Electrode assembly manufacturing method

The method addresses cracking in electrode assemblies by using radiant heat and hot air with controlled gradients to tailor drying conditions, ensuring efficient and crack-free drying of electrode assemblies.

JP7806772B2Active Publication Date: 2026-01-27TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2023140660
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-08-31
Publication Date
2026-01-27
Estimated Expiration
2043-08-31

AI Technical Summary

Technical Problem

Drying an electrode assembly with different surfaces requiring varying heating conditions can lead to cracking, particularly when the negative electrode composite becomes brittle under bone-dry conditions.

Method used

A method involving radiant heat and hot air heating with controlled temperature and dew point gradients to dry the electrode assembly, where one surface is heated by radiant heat and the other by hot air, tailored to the specific moisture removal needs of each electrode composite.

Benefits of technology

This method effectively suppresses cracking in the electrode assembly by ensuring appropriate heating conditions for both surfaces, achieving efficient drying without brittleness.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a manufacturing method of an electrode body, capable of suppressing the generation of cracking of the electrode body.SOLUTION: A manufacturing method of an electrode body of a bipolar structure having a collector, a positive electrode layer arranged on a first surface of the collector, and a negative electrode layer arranged on a second surface of the collector, includes: a preparation step of applying a positive electrode mixture to the first surface of the collector, applying a negative electrode mixture to the second surface of the collector, to prepare a workpiece having the collector, the positive electrode mixture, and the negative electrode mixture; and a drying step of drying the workpiece while transporting it. In the drying step, one surface of the workpiece is heated by a radiation heat, and the other surface of the workpiece is heated by a heat air, and thereby the workpiece is dried.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a method for manufacturing an electrode assembly. [Background technology]

[0002] Various techniques have been proposed for manufacturing an electrode assembly such as that disclosed in Patent Document 1. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2020-145034 Summary of the Invention [Problem to be solved by the invention]

[0004] When drying an electrode assembly for a bipolar battery, in which a positive electrode composite and a negative electrode composite are coated on both sides of a current collector, different heating conditions may be required for the top and bottom surfaces of the electrode composite. For example, if the electrode assembly is dried under bone-dry conditions for the positive electrode composite, the negative electrode composite on the back side may become brittle and crack. A drying method suitable for such cases is needed.

[0005] The present disclosure has been made in view of the above-described circumstances, and has as its main object to provide a method for manufacturing an electrode assembly that can suppress the occurrence of cracks in the electrode assembly. [Means for solving the problem]

[0006] That is, the present disclosure includes the following aspects. <1> A method for manufacturing a bipolar electrode assembly including a current collector, a positive electrode layer disposed on a first surface of the current collector, and a negative electrode layer disposed on a second surface of the current collector, a preparation step of applying a positive electrode composite material to the first surface of the current collector and applying a negative electrode composite material to the second surface of the current collector to prepare a workpiece including the current collector, the positive electrode composite material, and the negative electrode composite material; a drying step of drying the workpiece while transporting it, In the drying step, one surface of the workpiece is heated by radiant heat and the other surface of the workpiece is heated by hot air, thereby drying the workpiece.

[0007] <2> The temperature of the hot air is lower than the temperature of the radiant heat. <1> A method for manufacturing the electrode assembly according to claim 1.

[0008] <3> In the drying step, one surface of the workpiece is heated by the radiant heat and the hot air, and the other surface of the workpiece is heated by the hot air. <1> A method for manufacturing the electrode assembly according to claim 1.

[0009] <4> In the drying step, the temperature of the hot air that heats one side of the workpiece is higher than the temperature of the hot air that heats the other side of the workpiece. <3> A method for manufacturing the electrode assembly according to claim 1.

[0010] <5> In the drying step, the dew point of the hot air that heats one side of the workpiece is lower than the dew point of the hot air that heats the other side of the workpiece. <3> A method for manufacturing the electrode assembly according to claim 1. [Effects of the Invention]

[0011] The manufacturing method of the electrode assembly according to the present disclosure can suppress the occurrence of cracks in the electrode assembly. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 2 is a schematic diagram illustrating an example of a drying step according to the present disclosure. [Figure 2] FIG. 2 is a schematic diagram showing an example of a workpiece, a laser, and hot air in the drying furnace shown in FIG. 1. [Figure 3] FIG. 2 is a schematic diagram showing another example of the drying step of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, embodiments of the present disclosure will be described. It should be noted that matters other than those specifically mentioned in this specification that are necessary for implementing the present disclosure (for example, the general configuration and manufacturing process of the electrode body that do not characterize the present disclosure) can be understood as design matters for those skilled in the art based on the prior art in the relevant field. The present disclosure can be implemented based on the contents disclosed in this specification and the common general technical knowledge in the relevant field. Furthermore, the dimensional relationships (length, width, thickness, etc.) in the drawings do not reflect the actual dimensional relationships.

[0014] The present disclosure provides a method for manufacturing a bipolar electrode assembly including a current collector, a positive electrode layer disposed on a first surface of the current collector, and a negative electrode layer disposed on a second surface of the current collector, the method comprising: a preparation step of applying a positive electrode composite material to the first surface of the current collector and applying a negative electrode composite material to the second surface of the current collector to prepare a workpiece including the current collector, the positive electrode composite material, and the negative electrode composite material; a drying step of drying the workpiece while transporting it, In the drying step, one surface of the workpiece is heated by radiant heat and the other surface of the workpiece is heated by hot air, thereby drying the workpiece.

[0015] In the present disclosure, in the drying process, the side of the workpiece where more moisture needs to be removed is heated intensively using radiant heat from a laser or the like, while the side where gentler heating conditions are required is heated using hot air, thereby making it possible to change the heating conditions on the front and back of the workpiece and suppressing cracking of the electrode body.

[0016] The method for manufacturing an electrode assembly according to the present disclosure includes (1) a preparation step and (2) a drying step.

[0017] (1) Preparation process The preparation process is a process of applying a positive electrode composite to the first surface of the current collector and applying a negative electrode composite to the second surface of the current collector, thereby preparing a workpiece including the current collector, the positive electrode composite, and the negative electrode composite.

[0018] Examples of materials for the current collector include metals such as aluminum, copper, SUS, and nickel. The thickness of the current collector is, for example, 0.1 μm or more and 100 μm or less. The current collector may be in the form of a sheet or the like.

[0019] The positive electrode mixture can be prepared by applying it to a first surface of a current collector. The positive electrode mixture may be a positive electrode paste prepared by mixing positive electrode materials including a positive electrode active material, a binder, a conductive material, an electrolyte, a thickener, and the like together with a solvent such as water. The negative electrode mixture can be prepared by applying it to the second surface, which is the surface opposite to the first surface, of the current collector. The negative electrode mixture may be a negative electrode paste prepared by mixing negative electrode materials including a negative electrode active material, a binder, a conductive material, an electrolyte, a thickener, and the like, together with a solvent such as water. The amount of the positive electrode paste and the negative electrode paste applied to the current collector is, for example, 30 to 80 mg / cm. 2 may be. The viscosity of the positive electrode paste and the negative electrode paste may be, for example, 5000 to 50000 mPa·S. The positive electrode paste and the negative electrode paste may contain moisture of about 10,000 ppm or less.

[0020] Examples of the positive electrode active material include oxide active materials, such as LiCoO2, LiMnO2, LiNiO2, LiVO2, and LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2, etc., rock salt layered active materials, LiMn2O4, Li(Ni 0.5 Mn 1.5 )O4, and olivine type active materials such as LiFePO4, LiMnPO4, LiNiPO4, and LiCuPO4.

[0021] Examples of the negative electrode active material include carbon active material, oxide active material, and metal active material. Examples of the carbon active material include mesocarbon microbeads (MCMB), highly oriented graphite (HOPG), hard carbon, and soft carbon. Examples of the oxide active material include Nb2O5, Li4Ti5O 12 and SiO. Examples of the metal active material include In, Al, Si, and Sn.

[0022] Examples of binders include fluorine-containing binders such as polyvinylidene fluoride (PVDF) and polytetrafluoroethylene (PTFE), rubber-based binders such as butadiene rubber, and acrylic-based binders.

[0023] Examples of conductive materials include carbon materials, metal particles, conductive polymers, etc. Examples of carbon materials include particulate carbon materials such as acetylene black (AB) and ketjen black (KB), and fibrous carbon materials such as carbon fibers, carbon nanotubes (CNT), and carbon nanofibers (CNF).

[0024] Examples of thickeners include polysaccharides such as carboxymethyl cellulose and methyl cellulose.

[0025] Examples of the electrolyte include inorganic solid electrolytes such as sulfide solid electrolytes and oxide solid electrolytes. Examples of the sulfide solid electrolyte include solid electrolytes containing Li, X (where X is at least one of P, As, Sb, Si, Ge, Sn, B, Al, Ga, and In), and S. The sulfide solid electrolyte may further contain at least one of O and a halogen element. Examples of the halogen element include F, Cl, Br, and I.

[0026] Examples of oxide solid electrolytes include Li2O-B2O3-P2O5, Li2O-SiO2, Li2O-B2O3, and Li1.3 Al 0.3 Ti 0.7 (PO4)3, Li5La3Ta2O 12 , Li7La3Zr2O 12 , Li6BaLa2Ta2O 12 , Li 3.6 Si 0.6 P 0.4 O4, Li4SiO4, Li3PO4, Li3PO 4-3 / 2x N x (x≦1).

[0027] Examples of the solvent include aqueous solvents and organic solvents. An aqueous solvent refers to water or a mixed solvent containing water and a polar organic solvent. For example, an appropriate dispersion medium can be selected depending on the types of active material, binder, etc. As the aqueous solvent, water is preferably used because of its ease of handling. Examples of polar organic solvents that can be used in the mixed solvent include alcohols such as methanol, ethanol, and isopropyl alcohol, ketones such as acetone, and ethers such as tetrahydrofuran. The organic solvent may, for example, be N-methyl-2-pyrrolidone (NMP).

[0028] (2) Drying process The drying step is a step in which the workpiece is dried while being transported. In the drying step, one side of the workpiece is heated by radiant heat and the other side of the workpiece is heated by hot air, thereby drying the workpiece. In the drying step, for example, the positive electrode mixture, which requires more moisture removal than the negative electrode mixture, may be dried by radiant heating, and the negative electrode mixture, which is more likely to become embrittled by heating, may be dried by hot air. Regarding drying conditions, the temperature of the hot air may be lower than the temperature of the radiant heat. By creating a temperature gradient in the thickness direction of the workpiece by radiant heat heating from one side (front side) of the workpiece and hot air from the other side (back side) of the workpiece, it is possible to perform drying suitable for bipolar electrode structures where the desired heating conditions differ between the front and back sides of the workpiece.

[0029] In the drying step, one side of the workpiece may be heated by the radiant heat and the hot air, and the other side of the workpiece may be heated by the hot air, which makes it easier to control the temperature and dew point in the drying step and allows the workpiece to be dried efficiently. In the drying step, the temperature of the hot air that heats one side of the workpiece may be higher than the temperature of the hot air that heats the other side of the workpiece. In the drying step, the dew point of the hot air that heats one side of the workpiece may be lower than the dew point of the hot air that heats the other side of the workpiece.

[0030] In the drying step, the positive electrode mixture and the negative electrode mixture may be completely dried until the moisture content is reduced to several hundred ppm or less, for example, 500 ppm or less. The positive electrode mixture becomes a positive electrode layer through a drying process, and the negative electrode mixture becomes a negative electrode layer through a drying process. The drying device that heats by radiant heat may be a laser device, an IR (infrared) device, or the like. The drying device that heats with hot air can be a hot air device such as an air nozzle.

[0031] In the drying step, the workpiece may be dried in a drying furnace while being transported on a transport body. The transport speed may be, for example, 30 m / min or more. The shape of the carrier may be a roll or a plate. A laser device or IR device may be installed above the workpiece in the drying furnace, and an air nozzle may be installed below the workpiece. An air nozzle may also be installed above the workpiece in the drying furnace. The hot air from the air nozzle above the workpiece may have a higher temperature and a lower dew point than the hot air from the air nozzle below the workpiece. To facilitate temperature control and dew point control, exhaust holes may be provided corresponding to the air nozzle above the workpiece and the air nozzle below the workpiece. A partition may be provided inside the drying furnace to separate the space above and below the workpiece. In the coating and drying process in the preparation step (1) above, if it is desired to create a temperature or humidity gradient above and below the workpiece, a similar drying oven may be provided. In the drying step, the workpiece may be heated to a temperature of 100°C to 200°C. In the drying step, the drying time of the workpiece can be set appropriately depending on the dew point and temperature in the drying furnace, the heating temperature of the workpiece, and the like.

[0032] FIG. 1 is a schematic diagram showing an example of the drying step of the present disclosure. FIG. 2 is a schematic diagram showing an example of the workpiece, laser, and hot air in the drying furnace shown in FIG. In the drying process shown in FIG. 1, a workpiece 1 is transported in the transport direction. As shown in FIG. 2, the workpiece 1 includes a current collector 2, a positive electrode composite 3, and a negative electrode composite 4, with the positive electrode composite 3 being applied to a first surface, which is the upper surface of the current collector 2, and the negative electrode composite 4 being applied to a second surface, which is the lower surface of the current collector 2. As shown in Figure 1, the upper surface of the workpiece 1 is heated by a laser 12 irradiated by a laser device 11 in a drying furnace 10, and the lower surface of the workpiece 1 is heated by hot air 22 supplied into the drying furnace 10 by a hot air device 21 (air nozzle) in the drying furnace 10. For the drying process, the temperature of the hot air 22 may be lower than the temperature of the laser 12 . In the drying step, instead of the laser device 11, an IR device or the like may be used. In the drying step, a partition may be provided to separate the work 1 from the top and bottom.

[0033] FIG. 3 is a schematic diagram showing another example of the drying step of the present disclosure. In the drying process shown in Figure 3, the inside of the drying furnace 10 is divided by an upper and lower partition 50 that separates the workpiece 1 from the top and bottom, and a laser device 11, an upper hot air device 41, and an upper exhaust hole 43 are provided in the space above the workpiece 1, and a lower hot air device 31 (air nozzle) and a lower exhaust hole 33 are provided in the space below the workpiece 1. The upper surface of the workpiece 1 is heated by a laser 12 irradiated by a laser device 11 in the drying furnace 10 and by upper hot air 42 supplied into the drying furnace 10 by an upper hot air device 41 (air nozzle), and the lower surface of the workpiece 1 is heated by lower hot air 32 supplied into the drying furnace 10 by a lower hot air device 31 in the drying furnace 10. In the drying process, the temperature of the upper hot air 42 may be higher than the temperature of the lower hot air 32 . In the drying process, the dew point of the upper hot air 42 may be lower than the dew point of the lower hot air 32 .

[0034] The electrode body obtained by the manufacturing method of the present disclosure has a bipolar structure including a current collector, a positive electrode layer disposed on a first surface of the current collector, and a negative electrode layer disposed on a second surface of the current collector. The positive electrode layer is disposed on the first surface of the current collector. The positive electrode layer contains the above-mentioned positive electrode active material, binder, conductive material, electrolyte, thickener, and the like. The negative electrode layer is disposed on the second surface of the current collector, which is opposite to the first surface. The negative electrode layer contains the above-mentioned negative electrode active material, binder, conductive material, electrolyte, thickener, and the like.

[0035] The electrode assemblies of the present disclosure are typically used in the manufacture of batteries. The type of battery in which the electrode body is used is not particularly limited, and examples thereof include lithium-ion secondary batteries. The battery may be a liquid battery using an electrolytic solution as the electrolyte, or a solid battery using a solid electrolyte as the electrolyte. Examples of uses of the battery include power sources for vehicles such as hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), electric vehicles (BEVs), gasoline-powered vehicles, and diesel-powered vehicles. In particular, the battery may be used as a driving power source for hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), or electric vehicles (BEVs). The battery may also be used as a power source for mobile objects other than vehicles (for example, railways, ships, and aircraft), and as a power source for electrical appliances such as information processing devices. [Explanation of symbols]

[0036] 1. Work 2. Current collector 3. Cathode mixture 4.Negative electrode composite material 10.Drying oven 11. Laser equipment 12. Laser 21. Hot air device (air nozzle) 22. Hot air 31. Lower hot air device (air nozzle) 32. Lower hot air 33. Lower heat exhaust vent 41. Upper hot air device (air nozzle) 42. Upper hot air 43.Upper heat exhaust vent 50. Upper and lower partitions

Claims

1. A method for manufacturing a bipolar electrode assembly including a current collector, a positive electrode layer disposed on a first surface of the current collector, and a negative electrode layer disposed on a second surface of the current collector, a preparation step of applying a positive electrode composite material to the first surface of the current collector and applying a negative electrode composite material to the second surface of the current collector to prepare a workpiece including the current collector, the positive electrode composite material, and the negative electrode composite material; a drying step of drying the workpiece while transporting it, In the drying step, one surface of the workpiece is heated by radiant heat and the other surface of the workpiece is heated by hot air, thereby drying the workpiece.

2. The method for manufacturing an electrode assembly according to claim 1 , wherein the temperature of the hot air is lower than the temperature of the radiant heat.

3. The method for manufacturing an electrode body according to claim 1 , wherein in the drying step, one surface of the workpiece is heated by the radiant heat and the hot air, and the other surface of the workpiece is heated by the hot air.

4. The method for manufacturing an electrode body according to claim 3 , wherein in the drying step, the temperature of the hot air that heats one surface of the workpiece is higher than the temperature of the hot air that heats the other surface of the workpiece.

5. 4. The method for manufacturing an electrode body according to claim 3, wherein in the drying step, the dew point of the hot air that heats one surface of the workpiece is lower than the dew point of the hot air that heats the other surface of the workpiece.

Citation Information

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