Claims
- 1. A method of generating a geologic model, comprising the steps of:
(a) assigning a rock-property value to each block of a candidate geologic model; (b) assigning a local spectrum of said rock property to each of said blocks, each said local spectrum incorporating a local spatial trend in rock property continuity; (c) using said local spectra to frequency scale said rock-property value at each of said blocks, (d) using said scaled rock-property values to generate a scaled geologic model incorporating said local spatial trend in rock property continuity.
- 2. The method of claim 1, wherein said frequency scaling involves the steps of
(a) computing a global-amplitude spectrum for said candidate geologic model; (b) discretizing said global-amplitude spectrum and each said local spectrum into frequency bins; and (c) calculating a local-amplitude-ratio for each said frequency bin and each said block, wherein each said local-amplitude-ratio represents the ratio of the local spectral energy in said frequency bin for said block to the global-amplitude spectral energy in said frequency bin for said block.
- 3. The method of claim 2, wherein said frequency scaling involves the step of scaling local-frequency-components of a global spectrum for said candidate geologic model by said local-amplitude ratios.
- 4. The method of claim 3, wherein said local-frequency-components are generated by an inverse transform of frequency bins of said global spectrum.
- 5. The method of claim 4, wherein at each block said local-frequency-components are summed over all frequency bins to generate the value of a scaled geologic model at said block.
- 6. The method of claim 2, wherein each said local-amplitude-ratio is calculated by a mean square calculation over all frequencies in each said bin.
- 7. A method of generating a geologic model, comprising the steps of:
(a) assigning a rock-property value to each block of a candidate geologic model; (b) identifying a trend-attribute related to a trend in spatial continuity; (c) defining a trend model that characterizes said trend; (d) identifying at least two endmember-trend-attribute values for said trend model, (e) generating endmember-local spectra at each block in said model for which endmember-trend-attribute values have been identified; (f) calculating endmember-local-amplitude-ratio values for each said endmember-local spectra; (g) using said trend model and said endmember-local-amplitude-ratio values to frequency scale said rock-property values at each of said blocks, (h) using said scaled rock-property values to generate a scaled geologic model incorporating said local spatial trend in rock property continuity.
- 8. The method of claim 7, wherein said frequency scaling involves the steps of
(a) computing a global-amplitude spectrum for said candidate geologic model; (b) discretizing said global-amplitude spectrum and each said endmember-local spectrum into frequency bins, wherein said endmember-local-amplitude-ratios represents the ratio of the spectral energy in said frequency bin for each said endmember-local spectra to the global-amplitude spectral energy in said frequency bin for said block.
- 9. The method of claim 8, wherein each said endmember-local-amplitude-ratio is calculated by a mean square calculation over all frequencies in each said bin.
- 10. The method of claim 7, wherein said frequency scaling involves multiplication of local-amplitude ratio values for each frequency bin and each block by a local-frequency-component for said bin and said block.
- 11. The method of claim 10, wherein said local-amplitude-ratio values are calculated from said endmember-local-amplitude ratios using said trend model.
- 12. The method of claim 7, wherein said frequency scaling involves the step of computing local-frequency-components of a global spectrum for said candidate geologic model.
- 13. The method of claim 12, wherein said global spectrum is decomposed into multiple frequency components using a Fast Fourier Transform.
- 14. The method of claim 1 wherein said rock property value is selected from the group comprising porosity, shale volume, net sand percent, net pore volume, hydrocarbon saturation, hydrocarbon pore volume, acoustic impedance, and permeability.
- 15. The method of claim 7 wherein said rock property value is selected from the group comprising porosity, shale volume, net sand percent, net pore volume, hydrocarbon saturation, hydrocarbon pore volume, acoustic impedance, and permeability.
- 16. The method of claim 1, wherein an optimization procedure is used to maximally honor both characteristics of said candidate geologic model and characteristics of each said local spectrum.
- 17. The method of claim 7, wherein an optimization procedure is used to maximally honor both characteristics of said candidate geologic model and characteristics of each said local spectrum.
- 18. A method of incorporating a spatial trend in rock property continuity into a geologic model, comprising the steps of:
(a) generating a candidate geologic model for said rock property; (b) specifying a global-amplitude spectrum for said model; (c) specifying a local-amplitude spectrum for each block in said model, wherein each said local spectrum incorporates a desired spatial trend in rock property; (d) discretizing said global-amplitude and said local-amplitude spectra; (e) computing local-amplitude ratios for each said block and each said frequency bin using said global-amplitude spectrum and said local-amplitude spectra; (f) computing local-frequency-components for each said frequency bin and each said block using a global spectrum of said model; (g) generating scaled-local-frequency-components for each said frequency bin and each said block by multiplying said local-amplitude-ratio values of each said frequency bin for each said block by the local-frequency-component corresponding to said frequency and said block; (h) summing all scaled-frequency-components for each said block to generate a space domain representation of said geologic model at each said block which incorporates said desired spatial trend.
- 19. A method of incorporating a spatial trend in rock property continuity into a geologic model, comprising the steps of:
(a) generating a candidate geologic model for said rock property; (b) specifying a global-amplitude spectrum for said model; (c) identifying one or more attributes that correlate with said spatial trend; (d) defining a trend model that defines said trend; (e) identifying end-member-trend-attribute values for said trend model; (f) specifying endmember-local-amplitude spectra for each block in said model corresponding to said endmember-trend-amplitude values; (g) discretizing said global-amplitude and said endmember-local-amplitude spectra into frequency bins; (h) calculating endmember-local-amplitude ratios for each said bin and each said endmember-local-amplitude spectra; (i) assigning a local-amplitude-ratio value to each said bin of each said block; (j) computing and discretizing into frequency bins a global spectrum of said model; (k) computing local-frequency-components for each said bin and each said block of said global model; (l) computing scaled-local-frequency-components by multiplying said local-amplitude-ratio values of each said frequency bin for each said block by said local-frequency-component corresponding to said frequency and said block; (m) summing all scaled-frequency-components for each said block to generate a space domain representation of said geologic model at each said block which incorporates said desired spatial trend.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/341,132 filed on Dec. 13, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60341132 |
Dec 2001 |
US |