IP Library Granted Patent US 8,789,608
Granted Patent B2
US 8,789,608 · App. 12/635,597 · Granted Jul 29, 2014

Steam generation process for enhanced oil recovery

Inventor: Maoz Betzer-Zilevitch (SW Calgary, CA)
Assignee: Ex-Tar Technologies Inc.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,789,608
App. No.
12/635,597
Granted
Jul 29, 2014
Kind
B2
Abstract

The system and method for steam production for extraction of heavy bitumen includes a method of mixing fuel and oxidizing gases, combusting the mixture, mixing combustion gas with water containing solids and organics, separating solids, using heat from the separated gas to produce distilled water, recycling the distillation facility brine with the combustion gas and removing solids thereof, generating steam from the distilled water and injecting the steam through an injection well or using it above ground for oil recovery. The system includes a combustion boiler, a direct contact steam generator, a gas-solids separator, and a heat exchanger with a water treatment facility like a distillation facility. The water feed of the present invention can be water separated from produced oil and/or low quality water salvaged from industrial plants, such as refineries and tailings as make-up water.

Claims (43)

1. A method for steam production for extraction of heavy bitumen, with zero liquid discharge, said method comprising the steps of:

mixing carbon-based fuel and oxidizing gases, wherein said carbon-based fuel is comprised of carbon fuel or hydrocarbon fuel and wherein said oxidizing gases are comprised of oxygen, air, or enhanced air;

combusting the mixture under pressure and temperature so as to produce a combustion gas;

mixing said combustion gas with liquid water having solids and organics so as to transfer said liquid water from a liquid phase to a gas phase;

separating solids and the gas phase;

evaporating water to produce de-mineralized water and concentrated brine;

mixing said concentrated brine with said combustion gas;

generating steam from the produced de-mineralized water through non-direct heat exchange; and

recovering oil with generated steam to recover oil.

2. The method described in claim 1 , wherein said liquid water having solids and organics controls the combustion temperature and transfer of said liquid water from a liquid phase to a gas phase.

3. The method for steam generation of claim 1 , further comprising:

generating steam with a portion of said combustion heat from the de-mineralized water.

4. The method of steam generation of claim 1 , further comprising:

mixing said combustion gas with liquid water to wet-scrub solids and acid gases in order to produce a clean, wet saturated steam and combustion gas mixture and liquid water with the scrubbed solids and gases; and

recycling at least some of said liquid water containing the scrubbed material back to the step of transferring said liquid water from a liquid phase to a gas phase.

5. The method of steam generation of claim 1 , wherein the carbon-based fuel contains sulfur, the method further comprising:

mixing the fuel or the water with alkaline compounds so as to remove SO2 at the combustion stage and to produce a lean SO2 gas mixture.

6. The method of steam generation of claim 5 , wherein said alkaline compounds contains lime softening sludge which is a lime softening water treatment facility waste to remove the acid gases.

7. The method of steam generation of claim 1 , wherein the carbon-based fuel contains sulfur, the method further comprising:

mixing the combustion gas with liquid water and alkaline compounds, said alkaline compound being comprised of calcium, so as to remove SOX in order to produce a clean, wet saturated steam and gas mixture and liquid water with the scrubbed solids and gases; and

recycling at least some water containing the scrubbed solids and gases back to the step of transferring said liquid water from a liquid phase to a gas phase.

8. The method of steam generation of claim 1 , wherein the step of combustion and mixing said combustion gas with liquid water having solids and organics so as to transfer said liquid water from a liquid phase to a gas phase is located in an integrated combustion and direct contact steam generator reactor, wherein most water evaporates to steam.

9. The method of steam generation of claim 1 , wherein the step of mixing said combustion gas is located in a direct contact steam generator reactor, wherein most water evaporates during conversion to steam, said direct contact steam generator reactor comprising a horizontal rotating reactor, a fluidized bed reactor, or an up-flow reactor to generate a stream of gas and solids.

10. The method of steam generation of claim 1 , wherein the step of mixing said combustion gas is located in a pressurized spray dryer, consuming contaminated water for conversion to steam.

11. The method of steam generation of claim 1 , wherein the combustion gas, after the step of evaporating water to produce de-mineralized water and concentrated brine, is non-condensable combustion gas, said method further comprising:

generating a vacuum with residual pressure of the non-condensable combustion gas to operate the distillation facility before releasing the non-condensable combustion gas to atmosphere.

12. The method of steam generation of claim 11 , further comprising:

separating CO2 from the non-condensable combustion gas with a membrane, wherein discharged pressure will be used for the step of separating the gases on the membrane; and

recovering oil with the CO2.

13. The method of claim 1 , wherein a distillation facility evaporates water in said step of evaporating water to produce de-mineralized water and concentrated brine, said distillation facility being is comprised of at least one of a group consisting of a Multi Effect Distillation facility, Multi Stage Flashing facility, and Mechanical Vapor Compression.

14. The method of claim 13 , where heat transfer in said distillation facility to produce de-mineralized water and concentrated brine, is done in a direct contact heat exchange between liquid water and the gas phase.

15. The method of claim 1 , wherein steam from said de-mineralized water for steam generation through non-direct heat exchange, is generated through at least one of a group consisting of a fluidized bed boiler, Once Through Steam Generator, Co-Gen and an industrial steam boiler.

16. The method of claim 1 , where the separated solids are mixed with sludge waste to generate a stable solid material that can be disposed in a land-fill and support traffic.

17. The method of claim 1 , where the generated steam is injected through an injection well into an underground formation to recover heavy oil.

18. The method of claim 1 , further comprising:

flashing solvents with the generated steam in an open oilsands mine.

19. A method for steam production for heavy oil extraction with zero liquid discharge, said method comprising the steps of:

combusting carbon-based fuel and oxidizing gases to produce combustion heat and gas;

evaporating liquid from a fluid having solids and organics with said combustion heat, said liquid transferring to a gas phase;

separating said solids and said gas phase;

evaporating liquid water to generate de-mineralized water and concentrated brine;

generating steam from said de-mineralized water; and

recovering oil with generated steam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2010
From: BETZER ZILEVITCH, MAOZ
To: EX-TAR TECHNOLOGIES INC.
Reel/Frame 024396/0323 →
Priority Claims (1)
CA 2665751 · May 12, 2009 · national
Continuity (2)
Provisional Application 61122195 · Dec 12, 2008
Related Publication 20100170453A1 · Jul 8, 2010