Claims
- 1. A method for controlling the level of foaming in the gas separation area of an electrolytic cell having at least a first flow path and a second flow path between each electrode and the gas separation area thereby establishing each electrode and the gas separation area in fluid flow communication, the gas separation area further having at least one gas flow conduit in communication therewith to transport gaseous electrolytic product to processing apparatus, the method comprising the steps of:
- (a) circulating electrolyte fluids along the first flow path from each electrode to the gas separation area;
- (b) circulating electrolyte fluids through the gas separation area;
- (c) circulating electrolyte fluids along the second flow path from the gas separation area back to each electrode; and
- (d) selectively controlling the flow rate of the electrolyte fluids along the second flow path to thereby control the flow rate of electrolyte fluids through the gas separation area so that the level of foaming within the gas separation area is controlled at a level that prevents the blow-over of foam into the gas flow conduit and still permits separation of entrained gas from the electrolyte fluids within the gas separation area.
- 2. A method for controlling the level of foaming in the electrolyte fluids in the gas separation area of an electrolytic cell having at least a first flow path and a second flow path between each cathode and the gas separation area thereby establishing fluid flow communication between each cathode and the gas separation area, the gas separation area further having at least one gas flow conduit in communication therewith to transport gaseous electrolytic product to processing apparatus, the method comprising the steps of:
- (a) circulating electrolyte fluid along the first flow path from each cathode to the gas separation area;
- (b) circulating electrolyte fluid through the gas separation area to permit entrained gas to separate therefrom;
- (c) circulating electrolyte fluid along the second flow path from the gas separation area to each cathode; and
- (d) selectively controlling the flow rate of the electrolyte fluid along the second flow path in such a manner that the level of foaming within the gas separation area is controlled at a level to prevent the blow-over of foam into the gas flow conduit and still permit separation of entrained gas from the electrolyte fluid within the gas separation area.
- 3. The method of controlling the level of foaming in the gas separation area according to claim 2 further comprising:
- selectively varying the cross-sectional area available for fluid flow along the second flow path between the gas separation area and each cathode to thereby control the flow rate of electrolyte fluid through the gas separation area.
- 4. A method for controlling the level of foaming in the electrolyte fluids in the gas separation area of an electrolytic cell having a first flow path and a second flow path between each anode and the gas separation area thereby establishing fluid flow communication between each anode and the gas separation area, the method comprising the steps of:
- (a) circulating electrolyte fluid along the first flow path from each anode to the gas separation area;
- (b) circulating electrolyte fluid through the gas separation area to permit entrained gas to separate therefrom;
- (c) circulating electrolyte fluid along the second flow path from the gas separation area to each anode; and
- (d) selectively controlling the flow rate of the electrolyte fluid along the second flow path in such a manner that the level of foaming within the gas separation area is controlled at a level to prevent the blow-over of foam into the gas flow conduit and still permit separation of entrained gas from the electrolyte fluid within the gas separation area.
- 5. The method of controlling the level of foaming in the gas separation area according to claim 4 further comprising:
- selectively varying the cross-sectional area available for fluid flow along the second flow path between the gas separation area and each anode to thereby control the flow rate of electrolyte fluid through the gas separation area.
- 6. A method of controlling the level of foaming in the anolyte disengager in an electrolytic filter press membrane cell having at least a first flow conduit and a second flow conduit in fluid flow communication with each anode and the anolyte disengager, the anolyte disengager further having a gas flow conduit to transport gaseous electrolytic product to processing apparatus, the method comprising the steps of:
- (a) circulating anolyte fluids along a predetermined path from each anode to the anolyte disengager and back to each anode; and
- (b) selectively controlling the flow rate of anolyte fluid through the anolyte disengager to thereby control the level of foam within the anolyte fluids at a level to prevent the blow-over of foam into the gas flow conduit and permit separation of entrained gas from the anolyte fluid within the anolyte disengager.
- 7. The method of controlling the level of foaming in the anolyte disengager according to claim 6 further comprising:
- selectively controlling the flow rate of anolyte fluid as the anolyte fluid flows between the anolyte disengager and each anode along its predetermined path.
- 8. The method of controlling the level of foaming in the anolyte disengager according to claim 7 further comprising:
- selectively varying the cross-sectional area available for fluid flow within each second flow conduit between the anolyte disengager and each anode to thereby control the flow rate of anolyte fluid through the anolyte disengager to each anode.
- 9. A method for controlling the level of foaming in the catholyte disengager in an electrolytic filter press membrane cell having at least a first flow conduit and a second flow conduit in fluid flow communication with each cathode and the catholyte disengager, the disengager further having a gas flow conduit to transport the gaseous electrolytic product to processing apparatus, the method comprising the steps of:
- (a) circulating catholyte fluid along a predetermined path from each cathode to the catholyte disengager and back to each cathode; and
- (b) selectively controlling the flow rate of catholyte fluid through the catholyte disengager to thereby control the level of foam within the catholyte fluid at a level to prevent the blow-over of foam into the gas flow conduit and permit separation of entrained gas from the catholyte fluid within the catholyte disengager.
- 10. The method of controlling the level of foaming in the catholyte disengager according to claim 9 further comprising:
- selectively controlling the flow rate of catholyte fluid as the catholyte fluid flows between the catholyte disengager and each cathode along its predetermined path.
- 11. The method of controlling the level of foaming in the catholyte disengager according to claim 10 further comprising:
- selectively varying the cross-sectional area available for fluid flow within the second flow conduit between the catholyte disengager and each cathode to thereby control the flow rate of catholyte fluid through the catholyte disengager to each cathode.
- 12. A method for controlling the level of foaming in the anolyte and catholyte disengagers in an electrolytic cell having at least a first flow conduit and a second flow conduit in fluid flow communication with each electrode and the appropriate disengager, the disengagers further having gas flow conduits to transport the gaseous electrolytic product to processing apparatus, the method comprising the steps of:
- (a) circulating electrolyte fluid from each electrode through a first flow conduit to the appropriate disengager;
- (b) circulating the electrolyte fluids through each disengager to permit entrained gas to separate therefrom;
- (c) circulating the electrolyte fluids from the appropriate disengagers to the electrodes via second fluid flow conduits; and
- (d) selectively controlling the flow rate of the electrolyte fluids through the second fluid flow conduits to thereby control the flow rate of electrolyte fluids through the anolyte and catholyte disengagers so that the level of foaming within each disengager is controlled at a level to prevent foam blow-over into the gas flow conduits and permit separation of entrained gas from the electrolyte fluids contained within the disengagers.
BACKGROUND OF THE INVENTION
This application is a continuation-in-part of application Ser. No. 213,800, filed Dec. 8, 1980.
US Referenced Citations (9)
Foreign Referenced Citations (1)
Number |
Date |
Country |
900645 |
Jul 1949 |
DEX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
213800 |
Dec 1980 |
|