Reaction tank
The reaction tank's uneven distribution and stirring mechanisms facilitate the efficient recovery of dissolved metals from waste by enhancing separation and discharge processes.
Patent Information
- Application Number
- JP2024009570
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-01-25
- Publication Date
- 2025-08-06
AI Technical Summary
Existing technologies do not effectively address the separation and recovery of chemical solutions containing metals dissolved from waste after reaction, particularly in hydrometallurgical processes.
A reaction tank equipped with a storage container and a distribution mechanism that unevenly distributes waste materials within the container, combined with a stirring mechanism to agitate the chemical solution, facilitating the recovery of dissolved metals.
Enhances the recovery of metals by promoting uneven distribution and agitation, allowing for quicker separation and discharge of chemical solutions from waste materials.
Smart Images

Figure 2025115179000001_ABST
Abstract
Description
[Technical Field]
[0001] The subject matter disclosed herein relates to a reactor. [Background technology]
[0002] In recent years, metals such as rare metals and precious metals have been recovered from waste such as crushed E-waste (electronic waste). Technologies for recovering such metals are broadly classified into pyrometallurgy and hydrometallurgy. Pyrometallurgy is a method of recovering metals by melting waste in a high-temperature furnace, while hydrometallurgy is a method of recovering metals by dissolving them in a chemical solution such as an acid or alkali. In general, hydrometallurgy is more energy-efficient and environmentally friendly than pyrometallurgy. Hydrometallurgy methods are disclosed, for example, in Patent Document 1. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Special Publication No. 2021-501259 Summary of the Invention [Problem to be solved by the invention]
[0004] However, in the cited document 1, no consideration is given to the point of separating and recovering the chemical solution from the waste after the waste is reacted with the chemical solution.
[0005] An object of the present invention is to provide a technology that can easily recover chemical solutions containing metals dissolved from waste from a reaction tank. [Means for solving the problem]
[0006] In order to solve the above problem, the first aspect is a reaction tank for extracting target metals from waste, comprising a storage container capable of storing the waste and a chemical solution, and a distribution mechanism capable of distributing the waste in the storage container in one direction along a first direction.
[0007] A second aspect is the reaction tank of the first aspect, wherein the uneven distribution mechanism further includes a plate-shaped member extending in a second direction intersecting the first direction, and a moving member that moves the plate-shaped member back and forth in the first direction relative to the storage container.
[0008] A third aspect is the reaction tank of the first or second aspect, further comprising a stirring mechanism that stirs the chemical solution stored in the storage container.
[0009] A fourth aspect is the reaction vessel of the third aspect, wherein the stirring mechanism includes a spacer stand, a stirrer disposed inside the spacer stand, and a rotation drive unit that rotates the stirrer.
[0010] A fifth aspect is the reaction vessel of the fourth aspect, wherein the stirring mechanism further comprises a mesh member covering the outside of the spacer stand.
[0011] A sixth aspect is the reaction vessel of the first or second aspect, wherein the storage vessel is made of glass.
[0012] A seventh aspect is the reaction tank of the first or second aspect, further comprising a lid that closes the opening of the storage container.
[0013] An eighth aspect is the reaction vessel of the first or second aspect, wherein the storage container is formed with a pouring spout. [Effects of the Invention]
[0014] According to the reaction vessels of the first to sixth aspects, the waste is unevenly distributed in the storage container, which makes it easier to recover the metal dissolved in the chemical solution.
[0015] According to the reaction vessel of the second aspect, the waste can be unevenly distributed by the plate-like member.
[0016] According to the reaction vessel of the third aspect, the extraction of the target metal can be promoted by stirring the chemical solution.
[0017] According to the reaction vessel of the fourth aspect, a space for accommodating the stirring bar can be provided by the spacer stand.
[0018] According to the reaction vessel of the fifth aspect, the mesh member can prevent the waste from moving to the inside of the spacer stand, thereby preventing the waste from interfering with the rotation of the stirrer.
[0019] According to the reaction vessel of the seventh aspect, leakage of the chemical liquid in the reaction vessel to the outside can be reduced.
[0020] According to the reaction vessel of the eighth aspect, the chemical solution inside can be easily poured out through the spout. [Brief explanation of the drawings]
[0021] [Figure 1] FIG. 1 is a diagram showing the configuration of a reaction vessel according to one embodiment. [Figure 2] FIG. 2 is a perspective view showing a storage container of the reaction tank shown in FIG. [Figure 3] FIG. 1 is a diagram showing a reaction vessel during stirring. [Figure 4] FIG. 1 is a diagram showing a reaction vessel during solid-liquid separation. DETAILED DESCRIPTION OF THE INVENTION
[0022] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings. Note that the components described in the embodiment are merely examples and are not intended to limit the scope of the present invention. In the drawings, the dimensions and numbers of each part may be exaggerated or simplified as necessary to facilitate understanding.
[0023] <1. Embodiment> 1 is a diagram showing the configuration of a reaction vessel 1 according to one embodiment. The reaction vessel 1 is a container for extracting target metals contained in waste such as e-waste (electronic waste) using a chemical solution that dissolves the target metals.
[0024] The target metals are specifically rare metals or precious metals. Rare metals include indium, gallium, chromium, germanium, cobalt, zirconium, strontium, cesium, cerium, tungsten, tantalum, titanium, niobium, nickel, vanadium, palladium, platinum, manganese, and rhodium. Precious metals include gold, silver, platinum, and iridium.
[0025] The chemical is a liquid capable of dissolving the target metal contained in the waste. When the target metal is gold, platinum, or palladium, aqua regia can be used as the chemical. When the target metal is silver, nitric acid can be used as the chemical.
[0026] The reaction tank 1 has a storage container 11 and an uneven distribution mechanism 2. The storage container 11 is capable of storing therein a chemical solution that dissolves target metals contained in the waste. The storage container 11 is cylindrical with a bottom, and specifically has a plate-shaped bottom and a cylindrical (here, cylindrical) wall extending in a first direction from the top surface of the bottom.
[0027] The inner surface of the storage container 11 is resistant to chemicals. The storage container 11 can be made of a material such as a chemical-resistant resin (e.g., a fluororesin such as perfluoroalkoxyalkane (PFA), polychlorotrifluoroethylene (PCTFE), or polytetrafluoroethylene (PTFE)), glass, or the like.
[0028] In the following description, it is assumed that the reaction tank 1 is installed so that the bottom of the storage container 11 is approximately horizontal, and the first direction is parallel to the vertical direction. However, the first direction does not necessarily have to be parallel to the vertical direction, and may be parallel to a direction intersecting the vertical direction (for example, the horizontal direction).
[0029] The uneven distribution mechanism 2 is a mechanism that can unevenly distribute the waste in the storage container 11 vertically downward (one of the first directions). The uneven distribution mechanism 2 has a plate-shaped member 21 and a moving member 23. The plate-shaped member 21 is a member that extends in the horizontal direction (second direction). The plate-shaped member 21 has, for example, a flat, disk-like shape. The outer diameter of the plate-shaped member 21 is approximately the same as the inner diameter of the storage container 10.
[0030] The moving member 23 is a member for moving the plate-shaped member 21 back and forth in the vertical direction. The moving member 23 is rod-shaped and extends in the vertical direction, and the lower end of the moving member 23 is connected to the upper part of the plate-shaped member 21. The outer diameter of the moving member 23 is smaller than the outer diameter of the plate-shaped member 21. The plate-shaped member 21 and the moving member 23 are movable up and down relative to the storage container 11.
[0031] Furthermore, one or more through holes are formed in the plate-like member 21. By providing such through holes, the chemical solution 9L passes through the through holes, and the plate-like member 21 can move smoothly up and down in the chemical solution 9L.
[0032] The uneven distribution mechanism 2 further includes a mesh sheet 25. The mesh sheet 25 is a mesh-like member that covers the outside of the plate-shaped member 21. The mesh sheet 25 is formed of a chemical-resistant resin material. The mesh sheet 25 has a large number of holes that allow liquid to pass through while preventing the pulverized material 9 from passing through. By covering the plate-shaped member 21 with the mesh sheet 25, it is possible to reduce damage to the plate-shaped member 21 caused by the pulverized material 9 when the pulverized material 9 is crushed by the plate-shaped member 21.
[0033] The reaction tank 1 further has a lid 13. The lid 13 is a member that closes an opening provided at the top of the storage container 11. The lid 13 is positioned higher than the storage container 11. Annular flanges 111, 131 that protrude outward are provided at the top of the storage container 11 and the bottom of the lid 13. When the reaction tank 1 is in use, the flanges 111, 131 are fixed together with a clip or the like, thereby fixing the lid 13 to the storage container 11.
[0034] A through-hole through which the moving member 23 is inserted is formed in the center of the ceiling of the lid 13. An annular sealing member 133 is disposed in the through-hole. The sealing member 133 blocks the gap between the lid 13 and the moving member 23, thereby preventing the chemical solution in the storage container 11 from leaking from the through-hole of the lid 13. The sealing member 133 is formed, for example, from a chemical-resistant resin.
[0035] The moving member 23 protrudes outward from the lid portion 13. A user can move the moving member 23 up and down from outside the storage container 11 to move the plate-like member 21 up and down. The moving member 23 may also be moved up and down by a linear motion mechanism (not shown).
[0036] The reaction tank 1 has an agitation mechanism 3. The agitation mechanism 3 agitates the chemical solution in the storage container 11. The agitation mechanism 3 has a stirrer 31 and a rotation drive unit 33. The stirrer 31 is disposed on the bottom surface inside the storage container 11. The rotation drive unit 33 is disposed outside the storage container 11.
[0037] The stirring bar 31 is a rod-shaped member made of a magnet or a magnetically sensitive material. The rotation drive unit 33 generates a magnetic force that rotates the stirring bar 31. The rotation drive unit 33 has a magnet and a motor that rotates the magnet. The rotation drive unit 33 may also have an electromagnet. The rotation drive unit 33 has an exterior part with a horizontal upper surface, and the storage container 11 is placed on the upper surface of the exterior part.
[0038] The stirring mechanism 3 has a spacer stand 35 and a mesh sheet 37. The spacer stand 35 forms a space inside for accommodating the stirring bar 31. The spacer stand 35 has a ceiling portion 351 and legs 353 extending downward from the ceiling portion 351. The top plate-like member 351 of the spacer stand 35 is, for example, a ring-shaped member with an opening in the center. The legs 353 extend downward from the ceiling portion 351 and are in contact with the inner bottom surface of the storage container 11.
[0039] The mesh sheet 37 is a mesh-like member attached to the outside of the spacer base 35. The mesh sheet 37 has a large number of holes that are large enough to allow the chemical solution to pass through but prevent the pulverized waste from passing through. The mesh sheet 37 prevents the pulverized waste from moving inside the spacer base 35. The mesh sheet 37 is made of a chemical-resistant resin material.
[0040] 2 is a perspective view showing the storage container 11 of the reaction tank 1 shown in FIG. A spout 113 is formed at the top of the storage container 11. In this example, the spout 113 is formed at the opening at the top of the storage container 11. More specifically, the spout 113 is configured by a groove-like portion of the flange 111 that extends outward and is recessed downward. By providing such a spout 113, the solution in the storage container 11 can be easily discharged to the outside.
[0041] FIG. 3 is a diagram showing the reaction vessel 1 during stirring. As shown in FIG. 3, when extracting a target metal from waste, a chemical solution 9L and pulverized material 9E obtained by pulverizing the waste are introduced into a storage container 11. When the target metal is gold, for example, aqua regia heated to 90°C is used as the chemical solution 9L. As shown in FIG. 3, the plate-like member 21 of the uneven distribution mechanism 2 is positioned at a position (first position) above and spaced apart from the spacer stand 35. This provides a space between the spacer stand 35 and the plate-like member 21. In this state, the stirring mechanism 3 rotates the stirrer 31, thereby stirring the chemical solution 9L.
[0042] The extraction of the target metal can be promoted by stirring the chemical solution 9L with the stirring mechanism 3. Furthermore, because the ceiling portion 351 of the spacer stand 35 has an opening, a vortex can be generated above the spacer stand 35 when the stirring bar 31 is rotated. This allows the pulverized material 9E to be stirred above the spacer stand 35. Furthermore, by placing the stirring bar 31 inside the spacer stand 35 covered with the mesh sheet 37, the rotation of the stirring bar 31 can be prevented from being hindered by the settled waste.
[0043] FIG. 4 is a diagram showing the reaction tank 1 during solid-liquid separation. After the chemical solution 9L and the pulverized material 9E are sufficiently reacted in the storage container 11, the plate-like member 21 is brought close to the spacer stand 35, as shown in FIG. 4. This causes the pulverized material 9E in the chemical solution 9L to move toward the spacer stand 35. That is, the uneven distribution mechanism 2 allows the pulverized material 9E to be unevenly distributed downward in the storage container 11. In this state, the lid 13 is removed from the storage container 11, and the opening of the storage container 11 is released. This allows the chemical solution 9L to be discharged from the storage container 11 while leaving the pulverized material 9 in the storage container 11.
[0044] By unevenly distributing the pulverized material 9E using the uneven distribution mechanism 2, the chemical solution can be quickly discharged after the reaction. In particular, in the case of the reaction tank 1 of this embodiment, the pulverized material 9E can be settled faster than the natural settling rate. Therefore, the chemical solution 9L can be quickly discharged.
[0045] The outer diameter of the plate-shaped member 21 is approximately the same as the inner diameter of the storage container 10. Therefore, when the pulverized material 9E is pressed by the plate-shaped member 21, it is possible to reduce the likelihood that the pulverized material 9E will pass by the side of the plate-shaped member 21 and escape upward.
[0046] <2. Modifications> Although the embodiments have been described above, the present invention is not limited to the above and various modifications are possible.
[0047] For example, the stirring mechanism 3 is not limited to one that rotates the stirring bar 31. As an example, a stirring blade may be attached to the lower surface of the plate-like member 21. Then, the moving member 23 may be rotated to rotate the stirring blade together with the plate-like member 21, thereby stirring the chemical solution 9L and the pulverized material 9E.
[0048] It is not essential that spout 113 be provided on flange 111. For example, spout 113 may be formed in a tubular shape extending obliquely from the side surface of reservoir 11.
[0049] Furthermore, the pulverized material 9 may be placed on the top of the plate-like member 21. In this case, the plate-like member 21 can be pulled upward to cause the pulverized material 9 to be unevenly distributed upward.
[0050] Although the present invention has been described in detail, the above description is merely illustrative in all respects and does not limit the present invention. It is understood that countless variations not illustrated can be envisioned without departing from the scope of the present invention. The configurations described in the above embodiments and variations can be combined or omitted as appropriate as long as they are not mutually inconsistent. [Explanation of symbols]
[0051] 1: Reaction tank 2: Uneven distribution mechanism 3: Stirring mechanism 11: Storage container 13: Lid 21: Plate-shaped member 22: Moving parts 31: Stirring bar 33: Rotation drive unit 35: Spacer base 37: Mesh sheet (mesh material) 113: Spout
Claims
1. A reactor for extracting target metals from waste with a chemical solution, a storage container capable of storing the waste and the chemical solution; a distribution mechanism for distributing the waste in the chemical solution in one direction in a first direction in the storage container; A reaction vessel comprising:
2. 10. The reaction vessel of claim 1, The uneven distribution mechanism includes: a plate-like member extending in a second direction intersecting the first direction; a moving member that reciprocates the plate-like member in the first direction relative to the storage container; The reaction vessel further comprises:
3. The reaction vessel according to claim 1 or claim 2, a stirring mechanism for stirring the chemical solution stored in the storage container; The reaction vessel further comprises:
4. 4. The reaction vessel of claim 3, The stirring mechanism includes: A spacer base; A stirring bar disposed inside the spacer base; A rotation drive unit that rotates the stirring bar; A reaction vessel having
5. 5. The reaction vessel of claim 4, The stirring mechanism includes: a mesh member covering the outside of the spacer base; The reaction vessel further comprises:
6. The reaction vessel according to claim 1 or claim 2, The reaction vessel, wherein the storage vessel is made of glass.
7. The reaction vessel according to claim 1 or claim 2, a lid portion that closes the opening of the storage container; The reaction vessel further comprises:
8. The reaction vessel according to claim 1 or claim 2, A reaction vessel, wherein the reservoir vessel is formed with a spout.
9. A metal extraction method for extracting target metals from waste using a chemical solution, comprising: a) placing waste and chemicals into a storage container; b) stirring the chemical solution in the storage container; c) distributing the waste in the chemical solution unevenly in one direction of a first direction of the storage container by an uneven distribution mechanism; d) after step c), discharging the chemical solution from the storage container; A method for extracting metals, comprising:
Citation Information
Patent Citations
The process of recovering metals from electronic waste
JP2021501259A