Claims
- 1. A method for detecting interfaces in an earth formation, comprising:
generating a plurality of digital pulses; producing said plurality of digital pulses at a carrier frequency; transmitting said plurality of digital pulses into said geological formation from a first physical position; detecting a received signal comprised of reflections from said geological formation due to said transmitting of said plurality of digital pulses; over sampling said received signal such that a sampling rate is greater than five times said carrier frequency to produce a digitized received signal; gating said digitized received signal for selecting a selected time frame of said received signal to produce a gated digitized received signal; correlating said plurality of digital pulses with said gated digitized received signal for detecting an interface at a selected distance from said first physical position.
- 2. The method of claim 1, further comprising:
utilizing a carrier frequency in the range from 100 KHz to 1 MHz.
- 3. The method of claim 1, further comprising accumulating said plurality of digital pulses over a selected period of time prior to said step of correlating.
- 4. The method of claim 1, further comprising:
providing a digital to analog converter for converting said plurality of digital pulses at said carrier frequency to an analog signal prior to said step of transmitting.
- 5. The method of claim 4, wherein said step of oversampling further comprises oversampling said received signal such that a sampling rate is used that is from five to fifty times said carrier signal.
- 6. The method of claim 1, wherein said first position is within a borehole through said earth formation.
- 7. The method of claim 6, further comprising transmitting said plurality of digital pulses from a dipole antenna within said borehole.
- 8. The method of claim 7, wherein said producing of said plurality of digital pulses at said carrier frequency is done entirely with digital components.
- 9. The method of claim 8, further comprising providing a plurality of dipole antennas within a downhole tool.
- 10. The method of claim 1, further comprising:
transmitting said plurality of digital pulses through a non-ferrous wellbore tubular.
- 11. A downhole system for detecting interfaces in an earth formation, said downhole system being operable in a borehole within said earth formation, said downhole system comprising:
an all digital signal generator for producing a plurality of digital pulses at a carrier frequency; at least one dipole antenna associated with said downhole system for transmitting a transmitted signal and receiving a received signal; an analog to digital signal converter for sampling said received signal at a sampling rate more than five times said carrier frequency to produce a received digital signal; and a correlator for comparing said plurality of digital pulses with respect to said received digital signal.
- 12. The downhole system of claim 11, further comprising a digital to analog converter for converting said plurality of digital pulses at said carrier frequency to an analog signal.
- 13. The downhole system of claim 11, further comprising:
a plurality of dipole antennas.
- 14. The downhole system of claim 11, wherein said analog to digital converter has a sampling speed of from five to fifty times said carrier frequency.
- 15. The downhole system of claim 11, wherein said carrier frequency is selectable and may be selected to be less than 1 MHz.
- 16. The downhole system of claim 11, wherein said carrier frequency is between 100 KHz and 1 MHz.
- 17. The downhole system of claim 11, further comprising:
a gate control for selecting a portion of said received signal related to a selected distance from said borehole.
- 18. The downhole system of claim 11, further comprising:
a digital accumulator operable for accumulating said plurality of digital pulses prior to said step of correlation.
- 19. A simulator for simulating a radar signal transmitted into a geological formation, said simulator comprising:
a pseudo code generator for producing a transmitted signal comprising a plurality of digital pulses; a plurality of selectable time delay elements; a filter having a response related to said geological formation; and a gating control for selecting a gated portion of a returned signal related to a selected distance into said geological formation.
- 20. The simulator of claim 19, wherein said filter further comprises a Butterworth bandpass filter.
- 21. The simulator of claim 19, further comprising:
a plurality of selectable attenuators for respective of said plurality of selectable time delay elements.
- 22. The simulator of claim 19, further comprising:
a noise generator
- 23. The simulator of claim 19, further comprising:
an analog to digital converter for receiving said transmitted signal from said filter to produce said returned signal.
- 24. The simulator of claim 19, further comprising:
an accumulator for storing said gated portion of said returned signal.
- 25. A system for detecting interfaces in an earth formation, comprising:
a transmitter for producing a plurality of digital pulses at a carrier frequency, said carrier frequency being selectively operable for transmitting said plurality of digital pulses into said earth formation, said transmitter selectively operable at a carrier frequency from at least 500 KHz to 1 MHz; a receiver for receiving a received signal comprised of reflections of said plurality of digital pulses from said geological formation; an analog to digital converter for said receiver having a sampling speed at least five times faster than said carrier signal to produce a digitized received signal; and a correlator for comparing at least a portion of said digitized received signal with said plurality of pulses.
- 26. The system of claim 25, wherein said system is operable for selectively transmitting at a frequency from 100 KHz to over 1 MHz.
- 27. The system of claim 25, further comprising a gate for selecting a time interval of said digitized received signal.
- 28. The system of claim 25, further comprising an accumulator for storing said received digitized signal for use by said correlator.
- 29. The system of claim 25, further comprising a digital to analog converter for said transmitter.
- 30. The system of claim 25, wherein said analog to digital converter has a sampling speed at least from five to fifty times said carrier frequency.
- 31. The system of claim 25, further comprising at least one dipole antenna.
- 32. The system of claim 25, further comprising a non-ferrous wellbore tubular through which said transmitter transmits said plurality of digital pulses.
- 33. The system of claim 25, further comprising one or more antennas positioned within a borehole.
- 34. The system of claim 25, wherein said transmitter is operable for producing said plurality of digital pulses at said carrier frequency entirely with digital components.
- 35. The system of claim 25, further comprising a digitally controllable filter for adjusting a frequency response of said received signal.
- 36. The system of claim 25, further comprising a wellbore tubular with an opening therein for receiving an antenna.
- 37. A method for controlling a producing zone in a geological formation of a well having a plurality of producing zones, comprising:
transmitting a plurality of pulses into said geological formation; receiving one or more reflections from said plurality of pulses when a waterfront is approaching within said producing zone; detecting said waterfront from said one or more reflections; and closing down said producing zone.
- 38. The method of claim 37, further comprising modulating a carrier signal to produce said plurality of pulses at a carrier frequency.
- 39. The method of claim 37, further comprising selectively controlling said carrier frequency at frequencies below 1 MHz.
- 40. The method of claim 37, further comprising selecting said reflections from said waterfront by providing a delay.
- 41. The method of claim 37, further comprising correlating said reflections with a stored signal containing a sequence for said plurality of pulses.
- 42. The method of claim 37 further comprising positioning an antenna within said well for said transmitting of said plurality of pulses into said geological formation.
- 43. The method of claim 37, further comprising providing a non-ferrous wellbore tubular to permit said transmitting of said plurality of pulses into said geological formation from within said well.
ORIGIN OF THE INVENTION
[0001] The invention described herein was made in the performance of work under a NASA contract and is subject to the provisions of Section 305 of the National Aeronautics and Space Act of 1958, Public Law 85-568 (72 Stat. 435; 42 U.S.C. 2457).