IP Library › Granted Patent US 10,590,019
Granted Patent B2
US 10,590,019 · App. 15/712,957 · Granted Mar 17, 2020

Method and system for treating wastewater

Inventors: Daniel Ertel (Williamsport, PA); Kent McManus (Orchard Park, NY); Jason Rushing (Alexandria, VA); Jerel Bogdan (Cheektowaga, NY)
Assignee: Eureka Resources, LLC
C02F3/305C02F9/00C02F1/42C02F1/441C02F1/66C02F3/1268C02F3/302C02F2209/08C02F2209/40C02F2305/06Y02W10/15
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Quick Facts
Patent No.
US 10,590,019
App. No.
15/712,957
Granted
Mar 17, 2020
Kind
B2
Abstract

Methods and systems are provided herein for treating wastewater, such as wastewater from oil and natural gas production. Distilled water may be treated with bacteria and other micro-organisms to remove nitrogen compounds from the distilled water. The distilled water may be produced from pretreating and distilling wastewater. The treatment steps of the distilled water include subjecting the water to microbial action under both anoxic and aerobic conditions and employing a membrane bioreactor to further purify the water. The purified water is still further purified by either reverse osmosis or ion exchange systems.

Claims (102)

1. A method of preparing de-wasted water from oil and/or natural gas production wastewater, the method comprising:

distilling oil and/or natural gas production wastewater to produce a distilled wastewater comprising contaminants, the contaminants comprising nitrogen compounds,

wherein said distilling comprises introducing the wastewater to one or more of a crystallization unit and an evaporator unit;

purifying the distilled water to produce a purified water therefrom, said purifying comprising:

adjusting the temperature of the distilled water to between 20° C. to 35° C.;

denitrifying a portion of the nitrogen compounds in the distilled water under anoxic conditions;

nitrifying additional nitrogen compounds in the distilled water under aerobic conditions; and

introducing the distilled water to a membrane bioreactor comprising a membrane to remove a portion of the contaminants from the distilled water to arrive at a purified water from the membrane bioreactor; and

introducing the purified water to a reverse osmosis system and/or an ion exchange system to convert the purified water into a de-wasted water that meets or exceeds each de-wasted water criterion of General Permit WMGR123 (Pennsylvania Department of Environmental Protection, 2012).

2. The method of claim 1 , further comprising pretreating the wastewater prior to the distilling, the pretreating comprising one or more of: adjusting a pH of the wastewater, adding one or more chemicals to the wastewater, clarifying the wastewater, filtering the wastewater and introducing the wastewater to an equalization tank.

3. The method of claim 2 , wherein:

the wastewater comprises solids; and

a portion of the solids is removed from the wastewater during said pretreating.

4. The method of claim 3 , further comprising:

introducing the removed solids to a sludge thickening tank to produce a thickened sludge;

passing the thickened sludge through a filter press to separate a liquid therefrom; and

pretreating the separated liquid with the wastewater.

5. The method of claim 1 , wherein:

the wastewater comprises sodium chloride; and

a portion of the sodium chloride is removed from the wastewater, as a brine, during said distilling.

6. The method of claim 5 , further comprising mixing an amount of the brine into the de-wasted water.

7. The method of claim 1 , wherein said denitrifying the nitrogen compounds in the distilled water comprises adding the distilled water to an anoxic tank comprising denitrifying microorganisms.

8. The method of claim 7 , further comprising adding macronutrients to the anoxic tank.

9. The method of claim 7 , wherein a portion of the denitrifying microorganisms are trapped in the membrane of the membrane bioreactor and further comprising:

removing the trapped denitrifying microorganisms from the membrane; and

adding the denitrifying microorganisms removed from the membrane to the anoxic tank.

10. The method of claim 7 , wherein:

the purified water is introduced to the reverse osmosis system;

a portion of the contaminants are trapped in the reverse osmosis system; and

the method further comprises:

removing the trapped contaminants from the reverse osmosis system; and

adding the contaminants removed from the reverse osmosis system to the anoxic tank.

11. The method of claim 7 , wherein said nitrifying the additional nitrogen compounds in the distilled water comprises adding the distilled water to an aerobic tank comprising nitrifying microorganisms.

12. The method of claim 11 , wherein nitrates are formed during the nitrifying and further comprising recycling the nitrates to the anoxic tank.

13. The method of claim 11 , further comprising adding, to the aeration tank, one or more of: micronutrients, an alkalinity source and an antifoam agent.

14. The method of claim 1 , wherein:

the purified water is introduced to the reverse osmosis system; and

the reverse osmosis system comprises a plurality of semipermeable, thin-film composite reverse osmosis membranes.

15. The method of claim 14 , wherein the reverse osmosis system further comprises a reverse osmosis pre-filter.

16. The method of claim 1 , wherein the purified water is introduced to the ion exchange system.

17. The method of claim 1 , wherein the wastewater comprises one or more of: top-hole wastewater, pit wastewater, spent drilling fluids, flowback from hydraulic fracturing, and wastewater produced from a steam stimulation processes.

18. The method of claim 1 , wherein the purified water comprises a nitrite level at or below 2 mg/L.

19. The method of claim 1 , wherein the de-wasted water comprises a COD level that is at least 95% less than a COD level of the wastewater.

20. A method of preparing de-wasted water from oil and/or natural gas production wastewater, the method comprising:

distilling oil and/or natural gas production wastewater to produce a distilled wastewater therefrom,

wherein the wastewater comprises contaminants, the contaminants comprising sodium chloride and nitrogen compounds, and

wherein a portion of the sodium chloride is removed from the wastewater, as a brine, during said distilling;

purifying the distilled water to produce a purified water therefrom, said purifying comprising:

adjusting the temperature of the distilled water to between 20° C. to 35° C.;

denitrifying a portion of the nitrogen compounds in the distilled water under anoxic conditions;

nitrifying additional nitrogen compounds in the distilled water under aerobic conditions; and

introducing the distilled water to a membrane bioreactor comprising a membrane to remove a portion of the contaminants from the distilled water to arrive at a purified water from the membrane bioreactor; and

introducing the purified water to a reverse osmosis system and/or an ion exchange system to convert the purified water into a de-wasted water that meets or exceeds each de-wasted water criterion of General Permit WMGR123 (Pennsylvania Department of Environmental Protection, 2012).

21. The method of claim 20 , further comprising pretreating the wastewater prior to the distilling, the pretreating comprising one or more of: adjusting a pH of the wastewater, adding one or more chemicals to the wastewater, clarifying the wastewater, filtering the wastewater and introducing the wastewater to an equalization tank.

22. The method of claim 20 , wherein said distilling comprises introducing the wastewater to one or more of a crystallization unit and an evaporator unit.

23. The method of claim 20 , further comprising mixing an amount of the brine into the de-wasted water.

24. The method of claim 20 , wherein:

the purified water is introduced to the reverse osmosis system; and

the reverse osmosis system comprises a plurality of semipermeable, thin-film composite reverse osmosis membranes.

25. The method of claim 20 , wherein the purified water is introduced to the ion exchange system.

26. The method of claim 20 , wherein the purified water comprises a nitrite level at or below 2 mg/L.

27. The method of claim 20 , wherein the de-wasted water comprises a COD level that is at least 95% less than a COD level of the wastewater.

28. A method of preparing de-wasted water from oil and/or natural gas production wastewater, the method comprising:

receiving oil and/or natural gas production wastewater comprising contaminants, the contaminants comprising solids and nitrogen compounds;

pretreating the wastewater to produce a pretreated wastewater therefrom, said pretreating comprising one or more of: adjusting a pH of the combined wastewater stream, adding one or more chemicals to the combined wastewater stream, clarifying the combined wastewater stream, filtering the combined wastewater stream and introducing the combined wastewater stream to an equalization tank,

wherein:

a portion of the solids is removed from the wastewater during said pretreating,

the removed solids are introduced to a sludge thickening tank to produce a thickened sludge,

the thickened sludge is passed through a filter press to separate a liquid therefrom, and

the separated liquid is pretreated with the wastewater;

distilling the pretreated wastewater to produce a distilled wastewater;

purifying the distilled water to produce a purified water therefrom, said purifying comprising:

adjusting the temperature of the distilled water to between 20° C. to 35° C.;

denitrifying a portion of the nitrogen compounds in the distilled water under anoxic conditions;

nitrifying additional nitrogen compounds in the distilled water under aerobic conditions; and

introducing the distilled water to a membrane bioreactor comprising a membrane to remove a portion of the contaminants from the distilled water to arrive at a purified water from the membrane bioreactor; and

introducing the purified water to a reverse osmosis system and/or an ion exchange system to convert the purified water into a de-wasted water that meets or exceeds each de-wasted water criterion of General Permit WMGR123 (Pennsylvania Department of Environmental Protection, 2012).

29. The method of claim 28 , wherein said distilling comprises introducing the pretreated wastewater to one or more of a crystallization unit and an evaporator unit.

30. The method of claim 28 , wherein:

the purified water is introduced to the reverse osmosis system; and

the reverse osmosis system comprises a plurality of semipermeable, thin-film composite reverse osmosis membranes.

31. The method of claim 28 , wherein the purified water is introduced to the ion exchange system.

32. A method of preparing de-wasted water from oil and/or natural gas production wastewater, the method comprising:

distilling oil and/or natural gas production wastewater to produce a distilled wastewater comprising contaminants, the contaminants comprising nitrogen compounds;

purifying the distilled water to produce a purified water therefrom, said purifying comprising:

adjusting the temperature of the distilled water to between 20° C. to 35° C.;

denitrifying a portion of the nitrogen compounds in the distilled water under anoxic conditions, said denitrifying comprising adding the distilled water to an anoxic tank comprising denitrifying microorganisms;

nitrifying additional nitrogen compounds in the distilled water under aerobic conditions; and

introducing the distilled water to a membrane bioreactor comprising a membrane to remove a portion of the contaminants from the distilled water to arrive at a purified water from the membrane bioreactor,

wherein a portion of the denitrifying microorganisms are trapped in the membrane of the membrane bioreactor and the trapped denitrifying microorganisms are removed from the membrane and added to the anoxic tank; and

introducing the purified water to a reverse osmosis system and/or an ion exchange system to convert the purified water into a de-wasted water that meets or exceeds each de-wasted water criterion of General Permit WMGR123 (Pennsylvania Department of Environmental Protection, 2012).

33. The method of claim 32 , wherein said distilling comprises introducing the wastewater to one or more of a crystallization unit and an evaporator unit.

34. A method of preparing de-wasted water from oil and/or natural gas production wastewater, the method comprising:

distilling oil and/or natural gas production wastewater to produce a distilled wastewater comprising contaminants, the contaminants comprising nitrogen compounds;

purifying the distilled water to produce a purified water therefrom, said purifying comprising:

adjusting the temperature of the distilled water to between 20° C. to 35° C.;

denitrifying a portion of the nitrogen compounds in the distilled water under anoxic conditions, said denitrifying comprising adding the distilled water to an anoxic tank comprising denitrifying microorganisms;

nitrifying additional nitrogen compounds in the distilled water under aerobic conditions; and

introducing the distilled water to a membrane bioreactor comprising a membrane to remove a portion of the contaminants from the distilled water to arrive at a purified water from the membrane bioreactor; and

introducing the purified water to a reverse osmosis system to convert the purified water into a de-wasted water that meets or exceeds each de-wasted water criterion of General Permit WMGR123 (Pennsylvania Department of Environmental Protection, 2012),

wherein a portion of the contaminants are trapped in the reverse osmosis system and the trapped contaminants are removed from the reverse osmosis system and added to the anoxic tank.

35. The method of claim 34 , wherein said distilling comprises introducing the wastewater to one or more of a crystallization unit and an evaporator unit.

Assignments (2)
LIEN Recorded Jan 15, 2025
From: EUREKA RESOURCES, LLC
To: QUINTANA INFRASTRUCTURE & DEVELOPMENT LLC
Reel/Frame 069880/0057 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2017
From: ERTEL, DANIEL; MCMANUS, KENT; BOGDAN, JEREL; RUSHING, JASON
To: EUREKA RESOURCES LLC
Reel/Frame 043666/0642 →
Continuity (3)
Continuation 13923693 · Jun 21, 2013
Provisional Application 61662801 · Jun 21, 2012
Related Publication 20180009688A1 · Jan 11, 2018
Cited By (1)
US 12,606,459