Claims
- 1. An electrolytic cell having a pair of oppositely charged electrodes extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said electrodes bearing against one side of the membrane is flexible and comprises resilient means; a restraint means supporting the other electrode is provided on the other side of the membrane, and pressure means are provided to compress said resilient means to press together at a plurality of spaced points the electrodes and the membrane substantially over the entire surface of the membrane.
- 2. An electrolyte cell having a pair of oppositely charged electrodes extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said electrodes bearing against one side of the membrane is flexible and comprises resilient means; a restraint means supporting the other electrode is provided on the other side of the membrane, and pressure means are provided to compress said resilient means to press together at a plurality of spaced points the electrodes and the membrane substantially over the entire surface of the membrane, the other electrode being less flexible than said flexible electrode.
- 3. The electrolytic cell of claim 1 wherein said resilient means comprises a plurality of laterally spaced compressible springs disposed along said flexible electrode.
- 4. The electrolytic cell of claim 2 wherein said resilient means comprises a plurality of laterally spaced compressible springs disposed along said flexible electrode.
- 5. The electrolytic cell of claim 2 wherein said other electrode is supported by said restraint means which is less resilient than said resilient means.
- 6. The electrolytic cell of claim 2 wherein said other electrode is supported by said restraint means which is substantially rigid.
- 7. An electrolytic cell having a pair of oppositely charged electrodes extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said electrodes bearing against one side of the membrane is flexible and comprises resilient means; a restraint means supporting the other electrode is provided on the other side of the membrane, and pressure means are provided to compress said resilient means to press together at a plurality of spaced points the electrodes and the membrane substantially over the entire surface of the membrane, the other electrode being substantially rigid.
- 8. The electrolytic cell of claim 7 wherein said other electrode is supported by said restraint means which is less resilient than said resilient means.
- 9. The electrolytic cell of claim 7 wherein said other electrode is supported by said restraint means which is substantially rigig.
- 10. An electrolytic cell having an anode and cathode extending along and separated by an ion exchange membrane capable of transporting cations and mimimizing passage of anions therethrough, wherein one of said anode or cathode is a flexible foraminous sheet, at least one anode pressure element comprising resilient means and at least one cathode pressure element comprising resilient means are provided to press said cathode, anode and membrane together at a plurality of spaced points substantially over the entire surface of the membrane, said cathode and anode resilient means being offset with respect to each other.
- 11. A method of generating halogen comprising electrolyzing an aqueous alkali metal halide solution in an electrolytic cell having a pair of oppositely charged electrodes extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said electrodes bearing against one side of the membrane is flexible and comprises resilient means; a restraint means supporting the other electrode is provided on the other side of the membrane, and pressure means are provided to compress said resilient means to press together at a plurality of spaced points the electrodes and the membrane substantially over the entire surface of the membrane.
- 12. A method of generating halogen comprising electrolyzing an aqueous alkali metal halide solution in an electrolytic cell having a pair of oppositely charged electrodes extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said electrodes bearing against one side of the membrane is flexible and comprises resilient means; a restraint means supporting the other electrode is provided on the other side of the membrane, and pressure means are provided to compress said resilient means to press together at a plurality of spaced points the electrodes and the membrane substantially over the entire surface of the membrane, the other electrode being less flexible than said flexible electrode.
- 13. The method of claim 11 wherein said resilient means comprises a plurality of laterally spaced compressible springs disposed along said flexible electrode.
- 14. The method of claim 12 wherein said resilient means comprises a plurality of laterally spaced compressible springs disposed along said flexible electrode.
- 15. The method of claim 12 wherein said other electrode is supported by said restraint means which is less resilient than said resilient means.
- 16. The method of claim 12 wherein said other electrode is supported by said restraint means which is substantially rigid.
- 17. A method of generating halogen comprising electrolyzing an aqueous alkali metal halide solution in an electrolytic cell having a pair of oppositely charged electrodes extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said electrodes bearing against one side of the membrane is flexible and comprises resilient means; a restraint means supporting the other electrode is provided on the othe side of the membrane, and pressure means are provided to compress said resilient means to press together at a plurality of spaced points the electrodes and the membrane substantially over the entire surface of the membrane, the other electrode being substantially rigid.
- 18. The electrolytic cell of claim 17 wherein said other electrode is supported by said restraint means which is less resilient than said resilient means.
- 19. The electrolytic cell of claim 17 wherein said other electrode is supported by said restraint means which is substantially rigid.
- 20. A method of generating halogen comprising electrolyzing an aqueous alkali metal halide solution in an electrolytic cell having an anode and cathode extending along and separated by an ion exchange membrane capable of transporting cations and minimizing passage of anions therethrough, wherein one of said anode or cathode is a flexible foraminous sheet, at least one anode pressure element comprising resilient means and at least one cathode pressure element comprising resilient means are provided to press said cathode, anode and membrane together at a plurality of spaced points substantially over the entire surface of the membrane, said cathode and anode resilient means being offset with respect to each other.
Priority Claims (1)
Number |
Date |
Country |
Kind |
26171 A/78 |
Jul 1978 |
ITX |
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PRIOR APPLICATION
This application is a continuation of U.S. patent application Ser. No. 382,670 filed May 27, 1982, now abandoned which is a division of our copending, commonly assigned U.S. patent application Ser. No. 151,695 filed May 20, 1980, now U.S. Pat. No. 4,341,604, a continuation-in-part of our copending, commonly assigned U.S. patent application Ser. No. 57,255 filed July 12, 1979, now U.S. Pat. No. 4,343,689.
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52-75666 |
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JPX |
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Divisions (1)
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Number |
Date |
Country |
Parent |
151695 |
May 1980 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
382670 |
May 1982 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
57255 |
Jul 1979 |
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