Claims
- 1. A polymeric microporous electrolytic cell separator having:
- a. porosity of at least about 60%;
- b. thickness of between 8 and 130 mils;
- c. hysteresis of from 0.30 to 0.99 wherein hysteresis is defined as the ratio of the amount of mercury trapped within the pore structure of the separator after release of pressure to 1 psi compared to the amount of mercury present when first subjected to total impregnation by mercury at 50,000 psi, and
- d. distribution of pore sizes in a range between 0.004 and 34 microns wherein at least 85% of said pores have a diameter of between 0.12 and 33 microns and at least 60% of said pores have a diameter between 0.59 and 33 microns;
- wherein said porosity, thickness, hysteresis, and pore size distribution are adapted to provide said separator with the porperty of exhibiting a high current efficiency including the property of a current efficiency of about 85% to about 98% when measured in a chlor-alkali cell at a sodium hydroxide concentration of 150 gpl, and said separator having hydraulic properties adapted for use in a commercial scale cell.
- 2. The cell separator of claim 1 wherein said porosity, thickness, hysteresis and distribution of pore diameters are related to said current efficiency by the following formula:
- CE=A+Bx+Cx.sub.1 +Dx.sub.2 +Ex.sub.3 +Fx.sub.4 +Gx.sub.5 +Jx.sub.6 +Kx.sub.7
- wherein:
- A=Constant=+116.4
- Bx=-11.07 [(Porosity) (hysteresis).div.(thickness)]
- Cx.sub.1 =+1.495 (Zone D+Zone F)
- Dx.sub.2 =-0.9290 (Zone F+Zone G)
- Ex.sub.3 =-1.153 (Zone E+Zone F)
- Fx.sub.4 =-1.484 (Zone C+Zone D)
- Gx.sub.5 =+92.37 (hysteresis)
- Jx.sub.6 =-1.756 (thickness) (hysteresis)
- Kx.sub.7 =+0.9026 (thickness)
- wherein Zones C-G represent percentages of pores having diameter ranges:
- Zone C=0.59 to 1.309 microns
- Zone D=1.31 to 2.949 microns
- Zone E=2.95 to 6.59 microns
- Zone F=6.60 to 14.759 microns
- Zone G=14.76 to 33 microns.
- 3. The cell separator of claim 2 wherein the polymeric material is fluorine-containing
- 4. The cell separator of claim 3 wherein the fluorine-containing polymeric material is polytetrafluorethylene.
- 5. The cell separator of claim 4 wherein the porosity is at least 70%.
- 6. The cell separator of claim 4 wherein the thickness is from about 20 to about 70 mils.
- 7. The cell separator of claim 4 wherein the hysteresis is from about 0.60 to 0.99.
- 8. The cell separator of claim 4 wherein said porosity is at least about 70% said thickness is from about 20 to about 70 mils, and said hysteresis is from about 0.60 to about 0.99.
- 9. The cell separator of claim 4, wherein at least about 10% of the pores are between 1.3 to 2.95 microns and about 10% of the pores are between 2.95 to 6.6 microns.
- 10. The separator according to claim 9, wherein at least about 10% of the pores are between 0.59 and 1.309 microns.
- 11. The separator according to claim 9, wherein at least about 5% of the pores are between 0.59 to 1.309 microns.
- 12. The separator according to claim 4, wherein the combined percent distribution of pores within zones D and E is at least about 20%.
- 13. The separator according to claim 4 or 9 wherein less than about 20% of the pores are between 14.76 and 33 microns.
- 14. The cell separator of claim 5, wherein said hydraulic properties, porosity, thickness, hysteresis and pore size distribution are adapted to provide said separator with the property of exhibiting a current efficiency of about 85 to 98% when measured at a sodium hydroxide concentration of 150 gpl in a chlor-alkali cell wherein the brine head height is from about 2 to 40 inches.
- 15. The cell separator of claim 4, wherein said thickness is from 8 to 100 mils.
- 16. The cell separator according to claim 4, wherein said porosity is from 60 to 90% and wherein said thickness is from 8 to 100 mils.
- 17. An electrolytic cell containing the cell separator as defined in claims 1, 2, 4, 8, 9, 10 or 14.
- 18. The electrolytic cell of claim 14, which is a chlor-alkali cell capable of producing alkali metal hydroxide at a concentration of at least 80 gpl.
- 19. A method of producing chlorine and alkali metal hydroxide which comprises electrolyzing brine in an electrolytic cell equipped with a polymeric microporous electrolytic cell separator, said separator being defined in claims 1, 2, 4, 8, 9, 10 or 14.
- 20. The method of claim 19, wherein the separator produces sodium hydroxide at a current efficiency of about 90% to about 95% when measured at a sodium hydroxide concentration of 150 gpl in a chlor-alkali cell having a brine head height of from 2 to 40 inches.
- 21. The method of making the microporous separator of claims 4, 8, 9, 10 or 14 which comprises: (a) forming a sheet comprising polytetrafluoroethylene, a pore forming additive and a lubricant; (b) sintering the sheet; and (c) removing the pore forming additive.
- 22. The method according to claim 18, wherein said lubricant is a nonionic fluorinated surface active agent.
- 23. The method according to claim 22, wherein said sheet is reduced to the desired thickness by milling said sheet between the rolls of a roll mill.
- 24. A method for selecting from a group of porous diaphragms one which will be useful as a separator in an electrolytic cell for the manufacture of chlorine and caustic soda which comprises measuring porosity, thickness, hysteresis, and pore size distribution of such diaphragms and selecting such diaphragms as are within the characteristic ranges of:
- (a) porosity of at least about 60%;
- (b) thickness of between 8 and 130 mils;
- (c) hysteresis of from about 0.30 to about 0.99 wherein hysteresis is defined as the ratio of the amount of mercury trapped within the pore structure of the diaphragm after release of pressure to 1 psi compared to the amount of mercury present when first subjected to total impregnation by mercury at 50,000 psi, and
- (d) distribution of pore sizes in a range between 0.004 and 34 microns wherein at least 85% of said pores have a diameter of between 0.12 and 33 microns, and at least 60% of said pores have a diameter between 0.59 and 33 microns;
- wherein the relationship of properties a-d to the current efficiency of the diaphragm is expressed by the formula:
- A+Bx+Cx.sub.1 +DX.sub.2 +Ex.sub.3 +Fx.sub.4 +Gx.sub.5 +Jx.sub.6 +Kx.sub.7 =CE of at least 85%
- wherein:
- A=Costant=+116.4
- Bx=-11.07 [(Porosity) (hysteresis).div.(thickness)]
- Cx.sub.1 =+1.495 (Zone D+Zone F)
- Dx.sub.2 =-9.9290 (Zone F+Zone G)
- Ex.sub.3 =-1.153 (Zone E+Zone F)
- Fx.sub.4 =-1.484 (Zone C+Zone D)
- Gx.sub.5 =+92.37 (hysteresis)
- Jx.sub.6 =-1.756 (thickness) (hysteresis)
- Kx.sub.7 =+0.9026 (thickness)
- wherein Zones C-G represent percentages of pores having diameter ranges:
- Zone C=0.59 to 1.309 microns
- Zone D=1.31 to 2.949 microns
- Zone E=2.95 to 6.59 microns
- Zone F=6.60 to 14.759 microns
- Zone G=14.76 to 33 microns
- 25. The method of making a microporous separator having:
- a. porosity of at least about 60%;
- b. thickness of between 8 and 130 mils;
- c. hysteresis of from 0.30 to about 0.99 wherein hysteresis is defined as the ratio of the amount of mercury trapped within the pore structure of the separator after release of pressure to 1 psi compared to the amount of mercury present when first subjected to total impregnation by mercury at 50,000 psi, and
- d. distribution of sizes in a range between 0.004 and 34 microns wherein at least 85% of said pores have a diameter of between 0.12 and 33 microns and at least 60% of said pores have a diameter between 0.59 and 33 microns;
- which comprises: (a) forming a sheet comprising polytetrafluoroethylene, a pore forming additive and a nonionic fluorinated surface active agent; (b) milling the sheet; (c) sintering the sheet, and (d) removing the pore forming additive, wherein the size of the pore forming additive and the milling are adapted to provide a separator wherein said pore distribution, porosity, hysteresis are related to current efficiency by the following relationships:
- CE=A+Bx+Cx.sub.1 +Dx.sub.2 +Ex.sub.3 +Fx.sub.4 +Gx.sub.5 +Jx.sub.6 +Kx.sub.7
- wherein:
- A=Constant=+116.4
- Bx=-11.07 [(Porosity) (hysteresis).div.(thickness)]
- Cx.sub.1 =+1.495 (Zone D+Zone F)
- CE=current efficiency between about 85 to 98%
- Dx.sub.2 =-0.9290 (Zone F+Zone 6)
- Ex.sub.3 =-1.153 (Zone E+Zone F)
- Fx.sub.4 =-1.484 (Zone C+Zone D)
- Gx.sub.5 =+92.37 (hysteresis)
- Jx.sub.6 =-1.756 (thickness) (hysteresis)
- Kx.sub.7 =+0.9026 (thickness)
- wherein Zones C-G represent percentages of pores having diameter ranges:
- Zone C=0.59 to 1.309 microns
- Zone D=1.31 to 2.949 microns
- Zone E=2.95 to 6.59 microns
- Zone F=6.60 to 14.759 microns
- Zone G=14.76 to 33 microns
- 26. The cell separator made by the process of claim 25.
- 27. A method for preparing a microporous separator for producing sodium hydroxide comprising the step of correlating the thickness, porosity, hysteresis and pore size distribution during the manufacture of a polytetrafluoroethylene film having an internal network of tortuous pores, to provide a separator exhibiting a current efficiency in the range of from 85% to 98% when measured in a chlor-alkali cell at a sodium hydroxide concentration of 150 gpl and wherein said porosity is at least about 60%, the thickness is between 8 and 30 mils, the hysteresis is from 0.30 to 0.99, and the distribution of pore diameters is between 0.004 to 34 microns wherein at least 85% of the pores have a diameter between 0.12 and 33 microns and at least 60% of the pores have a diameter in the range of 0.59 to 33 microns.
- 28. The method according to claim 27, wherein said porosity, hysteresis, thickness and pore size distribution are correlated to said current efficiency in accordance with the following relationship:
- CE=A+Bx+Cx.sub.1 +Dx.sub.2 +Ex.sub.3 +Fx.sub.4 +Gx.sub.5 +Jx.sub.6 +Kx.sub.7
- wherein:
- A=Constant=+116.4
- Bx=-11.07 [(Porosity) (hysteresis).div.(thickness)]
- Cx.sub.1 =+1.495 (Zone D+Zone F)
- Dx.sub.2 =-0.9290 (Zone F+Zone G)
- Ex.sub.3 =-1.153 (Zone E+Zone F)
- Fx.sub.4 =-1.484 (Zone C+Zone D)
- Gx.sub.5 =+92.37 (hysteresis)
- Jx.sub.6 =-1.756 (thickness) (hysteresis)
- Kx.sub.7 =+0.9026 (thickness)
- wherein Zones C-G represent percentages of pores having diameter ranges:
- Zone C=0.59 to 1.309 microns
- Zone D=1.31 to 2.949 microns
- Zone E=2.95 to 6.59 microns
- Zone F=6.60 to 14.759 microns
- Zone G=14.76 to 33 microns
- 29. The method according to claim 28, wherein said polytetrafluoroethylene film is prepared by (a) forming a sheet comprising polytetrafluoroethylene, a nonionic fluorinated surface active agent, and a pore forming additive and (b) milling the sheet; (c) sintering the sheet and (d) removing the pore forming additive; and wherein said correlation is accomplished by adapting the size of the pore forming additive and the milling step to provide said separator with a porosity of at least 70%, a thickness of between 8 to 130 mils, a hysteresis of from 0.30 to 0.99 and a pore diamter distribution in the range of between 0.004 to 34 microns.
- 30. The product made by the method of claims 27, 28 or 29.
- 31. A polytetrafluoroethylene electrolytic cell separator for producing alkali metal hydroxide at about 95% current efficiency when measured in a clor-alkali cell at a sodium hydroxide concentration of 150 gpl, said separator having an internal network of pores with diameters ranging in size between about 0.004 and 34 microns, a porosity of about 80%, a hysteresis of about from 0.95 to 0.99, and a thickness of about from 20-40 mils, and wherein the percent distribution of pore diameters within zones C-G is defined by the areas bounded by the plot lines of FIG. I, wherein zones C-G are defined by the following pore diameter ranges:
- Zone C=0.59 to 1.309 microns
- Zone D=1.31 to 2.949 microns
- Zone E=2.95 to 6.59 microns
- Zone F=6.60 to 14.759 microns
- Zone G=17.46 to 33 microns
- and wherein about from 60-100% of the pores of said separator have diameters distributed within zones C through G.
- 32. A polytetrafluoroethylene electrolytic cell separator for producing alkali metal hyroxide at about a 95% current efficiency when measured in a chlor-alkali cell at a sodium hydroxide concentration of 150 gpl, said separator having an internal network of pores with diameters ranging in size from 0.004 to 34 microns, a hysteresis of from 0.95 to 0.99, a porosity between 75 and 85%, and a thickness of 20, 30 or 40 mils, wherein the percent distribution of pore diameters within zones C-G for a thickness of 20 mils is defined by areas bounded by the plot lines of FIG. II, the percent distribution of pore diameters within zones C-G for a thickness of 30 mils is defined by the areas bounded by the plot lines of FIG. III, and the percent distribution of pores within zones C-G for a thickness of 40 mils is defined by the areas bounded by the plot lines of FIG. IV, wherein said zones C-G are defined by the following pore diameter ranges:
- Zone C=0.59 to 1.309 microns
- Zone D=1.31 to 2.949 microns
- Zone E=2.95 to 6.59 microns
- Zone F=6.60 to 14.759 microns
- Zone G=17.46 to 33 microns
- and wherein about from 60 to 100% of the pores of said separator have diameters distributed within zones C-G.
CROSS-REFERENCES TO RELATED APPLICATIONS
This application is a continuation-in-part of application Ser. No. 957,515 filed Nov. 3, 1978 now abandoned.
US Referenced Citations (24)
Foreign Referenced Citations (3)
Number |
Date |
Country |
1491033 |
Jun 1967 |
FRX |
1081046 |
Aug 1967 |
GBX |
1364683 |
Aug 1974 |
GBX |
Non-Patent Literature Citations (2)
Entry |
"PTFE Sample" Dielectric Inc. |
"Estimation of Thickness of Filtering Diaphragm of Electrolysis Vessels for Prep. of Chlorine & Alkali", V. L. Kubasov, Electro-khimiya, vol. 12, No. 1, pp. 76-79, 1/76. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
957515 |
Nov 1978 |
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