Method for directly extracting lithium contained in brine
The method addresses the inefficiencies of mine and evaporation-based lithium extraction by using pH adjustment and coagulation processes to economically and environmentally friendly extract lithium from brine, facilitating rapid and large-scale production of lithium compounds for batteries.
Patent Information
- Application Number
- PCT/KR2024/017181
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-04
- Filing Date
- 2024-11-04
- Publication Date
- 2025-10-09
AI Technical Summary
Existing methods for extracting lithium from mines are energy-intensive and environmentally harmful, while extracting lithium from brine through evaporation requires significant time and resources, leading to water depletion and environmental damage.
A method involving pH adjustment, use of carbonate and phosphate compounds, and coagulants to coagulate lithium from brine, followed by separation and dehydration, enabling high-concentration lithium extraction in an economical and environmentally friendly manner.
The method allows for high-concentration lithium extraction with minimal environmental impact, efficient resource use, and rapid processing time, suitable for mass production of lithium compounds for batteries.
Smart Images

Figure KR2024017181_09102025_PF_FP_ABST
Abstract
Description
Method for directly extracting lithium contained in brine
[0001] The present invention relates to a method for directly extracting lithium contained in brine.
[0002] Lithium compounds are used across industries, particularly as electrode materials and electrolytes for lithium secondary batteries. Lithium secondary batteries are used in a wide range of industries, including portable electronic devices, electric vehicles (EVs), and energy storage systems (ESS). As these industries rapidly grow, demand for lithium, a key material, is expected to continue to grow.
[0003] Lithium can be obtained by extracting it from mines or brine. First, extracting lithium from mines is a complex process that requires significant energy and costs. Furthermore, the excessive use of acid during the extraction process can lead to environmental pollution.
[0004] Another common method for extracting lithium from brine involves storing underground brine (with a lithium concentration of approximately 300 mg / L to 3,000 mg / L) in ponds and allowing it to evaporate naturally to produce high-concentration lithium compounds. However, the evaporation process requires excessive time, raises concerns about water resource depletion due to the large volume of brine evaporated, and entails environmental damage due to the need for large pond construction sites.
[0005] Accordingly, there is a need for an extraction method that can produce lithium in large quantities economically without causing environmental destruction.
[0006] The present disclosure provides a method for directly extracting lithium contained in brine, which can obtain high concentrations of lithium in an economical and environmentally friendly manner.
[0007] A method for directly extracting lithium contained in brine according to an embodiment comprises the steps of: preparing a brine containing lithium;
[0008] A step of adjusting the pH of the brine containing the lithium to 8.5 to 11.5;
[0009] A step of first stirring the brine containing lithium by adding an extractant including a carbonate compound, a phosphate compound, or a combination thereof, and a coagulant mixture including an anionic polymer and an acid-based coagulant to the brine containing lithium, thereby generating a brine containing a lithium compound;
[0010] A step of adjusting the pH of the brine containing the lithium compound to 7.5 to 9.5;
[0011] A step of agglomerating the lithium compound by secondarily stirring the brine containing the lithium compound;
[0012] A step of separating the solid and liquid of the above-mentioned coagulated lithium compound and separating the treatment brine; and
[0013] It includes a step of dehydrating the separated lithium compound to obtain a lithium compound and a separation solution.
[0014] In the step of preparing the brine containing lithium, the solubility of lithium in the brine may be 300 mg / L to 10,000 mg / L.
[0015] In the step of adjusting the pH of the brine containing lithium to 8.5 to 11.5, a first pH adjusting agent including sodium aluminate, sodium hydroxide, calcium hydroxide, sodium carbonate, potassium hydroxide, or a combination thereof may be added.
[0016] The carbonate compound may include sodium carbonate, sodium percarbonate, calcium carbonate, potassium carbonate, manganese carbonate, iron carbonate, copper carbonate, zinc carbonate, magnesium carbonate, nickel carbonate, or a combination thereof.
[0017] The above phosphoric acid compound may include sodium phosphate, sodium hydrogen phosphate, sodium dihydrogen phosphate, calcium phosphate, potassium phosphate, or a combination thereof.
[0018] The above carbonic acid compound may include the sodium carbonate and the sodium percarbonate in a weight ratio of 4:6 to 6:4.
[0019] The above carbonic acid compound is x:(5-x):5 (0) of the sodium carbonate, the sodium percarbonate, and the calcium carbonate. <x<5)의 중량비로 포함할 수 있다.
[0020] The above phosphoric acid compound may include the sodium phosphate and the sodium hydrogen phosphate in a weight ratio of 4:6 to 6:4.
[0021] The above phosphoric acid compound is the sodium phosphate, the sodium hydrogen phosphate, and the calcium phosphate in the ratio y:(5-y):5 (0 <y<5)의 중량비로 포함할 수 있다.
[0022] The above extractant may contain the carbonic acid compound and the phosphoric acid compound in a weight ratio of 4:6 to 6:4.
[0023] For the above extractant, the carbonic acid compound, phosphoric acid compound, or a combination thereof and the coagulant mixture may be included in a weight ratio of 4:6 to 6:4.
[0024] In the above coagulant mixture, the anionic polymer and the acid coagulant may be included in a weight ratio of 1:5 to 1:10.
[0025] In the above first stirring process, the stirring speed may be 240 rpm / min to 380 rpm / min, and the stirring time may be 1 to 5 minutes.
[0026] In the step of adjusting the pH of the brine to 7.5 to 9.5, a second pH adjusting agent including an alkaline compound may be added.
[0027] The alkaline compound may include sodium aluminate, sodium hydroxide, calcium hydroxide, sodium carbonate, potassium hydroxide, or a combination thereof.
[0028] The step of coagulating the lithium compound by secondarily stirring the brine in which the lithium compound is produced includes a first coagulation step and a second coagulation step, and the stirring speed of the first coagulation step may be faster than the stirring speed of the second coagulation step.
[0029] The stirring speed of the first coagulation step may be 120 rpm / min to 180 rpm / min, and the stirring speed of the second coagulation step may be 20 rpm / min to 60 rpm / min.
[0030] The step of separating the above-mentioned treated brine may include a solid-liquid separation step using a sieve screen, a belt thickener, a drum screen, or a vibrating screen.
[0031] The separated treated brine can be reintroduced into a step of adjusting the pH of the brine to 8.5 to 11.5.
[0032] The step of dehydrating the above lithium compound can use a screw press dehydrator, a belt press dehydrator, or a filter press dehydrator.
[0033] The above-mentioned liquid can be reintroduced into the step of coagulating the lithium compound.
[0034] By the method of directly extracting lithium contained in the above brine, the production amount of extracted lithium compound when processing 1 ton of brine can be 1.2 kg or more.
[0035] A method for directly extracting lithium contained in brine according to an embodiment of the present invention has the advantage of being able to obtain high concentrations of lithium in an economical and environmentally friendly manner.
[0036] Figures 1 and 2 are flowcharts schematically illustrating a method for directly extracting lithium contained in brine according to one embodiment.
[0037] Figures 3 to 6 show images of each extraction step according to Example 1.
[0038] Figure 7 is a graph showing the content (%) of lithium in the extracted particles according to the reaction time for Example 1 and Examples 8 to 10.
[0039] Below, specific implementation examples are described in detail to facilitate their implementation by those skilled in the art. However, the present invention may be implemented in various different forms and is not limited to the implementation examples described herein.
[0040] The terminology used herein is for the purpose of describing exemplary embodiments only and is not intended to limit the present invention. Singular expressions include plural expressions unless the context clearly dictates otherwise.
[0041] Here, “combination of these” means a mixture, laminate, composite, copolymer, alloy, blend, reaction product, etc. of the components.
[0042] It should be understood that the terms "include," "comprising," or "having" herein are intended to specify the presence of a feature, number, step, component, or combination thereof, but do not preclude the possibility of the presence or addition of one or more other features, numbers, steps, components, or combinations thereof.
[0043] Here, "or" is not interpreted in an exclusive sense, for example, "A or B" is interpreted to include A, B, A+B, etc.
[0044]
[0045] A method for directly extracting lithium contained in brine according to one embodiment includes the steps of: preparing brine containing lithium (S10); adjusting the pH of the brine containing lithium to 8.5 to 11.5 (S20); adding an extractant including a carbonate compound, a phosphate compound, or a combination thereof, and a coagulant mixture including an anionic polymer and an acid-based coagulant to the brine containing lithium and then first stirring the mixture to produce brine containing a lithium compound (S30); adjusting the pH of the brine containing the lithium compound to 7.5 to 9.5 (S40); second stirring the brine containing the lithium compound to coagulate the lithium compound (S50); solid-liquid separating the coagulated lithium compound and separating a treated brine (S60); and dehydrating the separated lithium compound to obtain a lithium compound and a leached solution (S70).
[0046]
[0047] Hereinafter, a method for directly extracting lithium contained in brine according to an embodiment is described in detail with reference to FIGS. 1 and 2.
[0048] The step (S10) of preparing brine containing the lithium is a step of preparing brine as a lithium source, and may be prepared using naturally existing brine or by dissolving a lithium salt in brine having a salinity of 3% to 5%.
[0049] Any type of lithium salt that can supply lithium to brine can be used without limitation, and lithium hydroxide can be used as a specific example.
[0050] For example, the solubility of lithium in the brine containing lithium may be 300 mg / L to 10,000 mg / L.
[0051] For example, in a brine containing lithium salts, lithium is dissolved in Cl present in the brine. - It can exist as ionic and ionic bonded forms, LiCl.
[0052] The step (S20) of adjusting the pH of the brine containing lithium to be 8.5 to 11.5 is a step for increasing the ion exchange reactivity of lithium existing as LiCl before adding an extractant to the brine, and may be a step for adjusting the brine to exhibit alkalinity.
[0053] For example, by adding an alkaline compound, which is a first pH adjuster, to the brine containing lithium, the brine containing lithium can be adjusted to exhibit alkalinity.
[0054] The first pH adjusting agent may include sodium aluminate, sodium hydroxide, calcium hydroxide, sodium carbonate, potassium hydroxide, or a combination thereof.
[0055] The step (S30) of adding an extractant to the brine containing lithium and then stirring it for the first time to produce a brine containing a lithium compound may be a step of coagulating lithium in the form of a lithium compound through an ion exchange reaction between lithium and the extractant.
[0056] For example, the amount of the extractant to be injected may be 1 g to 20 g per 1 L of the brine, for example, 1 g to 15 g, 5 g to 20 g, 5 g to 15 g, or 5 g to 10 g.
[0057] The extractant comprises a carbonic acid compound, a phosphoric acid compound, or a combination thereof; and a coagulant mixture comprising an anionic polymer and an acid-based coagulant.
[0058] The above extractant can coagulate lithium contained in the brine in the form of a lithium compound by including a carbonic acid compound, a phosphoric acid compound, or a combination thereof.
[0059] For example, the extractant may include both the carbonic acid compound and the phosphoric acid compound, and in this case, the carbonic acid compound and the phosphoric acid compound may be included in a weight ratio of 4:6 to 6:4. For example, the carbonic acid compound and the phosphoric acid compound may be included in the extractant in a weight ratio of 4:6 to 5:5, or a weight ratio of 4:6 to 4.5:5.5.
[0060] The carbonate compound may be a carbonate or percarbonate containing an alkali metal, an alkaline earth metal, or a transition metal. For example, the carbonate compound may include sodium carbonate, sodium percarbonate, calcium carbonate, potassium carbonate, manganese carbonate, iron carbonate, copper carbonate, zinc carbonate, magnesium carbonate, nickel carbonate, or a combination thereof. As a specific example, the carbonate compound may include sodium carbonate, sodium percarbonate, calcium carbonate, or a combination thereof.
[0061] For example, when the sodium carbonate and the sodium percarbonate are used together as the carbonic acid compound, the weight ratio of the sodium carbonate and the sodium percarbonate may be 4:6 to 6:4, for example, 4:6 to 5:5, or 4:6 to 4.5:5.5.
[0062] For example, when using the sodium carbonate, the sodium percarbonate, and the calcium carbonate as the carbonate compound, the weight ratio of sodium carbonate, sodium percarbonate, and calcium carbonate may be x:(5-x):5 (0 <x<5), 구체적인 일 예로 상기 탄산 화합물에서 탄산나트륨, 과탄산나트륨, 및 탄산칼슘의 중량비는 2:3:5 일 수 있다.
[0063] The phosphoric acid compound may be a phosphate containing an alkali metal, an alkaline earth metal, or a transition metal, and as an example, the phosphoric acid compound may include sodium phosphate, sodium hydrogen phosphate (sodium phosphate monobasic), sodium dihydrogen phosphate (sodium phosphate dibasic), calcium phosphate, potassium phosphate, or a combination thereof. As a specific example, the phosphoric acid compound may include sodium phosphate, sodium hydrogen phosphate, calcium phosphate, or a combination thereof.
[0064] For example, when the sodium phosphate and the sodium hydrogen phosphate are used together as the phosphoric acid compound, the weight ratio of the sodium phosphate and the sodium hydrogen phosphate may be 4:6 to 6:4.
[0065] For example, when using the sodium phosphate, the sodium hydrogen phosphate, and the calcium phosphate as the phosphoric acid compound, the weight ratio of sodium phosphate, sodium hydrogen phosphate, and calcium phosphate may be y:(5-y):5 (0 <y<5), 구체적인 일 예로 상기 인산 화합물에서 인산나트륨, 인산수소나트륨, 및 인산칼슘의 중량비는 2:3:5 일 수 있다.
[0066] For example, the extractant may include a coagulant mixture including not only the carbonate compound or the phosphoric acid compound, but also an anionic polymer and an acid-based coagulant, thereby effectively flocculating the lithium compound in the form of coagulated colloidal particles to produce a lithium compound in the form of flocs.
[0067] For example, for the extractant, the mixing weight ratio of the carbonic acid compound, phosphoric acid compound, or a combination thereof and the coagulant mixture may be 4:6 to 6:4, for example, 4:6 to 5:5, or 5:5 to 6:4.
[0068] When the above numerical range is satisfied, the lithium compound can be effectively coagulated and the lithium compound can be agglomerated in a short period of time to form a lithium compound in the form of a large particle size floc.
[0069] For example, the anionic polymer may include an acrylamide-based polymer, and the anionic polymer may include a copolymer having acrylamide, sodium acrylate, sodium methacrylate, sodium-2-acrylamide-2-methylpropane sulfonate, or a combination thereof as a structural unit.
[0070] As another example, the anionic polymer may include carboxymethylcellulose (CMC), hydroxypropylmethyl cellulose, methyl cellulose, or an alkali metal salt thereof, or a combination thereof.
[0071] As a specific example, ZipFloc AN-series from Sungchang Co., Ltd. can be used as the anionic polymer, and ZipFloc AN-570F can be used as an example.
[0072] For example, the acid-based coagulant may include aluminum sulfate, ferric chloride, ferric sulfate, polyaluminum chloride (PAC), or a combination thereof.
[0073] For example, in the coagulant mixture, the anionic polymer and the acid coagulant may be included in a weight ratio of 1:5 to 1:10, for example, in a weight ratio of 1:7 to 1:10, or 1:8 to 1:10.
[0074] For example, in the step (S30) of generating the lithium compound, an extractant in the form of a mixture of a carbonate compound, a phosphoric acid compound, or a combination thereof; and a coagulant mixture; may be introduced into the brine. If the above components are not all mixed and are introduced into the brine at different times, it may be difficult for the coagulation and agglomeration reactions of the lithium compound to occur effectively.
[0075] In the step (S30) of generating the lithium compound, the first stirring process may be a step of uniformly mixing LiCl in the brine and the added extractant so that an ion exchange reaction and an adsorption reaction occur. Through the first stirring process, the LiCl in the brine and the carbonate compound or phosphate compound contained in the extractant may undergo an ion exchange reaction, thereby causing the lithium compound to coagulate. The lithium compound coagulated through the reaction may exist in the form of colloidal particles in the brine.
[0076] The lithium compound generated in the above step (S30) may include lithium carbonate, lithium phosphate, or a combination thereof.
[0077] For example, when the extractant contains sodium carbonate, the lithium compound produced may be lithium carbonate, and the reaction formula for forming lithium carbonate is as follows.
[0078] [Reaction Formula 1]
[0079] 2LiCl + Na2CO3→ Li2CO3+ 2NaCl
[0080] For example, when the extractant includes calcium carbonate, the lithium compound produced may be lithium carbonate, and the reaction formula for forming lithium carbonate is as follows.
[0081] [Reaction Formula 2]
[0082] 2LiCl + CaCO3 → Li2CO3+ CaCl2
[0083] For example, when the extractant contains sodium phosphate, the lithium compound produced may be lithium phosphate, and the reaction formula for forming lithium phosphate is as follows.
[0084] [Reaction Formula 3]
[0085] 3LiCl + Na3PO4→ Li3PO4+ 3NaCl
[0086] For example, in the first stirring process, the stirring speed may be 240 rpm / min to 380 rpm / min, and the stirring time may be 1 minute to 5 minutes, or 1 minute to 3 minutes. When the speed and time of the first stirring are as described above, the lithium compound can be effectively coagulated.
[0087] The step (S40) of adjusting the pH of the brine in which the lithium compound is produced to 7.5 to 9.5 may be a step for fixing the lithium compound in the form of colloidal particles produced in the previous step (S30). When the pH of the brine in which the lithium compound is produced is adjusted to be alkaline, the reverse reaction in which lithium is redissolved in the brine in the above reaction formulas 1 to 3 is prevented from occurring, thereby allowing the lithium compound to be obtained more effectively.
[0088] For example, the step (S40) may be a step of adjusting the brine to exhibit alkalinity by adding a second pH adjuster to the brine in which the lithium compound is produced, and the second pH adjuster may include an alkaline compound.
[0089] For example, the alkaline compound may include sodium aluminate, sodium hydroxide, calcium hydroxide, sodium carbonate, potassium hydroxide, or a combination thereof.
[0090] The step (S50) of agglomerating the lithium compound by secondarily stirring the brine in which the lithium compound is produced may be a step in which the lithium compound in the form of colloidal particles flocculates to form a lithium compound in the form of flocs.
[0091] In the step (S50) of coagulating the lithium compound, the coagulant mixture including the anionic polymer and acid coagulant described above effectively coagulates the lithium compound in the form of colloidal particles, thereby forming a lithium compound in the form of flocs having relatively large particle sizes. When the lithium compound in the form of flocs having large particle sizes is formed, gravity dehydration of the treated brine in the separation step (S60) described below is possible, thereby providing the advantage of economically obtaining a large amount of lithium compound in a short period of time.
[0092] For example, the particle size of the lithium compound in the form of a flock may be 2 mm or more, for example 3 mm or more, or 5 mm or more.
[0093] Referring to FIG. 2, the step of coagulating the lithium compound (S50) may include a first coagulation step (S51) and a second coagulation step (S52), and the step of coagulating the lithium compound (S50) may first perform the first coagulation step (S51) and then perform the second coagulation step (S52).
[0094] The first aggregation step (S51) may be a step in which most of the lithium compound in the form of colloidal particles aggregates. The stirring speed in the first aggregation step (S51) may be 120 rpm / min to 180 rpm / min, and the stirring time may be 1 minute to 5 minutes, or 1 minute to 3 minutes.
[0095] The second coagulation step is a step in which a secondary coagulation reaction is performed so that fine colloidal particles that were not coagulated in the first coagulation step can be adsorbed to the flocs. Compared to the first coagulation step, the stirring speed may be relatively slow and the stirring time may be relatively short.
[0096] For example, the stirring speed in the second coagulation step (S52) may be 20 rpm / min to 60 rpm / min, and the stirring time may be 1 minute to 3 minutes.
[0097] For example, the sum of the first stirring time and the second stirring time in the step (S30) of generating a brine containing a lithium compound by first stirring and the step (S50) of coagulating the lithium compound by second stirring the brine containing the lithium compound may be referred to as the reaction time, and the reaction time may mean the time taken from the start of step S30 to the end of step S50. For example, the reaction time may be 3 to 20 minutes, for example, 3 to 13 minutes, 5 to 10 minutes, or 5 to 8 minutes.
[0098] The step (S60) of separating the solid and liquid of the above-mentioned coagulated lithium compound and separating the treatment brine may be a step of separating the lithium compound in the form of a floc obtained in the coagulation step (S50) from the treatment brine.
[0099] For example, in the coagulation step (S50), a solid-state lithium compound and a liquid-state treatment brine can be separated into solid and liquid. When performing the solid-liquid separation, a device equipped with a mesh can be used. For example, a sieve screen, a belt thickener, a drum mesh screen, or a vibrating screen can be used when performing the solid-liquid separation.
[0100] For example, since the lithium compound in the form of flocs aggregated in the above-described agglomeration step (S50) has a relatively large particle size, solid-liquid separation can be easily achieved when the lithium compound and the treatment brine pass through the devices having the mesh installed.
[0101] Referring to FIGS. 1 and 2, the treated brine separated in the step (S60) may be reintroduced into the step (S20) of adjusting the pH of the brine to 8.5 to 11.5, and the steps S20 to S60 described above may be repeated one or more times. For example, the separated treated brine may be re-extracted from the lithium contained in the treated brine by repeating the steps S20 to S60 described above two to ten times, thereby further increasing the production amount of lithium.
[0102] The step (S70) of dehydrating the separated lithium compound may be a step of compressing and dehydrating the separated lithium compound to obtain a final lithium compound and a dewatering solution.
[0103] The above dehydration step (S70) can be performed using a screw press dehydrator, a belt press dehydrator, or a filter press dehydrator.
[0104] In the above dehydration step, a lithium compound can be obtained and a residual leached liquid can be generated, and the leached liquid can be reintroduced into the step (S50) of coagulating the lithium compound, thereby further increasing the lithium production amount.
[0105] For example, by a method of directly extracting lithium contained in the brine, the production amount of the extracted lithium compound when treating 1 ton of brine may be 1.2 kg or more, for example, 1.4 kg or more, or 1.5 kg or more.
[0106] For example, one extraction device comprising a method for directly extracting lithium contained in brine according to one embodiment can process 50 tons of brine per hour. In this case, the amount of lithium compound produced in one hour from one extraction device may be at least 60 kg / hr, for example at least 70 kg / hr, or at least 75 kg / hr.
[0107] The method for directly extracting lithium contained in brine according to the above-described embodiment corresponds to the Direct Lithium Extraction (DLE) method. Since lithium can be extracted directly from brine, it does not require the large land required to build a pond used in the natural evaporation method. In addition, the treated brine after extraction can be released back into the water, which prevents the depletion of groundwater resources caused by the use of the natural evaporation method and has the advantage of being an environmentally friendly method. Furthermore, since a single extraction process can be completed within 20 minutes, it is economical and efficient, enabling mass production of lithium. Furthermore, lithium production can be further increased by repeating the re-extraction process for the treated brine and the separated liquid generated during the process.
[0108] Lithium extracted through the method according to the above-described embodiment can be used as a cathode active material of a lithium secondary battery. For example, the cathode active material may be at least one of a composite oxide of lithium and a metal selected from cobalt, manganese, nickel, and combinations thereof. For example, the composite oxide may be a lithium transition metal composite oxide, and specific examples thereof include lithium nickel-based oxide, lithium cobalt-based oxide, lithium manganese-based oxide, lithium iron phosphate-based compound, cobalt-free nickel-manganese oxide, or combinations thereof. Using the method according to the embodiment, lithium can be mass-produced in a short period of time in an environmentally friendly manner, so there is an advantage in that the demand for lithium, which is a key material of lithium secondary batteries, can be effectively met.
[0109] Hereinafter, examples and comparative examples of the present invention are described. The following examples are merely examples of the present invention, and the present invention is not limited to the following examples.
[0110]
[0111] Example
[0112] Example 1
[0113] First, lithium hydroxide is dissolved at 7000 mg / L in 1 L of brine with a salinity of 3%, thereby preparing a brine containing lithium as shown in Fig. 3. When the lithium content (mg / L) in the brine is measured using inductively coupled plasma-optical emission spectroscopy (ICP-OES), it can be confirmed that it is 1100 mg / L (lithium solubility value of the brine before lithium extraction).
[0114] Next, sodium aluminate is added to the prepared brine to adjust the pH of the brine to approximately 10.
[0115] Next, for 1 L of the above brine, 8 g of an extractant, which is a mixture of a carbonate compound and a coagulant mixture in a weight ratio of 4:6 and a coagulant mixture in a weight ratio of 5:5, is added. At this time, the coagulant mixture is prepared by mixing an anionic polymer, ZipFloc AN-570F (Seongchang Co., Ltd.), and an acid-based coagulant, aluminum sulfate, in a weight ratio of 1:10.
[0116] The mixture containing the extractant added to the brine is mixed at a primary stirring speed of 300 rpm / min for 3 minutes to coagulate the lithium compound. Referring to Fig. 4, it can be confirmed that a lithium compound coagulated in the form of colloidal particles is produced at this stage.
[0117] Sodium aluminate is added to the brine in which the lithium compound is produced to adjust the pH of the brine to about 8.
[0118] Next, the brine is stirred a second time to coagulate the lithium compound. Specifically, the brine is stirred at a speed of 150 rpm / min for 3 minutes to coagulate the lithium compound for the first time, and then stirred at a speed of 60 rpm / min for 2 minutes to coagulate the lithium compound for the second time, coagulating the lithium compound in the form of flocs. Referring to Fig. 5, it can be confirmed that at this stage, large-particle-sized flocs of lithium compounds are coagulated.
[0119] Next, the brine is passed through a drum screen to separate the lithium compound and the treated brine into solid and liquid. The obtained lithium compound is compressed and dehydrated in a screw press dehydrator to obtain extracted particles containing the lithium compound according to Example 1, as shown in FIG. 6.
[0120] Example 2
[0121] For 1 L of brine, 8 g of an extractant, which is a mixture of sodium percarbonate and the coagulant prepared in Example 1, is added in a weight ratio of 5:5, and the first stirring is performed for 1 minute, and during the second stirring, the first coagulation is performed for 2 minutes and the second coagulation is performed for 2 minutes, and the extracted particles according to Example 2 are obtained in the same manner as in Example 1, except that the second stirring is performed for 2 minutes and the second coagulation is performed for 2 minutes.
[0122] Example 3
[0123] Extraction particles according to Example 3 are obtained in the same manner as Example 2, except that 8 g of an extractant, which is a mixture of sodium carbonate and the coagulant prepared in Example 1, is added in a weight ratio of 5:5 to 1 L of brine.
[0124] Example 4
[0125] Extraction particles according to Example 4 are obtained in the same manner as in Example 2, except that 8 g of an extractant, which is a mixture of sodium phosphate and sodium percarbonate in a weight ratio of 6:4 and a coagulant mixture prepared in Example 1 in a weight ratio of 5:5, is added to 1 L of brine.
[0126] Example 5
[0127] Extraction particles according to Example 5 are obtained in the same manner as in Example 2, except that 8 g of an extractant, which is a mixture of sodium phosphate and sodium carbonate in a weight ratio of 6:4 and a coagulant mixture prepared in Example 1 in a weight ratio of 5:5, is added to 1 L of brine.
[0128] Example 6
[0129] Extraction particles according to Example 6 are obtained in the same manner as in Example 2, except that 8 g of an extractant, which is a mixture of sodium phosphate and the coagulant prepared in Example 1, is added in a weight ratio of 5:5 to 1 L of brine.
[0130] Example 7
[0131] In the above Example 2, the high-liquid separated treatment brine is reintroduced into the step of adjusting the pH to about 10, and the extraction process performed in Example 2 is repeated once more to obtain extracted particles according to Example 7.
[0132] Examples 8 to 10
[0133] Extracted particles according to Examples 8 to 10 were obtained in the same manner as in Example 1, except that the reaction time was changed as shown in Table 2 below.
[0134] The above reaction time refers to the sum of the first stirring time and the second stirring time, and the second stirring time refers to the sum of the first coagulation stirring time and the second coagulation stirring time.
[0135] Specifically, in the case of Example 8, the first stirring time is 1 minute / the first coagulation stirring time is 1 minute / the second coagulation stirring time is 1 minute. (Reaction time: 3 minutes)
[0136] In the case of Example 9, the first stirring time is 1 minute / the first coagulation stirring time is 2 minutes / the second coagulation stirring time is 2 minutes. (Reaction time: 5 minutes)
[0137] In the case of Example 10, the first stirring time was 4 minutes, the first coagulation stirring time was 5 minutes, and the second coagulation stirring time was 4 minutes. (Reaction time: 13 minutes)
[0138] Evaluation example: Production of lithium compounds
[0139] The weights of the extracted particles obtained according to Examples 1 to 10 are shown in Tables 1 and 2 below. Next, the content ratio (%) of lithium per 1 kg of the extracted particles was measured through ICP-OES analysis and shown in Tables 1 and 2 below.
[0140] Next, the content ratio (%) of lithium compounds contained per 1 kg of the extracted particles is calculated using the content ratio (%) of lithium measured above and Lithium Carbonate Equivalent (LCE) according to the following [Formula 1] and is shown in Tables 1 and 2.
[0141] [Formula 1]
[0142] Content of lithium compounds in the extracted particles (%) = 5.32 X Content of lithium in the extracted particles (%)
[0143] In addition, for each example, the amount of lithium compound produced when 1 ton of brine is processed per device is calculated according to [Formula 2] below and shown in Tables 1 and 2.
[0144] [Formula 2]
[0145] Lithium compound production (kg, based on processing 1 ton of brine) = Weight of extracted particles (kg) X Content of lithium compound in extracted particles (%) X 1000
[0146] In addition, for Example 1 and Examples 8 to 10, which have different reaction times (sum of the first stirring time and the second stirring time), the content (%) of lithium in the extracted particles according to the reaction time is shown graphically in Figure 7.
[0147] Weight of extracted particles (kg) Content of lithium in extracted particles (%, per 1 kg) Content of lithium compound in extracted particles (%, per 1 kg) Lithium compound production (kg) (based on processing 1 ton of brine) Example 10.0245 kg 1.84% 1.84 X 5.32 = 9.789% 2.398 kg Example 20.0265 kg 1.32% 1.32 X 5.32 = 7.022% 1.860 kg Example 30.027 kg 0.96% 0.96 X 5.32 = 5.107% 1.378 kg Example 40.0234 kg 1.02% 1.02 X 5.32 = 5.426% 1.269 kg Example 50.0289 kg 1.06% 1.06 X 5.32 = 5.639%1.629kgExample 60.0265kg1.09%1.09 X 5.32 = 5.798%1.536kgExample 7 (1st extraction)0.0245kg1.15%1.15 X 5.32 = 6.118%1.498kg(2nd extraction)0.026kg1.07%1.07 X 5.32 = 5.692%1.480kg
[0148] Referring to Table 1, it can be confirmed that the lithium compound production amount (kg) is 1.2 kg or more when 1 ton of brine is treated in Examples 1 to 6, and it can be confirmed that the lithium compound production amount in Example 1 is particularly high. In addition, in the case of Example 7, it can be confirmed that the second extraction (re-extraction) is performed after the first extraction, and the sum of the lithium compound production amounts in the first and second extractions is approximately 3 kg.
[0149] Weight of extracted particles (kg) Content of lithium in extracted particles (%, per 1 kg) Content of lithium compound in extracted particles (%, per 1 kg) Lithium compound production (kg) (based on treatment of 1 ton of brine) Example 8 (Reaction time: 3 minutes) 0.0234 kg 0.98% 0.98 X 5.32 = 5.213% 1.219 kg Example 9 (Reaction time: 5 minutes) 0.0245 kg 1.66% 1.66 X 5.32 = 8.831% 2.163 kg Example 1 (Reaction time: 8 minutes) 0.0245 kg 1.84% 1.84 X 5.32 = 9.789% 2.398 kg Example 10 (Reaction time: 13 minutes) 0.0241 kg 0.85% 0.85 X 5.32 = 4.522%1.089kg
[0150] Referring to Table 2 and Figure 7, it can be confirmed that the content (%) of lithium in the extracted particles is 1% or more when the reaction time is 3 to 13 minutes, and in particular, it can be confirmed that the content (%) of lithium in the extracted particles is high in Example 1 (reaction time: 8 minutes) and Example 9 (reaction time: 5 minutes).
[0151] Although the preferred embodiments have been described in detail above, the scope of the present invention is not limited thereto, and various modifications and improvements made by those skilled in the art using the basic concepts defined in the following claims also fall within the scope of the present invention.
[0152]
[0153]
[0154]
[0155]
[0156] [Explanation of symbols]
[0157] S10: Preparation of brine containing lithium
[0158] S20: Brine pH adjustment step
[0159] S30: Step of adding an extractant to brine and stirring it for the first time to produce brine containing a lithium compound.
[0160] S40: pH adjustment step of brine in which lithium compounds are produced
[0161] S50: Step of coagulating lithium compounds by secondary stirring of the brine in which lithium compounds are produced.
[0162] S51: First coagulation stage
[0163] S52: Second coagulation stage
[0164] S60: Step of separating the solid and liquid of the coagulated lithium compound and separating the treatment brine.
[0165] S70: Step of dehydrating the separated lithium compound to obtain a lithium compound and a separated solution.
Claims
1. A step of preparing a brine containing lithium; A step of adjusting the pH of the brine containing the lithium to 8.5 to 11.5; A step of first stirring the brine containing lithium by adding an extractant including a carbonate compound, a phosphate compound, or a combination thereof, and a coagulant mixture including an anionic polymer and an acid-based coagulant to the brine containing lithium, thereby generating a brine containing a lithium compound; A step of adjusting the pH of the brine containing the lithium compound to 7.5 to 9.5; A step of agglomerating the lithium compound by secondarily stirring the brine containing the lithium compound; A step of separating the solid and liquid of the above-mentioned coagulated lithium compound and separating the treatment brine; and A method for directly extracting lithium contained in brine, comprising a step of dehydrating the separated lithium compound to obtain a lithium compound and a leaching solution.
2. In paragraph 1, In the step of preparing the brine containing the lithium, A method for directly extracting lithium contained in brine, wherein the solubility of lithium in the brine is 300 mg / L to 10,000 mg / L.
3. In paragraph 1, In the step of adjusting the pH of the brine containing lithium to 8.5 to 11.5, A method for directly extracting lithium contained in brine, wherein a first pH adjusting agent comprising sodium aluminate, sodium hydroxide, calcium hydroxide, sodium carbonate, potassium hydroxide, or a combination thereof is added.
4. In paragraph 1, A method for directly extracting lithium contained in a brine, wherein the carbonate compound comprises sodium carbonate, sodium percarbonate, calcium carbonate, potassium carbonate, manganese carbonate, iron carbonate, copper carbonate, zinc carbonate, magnesium carbonate, nickel carbonate, or a combination thereof.
5. In paragraph 1, A method for directly extracting lithium contained in a brine, wherein the phosphoric acid compound comprises sodium phosphate, sodium hydrogen phosphate, sodium dihydrogen phosphate, calcium phosphate, potassium phosphate, or a combination thereof.
6. In paragraph 4, A method for directly extracting lithium contained in a brine, wherein the carbonate compound comprises sodium carbonate and sodium percarbonate in a weight ratio of 4:6 to 6:
4.
7. In paragraph 4, The above carbonic acid compound is x:(5-x):5 (0) of the sodium carbonate, the sodium percarbonate, and the calcium carbonate. <x<5)의 중량비로 포함하는, 염수에 포함된 리튬을 직접 추출하는 방법.
8. In paragraph 5, A method for directly extracting lithium contained in a brine, wherein the phosphoric acid compound comprises sodium phosphate and sodium hydrogen phosphate in a weight ratio of 4:6 to 6:
4.
9. In paragraph 5, The above phosphoric acid compound is the sodium phosphate, the sodium hydrogen phosphate, and the calcium phosphate in the ratio y:(5-y):5 (0 <y<5)의 중량비로 포함하는, 염수에 포함된 리튬을 직접 추출하는 방법.
10. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the extractant comprises the carbonate compound and the phosphoric acid compound in a weight ratio of 4:6 to 6:
4.
11. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the carbonate compound, phosphoric acid compound, or a combination thereof and the coagulant mixture are included in a weight ratio of 4:6 to 6:
4.
12. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the anionic polymer and the acid-based coagulant are included in the coagulant mixture in a weight ratio of 1:5 to 1:
10.
13. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the stirring speed in the first stirring process is 240 rpm / min to 380 rpm / min and the stirring time is 1 to 5 minutes.
14. In paragraph 1, In the step of adjusting the pH of the above brine to 7.5 to 9.5, A method for directly extracting lithium contained in brine by adding a second pH adjusting agent containing an alkaline compound.
15. In paragraph 14, A method for directly extracting lithium contained in brine, wherein the alkaline compound comprises sodium aluminate, sodium hydroxide, calcium hydroxide, sodium carbonate, potassium hydroxide, or a combination thereof.
16. In paragraph 1, A method for directly extracting lithium contained in a brine, wherein the step of secondarily stirring the brine in which the lithium compound is produced to coagulate the lithium compound includes a first coagulation step and a second coagulation step, and the stirring speed of the first coagulation step is faster than the stirring speed of the second coagulation step.
17. In paragraph 16, The stirring speed of the first coagulation step is 120 rpm / min to 180 rpm / min, A method for directly extracting lithium contained in brine, wherein the stirring speed of the second coagulation step is 20 rpm / min to 60 rpm / min.
18. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the step of separating the above-mentioned treated brine includes a solid-liquid separation step using a sieve screen, a belt thickener, a drum screen, or a vibrating screen.
19. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the separated brine is reintroduced into a step for adjusting the pH of the brine to 8.5 to 11.
5.
20. In paragraph 1, The step of dehydrating the lithium compound is a method for directly extracting lithium contained in brine using a screw press dehydrator, belt press dehydrator, or filter press dehydrator.
21. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the above-mentioned solution is reintroduced into the step of coagulating the lithium compound.
22. In paragraph 1, A method for directly extracting lithium contained in brine, wherein the production amount of lithium compounds extracted when processing 1 ton of brine is 1.2 kg or more by the method for directly extracting lithium contained in the brine.
Citation Information
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