Calcium carbonate production method and system

The method addresses low purity in calcium carbonate production by using hydrochloric acid and bipolar membrane electrodialysis to separate impurities, resulting in high-purity calcium carbonate for various applications and reusable residue.

JP7780141B2Active Publication Date: 2025-12-04SUMITOMO OSAKA CEMENT CO LTD +2
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Patent Information

Application Number
JP2021141723
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-31
Publication Date
2025-12-04
Estimated Expiration
2041-08-31

AI Technical Summary

Technical Problem

Existing methods for producing calcium carbonate from calcium-containing waste result in low purity due to the presence of impurities, necessitating a method to produce high-purity calcium carbonate.

Method used

A method involving a calcium dissolving step with hydrochloric acid, a separation step to remove impurities like Si, Al, Mg, and heavy metals, and a calcium carbonate recovery step using potassium carbonate and/or sodium carbonate, facilitated by bipolar membrane electrodialysis to produce high-purity calcium carbonate.

Benefits of technology

The method enables the production of high-purity calcium carbonate with impurities effectively removed, suitable for use as a filler, soil conditioner, food additive, and raw material for cosmetics, while the residue can be reused in cement production.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method and system for producing calcium carbonate that can produce high purity calcium carbonate using calcium-containing waste.SOLUTION: A calcium carbonate production method for producing calcium carbonate from calcium-containing waste comprises a calcium dissolution step in which calcium is dissolved by adding hydrochloric acid water to the calcium-containing waste to produce an aqueous solution containing calcium ions, a separation step in which the hydrogen ion concentration index of the aqueous solution containing calcium ions is adjusted to separate, from the aqueous solution, components containing at least one component selected from the group consisting of Si, Al, Mg, and heavy metals, and a calcium carbonate recovery step in which calcium carbonate is produced using the aqueous solution obtained through the separation step and the aqueous solution containing potassium carbonate and / or sodium carbonate.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a method and system for producing calcium carbonate, and more particularly to a method and system for producing calcium carbonate from calcium-containing waste. [Background technology]

[0002] Calcium carbonate is used in a wide range of industrial fields, including as a filler for plastics, paper, and paints, as a soil conditioner for pesticides and fertilizers, as a food additive, and as a raw material for cosmetics. Calcium carbonate can be synthesized by blowing carbon dioxide into an aqueous solution of calcium hydroxide, or by mixing an aqueous solution containing calcium ions, such as calcium chloride, with an aqueous solution of sodium carbonate.

[0003] In recent years, calcium carbonate has been produced in the process of immobilizing carbon dioxide in order to reduce carbon dioxide, a greenhouse gas, as shown in Patent Document 1. In Patent Document 1, calcium-containing waste materials such as waste concrete, steel slag, and rocks are used to supply large amounts of calcium.

[0004] In Patent Document 1, nitric acid is used as a method for dissolving calcium from calcium-containing waste, but at this stage not only calcium is eluted but also other elements such as magnesium are dissolved in the aqueous solution. In Patent Document 1, an aqueous solution of sodium carbonate, which is produced by contacting sodium hydroxide with carbon dioxide, is introduced into an aqueous solution containing calcium nitrate or magnesium nitrate, thereby precipitating calcium carbonate or magnesium carbonate.

[0005] Patent Document 1 also discloses that sodium nitrate generated in the precipitation process of calcium carbonate or the like is used to produce nitric acid and sodium hydroxide, and that this sodium nitrate is subjected to bipolar membrane electrodialysis treatment.

[0006] However, when calcium-containing waste is used, there is a problem that the waste itself contains many impurities other than calcium, and the purity of the calcium carbonate produced is low. Furthermore, there was a demand for the production of calcium carbonate with high purity for use as a filler for plastics and other products. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-96975 Summary of the Invention [Problem to be solved by the invention]

[0008] An object of the present invention is to provide a method and system for producing calcium carbonate that solves the above-mentioned problems and is capable of producing high-purity calcium carbonate by utilizing calcium-containing waste. [Means for solving the problem]

[0009] In order to solve the above problems, the calcium carbonate production method and system of the present invention have the following technical features. (1) A method for producing calcium carbonate from calcium-containing waste, comprising: a calcium dissolving step of adding hydrochloric acid water to calcium-containing waste to dissolve calcium and produce an aqueous solution containing calcium ions; a separation step of adjusting the hydrogen ion concentration index of the aqueous solution containing calcium ions and separating from the aqueous solution a component containing at least one selected from the group consisting of Si, Al, Mg, and heavy metals; and a calcium carbonate recovery step of producing calcium carbonate using the aqueous solution obtained through the separation step and an aqueous solution containing potassium carbonate and / or sodium carbonate.

[0010] (2) In the method for producing calcium carbonate according to the above (1), the hydrochloric acid solution is produced by subjecting an aqueous solution containing potassium chloride and / or sodium chloride to bipolar membrane electrodialysis treatment, and the potassium chloride and / or sodium chloride is at least a part of the aqueous solution containing potassium chloride and / or sodium chloride produced in the calcium carbonate recovery step.

[0011] (3) The method for producing calcium carbonate according to the above (2), characterized in that an aqueous solution containing potassium hydroxide and / or sodium hydroxide is produced by the bipolar membrane electrodialysis treatment, carbon dioxide is brought into contact with the aqueous solution containing potassium hydroxide and / or sodium hydroxide to produce an aqueous solution containing potassium carbonate and / or sodium carbonate, and the aqueous solution containing potassium carbonate and / or sodium carbonate is used in the calcium carbonate recovery step.

[0012] (4) In the method for producing calcium carbonate according to the above (3), the carbon dioxide used is carbon dioxide discharged from a cement production facility.

[0013] (5) In the method for producing calcium carbonate according to any one of (1) to (4) above, the calcium-containing waste contains desalted dust obtained from a desalting bypass portion of a cement production facility.

[0014] (6) A calcium carbonate production system for producing calcium carbonate from calcium-containing waste, characterized by comprising: calcium dissolving means for adding hydrochloric acid water to calcium-containing waste to dissolve calcium and produce an aqueous solution containing calcium ions; separation means for adjusting the hydrogen ion concentration index of the aqueous solution containing calcium ions and separating from the aqueous solution a component containing at least one selected from the group consisting of Si, Al, Mg, and heavy metals; and calcium carbonate recovery means for producing calcium carbonate using the aqueous solution obtained through the separation means and an aqueous solution containing potassium carbonate and / or sodium carbonate.

[0015] (7) In the calcium carbonate production system described in the above (6), the hydrochloric acid water is produced from an aqueous solution containing potassium chloride and / or sodium chloride by a bipolar membrane electrodialysis treatment means, and the potassium chloride and / or sodium chloride is at least a part of the aqueous solution containing potassium chloride and / or sodium chloride produced by the calcium carbonate recovery means.

[0016] (8) The calcium carbonate production system according to (7) above, characterized in that an aqueous solution containing potassium hydroxide and / or sodium hydroxide is produced by the bipolar membrane electrodialysis treatment means, carbon dioxide is brought into contact with the aqueous solution containing potassium hydroxide and / or sodium hydroxide to produce an aqueous solution containing potassium carbonate and / or sodium carbonate, and the aqueous solution containing potassium carbonate and / or sodium carbonate is used in the calcium carbonate recovery means.

[0017] (9) In the calcium carbonate production system described in (8) above, the carbon dioxide used is carbon dioxide discharged from a cement production facility.

[0018] (10) In the calcium carbonate production system according to any one of (6) to (9) above, the calcium-containing waste contains desalted dust obtained from a desalting bypass portion of a cement production facility. [Effects of the Invention]

[0019] The present invention provides a calcium carbonate production method (production system) for producing calcium carbonate from calcium-containing waste, which comprises a calcium dissolving step (calcium dissolving means) of adding hydrochloric acid water to calcium-containing waste to dissolve calcium and produce an aqueous solution containing calcium ions; a separation step (separation means) of adjusting the hydrogen ion concentration index of the aqueous solution containing calcium ions and separating from the aqueous solution a component containing at least one selected from the group consisting of Si, Al, Mg, and heavy metals; and a calcium carbonate recovery step (calcium carbonate recovery means) of producing calcium carbonate using the aqueous solution obtained through the separation step (separation means) and an aqueous solution containing potassium carbonate and / or sodium carbonate, thereby making it possible to easily obtain calcium carbonate with high purity. In particular, various impurities can be easily removed simply by adjusting the hydrogen ion concentration index, so the process of producing calcium carbonate does not become complicated. The resulting residue can also be used in cement production. [Brief explanation of the drawings]

[0020] [Figure 1] FIG. 1 is a flow diagram of a method for producing calcium carbonate of the present invention. [Figure 2] FIG. 1 is a diagram showing a carbon dioxide fixation method using the calcium carbonate production method of the present invention. [Figure 3] 1 is a graph showing the change over time in the Ca extraction rate in fly ash (FA1) collected at a general waste incineration facility A. [Figure 4] 10 is a graph showing the change over time in the K extraction rate in FA1. [Figure 5] 1 is a graph showing the change over time in Cr extraction rate in FA1. [Figure 6] 1 is a graph showing the time change of Pb extraction rate in FA1. [Figure 7] 1 is a graph showing the change over time in the Si extraction rate in FA1. [Figure 8] 1 is a graph showing the change over time in Al extraction rate in FA1. [Figure 9] 1 is a graph showing the change in Mg extraction rate over time in FA1. [Figure 10] 1 is a graph showing the change over time in the Ca extraction rate in fly ash (FA2) collected at a general waste incineration facility B. [Figure 11] 1 is a graph showing the change over time in the Ca extraction rate in ready-mixed concrete sludge (CS1) collected in the drainage process of ready-mixed concrete factory A. [Figure 12] 1 is a graph showing the change over time in the Ca extraction rate in ready-mixed concrete sludge (CS2) collected in the drainage process of ready-mixed concrete factory B. DETAILED DESCRIPTION OF THE INVENTION

[0021] Hereinafter, the method and system for producing calcium carbonate of the present invention will be described in detail using preferred examples with reference to the drawings. As shown in FIG. 1 , the present invention is a calcium carbonate production method (calcium carbonate production system) for producing calcium carbonate from calcium (Ca)-containing waste, characterized by comprising: a calcium dissolving step (calcium dissolving means) of adding hydrochloric acid water to calcium-containing waste to dissolve calcium and produce an aqueous solution containing calcium ions; a separation step (separation means) of adjusting the hydrogen ion concentration index of the aqueous solution containing calcium ions and separating from the aqueous solution a component containing at least one selected from the group consisting of Si, Al, Mg, and heavy metals; and a calcium carbonate recovery step (calcium carbonate recovery means) of producing calcium carbonate using the aqueous solution obtained through the separation step (separation means) and an aqueous solution containing potassium carbonate and / or sodium carbonate. 1, double-lined arrows indicate the flow of solids, and single-lined arrows indicate the flow of liquids. The following explanation will focus on the method for producing calcium carbonate.

[0022] Examples of Ca-containing wastes that can be used in the present invention include incineration ash of general waste and industrial waste, fly ash discharged from thermal power plants, slag, waste concrete, ready-mix concrete sludge, and bioash. In particular, as will be described later, desalted dust obtained from the desalting bypass portion of a cement production facility contains potassium chloride components and can therefore be suitably used in the present invention.

[0023] The particle size of the calcium-containing waste is adjusted to 1000 μm or less, more preferably 500 μm or less and 100 μm or more, which makes it easier to extract calcium.

[0024] In the Ca dissolution step (Ca dissolution means), hydrochloric acid water is added to the Ca-containing waste whose particle size has been adjusted, and the hydrogen ion concentration index is adjusted to preferably within a range of pH 5 or less and pH 0.5 or more. In this case, washing water may be added as necessary. Washing is carried out in order to replace the liquid contained in the solid content with clean water during solid-liquid separation. The reaction time required for extracting Ca from Ca-containing waste is 120 minutes or less, more preferably 30 minutes or more and 60 minutes or less. It is also possible to carry out dissolution extraction in multiple stages, particularly in a multi-stage countercurrent flow.

[0025] The temperature of the aqueous solution containing hydrochloric acid during extraction of Ca is preferably room temperature or higher, more preferably in the range of 20° C. to 70° C. Since the membrane used in the bipolar membrane electrodialysis (BMED) treatment described below is an organic membrane, the temperature of the aqueous solution is set taking into consideration the heat resistance temperature of the membrane.

[0026] In the Ca dissolution step (Ca dissolution means), the residue is separated from an aqueous solution, and the residue can be used as a cement raw material in, for example, a cement manufacturing facility.

[0027] The aqueous solution containing Ca ions obtained in the Ca dissolution step (Ca dissolution means) contains impurity ions other than Ca, and in the separation step (separation means), the impurity ions are separated by adjusting the hydrogen ion concentration exponent. By adjusting the pH of the aqueous solution containing Ca ions obtained from the Ca dissolution step (Ca dissolution means) to, for example, pH 5 to 6 using sodium hydroxide or potassium hydroxide, it is possible to remove Si and Al ions contained in the aqueous solution containing Ca ions as a gel. Furthermore, if necessary, it is also possible to add wash water such as fresh water to wash the solid content. These gels can be used as cement raw materials.

[0028] Next, heavy metals such as Pb and Cr ions can be separated by adjusting the pH of the Ca ion-containing aqueous solution after removing the Si and Al ions to, for example, pH 7 to 10 using sodium hydroxide or potassium hydroxide. Furthermore, if necessary, cleaning water such as fresh water can be added to wash the solid content. If necessary, a flocculant can be added to the calcium ion-containing aqueous solution before removing heavy metals. Examples include polymer flocculants and inorganic flocculants. Inorganic flocculants include iron salts such as polyferric sulfate, and aluminum salts such as aluminum sulfate and polyaluminum chloride. Polymer flocculants can be anionic, nonionic, or cationic, depending on the pH and particle properties. Examples include polyacrylamide, sodium polyacrylate, and polyacrylic ester.

[0029] Furthermore, by adjusting the pH of the Ca ion-containing aqueous solution from which the heavy metal ions have been removed to 11 to 12 using sodium hydroxide or potassium hydroxide, it becomes possible to remove the contained Mg ions as a gel. Furthermore, if necessary, cleaning water such as fresh water can be added, and the solid content is washed by such cleaning.

[0030] By adding an aqueous solution containing potassium carbonate and / or sodium carbonate to an aqueous solution obtained by separating and removing the unnecessary impurities from a Ca ion-containing aqueous solution, high-purity calcium carbonate is produced, and the resulting solution is separated into calcium carbonate and an aqueous solution of potassium chloride and / or sodium chloride. In fact, when the purity of calcium carbonate was calculated from the weight loss at 550°C to 800°C using a thermal analyzer (TG), a value of 95.7% was obtained. The obtained calcium carbonate can be used as a filler for the above-mentioned plastics, paper, paints, etc., as a soil conditioner such as agrochemicals and fertilizers, as a food additive, or as a raw material for cosmetics. In the present invention, highly pure calcium carbonate that does not contain impurities such as magnesium carbonate can be obtained. Furthermore, these calcium carbonates can be used not only as a cement raw material but also as a cement extender.

[0031] FIG. 2 shows the calcium carbonate production method of FIG. 1, to which a step for immobilizing carbon dioxide has been added. In FIG. 2, double-lined arrows indicate the flow of solids, single-lined arrows indicate the flow of liquids, and dotted lines indicate the flow of gases. The hydrochloric acid solution used in the Ca dissolution step (Ca dissolution means) is produced by subjecting an aqueous solution containing potassium chloride and / or sodium chloride to a bipolar membrane electrodialysis (BMED) treatment (BMED treatment means). Furthermore, as the potassium chloride and / or sodium chloride, an aqueous solution containing potassium chloride and / or sodium chloride produced in the calcium carbonate recovery step (calcium carbonate recovery means) of FIG. 1 can be used.

[0032] The potassium chloride and / or sodium chloride generated in the calcium carbonate recovery step (calcium carbonate recovery means) (shown as "Ca recovery" in FIG. 2) can be subjected to pretreatment, such as removing fine particles with an MF membrane (filtration membrane) and concentrating the aqueous solution with an RO membrane (reverse osmosis membrane), as necessary.

[0033] Bipolar membrane electrodialysis (BMED) operates by electricity and produces aqueous solutions containing potassium hydroxide and / or sodium hydroxide in addition to hydrochloric acid.

[0034] Carbon dioxide is brought into contact with an aqueous solution containing potassium hydroxide and / or sodium hydroxide to absorb the carbon dioxide, thereby producing an aqueous solution containing potassium carbonate and / or sodium carbonate. This aqueous solution containing potassium carbonate and / or sodium carbonate can be used in the calcium carbonate recovery step (calcium carbonate recovery means) of FIG. The carbon dioxide can be carbon dioxide contained in combustion exhaust gas from thermal power plants and exhaust gas from cement manufacturing plants, or it can be carbon dioxide that is directly absorbed from the atmosphere and used.

[0035] In addition to the above-mentioned Ca-containing waste, desalted dust obtained from the desalting bypass portion of a cement manufacturing facility can also be suitably used. This is because desalted dust contains potassium chloride, and when used in the Ca dissolution process, as shown by arrow A, an aqueous solution containing potassium chloride is produced. Therefore, the aqueous solution circulating through the process of FIG. 2 contains more potassium chloride than sodium chloride. The potassium chloride is introduced into the bipolar membrane electrodialysis (BMED) means through the calcium carbonate recovery process (calcium carbonate recovery means) (Ca recovery). As the potassium chloride concentration increases, the current efficiency in the BMED improves, contributing to power saving.

[0036] Furthermore, because calcium-containing waste also contains sodium, continuing to recycle it as shown in Figure 2 will result in an increase in the sodium ion concentration. For this reason, blowdown wastewater is discharged midway through the route from calcium recovery to the BMED to maintain a constant sodium ion concentration. However, this blowdown wastewater also discharges potassium chloride, resulting in a shortage of potassium chloride (KCl) in the treatment process (treatment system). To compensate for this, it is more effective to use desalted dust containing potassium chloride as calcium-containing wastewater.

[0037] In addition, the desalted dust can be washed with water to produce an aqueous solution containing potassium chloride, and after undergoing water treatment to remove impurities, can be supplied between the separation process and the calcium carbonate recovery process, as shown by arrow B in Figure 2. Note that in the treatment process of Figure 2, the aqueous solution containing potassium chloride obtained from the desalted dust can also be introduced into the path from the blown wastewater to the BMED. The washed desalted dust can be dehydrated and the dehydrated cake can be returned to the cement manufacturing process as a cement raw material.

[0038] Figures 3 to 9 show the time course of the extraction rate of Ca and other elements from fly ash (FA1) collected at municipal waste incineration plant A. The extraction rate refers to the ratio of the amount of dissolved components to the total amount of components contained in the waste. The particle size of the fly ash was set to 150 μm (Fig. 3 only) and 500 μm, and the extraction rate was measured at aqueous solution temperatures of room temperature (20°C) and 40°C (Fig. 3 only), with hydrogen ion concentration exponents of pH 0.5, 1, 2, 3, and 6. 3 shows Ca, FIG. 4 shows K, FIG. 5 shows Cr, FIG. 6 shows Pb, FIG. 7 shows Si, FIG. 8 shows Al, and FIG. 9 shows Mg.

[0039] Referring to Figure 3, the pH required for Ca extraction is 3 or less. The Ca extraction rate changes slowly with reaction time (elapsed time) after 30 minutes, especially after 60 minutes, and it can be seen that Ca dissolution and extraction is nearly complete after 30 minutes. Furthermore, as a general trend, when comparing pH 1 and 3, the smaller the particle size, the higher the extraction rate, and when comparing pH 1, it can be seen that the higher the temperature of the aqueous solution, the higher the extraction rate.

[0040] 4 to 9, K, Cr, Pb, Si, Al, and Mg all dissolve sufficiently after 30 minutes at a pH of 3 or less. Therefore, it is essential to effectively remove these impurity ions from Ca.

[0041] Figure 10 shows fly ash (FA2) collected from general waste incineration facility B, Figure 11 shows ready-mixed concrete sludge (CS1) collected from the wastewater treatment process of ready-mixed concrete factory A, and Figure 12 shows ready-mixed concrete sludge (CS2) collected from the wastewater treatment process of ready-mixed concrete factory B. These graphs show the change in the Ca extraction rate of each sample over time. The pH of the aqueous solution was set to 0.5, 1, 3, and 6, the particle size to 150 μm and 500 μm, and the aqueous solution temperature to room temperature (20°C) and 40°C.

[0042] As with Figure 3, the fly ash in Figure 10 also has a high Ca extraction rate at pH 3 or less, more preferably pH 1 or less. In the case of the raw concrete sludge shown in Figures 11 and 12, the Ca extraction rate is high even at pH 6 or below. In both cases, the change in the extraction rate slows down after 30 minutes. Also, the smaller the particle size and the higher the temperature of the aqueous solution, the higher the extraction rate tends to be. [Industrial Applicability]

[0043] As described above, according to the present invention, it is possible to provide a method and system for producing calcium carbonate that utilize calcium-containing waste and are capable of producing calcium carbonate with high purity. The resulting residue can be used as a raw material for cement, etc.

Claims

1. A method for producing calcium carbonate from calcium-containing waste, comprising: a calcium dissolution step of adding hydrochloric acid water to calcium-containing waste to dissolve calcium and generate an aqueous solution containing calcium ions; a separation step of adjusting the pH of the calcium ion-containing aqueous solution to 5 to 6 to separate the Si and / or Al component, and further adjusting the pH to 11 to 12 to separate the Mg component; a calcium carbonate recovery step of producing calcium carbonate using the aqueous solution obtained through the separation step and an aqueous solution containing potassium carbonate and / or sodium carbonate.

2. 2. The method for producing calcium carbonate according to claim 1, wherein the hydrochloric acid solution is produced by subjecting an aqueous solution containing potassium chloride and / or sodium chloride to bipolar membrane electrodialysis treatment, and the potassium chloride and / or sodium chloride is at least a part of the aqueous solution containing potassium chloride and / or sodium chloride produced in the calcium carbonate recovery step.

3. 3. The method for producing calcium carbonate according to claim 2, characterized in that an aqueous solution containing potassium hydroxide and / or sodium hydroxide is produced by the bipolar membrane electrodialysis treatment, carbon dioxide is brought into contact with the aqueous solution containing potassium hydroxide and / or sodium hydroxide to produce an aqueous solution containing potassium carbonate and / or sodium carbonate, and the aqueous solution containing potassium carbonate and / or sodium carbonate is used in the calcium carbonate recovery step.

4. 4. The method for producing calcium carbonate according to claim 3, wherein the carbon dioxide used is carbon dioxide discharged from a cement production facility.

5. 5. The method for producing calcium carbonate according to claim 1, wherein the calcium-containing waste material includes desalted dust obtained from a desalting bypass portion of a cement production facility.

6. A calcium carbonate production system for producing calcium carbonate from calcium-containing waste, a calcium dissolving means for adding hydrochloric acid water to calcium-containing waste to dissolve calcium and generate an aqueous solution containing calcium ions; a separation means for adjusting the pH of the aqueous solution containing calcium ions to a pH of 5 to 6 to separate the Si and / or Al components, and further adjusting the pH to 11 to 12 to separate the Mg components; a calcium carbonate recovery means for producing calcium carbonate using the aqueous solution obtained through the separation means and an aqueous solution containing potassium carbonate and / or sodium carbonate.

7. 7. The calcium carbonate production system according to claim 6, wherein the hydrochloric acid solution is produced from an aqueous solution containing potassium chloride and / or sodium chloride by a bipolar membrane electrodialysis treatment means, and at least a part of the aqueous solution containing potassium chloride and / or sodium chloride produced by the calcium carbonate recovery means is used as the potassium chloride and / or sodium chloride.

8. 8. The calcium carbonate production system according to claim 7, wherein an aqueous solution containing potassium hydroxide and / or sodium hydroxide is produced by the bipolar membrane electrodialysis treatment means, carbon dioxide is brought into contact with the aqueous solution containing potassium hydroxide and / or sodium hydroxide to produce an aqueous solution containing potassium carbonate and / or sodium carbonate, and the aqueous solution containing potassium carbonate and / or sodium carbonate is used for the calcium carbonate recovery means.

9. 9. The calcium carbonate generating system according to claim 8, wherein the carbon dioxide used is carbon dioxide discharged from a cement manufacturing facility.

10. 10. The calcium carbonate production system according to claim 6, wherein the calcium-containing waste material includes desalted dust obtained from a desalting bypass portion of a cement production facility.

Citation Information

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