IP Library Granted Patent US 8,470,139
Granted Patent B2
US 8,470,139 · App. 12/878,155 · Granted Jun 25, 2013

Systems and method for low temperature recovery of fractionated water

Inventor: Donald W. Booth (Charleston, WV)
Assignee: NGInnovations, Inc.
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Quick Facts
Patent No.
US 8,470,139
App. No.
12/878,155
Granted
Jun 25, 2013
Kind
B2
Abstract

In accordance with one embodiment, a method for treating fractionated water produced by a hydraulic fracturing process is provided. The method includes decanting a fractionated water stream in at least one decanter. The decanter is maintained at a temperature ranging from about 90° F. to about 120° F. The method also includes flashing the decanted water in at least one first flash tank and at least one second flash tank in fluid communication with one another to provide a residual concentrate stream. The first flash tank is operated at a temperature ranging from about 180° F. to about 200° F. and the second flash tank is operated at a temperature ranging from about 140° F. to about 160° F. Both the first flash tank and the second flash tank are maintained at a vacuum pressure. The method also includes evaporating the residual concentrate stream in at least one evaporator kettle to produce a concentrated brine. The evaporator kettle is fluidly connected to the second flash tank, and the evaporator kettle is operated at a temperature ranging from about 95° F. to about 115° F. The evaporator kettle is maintained at a vacuum pressure. The method also includes dewatering the concentrated brine to produce recovered salt having less than about 20 wt. % water.

Claims (38)

1. A method for treating fractionated water produced by a hydraulic fracturing process, the method comprising:

decanting a fractionated water stream in at least one decanter, wherein the decanter is maintained at a temperature ranging from about 90° F. to about 120° F.;

flashing the decanted water in at least one first flash tank and at least one second flash tank in fluid communication with one another to provide a residual concentrate stream, wherein the first flash tank is operated at a temperature ranging from about 180° F. to about 200° F., wherein the second flash tank is operated at a temperature ranging from about 140° F. to about 160° F., and wherein the first flash tank and the second flash tank are maintained at a vacuum pressure;

evaporating the residual concentrate stream in at least one evaporator kettle to produce a concentrated brine, wherein the evaporator kettle is fluidly connected to the second flash tank, wherein the evaporator kettle is operated at a temperature ranging from about 95° F. to about 115° F., and wherein the evaporator kettle is maintained at a vacuum pressure;

dewatering the concentrated brine to produce recovered salt having less about 20 wt. % water; and

the recovered salt comprises from about 10 wt. % to about 30 wt. % calcium salts, from about 50 wt. % to about 90 wt. % sodium chlorida, and from about 0.01 wt. % to about 2 wt. % salts and other contaminants besides sodium chloride and calcium salts.

2. The method of claim 1 , wherein the first flash tank is maintained at a vacuum pressure ranging from about 4 psi to about 6 psi, and wherein the second flash tank is maintained at a vacuum pressure ranging from about 10 psi to about 12 psi.

3. The method of claim 1 , wherein the evaporator kettle is maintained at a vacuum pressure ranging from about 12 psi to about 15 psi.

4. The method of claim 1 , further comprising removing non-condensable gases from the evaporator kettle with at least one vacuum pump, wherein the vacuum pump is in fluid communication with the evaporator kettle.

5. A method for treating fractionated water produced by a hydraulic fracturing process, the method comprising:

decanting a fractionated water stream in at least one decanter, wherein the decanter is maintained at a temperature ranging from about 90° F. to about 120° F.;

flashing the decanted water in at least one first flash tank and at least one second flash tank in fluid communication with one another to provide a residual concentrate stream, wherein the first flash tank is operated at a temperature ranging from about 180° F. to about 200° F., wherein the second flash tank is operated at a temperature ranging from about 140° F. to about 160° F., and wherein the first flash tank and the second flash tank are maintained at a vacuum pressure;

evaporating the residual concentrate stream in at least one evaporator kettle to produce a concentrated brine, wherein the evaporator kettle is fluidly connected to the second flash tank, wherein the evaporator kettle is operated at a temperature ranging from about 95° F. to about 115° F., and wherein the evaporator kettle is maintained at a vacuum pressure, and wherein the evaporator kettle produces a kettle vapor stream, and wherein the method further comprises condensing the kettle vapor stream in at least one condenser to provide a condenser output, and wherein the condenser output has a concentration of total dissolved solute level ranging from about 50 ppm to about 225 ppm; and

dewatering the concentrated brine to produce recovered salt having less about 20 wt. % water.

6. The method of claim 5 , wherein condensing the kettle vapor stream creates vacuum pressure in the first flash tank, the second flash tank, and the evaporator kettle.

7. The method of claim 1 , further comprising straining the fractionated water stream with at least one strainer, wherein the at least one strainer is in fluid communication with the decanter.

8. The method of claim 1 , further comprising filtering the decanted water to remove any remaining solids and hydrocarbon droplets with at least one filter, wherein the at least one filter is in fluid communication with the decanter.

9. The method of claim 1 , wherein the first flash tank, the second flash tank, and the evaporator kettle comprise only non-metallic contact surfaces.

10. The method of claim 9 , wherein the non-metallic contact surfaces comprise a polymeric coating.

11. The method of claim 1 , wherein the decanter, the first flash tank, the second flash tank, and the evaporator kettle are connected with a piping system, wherein the piping system comprises only non-metallic contact surfaces.

12. The method of claim 1 , wherein the decanter, the first flash tank, the second flash tank, and the evaporator kettle are heated using a hot oil system.

13. A method for treating fractionated water produced by a hydraulic fracturing process, the method comprising:

decanting a fractionated water stream at a temperature ranging from about 90° F. to about 120° F.;

flashing the decanted water in at least one first flash tank and at least one second flash tank in fluid communication with one another to provide a residual concentrate stream, wherein:

the first flash tank is operated at a temperature ranging from about 180° F. to about 200° F.,

the second flash tank is operated at a temperature ranging from about 140° F. to about 160° F.,

the first flash tank is maintained at a vacuum pressure ranging from about 4 psi to about 6 psi, and

the second flash tank is maintained at a vacuum pressure ranging from about 10 psi to about 12 psi;

evaporating the residual concentrate stream in at least one evaporator kettle to produce a concentrated brine, wherein:

the evaporator kettle is fluidly connected to the second flash tank,

the evaporator kettle produces a kettle vapor stream,

the evaporator kettle is operated at a temperature ranging from about 95° F. to about 115° F., and

the evaporator kettle is maintained at a vacuum pressure ranging from about 12 psi to about 15 psi;

condensing the kettle vapor stream in at least one condenser to provide a condenser output;

dewatering the concentrated brine to produce recovered salt having less than about 20 wt. % water, wherein the recovered salt comprises from about 10 wt. % to about 30 wt. % calcium salts, and from about 50 wt. % to about 90 wt. % sodium chloride, and from about 0.01 wt. % to about 2 wt. % salts and other contaminants besides sodium chloride and calcium salts; and

wherein the condensate stream has a concentration of total dissolved solutes ranging from about 50 ppm to about 225 ppm.

14. The method of claim 13 , wherein the first flash tank, the second flash tank, and the evaporator kettle comprise only non-metallic contact surfaces.

15. The method of claim 14 , wherein the non-metallic contact surfaces comprise a polymeric coating.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2015
From: NGINNOVATIONS, INC.
To: GOLDSMITH, ROBERT F., MR.
Reel/Frame 035833/0935 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2010
From: BOOTH, DONALD W
To: NGINNOVATIONS, INC.
Reel/Frame 025015/0506 →
Continuity (2)
Provisional Application 61285669 · Dec 11, 2009
Related Publication 20110139603A1 · Jun 16, 2011