Scandium recovery methods

The method addresses the inefficiencies in scandium recovery from steel slag by using controlled pH leaching and extraction processes to separate scandium effectively, enhancing recovery rates and reducing purification costs.

JP7846420B2Active Publication Date: 2026-04-15NIPPON STEEL CORPORATION
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-09-04
Publication Date
2026-04-15

AI Technical Summary

Technical Problem

Existing methods are inefficient in recovering scandium from steel slag, which contains trace amounts of scandium along with other rare earth elements and main components, and there is a need for a method to separate and purify scandium effectively from steel slag.

Method used

A method involving multiple leaching steps with controlled pH adjustments using acids like nitric or sulfuric acid to separate scandium from other rare earth elements, followed by solid-phase and solvent extraction, precipitation, and roasting to obtain scandium oxide.

Benefits of technology

This method allows for the recovery of scandium from steel slag with improved separation from other rare earth elements, increasing the recovery rate and reducing the burden on subsequent purification steps, thereby lowering costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

(Problem) The purpose of the present invention is to provide a method for recovering rare-earth elements comprising, while recovering scandium from iron and steel slag, crudely separating scandium and a rare-earth element other than scandium. (Solution) The method is characterized by multiple leaching at different pH ranges of rare-earth elements including scandium from iron and steel slag. The present invention is characterized by further combining a leachate obtained by the method with an element separation step to allow highly efficient recovery of scandium.
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Description

Technical Field

[0001] The present invention relates to a method for recovering scandium (Sc), and more particularly to a method for recovering scandium from blast furnace slag, steelmaking slag or electric furnace slag while also performing rough separation of scandium and other rare earth elements (sometimes referred to as Rare Earth Element, REE).

Background Art

[0002] Scandium is used as an additive for various materials such as high-strength alloys and electrode materials for fuel cells, and is an element with high industrial value. In addition, the areas where scandium ores are buried are unevenly distributed, and its supply volume is globally small, so scandium has a high scarcity value. However, there has been a problem that the price of scandium fluctuates violently due to changes in the social situation. Therefore, establishing a method for stably and massively supplying scandium is important for the development of the industry.

[0003] By the way, the production volume of steel accounts for the majority of the total metal production, and the production volume of steel slag produced as a by-product is also very large. For example, in Japan, about 100 million tons of crude steel are produced annually, and as this by-product, blast furnace slag is produced at about 23 million tons annually, steelmaking slag is produced at about 12 million tons annually, and electric furnace slag is produced at about 3 million tons annually. The iron ore, coal, limestone, and iron scrap that are the raw materials for these steel slags contain trace amounts of rare earth elements including scandium, which are contained in the steel slag through the ironmaking process.

[0004] Various studies have been made to efficiently obtain scandium. In Patent Document 1, the aim is to efficiently recover scandium with high purity. Starting from nickel oxide steel as the raw material, after separating nickel, aluminum, chromium, and scandium contained in the raw material, further separation operations of extraction, back-extraction, precipitation, drying, and roasting are performed from the separated Sc eluate to obtain Sc oxide. Patent Document 2 aims to separate and recover precious metal elements and rare earth elements, including scandium, contained in fly ash, and proposes separating the precious metals in a first process and the rare earth elements in a second process. Patent Document 3 aims to recover rare earth metals, including scandium, from tin slag discharged from the tin refining process. It proposes a method specifically focused on separating components other than rare earth metals contained in the tin slag, namely radioactive materials, iron, aluminum, and other metals, and ultimately obtaining salts or oxides of rare earth metals. Patent Document 4 describes a method for recovering rare earth elements, including scandium, from steel slag by magnetic separation and wet refining. The rare earth element leaching method described in Patent Document 4 utilizes saline solution, chelating agents, or 0.1 mol / L hydrochloric acid or nitric acid. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] Patent No. 5652503 [Patent Document 2] Patent No. 6159731 [Patent Document 3] Patent No. 5825074 [Patent Document 4] Japanese Patent Publication No. 2018-530673 [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] Steel slag contains trace amounts of rare earth elements, including scandium, but its main components are silicon (Si), iron (Fe), aluminum (Al), magnesium (Mg), calcium (Ca), etc. A process is needed to separate these main components and recover scandium.

[0007] In addition, as will be detailed later, rare earth elements include 17 elements, including scandium, and it is necessary to separate scandium from the other rare earth elements. It is possible to separate and purify scandium by utilizing the differences in the chemical properties of each rare earth element, but streamlining this separation and purification process is extremely important from the perspective of industrial production management, including cost.

[0008] In short, while steel slag contains scandium, which has high industrial value, it also contains other rare earth elements and elements that are the main components of slag. Therefore, it is desirable to efficiently separate and recover only scandium from steel slag.

[0009] Patent documents 1 to 3 relate to the separation of rare earth elements, including scandium, but the starting material is not steel slag. The raw materials targeted by these prior arts differ from steel slag in terms of their leaching characteristics to acid, as well as the types and concentrations of the main constituent elements to be separated. Therefore, it has been difficult to efficiently recover rare earth elements, especially scandium, from steel slag using these prior arts.

[0010] Furthermore, while Patent Document 4 aims to separate not only rare earth elements, including scandium, from steel slag, but also metal salts and other elements, the specific process conditions are not optimal for that purpose. Specifically, the leaching process from steel slag uses only "saline solution, chelating agents, and acid (0.1 mol / L HCl or HNO3)," but since steel slag is basic and the degree of its basicity changes, there is a problem that the leaching efficiency changes greatly depending on the ratio of steel slag to acid when using a fixed acid concentration (0.1 mol / L).

[0011] As mentioned above, there is no well-established method for industrially recovering scandium from steel slag, and more appropriate methods are needed. The present invention aims to provide a method for recovering scandium from steel slag while also performing a rough separation of scandium from other rare earth elements. [Means for solving the problem]

[0012] The inventors of this invention conducted extensive research to solve the above-mentioned problems. As a result, they discovered that scandium contained in steel slag can be leached with acid while controlling the pH, and that the leaching behavior of scandium and other rare earth elements differs depending on the pH range in which the leaching is performed. Utilizing this, they conceived the idea that by performing scandium leaching from steel slag multiple times within different pH ranges, scandium can be recovered from the steel slag while achieving rough separation of scandium from other rare earth elements, thus completing the present invention. It is generally known that there are differences in elemental solubility, and that this also depends on pH, but it had not been clarified that there are differences in leaching rates among rare earth elements when steel slag, mainly composed of CaO and SiO2, is leached with acid by controlling the pH to a predetermined level.

[0013] Furthermore, by subjecting the scandium-containing leachate obtained in the above leaching process to an extraction process consisting of one or both of a solid-phase extraction process and a solvent extraction process, scandium is separated from the main components of the steel slag such as iron, aluminum, magnesium, calcium, and silicon to produce a scandium concentrate. A precipitating agent is then added to this concentrate to produce a scandium precipitate, and this precipitate is roasted to obtain scandium oxide. High-purity scandium can then be recovered through this roasting process.

[0014] In other words, the present invention includes the following embodiments. (1) A method for recovering scandium (Sc) from steel slag produced by the steelmaking process, A leaching step 1 involves contacting the aforementioned steel slag with a first acid and adjusting the pH of the resulting leachate to be within a first pH range to obtain a first leachate. A first solid-liquid separation step of separating solid content from the first leachate; A leaching step 2 of adjusting the pH of the leachate obtained by contacting the solid content separated in the first solid-liquid separation step with a second acid to be within a second pH range lower than that of leaching step 1 to obtain a second leachate; comprising where the first acid and the second acid contain nitric acid or sulfuric acid, the first pH range is 1.1 or more and less than 6.7, and the second pH range is -1.0 or more A method for recovering scandium, characterized in that. (2) The method for recovering scandium according to (1), wherein in the leaching step 1 and / or the leaching step 2, while monitoring the pH of the first leachate and / or the second leachate, an acid or a base is added to adjust the pH. (3) The method for recovering scandium according to (1) or (2), characterized in that the second pH range in the leaching step 2 is -0.5 or more and 3.3 or less. 3(4) The method for recovering scandium according to any one of (1) to (3), wherein sulfuric acid is used as the first acid. (5) The method for recovering scandium according to (4), characterized in that the final pH of the leaching step 1 is 3.6 or more and less than 6.7. (6) The method for recovering scandium according to (4), characterized in that the final pH of the leaching step 1 is 3.6 or more and 5.3 or less. (7) The method for recovering scandium according to any one of (1) to (3), wherein nitric acid is used as the first acid. (8) The method for recovering scandium according to (7), characterized in that the final pH of the leaching step 1 is 3.4 or more and less than 6.0. (9) The method for recovering scandium according to (7), characterized in that the final pH of the leaching step 1 is 3.4 or more and 4.0 or less. (10) A step of adjusting the pH of the first leachate and / or the second leachate by adding a base or an acid, respectively, to obtain a first pH-adjusted leachate and / or a second pH-adjusted leachate, An extraction step to obtain a first element concentrate and / or a second element concentrate by treating the first pH-adjusted leachate and / or the second pH-adjusted leachate with either solvent extraction or solid-phase extraction, or both, respectively; A method for recovering scandium, including any one of items (1) to (9). (11) A method for recovering scandium according to (10), comprising a precipitation step of adding a precipitant to the first element concentrate and / or the second element concentrate, respectively, to obtain a first precipitate and / or a second precipitate. (12) A method for recovering scandium according to (11), comprising a roasting step of roasting the first precipitate and / or the second precipitate, respectively, to obtain the first oxide and / or the second oxide. (13) A method for recovering scandium according to (12), comprising a drying step of drying the first precipitate and / or the second precipitate, respectively. (14) A method for recovering scandium according to any one of (10) to (13), characterized in that the solvent extractant used in the extraction step is an amine-based, organophosphoric acid-based, or carboxylic acid-based extractant. (15) A method for recovering scandium according to any one of (10) to (14), characterized in that the solid-phase extractant used in the extraction step is a resin having iminodiacetic acid as a functional group. (16) A method for recovering scandium according to any one of (10) to (15), characterized in that the precipitating agent used in the precipitation step is oxalic acid, carbonic acid, tartaric acid, or a base. (17) The method for recovering scandium according to any one of items (1) to (16), wherein the steel slag is blast furnace slag. (18) The method for recovering scandium according to any one of (1) to (17), characterized in that the second leachate is concentrated with scandium relative to other rare earth elements. [Effects of the Invention]

[0015] The present invention provides a scandium recovery method that allows for the recovery of scandium from steel slag while performing coarse separation of scandium from other rare earth elements. By controlling the pH in multiple leaching steps, it is possible to control the leaching of different rare earth elements (scandium and other rare earth elements), thereby reducing the burden on the subsequent purification step. Furthermore, by selecting the pH of the leached liquid from a specific range, it is possible to increase the recovery rate of scandium from steel slag and / or the coarse separation rate (purification rate) of scandium from other rare earth elements. [Brief explanation of the drawing]

[0016] [Figure 1] Figure 1 is a flowchart illustrating an example of a method for recovering rare earth elements. [Figure 2] Figure 2 is a flowchart illustrating an example of a solid-phase extraction process. [Figure 3] Figure 3 shows an example of the relationship between the pH of the leachate and the leaching rate of rare earth elements. [Figure 4] Figure 4 shows the particle size distribution of the steel slag used in the example. [Figure 5] Figure 5 is a schematic diagram showing the leaching process for the examples and comparative examples. [Figure 6] Figure 6 shows the procedure for confirming the effect of separating scandium from other rare earth elements. [Modes for carrying out the invention]

[0017] The following describes specific embodiments of the present invention (hereinafter referred to as "these embodiments") in detail with reference to the drawings. However, the present invention is not limited in any way to the following embodiments, and can be implemented with appropriate modifications without altering the gist of the present invention.

[0018] Although there are multiple definitions of elements included in the term "rare earth elements," the definition of rare earth elements presented in this disclosure refers to a group of 17 elements that include the lanthanides (Ln), which consist of lanthanum (La), cerium (Ce), praseodymium (Pr), neodymium (Nd), promethium (Pm), samarium (Sm), europium (Eu), gadolinium (Gd), terbium (Tb), dysprosium (Dy), holmium (Ho), erbium (Er), thulium (Tm), ytterbium (Yb), and lutetium (Lu), plus yttrium (Y) and scandium (Sc).

[0019] The term "steel slag" as used in this disclosure is defined to include blast furnace slag produced in the ironmaking process, steelmaking slag produced in the steelmaking process, and electric arc furnace slag produced in electric arc furnaces.

[0020] Figures 1 and 2 are flowcharts illustrating an exemplary scandium recovery method. The scandium recovery method involves leaching steel slag with an acid such as sulfuric acid, nitric acid, or hydrochloric acid, and introducing the resulting leachate into a purification process to separate the main components of the steel slag, such as aluminum, magnesium, calcium, and silicon, as well as rare earth elements other than scandium, thereby recovering scandium.

[0021] The first feature of the present invention is that scandium is recovered from steel slag while rough separation of scandium from other rare earth elements is achieved by performing scandium leaching from steel slag multiple times within different pH ranges. Typically, in leaching step 1, at least some rare earth elements (mainly rare earth elements other than scandium) are leached by contacting the steel slag with an acid and controlling the pH of the resulting leachate. In leaching step 2, different rare earth elements (mainly scandium) are leached by contacting the solid matter (residue) generated in leaching step 1 with an acid and controlling the pH of the resulting leachate to be within a different pH range than that of leaching step 1 (a lower pH than that of leaching step 1). This allows for the recovery of scandium while also rough separation of scandium from other rare earth elements. Here, "mainly leached" means that either scandium or the other rare earth elements are leached at a higher rate than the other. Although not an essential feature, a second characteristic of the present invention is that the elements (typically scandium and other rare earth elements) in the leachate obtained in leaching step 1 and leaching step 2 are purified by extraction steps M and M', which each include one or both of solid-phase extraction steps M1 and M1' and solvent extraction steps M2 and M2'.

[0022] By using the method of the present invention, rare earth elements including scandium can be leached from steel slag. Therefore, rare earth elements including scandium can be recovered from steel slag, and even from raw materials containing many impurities such as steel slag, high-purity rare earth elements including scandium can be recovered. Furthermore, rough separation of scandium and other rare earth elements can be performed simultaneously in leaching steps 1 and 2. This reduces the burden of the refining process and allows for the recovery of rare earth elements at a lower cost. In particular, Sc, which has high industrial value among rare earth elements, can be roughly separated in the leaching step, which is the initial stage of the entire rare earth element recovery process.

[0023] Although not a mandatory feature, the steel slag may be crushed to increase its surface area prior to the leaching process K. Alternatively, the molten steel slag may be subjected to a water granulation treatment during cooling to produce fine-grained granulated slag with a large surface area. Increasing the surface area of ​​the steel slag can increase the leaching rate of rare earth elements, including scandium, in the steel slag.

[0024] <Leaching step 1, K> In leaching step 1 (K in Figure 1), steel slag is immersed in acid to leach mainly rare earth elements other than scandium into the solvent. Relatively speaking, scandium is mainly contained in the residue. More specifically, the first leaching solution is obtained by adjusting the pH of the leaching solution obtained by contacting the steel slag with the first acid so that it falls within the first pH range. pH adjustment can be performed by controlling the amount of additional acid or base added while monitoring the pH of the leaching solution obtained by contacting the steel slag with the acid. Examples of acids include inorganic acids and organic acids, with inorganic acids being preferred. Specific examples of inorganic acids include sulfuric acid, nitric acid, and hydrochloric acid. From the viewpoint of the leaching rate of rare earth elements, hydrochloric acid and nitric acid are preferred, and from the viewpoint of the separation ratio of rare earth elements, typically the separation ratio of Sc and other rare earth elements, sulfuric acid and nitric acid are preferred. Figure 3 shows the relationship between the final pH of the leaching solution and the leaching rate of rare earth elements, plotting the rare earth elements separately for Sc and other elements. The charts show the leachate for nitric acid alone, sulfuric acid alone, and three types of mixed acids (nitric acid volume:sulfuric acid volume = 9:1, 5:5, and 1:9). Tables 1-5 are excerpts of the numerical data from each chart.

[0025] [Table 1]

[0026] [Table 2]

[0027] [Table 3]

[0028] [Table 4]

[0029] [Table 5]

[0030] Based on the chart in Figure 3 and the data in Tables 1-5, the inventors of this study have obtained the following findings. First, the behavior is almost the same regardless of the type of acid, i.e., nitric acid, sulfuric acid, and mixed acids thereof. Specifically, the difference in leaching rates between Sc and other rare earth elements begins to widen in the pH range of approximately less than 6.7, and this difference in leaching rates is observed up to the pH range of approximately 1.1 or higher. Furthermore, in the pH range of 1.1 or higher and less than 6.6, the difference in leaching rates between Sc and other rare earth elements is approximately 0.1% or more, which is preferable. In addition, in the pH range of 3.0 or higher and 5.3 or lower, the difference in leaching rates is approximately 5.0% or more, which is even more preferable.

[0031] Based on these findings, by controlling the pH of the leachate, it is possible to leave at least some rare earth elements with similar chemical properties, such as Sc, in the solid phase (residue), while leaching other rare earth elements, such as rare earth elements other than Sc, into the liquid phase (solvent). From the viewpoint of obtaining a high leaching rate of rare earth elements, a strong acid is preferable. From a similar viewpoint, the pK of the acid is also important. a The pH is preferably -2 or lower. One or more acids can be used. The acid concentration can be appropriately selected within the range in which the desired pH can be obtained, and is not particularly limited. Considering availability and ease of handling, the acid concentration of nitric acid may be 0.1 mol / L or more and 17.1 mol / L or less, and the acid concentration of sulfuric acid may be 0.1 mol / L or more and 18.7 mol / L or less. In this embodiment, the first acid includes nitric acid or sulfuric acid, and the first pH range is 1.1 or higher and less than 6.7. The first pH range may be adjusted as appropriate to obtain the desired difference in leaching rates. Specific numerical values ​​will be described later.

[0032] The following is an example of a specific method for carrying out leaching step 1(K). Steel slag is charged into the leaching reaction vessel, and the first acid is added. At this time, the solid-liquid ratio (mass ratio) of steel slag to acid is preferably 1:1 to 1:100. The pH of the added acid may be 1.0 or less. Since steel slag contains 10 to 70% by mass of calcium and magnesium oxides and hydroxides, the amount of acid to be initially added and its pH should be determined taking into account that these will neutralize the slag. One method for monitoring the pH is to immerse a pH sensor in the leaching solution obtained by contacting the steel slag with the acid and monitor the pH of the leaching solution as it occurs. It is also preferable to stir the solution as needed to ensure that the pH of the leaching solution is uniform. Furthermore, while rare earth elements can be sufficiently leached even under conditions where the leaching solution temperature is at room temperature (15-35°C) and the pressure is at atmospheric pressure (approximately 1013 hPa), the leaching of rare earth elements may be carried out while heating or pressurizing to increase the leaching rate. If the pH of the leachate is higher than the target final pH, the pH can be adjusted to the final pH by adding small amounts of acid while monitoring the pH value. On the other hand, if the pH of the leachate is lower than the target final pH, the pH can be adjusted to the final pH by adding small amounts of steel slag or a basic substance while monitoring the pH value. In this disclosure, the final pH of the leachate is the pH at which the rate of pH change becomes 1 / min or less after the addition of acid or base. Basic substances are not particularly limited, but examples include sodium hydroxide, potassium hydroxide, calcium hydroxide, and magnesium hydroxide. The final pH of leaching step 1(K) can be determined as appropriate depending on the purpose, and may be selected from within the first pH range, for example, from any combination of an upper limit of less than 7.0, 6.0, 5.5, 5.0, 4.5, or 4.0 and a lower limit of 0.0, 1.0, 1.5, 2.0, 2.5, or 3.0. With respect to the separation of scandium from other rare earth elements, the final pH may be adjusted as appropriate depending on the type of first acid. Furthermore, as shown in Figure 3, the separation behavior of scandium and other rare earth elements is almost the same regardless of the type of acid used, i.e., nitric acid, sulfuric acid, and a mixture thereof. Therefore, nitric acid, sulfuric acid, or a mixture thereof may be used, and the pH range may be set to 1.1 or higher and less than 6.7. In this pH range, the leaching rates of rare earth elements other than Sc differ, allowing only Sc to remain in the solid phase (residue) while the other rare earth elements leach into the liquid phase (solvent). Moreover, a pH range of 1.1 or higher and less than 6.6 is preferable. In this pH range, the difference in leaching rates between Sc and other rare earth elements can be approximately 0.1% or more. Furthermore, a pH range of 3.0 or higher and 5.3 or lower is even more preferable. In this pH range, the difference in leaching rates can be approximately 5.0% or more. When nitric acid is used as the first acid, the pH may be 1.2 or higher and less than 6.0, and within this pH range, the difference in leaching rates between Sc and other rare earth elements can be approximately 1.0% or more. A pH range of 3.4 or higher and 4.0 or lower is more preferable. Within this range, the leaching rates between Sc and other rare earth elements can be approximately 10.0% or more. When sulfuric acid is used as the first acid, the pH may be in the range of 1.1 or higher and less than 6.7, and within this pH range, the difference in leaching rates between Sc and other rare earth elements can be approximately 1.0% or more. Furthermore, a pH range of 3.6 or higher and 5.3 or lower is more preferable. Within this range, the leaching rates between Sc and other rare earth elements can be approximately 10.0% or more. When a mixed acid (9 parts nitric acid to 1 part sulfuric acid) is used as the first acid, the pH may be 1.2 or higher and less than 6.0. Within this pH range, the difference in leaching rates between Sc and other rare earth elements can be approximately 1.0% or more. A pH range of 3.4 or higher and 4.0 or lower is more preferable. Within this range, the leaching rates between Sc and other rare earth elements can be approximately 10.0% or more. When a mixed acid (5 parts nitric acid: 5 parts sulfuric acid) is used as the first acid, the pH may be 1.2 or higher and less than 6.3. Within this pH range, the difference in leaching rates between Sc and other rare earth elements can be approximately 1.0% or more. A pH range of 3.4 or higher and 4.0 or lower is more preferable. Within this range, the leaching rates between Sc and other rare earth elements can be approximately 10.0% or more. When a mixed acid (1 part nitric acid to 9 parts sulfuric acid) is used as the first acid, the pH may be 1.1 or higher and less than 6.6. Within this pH range, the difference in leaching rates between Sc and other rare earth elements can be approximately 1.0% or more. A pH range of 3.6 or higher and 5.3 or lower is more preferable. Within this range, the leaching rates between Sc and other rare earth elements can be approximately 10.0% or more. Depending on the desired degree of separation, the mixing ratio of nitric acid and sulfuric acid may be changed, and the range of the final pH may be further restricted. In one embodiment, from the viewpoint of improving the leaching rate of rare earth elements, the final pH is generally preferably low and may be selected from less than 7.0, 6.7 or less, 6.5 or less, 6.0 or less, 5.5 or less, or 5.0 or less. By appropriately selecting the final pH, the leaching rate of rare earth elements represented by the following formula (Formula 1) can be set within a desired range. [Rare earth element leaching rate (mass%)] = [Rare earth elements leached out (μg)] ÷ [Rare earth elements in steel slag (μg)] × 100 (Equation 1) In Equation 1, when focusing only on leaching process 1, the [leached rare earth elements] and [rare earth elements in steel slag] should be considered excluding scandium separated into the residue. Alternatively, when determining the leaching rate including scandium separated into the residue, the amount leached in leaching process 2 and the content contained in the steel slag, as explained later, should be considered.

[0033] <Leaching process 2, K2> In leaching step 2 (K2 in Figure 1), the residue generated in leaching step 1 is immersed in acid to leach rare earth elements (mainly scandium) that were not leached in leaching step 1 into the solvent. More specifically, a second leaching solution is obtained by adjusting the pH of the leaching solution obtained by contacting the residue generated in leaching step 1 with a second acid to a second pH range lower than that of leaching step 1. In leaching step 2, by adjusting the pH to achieve a second pH range lower than the first pH range in leaching step 1, rare earth elements (mainly scandium) that were not leached in leaching step 1 can be leached. pH adjustment can be performed by monitoring the pH of the leaching solution obtained by contacting the residue with acid and controlling the amount of additional acid or base added. Examples of acids include inorganic acids and organic acids, with inorganic acids being preferred. Specific examples of inorganic acids include sulfuric acid, nitric acid, and hydrochloric acid. From the viewpoint of obtaining a high leaching rate of rare earth elements, the acid is preferably a strong acid. From a similar perspective, the pK of acids a The pH is preferably -2 or lower. One or more acids can be used. The acid concentration can be appropriately selected within the range in which the desired pH can be obtained, and is not particularly limited. Considering availability and ease of handling, the acid concentration of nitric acid may be 0.1 mol / L or more and 17.1 mol / L or less, and the acid concentration of sulfuric acid may be 0.1 mol / L or more and 18.7 mol / L or less. In this embodiment, the second acid includes nitric acid or sulfuric acid, and the second pH range is -1.0 or higher. Furthermore, the second pH range is lower than the pH of the leachate from leaching step 1, i.e., less than the final pH of the leachate from leaching step 1. The second pH range may be adjusted as appropriate to obtain the desired leaching rate. Specific numerical values ​​will be described later.

[0034] The following is an example of a specific method for performing leaching step 2 (K2). The residue generated in leaching step 1 is charged into the leaching reaction vessel, and the second acid is added. At this time, the solid-liquid ratio (mass ratio) of the residue to the acid is preferably 1:1 to 1:100. The pH of the added acid may be 1.0 or less. The residue may contain oxides and hydroxides of calcium and magnesium that were contained in the steel slag, and the amount of acid to be initially added and its pH should be determined with the expectation that these will neutralize the residue. One method for monitoring the pH is to immerse a pH sensor in the leaching solution obtained by contacting the steel slag with the acid and monitor the pH of the leaching solution as it occurs. It is also preferable to stir the solution as needed to ensure that the pH of the leaching solution is uniform. Furthermore, while rare earth elements can be sufficiently leached even under conditions where the leaching solution temperature is at room temperature (15-35°C) and the pressure is at atmospheric pressure (approximately 1013 hPa), the leaching of rare earth elements may be carried out while heating or pressurizing to increase the leaching rate. If the pH of the leachate is higher than the target final pH, the pH can be adjusted to the final pH by adding small amounts of acid while monitoring the pH value. On the other hand, if the pH of the leachate is lower than the target final pH, the pH can be adjusted to the final pH by adding small amounts of steel slag or a basic substance while monitoring the pH value. In this disclosure, the final pH of the leachate is the pH at which the rate of pH change becomes 1 / min or less after the addition of acid or base. Basic substances are not particularly limited, but examples include sodium hydroxide, potassium hydroxide, calcium hydroxide, and magnesium hydroxide. The final pH of leaching step 2 (K2) can be determined as appropriate depending on the purpose, and may be selected from a range consisting of any combination of an upper limit of less than 7.0, 6.0, 5.5, 5.0, 4.5, or 4.0 and a lower limit of -1.0, -0.5, 0.0, 1.0, 1.5, 2.0, 2.5, or 3.0. In one embodiment, from the viewpoint of improving the leaching rate of rare earth elements, the final pH is generally preferably low and may be selected from less than 7.0, 6.7 or less, 6.5 or less, 6.0 or less, 5.5 or less, or 5.0 or less. The leaching rate of scandium in leaching step 2 can be determined by the following (Equation 1'). [Scandium leaching rate (mass%)] = [leached scandium (μg)] ÷ [scandium in the residue generated in leaching step 1 (μg)] × 100 (Formula 1’)

[0035] <Solid-liquid separation steps L, L’> Solid-liquid separation steps L, L’ are steps for separating solid components (residues) from the first leachate and the second leachate obtained in the leaching steps K, K2. In solid-liquid separation steps L, L’, the respective leachates obtained in the leaching steps K, K2 and the leaching residues can be physically separated. As separation methods, known solid-liquid separation devices such as continuous thickeners, deep cone thickeners, lamella thickeners, drum filters, disk filters, horizontal belt filters, filter presses, pressure filters, centrifugal separation, etc. may be used.

[0036] By subjecting the first leachate and the second leachate obtained by the leaching steps K, K2 and the solid-liquid separation steps L, L’ to an optional purification step, the purity of the elements (typically rare earth elements other than scandium and scandium) contained in each leachate can be further increased. Examples of optional purification steps include a pH adjustment step, extraction steps M, M’, precipitation steps N, N’, roasting steps O, O’, etc. Hereinafter, exemplary methods of each step will be described. Unless otherwise specified, in each purification step, “first” means that the first leachate is treated, and “second” means that the second leachate is treated.

[0037] <pH adjustment step> Although not an essential aspect, a base or an acid may be added to the first leachate and the second leachate that have undergone the leaching steps K, K2 or the solid-liquid separation steps L, L’ to adjust the pH to obtain respective pH-adjusted leachates. By setting the pH of the leachate between 0.5 and 8, the adsorption rate of rare earth elements to the solid phase in the solid phase extraction steps M1, M1’ described later is improved, and separation from the main components of steel slag such as calcium and magnesium becomes possible. <Extraction steps M, M’> Extraction steps M and M' are steps to extract rare earth elements from the leachate after, for example, the solid-liquid separation steps L and L', respectively, to obtain an elemental concentrate (typically, a rare earth element concentrate other than scandium, or a scandium concentrate). Extraction steps M and M' each preferably include one or both of the solid-phase extraction steps M1 and M1', which concentrate the rare earth elements by the principle of solid-phase extraction, and the solvent extraction steps M2 and M2', which concentrate the rare earth elements by the principle of solvent extraction. When using both the solid-phase extraction steps M1 and M1' and the solvent extraction steps M2 and M2', the order in which the rare earth element-containing leachate after the solid-liquid separation step is processed does not matter. In the extraction steps M and M' described above, using only one of the solid-phase extraction steps M1 and M1' or the solvent extraction steps M2 and M2' has the advantage of simplifying the equipment and recovering rare earth elements at a low cost, but the purity of the obtained rare earth elements will be lower compared to using both the solid-phase extraction steps M1 and M1' and the solvent extraction steps M2 and M2'. On the other hand, recovering rare earth elements using both the solid-phase extraction steps M1 and M1' and the solvent extraction steps M2 and M2' has the advantage of recovering rare earth elements with high purity, but the equipment will be larger and the equipment cost will be higher compared to using only one of the solid-phase extraction steps M1 and M1' or the solvent extraction steps M2 and M2'. The advantages and disadvantages above should be considered in order to choose the appropriate method depending on the purpose. For example, when using rare earth elements in applications where the inclusion of some impurities is not a problem, such as in mischmetal, one extraction step is sufficient. On the other hand, for applications where the purity of the product is particularly important, such as in the electronics industry, an extraction process combining solid-phase extraction steps M1 and M1' with solvent extraction steps M2 and M2' is preferable.

[0038] <Solid phase extraction process M1, M1'> The solid-phase extraction steps M1 and M1' are steps included in the extraction steps M and M', respectively, and include, for example, rare-earth element adsorption steps M11 and M11', cation removal steps M12 and M12', and rare-earth element elution steps M13 and M13', respectively. If necessary, solid-phase washing steps M14 and M14' can be performed in the solid-phase extraction steps M1 and M1', respectively. In the rare-earth element adsorption steps M11 and M11', for example, the leachate may be brought into contact with a solid-phase extractant, such as a solid phase made of a resin having iminodiacetic acid as a functional group, to adsorb cations onto the solid phase and obtain a cation-adsorbed solid phase. Subsequently, in the cation removal steps M12 and M12', for example, an inorganic acid of less than 0.3 N may be brought into contact with the cation-adsorbed solid phase to elute cations other than rare-earth elements from the solid phase and obtain a rare-earth element-adsorbed solid phase. In the rare earth element elution steps M13 and M13', for example, an inorganic acid of 0.3 N or more and less than 3 N may be brought into contact with the rare earth element adsorbed solid phase to elute the rare earth elements and obtain a rare earth element solid phase eluent. In the solid phase washing steps M14 and M14', for example, an inorganic acid of 3 N or more may be brought into contact with the solid phase that has gone through the rare earth element elution steps M13 and M13' to elute impurity cations. In principle, M1' targets only scandium contained in the residue generated in the leaching step 1, so it is possible to suppress the consumption of solid phase extractant, cation adsorbed solid phase, inorganic acid, etc., which is preferable.

[0039] Although not mandatory, the solid phases that have undergone solid phase washing steps M14 and M14' can be reused as the solid phase in the rare earth element adsorption steps M11 and M11', respectively. Repeated use of the solid phase reduces the consumption of resin with iminodiacetic acid as a functional group, which is economically advantageous. However, if the same solid phase is used repeatedly, the resin with iminodiacetic acid as a functional group will deteriorate, reducing its performance and decreasing its ability to separate impurities and rare earth elements. In this case, the performance can be restored to its original state by replacing it with a new resin with iminodiacetic acid as a functional group.

[0040] <Solvent extraction process M2, M2'> Solvent extraction steps M2 and M2' are steps included in extraction steps M and M', respectively, and include, for example, extraction steps M21 and M21' and back-extraction steps M22 and M22'. In extraction steps M21 and M21', for example, an organic solvent containing a solvent extractant may be mixed with the leachate to partition the rare earth elements into the organic solvent to obtain a rare earth element-containing organic phase. In back-extraction steps M22 and M22', for example, the rare earth element-containing organic phase obtained in extraction steps M21 and M21' may be mixed with water to partition the rare earth elements from the organic phase to the aqueous phase for back-extraction. In back-extraction steps M22 and M22', the pH may be adjusted as needed. The pH may be set to a pH suitable for the organic solvent used.

[0041] In the extraction steps M21, M21' and the back-extraction steps M22, M22', when mixing the organic phase and the aqueous phase, known solvent extraction devices such as centrifugal extractors and pulsed columns may be used.

[0042] The solvent extractants used in extraction steps M21 and M21' can be conventionally known extractants, such as carboxylic acid-based extractants like neodecanoic acid, organophosphate-based extractants like di(2-ethylhexyl)phosphate, tributyl phosphate, tetrabutylmethylenediphosphonate, and trioctylphosphine oxide, and amine-based extractants like triisooctylamine. The solvent extractants can be used without a solvent, or they can be dissolved in organic solvents that do not mix with water, such as kerosene, xylene, or toluene. The solvent extractants may also be added to the aqueous phase.

[0043] <Precipitation process N, N'> Precipitation steps N and N' are steps in which a precipitating agent is added to the element concentrate obtained, for example, through the extraction steps M and M', respectively, to obtain a precipitate containing the target element. Examples of precipitating agents include bases and acids. Examples of bases include metal-containing basic salts such as sodium hydroxide and potassium hydroxide, and organic bases such as tetramethylammonium hydroxide (TMAOH), but organic bases are preferred from the viewpoint of obtaining the target element with higher purity. Examples of acids include tartaric acid, carbonic acid, and oxalic acid, with oxalic acid being preferred.

[0044] In the aforementioned precipitation steps N and N', using oxalic acid as the precipitant has the advantage of efficiently separating impurities such as uranium, aluminum, and iron contained in the element concentrate from rare earth elements, but it has the disadvantage of having low separation efficiency between magnesium and calcium and rare earth elements. On the other hand, using a base as the precipitant has the advantage of efficiently separating impurities such as uranium, magnesium, and calcium contained in the element concentrate from rare earth elements, but it has the disadvantage of having low separation efficiency between iron and aluminum and rare earth elements. Since the impurities contained in the element concentrate vary depending on the composition of the steel slag, and the problematic impurity elements differ depending on the element to be precipitated, the precipitant should be selected according to the purpose.

[0045] The resulting precipitate and the post-precipitation solution can be physically separated. Known solid-liquid separation devices such as continuous thickeners, deep cone thickeners, lamellar thickeners, drum filters, disc filters, horizontal belt filters, filter presses, pressure filters, and centrifuges can be used for separation.

[0046] <Roasting process O, O'> The roasting steps O and O' are steps in which the precipitates obtained in the precipitation steps N and N' are roasted to obtain oxides of the target element, for example. The roasting steps O and O' may each include washing steps O1 and O1' and heating steps O2 and O2'. In washing steps O1 and O1', for example, the precipitates obtained in the precipitation steps N and N' may be washed with water to remove impurities, for example. In heating steps O2 and O2', for example, the precipitates that have gone through washing steps O1 and O1' may be heated to remove water, and volatile elements such as carbon, phosphorus, and nitrogen may be vaporized and removed, and then reacted with oxygen to obtain oxides of the target element, for example.

[0047] In the roasting processes O and O' described above, the roasting conditions are not limited, but for example, heating in a tubular furnace at approximately 900°C for about 2 hours is sufficient. Alternatively, by using a continuous furnace such as a rotary kiln, drying and roasting can be performed in the same apparatus, allowing for industrially efficient production of oxides. [Examples]

[0048] The present invention will be described in more detail below with reference to examples, but the present invention is not limited in any way to these descriptions.

[0049] (Example 1) Prior to the leaching process, 1 cm 3 4cm 3 Figure 4 shows an example of the particle size distribution of steel slag obtained by crushing steel slag with a particle size of a certain degree using a ball mill to increase its surface area (particle size between 0.5 μm and 500 μm). Table 6 shows, as an example, the elemental composition of the steel slag used in the experiment, determined by X-ray fluorescence analysis. In this example, blast furnace slag was the focus of the experiment. [Table 6]

[0050] Next, in leaching step 1, the steel slag was brought into contact with an acid (nitric acid or sulfuric acid) with a solid-liquid mass ratio of 1:100 to leach out the rare earth elements from the steel slag. During leaching, the pH of the leached solution was monitored to stay within the range of 1.1 to 10.2. If the pH was higher than the target pH (in other words, the final pH of leaching step 1), an acid was added; if the pH was lower than the target pH, a base was added. Referring to Figure 5, which schematically shows the leaching process for the examples and comparative examples, in leaching step 1, a liquid phase was generated in which rare earth elements other than Sc (i.e., Y, La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu) were mainly leached out. Furthermore, filtration separation was performed to separate the liquid phase and recover the solid phase mainly containing Sc. The filtrate collected in leaching step 1 was designated as leaching solution A (Figure 5).

[0051] Next, in leaching step 2, the solid phase recovered in leaching step 1 was brought into contact with nitric acid or sulfuric acid to leach Sc from the solid phase. (Similar to leaching step 1,) the pH of the leachate was monitored during leaching, and if the pH was higher than the target pH (in other words, the final pH of leaching step 2), an acid was added; if the pH was lower than the target pH, a base was added. Here, the target pH was set to -0.5. Referring to Figure 5, in leaching step 2, a liquid phase mainly composed of Sc was generated and separated from the solid phase by filtration. The filtrate collected in leaching step 2 was designated as leaching B (Figure 5).

[0052] Furthermore, as a comparative example, the extraction of rare earth elements using only a single leaching step, a conventional technique, was also performed. Specifically, the target pH (final pH) of leaching step 1 described above was set to a predetermined value (see Table 8), and the filtrate collected after filtration separation was designated as leaching solution C. (Figure 5)

[0053] Other than the conditions mentioned above for the leaching process were 24 hours of leaching, room temperature of 25°C, and atmospheric pressure of 1013 hPa. Furthermore, the present invention is not limited by these leaching times, temperatures, pressures, mass of steel slag, or amounts of added acid and base. In particular, separate experiments have shown that the reaction between blast furnace slag and acid is completed in a few minutes.

[0054] The obtained leachates A, B, and C were subjected to elemental analysis using an inductively coupled plasma mass spectrometer. The total amount of rare earth elements (total REE) in the steel slag was determined by completely dissolving the steel slag using acid decomposition and melting methods, and then measuring the resulting sample with the inductively coupled plasma mass spectrometer described above. The results are shown in Table 7. The data in Table 7 was collected using the same slag used for data collection in Tables 1 and 2, and the test conditions were kept the same as those in Tables 1 and 2. Therefore, although there are slight differences, the values ​​in Table 7 and Tables 1 and 2 generally agree.

[0055] [Table 7] *1: "Sc leaching rate" refers to the mass ratio of the amount of Sc leached into the leachate (leachate A or leachate B) in each leaching process to the amount of Sc contained in the original slag sample. *2: "Other leaching rate" refers to the mass ratio of the mass of other rare earth elements (rare earth elements other than Sc) leached into the leachate (leachate A or leachate B) in each leaching process 2 to the total mass of other rare earth elements (rare earth elements other than Sc) contained in the original slag sample. *3: The "Sc separation ratio" is the mass ratio of the mass of Sc leached into the leachate (leachate A or leachate B) in each leaching process to the total mass of REE leached into the leachate (leachate A or leachate B) in each leaching process.

[0056] Table 7 shows that performing both leaching process 1 and leaching process 2 promotes the separation of Sc compared to leaching process 1 alone. Specifically, the Sc separation ratio (Sc mass concentration in leachate A / total rare earth mass concentration) at the end of leaching process 1 is 0.005 to 0.058 for sulfuric acid and 0.005 to 0.056 for nitric acid. In contrast, by continuing with leaching process 2, the above Sc separation ratio (Sc mass concentration in leachate B / total rare earth mass concentration) becomes 0.060 or higher regardless of whether sulfuric acid or nitric acid is used, with the maximum Sc separation ratio being 0.113 for sulfuric acid and the maximum Sc separation ratio being 0.141 for nitric acid. In particular, in the case of sulfuric acid, when the pH in leaching step 1 is set to 3.6 or higher and less than 6.7, a Sc separation ratio of over 0.06 is obtained in leaching step 2, the Sc leaching rate is 20% by mass or more, and the leaching rate of rare earth elements other than Sc is 10% by mass or more. Furthermore, when the pH in leaching step 1 is set to 3.6 or higher and 5.3 or lower, the Sc separation ratio in leaching step 2 is 0.089 or higher. Furthermore, in the case of nitric acid, when the pH in leaching step 1 is set to 3.4 or higher and less than 6.0, a Sc separation ratio of over 0.06 is obtained in leaching step 2, with a Sc leaching rate of 70% by mass or more and a rare earth element leaching rate of 30% by mass or more. Moreover, when the pH in leaching step 1 is set to 3.4 or higher and 4.0 or lower, a Sc separation ratio of 0.102 or higher is obtained in leaching step 2.

[0057] To confirm that the present invention improves the ability to separate scandium from other rare earth elements, verification was performed using leachate B and leachate C. Specifically, the Sc-containing phase was recovered from leachate B and leachate C by solvent extraction, and the extent to which other rare earth elements were present was confirmed. A schematic diagram of a typical verification method is shown in Figure 6. • After adjusting leachates B and C into 1 mol / L nitric acid solutions, solvent extraction was performed by adding an organic solvent containing 10% by mass of tetrabutylmethylenediphosnate dissolved in toluene, separating the mixture into an aqueous phase and an organic phase. As a result, Sc contained in leachates B and C was extracted and separated into the organic phase. Most other rare earth elements were extracted and separated into the aqueous phase, but some were extracted and separated into the organic phase. Next, 10 mol / L of nitric acid is added to this organic phase (typically a phase mainly containing Sc, with small amounts of other rare earth elements) to perform back-extraction of Sc from the organic phase. The solvent used for back-extraction was separated into an aqueous phase and an organic phase. This back-extracted aqueous phase contains Sc and other rare earth elements. The back-extracted aqueous phase was recovered, and all rare earth elements, including Sc, were quantified. To evaluate the degree to which Sc and other rare earth elements were separated, the Sc purification rate, defined by Equation 2, was calculated. The calculation results are shown in Table 8. [Sc purification rate]= [Sc mass in the back-extracted aqueous phase] ÷ [Rare earth element mass in the back-extracted aqueous phase] (Formula 2)

[0058] [Table 8]

[0059] As is clear from Table 8, in leachate B, the amount of contamination by rare earth elements other than Sc was reduced by roughly separating Sc from other rare earth elements in leaching steps 1 and 2, and it was found that the Sc purification rate could be improved compared to comparative example leachate C.

[0060] Furthermore, since leachate A, collected in leaching step 1, contains relatively high amounts of rare earth elements other than Sc, namely Y, La, Ce, Pr, Nd, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, and Lu compared to Sc (Pm was omitted because it exists stably in nature in very small amounts), a recovered solution containing rare earth elements other than Sc can be prepared using known rare earth element purification techniques, such as solid-phase extraction using iminodiacetic acid or solvent extraction using di-2-ethylhexyl phosphate. Similarly, since leachate B, collected in leaching step 2, contains a relatively high amount of Sc, it was confirmed that a recovered solution containing Sc can be prepared by solvent extraction using known rare earth element purification techniques. Furthermore, the recovered solution containing relatively high amounts of rare earth elements other than Sc, and the recovered solution containing relatively high amounts of Sc, were back-extracted. A precipitating agent was added to these back-extracts in the same manner as in known precipitation processes, and the precipitate was recovered by filtration to recover the rare earth elements other than Sc, as well as Sc. In this example and comparative example, oxalic acid was used as the precipitating agent, but precipitation as hydroxide may also be performed using a basic reagent. After washing each precipitate, we confirmed that oxides of rare earth elements other than Sc, as well as Sc oxide, can be obtained by roasting to remove moisture. [Explanation of symbols]

[0061] K Leaching process 1 K2 Leaching process 2 L, L' solid-liquid separation process M, M' extraction process M1, M1' solid phase extraction process M2, M2' Solvent extraction process N,N' precipitation process O, O' solid-liquid separation process P, P' Roasting process P1, P1' Cleaning process P2, P2' heating process M11, M11' Rare earth element adsorption process M12, M12' Cation Removal Process M13, M13' rare earth element elution process M14, M14' Solid-phase cleaning process

Claims

1. A method for recovering scandium (Sc) from steel slag produced by the steelmaking process, A leaching step 1 involves contacting the aforementioned steel slag with a first acid and adjusting the final pH of the leached solution to be within a first pH range to obtain a first leached solution. A first solid-liquid separation step for separating solid components from the first leachate, A leaching step 2 is performed by contacting the solid components separated in the first solid-liquid separation step with a second acid to obtain a second leachate, and adjusting the second final pH of the leachate obtained to be within a second pH range lower than the final pH of leaching step 1, Includes, Here, the first acid and the second acid include nitric acid or sulfuric acid. The first pH range is 1.1 or higher and less than 6.7, and the second pH range is -1.0 or higher. A method for recovering scandium, characterized by the features described above.

2. The method for recovering scandium according to claim 1, wherein in the leaching step 1 and / or the leaching step 2, the pH of the first leachate and / or the second leachate is monitored while an acid or base is added to adjust the pH.

3. The method for recovering scandium according to claim 1, characterized in that the second pH range in the leaching step 2 is -0.5 or more and 3.3 or less.

4. The method for recovering scandium according to claim 1, wherein sulfuric acid is used as the first acid.

5. The method for recovering scandium according to claim 4, characterized in that the final pH of the leaching step 1 is 3.6 or higher and less than 6.

7.

6. The method for recovering scandium according to claim 4, characterized in that the final pH of the leaching step 1 is 3.6 or higher and 5.3 or lower.

7. The method for recovering scandium according to claim 1, wherein nitric acid is used as the first acid.

8. The method for recovering scandium according to claim 7, characterized in that the final pH of the leaching step 1 is 3.4 or higher and less than 6.

0.

9. The method for recovering scandium according to claim 7, characterized in that the final pH of the leaching step 1 is 3.4 or higher and 4.0 or lower.

10. A step of adjusting the pH of the first leachate and / or the second leachate obtained by solid-liquid separation of the first leachate and / or the second leachate separated in the first solid-liquid separation step by adding a base or an acid to each to obtain a first pH-adjusted leachate and / or a second pH-adjusted leachate, Extraction steps to obtain a first element concentrate concentrated with rare earth elements other than scandium and / or a second element concentrate concentrated with scandium, by treating the first pH-adjusted leachate and / or the second pH-adjusted leachate with either solvent extraction or solid-phase extraction, or both, respectively; A method for recovering scandium according to claim 1, including the following:

11. A method for recovering scandium according to claim 10, comprising a precipitation step of adding a precipitating agent to the first element concentrate and / or the second element concentrate, respectively, to obtain a first precipitate containing rare earth elements other than scandium and / or a second precipitate containing scandium.

12. A method for recovering scandium according to claim 11, comprising a roasting step of roasting the first precipitate and / or the second precipitate, respectively, to obtain a first oxide containing a rare earth element other than scandium and / or a second oxide containing scandium.

13. A method for recovering scandium according to claim 12, comprising a drying step of drying the first precipitate and / or the second precipitate, respectively.

14. The method for recovering scandium according to claim 10, characterized in that the solvent extractant used in the extraction step is an amine-based, organophosphoric acid-based, or carboxylic acid-based extractant.

15. The method for recovering scandium according to claim 10, characterized in that the solid-phase extractant used in the extraction step is a resin having iminodiacetic acid as a functional group.

16. The method for recovering scandium according to claim 11, characterized in that the precipitating agent used in the precipitation step is oxalic acid, carbonic acid, tartaric acid, or a base.

17. The method for recovering scandium according to claim 1, wherein the steel slag is blast furnace slag.

Citation Information

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