Controlling hydrocarbon production
US-10125586-B2 · Nov 13, 2018 · US
US10677035B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10677035-B2 |
| Application number | US-201816126718-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 10, 2018 |
| Priority date | Sep 2, 2016 |
| Publication date | Jun 9, 2020 |
| Grant date | Jun 9, 2020 |
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Techniques for controlling hydrocarbon production includes (i) identifying a plurality of reservoir measurements of a subterranean hydrocarbon reservoir located between at least one injection wellbore and at least one production wellbore; (ii) processing the identified plurality of reservoir measurements to generate a petrophysical model of the subterranean hydrocarbon reservoir; (iii) determining, based on the petrophysical model, a flow of an injectant from the injection wellbore toward the production wellbore; and (iv) adjusting an inflow control device (ICD) positioned about the production wellbore based on the determined flow of the injectant.
Opening claim text (preview).
What is claimed is: 1. A computer program product encoded on a non-transitory storage medium, the product comprising non-transitory, computer readable instructions for causing one or more processors to perform operations comprising: (i) identifying a plurality of reservoir measurements of a subterranean hydrocarbon reservoir located between at least one injection wellbore and at least one production wellbore, the plurality of reservoir measurements comprising at least one of crosswell electromagnetic (EM), borehole EM, surface electromagnetics, gravity measurements, or 4D seismic; (ii) processing the identified plurality of reservoir measurements to generate a petrophysical model of the subterranean hydrocarbon reservoir; (iii) determining, based on the petrophysical model, a flow of an injectant from the injection wellbore toward the production wellbore; (iv) adjusting an inflow control device (ICD) positioned about the production wellbore based on the determined flow of the injectant; and (v) executing an iterative process of steps (i) through (iv), the iterative process comprising comparing a previous plurality of reservoir measurements with a current plurality of reservoir measurements. 2. The computer program product of claim 1 , wherein processing the identified plurality of reservoir measurements comprises inverting the reservoir measurements to determine the petrophysical model, the petrophysical model comprising a water saturation value at a plurality of locations in the reservoir between the injection wellbore and the production wellbore. 3. The computer program product of claim 2 , wherein determining the injectant flow comprises determining a floodfront between the injection wellbore and the production wellbore, the floodfront comprising a sum of the water saturation and a hydrocarbon saturation value at the plurality of locations. 4. The computer program product of claim 3 , wherein determining the injectant flow comprises updating the petrophysical model using a Bayesian inference with the plurality of reservoir measurements. 5. The computer program product of claim 4 , further comprising: determining a threshold location between the injection wellbore and the production wellbore; and determining the flow of the injectant at the threshold location. 6. The computer program product of claim 5 , wherein adjusting the ICD comprises at least one of: adjusting the ICD based on the flow of the injectant at the threshold location exceeding a predetermined value; or shutting the ICD. 7. The computer program product of claim 1 , wherein determining the injectant flow comprises updating the petrophysical model using a Bayesian inference with the plurality of reservoir measurements. 8. The computer program product of claim 1 , further comprising: determining a threshold location between the injection wellbore and the production wellbore; and determining the flow of the injectant at the threshold location. 9. The computer program product of claim 8 , wherein adjusting the ICD comprises at least one of: adjusting the ICD based on the flow of the injectant at the threshold location exceeding a predetermined value; or shutting the ICD. 10. The computer program product of claim 1 , further comprising stopping the iterative process when a difference between the current plurality of reservoir measurements and the previous plurality of reservoir measurements is less than a threshold value. 11. The computer program product of claim 10 , wherein inverting the reservoir measurements to determine the petrophysical model comprises obtaining a probable distribution of resistivity in the subterranean hydrocarbon reservoir that is compatible with the plurality of reservoir measurements. 12. The computer program product of claim 11 , wherein the inversion comprises an inference of the probable distribution of resistivity in the subterranean hydrocarbon reservoir. 13. The computer program product of claim 1 , wherein the plurality of reservoir measurements comprise a plurality of reservoir gravity measurements that correspond to a bulk density of the subterranean hydrocarbon reservoir governed by the equation: ρ b =ρ m (1−ϕ)+ϕ( S w ρ w +S o ρ o +S g ρ g ) where ρ b is bulk density, ρ m is matrix density, ρ w is water density, ρ o is oil density, ρ g is gas density, ϕ is porosity, S w is water saturation, S o is oil saturation, and S g is gas saturation. 14. The computer program product of claim 1 , wherein adjusting the inflow control device (ICD) positioned about the production wellbore based on the determined flow of the injectant comprises: adjusting at least a portion of a plurality of ICDs positioned about the production wellbore to restrict the flow of the injectant into the production wellbore; and adjusting another portion of the plurality of ICDs positioned about the production wellbore to allow a flow of hydrocarbons into the production wellbore. 15. The computer program product of claim 14 , further comprising stopping the iterative process when a difference between the current plurality of reservoir measurements and the previous plurality of reservoir measurements is less than a threshold value. 16. The computer program product of claim 15 , wherein inverting the reservoir measurements to determine the petrophysical model comprises obtaining a probable distribution of resistivity in the subterranean hydrocarbon reservoir that is compatible with the plurality of reservoir measurements. 17. The computer program product of claim 16 , wherein the inversion comprises an inference of the probable distribution of resistivity in the subterranean hydrocarbon reservoir. 18. The computer program product of claim 17 , wherein the plurality of reservoir measurements comprise a plurality of reservoir gravity measurements that correspond to a bulk density of the subterranean hydrocarbon reservoir governed by the equation: ρ b =ρ m (1−ϕ)+ϕ( S w ρ w +S o ρ o +S g ρ g ) where ρ b is bulk density, ρ m is matrix density, ρ w is water density, ρ o is oil density, ρ g is gas density, ϕ is porosity, S w is water saturation, S o is oil saturation, and S g is gas saturation. 19. The computer program product of claim 18 , wherein adjusting the inflow control device (ICD) positioned about the production wellbore based on the determined flow of the injectant comprises: adjusting at least a portion of a plurality of ICDs positioned about the production wellbore to restrict the flow of the injectant into the production wellbore; and adjusting another portion of the plurality of ICDs positioned about the production wellbore to allow a flow of hydrocarbons into the production wellbore.
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