IP Library Granted Patent US 8,460,536
Granted Patent B2
US 8,460,536 · App. 11/334,907 · Granted Jun 11, 2013

Diaphragm for electrolytic cell

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Quick Facts
Patent No.
US 8,460,536
App. No.
11/334,907
Granted
Jun 11, 2013
Kind
B2
Abstract

Describes a liquid-permeable diaphragm assembly for use in electrolytic cells, e.g., chlor-alkali electrolytic cells. The diaphragm assembly includes a foraminous cathode, a liquid permeable base mat comprising synthetic polymeric material that is at least partially resistant to the environment within the electrolytic cell on the foraminous cathode, and a topcoat of water-insoluble particulate material on the base mat. The topcoat is deposited on the base mat from an aqueous slurry comprising (i) at least one oxide, boride, carbide, nitride or silicate of a valve metal, (ii) clay mineral, (iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium, and mixtures of such hydrous metal oxides, and (iv) alkali metal polyphosphate.

Claims (68)

1. A liquid-permeable diaphragm for use in a chlor-alkali electrolytic cell comprising:

(a) a liquid-permeable base mat, said base mat comprising synthetic polymeric material that is at least partially resistant to the environment within said electrolytic cell, and

(b) a coating of water-insoluble particulate material on said base mat, the water-insoluble particulate material having been deposited on said base mat from an aqueous slurry of water and particulate material consisting essentially of:

(i) at least one oxide, boride, carbide, nitride or silicate of a valve metal,

(ii) clay mineral,

(iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium, and mixtures of said hydrous metal oxides, and

(iv) from 0.01 to 2 weight percent of alkali metal polyphosphate.

2. The diaphragm of claim 1 wherein the synthetic polymeric material of the base mat is a halogen-containing polymer fiber chosen from fluorine-containing polymer fibers, fluorine and chlorine-containing polymer fibers, and mixtures of such halogen-containing polymer fibers.

3. The diaphragm of claim 2 wherein the fluorine-containing polymer fiber is polytetrafluoroethylene.

4. The diaphragm of claim 2 wherein the aqueous slurry of water-insoluble particulate material comprises:

(i) at least one valve metal oxide,

(ii) clay mineral chosen from hydrated aluminum silicates, hydrated magnesium silicates, hydrated aluminum magnesium silicates, and mixtures of such hydrated silicates,

(iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium and mixtures of such hydrous metal oxides, and

(iv) from 0.1 to 1 weight percent of alkali metal polyphosphate.

5. The diaphragm of claim 4 wherein the aqueous slurry of water-insoluble particulate material comprises on a solids basis:

(i) from 40 to 90 weight percent of the valve metal oxide,

(ii) from 15 to 60 weight percent of the clay mineral, and

(iii) from 0.5 to 33 weight percent of the hydrous metal oxide.

6. The diaphragm of claim 5 wherein alkali metal polyphosphate is present in the aqueous slurry in amounts of from 0.1 to 0.5 weight percent.

7. The diaphragm of claim 6 wherein the alkali metal polyphosphate is tetrealkali metal pyrophosphate.

8. A liquid-permeable diaphragm assembly for use in a chlor-alkali electrolytic cell comprising:

(a) a foraminous cathode,

(b) a liquid-permeable base mat on said foraminous cathode, said base mat comprising synthetic polymeric material that is at least partially resistant to the environment within said electrolytic cell, and

(c) a coating of water-insoluble particulate material on said base mat, the water-insoluble particulate material having been deposited on said base mat from an aqueous slurry of water and particulate material consisting essentially of:

(i) at least one oxide, boride, carbide, nitride or silicate of a valve metal,

(ii) clay mineral,

(iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium, and mixtures of said hydrous metal oxides, and

(iv) from 0.01 to 2 weight percent of alkali metal polyphosphate.

9. The diaphragm assembly of claim 8 wherein the synthetic polymeric material of the base mat is a halogen-containing polymer fiber chosen from fluorine-containing polymer fibers, fluorine and chlorine-containing polymer fibers, and mixtures of such halogen-containing polymer fibers.

10. The diaphragm assembly of claim 9 wherein the fluorine-containing polymer fiber is polytetrafluoroethylene.

11. The diaphragm assembly of claim 9 wherein the aqueous slurry of water-insoluble particulate material comprises:

(i) at least one valve metal oxide,

(ii) clay mineral chosen from hydrated aluminum silicates, magnesium silicates, hydrated aluminum magnesium silicates, and mixtures of such hydrated silicates,

(iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium and mixtures of such hydrous metal oxides, and

(iv) from 0.1 to 1 weight percent of alkali metal polyphosphate.

12. The diaphragm assembly of claim 11 wherein the aqueous slurry of water-insoluble particulate material comprises on a solids basis:

(i) from 40 to 90 weight percent of the valve metal oxide,

(ii) from 15 to 60 weight percent of the clay mineral, and

(iii) from 0.5 to 33 weight percent of the hydrous metal oxide.

13. The diaphragm assembly of claim 12 wherein alkali metal polyphosphate is present in the aqueous slurry in amounts of from 0.1 to 0.5 weight percent.

14. The diaphragm assembly of claim 13 wherein the alkali metal polyphosphate is chosen from tetrasodium pyrophosphate, tetrapotassium pyrophosphate and mixtures of such alkali metal pyrophosphates.

15. In the method of electrolyzing alkali metal halide brine in an electrolytic diaphragm cell wherein the electrolytic cell comprises an anode compartment containing an anode and alkali metal halide brine, a cathode compartment, and a liquid-permeable diaphragm assembly separating the anode compartment and the cathode compartment, the improvement comprising electrolyzing alkali metal halide brine in an electrolytic diaphragm cell having a liquid-permeable diaphragm assembly comprising:

(a) a foraminous cathode,

(b) a liquid-permeable base mat on said foraminous cathode, said base mat comprising synthetic polymeric material that is at least partially resistant to the environment within said electrolytic cell, and

(c) a coating of water-insoluble particulate material on said base mat, the water-insoluble particulate material having been deposited on said base mat from an aqueous slurry of water and particulate material consisting essentially of:

(i) at least one oxide, boride, carbide, nitride or silicate of a valve metal,

(ii) clay mineral,

(iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium, and mixtures of said hydrous metal oxides, and

(iv) from 0.1 to 1 weight percent of alkali metal polyphosphate, thereby minimizing the amount of chlorate ion produced during electrolysis of alkali metal halide brine.

16. The method of claim 15 wherein the alkali metal halide brine is sodium chloride brine.

17. The method of claim 16 wherein the liquid-permeable base mat of the diaphragm assembly comprises polytetrafluoroethylene; and the aqueous slurry of water insoluble particulate material comprises (i) at least one valve metal oxide, (ii) clay mineral chosen from hydrated aluminum silicates, hydrated magnesium silicates, hydrated aluminum magnesium silicates, and mixtures of such hydrated silicates, (iii) hydrous metal oxide chosen from the hydrous oxides of magnesium, the hydrous oxides of zirconium, and mixtures of said hydrous metal oxides, and (iv) tetraalkali metal pyrophosphate.

18. The method of claim 17 wherein the aqueous slurry of water-insoluble particulate material comprises:

(i) from 50 to 80 weight percent of valve metal oxide,

(ii) from 18.5 to 40 weight percent of clay mineral, and

(iii) from 5 to 25 weight percent of hydrous metal oxide, and

(iv) from 0.1 to 0.5 weight percent of tetraalkali metal pyrophosphate.

19. A method for forming an electrolyte-permeable synthetic diaphragm on a foraminous cathode structure for use in a chlor-alkali electrolytic cell, said method comprising:

(a) depositing a liquid-permeable base mat on said cathode structure, said base mat comprising synthetic polymeric material chosen from fluorine-containing polymer fibers, fluorine and chlorine-containing polymer fibers, and mixtures of such halogen-containing polymer fibers, said base mat having been deposited from an aqueous slurry of said synthetic polymeric material,

(b) coating said deposited base mat with a coating consisting essentially of water-insoluble particulate material of:

(i) at least one valve metal oxide,

(ii) clay mineral chosen from hydrated aluminum silicates, hydrated magnesium silicates, hydrated aluminum magnesium silicates, and mixtures of such hydrated silicates,

(iii) hydrous metal oxide chosen from hydrous oxides of magnesium, the hydrous oxides of zirconium, and mixtures of such hydrous metal oxides, and

(iv) from 0.1 to 1 weight percent of tetraalkali metal pyrophosphate, and

(c) drying the resultant formed diaphragm.

20. The diaphragm of claim 19 wherein the aqueous slurry of water-insoluble particulate material comprises on a solids basis:

(i) from 40 to 90 weight percent of the valve metal oxide,

(ii) from 15 to 60 weight percent of the clay mineral, and

(iii) from 0.5 to 33 weight percent of the hydrous metal oxide.

Assignments (12)
MERGER Recorded Aug 9, 2017
From: AXIALL OHIO, INC.
To: EAGLE US 2 LLC
Reel/Frame 043242/0798 →
RELEASE OF SECURITY INTEREST Recorded Sep 18, 2016
From: BARCLAYS BANK PLC, AS COLLATERAL AGENT
To: AXIALL CORPORATION; ROYAL MOULDINGS LIMITED; PLASTIC TRENDS, INC.; AXIALL OHIO, INC.; GEORGIA GULF CORPORATION; EXTERIOR PORTFOLIO, LLC
Reel/Frame 039857/0569 →
SUBSTITUTION OF ADMINISTRATIVE AGENT & ASSIGNMENT OF RIGHTS UNDER CREDIT AGREEMENT AND LOAN DOCUMENTS Recorded Sep 16, 2016
From: GENERAL ELECTRIC COMPANY, AS ADMINISTRATIVE AGENT
To: WELLS FARGO CAPITAL FINANCE, LLC, AS ADMINISTRATIVE AGENT
Reel/Frame 040055/0033 →
RELEASE OF SECURITY INTEREST Recorded Sep 16, 2016
From: WELLS FARGO CAPITAL FINANCE, LLC
To: EAGLE SPINCO, INC.; EAGLE HOLDCO 3 LLC; EAGLE US 2 LLC; EAGLE CONTROLLED 2 OHIO SPINCO, INC.; EAGLE NATRIUM LLC; EAGLE PIPELINE, INC.; PHH MONOMERS L.L.C.; EAGLE CONTROLLED 1 CANADIAN SPINCO, INC.
Reel/Frame 039768/0655 →
SUBSTITUTION OF ADMINISTRATIVE AGENT AS SUCCESSOR BY MERGER Recorded Sep 15, 2016
From: GENERAL ELECTRIC CAPITAL CORPORATION, AS ADMINISTRATIVE AGENT
To: GENERAL ELECTRIC COMPANY, ADMINISTRATIVE AGENT AS SUCCESSOR BY MERGER
Reel/Frame 040053/0855 →
SECURITY AGREEMENT Recorded Mar 3, 2015
From: AXIALL CORPORATION; ROYAL MOULDINGS LIMITED; PLASTIC TRENDS, INC.; GEORGIA GULF CORPORATION; EXTERIOR PORTFOLIO, LLC; AXIALL OHIO, INC.
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 035121/0600 →
RELEASE OF SECURITY INTEREST Recorded Mar 2, 2015
From: U.S. BANK NATIONAL ASSOCIATION
To: AXIALL OHIO, INC.
Reel/Frame 035115/0559 →
CHANGE OF NAME Recorded Jul 10, 2013
From: EAGLE CONTROLLED 2 OHIO SPINCO, INC.
To: AXIALL OHIO, INC.
Reel/Frame 030764/0631 →
SECURITY AGREEMENT Recorded Feb 11, 2013
From: EAGLE CONTROLLED 2 OHIO SPINCO, INC.
To: U.S. BANK NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 029787/0794 →
PATENT SECURITY AGREEMENT Recorded Jan 29, 2013
From: EAGLE SPINCO, INC.; EAGLE HOLDCO 3 LLC; EAGLE US 2 LLC; EAGLE CONTROLLED 2 OHIO SPINCO, INC.; EAGLE NATRIUM LLC; PHH MONOMERS, L.L.C.; EAGLE PIPELINE, INC.; EAGLE CONTROLLED 1 CANADIAN SPINCO, INC.
To: GENERAL ELECTRIC CAPITAL CORPORATION
Reel/Frame 029717/0932 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 28, 2013
From: PPG INDUSTRIES OHIO, INC.
To: EAGLE CONTROLLED 2 OHIO SPINCO, INC.
Reel/Frame 029702/0982 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2006
From: SCHUSSLER, HENRY W.
To: PPG INDUSTRIES OHIO , INC.
Reel/Frame 017645/0716 →