IP Library Granted Patent US 10,443,137
Granted Patent B2
US 10,443,137 · App. 14/785,313 · Granted Oct 15, 2019

Hydrogen gas generator system

Inventor: Nigel Williamson (Dronfield, GB)
C25B1/08C25B1/06C25B9/06C25B9/063C25B9/20C25B9/203C25B11/02C25B11/0447C25B11/0452C25B15/02C25B15/08Y02E60/366
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 10,443,137
App. No.
14/785,313
Granted
Oct 15, 2019
Kind
B2
Abstract

A hydrogen gas generator system comprises a reactor stack adapted to perform electrolysis on water in an electrolyte solution, the reactor stack comprising a plurality of spaced apart electrode plates and electrolyte solution disposed between the plates, each plate having an upper outlet aperture and a lower inlet aperture to allow movement of electrolyte solution across the plates. A separator is configured to receive a mixture of gas and electrolyte solution from a top of the reactor stack and separate the gas from the electrolyte solution. A gas outlet configured to remove gas from the separator, and an electrolyte solution inlet configured to return electrolyte solution from the separator to a bottom of the reactor stack. The system comprises a pump configured to pump electrolyte solution in a circuit from the electrolyte solution outlet of the separator/reservoir, through the reactor stack at velocity, and back to the separator/reservoir, and in which in the upper and lower apertures are sufficiently large to allow pumped flow through the reactor stack.

Claims (20)

1. A hydrogen gas generator system comprising:

a reactor stack adapted to perform electrolysis on an electrolyte solution, the reactor stack comprising a plurality of spaced apart electrode plates adapted to receive electrolyte solution disposed between the plates, each plate having an upper outlet aperture and a lower inlet aperture to allow movement of electrolyte solution across the plates;

a separator/reservoir configured to receive a mixture of gas and electrolyte solution from a top of the reactor stack and separate the gas from the electrolyte solution;

a gas outlet configured to remove gas from the separator/reservoir; and

an electrolyte solution inlet configured to return electrolyte solution from the separator/reservoir to a bottom of the reactor stack,

characterised in that the system comprises a pump configured to pump electrolyte solution in a circuit from the electrolyte solution inlet, through the reactor stack, and back to the separator/reservoir, and in which in the upper and lower apertures are sufficiently large to allow pumped flow of electrolyte solution through the reactor stack, and wherein the upper apertures are larger than the lower apertures and in which adjacent electrode plates are separated by an annular sealing spacer plate having a substantially lens-shaped opening defining a substantially lens-shaped flow field and which defines a distance of 0.25 to 1.5 mm between the adjacent electrode plates and a path for movement of electrolyte solution between adjacent electrode plates from the lower aperture to the upper aperture.

2. A hydrogen gas generator system as claimed in claim 1 in which the pump is configured to pump electrolyte across the electrode plates at a flow-front velocity of at least 15 cm/minute.

3. A hydrogen gas generator system as claimed in claim 1 in which the pump is configured to pump electrolyte across the electrode plates at a flow-front velocity of at least 20 cm/minute.

4. A hydrogen gas generator system as claimed in claim 1 in which the area of the upper aperture is at least 50% greater than the area of the lower aperture.

5. A hydrogen gas generator system as claimed in claim 1 in which the upper apertures are aligned along a horizontal axis to facilitate transfer of fluid out of the top of the reactor stack.

6. A hydrogen gas generator system as claimed in claim 1 in which the reactor stack comprises an outlet manifold configured to receive pumped fluid from the upper apertures, in which the outlet manifold is a dedicated outlet.

7. A hydrogen gas generator system as claimed in claim 1 in which the electrode plates are contact electrode plates.

8. A hydrogen gas generator system as claimed in claim 1 in which one pair or more of the electrode plates are stainless steel cell plates, which may be coated with nickel or oxide of nickel or other metal oxide.

9. A hydrogen gas generator system as claimed in claim 1 in which the system comprises a cooling loop configured to remove heat from the electrolyte solution, the cooling loop comprising a conduit having an inlet and outlet in fluid communication with the electrolyte reservoir, an intermediate portion distanced from reservoir, and a pump adapted to pump electrolyte through the cooling loop.

10. A hydrogen gas generator system as claimed in claim 1 , in which the system comprises a reservoir of liquid and gas drying means configured to pass the gas removed from the separator through the reservoir of liquid in which the gas drying means optionally comprises tubes adapted to bubble the gas through the reservoir of liquid.

11. A hydrogen gas generator system as claimed in claim 1 in which the electrode plates are mono-polar plates or bi-polar plates.

12. A hydrogen gas generator system as claimed in claim 1 wherein the annular sealing spacer plate defines a distance of 0.5 mm between the adjacent electrode plates.

13. A method of generating hydrogen gas which method employs a hydrogen gas generator system of claim 1 , the method comprising the steps of pumping an aqueous electrolyte solution through the reactor stack, across the charged plates and to the separator, separating generated gasses from the electrolyte solution in the separator, and pumping the electrolyte back to the reactor stack though the electrolyte inlet.

14. A method as claimed in claim 13 in which the electrolyte solution comprises an aqueous solution of potassium hydroxide.

15. A method as claimed in claim 13 in which the electrolyte solution has a concentration of electrolyte of 0.01 to 5.0% (w/v).

Priority Claims (1)
GB 1306864.8 · Apr 16, 2013 · national
Continuity (1)
Related Publication 20160090657A1 · Mar 31, 2016