Claims
- 1. A method for determining distance "d" between first and second locations, comprising:
- generating at said first location a first electromagnetic wave S.sub.1 at a frequency f.sub.1 ;
- transmitting said S.sub.1 from said first location to said second location;
- receiving said S.sub.1 at said second location;
- passively generating from said received S.sub.1 using energy solely from said received S.sub.1 at said second location a second electromagnetic wave S.sub.2 phase-coherent with said received S.sub.1 and at a subharmonic frequency f.sub.2 of said f.sub.1 frequency;
- transmitting said S.sub.2 from said second location to said first location;
- receiving said transmitted S.sub.2 at said first location; and
- deriving a measurement signal corresponding to the magnitude of phase difference between said transmitted S.sub.1 and said received S.sub.2 signals.
- 2. The method of claim 1, wherein f.sub.2 =1/2 f.sub.1.
- 3. The method of claim 1, wherein
- said transmitted S.sub.1 is of the form
- S.sub.1 =Cos (.omega..sub.1 +.DELTA..omega..sub.1)t;
- said received S.sub.1 is of the form ##EQU16## said transmitted S.sub.2 is of the form ##EQU17## said received S.sub.2 is of the form ##EQU18## said phase difference magnitude is of the form ##EQU19## t=time .phi.=said magnitude of phase difference
- .omega..sub. = .pi. f.sub.1
- .lambda..sub.1 =free space wavelength of f.sub.1.
- 4. The method of claim 1, wherein said transmitted and received signals S.sub.1 and S.sub.2, respectively, are continuous waves.
- 5. The method of claim 4, wherein said transmitted and received signals S.sub.1 and S.sub.2, respectively, are sinusoidal waves.
- 6. Apparatus for determining distance "d" between first and second locations, comprising:
- first generator means for generating at said first location a first electromagnetic wave S.sub.1 at a frequency f.sub.1 ;
- first transmitter means for transmitting said S.sub.1 from said first location to said second location;
- first receiving means for receiving said S.sub.1 at said second location;
- second generator means for passively generating from said received S.sub.1 using energy solely from said received S.sub.1 at said second location a second electromagnetic wave S.sub.2 phase-coherent with said received S.sub.1 and at a subharmonic frequency f.sub.2 of said f.sub.1 frequency;
- second transmitter means for transmitting said S.sub.2 from said second location to said first location;
- second receiving means for receiving said transmitted S.sub.2 at said first location; and
- phase detector means for deriving a measurement signal corresponding to the magnitude of phase difference between said transmitted S.sub.1 and said received S.sub.2 signals.
- 7. The apparatus of claim 6, wherein said second generator means generates said S.sub.2 at said subharmonic frequency f.sub.2 =1/2 f.sub.1.
- 8. The apparatus of claim 6, wherein
- said transmitted S.sub.1 is of the form
- S.sub.1 =Cos (.omega..sub.1 +.DELTA..omega..sub.1)t;
- said received S.sub.1 is of the form ##EQU20## said transmitted S.sub.2 is of the form ##EQU21## said received S.sub.2 is of the form ##EQU22## said phase difference magnitude is of the form .phi.=.pi. d/.lambda..sub.1 ; and
- t=time
- .phi.=said magnitude of phase difference
- .omega..sub.1 =2.pi.f.sub.1
- .lambda..sub.1 =free space wavelength of f.sub.1.
- 9. The apparatus of claim 6, wherein said first and second generator means generate continuous electromagnetic waves at said f.sub.1 and said f.sub.2 frequencies, respectively.
- 10. The apparatus of claim 9, wherein said elecromagnetic waves are sinusoidal.
- 11. Apparatus for determining distance, comprising:
- a base system means for transmitting signal S.sub.1 at frequency f.sub.1 and for receiving signal S.sub.2 at frequency f.sub.2 respectively, where said f.sub.2 is a subharmonic of f.sub.1 and for measuring phase difference between said transmitted S.sub.1 and received S.sub.2 signals; and
- a transponder system comprising:
- a capacitor;
- a first inductor,
- said capacitor and said first inductor being electrically interconnected in parallel to define first and second electrical junctions;
- a varactor diode having first and second ends;
- a second inductor having first and second ends,
- said first end of said diode being electrically interconnected to said first junction,
- said second end of said diode being electrically interconnected to said first end of said second inductor,
- said second end of said inductor being electrically connected to said second junction;
- a first length of wire electrically interconnected at one end of said first junction;
- a second length of wire electrically interconnected at one end of said second junction; and
- a third length of wire electrically interconnected at one end of said second end of said diode and said first end of said second inductor.
- 12. The apparatus of claim 11, wherein said capacitor is a variable tuning capacitor.
- 13. Apparatus for determining distance, comprising:
- a base system means for transmitting signal S.sub.1 at frequency f.sub.1 and for receiving signal S.sub.2 at frequency f.sub.2, respectively, where said f.sub.2 frequency is a subharmonic of f.sub.1 and for measuring phase difference between said transmitted S.sub.1 and received S.sub.2 signals; and
- a transponder system comprising:
- a receiving antenna means for receiving said transmitted S.sub.1 ;
- a transmitting antenna means for transmitting said S.sub.2 2 ;
- a first resonant circuit means resonating at said f.sub.1 frequency electrically interconnected in series between said transmitting and said receiving antennas;
- a second resonant circuit means resonating at said f.sub.2 frequency;
- a varactor diode,
- said diode and said second resonant circuit means being electrically interconnected in series terminating at first and second ends, said first end of said series circuit being interconnected to one of said transmitting or receiving antennas and said second end of said series circuit being interconnected to the remaining one of said transmitting or receiving antennas.
- 14. A method for determining the distance "d" between first and second locations, comprising:
- generating a signal S.sub.a of the form ##EQU23## transforming said S.sub.a into a signal S.sub.b of the form
- S.sub.b =Cos (.omega.+.DELTA..omega.)t;
- transmitting said S.sub.b from said first location toward said second location;
- receiving at said second location in response to said transmitted S.sub.b a signal S.sub.c of the form ##EQU24## transforming said S.sub.c to a signal S.sub.d of the form ##EQU25## transmitting said S.sub.d from said second location toward said first location;
- receiving at said first location in response to said transmitted S.sub.d a signal S.sub.e of the form ##EQU26## transforming said S.sub.e into a signal S.sub.f of the form ##EQU27## mixing said S.sub.a and S.sub.f to derive a first mixer output S.sub.g ; transforming said S.sub.g into a signal S.sub.h of the form ##EQU28## transforming said S.sub.h into a signal S.sub.i of the form
- S.sub.i =Cos (.omega.t);
- mixing said S.sub.i and said S.sub.b to derive a second mixer output S.sub.j ;
- transforming said S.sub.j into a signal S.sub.k of the form ##EQU29## generating a phase difference signal corresponding to the magnitude of the difference between the phases of said S.sub.h and S.sub.j.
- 15. The method of claim 14, further including the steps of:
- deriving a correction constant factor for correlating said phase difference signal to said distance "d";
- multiplying said phase difference signal by said correction factor;
- generating a distance signal in response to said multiplication; and
- displaying a visual indication of the magnitude of said distance signal as an indication of said distance "d".
- 16. The method of claim 15, wherein said step of transforming said S.sub.e into S.sub.f comprises filtering said S.sub.e.
- 17. The method of claim 16, wherein said step of transforming said S.sub.g into S.sub.h comprises filtering said S.sub.g.
- 18. The method of claim 14, wherein said step of generating a phase difference signal comprises:
- generating a plurality of reference time pulses;
- detecting a 0 crossing of said S.sub.h ;
- detecting a 0 crossing of said S.sub.j ; and
- counting a portion of said timing pulses occurring between said detected 0 crossings.
ORIGIN OF THE INVENTION
The invention described herein was made by employees of the U.S. Government and may be manufactured and used by and for the government of the United States of America for governmental purposes without the payment of any royalties thereon or therefor.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
3243812 |
Williams |
Mar 1966 |
|
4170773 |
Fitzsimmons et al. |
Oct 1979 |
|
4314373 |
Sellers |
Feb 1982 |
|