carrier signal with said information; a lower antenna system coupled to said lower modulator for producing a wave in response to an information-modulated lower differential carrier signal, said circularly polarized wave having a first sense; and an upper antenna system coupled to said upper modulator for producing a circularly polarized wave in response to an information-modulated lower differential carrier signal, said circularly polarized wave having a second sense opposite said first sense.
- 15. The transmitter recited in claim 14, wherein:
said lower antenna system comprises a lower helical antenna element having a first twist; said upper antenna system comprises an upper helical antenna element having a second twist opposite said first twist.
- 16. A receiver for receiving a modulated carrier wave modulated with information, having a carrier frequency, and having a constant electric field angular velocity less than said carrier frequency, comprising:
a lower antenna system sensitive to a wave circularly polarized in a first sense; an upper antenna system sensitive to a wave circularly polarized in a second sense opposite said first sense; a lower differential carrier frequency filter coupled to said lower helical antenna element, said lower differential carrier frequency filter producing a lower sideband signal having a frequency lower than said carrier frequency by a value equal to a rotation frequency, said rotation frequency corresponding to said constant electric field angular velocity of said carrier wave; an upper differential carrier frequency filter coupled to said upper helical antenna element, said upper differential carrier frequency filter producing an upper sideband signal having a frequency higher than said carrier frequency by a value equal to said rotation frequency; a summing circuit coupled to said upper and lower differential carrier frequency filters for producing a sum signal representing a sum of said upper and lower sideband signals; and a modulation detector circuit for recovering said information from said sum signal.
- 17. The receiver recited in claim 16, wherein:
said lower antenna system comprises a lower helical antenna element having a first twist; said upper antenna system comprises an upper helical antenna element having a second twist opposite said first twist.
- 18. A transmitter for transmitting information, comprising:
a signal-to-electromagnetic wave converter system; and transmitter electronics launching from said converter system an electromagnetic wave propagating along an axis of propagation and having a carrier frequency and an electric field vector and modulated with said information, an extremity of said electric field vector tracing a non-linear periodic path at a frequency between said carrier frequency and zero from a perspective of an observer looking into said axis of propagation.
- 19. The transmitter recited in claim 18, wherein said converter system comprises an antenna system.
- 20. The transmitter recited in claim 19, wherein said path is a rosette.
- 21. The transmitter recited in claim 20, wherein said wave is amplitude-modulated with said information, said wave carrying said information at said carrier frequency.
- 22. A method for communicating information, comprising the step of launching an electromagnetic wave along an axis of propagation, said wave having a carrier frequency and an electric field vector and modulated with said information, an extremity of said electric field vector tracing a non-linear periodic path at a frequency between said carrier frequency and zero from a perspective of an observer looking into said axis of propagation.
- 23. The method recited in claim 22, wherein said extremity of said electric field vector traces a rosette path at a constant angular velocity between said carrier frequency and zero from said perspective of said observer looking into said axis of propagation.
- 24. The method recited in claim 23, wherein said wave is amplitude-modulated with said information, said wave carrying said information at said carrier frequency.
- 25. An electromagnetic wave propagating along an axis of propagation and having a carrier frequency and an electric field vector and modulated with information, an extremity of said electric field vector tracing a non-linear periodic path at a frequency between said carrier frequency and zero from a perspective of an observer looking into said axis of propagation.
- 26. The electromagnetic wave recited in claim 25, wherein said extremity of said electric field vector traces a rosette path at a constant angular velocity between said carrier frequency and zero from said perspective of said observer looking into said axis of propagation.
- 27. The electromagnetic wave recited in claim 26, wherein said wave is amplitude-modulated with said information, said wave carrying said information at said carrier frequency.
- 28. A method for transmitting information using a carrier signal having a carrier frequency, comprising:
(a) transmitting the carrier signal as an electromagnetic wave carrying the information having a plurality of values, the electromagnetic wave having an electric field rotating about a propagation axis at a rotation frequency less than the carrier frequency and greater than zero.
- 29. A method for transmitting information using a carrier signal having a carrier frequency, comprising:
(a) transmitting the carrier signal as an electromagnetic wave carrying the information having a plurality of values, the electromagnetic wave having an electric field, the electric field having a terminus tracing a rosette-shaped path from a perspective of a plane perpendicular to a propagation axis.
- 30. The method of claim 29, wherein the rosette-shaped path is periodically repeated in a time period corresponding to a rotation frequency, the rotation frequency being less than the carrier frequency and greater than zero.
- 31. The method of claim 29, wherein the rosette-shaped path is periodically repeated in a time period corresponding to a rotation frequency, the rotation frequency being less than the carrier frequency and greater than zero, the rosette-shaped path being aligned with previously traced paths when the rotation frequency is a multiple integer of the carrier frequency.
- 32. The method of claim 29, wherein the wave transmitted in step (a) is amplitude-modulated with the information, the wave carrying the information at the carrier frequency.
- 33. The method of claim 29, wherein the wave transmitted in step (a) is amplitude-modulated with the information, the wave carrying the information at the carrier frequency, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 34. The method of claim 29, wherein the wave transmitted in step (a) is frequency-modulated with the information, the wave carrying the information at the carrier frequency.
- 35. The method of claim 29, wherein the wave transmitted in step (a) is frequency-modulated with the information, the wave carrying the information at the carrier frequency, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 36. The method of claim 29, wherein the wave transmitted in step (a) is phase-modulated with the information, the wave carrying the information at the carrier frequency.
- 37. The method of claim 29, wherein the wave transmitted in step (a) is phase-modulated with the information, the wave carrying the information at the carrier frequency, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 38. The method of claim 29, wherein rotation frequency of the wave transmitted in step (a) is frequency-modulated with information.
- 39. The method of claim 29, wherein rotation frequency of the wave transmitted in step (a) is frequency-modulated with information, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 40. The method of claim 29, wherein rotation frequency of the wave transmitted in step (a) is phase-modulated with information.
- 41. The method of claim 29, wherein rotation frequency of the wave transmitted in step (a) is phase-modulated with information, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 42. A method for generating an electromagnetic wave having a rotating electric field rotating about a propagation axis, comprising:
(a) generating a plurality of component signals having a carrier frequency; (b) modulating each component signal with one rotation signal from a plurality of rotation signals having a rotation frequency being less than the carrier frequency and greater than zero, each rotation signal being phase shifted from the remaining rotation signals; and (c) transmitting the electromagnetic wave based on the modulated component signals, the electromagnetic wave having an electric field rotating about the propagation axis at a rotation frequency corresponding to the rotation frequency.
- 43. A method for communicating information using an electromagnetic wave having a carrier frequency, comprising:
(a) transmitting an electromagnetic wave having the carrier frequency and carrying the information, the electromagnetic wave having an electric field rotating about the propagation axis at a rotation frequency less than the carrier frequency and greater than zero; and (b) receiving the electromagnetic wave in synchronization with the rotating electric field.
- 44. A method for receiving information using an electromagnetic wave having a carrier frequency and having an electric field rotating about the propagation axis at a rotation frequency less than the carrier frequency and greater than zero, the electromagnetic wave carrying the information, comprising:
(a) receiving the electromagnetic wave carrying the information to produce a plurality of component signals each having the carrier frequency; (b) demodulating each component signal by one rotation signal from a plurality of rotation signals having a rotation frequency, each rotation signal being out of phase with the remaining rotation signals; and (c) reproducing the information from the component signals.
- 45. The method of claim 44, wherein the wave transmitted in step (a) is amplitude-modulated with the information, the wave carrying the information at the carrier frequency.
- 46. The method of claim 44, wherein the wave transmitted in step (a) is amplitude-modulated with the information, the wave carrying the information at the carrier frequency, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 47. The method of claim 44, wherein the wave transmitted in step (a) is frequency-modulated with the information, the wave carrying the information at the carrier frequency.
- 48. The method of claim 44, wherein the wave transmitted in step (a) is frequency-modulated with the information, the wave carrying the information at the carrier frequency, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 49. The method of claim 44, wherein the wave transmitted in step (a) is phase-modulated with the information, the wave carrying the information at the carrier frequency.
- 50. The method of claim 44, wherein the wave transmitted in step (a) is phase-modulated with the information, the wave carrying the information at the carrier frequency, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 51. The method of claim 44, wherein rotation frequency of the wave transmitted in step (a) is frequency-modulated with information.
- 52. The method of claim 4, wherein rotation frequency of the wave transmitted in step (a) is frequency-modulated with information, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 53. The method of claim 44, wherein rotation frequency of the wave transmitted in step (a) is phase-modulated with information.
- 54. The method of claim 44, wherein rotation frequency of the wave transmitted in step (a) is phase-modulated with information, the rotation frequency being less than the carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 55. An apparatus for transmitting information using a carrier signal having a carrier frequency, comprising:
a rotation modulator receiving the carrier signal and a rotation signal having a rotation frequency less than the carrier frequency, said rotation modulator splitting the rotation signal into component signals, said rotation modulator phase shifting each component signal, said rotation modulator modulating the carrier signal with the component signals; and a transmission medium coupler connected to said rotation modulator, said coupler transmitting an electromagnetic wave based on the modulated carrier signal, the electromagnetic wave having an electric field rotating about a propagation axis at the rotation frequency.
- 56. The apparatus of claim 55, wherein:
the transmission medium coupler is a plurality of antenna dipoles arranged angularly around the propagation axis and within a plane perpendicular to the propagation axis; and the rotation modulator phase shifting the components signals an amount corresponding to the angular arrangement of the antenna dipoles.
- 57. The apparatus of claim 55, wherein:
the transmission medium coupler is a plurality of helical antenna elements arranged substantially with a propagation axis; and the rotation modulator phase shifting the component signals an amount corresponding to the twists of the helical antennas.
- 58. The apparatus of claim 55, wherein the transmission medium coupler is a plurality of waveguides horns arranged with a propagation axis.
- 59. An apparatus for transmitting information using a plurality of carrier signals having a carrier frequency, comprising:
a plurality of rotation modulators each receiving one rotation signal from a plurality of rotation signals having a rotation frequency less than the carrier frequency and greater than zero, each rotation signal being phase shifted from the remaining rotation signals, each modulator receiving one carrier signal from the plurality of carrier signals, each rotation modulator modulating the carrier signal with the rotation signal; and a transmission medium coupler connected to said plurality of rotation modulators, said coupler transmitting an electromagnetic wave based on the modulated carrier signals, the electromagnetic wave having an electric field rotating about a propagation axis at the rotation frequency.
- 60. An apparatus for receiving information using an electromagnetic wave having a carrier frequency and carrying the information, the electromagnetic wave having an electric field rotating about a propagation axis at rotation frequency less than the carrier frequency and greater than zero, comprising:
a transmission medium coupler converting the electromagnetic wave to a plurality of component signals; and a plurality of rotation demodulators connected to said coupler, each rotation demodulator receiving one component signal from the plurality of component signals, each first demodulator demodulating the component signal by one rotation signal from a plurality of rotation signals having the rotation frequency, each rotation signal being phase shifted from the remaining rotation signals.
- 61. The apparatus of claim 60, wherein:
the transmission medium coupler is a plurality of antenna dipoles arranged angularly around the propagation axis and within a plane perpendicular to the propagation axis; and each rotation demodulator phase shifts its rotation signal phase an amount corresponding to the angular arrangement of its associated antenna dipole.
- 62. The apparatus of claim 60, wherein:
the transmission medium coupler is a plurality of helical antenna elements arranged substantially with a propagation axis; and each rotation demodulator phase shifts its rotation signal an amount corresponding to the twist of its associated helical antenna.
- 63. The apparatus of claim 60, wherein the transmission medium coupler is a plurality of waveguides horns substantially with a propagation axis.
- 64. An apparatus for communicating information using a carrier signal having a carrier frequency, comprising:
means for transmitting the carrier signal as an electromagnetic wave carrying the information, the electromagnetic wave having an electric field rotating about a propagation axis at a rotation frequency less than the carrier frequency and greater than zero; and means for receiving the electromagnetic wave in synchronization with the rotating electric field.
- 65. Modulation circuitry in an information transmitter using a carrier signal having a carrier frequency and a rotation signal having a rotation frequency, the modulation circuitry comprising:
a plurality of phase shifters, each phase shifter shifting the phase of the rotation signal relative to the remain phase shifters of the plurality of phase shifters; and a plurality of balanced mixer modulators each one of which being connected to one phase shifter from the plurality of phase shifters, each balanced mixer modulator amplitude modulating the carrier signal with the shifted rotation signal to produce a resulting signal having a first of frequency component, a second of frequency component and a third frequency component, the first frequency component having a first frequency less than the carrier frequency, the second frequency component having a second frequency greater than the carrier frequency, the third frequency component having the carrier frequency and having an amplitude less then the amplitude of the carrier signal.
- 66. Modulation circuitry in an information receiver using a received signal having a first of frequency component, a second of frequency component and a third frequency component, the first frequency component having a first frequency less than a carrier frequency, the second frequency component having a second frequency greater than the carrier frequency, the third frequency component having the carrier frequency, the modulation circuitry comprising:
a plurality of phase shifters, each phase shifter shifting the phase of a rotation signal relative to the remaining phase shifters of the plurality of phase shifters; and a plurality of voltage variable attenuators each one of which being connected to one phase shifter from the plurality of phase shifters, each voltage variable attenuator amplitude demodulating the received signal with the shifted rotation signal to produce a resulting signal at the carrier frequency.
- 67. A method for transmitting information using a first carrier signal having a first carrier frequency and using a second carrier signal having a second carrier frequency, comprising:
(a) transmitting a first electromagnetic wave based on the first carrier signal, the first electromagnetic wave carrying the information and having a first electric field rotating about a propagation axis in a first direction; (b) transmitting a second electromagnetic wave based on the second modulated carrier signal, the second electromagnetic wave carrying the information and having a second electric field rotating about the propagation axis in a second direction opposite of the first direction.
- 68. The method of claim 67, wherein the first carrier signal and the second carrier signal are amplitude-modulated with the information, the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency.
- 69. The method of claim 67, wherein the first carrier signal and the second carrier signal are amplitude-modulated with the information, the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency, the resultant wave having an electric field rotating at a rotation frequency less than the average by at least one-half of a bandwidth of the information and greater than zero by at least one-half of the information bandwidth.
- 70. The method of claim 67, wherein the first carrier signal and the second carrier signal are frequency-modulated with the information, the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency.
- 71. The method of claim 67, wherein the first carrier signal and the second carrier signal are frequency-modulated with the information, the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency, the resultant wave having an electric field rotating at a rotation frequency less than the average by at least one-half of a bandwidth of the information and greater than zero by at least one-half of the information bandwidth.
- 72. The method of claim 67, wherein the first carrier signal and the second carrier signal are phase-modulated with the information, the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency.
- 73. The method of claim 67, wherein the first carrier signal and the second carrier signal are frequency-modulated with the information, the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency, the resultant wave having an electric field rotating at a rotation frequency less than the average by at least one-half of a bandwidth of the information and greater than zero by at least one-half of the information bandwidth.
- 74. The method of claim 67, wherein the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having an electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being frequency-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency.
- 75. The method of claim 67, wherein the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having an electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being frequency-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 76. The method of claim 67, wherein the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having an electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being phase-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency.
- 77. The method of claim 67, wherein the first wave and the second wave transmitted in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having an electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being phase-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 78. A method for communicating information using a first carrier signal having a first carrier frequency and using a second carrier signal having a second carrier frequency, comprising:
(a) transmitting a first electromagnetic wave based on the first carrier signal, the first electromagnetic wave having a first electric field rotating about a propagation axis in a first direction at a first rotation frequency; (b) transmitting a second electromagnetic wave based on the second modulated carrier signal, the second electromagnetic wave having a second electric field rotating about the propagation axis in a second direction, opposite of the first direction, at a second rotation frequency; and (c) receiving a superposed electromagnetic wave in synchronization with a superposed electric field rotating about the propagation axis at a third rotation equal to the difference of the first rotation frequency and the second rotation frequency, the superposed electromagnetic wave being the superposition of the first electromagnetic wave and the second electromagnetic wave, the superposed wave having a third carrier frequency equal to the average of the first carrier frequency and the second carrier frequency.
- 79. A method for receiving information, comprising:
(a) receiving a first electromagnetic wave carrying the information to produce a first received signal, the first electromagnetic wave having a first carrier frequency and a first electric field rotating about a propagation axis at a first rotation frequency in a first direction; (b) receiving a second electromagnetic wave carrying the information to produce a second received signal, the second electromagnetic wave having a second carrier frequency and a second electrical field rotating about the propagation axis at the first rotation frequency in a second direction opposite of the first direction; (c) summing the first received signal and the second received signal to produce a summed signal; and (d) recovering the information from the summed signal.
- 80. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, are amplitude-modulated with the information and superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency.
- 81. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, are amplitude-modulated with the information and superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency, the resultant wave having a superposed electric field rotating at a rotation frequency less than the average by at least one-half of a bandwidth of the information and greater than zero by at least one-half of the information bandwidth.
- 82. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, are frequency-modulated with the information and superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency.
- 83. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, are frequency-modulated with the information and superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency, the resultant wave having a superposed electric field rotating at a rotation frequency less than the average by at least one-half of a bandwidth of the information and greater than zero by at least one-half of the information bandwidth.
- 84. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, are phase-modulated with the information and superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency.
- 85. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, are phase-modulated with the information and superpose to produce a resultant wave, the resultant wave carrying the information at an average of the first carrier frequency and the second carrier frequency, the resultant wave having a superposed electric field rotating at a rotation frequency less than the average by at least one-half of a bandwidth of the information and greater than zero by at least one-half of the information bandwidth.
- 86. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having a superposed electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being frequency-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency.
- 87. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having a superposed electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being frequency-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 88. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having a superposed electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being phase-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency.
- 89. The method of claim 79, wherein the first wave and the second wave received in steps (a) and (b), respectively, superpose to produce a resultant wave, the resultant wave having a superposed electric field rotating at a rotation frequency, the rotation frequency of the superposed wave being phase-modulated with information, the rotation frequency being less than an average of the first carrier frequency and the second carrier frequency by at least one-half of a bandwidth of the information and being greater than the zero by at least one-half of the information bandwidth.
- 90. An apparatus for transmitting information, comprising:
a first source generating a first signal having a first carrier frequency; a first transmission medium coupler connected to the first source, said first coupler transmitting a first electromagnetic wave based on the first signal, the first electromagnetic wave carrying the information and having the first carrier frequency, the first electromagnetic wave having a first electric field rotating about a propagation axis in a first direction; a second source generating a second signal having a second carrier frequency; and a second transmission medium coupler connected to the second source, said second coupler transmitting a second electromagnetic wave based on the second signal, the second electromagnetic wave carrying the information and having the second carrier frequency, the second electromagnetic wave having a second electric field rotating about the propagation axis in a second direction being opposite of the first direction.
- 91. The apparatus of claim 90, wherein:
the first transmission medium coupler is a first plurality of antenna dipoles arranged angularly around the propagation axis and within a first plane perpendicular to the propagation axis; the second transmission medium coupler is a second plurality of antenna dipoles arranged angularly around the propagation axis and within a second plane perpendicular to the propagation axis.
- 92. The apparatus of claim 90, wherein:
the first transmission medium coupler is a first plurality of helical antenna elements arranged substantially with the propagation axis; and the second transmission medium coupler is a second plurality of helical antenna elements arranged substantially with the propagation axis.
- 93. The apparatus of claim 90, wherein:
the first transmission medium coupler is a first plurality of waveguides horns arranged with the propagation axis; and the second transmission medium coupler is a second plurality of waveguides horns arranged with the propagation axis.
- 94. An apparatus for receiving information contained in a superposed electromagnetic wave having a carrier frequency and an E-field vector rotating about a propagation axis at a rotation frequency, the superposed wave being the superposition of a first electromagnetic wave and a second electromagnetic wave, comprising:
a first transmission medium decoupler converting the first electromagnetic wave to a first received signal; a second transmission medium decoupler converting the second electromagnetic wave to a second received signal; a summing circuit connected to said first coupler and said second coupler, said summing circuit summing the first received signal and the second received signal to produce a summed signal; and a demodulator connected to said summing circuit, said demodulator recovering the information from the summed signal.
- 95. The apparatus of claim 94, wherein:
the first transmission medium coupler is a first plurality of antenna dipoles arranged angularly around the propagation axis and within a first plane perpendicular to the propagation axis; and the second transmission medium coupler is a second plurality of antenna dipoles arranged angularly around the propagation axis and within a second plane perpendicular to the propagation axis.
- 96. The apparatus of claim 94, wherein:
the first transmission medium coupler is a first plurality of helical antenna elements arranged with the propagation axis; and the second transmission medium coupler is a second plurality of helical antenna elements arranged with the propagation axis.
- 97. The apparatus of claim 94, wherein:
the first transmission medium coupler is a first plurality of waveguides horns arranged with the propagation axis; and the second transmission medium coupler is a second plurality of waveguides horns arranged with the propagation axis.
- 98. An apparatus for communicating information, comprising:
a first source generating a first generated signal having a first carrier frequency; a first transmission medium coupler connected to the first source, said first coupler transmitting the first electromagnetic wave based on the first generated signal, the first electromagnetic wave carrying the information and having the first carrier frequency, the first electromagnetic wave having a first electric field rotating about a propagation axis in a first direction; a second source generating a second generated signal having a second carrier frequency; a second transmission medium coupler connected to the second source, said second coupler transmitting the second electromagnetic wave based on the second generated signal, the second electromagnetic wave carrying the information and having the second carrier frequency, the second electromagnetic wave having a second electric field rotating about the propagation axis in a second direction being opposite of the first direction; a third transmission medium decoupler converting the first electromagnetic wave to a first received signal; a fourth transmission medium decoupler converting the second electromagnetic wave to a second received signal; a summing circuit connected to said third coupler and said fourth coupler, said summing circuit summing the first received signal and the second received signal to produce a summed signal; and a demodulator connected to said summing circuit, said demodulator recovering the information from the summed signal.
- 99. An apparatus for communicating information using a first carrier signal having a first carrier frequency and using a second carrier signal having a second carrier frequency, comprising:
means for transmitting a first electromagnetic wave based on the first carrier signal, the first electromagnetic wave having a first electric field rotating about a propagation axis in a first direction at a first rotation frequency, the first electromagnetic wave carrying the information; means for transmitting a second electromagnetic wave based on the second modulated carrier signal, the second electromagnetic wave having a second electric field rotating about the propagation axis in a second direction, opposite of the first direction, at a second rotation frequency, the first electromagnetic wave carrying the information; and means for receiving a superposed electromagnetic wave in synchronization with a superposed electric field rotating about the propagation axis at a third rotation frequency equal to the difference of the first rotation frequency and the second rotation frequency, the superposed electromagnetic wave being the superposition of the first electromagnetic wave and the second electromagnetic wave, the superposed wave having a carrier frequency equal to the average of the first carrier frequency and the second carrier frequency.
- 100. Modulation circuitry in an information transmitter using a first carrier signal having a first carrier frequency and using a second carrier signal having a second carrier frequency, the modulation circuitry comprising:
a first modulator receiving the first carrier signal and an information signal, the first modulator modulating the first carrier signal with the information signal; and a second modulator receiving the second carrier signal and the information signal, the second modulator modulating the second carrier signal with the information signal.
- 101. Modulation circuitry in an information receiver using a received signal having a first frequency component and a second frequency component, the first frequency component having a first frequency less than a carrier frequency, the second frequency component having a second frequency less than the carrier frequency, the modulation circuitry comprising:
a first filter, the first filter filtering the first frequency component from the received signal; a second filter, the second filter filtering the second frequency component from the received signal; a summer connected to the first filtering and the second filter, the summer adding the first frequency component and the second frequency component to produce the carrier signal.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of application Ser. No. 08/853,833, filed May 9, 1997, the entire contents of which is incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
08853833 |
May 1997 |
US |
Child |
09064525 |
Apr 1998 |
US |