Battery processing method and battery processing system

By charging and cooling lithium-ion batteries to deposit lithium on the negative electrode, the method efficiently recovers lithium, overcoming the laborious steps of traditional recovery methods.

JP2026069272APending Publication Date: 2026-04-23MAZDA MOTOR CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
MAZDA MOTOR CORP
Filing Date
2024-10-11
Publication Date
2026-04-23

AI Technical Summary

Technical Problem

Existing methods for recovering lithium from lithium-ion batteries are laborious, particularly in recovering lithium from the positive electrode active material, which requires multiple steps and solvent extractions.

Method used

A battery processing method that involves charging a portion of the lithium-ion battery while being cooled to induce lithium deposition on the negative electrode material, followed by dismantling and extracting lithium from the negative electrode.

Benefits of technology

Lithium is efficiently recovered from lithium-ion batteries without the need for complex solvent extractions, reducing labor and improving recovery efficiency.

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Abstract

This invention provides a battery processing method and a battery processing system that can efficiently recover lithium from lithium-ion batteries. [Solution] A battery processing method for processing a lithium-ion battery comprising a positive electrode material and a negative electrode material, the method comprising a lithium deposition step of charging a part of the lithium-ion battery while cooling it to deposit lithium on the negative electrode material.
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Description

Technical Field

[0001] The present invention relates to a battery processing method and a battery processing system.

Background Art

[0002] In recent years, the adoption of lithium-ion batteries as in-vehicle batteries for electric vehicles such as electric cars and hybrid vehicles has been expanding. Lithium-ion batteries contain valuable substances containing lithium. It is required to recycle resources by recycling valuable substances from used lithium-ion batteries.

[0003] The patent document 1 discloses a method of increasing the amount of lithium contained in the positive electrode material by discharging a used lithium-ion battery and then recovering lithium from the positive electrode material.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] The positive electrode material is generally composed of a current collector foil such as aluminum and a positive electrode active material formed thereon. The positive electrode active material contains valuable substances such as nickel, manganese, cobalt, etc. in the case of a ternary system (NMC), for example. To recover valuable substances from the positive electrode active material, the positive electrode material is roasted with a reducing agent, pulverized, and then black mass containing the positive electrode active material is sorted. Next, the black mass is subjected to solvent extraction step by step, and manganese, cobalt, and nickel are sequentially extracted, and finally lithium is extracted. Therefore, it has been particularly laborious to recover lithium.

[0006] The object of this invention is to provide a battery processing method and a battery processing system that can efficiently recover lithium from lithium-ion batteries. [Means for solving the problem]

[0007] The present invention A battery processing method for processing a lithium-ion battery containing a positive electrode material and a negative electrode material, A lithium deposition step is performed in which a portion of the lithium-ion battery is charged while being cooled, thereby depositing lithium on the negative electrode material. The present invention provides a battery processing method that includes [a specific component]. [Effects of the Invention]

[0008] According to the present invention, lithium can be efficiently recovered from the negative electrode of a lithium-ion battery. [Brief explanation of the drawing]

[0009] [Figure 1] A schematic block diagram illustrating the reuse system according to the first embodiment. [Figure 2] A perspective view showing the schematic configuration of a lithium-ion battery. [Figure 3] A cross-sectional view showing the general configuration of a battery cell. [Figure 4] A flowchart illustrating the general process of reusing lithium-ion batteries. [Figure 5] A schematic diagram illustrating an example of a cooling device according to the first embodiment. [Figure 6] A graph showing the relationship between the charge rate relative to the State of Charge (SOC) and the ease of lithium deposition at different cooling temperatures. [Figure 7] A schematic cross-sectional view showing an example of a cooling device according to the second embodiment. [Modes for carrying out the invention]

[0010] The inventors have diligently conducted research to efficiently recover lithium from lithium-ion batteries and have discovered that lithium can be efficiently recovered from lithium-ion batteries by intentionally inducing lithium deposition (e.g., dendrites), which is undesirable in normal charging reactions, on the negative electrode material. Based on this finding, the inventors have completed a battery processing method that can efficiently recover lithium from lithium-ion batteries.

[0011] A method for reusing lithium-ion batteries according to one embodiment of the present invention is: A battery processing method for processing a lithium-ion battery containing a positive electrode material and a negative electrode material, A lithium deposition step is performed in which a portion of the lithium-ion battery is charged while being cooled, thereby depositing lithium on the negative electrode material. It includes.

[0012] [First Embodiment] Hereinafter, a lithium-ion battery reuse system according to the first embodiment of the present invention will be described with reference to the attached drawings. Figure 1 is a schematic block diagram showing a lithium-ion battery reuse system 200. As shown in Figure 1, the reuse system 200 includes a reuse unit 10 that reuses a lithium-ion battery 1 that has been used primarily in, for example, an electric vehicle, and a recycling unit 20 that recovers lithium from the reused lithium-ion battery 1.

[0013] The reuse unit 10 reuses the lithium-ion battery 1, which has been used for its primary purpose, as an energy storage device. Generally, the degradation state of lithium-ion batteries for electric vehicles is determined based on the State of Health (SOH), which indicates how much capacity they have when fully charged compared to when they were new. If the lithium-ion battery 1 is determined to be unsuitable for use in an electric vehicle based on its degree of degradation, it is removed from the vehicle and used in the reuse unit 10 as an energy storage device for various secondary purposes, such as storing renewable energy such as solar power and wind power, or as a backup power source during disasters. For example, if the SOH falls below 70%, it may be determined that it is unsuitable for primary use, i.e., for use in an electric vehicle.

[0014] The reuse unit 10 includes a lithium-ion battery 1 that is secondarily used as a power storage device, a charging device 12, and a cooling device 201. The charging device 12 is configured to adjust voltage and current to charge the lithium-ion battery 1 in an arbitrary charging pattern. For example, the lithium-ion battery 1 can be continuously charged at a predetermined voltage and current, and can also be intermittently charged at a predetermined voltage and current (also referred to as pulse charging). The cooling device 201 is not limited and may be any type of cooling device. In this embodiment, a thermostatic chamber is adopted as the cooling device 201. The upper limit of the charging voltage by the charging device 12 is below the withstand voltage of the lithium-ion battery 1, for example, 4.3 V or less. For example, the cooling device 201 may be configured as a cooling chamber whose interior can be cooled, and the lithium-ion battery 1 may be cooled by accommodating the lithium-ion battery 1 in the cooling chamber.

[0015] When it is determined that the lithium-ion battery 1 cannot be properly used even in the above secondary use, for example, based on SOH, the recycling unit 20 includes a disassembling device 21 that disassembles the lithium-ion battery 1 into a positive electrode material 31, a negative electrode material 35, etc. through a lithium precipitation process described later, an extraction device 22 that extracts lithium from the disassembled negative electrode material 35, and a recovery device 23 that recovers the extracted lithium. For example, when the SOH becomes 40% or less, it may be determined that it cannot be properly used even in secondary use.

[0016] FIG. 2 schematically shows the lithium-ion battery 1 mounted on an electric vehicle. The lithium-ion battery 1 constitutes a battery pack in which battery modules 4 incorporate functions such as a charge / discharge circuit and a cooling mechanism, and further, a plurality of battery modules 4 are connected to each other and housed in a case. The battery module 4 is configured by connecting a plurality of battery cells 3 in series or in parallel to each other, and is adjusted to a desired capacity and voltage.

[0017] The lithium-ion battery 1 is a rechargeable lithium-ion secondary battery. In this specification, the term "lithium-ion battery" may collectively refer to battery cells, battery modules, and battery packs unless otherwise specified.

[0018] Figure 3 is a cross-sectional view schematically showing the battery cell 3. As shown in Figure 3, the battery cell 3 according to this embodiment is of a laminate type. The battery cell 3 has a laminated electrode body 38 in which a positive electrode material 31, a separator 34, and a negative electrode material 35 are laminated in this order in the stacking direction A, and a case 40 that houses the laminated electrode body 38.

[0019] In this embodiment, the laminated electrode body 38 is composed of a plurality of sets of the positive electrode material 31, the separator 34, and the negative electrode material 35 laminated in the stacking direction A. The battery cell 3 is rectangular in the width direction B and elongated when viewed from the stacking direction A.

[0020] The positive electrode material 31 has a positive electrode current collector 32 and a positive electrode active material 33 laminated on the surface of the positive electrode current collector 32 facing the separator 34. The plurality of positive electrode current collectors 32 have a positive electrode current collecting end portion 32a connected to each other at one end portion (the left side in Figure 3) in the width direction B orthogonal to the stacking direction. For the positive electrode current collector 32, a metal foil suitable for the positive electrode can be preferably used. For the positive electrode active material 33, a material used as the positive electrode active material of a lithium-ion secondary battery can be used. In this embodiment, the positive electrode current collector 32 is made of aluminum, and the positive electrode active material 33 is made of NMC (nickel, manganese, cobalt).

[0021] The negative electrode material 35 comprises a negative electrode current collector 36 and a negative electrode active material 37 laminated on the surface of the negative electrode current collector 36 facing the separator 34. Multiple negative electrode current collectors 36 have negative electrode current collector ends 36a connected to each other at their other ends (right side in Figure 3) in the width direction B. A metal foil suitable for a negative electrode can preferably be used for the negative electrode current collector 36. A material used as a negative electrode active material for lithium-ion secondary batteries can be used for the negative electrode active material 37. In this embodiment, the negative electrode current collector 36 is made of copper, and the negative electrode active material 37 is a carbon material (graphite) with a layered structure.

[0022] The positive electrode active material 33 and the negative electrode active material 37 contain an electrolyte 39. The electrolyte 39 is, for example, an organic solvent on which lithium ions can move. In this embodiment, the electrolyte 39 contains dimethyl carbonate (DMC), ethylene carbonate (EC), and diethyl carbonate (DEC) in a volume ratio of 1:1:1, and lithium hexafluoride phosphate (LiPF6) at a concentration of 1 mol / L.

[0023] The separator 34 is positioned between the positive electrode material 31 and the negative electrode material 35, physically and electrically separating them. The separator 34 may be a porous body having multiple minute pores through which lithium ions can pass. In this embodiment, the separator 34 is a porous membrane made of polyolefin.

[0024] Case 40 has a pair of first cases 41 and second cases 42 provided on both sides of the stacking direction A of the stacked electrode body 38. The first case 41 and the second case 42 are formed in a hat-shaped cross section. The first case 41 has a pair of flange portions 41a located at both ends in the width direction B, and a main body portion 41b located between the pair of flange portions 41a and bulging in a direction away from the second case 42 in the stacking direction A. Similarly, the second case 42 has a pair of flange portions 42a and a main body portion 42b bulging in a direction away from the first case 41.

[0025] Case 40 is formed by joining a first case 41 and a second case 42 with the positive electrode current collector end 32a and the negative electrode current collector end 36a sandwiched between their respective flange portions 41a and 42a. That is, with the laminated electrode body 38 housed in case 40, the positive electrode current collector end 32a and the negative electrode current collector end 36a are sandwiched between the pair of flange portions 41a and 42a, and the remaining portion of the laminated electrode body 38 is housed in the space defined between the pair of main body portions 41b and 42b. With the laminated electrode body 38 housed in case 40, it is pressed against the pair of main body portions 41b and 42b at a predetermined pressure in the stacking direction A. An example of the tab 43 according to the present invention is formed by the portion of the battery cell 3 sandwiched between the pair of flange portions 41a and 42a.

[0026] Next, the reuse of the lithium-ion battery 1 will be explained. Figure 4 is a flowchart that schematically shows the reuse process of the lithium-ion battery 1. As shown in Figure 4, if the lithium-ion battery 1 that was installed in the electric vehicle is determined to be in a deteriorated state that is unsuitable for use in the electric vehicle, for example based on the State of Health (SOH), a reuse process (step S1) is carried out. In reuse process S1, the lithium-ion battery 1 is removed from the electric vehicle and put to secondary use in the reuse unit 10.

[0027] When the lithium-ion battery 1 is used for secondary purposes and is determined to be in a predetermined state of degradation after being used as an energy storage device, the reuse section 10 performs a lithium deposition process (step S2) following the secondary use. In the lithium deposition process S2, lithium is deposited on the negative electrode material 35. In the lithium deposition process S2, the lithium-ion battery 1 is charged while being cooled in order to deposit lithium on the negative electrode material 35.

[0028] Figure 5 is a schematic diagram of the cooling device 201. Figure 5 also schematically shows the battery cell 3 that is cooled by the cooling device. As shown in Figure 5, the cooling device 201 is provided in pairs on both sides of the stacking direction A of the battery cell 3. Alternatively, one side of the pair of cooling devices 201 may be in a form in which a single cooler covers the entire width direction B of the battery cell 3, or, as shown in Figure 5, it may be in a form in which multiple pairs of cooler 202 are divided along the width direction B of the battery cell 3. In this embodiment, there is a central cooler pair 202A that cools the central part 3a of the battery cell 3, and cooler pairs 202B and 202C that cool both sides 3b and 3c of the battery cell 3. When the cooler pairs 202 are divided, they are not limited to three, but may be divided into two or four or more. For example, by cooling the battery cell 3 with only the central cooler pair 202A, lithium is preferentially deposited in the negative electrode material 35 located in the central part rather than at the ends in the width direction B. Furthermore, the coolers are not limited to a pair configuration; for example, they may be arranged only on one side of the stacking direction A (the upper or lower side in Figure 5).

[0029] To avoid the overall temperature becoming uniform due to continuous cooling of the lithium-ion battery, it is preferable to perform cooling by the cooling device 201 intermittently. Intermittent cooling can be achieved, for example, by incorporating a program into the cooling device 201 that repeats cooling and stopping at regular intervals. Alternatively, a program can be incorporated that monitors the temperature difference between the cooled and uncooled sections and continues cooling if the temperature difference is above a certain value (e.g., 3°C, 5°C, 7°C, 10°C, 15°C, 20°C, 25°C, or 30°C), and stops cooling if it is below that value.

[0030] In the lithium deposition process S2, the lithium-ion battery 1 is charged while being cooled by the cooling device 201 under predetermined cooling conditions. Here, the graph in Figure 6 shows the relationship between the State of Charge (SOC) and the charging rate (charging current) at which lithium begins to deposit, for each temperature. Specifically, lithium is more likely to deposit on the negative electrode material 35 when charging is performed on or above the curves for each temperature. SOC is an index that indicates the charge state of the battery, and represents the battery capacity when the fully charged state is 100% and the completely discharged state is 0%. As shown in Figure 6, lithium is more likely to deposit in the lithium-ion battery 1 as the SOC increases and / or as the temperature decreases.

[0031] Therefore, in the lithium deposition process S2, the lithium-ion battery 1 is charged at a charge rate and cooling temperature that allows lithium to be deposited on the negative electrode material 35. Preferably, the lithium-ion battery 1 is charged under charging conditions such that lithium begins to deposit only in the portion of the lithium-ion battery 1 that is being cooled. For example, by cooling a portion of the lithium-ion battery 1, lithium can be deposited on a portion of the negative electrode material 35 even if the charge rate is kept low.

[0032] The cooling temperature varies depending on the operating environment and type of the lithium-ion battery 1. For example, if the lithium-ion battery 1 is a so-called capacity type (also called energy type) installed in an electric vehicle, the cooling temperature may be 20°C or lower, 10°C or lower, 0°C or lower, -5°C or lower, -10°C or lower, -20°C or lower, or -30°C or lower, and may be -50°C or higher, -40°C or higher, -30°C or higher, -25°C or higher, or -20°C or higher. From the viewpoint of reliably depositing lithium in the cooling portion, a temperature of -10°C or lower is preferred. In addition, to prevent lithium from depositing throughout the entire lithium-ion battery 1 due to excessive cooling, a cooling temperature of -50°C or higher, or -40°C or higher, is preferred. In one embodiment, the cooling temperature may be between -40°C and 10°C.

[0033] In the lithium deposition step S2, the lithium-ion battery 1 only needs to be charged while it is cooled. The cooling of the lithium-ion battery 1 by the cooling device 201 and the charging of the lithium-ion battery 1 by the charging device 12 may start simultaneously, or one of them may start first. That is, after cooling by the cooling device 201 is performed, charging by the charging device 12 may be performed while the cooling state by the cooling device 201 is maintained.

[0034] Therefore, in the lithium deposition process S2, charging is performed while cooling a portion of the lithium-ion battery 1. As a result, lithium can be deposited on a portion of the negative electrode material 35 even without high-rate charging, and the charging current can be reduced, thus saving energy.

[0035] On the other hand, if the charging of the lithium-ion battery 1 while cooling a portion of it is not high-rate charging, the normal charging reaction may proceed in the uncooled portion, which could suppress lithium deposition in the cooled portion. Therefore, charging may be performed at a high rate.

[0036] In this specification, high-rate charging refers to charging with a large current that intentionally generates lithium in the negative electrode material 35 during charging.

[0037] For example, if the lithium-ion battery 1 is a capacity type, it is preferable to charge it with a current of, for example, 2C or more. Also, if the lithium-ion battery 1 is a so-called high-output type (also called a power type) installed in a hybrid vehicle, it is preferable to charge it with a current of, for example, 10C or more. Here, a current of 1C means the current required to fully charge each lithium-ion battery in one hour. High-rate charging allows for more efficient deposition of lithium on the negative electrode material 35 by continuously charging over a predetermined period of time.

[0038] In this specification, a lithium-ion battery 1 is described as a capacity-type battery if its energy density is 600 Wh / L or higher. A lithium-ion battery 1 is described as a high-power type battery if its power density (kW / kg or kW / L) is 4000 kW / L or higher.

[0039] If the charging current becomes excessive due to high-rate charging, undesirable side reactions may occur, such as gasification of the electrolyte 39 due to heat generation, deformation and damage to each component, and excessive charging current is undesirable from the standpoint of energy saving. For example, if the lithium-ion battery 1 is a capacity type, it is preferable to set the upper limit of the charging current to about 3C. On the other hand, if the lithium-ion battery 1 is a high-output type, it is preferable to set the upper limit of the charging current to about 20C.

[0040] Next, the lithium-ion battery 1 is removed from the reuse section 10 and the battery dismantling process (step S3) is performed by the dismantling device 21. In the battery dismantling process S3, the lithium-ion battery 1 is dismantled into its constituent components, such as the positive electrode material 31, separator 34, negative electrode material 35, and case 40. If the intention is to recover only lithium, at least the negative electrode material 35 may be dismantled. The dismantling device 21 may be any device that automatically dismantles the lithium-ion battery 1. Alternatively, the lithium-ion battery 1 may be dismantled manually using tools or the like without using the dismantling device 21.

[0041] Next, a lithium extraction process (step S4) is carried out. In lithium extraction process S4, lithium is extracted from the disassembled negative electrode material 35. In lithium extraction process S4, the negative electrode current collector 36 and negative electrode active material 37 are removed from the negative electrode material 35 by the extraction device 22, after which the negative electrode material 35 is leached with water and filtered, and an aqueous solution containing lithium ions is extracted.

[0042] Furthermore, by selectively subjecting the portion of the disassembled negative electrode material 35 that was cooled in the lithium deposition process S2 to the lithium extraction process S4, lithium can be extracted efficiently.

[0043] Finally, a lithium recovery process (step S5) is carried out. In lithium recovery process S5, lithium is recovered from an aqueous solution containing lithium ions. In lithium recovery process S5, the lithium is dissolved in carbonated water by the recovery device 23 and then filtered to recover lithium as lithium carbonate.

[0044] In other words, the battery processing method according to this embodiment is A battery processing method for processing a lithium-ion battery 1 comprising a positive electrode material 31 and a negative electrode material 35, A lithium deposition step S2 is performed in which lithium is deposited onto the negative electrode material 35 by charging the lithium-ion battery 1, Battery dismantling process S3 involves dismantling at least the negative electrode material 35 from the lithium-ion battery 1, Lithium recovery process S5 recovers lithium from the negative electrode material 35. It includes.

[0045] As a result, since the negative electrode material 35 is generally constructed by laminating graphite in layers on a current collector foil made of, for example, copper, it contains fewer valuable substances compared to the positive electrode material 31, which contains multiple types of valuable substances such as cobalt, nickel, and manganese. Therefore, lithium can be efficiently recovered from the negative electrode material 35 without the need for stepwise solvent extraction of multiple types of valuable metals, as is required when recovering lithium from the positive electrode material 31.

[0046] In the first embodiment described above, the lithium-ion battery 1 is provided in the form of a battery pack in the reuse process S1, and then the lithium deposition process S2 is carried out as an example, but the invention is not limited to this. The lithium-ion battery 1 may be provided in the form of a battery module 4 or a battery cell 3 in the reuse process S1 and / or the lithium deposition process S2.

[0047] [Second Embodiment] The second embodiment differs in that a second lithium deposition step S12 is used instead of the lithium deposition step S2 according to the first embodiment. In the second lithium deposition step S12, the cooling device 201 is a cooling device that cools the tab 43.

[0048] The reuse system 200 according to the second embodiment is equipped with a cooling device 201, similar to the reuse system 200 according to the first embodiment, and the lithium-ion battery 1 is supplied to the reuse section 10 in the form of a battery cell 3.

[0049] Figure 7 is a schematic diagram of the cooling device 201. Figure 7 also schematically shows the battery cell 3 being cooled by the cooling device via the tabs. As shown in Figure 7, the cooling device 201 is provided near the tabs 43 on both sides. By cooling the tabs 43, lithium can be preferentially deposited in the negative electrode material 35 in the area closer to the tabs 43. In a lithium-ion battery having multiple tabs 43, it is preferable to cool only one of the multiple tabs 43. By cooling only one tab, it becomes easier to identify the location in the negative electrode material 35 where lithium is preferentially deposited.

[0050] In the second embodiment described above, the lithium-ion battery 1 is provided in the form of a battery cell 3 in the reuse process S1, and then the second lithium deposition process S12 is carried out as an example, but the invention is not limited to this. The lithium-ion battery 1 may be provided in the form of a battery pack or battery module 4 in the reuse process S1 and / or the second lithium deposition process S12. In this case, a cooling device 201 may be pre-built inside the battery pack or battery module 4.

[0051] The lithium-ion battery 1 reuse system 200 relating to this disclosure is not limited to the configuration described in the above embodiment, and various modifications are possible.

[0052] In the above embodiment, a laminated lithium-ion battery was described as an example, but it is not limited to this. For example, a cylindrical or rectangular lithium-ion battery may be used, which is constructed by winding a strip-shaped laminated electrode body, in which a strip-shaped positive electrode material, a strip-shaped separator, and a strip-shaped negative electrode material are stacked in the stacking direction A, into a cylindrical or rectangular shape. In the case of cylindrical and rectangular batteries, the stacking direction corresponds to the radial direction perpendicular to the winding direction.

[0053] Although the explanation was given on a cell-by-cell basis, it can also be done on a module-by-module or battery pack-by-battery basis. If done on a battery pack basis, a pressing device, cooling device, etc. may be pre-installed inside the battery pack.

[0054] [Note] According to the lithium-ion battery 1 reuse system 200 relating to this disclosure, the following aspects are provided.

[0055] [Aspect 1] A battery processing method for processing a lithium-ion battery containing a positive electrode material and a negative electrode material, A battery processing method comprising a lithium deposition step, in which a portion of the lithium-ion battery is charged while being cooled, thereby depositing lithium on the negative electrode material.

[0056] [Aspect 2] The lithium-ion battery is constructed by stacking the positive electrode material and the negative electrode material in the stacking direction. In the lithium deposition process, the lithium-ion battery is charged while cooling a portion of the negative electrode material in a predetermined region when viewed in a plan view from the stacking direction. The battery processing method described in Embodiment 1.

[0057] [Aspect 3] In the lithium deposition process, the lithium-ion battery is charged while the tabs it has is cooled. The battery processing method according to embodiment 1 or 2.

[0058] [Aspect 4] In the lithium deposition process, cooling is performed intermittently. A battery processing method according to any one of embodiments 1 to 3.

[0059] [Aspect 5] In the lithium deposition process, charging is performed by high-rate charging. A battery processing method according to any one of embodiments 1 to 4.

[0060] [Aspect 6] The aforementioned battery processing method is: Following the lithium deposition step, a battery dismantling step is performed, in which at least the negative electrode material is dismantled from the lithium-ion battery. A lithium extraction step for extracting lithium from the negative electrode material, A battery processing method according to any one of embodiments 1 to 5, further including the above.

[0061] [Aspect 7] In the lithium extraction step, lithium is selectively extracted from the cooled portion of the lithium-ion battery. The battery processing method described in embodiment 6.

[0062] [Aspect 8] A battery processing apparatus for processing lithium-ion batteries containing a positive electrode material and a negative electrode material, A cooling device capable of cooling a portion of the lithium-ion battery, A charging device that charges batteries and A battery processing device, including a battery device.

[0063] [Aspect 9] The cooling device is capable of cooling the tabs of the lithium-ion battery. The battery processing apparatus according to embodiment 8.

[0064] [Aspect 10] The lithium-ion battery further contains an electrolyte, and is constructed by stacking the positive electrode material and the negative electrode material in a stacking direction. The cooling device is capable of cooling a portion of the plane perpendicular to the stacking direction. A battery processing apparatus according to embodiment 8 or 9. [Explanation of Symbols]

[0065] 1. Lithium-ion battery 3 battery cells 4 Battery Modules 10. Reuse Department 12 Charging device 20 Recycling Department 21 Demolition equipment 22 Extraction device 23 Recovery device 31 Positive electrode material 34 Separator 35. Negative electrode material 38. Stacked electrode body 39 Electrolyte 40 cases 200 Reuse Systems 201 Cooling device

Claims

1. A battery processing method for processing a lithium-ion battery containing a positive electrode material and a negative electrode material, A battery processing method comprising a lithium deposition step, in which a portion of the lithium-ion battery is charged while being cooled, thereby depositing lithium on the negative electrode material.

2. The lithium-ion battery is constructed by stacking the positive electrode material and the negative electrode material in the stacking direction. In the lithium deposition process, the lithium-ion battery is charged while cooling a portion of the negative electrode material in a predetermined region when viewed in a plan view from the stacking direction. The battery processing method according to claim 1.

3. In the lithium deposition process, the lithium-ion battery is charged while the tabs it has is cooled. The battery processing method according to claim 1.

4. In the lithium deposition process, cooling is performed intermittently. The battery processing method according to claim 1.

5. In the lithium deposition process, charging is performed by high-rate charging. The battery processing method according to claim 1.

6. The aforementioned battery processing method is: Following the lithium deposition step, a battery dismantling step is performed, in which at least the negative electrode material is dismantled from the lithium-ion battery. A lithium extraction step for extracting lithium from the negative electrode material, The battery processing method according to claim 1, further comprising:

7. In the lithium extraction step, lithium is selectively extracted from the cooled portion of the lithium-ion battery. The battery processing method according to claim 6.

8. A battery processing system for processing lithium-ion batteries, which include a positive electrode material and a negative electrode material, A cooling device capable of cooling a portion of the lithium-ion battery, A charging device that charges batteries and A battery processing system, including a battery processing system.

9. The cooling device is capable of cooling the tabs of the lithium-ion battery. The battery processing system according to claim 8.

10. The lithium-ion battery further contains an electrolyte, and is constructed by stacking the positive electrode material and the negative electrode material in a stacking direction. The cooling device is capable of cooling a portion of the plane perpendicular to the stacking direction. The battery processing system according to claim 8.

Citation Information

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