Claims
- 1. A coil array for high resolution induction logging, comprising:
a transmitter; a first receiver set positioned at a first distance from said transmitter; and a second receiver set positioned at a second distance from said transmitter, said second receiver set including at least one portion of said first receiver set.
- 2. The coil array according to claim 1, wherein at least one of said first and second sets is a three-receiver set comprising a main coil and two bucking coils.
- 3. The coil array according to claim 1, wherein each of said first and second sets is a three-receiver set comprising a main coil and two bucking coils.
- 4. The coil array according to claim 1, wherein the array includes a total of at least two two-receiver sets and at least eight three-receiver sets, each of which shares at least one coil with an adjacent set.
- 5. The coil array according to claim 4, wherein a portion of said receiver sets are above said transmitter and a portion of said receiver sets are below said transmitter
- 6. A method of deriving an apparent conductivity log from at least one induction well log comprising a plurality of depth samples, comprising:
raising each depth sample of the apparent conductivity signal to several predetermined powers to generate a plurality of powers of conductivity; convolving in depth the powers of conductivity with a plurality of filters, where each power has a distinct filter; and summing the results of all of the convolutions to produce a conductivity log that is substantially free from the effects of adjacent beds and the nonlinear effects of true conductivity.
- 7. The method according to claim 6 where the powers are integer multiples of one-half.
- 8. The method in claim 6 where one of the powers of conductivity is one.
- 9. The method claim 8 where the balance of the powers of conductivity are odd integer multiples of one-half.
- 10. A method for vertically deconvolving data received from a plurality of vertically deployed receivers to obtain data for a depth of interest, comprising:
providing a transmitter and a plurality of receivers, said receivers being spaced at different distances from said transmitter; generating a signal from said transmitter and receiving it as a signal σa at each of said receivers; and for each receiver calculating a conductivity measurement using the equation 8σij(z)=∑j∑ifij σapj(z-di),where the powers are pj=1, 3/2, 5/2, 7/2, 9/2 . . . , where z is vertical depth measured from the surface, di are a range of depth offsets spanning the depth of interest and are multiples of the depth increment, and the functions ƒij are calculated empirically using a linear least squares fit to find the coefficients that best match a set of target logs for at least two simulated logs at different resistivity levels.
- 11. The method according to claim 10 wherein the filter coefficients for a given power sum to the corresponding homogeneous boos coefficient
- 12. A method for converting an analog signal to a digital signal, comprising:
(a) providing a waveform that comprises a combination of signals at first and second frequencies of interest fH and fL, said first frequency fH being an integer multiple of the lowest frequency, the period of said waveform being the period of the lowest frequency of interest, fL; (b) dividing the period of the lowest frequency into B bins; (c) sampling said waveform at a rate (B·ƒ1)/B′ that is at least twice the highest frequency of interest, where B′ and B are integers that are relatively prime and (B·fH)/B′>2fL (d) adding each A/D sample to the contents of the current bin and incrementing the count for that bin is incremented; (e) incrementing the bin number by B′ and subtracting B from the result if the result is greater than B, (f) repeating steps (c)-(e) for a predetermined number of cycles; and (g) computing an average value for each bin and initializing each bin to zero.
- 13. The method according to claim 12, further including the step of:
(hi) multiplying the averaged bin value xi for the ith bin, by the sine of the angle (2πƒi/ B) where ƒ is the frequency of interest, and summing the resulting products for all i where i ranges from 0 to B-1.
- 14. The method according to claim 12, further including the step of:
(hii) multiplying the averaged bin value xi for the ith bin by the cosine of the angle (2πƒi/B) where ƒ is the frequency of interest, and summing the resulting products for all i where i ranges from 0 to B-1.
- 15. The method according to claim 12 further including providing a separate amplifier and A/D converter for each receiver coil.
- 16. An apparatus for measuring the resistivity of an earth formation penetrated by a borehole comprising:
further including a waveform generator comprising a memory device containing digital samples of a transmitted waveform representing at least one periodic waveform; a clock signal and memory locations to access successive samples; a digital-to analog converter to generate a time-varying, periodic voltage proportional to said samples in said memory; at least one transmitter that is energized by said time-varying, periodic voltage; at least one set of receivers generating a receiver voltage; an analog-to-digital converter that periodically samples the receiver voltage at a predetermined sampling rate and outputs a digitized voltage signal; a processor that receives the digitized voltage signal; and a set of N accumulators that collates and averages successive sets of N samples from the analog-to-digital converters to output a set of N averages.
- 17. The apparatus of claim 16 wherein the clock that drives the transmitter waveform generator and the receiver digital-to-analog converter are locked in phase.
- 18. The apparatus of claim 16, further including a downhole digital signal processor.
- 19. The apparatus of claim 16 wherein said periodic waveform stored in said memory is periodic in N samples of the analog-to-digital converter.
- 20. The method in claim 19 wherein said periodic waveform comprises a sum of at least two sinusoidal waveforms having periods that are integer multiples of the period representing the N samples.
- 21. The apparatus according to claim 16 wherein said processor calculates dot products of said set of N averages coefficients with sines and cosines of the frequencies of the sinusoids composing the transmitted waveform and sampled at the same rate as the analog-to-digital convertor.
- 22. An apparatus for measuring the resistivity of an earth formation penetrated by a borehole comprising:
a waveform generator consisting of a read-only memory device containing digital samples of a transmitted waveform representing one or more periods of a periodic waveform; a clock signal and addressing means to address successive samples in the read-only memory and to continually repeat periods of the sampled waveform; a digital-to analog converter to generate a time-varying, periodic voltage proportional to the samples in the read-only memory; an amplifier means to amplify the waveform and to engergize at least one transmitter coil that is wound coaxially with the body of the tool; at least one set of receiver coils wound coaxially of the body of the tool and connected together; an amplifier connected to said receiver coils to amplify the voltage in the receiver coils; an analog-to-digital converter that periodically samples the receiver voltage that includes a clock that controls the sampling rate; a digital signal processor connected to the output bus of the analog-to-digital converters that receives the digitized voltage; a set of N accumulators that sums successive sets of N samples from the analog-to-digital converters; a means of taking the dot product of the contents of the N accumulators with fixed vectors of coefficients; and a means of storing the dot product results or telemetering the dot product results to the surface.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application claims the benefit of U.S. Provisional Application Serial No. 60/112,161, filed Dec. 14, 1998, which is incorporated herein in its entirety.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60112161 |
Dec 1998 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09460553 |
Dec 1999 |
US |
Child |
10288086 |
Nov 2002 |
US |