IP Library Granted Patent US 12,601,074
Granted Patent B2
US 12,601,074 · App. 17/788,096 · Granted Apr 14, 2026

Method for generating hydrogen and oxygen from a liquid feed stream comprising water, and device therefor

Inventors: Lambertus Bouwman (Mol, BE); Metin Bulut (Mol, BE)
Assignee: VITO NV
C25B15/08B01D61/0022C25B1/04C25B9/19
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Quick Facts
Patent No.
US 12,601,074
App. No.
17/788,096
Granted
Apr 14, 2026
Kind
B2
Abstract

A method is disclosed for the generation of hydrogen and oxygen from a liquid feed stream comprising water. The method includes passing an electric current through an aqueous electrolyte solution. Water is fed to the aqueous electrolyte solution by forward osmosis, wherein the aqueous electrolyte solution is brought into contact with a first side of a forward osmosis membrane and the liquid feed stream comprising water is brought into contact with a second side of the forward osmosis membrane. Water permeates through the forward osmosis membrane from the second side to the first side by a difference in osmotic pressure between the liquid feed stream and the aqueous electrolyte solution. Further, a device is disclosed for carrying out the above method.

Claims (33)

1 . A method for the generation of hydrogen and oxygen from a liquid feed stream comprising water, the method comprising:

feeding an aqueous electrolyte solution to an electrolyte compartment of an electrochemical cell further comprising an anode and a cathode, wherein the electrolyte compartment is in fluid contact with both the anode and the cathode,

passing an electric current through the aqueous electrolyte solution in the electrolyte compartment to generate hydrogen and oxygen from water in the aqueous electrolyte solution and to obtain a concentrated electrolyte solution,

feeding the concentrated electrolyte solution from the electrolyte compartment to a first side of a forward osmosis membrane,

wherein the concentrated electrolyte solution is brought into contact with the first side of the forward osmosis membrane, and

bringing the liquid feed stream comprising water into contact with a second side of the forward osmosis membrane, wherein water permeates through the forward osmosis membrane from the second side to the first side due to a difference in osmotic pressure between the liquid feed stream and the concentrated electrolyte solution and regenerates the aqueous electrolyte solution.

2 . The method according to claim 1 , wherein the concentrated electrolyte solution has an osmolarity of at least 1700 mOsm/L.

3 . The method according to claim 1 , wherein the liquid feed stream has an osmolarity of 1250 mOsm/L or less.

4 . The method according to claim 1 , wherein the difference in osmotic pressure between the liquid feed stream and the concentrated electrolyte solution is at least 20 bar.

5 . The method according to claim 1 , wherein the aqueous electrolyte solution comprises an alkaline electrolyte.

6 . The method according to claim 5 , wherein the aqueous electrolyte solution comprises one or both of KOH and NaOH.

7 . The method according to claim 1 , wherein the liquid feed stream is a saline water stream.

8 . The method according to claim 1 , wherein the water in the aqueous electrolyte solution is consumed in the electrolyte compartment of the electrochemical cell.

9 . A device for the generation of hydrogen and oxygen from a liquid feed stream comprising water, the device comprising:

an electrochemical cell comprising an anode, a cathode, and an electrolyte compartment configured to contain an aqueous electrolyte solution, wherein the electrolyte compartment is in fluid contact with both the anode and the cathode, and wherein the electrochemical cell is configured to pass an electric current through the electrolyte compartment to generate hydrogen and oxygen from water in the aqueous electrolyte solution and to obtain a concentrated electrolyte solution; and

an osmosis unit comprising a forward osmosis membrane, a first compartment fluidly connected to the electrolyte compartment in an endless loop, and a second compartment comprising a feed inlet and a feed outlet;

wherein the first compartment is in contact with a first side of the forward osmosis membrane and configured to pass the concentrated electrolyte solution at the first side of the forward osmosis membrane,

wherein the second compartment is in contact with a second side of the forward osmosis membrane and configured to pass a liquid feed stream at the second side of the forward osmosis membrane; and

wherein the forward osmosis membrane is configured to permeate water therethrough from the second side to the first side due to a difference in osmotic pressure between the liquid feed stream and the concentrated electrolyte solution to regenerate the aqueous electrolyte solution.

10 . The device according to claim 9 , further comprising a separator configured to separate one or both of hydrogen and oxygen from the concentrated electrolyte solution.

11 . The device of claim 10 , wherein the separator comprises one or both of an extraction outlet for hydrogen and an extraction outlet for oxygen.

12 . The device according to claim 9 , further comprising a unit configured to separate one or both of hydrogen and oxygen from the concentrated electrolyte solution, wherein the unit for separating one or both of hydrogen and oxygen is fluidly connected between the electrolyte compartment and the first compartment of the osmosis unit.

13 . The device according to claim 9 , wherein the forward osmosis membrane is a semi-permeable membrane.

14 . The device of claim 13 , wherein the forward osmosis membrane is a non-porous, water selective permeable membrane.

15 . The device according to claim 9 , wherein the forward osmosis membrane is made of a material selected from the group consisting of asymmetric aromatic polyamide, cellulose acetate, and cellulose triacetate.

16 . The device according to claim 9 , wherein the first side of the forward osmosis membrane forms a wall of the first compartment of the osmosis unit and the second side of the forward osmosis membrane forms a wall of the second compartment of the osmosis unit.

17 . A method for the generation of hydrogen and oxygen from a liquid feed stream comprising water, the method comprising:

feeding an aqueous electrolyte solution to an electrolyte compartment of an electrochemical cell further comprising an anode and a cathode, wherein the electrolyte compartment is in fluid contact with both the anode and the cathode,

passing an electric current through the aqueous electrolyte solution in the electrolyte compartment to generate hydrogen and oxygen from water in the aqueous electrolyte solution and to obtain a concentrated electrolyte solution,

separating hydrogen and oxygen from the concentrated electrolyte solution; and

feeding the concentrated electrolyte solution from the electrolyte compartment to a first side of a forward osmosis membrane,

wherein the concentrated electrolyte solution is brought into contact with the first side of the forward osmosis membrane, and

bringing the liquid feed stream comprising water into contact with a second side of the forward osmosis membrane, wherein water permeates through the forward osmosis membrane from the second side to the first side due to a difference in osmotic pressure between the liquid feed stream and the concentrated electrolyte solution and, regenerates the aqueous electrolyte solution.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 22, 2022
From: BOUWMAN, LAMBERTUS; BULUT, METIN
To: VITO NV
Reel/Frame 060275/0707 →
Priority Claims (1)
EP 19219730 · Dec 26, 2019 · regional
Continuity (1)
Related Publication 20230032928A1 · Feb 2, 2023
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