Claims
- 1. An ion exchange medium that is a cross-linked water-insoluble resin comprised of (i) polymerized phenyl ring-containing monomers of which at least 50 mole percent of said phenyl ring-containing monomers have a phosphonic acid ligand linked to said phenyl ring via a methylene group, (ii) said phosphonic acid ligands providing said resin with about 2 to about 5 millimoles per gram (mmol/g) of phosphorus, and (iii) a sufficient amount of sulfonic acid ligand linked to the said phenyl rings such that the ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is up to 3:1.
- 2. The ion exchange resin of claim 1 wherein said ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is 3:1 to about 1:2.
- 3. The ion exchange resin of claim 1 wherein said ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is 3:1 to about 1:1.
- 4. The ion exchange resin of claim 1 that is cross-linked with divinylbenzene, trimethylolpropane triacrylate or trimethylolpropane trimethacrylate.
- 5. The ion exchange resin of claim 4 wherein the cross-linking agent is used at a concentration of up to about 25 percent by weight.
- 6. The ion exchange resin of claim 1 and further comprising an additional monomer that co-polymerizes with styrene.
- 7. The ion exchange resin of claim 6 wherein the additional monomer is an acrylic or methacrylic C1-C8 alkyl ester, acrylonitrile or methacrylonitrile.
- 8. The ion exchange resin of claim 6 wherein the additional monomer is used at a concentration of up to about 50 mole percent.
- 9. The ion exchange resin of claim 1 wherein the ratio of sulfonic acid capacity to phosphonic acid capacity of the ion exchange resin is 1:6 to about 1:2.
- 10. An ion exchange medium that is a cross-linked water-insoluble resin comprised of (i) polymerized monomers of which at least 50 percent have a phenyl ring with a phosphonic acid ligand linked thereto via a methylene group that (ii) provides said resin with about 3 to about 4 millimoles per gram (mmol/g) of phosphorus, and (iii) a sufficient amount of the polymerized phenyl ring-containing monomers having said linked phosphonic acid ligand also having a sulfonic acid ligand linked to the same phenyl ring such that the ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is 3:1 to about 1:2.
- 11. The ion exchange resin of claim 10 wherein at least 90 mole percent of the polymerized phenyl ring-containing monomers have both a phosphonic acid ligand and a sulfonic acid ligand linked thereto.
- 12. The ion exchange resin of claim 10 that is cross-linked with divinylbenzene.
- 13. The ion exchange resin of claim 12 wherein the divinylbenzene is used at a concentration of about 2 to about 12 percent by weight.
- 14. The ion exchange resin of claim 10 wherein the ratio of sulfonic acid to phosphonic acid of the ion exchange resin is 1:3 to about 1:1.
- 15. The ion exchange resin of claim 10 wherein the ratio of sulfonic acid capacity to phosphonic acid capacity of the ion exchange resin is about 1:2.
- 16. An ion exchange and regeneration process for the separation and removal of iron(III) ions from an aqueous sulfuric acid solution containing ions of at least one additional metal having a valence of less than +3 that comprises the steps of:
(a) contacting an aqueous sulfuric acid metal ion-containing solution that contains iron(III) ions as well as ions of at least one additional metal having a valence of +2 with a solid ion exchange medium that binds said iron(III) ions in preference to the additional metal ions present to form a first solid/liquid phase admixture, said solid ion exchange medium comprising a cross-linked water-insoluble polymer that is a monophosphorus/sulfonic acid resin having a plurality of monophosphorus acid functional group ligands and also having a plurality of sulfonic acid ligands, said monophosphorus acid ligands being present at about 2 to about 5 millimoles of phosphorus per gram (mmol/g) of polymer and having a ratio of mmol/g of phosphorus to mmol/g of sulfur of about 4:1 to about 1:2; (b) maintaining said contact with said solid ion exchange medium for a time period sufficient to form solid phase-bound iron(III) ions and an aqueous liquid phase containing sulfuric acid and said additional metal ions; (c) separating the solid and liquid phases; (d) contacting said separated solid phase-bound iron(III) ions with an aqueous stripping solution, thereby forming a second solid/liquid phase admixture; (e) maintaining said second solid/liquid phase admixture at a temperature of about room temperature to about 95° C. for a time period sufficient to form an aqueous liquid phase containing iron cations and regenerated solid phase ion exchange medium; and (f) separating the iron cation-containing liquid phase from the regenerated solid phase ion exchange medium.
- 17. The process according to claim 16 wherein said ion exchange medium contains polymerized styryl monomers.
- 18. The process according to claim 17 wherein the monophosphorus acid ligands of said ion exchange medium are linked to the phenyl rings of said polymerized styryl monomers.
- 19. The process according to claim 18 wherein the monophosphorus acid ligands are directly linked to the phenyl rings of styryl monomers.
- 20. The process according to claim 19 wherein the styryl-linked monophosphorus acid ligands are phosphonic acid ligands, phosphinic acid ligands or a mixture of both phosphonic acid and phosphinic acid ligands.
- 21. The process according to claim 18 wherein the monophosphorus acid ligands are indirectly linked to the phenyl rings of styryl monomers.
- 22. The process according to claim 21 wherein the monophosphorus acid ligands are phosphonic acid ligands indirectly linked to the phenyl rings of said styryl monomers via a methylene group.
- 23. The process according to claim 21 wherein the monophosphorus acid ligands are phosphate monoester ligands indirectly linked to the phenyl rings of said styryl monomers via an oxygen atom of the phosphate.
- 24. The process according to claim 16 wherein the monophosphorus acid ligands of said ion exchange medium are linked to the polymer backbone.
- 25. The process according to claim 17 wherein the sulfonic acid ligands of said ion exchange medium are linked to the phenyl rings of said styryl monomers.
- 26. The process according to claim 16 wherein the concentration of sulfuric acid in said aqueous sulfuric acid metal ion-containing solution is about 1 to about 3 molar.
- 27. The process according to claim 16 wherein said additional metal ions of said aqueous sulfuric acid metal ion-containing solution are selected from the group consisting of manganese(II), copper(II) and cobalt(II) ions.
- 28. The process according to claim 16 wherein said stripping solution contains about 4 to about 10 molar hydrochloric acid.
- 29. The process according to claim 16 wherein said stripping solution is an aqueous reducing solution that contains a reducing agent that reduces the solid phase-bound iron(III) ions to iron(II) ions.
- 30. The process according to claim 29 wherein said reducing agent of said aqueous reducing solution is (i) a SO2-free reducing solution of copper(I) ions or (ii) a solution containing a catalytic amount of copper(I) ions and sulfurous acid at a concentration of about 0.3 to about 1.0 molar as SO2.
- 31. The process according to claim 30 wherein said copper(I) ions are present in said SO2-free reducing solution in an amount of about 0.005 to about 0.05 molar.
- 32. The process according to claim 30 wherein said copper(I) ions are present in said sulfurous acid-containing aqueous reducing solution in an amount of 0.5 to about 7 grams/liter.
- 33. The process according to claim 16 wherein said aqueous sulfuric acid metal ion-containing solution also contains iron(II) ions.
- 34. The process according to claim 16 wherein said ion exchange medium is in the form of particles.
- 35. An ion exchange and regeneration process for the separation and removal of iron(III) ions from an aqueous sulfuric acid metal ion-containing solution that comprises the steps of:
(a) contacting an aqueous sulfuric acid metal ion-containing solution that contains iron(III) ions as well as ions of at least one additional metal having a valance of +2 with a solid ion exchange ion exchange medium that binds said iron(III) ions in preference to the additional metal ions present to form a first solid/liquid phase admixture, said ion exchange medium comprising a cross-linked water-insoluble monophosphonic/sulfonic acid resin that contains: (i) polymerized phenyl ring-containing monomers, (ii) about 2 to about 5 millimoles per gram (mmol/g) of phosphorus as phosphonic acid ligands linked to said phenyl rings as methylenephosphonic acid ligands, and (iii) a sufficient amount of a sulfonic acid ligand such that the ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is up to 3:1; (b) maintaining said contact with said solid ion exchange medium for a time period sufficient to form solid phase-bound iron (III) ions and an aqueous liquid phase containing sulfuric acid and said additional metal ions; (c) separating the solid and liquid phases; (d) contacting said separated solid phase-bound iron(III) ions with an aqueous stripping solution, thereby forming a second solid/liquid phase admixture; (e) maintaining said second solid/liquid phase admixture at a temperature of about room temperature to about 95° C. for a time period sufficient to form an aqueous liquid phase containing iron cations and regenerated solid phase ion exchange medium; and (f) separating the iron cation-containing liquid phase from the regenerated solid phase ion exchange medium.
- 36. The process according to claim 35 wherein the concentration of sulfuric acid in said aqueous sulfuric acid metal ion-containing solution is about 1 to about 3 molar.
- 37. The process according to claim 35 wherein said additional metal ions of said aqueous sulfuric acid metal ion-containing solution are selected from the group consisting of manganese(II), copper(II) and cobalt(II) ions.
- 38. The process according to claim 35 wherein said stripping solution contains about 4 to about 10 molar hydrochloric acid.
- 39. The process according to claim 35 wherein said stripping solution is an aqueous reducing solution that contains a reducing agent that reduces the solid phase-bound iron(III) ions to iron(II) ions.
- 40. The process according to claim 39 wherein said reducing agent of said aqueous reducing solution is (i) a SO2-free reducing solution of copper(I) ions or (ii) a solution containing a catalytic amount of copper(I) ions and sulfurous acid at a concentration of about 0.3 to about 1.0 molar as SO2.
- 41. The process according to claim 40 wherein said copper(I) ions are present in said SO2-free reducing solution in an amount of about 0.005 to about 0.05 molar.
- 42. The process according to claim 40 wherein said copper(I) ions are present in said sulfurous acid-containing aqueous reducing solution in an amount of 0.5 to about 7 grams/liter.
- 43. The process according to claim 35 wherein said aqueous sulfuric acid metal ion-containing solution also contains iron(II) ions.
- 44. The process according to claim 35 wherein said ion exchange medium is in the form of particles.
- 45. An ion exchange and regeneration process for the separation and removal of iron(III) ions from an aqueous sulfuric acid metal ion-containing solution that comprises the steps of:
(a) contacting an aqueous sulfuric acid metal ion-containing solution that contains about 1 to about 3 molar sulfuric acid, iron(III) ions and additional metal ions that include one or more of iron(II), manganese(II), copper(II) and cobalt(II) cations with solid ion exchange medium particles that bind to said iron(III) ions in preference to said additional metal ions to form a solid/liquid phase admixture, said ion exchange medium comprising a cross-linked water-insoluble monophosphonic/sulfonic acid resin comprised of polymerized phenyl ring containing monomers having phosphonic acid ligands linked to said phenyl rings via methylene groups to provide said resin with about 3 to about 4 millimoles per gram (mmol/g) of phosphorus, and a sufficient amount of the polymerized phenyl ring-containing monomers having said methylene-linked phosphonic acid ligand also having a sulfonic acid ligand linked to the same phenyl ring such that the ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is 3:1 to about 1:2; (b) maintaining said contact with a sufficient amount of said solid ion exchange particles for a time period sufficient to form solid phase-bound iron(III) ions and an aqueous liquid phase containing sulfuric acid and said additional metal ions; (c) separating the solid and liquid phases; (d) contacting said separated solid phase-bound iron(III) ions with an aqueous reducing solution that contains a reducing agent that reduces the solid phase-bound iron(III) ions to iron(II) ions to form a second solid/liquid phase admixture; (e) maintaining said second solid/liquid phase admixture at a temperature of about 65° C. to about 95° C. for a time period sufficient to form an aqueous sulfuric acid liquid phase containing iron(II) ions and regenerated solid phase ion exchange particles; and (f) separating the iron(II)-containing liquid phase from the regenerated solid phase ion exchange particles.
- 46. The process according to claim 45 wherein said reducing agent of said aqueous reducing solution is (i) a SO2-free reducing solution of copper(I) ions or (ii) a solution containing at least a catalytic amount of copper(I) ions and sulfurous acid at a concentration of about 0.3 to about 1.0 molar as SO2.
- 47. The process according to claim 45 wherein the copper(I) ions of the aqueous reducing solution are provided by passing an aqueous solution of sulfuric acid and copper(II) ions over copper metal prior to said contacting.
- 48. The process according to claim 45 wherein copper(I) ions are present in said aqueous reducing solution in an amount of about 0.3 to about 3 grams/liter.
- 49. The process according to claim 45 wherein said maintenance step (e) is carried out at a temperature of about 65° C. to about 75° C.
- 50. The process according to claim 45 wherein said aqueous sulfuric acid metal ion-containing solution contains about 1 to about 10 grams/liter iron as iron(III) ions or a mixture of iron(II) and iron(III) ions, about 30 to about 50 grams/liter copper(II) ions and about 0.05 to about 0.2 grams/liter cobalt(II) ions.
- 51. The process according to claim 45 wherein said sulfurous acid is present in said aqueous reducing solution in an amount of about 0.3 to about 1.0 molar as SO2.
- 52. The process according to claim 45 wherein said ion exchange particles are contained in a column and each step of contacting and maintaining contact with said ion exchange particles is carried out within said column.
- 53. The process according to claim 52 wherein each separation of solid and liquid phases from a solid/liquid phase admixture is carried out by elution of the liquid phase from the column.
- 54. The process according to claim 45 wherein said copper(I) ions are present in said SO2-free reducing solution in an amount of about 0.005 to about 0.05 molar.
- 55. A process for removing polyvalent metal cations from an aqueous solution having a pH of less than about 7 that comprises
(a) forming a solid/liquid phase composition by contacting an aqueous solution containing polyvalent metal cations with an ion exchange medium to form a first solid/liquid phase admixture, said ion exchange medium being a cross-linked water-insoluble resin comprised of (i) polymerized phenyl ring-containing monomers of which at least 50 mole percent of said phenyl ring-containing monomers have a phosphonic acid ligand linked to said phenyl ring via a methylene group, (ii) said phosphonic acid ligands providing said resin with about 2 to about 5 millimoles per gram (mmol/g) of phosphorus, and (iii) a sufficient amount of sulfonic acid ligand linked to the said phenyl rings such that the ratio of mmol/g of phosphonic acid to mmol/g sulfonic acid is up to 3:1; (b) maintaining said contact for a time period sufficient for said ion exchange medium to bind said cations and form solid phase-bound metal cations; and (c) separating the solid and liquid phases.
- 56. The process of claim 55 wherein at least 50 mole percent of the polymerized phenyl ring-containing monomers have both the phosphonic acid ligand and the sulfonic acid ligand linked thereto.
- 57. The process of claim 55 wherein the ratio of sulfonic acid ligands to phosphonic acid ligands is 3:1: to about 1:2.
- 58. The process of claim 55 wherein the ratio of sulfonic acid ligands to phosphonic acid ligands is 3:1: to about 1:1.
- 59. The process of claim 55 wherein said resin contains about 3 to about 4 mmol/g of phosphorus.
- 60. The process of claim 55 wherein said polyvalent heavy metal cation removed from solution is trivalent.
- 61. The process of claim 55 wherein said contacting is carried out at a pH value of about 1 or below.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of application Ser. No.09/109,633, filed Jul. 2, 1998, whose disclosures are incorporated by reference.
GOVERNMENT LICENSE RIGHTS
[0002] The U.S. Government has rights in this invention pursuant to Contract No. W-31-109-ENG-38 awarded by the U.S. Department of Energy.
Continuations (1)
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Number |
Date |
Country |
Parent |
09221446 |
Dec 1998 |
US |
Child |
09850474 |
May 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09109633 |
Jul 1998 |
US |
Child |
09221446 |
Dec 1998 |
US |