Claims
- 1. A porous diaphragm for an electrolytic cell for the electrolysis of alkali metal chloride brines which comprises a support fabric of thermoplastic materials impregnated with a mixture comprising glass fibers and a non-fibrous component containing silica.
- 2. The porous diaphragm of claim 1 in which said mixture is capable of hydration in contact with an aqueous solution of a compound selected from the group consisting of alkali metal chlorides, alkali metal hydroxides, and mixtures of alkali metal chlorides and alkali metal hydroxides.
- 3. The porous diaphragm of claim 2 in which said diaphragm has a permeability to said alkali metal chloride brines of from about 100 to about 300 milliliters per minute per square meter of said diaphragm at a head level difference in said cell of from about 0.1 to about 20 inches of said alkali metal chloride brines.
- 4. The porous diaphragm of claim 1 in which said non-fibrous component containing silica is selected from the group consisting of sand, quartz, silica sand, colloidal silica, chalcedony, cristobalite and tripolite.
- 5. The porous diaphragm of claim 4 having an additive containing magnesium selected from the group consisting of magnesia, magnesium acetate, magnesium aluminate, magnesium carbonate, magnesium chloride, magnesium hydroxide, magnesium oxide, magnesium peroxide, magnesium silicate, magnesite, periclase, dolomites and mixtures thereof, said additives being employed in amounts of from about 10 to to about 70 percent by weight of said active component containing silica.
- 6. The porous diaphragm of claim 4 having an additive containing aluminum selected from the group consisting of alumina, aluminum acetate, aluminum chlorate, aluminum chloride, aluminum hydroxide, aluminum oxides (.alpha., .beta. and .gamma.), aluminum silicate, corundum, bauxites and mixtures thereof, said additives being employed in amounts of from about 10 to about 70 percent by weight of said active component containing silica.
- 7. The porous diaphragm of claim, 1 in which said non-fibrous component containing silica is selected from the group consisting of magnesium silicates, sepiolites, meerschaums, augites, talcs, vermiculites and mixtures thereof.
- 8. The porous diaphragm of claim 7 in which said support fabric has an air permeability of from about 1 to about 500 cubic feet per minute per square foot of support fabric.
- 9. The porous diaphragm of claim 8 in which said support fabric is a felt fabric.
- 10. The porous diaphragm of claim 9 in which said support fabric is a polyolefin selected from the group consisting of olefins having from 2 to about 6 carbon atoms and their chloro- and fluoro-derivatives.
- 11. The porous diaphragm of claim 10 in which said support fabric is a polyolefin selected from the group consisting of polypropylene, polytetrafluoroethylene, fluorinated, ethylene-propylene, polychlorotrifluoroethylene, polyvinyl fluoride and polyvinylidene fluoride.
- 12. The porous diaphragm of claim 11 in which said polyolefin compound is selected from the group consisting of polypropylene, polytetrafluoroethylene and polyvinylidene fluoride.
- 13. The porous diaphragm of claim 12 in which said polyolefin compound is polytetrafluoroethylene.
- 14. The porous diaphragm of claim 13 in which said glass fibers are fabricated from groups consisting of a glass selected from the group consisting of silica glass, alkali metal silicate glass, quartz glass, soda-lime glass, and mixtures thereof.
- 15. The porous diaphragm of claim 14 in which said glass fibers have a thickness of from about 1 microns to about 200 microns and a length of from about 5 to about 50 millimeters.
- 16. The porous diaphragm of claim 15 in which said support fabric has an air permeability of from about 50 to about 100 cubic feet/minute/square foot of support fabric.
- 17. The porous diaphragm of claim 16 in which said non-fibrous component containing silica is selected from the group consisting of magnesium silicates, sepiolites and meerschaums.
- 18. The porous diaphragm of claim 17 in which said mixture contains a ratio by weight of said non-fibrous component containing silica to said glass fibers of from about 3:2 to about 2:3.
- 19. The porous diaphragm of claim 18 in which said mixture is present at a concentration of from about 10 to about 75 milligrams per square centimeter of support fabric.
- 20. The porous diaphragm of claim 19 in which said glass fibers are soda-lime glasses.
- 21. The porous diagram of claim 20 in which said non-fibrous component containing silica is sepiolites.
- 22. The porous diaphragm of claim 19 in which said glass fibers are quartz glass.
- 23. The porous diaphragm of claim 12 in which said polyolefin compound is polyvinylidene fluoride.
- 24. The diaphragm of claim 13 in which said glass fibers are inorganic oxide glasses selected from the group consisting of cerium oxide glasses and germanium oxide glasses.
- 25. The porous diaphragm of claim 7 in which said support fabric is a polyarylene sulfide selected from the group consisting of polyphenylene sulfide, polynaphthalene sulfide, poly (perfluorophenylene) sulfide, and poly (methylphenylene) sulfide.
- 26. The porous diaphragm of claim 25 in which said support fabric is polyphenylene sulfide.
- 27. The porous diaphragm of claim 1 or 26 in which said mixture contains a ratio by weight of said non-fibrous component containing silica to said glass fibers of from about 4:1 to about 1:4.
- 28. The porous diaphragm of claim 27 in which said mixture is present at a concentration of from about 10 to about 75 milligrams per square centimeter of support fabric.
- 29. The porous diaphragm of claim 26 in which said mixture is present in said support fabric at a concentration of from about 30 to about 50 milligrams per square centimeter of support fabric.
- 30. In an electrolytic diaphragm cell for the electrolysis of alkali metal chloride brines having an anode assembly containing a plurality of foraminous metal anodes, a cathode assembly having a plurality of foraminous metal cathodes, a diaphragm covering said cathodes, and a cell body housing said anode assembly and said cathode assembly, the improvement which comprises using the porous diaphragm of claim 28.
- 31. A porous diaphragm for an electrolytic cell for the electrolysis of alkali metal chloride brines which comprises a support fabric of thermoplastic materials having a first portion impregnated with a mixture comprising glass fibers and a non-fibrous component containing silica and a second portion free of said mixture.
- 32. The porous diaphragm of claim 31 in which said support fabric is a polyolefin selected from the group consisting of polytetrafluoroethylene, fluorinated ethylene-propylene, polychlorotrifluoroethylene, polyvinyl fluoride and polyvinylidene fluoride.
- 33. The porous diaphragm of claim 26 or 32 in which said non-fibrous component containing silica is selected from the group consisting of magnesium silicates, sepiolites and meerschaums.
- 34. The porous diaphragm of claim 33 in which said first portion and said second portion are comprised of polytetrafluoroethylene.
- 35. The porous diaphragm of claim 34 in which said second portion is a felt fabric.
- 36. The porous diaphragm of claim 35 in which second portion has an air permeability of from about 1 to about 15 cubic feet per minute per square foot of support fabric.
- 37. The porous diaphragm of claim 36 in which said mixture contains a ratio by weight of said non-fibrous component containing silica to said glass fibers of from about 4:1 to about 1:4.
- 38. The porous diaphragm of claim 37 in which said glass fibers have a thickness of from about 4 microns to about 100 microns and a length of from about 5 to about 50 millimeters.
- 39. The porous diaphragm of claim 38 in which said mixture is present in said first portion at a concentration of from about 10 to about 75 milligrams per square centimeter of support fabric.
- 40. In an electrolytic diaphragm cell for the electrolysis of alkali metal chloride brines having an anode assembly containing a plurality of foraminous metal anodes, a cathode assembly having a plurality of foraminous metal cathodes, a diaphragm covering said cathodes, and a cell body housing said anode assembly and said cathode assembly, the improvement which comprises using the porous diaphragm of claim 31.
- 41. A porous diaphragm for an electrolytic cell for the electrolysis of alkali metal chloride brines which comprises a support fabric of thermoplastic materials having a first portion impregnated with glass fibers and a second portion free of said glass fibers.
- 42. The porous diaphragm of claim 41 in which said glass fibers have a thickness of from about 4 microns to about 100 microns and have a length of from about 5 to about 50 millimeters.
- 43. The porous diaphragm of claim 42 in which said glass fibers are fabricated from a glass selected from the group consisting of silica glass, alkali metal silicate glass, soda-lime glass, quartz glass and mixtures thereof.
- 44. The porous diaphragm of claim 43 in which said glass fibers are capable of hydration in contact with an aqueous solution of a compound selected from the group consisting of alkali metal hydroxides, alkali metal chlorides and mixtures of alkali metal chlorides and alkali metal hydroxides.
- 45. In an electrolytic diaphragm cell for the electrolysis of alkali metal chloride brines having an anode assembly containing a plurality of foraminous metal anodes, a cathode assembly having a plurality of foraminous metal cathodes, a diaphragm covering said cathodes, and a cell body housing said anode assembly and said cathode assembly, the improvement which comprises using the porous diaphragm of claim 41.
Parent Case Info
This application is a continuation-in-part of co-pending application Ser. No. 836,636, filed Sept. 26, 1977, and now U.S. Pat. No. 4,184,939 application Ser. No. 838,600, filed Oct. 3, 1977 now U.S. Pat. No. 4,165,271.
US Referenced Citations (10)
Foreign Referenced Citations (5)
Number |
Date |
Country |
99199 |
Feb 1925 |
ATX |
78732 |
Dec 1894 |
DE2 |
47-49424 |
Dec 1972 |
JPX |
50-26770 |
Mar 1975 |
JPX |
51-21598 |
Feb 1976 |
JPX |
Related Publications (1)
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Number |
Date |
Country |
|
838600 |
Oct 1977 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
836636 |
Sep 1977 |
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