Claims
- 1. A method for excavating a hydrocarbon-containing material, comprising:
(a) excavating the hydrocarbon-containing material with an underground mining machine, wherein the excavating step produces a first slurry comprising the excavated hydrocarbon-containing material and having a first slurry density; (b) contacting the first slurry with solvent to produce a second slurry having a second slurry density equal to or less than the first slurry density; (c) hydrocycloning the second slurry to form a first output comprising at least most of the hydrocarbon content of the excavated hydrocarbon-containing material, a second output comprising at least most of the solid content of the first slurry; and a third output comprising solvent; and (d) backfilling an underground excavation behind the mining machine to form a trailing access tunnel having a backfilled latitudinal cross-sectional area that is less than the pre-backfilled latitudinal cross-sectional area of the excavation before backfilling.
- 2. The method of claim 1, wherein the hydrocarbon-containing material is oil sands, the solvent is water, the hydrocarbon content of the material is bitumen, the hydrocycloning step step is part of a bitumen extraction process, the underground mining machine is a continuous mining machine, and, in the excavating step (a), the hydrocarbon-containing material is excavated using slurry mining techniques.
- 3. The method of claim 1, wherein the first slurry density ranges from about 1,100 kilograms per cubic meter to about 1,800 kilograms per cubic meter and the second slurry density ranges from about 1,250 kilograms per cubic meter to about 1,500 kilograms per cubic meter.
- 4. The method of claim 1, wherein the second slurry density is less than the first slurry density.
- 5. The method of claim 1, wherein the latitudinal cross-sectional area is measured transverse to a longitudinal axis of the excavation and wherein the backfilled cross-sectional area is no more than about 50% of the pre-backfilled cross-sectional area.
- 6. The method of claim 5, wherein the second output is used in the backfilling step without prior removal of solvent after hydrocycloning.
- 7. The method of claim 1, wherein the backfilling step is performed directly after the hydrocycloning step (c).
- 8. The method of claim 1, wherein the first and second slurries are maintained, before the hydrocycloning step (c), at a pressure that is at least about 75% of the formation pressure of the excavated hydrocarbon-containing material before excavation and wherein, during the hydrocycloning step (c), the pressure of the second slurry is reduced to no more than about 50% of the formation pressure whereby gas bubbles in the hydrocarbon-containing material are released during the hydrocycloning step (c).
- 9. The method of claim 8, wherein the formation pressure is from about 2 bar to about 20 bars.
- 10. The method of claim 3, further comprising:
after the excavating step (a), contacting the first slurry with solvent to form a third slurry having a third slurry density that is less than or equal to the first slurry density and more than or equal to the second slurry density; and hydrotransporting the third slurry away from the mining machine, wherein the third slurry is diluted with solvent in the contacting step (b) to form the second slurry, wherein the density of the third slurry is more than the density of the second slurry, and wherein the third slurry has a density ranging from about 1,350 to about 1,650 kilograms per cubic meter.
- 11. The method of claim 1, wherein the second slurry has a solvent content, wherein the first output comprises no more than about 20% of the solvent content, the second output comprises no more than about 35% of the solvent content; and the third output comprises at least about 50% of the solvent content.
- 12. The method of claim 1, wherein the second slurry has a solids content, wherein the first output comprises no more than about 10% of the solids content, the second output comprises at least about 70% of the solids content; and the third output comprises no more than about 15% of the solids content.
- 13. The method of claim 1, wherein the second slurry has a bitumen content, wherein the first output comprises at least about 70% of the bitumen content, the second output comprises no more than about 10% of the bitumen content; and the third output comprises no more than about 10% of the bitumen content.
- 14. The method of claim 1, further comprising after step (a) and before step (c):
comminuting the excavated hydrocarbon-containing material in the first slurry.
- 15. The method of claim 1, wherein the extraction hydrocycloning step (c) is performed in inside of the mining machine.
- 16. The method of claim 1, wherein the solvent is water and wherein the second output is dewatered to produce a backfill material for the backfilling step, the backfill material has a water content of less than about 20% water by mass.
- 17. Bitumen is recovered by the method of claim 2.
- 18. A system for excavating a hydrocarbon-containing material having a bitumen content, comprising:
(a) an underground slurry excavator operable to excavate the hydrocarbon-containing material, wherein the excavator produces a first slurry comprising the excavated hydrocarbon-containing material and having a first slurry density; (b) a solvent distribution device operable to contact the first slurry with solvent to produce a second slurry having a second slurry density lower than or equal to the first slurry density; (c) a hydrocyclone extraction process operable to separate the second slurry into a first output comprising at least most of the bitumen content of the excavated hydrocarbon-containing material, a second output comprising at least most of the solid content of the first slurry; and a third output comprising solvent; and (d) a backfill assembly operable to backfill an underground excavation behind the underground slurry excavator to form a trailing access tunnel having a backfilled latitudinal cross-sectional area that is less than the pre-backfilled latitudinal cross-sectional area of the excavation before backfilling.
- 19. The system of claim 18, wherein the hydrocarbon-containing material is oil sands, the solvent is water, and the excavator is part of a continuous mining machine.
- 20. The system of claim 18, wherein the first slurry density ranges from about 1,100 kilograms per cubic meter to about 1,800 kilograms per cubic meter and the second slurry density ranges from about 1,250 kilograms per cubic meter to about 1,500 kilograms per cubic meter.
- 21. The system of claim 18, wherein the second slurry density is less than the first slurry density.
- 22. The system of claim 18, wherein the latitudinal cross-sectional area is measured transverse to a longitudinal axis of the excavation and wherein the backfilled cross-sectional area is no more than about 50% of the pre-backfilled cross-sectional area.
- 23. The system of claim 22, wherein the second output is used in the backfilling operation without prior removal of the solvent after the bitumen extraction operation.
- 24. The system of claim 18, wherein the backfilling operation is performed directly after the bitumen extraction operation.
- 25. The system of claim 18, wherein the first and second slurries are maintained, before the bitumen extraction operation, at a pressure that is at least about 75% of the formation pressure of the excavated hydrocarbon-containing material before excavation and wherein, during the extraction operation, the pressure of the second slurry is reduced to no more than about 50% of the formation pressure, whereby gas bubbles in the hydrocarbon-containing material are released during the extraction operation.
- 26. The system of claim 22, wherein the formation pressure is from about 2 bar to about 20 bars.
- 27. The system of claim 20, further comprising:
a second solvent distribution device operable, after the excavating operation, to contact the first slurry with a solvent to form a third slurry having a third slurry density that is less than the first slurry density and more than the second slurry density; and a hydrotransportation assembly operable to hydrotransport the third slurry away from the excavator, wherein the third slurry is diluted with solvent in the contacting operation to form the second slurry, the density of the third slurry is more than the density of the second slurry, and the third slurry has a density ranging from about 1,350 to about 1,650 kilograms per cubic meter.
- 28. The system of claim 18, wherein the second slurry has a solvent content, wherein the first output comprises no more than about 20% of the solvent content, the second output comprises no more than about 35% of the solvent content; and the third output comprises at least about 50% of the solvent content.
- 29. The system of claim 18, further comprising:
a comminuting device operable to comminute the excavated hydrocarbon-containing material in the first slurry.
- 30. The system of claim 18, wherein the excavator is part of a mining machine and the extraction hydrocyclone apparatus is positioned inside of the mining machine.
- 31. A method for selective underground mining, comprising:
excavating a material with a plurality of excavating devices, each excavating device being in communication with and provide excavated material to a separate input for the excavated material; directing first and second streams of the excavated material into corresponding first and second inputs corresponding to first and second excavating devices; determining a respective value of each of the first and second streams; when a first value of the first stream is significant, directing the first stream from the first input to a first location; when a first value of the first stream is not significant, directing the first stream from the first input to a second location; when a second value of the second stream is significant, directing the second stream from the second input to the first location; and when a second value of the second stream is not significant, directing the second stream from the second input to the second location.
- 32. The method of claim 31, wherein at least some of the material is a hydrocarbon-containing material and wherein the value is related to a bitumen content of the material.
- 33. The method of claim 31, wherein the first location is a processing device to extract a valuable material from the excavated material and the second location is a tailings disposal.
- 34. The method of claim 33, further comprising:
when the first and/or second stream is directed to the second location, backfilling the underground excavation with the first and/or second stream.
- 35. The method of claim 31, further comprising:
at a first time, determining that the first stream has a significant value and directing the first stream to the first location; and at a second later time, determining that the first stream does not have a significant value and directing the first stream to the second location.
- 36. The method of claim 31, wherein the plurality of excavating devices are a plurality of rotary excavating heads.
- 37. The method of claim 31, wherein the plurality of excavating devices are a plurality of water jets.
- 38. The method of claim 31, the first excavating device is located above the second excavating device.
- 39. An underground mining machine, comprising:
a plurality of excavating devices operable to excavate a material; a plurality of separate inputs, each input being in communication with a corresponding one of the plurality of inputs, wherein first and second streams of the excavated material are directed into first and second inputs corresponding to first and second excavating devices; an analyzer operable to determine a value of each of the first and second streams; a switch operable to (a) when a first value of the first stream is significant, direct the first stream from the first input to a first location; (b) when a first value of the first stream is not significant, direct the first stream from the first input to a second location; (c) when a second value of the second stream is significant, direct the second stream from the second input to the first location; and (d) when a second value of the second stream is not significant, direct the second stream from the second input to the second location.
- 40. The underground mining machine of claim 39, wherein at least some of the material is a hydrocarbon-containing material and wherein the value is related to a bitumen content of the material.
- 41. The underground mining machine of claim 39, wherein the first location is a processing device to extract a valuable material from the excavated material and the second location is a tailings disposal.
- 42. The underground mining machine of claim 41, further comprising:
a backfill assembly at the second location that is operable to backfill the underground excavation with the first and/or second stream, when the first and/or second stream is directed to the second location.
- 43. The underground mining machine of claim 39, wherein the switch, at a first time, determines that the first stream has a significant value and directing the first stream to the first location and at a second later time, determines that the first stream does not have a significant value and directing the first stream to the second location.
- 44. The underground mining machine of claim 39, wherein the plurality of excavating devices are a plurality of rotary excavating heads.
- 45. The underground mining machine of claim 39, wherein the plurality of excavating devices are a plurality of water jets.
- 46. The underground mining machine of claim 39, the first excavating device is located above the second excavating device.
- 47. The underground mining machine of claim 39, wherein the plurality of excavating devices and the plurality of corresponding inputs are arranged in a plurality of rows and columns.
CROSS REFERENCE TO RELATED APPLICATION
[0001] The present application claims the benefits of U.S. Provisional Application Ser. No. 60/475,947 filed Jun. 4, 2003, which is incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60475947 |
Jun 2003 |
US |