IP Library Granted Patent US 8,080,150
Granted Patent B2
US 8,080,150 · App. 11/014,203 · Granted Dec 20, 2011

Electrolytic cell

Assignee: RWO GmbH
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 8,080,150
App. No.
11/014,203
Granted
Dec 20, 2011
Kind
B2
Abstract

The present invention relates to a process of treating contaminated water containing microorganisms comprising feeding a contaminated water stream at a volumetric flow of about 1 to about 1000 m 3 /h through an electrolyser zone, said water stream having a conductivity from about 0.0001 to about 100 S/m, electrolysing said water stream in said electrolyser zone defined by at least one electrode pair enabling treatment of microorganisms, said at least one electrode pair comprising an anode and a cathode without separator means, said water stream being guided substantially perpendicularly through said at least one anode and cathode while imposing a voltage across said anode and cathode and supplying a direct current to said anode and cathode, withdrawing from the electrolyser zone a treated water stream. The invention also relates to an electrolytic cell in which said process can be performed, and to the use of the electrolytic cell.

Claims (29)

1. Process of treating contaminated water containing microorganisms comprising feeding a contaminated water stream at a volumetric flow of 1 to 1000 m 3 /h through an electrolyser zone, said water stream having a conductivity from 0.0001 to 100 S/m, electrolysing said water stream in said electrolyser zone defined by at least one electrode pair enabling treatment of microorganisms, said at least one electrode pair comprising an anode and a cathode without separator means, wherein the anode coatings include boron doped diamond, said anode and cathode having the shape of a mesh to provide a low pressure drop as the electrolyte flows through the cell, said water stream being guided substantially perpendicularly at a right angle of 90° or at a deviated angle up to 60° from said right angle flow through said at least one anode and cathode while imposing a voltage across said anode and cathode and supplying a direct current to said anode and cathode, wherein the electrolysis results in the production of hydroxyl radicals and hydrogen peroxide which can kill microorganisms in order to prevent biofouling, producing hydroxyl radicals, ozone and hydrogen peroxide on the anode surface by oxidation of water or decomposition of oxidized or oxygen rich compounds and withdrawing from the electrolyser zone a treated water stream, wherein the flow of the water stream is turbulent and wherein the anode has an oxygen formation overvoltage higher than 700 mV and wherein the electrode pair is arranged such that a water stream entering the cell first encounters the anode and thereafter the cathode such that products from the anode reactions can react at the anode or rapidly mix with products from the cathode reactions, to further increase the efficiency of the process.

2. Process according to claim 1 , wherein the volumetric flow is from 1 to 750 m 3 /h.

3. Process according to claim 1 , wherein the volumetric flow is from 5 to 500 m 3 /h.

4. Process according to claim 1 , wherein the volumetric flow is from 10 to 500 m 3 /h.

5. Process according to claim 1 , wherein the Reynolds number in the cell is higher than 2000.

6. Process according to claim 1 , wherein the Reynolds number in the cell is higher than 5000.

7. Process according to claim 1 , wherein the Reynolds number in the cell is lower than 100000.

8. Process according to claim 1 , wherein the average current density is from 10 to 5000 A/m 2 .

9. Process according to claim 1 , wherein the average current density is from 10 to 1000 A/m 2 .

10. Process according to claim 1 , wherein the average current density is from 25 to 750 A/m 2 .

11. Process according to claim 1 , wherein the cathode has a hydrogen formation overvoltage higher than 300 mV.

12. Process according to claim 1 , wherein scaling deposits are removed by operation with reversed load.

13. Electrolytic cell comprising an inlet through which a water stream passes, comprising at least one electrode pair defining an electrolyser zone, said electrode pair comprising an anode and cathode, arranged substantially parallelly without separator means in between, where the angle between the anode and the cathode is from 0° to 45° , allowing for a high throughput of electrolyte across said anode and cathode, arranged such that said entering water stream flows substantially perpendicularly at a right angle of 90° or at a deviated angle up to 60° from said right angle flow through the electrode pair to enable treatment of microorganisms present in a water stream having a conductivity from 0.0001 to 100 S/m passing said electrode pair, said anode and cathode have the shape of a mesh, wherein the anode coatings include boron doped diamond, said at least one electrode pair being arranged over the whole cross section area of the cell, wherein the cross sectional area of the cell is constant along the flow path, wherein the at least one electrode pair is mounted in a housing, wherein the distance between anode and cathode is smaller than the distance to any other electrode pair in the cell, said electrolytic cell further capable of imposing a voltage across said anode and cathode and of supplying a direct current to said cell, said cell further comprising an outlet, and wherein the electrode pair is arranged such that a water stream entering the cell first encounters the anode and thereafter the cathode such that products from the anode reactions can react at the anode or rapidly mix with products from the cathode reactions, and wherein the inlet and the outlet have the same dimensions and cross sectional areas as the electrolytic cell thereby minimizing a pressure drop.

14. Cell according to claim 13 , wherein the angle between the anode and the cathode is from 0° to 30° .

15. Cell according to claim 13 , wherein the angle between the anode and the cathode is from 0° to 10° .

16. Cell according to claim 13 , wherein the open cross section area of the anode and the cathode is from 20 to 75% of the total cross section area.

17. Cell according to claim 13 , wherein the open cross section area of the anode and the cathode is from 25 to 60% of the total cross section area.

18. Cell according to claim 13 , wherein the anode and cathode comprise apertures having an area from 0.01 to 2500 mm 2 .

19. Cell according to claim 13 , wherein the cell comprises monopolar electrodes.

20. Cell according to claim 13 , wherein the distance between the anode and the cathode in the electrode pair is from 0.2 to 10 mm.

21. Cell according to claim 13 , wherein the distance between the anode and the cathode in the electrode pair is from 0.2 to 5 mm.

22. Cell according to claim 13 , wherein the distance between the anode and the cathode in the electrode pair is from 0.2 to 3 mm.

23. Cell according to claim 13 , wherein the distance between two adjacent electrode pairs is from 3 to 25 times the distance between the anode and the cathode in each electrode pair.

24. Cell according to claim 13 , wherein the distance between two adjacent electrode pairs is from 5 to 15 times the distance between the anode and the cathode in each electrode pair.

25. Cell according to claim 13 , wherein the distance between two adjacent electrode pairs is from 0.6 to 250 mm.

26. Cell according to claim 13 , wherein the distance between two adjacent electrode pairs is from 1 to 150 mm

27. Cell according to claim 13 , wherein said cell comprises up to 10 number of electrode pairs.

28. Cell according to claim 13 , wherein said cell comprises up to 7 number of electrode pairs.

29. Cell according to claim 13 , wherein said cell comprises 2 to 5 number of electrode pairs.

Assignments (3)
MERGER Recorded Apr 24, 2017
From: RWO GMBH
To: VEOLIA WATER TECHNOLOGIES DEUTSCHLAND GMBH
Reel/Frame 042319/0361 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2007
From: AKZO NOBEL N.V.
To: RWO GMBH
Reel/Frame 019572/0471 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 22, 2005
From: NYMAN, LARS; HERLITZ, FREDRIK; ECHARDT, JONAS; SHIMAMUNE, TAKAYUKI
To: AKZO NOBEL N.V.
Reel/Frame 016384/0208 →
Continuity (2)
Provisional Application 60530262 · Dec 18, 2003
Related Publication 20050224369A1 · Oct 13, 2005