IP Library Granted Patent US 8,641,992
Granted Patent B2
US 8,641,992 · App. 13/002,591 · Granted Feb 4, 2014

Process for recovering lithium from a brine

Inventors: Daniel Ernesto Galli (San Salvador de Jujuy, AR); Demetrio Humana (San Salvador de Jujuy, AR); Maria de las Mercedes Otaiza (San Salvador de Jujuy, AR); Claudia del Rosario Cachagua (San Salvador de Jujuy, AR); Rene Enrique Santillan (San Salvador de Jujuy, AR)
Assignee: ADY Resources Limited
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Quick Facts
Patent No.
US 8,641,992
App. No.
13/002,591
Granted
Feb 4, 2014
Kind
B2
Abstract

There is disclosed herein a process for recovering lithium from an impure natural or industrial brine, the process comprising adjusting the pH of a feed brine containing lithium to a value of no less than 11.3 and separating the waste solids and a solution containing lithium values. The solution may be further concentrated and treated to obtain lithium carbonate and a lithium chloride solution suitable for obtaining electrolytic grade lithium chloride.

Claims (57)

1. A process for recovering lithium from an impure natural or industrial brine, the process comprising (a1) adjusting the pH of a feed brine containing lithium with a maximum lithium content of 15,000 mg/L to a value of no less than 11.3 and separating the waste solids and a slurry containing lithium values.

2. The process of claim 1 further comprising (a2) concentrating the brine to increase the concentration of Li + ions.

3. The process of claim 2 further comprising obtaining crude lithium carbonate from the brine by precipitating the solid by adding a soluble carbonate and separating the solid.

4. The process of claim 3 further comprising (c1) redissolving and reprecipitating the crude lithium carbonate to produce high purity lithium carbonate and separating the solid.

5. The process of claim 4 wherein the step c1) of purifying lithium carbonate comprises the sub-steps of:

c1.1) dissolving the crude lithium carbonate to obtain a limpid solution with a concentration of Li + ranging from about 8,800 to 9,200 mg/l and filtering the insoluble impurities;

c1.2) precipitating purified lithium carbonate by adding an aqueous solution of sodium carbonate and heating the mixture to a temperature above about 92° C.;

c1.3) separating the precipitated Li 2 CO 3 ;

c1.4) washing the purified lithium carbonate by resuspending the purified lithium carbonate in hot fresh water;

c1.5) separating the washed Li 2 CO 3 ; and

c1.6) drying the purified lithium carbonate.

6. The process of claim 4 , wherein the step c′1) of purifying crude lithium carbonate comprises the sub-steps of:

c′1.1) suspending the crude lithium carbonate in water;

c′1.2) injecting CO 2 at a sufficient pressure to attain a continuous bubbling, at room temperature;

c′1.3) filtering the insolubles;

c′ 1.4) precipitating purified lithium carbonate while maintaining the resulting solution under agitation at atmospheric pressure and at a temperature above about 90° C.;

c′1.5) separating the purified precipitated Li 2 CO 3 ;

c′ 1.6) washing the purified Li 2 CO 3 by resuspending the purified Li 2 CO 3 in hot fresh water;

c′ 1.7) separating the washed Li 2 CO 3 ; and

c′1.8) drying the purified lithium carbonate.

7. The process of claim 3 further comprising (c2) preparing a solution of lithium chloride from the lithium carbonate.

8. The process of claim 7 further comprising:

c2.1) mixing purified Li 2 CO 3 with a sufficient amount of water; and

c2.2) adding slowly and under agitation a solution of HCl in a sufficient quantity to attain a concentration of Li + of no less than 50 g/l in the solution.

9. The process of claim 3 , wherein the step b) for obtaining crude lithium carbonate from the brine concentrated in the step a2) comprises the sub-steps of:

b1) precipitating Ca 2+ by adding a sodium carbonate or other carbonate solution at low temperature;

b2) adjusting the pH of the brine to a value ranging from about 10.5 to 10.8;

b3) separating the precipitated CaCO 3 ;

b4) diluting the brine with fresh water and/or with mother liquor recycled from a process of precipitation of lithium carbonate to a concentration of Li + ranging from about 8,000 to 9,000 mg/l;

b5) precipitating lithium carbonate by adding sodium carbonate or other carbonate solution and heating the mixture to a temperature above about 92° C.;

b6) separating the precipitated Li 2 CO 3 solid;

b7) washing the lithium carbonate solid by resuspending the lithium carbonate in hot fresh water; and

b8) separating the Li 2 CO 3 washed solid.

10. The process of claim 2 wherein in step a2) the concentration of Li + ion is increased to about 10,000 to 15,000 mg/l.

11. The process of claim 2 , wherein the step a2) of concentrating by evaporation the brine processed in a1) comprises the sub-steps of:

a2.1) concentrating the brine from step a) by evaporation to increase the concentration of Li + ions to between about 4,200 to 4,800 mg/l, and additionally separating the precipitated solids;

a2.2) adjusting the pH of the concentrated brine in a2.1) to a value ranging from about 8.2 to 8.4; and

a2.3) concentrating the brine from step a.2.2) to increase the concentration of Li + ions from between about 4,200 to 4,800 mg/l to between about 10,000 to 15,000 mg/l, and additionally separating the precipitated solids.

12. The process of claim 1 , wherein the pH is adjusted to a value of no less than 11.3 by addition of one or more of calcium hydroxide, lime or slaked lime.

13. The process of claim 12 wherein calcium hydroxide is in the form of an aqueous mixture, and wherein the aqueous mixture is a combination of slaked lime and the brine.

14. The process of claim 1 , wherein the step a1) comprises the sub-steps of:

a1.1) adding lime, slaked lime and/or calcium hydroxide to the solution of feed brine taking the pH to a value of no less than 11.3 precipitating a waste solid and forming a slurry containing lithium values in its liquid phase;

a1.2) if necessary, adjusting the concentration of Ca 2+ in the slurry;

a1.3) additionally, if necessary, adjusting the pH of the slurry to a value of no less than 11.3;

a1.4) optionally, adding a flocculant solution to the slurry to aid in the separation of waste solids from the processed brine solution; and

a1.5) separating the waste solids precipitated from the slurry to form a processed brine solution and a waste slurry.

15. The process of claim 14 wherein when separating the waste solid in sub-step a1.1) the concentration in the slurry of:

magnesium is reduced to less than 5 mg/l by precipitating as Mg(OH) 2 ;

sulphate (SO 4 2− ) is reduced by precipitating as CaSO 4 .2H 2 O;

boron is reduced by precipitating as CaB 2 O 4 .6H 2 O and 2CaO.3B 2 O 3 .13H 2 O; and

bicarbonate (HCO 3 − ) and carbonate (CO 3 2− ) is reduced by precipitating as CaCO 3 .

16. The process according to claim 14 , wherein the precipitation of remaining boron, sulphate and carbonate occurs during a concentration by evaporation of the brine following sub-step a1.1).

17. The process according to claim 1 wherein the concentration of Mg 2+ present in the brine decreases to a value lower than 5 mg/l.

18. The process of claim 1 , wherein the feed brine is subjected to at least one step a′1) of pre-concentration before step a1).

19. The process of claim 18 wherein the step of pre-concentration is performed until the concentration of Li + reaches a value ranging from about 2,000 to 3,000 mg/l.

20. The process of claim 18 wherein the step of pre-concentration continues until the concentration of Li + reaches a value ranging from about 10,000 to 15,000 mg/l.

21. The process of claim 1 wherein lithium is recovered as high purity lithium carbonate or a solution of lithium chloride.

Assignments (1)
CHANGE OF NAME Recorded Jul 24, 2012
From: RINCON LITHIUM LIMITED
To: ADY RESOURCES LIMITED
Reel/Frame 028622/0741 →
Priority Claims (1)
AU 2008903688 · Jul 18, 2008 · national
Continuity (1)
Related Publication 20110300041A1 · Dec 8, 2011