Claims
- 1. A method for adjusting for the effects of frequency dispersion in the determination of an electrical property of an earth formation, the method comprising:
(a) providing a general model comprising a plurality of admittance parameters; (b) providing a plurality of raw data sets each obtained using a corresponding one of a plurality of interrogation frequencies, each of the plurality of raw data sets indicative of one or more electrical properties of an earth formation; (c) assigning values to each admittance parameter to form a specific model, the specific model operable to estimate, as a function of interrogation frequency, at least one of the one or more electrical properties, wherein the specific model conforms to the plurality of raw data sets; and (d) deriving the at least one of the one or more electrical properties for a selected interrogation frequency of interest.
- 2. The method of claim 1, wherein the selected interrogation frequency of interest in (d) is distinct from the plurality of interrogation frequencies employed to obtain the raw data sets in (b).
- 3. The method of claim 1, wherein the one or more electrical properties includes conductivity and dielectric constant, and wherein the plurality of raw data sets comprise N sets of data, wherein N is the number of interrogation frequencies, and wherein each of the N sets of data is indicative of the conductivity and dielectric constant corresponding to one of the N interrogation frequencies.
- 4. The method of claim 1, wherein (c) further comprises:
(1) defining one or more equations for each of the one or more electrical properties as a function of frequency and the admittance parameters; (2) applying the plurality of raw data sets and corresponding plurality of interrogation frequencies to the one or more equations; and (3) solving for each of the admittance parameters.
- 5. The method of claim 1, wherein the at least one of the one or more electrical properties comprises conductivity.
- 6. The method of claim 1, wherein the at least one of the one or more electrical properties comprises dielectric constant.
- 7. The method of claim 1, wherein the each of the admittance parameters represents admittance of one of a plurality of parallel combinations, each parallel combination comprising one of a plurality of resistors that is electrically coupled in parallel to one of a plurality of capacitors.
- 8. The method of claim 7, wherein (c) further comprises:
(1) defining one or more equations for each of the one or more electrical properties as a function of frequency, the plurality of resistors and the plurality of capacitors; (2) applying the plurality of raw data sets and corresponding plurality of interrogation frequencies to the one or more equations; and (3) solving the one or more equations for each of the plurality of resistors and the plurality of capacitors.
- 9. The method of claim 7, wherein (c) further comprises:
(1) defining one or more equations for each of the one or more electrical properties as a function of frequency, the plurality of resistors and the plurality capacitors; (2) assigning a value to at least one resistor in the one or more equations based on known characteristics about the earth formation; (3) applying the plurality of raw data sets and corresponding plurality of interrogation frequencies to the one or more equations; and (4) solving for each unassigned resistor and for the plurality of capacitors.
- 10. The method of claim 7, wherein the plurality of parallel combinations are electrically coupled together in series.
- 11. The method of claim 7, wherein (c) includes solving at least one of the following equations:
- 12. The method of claim 1, wherein (d) includes solving at least one of the following equations:
- 13. The method of claim 1, wherein (d) includes solving the following equation:
- 14. The method of claim 1, wherein (d) includes solving the following equation:
- 15. A method for modeling electrical properties of a frequency dispersive earth formation, the method comprising:
(a) transmitting electromagnetic waves having a plurality of interrogation frequencies; (b) detecting the electromagnetic waves; (c) obtaining a plurality of measurements of the electromagnetic waves, each of the plurality of measurements corresponding to one of the plurality of interrogation frequencies, each of the plurality of measurements further indicative of at least one electrical property of an earth formation; and (d) deriving a specific model of the frequency response of the earth formation, the specific model substantially conforming to the plurality of measurements; and (e) determining a plurality of admittances based on the specific model.
- 16. The method of claim 15, wherein the plurality of admittances are electrically coupled in series and each of the plurality of admittances comprises one of a plurality of resistors electrically coupled in parallel to one of a plurality of capacitors.
- 17. The method of claim 15, wherein the specific model is based on an estimation of current density within the earth formation induced by the more electromagnetic waves.
- 18. The method of claim 15, wherein (e) further comprises:
(1) defining one or more equations for the at least one electrical property as a function of interrogation frequency and the plurality of admittances; (2) applying each of the plurality of measurements and corresponding interrogation frequencies to the one or more equations; and (3) solving for each of the plurality of admittances.
- 19. The method of claim 15, further comprising:
(f) calculating an adjusted measurement based on the specific model and a selected interrogation frequency of interest, wherein the selected interrogation frequency of interest is distinct from the plurality of interrogation frequencies.
- 20. The method of claim 19, wherein the adjusted measurement is indicative of conductivity of the earth formation.
- 21. The method of claim 19, wherein the adjusted measurement is indicative of dielectric constant of the earth formation.
- 22. The method of claim 19, wherein the plurality of interrogation frequencies are each selected from the range of about 400 kHz to about 2 MHz.
- 23. The method of claim 19, wherein the selected interrogation frequency of interest is a value selected from the group consisting of:
(1) a value in the range of about 10 kHz to about 100 kHz; and (2) zero.
- 24. A method for adjusting well logging data for effects of frequency dispersion, the method comprising:
(a) providing a general model that includes a plurality of admittance parameters; (b) providing a tool suitable to measure conductivity and dielectric constant of a downhole formation by employing a first and a second interrogation frequency; (c) positioning the tool at a selected location within a borehole; (d) disposing the tool to measure, a portion of earth formation surrounding the selected location to obtain first and a second sets of data, the first set of data indicative of a first conductivity measurement and a first dielectric constant measurement corresponding to the first interrogation frequency, the second set of data indicative of a second conductivity measurement and a second dielectric constant measurement corresponding to the second interrogation frequency; and (e) assigning values to each of the plurality of admittance parameters to form a specific model for predicting measurements of at least one electrical property of the portion as a function of interrogation frequency, wherein the specific model is consistent with the first and second sets of data and corresponding first and second interrogation frequencies.
- 25. The method of claim 24, wherein the at least one electrical property is conductivity, and further comprising:
(f) calculating an adjusted conductivity measurement by applying a third interrogation frequency to the specific model, wherein the third interrogation frequency is distinct from the first and second of interrogation frequencies.
- 26. The method of claim 25, further comprising:
(g) employing the third interrogation frequency to provide a separately measured conductivity measurement of substantially the portion of earth formation measured in (d), and (h) comparing the adjusted conductivity measurement in (f) to the separately measured conductivity measurement in (g).
- 27. The method of claim 26, wherein the tool in (b) is a wave resistivity tool, and the separately measured conductivity measurement in (g) was obtained by a inductive resistivity tool.
- 28. The method of claim 24, wherein the at least one electrical property is dielectric constant, and further comprising:
(f) calculating an adjusted dielectric constant measurement by applying a third interrogation frequency to the specific model, wherein the third interrogation frequency is distinct from the first and second of interrogation frequencies.
- 29. The method of claim 24, further comprising:
(f) repeating (c) and (d) for a plurality of selected locations within the borehole to obtain a plurality of first and second sets of data, each of the selected locations associated with one of the first sets of data and one of the second sets of data; and (g) repeating step (e) for each of the plurality of selected locations to derive a plurality of corresponding associated specific models.
- 30. The method of claim 24, further comprising:
(f) repeating (c) and (d) for a plurality of different selected locations to obtain a plurality of first and second sets of data; and (g) calculating a combined first set of data based on each of the plurality of first sets of data and a combined second set of data based on each of the plurality of second sets of data; and (h) repeating (e) to derive a specific model that is consistent with the combined first and second sets of data and corresponding first and second interrogation frequencies.
- 31. The method of claim 30, wherein the combined first set of data is the average of a each of the plurality of first sets of data and the combined second set of data is the average of each of the plurality of second sets of data.
- 32. The method of claim 24, wherein the first and second sets of data each include complex values representing measurements of a component of an electromagnetic field induced in the portion by a corresponding interrogation frequency.
- 33. The method of claim 24, wherein the tool in (b)comprises a transmitter suitable to generate an electromagnetic wave having the first interrogation frequency and the second interrogation frequency, and wherein the tool further comprises two spaced receivers suitable for detecting the electromagnetic wave, and wherein (d) further comprises:
(f) generating the electromagnetic wave by the transmitter; and (g) detecting the electromagnetic wave by the two spaced receivers.
- 34. The method of claim 33, wherein the first set of data includes data reflecting attenuation of the first interrogation frequency and the second set of data includes data reflecting attenuation of the second interrogation frequency.
- 35. The method of claim 33, wherein the first set of data includes data reflecting phase-shift of the first interrogation frequency and the second set of data includes data reflecting phase-shift of the second interrogation frequency.
- 36. A computer readable medium comprising logic embodied in a program suitable to be selectively executed by a processor, the program configured to direct the processor to:
(1) obtain a plurality of measurements indicative of one or more one electrical properties of an earth formation, each of the plurality of measurements obtained by employing a corresponding one of a plurality of interrogation frequencies; (2) derive a specific model of the frequency response of the earth formation, the specific model substantially conforming to each one of the plurality of interrogation frequencies and the corresponding plurality of measurements; (3) determine a plurality of admittances based on the specific model; and (4) calculate an adjusted measurement of the one or more electrical properties based on the specific model and a selected interrogation frequency of interest, wherein the selected interrogation frequency of interest is distinct from the plurality of interrogation frequencies.
- 37. The computer readable medium of claim 36, wherein the program is further configured to direct the processor to store the adjusted measurement in a non-volatile computer storage medium.
- 38. The computer readable medium of claim 36, wherein the one or more electrical properties includes conductivity and the adjusted measurement is an estimation of the conductivity of the earth formation.
- 39. The computer readable medium of claim 36, wherein the one or more electrical properties includes dielectric constant and the adjusted measurement is an estimation of the dielectric constant of the earth formation.
- 40. A processor readable medium comprising processor readable information, the information including an encoded electrical property of an earth formation, the electrical property adjusted for frequency dispersion effects, the electrical property derived and encoded by a method, the method comprising:
(a) obtaining a plurality of measurements indicative of one or more one electrical properties of the earth formation, each of the plurality of measurements obtained by employing a corresponding one of a plurality of interrogation frequencies; (b) deriving a specific model of the frequency response of an earth formation, the specific model substantially conforming to each one of the plurality of interrogation frequencies and the corresponding plurality of measurements; (c) determining a plurality of admittances based on the specific model; (d) calculating an adjusted measurement of the one or more electrical properties based on the specific model and a selected interrogation frequency of interest; and (e) storing the adjusted measurement on the processor readable medium as the encoded electrical property.
- 41. The processor readable medium of claim 40, wherein the selected interrogation frequency of interest is distinct from the plurality of interrogation frequencies.
- 42. The processor readable medium of claim 40, wherein the one or more electrical properties includes conductivity and the adjusted measurement is an estimation of the conductivity of the earth formation.
- 43. The processor readable medium of claim 40, wherein the one or more electrical properties includes dielectric constant and the adjusted measurement is an estimation of the dielectric constant of the earth formation.
RELATED APPLICATIONS
[0001] This application claims the benefit of commonly invented, commonly assigned U.S. Provisional Application Serial No. 60/466,533, entitled ADJUSTMENT FOR FREQUENCY DISPERSION EFFECTS IN ELECTROMAGNETIC LOGGING DATA, filed Apr. 29, 2003.
Provisional Applications (1)
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Number |
Date |
Country |
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60466533 |
Apr 2003 |
US |