AU753680B2

Method and system for down-converting an electromagnetic signal

Abstract

Methods, systems, and apparatuses for down-converting an electromagnetic (EM) signal by aliasing the EM signal are described herein. Briefly stated, such methods, systems, and apparatuses operate by receiving an EM signal and an aliasing signal having an aliasing rate. The EM signal is aliased according to the aliasing signal to down-convert the EM signal. The term aliasing, as used herein, refers to both down converting an EM signal by under-sampling the EM signal at an aliasing rate, and down-converting an EM signal by transferring energy from the EM signal at the aliasing rate. In an embodiment, the EM signal is down-converted to an intermediate frequency (IF) signal. In another embodiment, the EM signal is down-converted to a demodulated baseband information signal. In another embodiment, the EM signal is a frequency modulated (FM) signal, which is down-converted to a non-FM signal, such as a phase modulated (PM) signal or an amplitude modulated (AM) signal.

AU753680B2, drawing sheet 1
Sheet 1 of 212

Term

Term ended

Expired 20 October 2019, 6.9 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

3 claims: 3 independent, 0 dependent

  1. 1
    197 THE CLAIMS DEFINING THE INVENTION ARE AS FOLLQWS:- 1. A method of down-converting and demodulating a modulated carrier signal to a baseband signal, comprising: (i) receiving the modulated carrier signal;(ii) storing energy from the received carrier signal over apertures at an aliasing rate determined according to a frequency of the received carrier signal divided by an integer;and (iii) generating the baseband signal from the stored energy. 2. A method of down-converting a modulated carrier signal to a lower frequency modulated carrier signal, comprising: (i) receiving the modulated carrier signal;(ii) storing energy from the received carrier signal over apertures at an aliasing rate determined according to: (a frequency of the modulated carrier signal plus or minus a frequency of the lower frequency modulated carrier signal In where n is an integer;and (iii) generating the lower frequency modulated carrier signal from the stored energy . 3. A method according to claim 1 or claim 2, wherein storing step (ii) includes: generating an energy transfer signal having a train of pulses at the aliasing rate, with non-negligible apertures, and using the energy transfer signal to transfer the energy from the received carrier signal. 03/04/02 198 4. A method according to any one of the preceding claims, wherein storing step (ii) includes: coupling the received carrier signal to a reactive storage device at the aliasing rate. 5. A method according to claim 1 or claim 2, wherein storing step (ii) includes: gating the received carrier signal according to a control signal comprising a stream of pulses, having non-negligible apertures, that repeat at the aliasing rate. 6. A method according to claim 1 or claim 2, wherein storing step (ii) includes: (a) transferring a non-negligible portion of energy contained in a portion of the received carrier signal;and (b) repeating step (ii a) at the aliasing rate. 7. A method according to any one of the preceding claims, wherein storing step (ii) includes controlling a frequency relationship between the received carrier signal and the aliasing rate. 8. A method according to any one of claims 1 to 6, wherein storing step (ii) includes controlling a phase relationship between the received carrier signal and the aliasing rate. 03/04/02 199 9. A method according to any one of claims 1 to 6, wherein storing step (ii) includes controlling a frequency relationship and a phase relationship between the received carrier signal and the aliasing rate. 10. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to half cycles of the received carrier signal. 11. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than at least one tenth of one percent of half cycles of the received carrier signal. 12. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than one percent of half cycles of the received carrier signal. 13. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than ten percent of half cycles of the received carrier signal. 14. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than twenty five percent of half cycles of the received carrier signal. 15. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than fifty percent of half cycles of the received carrier signal. 03/04/02 200 16. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than seventy five percent of half cycles of the received carrier signal. 17. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to or greater in duration than ninety percent of half cycles of the received carrier signal. 18. A method according to any one of claims 1 to 6, wherein the apertures are equal in duration to N cycles of the received carrier signal, wherein N equals A plus B, where A is a positive integer and B is a fraction of an integer. 19. A method according to any one of claims 1 to 18, wherein storing step (ii) includes transferring non-negligible amounts of energy relative to energy contained in half cycles of the received carrier signal. 20. A method according to claim 1 or claim 2, wherein step (ii) includes generating a train of pulses having non-negligible apertures relative to a period of the received carrier signal. 21. A method according to claim 6, wherein step (ii a) includes transferring at least one tenth of one percent of the energy contained in a half period of the received carrier signal. 22. A method according to claim 6, wherein step (ii a) includes transferring at least one percent of the energy contained in a half period of the received carrier signal. 03/04/02 201 23. A method according to claim 6, wherein step (ii a) includes transferring at least ten percent of the energy contained in a half period of the received carrier signal. 24. A method according to claim 6, wherein step (ii a) includes transferring at least twenty five percent of the energy contained in a half period of the received carrier signal. 25. A method according to claim 6, wherein step (ii a) includes transferring at least fifty percent of the energy contained in a half period of the received carrier signal. 26. A method according to claim 6, wherein step (ii a) includes transferring at least seventy five percent of the energy contained in a half period of the received carrier signal. 27. A method according to claim 6, wherein step (ii a) includes transferring at least eighty percent of the energy contained in a half period of the received carrier signal. 28. A method according to claim 6, wherein step (ii a) includes transferring at least ninety percent of the energy contained in a half period of the received carrier signal. 29. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to half cycles of the received carrier signal and are substantially aligned with cycles of the received carrier signal. 03/04/02 202 30. A method according to claim 29, wherein the apertures are substantially aligned with positive half cycles of the received carrier signal. 31. A method according to claim 29, wherein the apertures are substantially aligned with negative half cycles of the received carrier signal. 32. A method according to any one of claims 1 to 6, wherein the apertures are approximately equal in duration to half cycles of the received carrier signal and are not aligned with the received carrier signal. 33. A method according to any one of claims 1 to 6, wherein the apertures are substantially synchronized with the received carrier signal. 34. A method according to any one of claims 1 to 6, wherein the apertures are not synchronized with the received carrier signal. 35. A method according to claim 3, wherein step (ii) further includes generating the energy transfer signal independently of the received carrier signal. 36. A method according to any one of claims 1 to 6, wherein step (ii) includes generating an asynchronous energy transfer signal having the aliasing rate and using the asynchronous energy transfer signal to store the energy from the received carrier signal. 03/04/02 203 37. A method according to claim 1 or any one of claims 3 to 36 when dependent thereon, wherein step (iii) includes preserving modulation information without reproducing the received carrier signal. 38. A method according to any one of claims 1 to 6, wherein step (ii) includes storing energy differentially. 39. A method according to any one of claims 1 to 6, wherein step (ii) includes the step of: (c) controlling the amount of energy transferred from the received carrier signal. 40. A method according to claim 39, wherein step (ii c) includes controlling an aperture. 41. A method according to claim 40, wherein step (ii c) further includes controlling an aperture width. 42. A method according to claim 40, wherein step (ii c ) further includes controlling an aperture frequency. 43. A method according to claim 40, wherein step (ii c) further includes controlling an aperture shape. 44. A method according to claim 39, wherein step (ii c) includes controlling energy transfer characteristics. 03/04/02 204 45. A method according to any preceding claim, wherein step (iii) includes: discharging the stored energy between apertures in a controlled manner. 46. A method according to any preceding claim, wherein step (ii) includes storing sufficient energy from the received carrier signal to drive a load without additional buffering or amplification, wherein the load is a high impedance load or a low impedance load. 47. A method according to any preceding claim, wherein step (ii) includes storing energy from the received carrier signal without pre-amplification (LNA) of the received carrier signal. 48. A method according to any preceding claim, wherein said storing of energy from the received carrier signal substantially prevents accurate voltage reproduction of the received carrier signal during the apertures. 49. A method according to any preceding claim, wherein step (i) includes receiving the modulated carrier signal through a relatively low input impedance path. 50. A method according to any preceding claim, wherein step (i) includes receiving the modulated carrier signal through a relatively efficient power transfer path. 51. A method according to any preceding claim, wherein step (ii) includes gating the received carrier signal using a switch. 03/04/02 205 52. A method of claim 51, wherein the impedance of said switch is matched to a source impedance, thereby increasing energy transferred from said received carrier signal. 53. A method of claim 51, wherein the impedance of said switch is matched to a load impedance, thereby increasing energy transferred from said received carrier signal. 54. A method of claim 53, wherein said received carrier signal is coupled to said switch via a resonant circuit, said resonant circuit storing energy from components of said received carrier signal while said switch is open, and wherein energy stored in said resonant circuit is discharged via said switch while said switch is closed, thereby increasing energy transferred from said received carrier signal. 55. Apparatus for down-converting and demodulating a modulated carrier signal to a baseband signal, comprising: 1) means for receiving the modulated carrier signal;
  2. 2
    2) means for storing energy from the received carrier signal over apertures at an aliasing rate determined according to a frequency of the received carrier signal divided by an integer;and
  3. 3
    3) means for generating the baseband signal from the stored energy. 56. Apparatus for down-converting a modulated carrier signal to a lower frequency modulated carrier signal, comprising:1) means for receiving the modulated carrier signal;03/04/02 206 2) means for storing energy from the received carrier signal over apertures at an aliasing rate determined according to: (a frequency of the modulated carrier signal plus or minus a frequency of the lower frequency modulated carrier signal In where n is an integer;and 3) means for generating the lower frequency modulated carrier signal from the stored energy. 57. Apparatus according to claim 55 or claim 56, wherein said means for storing energy includes: means for generating an energy transfer signal having a train of pulses at the aliasing rate, with non-negligible apertures and for using the energy transfer signal to transfer the energy from the received carrier signal. 58. Apparatus according to claim 55 or claim 56, wherein said means for storing energy includes means for coupling the received carrier signal to a reactive storage device at the aliasing rate. 59. Apparatus according to claim 55 or claim 56, wherein said means for storing energy includes: means for gating the received carrier signal according to a control signal comprising a stream of pulses, having non-negligible apertures, that repeat at the aliasing rate. 60. Apparatus according to claim 55 or claim 56, wherein said means for storing energy includes: 03/04/02 207 means for transferring non-negligible portions of energy contained in portions of the received carrier signal at the aliasing rate. 61. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy includes means for controlling a frequency relationship between the received carrier signal and the aliasing rate. 62. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy includes means for controlling a phase relationship between the received carrier signal and the aliasing rate. 63. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy includes means for controlling a frequency relationship and a phase relationship between the received carrier signal and the aliasing rate. 64. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to half cycles of the received carrier signal. 65. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than one tenth of one percent of half cycles of the received carrier signal. 66. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than one percent of half cycles of the received carrier signal. 03/04/02 208 67. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than ten percent of half cycles of the received carrier signal. 68. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than twenty five percent of half cycles of the received carrier signal. 69. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than fifty percent of half cycles of the received carrier signal. 70. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than seventy five percent of half cycles of the received carrier signal. 71. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to or greater in duration than ninety percent of half cycles of the received carrier signal. 72. Apparatus according to any one of claims 55 to 60, wherein the apertures are equal in duration to N cycles of the received carrier signal, wherein N equals A plus B, where A is a positive integer and B is a fraction of an integer. 03/04/02 209 73. Apparatus according to any one of claims 55 to 72, wherein said means for storing energy includes means for transferring non-negligible amounts of energy relative to energy contained in half cycles of the received carrier signal. 74. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy comprises means for generating a train of pulses having non-negligible apertures relative to a period of the received carrier signal. 75. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least one tenth of one percent of the energy contained in a half period of the received carrier signal. 76. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least one percent of the energy contained in a half period of the received carrier signal. 77. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least ten percent of the energy contained in a half period of the received carrier signal. 78. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least twenty five percent of the energy contained in a half period of the received carrier signal. 210 79. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least fifty percent of the energy contained in a half period of the received carrier signal. 80. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least seventy five percent of the energy contained in a half period of the received carrier signal. 81. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least eighty percent of the energy contained in a half period of the received carrier signal. 82. Apparatus according to claim 60, wherein said means for transferring non-negligible portions of energy comprises means for transferring at least ninety percent of the energy contained in a half period of the received carrier signal. 83. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to half cycles of the received carrier signal and are substantially aligned with cycles of the received carrier signal. 84. Apparatus according to claim 83, wherein the apertures are substantially aligned with positive half cycles of the received carrier signal. 211 85. Apparatus according to claim 83, wherein the apertures are substantially aligned with negative half cycles of the received carrier signal. 86. Apparatus according to any one of claims 55 to 60, wherein the apertures are approximately equal in duration to half cycles of the received carrier signal and are not aligned with the received carrier signal. 87. Apparatus according to any one of claims 55 to 60, wherein the apertures are substantially synchronized with the received carrier signal. 88. Apparatus according to any one of claims 55 to 60, wherein the apertures are not synchronized with the received carrier signal. 89. Apparatus according to claim 57, wherein said means for storing energy further includes means for generating the energy transfer signal independently of the received carrier signal. 90. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy includes means for generating an asynchronous energy transfer signal having the aliasing rate and for using the asynchronous energy transfer signal to store the energy from the received carrier signal. 91. Apparatus according to claim 55 or any one of claims 57 to 90 when dependent thereon, wherein said means for generating includes means for preserving modulation information without reproducing the received carrier signal. 03/04/02 212 92. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy comprises a first means for storing energy and a second means for storing energy, configured differentially. 93. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy includes means for controlling the amount of energy transferred from the received carrier signal. 94. Apparatus according to claim 93, wherein said means for controlling the amount of energy transferred from the received carrier signal includes means for controlling the apertures. 95. Apparatus according to claim 94, wherein said means for controlling the apertures includes means for controlling an aperture width. 96. Apparatus according to claim 94, wherein said means for controlling the apertures includes means for controlling an aperture frequency. 97. Apparatus according to claim 94, wherein said means for controlling the apertures includes means for controlling an aperture shape. 98. Apparatus according to claim 93, wherein said means for controlling the amount of energy transferred from the received carrier signal includes means for controlling energy transfer characteristics. 213 99. Apparatus according to any one of claims 55 to 98, wherein said means for generating includes means for discharging the stored energy between apertures in a controlled manner. 100. Apparatus according to any one of claims 55 to 99, wherein said means for storing energy is able to store sufficient energy from the received carrier signal to drive a load without additional buffering or amplification, wherein the load is a high impedance load ora low impedance load. 101. Apparatus according to any one of claims 55 to 100, wherein said means for storing energy is able to store energy from the received carrier signal without pre-amplification (LNA) of the received carrier signal. 102. Apparatus according to any one of claims 55 to 101, wherein said means for storing energy from the received carrier signal substantially prevents accurate voltage reproduction of the received carrier signal during the apertures. 103. Apparatus according to any one of claims 55 to 102, wherein said means for receiving the modulated carrier signal is arranged to receive the modulated carrier signal through a relatively low input impedance path. 104. Apparatus according to any one of claims 55 to 103, wherein said means for receiving the modulated carrier signal is arranged to receive the modulated carrier signal through a relatively efficient power transfer path. 03/04/02 214 105. Apparatus according to any one of claims 55 to 104, wherein said means for storing energy includes means for gating the received carrier signal using a switch. 106. Apparatus according to claim 105, wherein said means for storing energy further includes means for matching an impedance of said switch to a source impedance, thereby increasing energy transferred from said received carrier signal. 107. Apparatus according to claim 105, wherein said means for storing energy further includes means for matching an impedance of said switch to a load impedance, thereby increasing energy transferred from said received carrier signal. 108. Apparatus according to claim 105, further comprising: means for coupling said received carrier signal to said switch via a resonant circuit, said resonant circuit storing energy from components of said received carrier signal while said switch is open, and wherein energy stored in said resonant circuit is discharged via said switch while said switch is closed, thereby increasing energy transferred from said received carrier signal. 109. Apparatus according to any one of claims 55 to 60, further comprising: an input impedance match circuit. 110. Apparatus according to any one of claims 55 to 60, further comprising: an output impedance match circuit. 03/04/02 215 111. Apparatus according to any one of claims 55 to 60, further comprising: a tank circuit. 112. Apparatus according to claim 105, further comprising: a feed forward circuit in parallel with said switch. 113. Apparatus according to any one of claims 55 to 60, further comprising: a feedback loop. 114. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy includes: a capacitive storage device sized to store substantial amounts of energy relative to the approximate energy contained in half cycles of the received carrier signal. 115. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy is implemented in a complimentary, metal oxide, semiconductor (C-MOS) material. 116. Apparatus according to any one of claims 55 to 60, wherein said means for storing energy is implemented in a single integrated circuit. 117. Apparatus according to any one of claims 55 to 60, further comprising a controllable output impedance. 03/04/02 216 118. A method of down-converting and demodulating a modulated carrier signal to a base band signal substantially as hereinbefore described with reference to the accompanying drawings. 119. Apparatus for down-converting and demodulating a modulated carrier signal to a base band signal substantially as hereinbefore described with reference to the accompanying drawings. Dated this 3rd day of April 2002 ParkerVision, Inc. Patent Attorneys for the Applicant PETER MAXWELL & ASSOCIATES 03/04/02