IP Library Granted Patent US 11,332,392
Granted Patent B2
US 11,332,392 · App. 16/305,959 · Granted May 17, 2022

Treatment of high peroxide waste streams

Inventors: Frank L. Sassaman, Jr. (Fombell, PA); David L. Berger (Wampum, PA); Stanley R. Karrs (Gibsonia, PA)
Assignee: Evoqua Water Technologies LLC
C02F1/5245C01B15/01C02F1/283C02F1/66C02F1/70C02F1/722C02F1/725C02F9/00C02F1/24C02F1/444C02F1/705C02F2101/10C02F2101/34C02F2103/346C02F2209/005C02F2209/06C02F2301/046C02F2303/18C02F2305/023C02F2305/026
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Quick Facts
Patent No.
US 11,332,392
App. No.
16/305,959
Granted
May 17, 2022
Kind
B2
Abstract

A method of reducing a concentration of hydrogen peroxide from wastewater includes diluting the wastewater with water having a lower concentration of hydrogen peroxide than the wastewater to produce a diluted wastewater, contacting the diluted wastewater with a dissolved iron compound at an acidic pH to form a partially treated wastewater having a lower concentration of hydrogen peroxide than the diluted wastewater, and precipitating iron solids from the partially treated wastewater by raising a pH of the partially treated wastewater to form a neutralized partially treated wastewater.

Claims (54)

1. A method of reducing a concentration of hydrogen peroxide in wastewater, the method comprising:

diluting the wastewater to produce a diluted wastewater;

maintaining the diluted wastewater at a pH between 1 and 3 in a first reaction tank by addition of an acid;

contacting the diluted wastewater with a dissolved iron compound at the pH between 1 and 3 in the first reaction tank to form a partially treated wastewater having a lower concentration of hydrogen peroxide than the diluted wastewater;

introducing the partially treated wastewater into a second reaction tank and maintaining a pH of the introduced partially treated wastewater at a pH between 6 and 8 to precipitate iron-containing compounds from the partially treated wastewater thereby forming a neutralized partially treated wastewater; and

removing residual hydrogen peroxide from the neutralized partially treated wastewater by treating the neutralized partially treated wastewater in a catalytic activated carbon column.

2. The method of claim 1 , further comprising utilizing at least a portion of iron-containing compounds precipitated from the partially treated wastewater as a source of the dissolved iron compound.

3. The method of claim 2 , further comprising recycling the precipitated iron-containing compounds from the second reaction tank to the first reaction tank.

4. The method of claim 3 , wherein diluting the wastewater includes diluting the concentration of hydrogen peroxide in wastewater to less than about 2.2 wt % prior to introducing the diluted wastewater into the first reaction tank.

5. The method of claim 4 , wherein the diluted wastewater has a peroxide concentration of between 2.0-2.2 g/L.

6. The method of claim 1 , further comprising diluting the wastewater with solids lean effluent from the second reaction tank.

7. The method of claim 6 , wherein diluting the wastewater includes diluting the concentration of hydrogen peroxide in the wastewater to less than about 2.2 wt % prior to introducing the diluted wastewater into the first reaction tank.

8. The method of claim 1 , further comprising:

introducing the neutralized partially treated wastewater into a microfilter concentration tank; and

periodically filtering a portion of the neutralized partially treated wastewater from the microfilter concentration tank through a microfilter.

9. The method of claim 8 , further comprising recycling microfilter concentrate separated from the neutralized partially treated wastewater by the microfilter to the microfilter concentration tank.

10. The method of claim 8 , further comprising diluting the wastewater with a portion of filtrate produced from the neutralized partially treated wastewater in the microfilter.

11. The method of claim 1 , wherein the diluting comprises diluting a wastewater having a peroxide concentration of about 22 wt. %.

12. A system for removing hydrogen peroxide from wastewater, the system comprising:

a first reaction tank having an inlet fluidly connectable to a source of the wastewater;

a source of dilution water having a lower concentration of hydrogen peroxide than the wastewater in fluid communication with the inlet of the first reaction tank;

a source of ferrous salt in fluid communication with the first reaction tank;

a source of acid in fluid communication with the first reaction tank;

a second reaction tank having an inlet in fluid communication with an outlet of the first reaction tank;

a source of a base in fluid communication with the second reaction tank; and

a controller configured to cause the system to perform a method comprising:

diluting the wastewater to produce a diluted wastewater;

maintaining the diluted wastewater at a pH between 1 and 3 in a first reaction tank by addition of an acid;

contacting the diluted wastewater with a dissolved iron compound at the pH between 1 and 3 in the first reaction tank to form a partially treated wastewater having a lower concentration of hydrogen peroxide than the diluted wastewater; and

introducing the partially treated wastewater into a second reaction tank and maintaining a pH of the introduced partially treated wastewater at a pH between 6 and 8 to precipitate iron-containing compounds from the partially treated wastewater thereby forming a neutralized partially treated wastewater.

13. The system of claim 12 , further comprising a recycling system configured to recycle iron containing compounds from the second reaction tank to the first reaction tank.

14. The system of claim 12 , further comprising a water recycling system configured to recycle solids lean effluent from the second reaction tank to the inlet of the first reaction tank, the solids lean effluent forming at least a portion of the dilution water.

15. The system of claim 12 , further comprising a microfilter concentration tank having an inlet in fluid communication with an outlet of the second reaction tank.

16. The system of claim 15 , further comprising a solids/liquid separation unit having an inlet in fluid communication with an outlet of the microfilter concentration tank.

17. The system of claim 16 , further comprising a concentrate recycle system configured to recycle solids separated from the neutralized partially treated wastewater in the solids/liquid separation unit to the microfilter concentration tank.

18. The system of claim 16 , further comprising a filtrate recycle system configured to recycle filtrate formed from the neutralized partially treated wastewater in the solids/liquid separation unit to the inlet of the first reaction tank.

19. The system of claim 18 , further comprising a filtrate holding tank in fluid communication between the solids/liquid separation unit and the inlet of the first reaction tank, the filtrate holding tank including a first outlet in fluid communication with the first reaction tank and a second outlet in fluid communication with a discharge stream that discharges liquid from the system.

20. A method of reducing a concentration of hydrogen peroxide in wastewater, the method comprising:

diluting the wastewater to produce a diluted wastewater;

maintaining the diluted wastewater at a pH between 1 and 3 in a first reaction tank by addition of an acid;

contacting the diluted wastewater with a dissolved iron compound at the pH between 1 and 3 in the first reaction tank to form a partially treated wastewater having a lower concentration of hydrogen peroxide than the diluted wastewater;

introducing the partially treated wastewater into a second reaction tank and maintaining a pH of the introduced partially treated wastewater at a pH between 6 and 8 to precipitate iron-containing compounds from the partially treated wastewater thereby forming a neutralized partially treated wastewater; and

recycling a portion of the precipitated iron-containing compounds from the neutralized partially treated wastewater into the diluted wastewater, the precipitated iron compounds comprising ferric hydroxide.

21. The method of claim 20 , further comprising:

introducing the neutralized partially treated wastewater into a microfilter concentration tank; and

periodically filtering a portion of the neutralized partially treated wastewater from the microfilter concentration tank through a microfilter.

22. The method of claim 21 , further comprising diluting the wastewater with a portion of filtrate produced from the neutralized partially treated wastewater in the microfilter.

23. A method of reducing a concentration of hydrogen peroxide in wastewater, the method comprising:

diluting the wastewater to produce a diluted wastewater;

maintaining the diluted wastewater at a pH between 1 and 3 in a first reaction tank by addition of an acid;

contacting the diluted wastewater with a dissolved iron compound at the pH between 1 and 3 in the first reaction tank to form a partially treated wastewater having a lower concentration of hydrogen peroxide than the diluted wastewater;

introducing the partially treated wastewater into a second reaction tank and maintaining a pH of the introduced partially treated wastewater at a pH between 6 and 8 to precipitate iron-containing compounds from the partially treated wastewater thereby forming a neutralized partially treated wastewater; and

diluting the neutralized partially treated wastewater to form a diluted neutralized partially treated wastewater; and

removing residual hydrogen peroxide from the diluted neutralized partially treated wastewater by treating the diluted neutralized partially treated wastewater in a catalytic activated carbon column to form a treated water.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded May 26, 2023
From: JPMORGAN CHASE BANK N.A., AS COLLATERAL AGENT
To: EVOQUA WATER TECHNOLOGIES LLC; NEPTUNE BENSON, INC.
Reel/Frame 063787/0943 →
SECURITY INTEREST Recorded Apr 7, 2021
From: EVOQUA WATER TECHNOLOGIES LLC; NEPTUNE BENSON, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 055848/0689 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 30, 2018
From: SASSAMAN, JR., FRANK L; BERGER, DAVID L.; KARRS, STANLEY R.
To: EVOQUA WATER TECHNOLOGIES LLC
Reel/Frame 047633/0151 →