Claims
- 1. A process for quantitatively recovering uranium from a carbonate solution including uranium ions, said carbonate solution having a pH in the range of from about 4.2 to about 9.8, the process comprising:
- causing the carbonate solution including uranium ions to come in contact with a carboxylic acid cation exchange resin so that uranium cations are removed from solution and adsorbed by said resin; and
- removing the uranium cations from the cation exchange resin.
- 2. The uranium recovery process of claim 1 wherein uranium cations are removed from the carboxylic acid cation exchange resin by elution with hydrochloric acid.
- 3. The process of claim 1 wherein said carboxylic acid cation exchange resin is methacrylic acid divinylbenzene copolymer or hydrolyzed methyl acrylate divinylbenzene copolymer or hydrolyzed ethyl acrylate divinylbenzene copolymer.
- 4. The process of claim 1 wherein said carboxylic acid cation exchange resin is selected from the group consisting essentially of methacrylic acid divinylbenzene copolymer, hydrolyzed methyl acrylate divinylbenzene copolymer, and hydrolyzed ethyl acrylate divinylbenzene copolymer.
- 5. A process for recovering uranium from a carbonate solution including uranium ions, the process comprising:
- causing the carbonate solution including uranium ions to come in contact with a carboxylic acid cation exchange resin so that uranium cations are removed from solution and adsorbed into the cation exchange resin;
- eluting the uranium cations from the cation exchange resin to produce a uranium ion solution; and
- removing said uranium cations from the uranium solution.
- 6. The uranium recovery process of claim 5 wherein the step of removing uranium ions from solution is accomplished by adding ammonium ions to the uranium ion solution so that a uranium precipitate is formed.
- 7. A process for recovering uranium from a carbonate solution including uranium ions, said carbonate solution having a pH in the range of from about 4.2 to about 9.8, which process comprises:
- contacting the carbonate solution including uranium ions with a weakly acidic carboxylic acid cation exchange resin to remove uranium cations from solution and to adsorb the uranium cations into said carboxylic acid cation exchange resin, and to produce a treated carbonate solution;
- eluting the uranium cations from said carboxylic acid cation exchange resin with hydrochloric acid to produce a uranium cation solution;
- selectively precipitating said uranium cations from solution with ammonium ions;
- decarbonating said treated carbonate solution; and
- filtering said decarbonated solution to remove remaining impurities.
- 8. A process for recovering uranium from a basic carbonate solution including uranium ions, the process comprising:
- causing the carbonate solution including uranium ions to come in contact with a weakly acidic carboxylic acid cation exchange resin so that uranium cations are removed from solution and adsorbed into the cation exchange resin, and a treated carbonate solution is produced;
- eluting the uranium cations from the cation exchange resin to produce a uranium ion solution;
- removing uranium ions from solution by selective precipitation; and
- removing carbon dioxide from the treated carbonate solution to produce a decarbonated solution.
- 9. The uranium recovery process of claim 8 further including the step of filtering the decarbonated solution through a membrane process.
- 10. The uranium recovery process of claim 9 wherein the membrane process is reverse osmosis.
- 11. The uranium recovery process of claim 9 wherein the membrane process is electrodialysis.
- 12. A process for recovering uranium from a carbonate solution including uranium ions, said carbonate solution having a pH in the range of from about 4.2 to about 9.8, which process comprises:
- contacting the carbonate solution including uranium ions with a weakly acidic carboxylic acid cation exchange resin selected from the group consisting of methacrylic acid divinylbenzene copolymer, hydrolyzed methyl acrylate divinylbenzene copolymer, and hydrolyzed ethyl acrylate divinylbenzene copolymer to remove uranium cations from solution and to adsorb the uranium cations into said carboxylic acid cation exchange resin, and to produce a treated carbonate solution;
- eluting the uranium cations from said carboxylic acid cation exchange resin with hydrochloric acid to produce a uranium cation solution;
- selectively precipitating said uranium cations from solution with ammonium ions;
- decarbonating said treated carbonate solution; and
- filtering said decarbonated solution to remove remaining impurities.
Parent Case Info
This application is a continuation of application Ser. No. 190,992, filed Sept. 26, 1980, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
190992 |
Sep 1980 |
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