Apparatus and method for manufacturing battery slurry

The apparatus and method for manufacturing battery slurry use X-ray detection in an air-free environment to accurately assess the dispersion state of slurry components, addressing the challenge of inadequate detection and ensuring optimal stirring conditions for high-quality battery production.

JP7845867B2Active Publication Date: 2026-04-14HONDA MOTOR CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-26
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Existing methods for manufacturing battery slurry struggle to accurately detect the dispersion state of substances like active materials and solid electrolytes during stirring due to the difficulty in observing the slurry without exposing it to the atmosphere, which can lead to inadequate electrical performance and durability in the completed battery.

Method used

A manufacturing apparatus and method that circulates the slurry between a stirring tank and an observation container in an air-free environment, using X-ray irradiation to detect the slurry state without exposure to the atmosphere, allowing for accurate three-dimensional analysis and control of the stirring process.

Benefits of technology

Enables precise detection of the slurry state during stirring, ensuring optimal dispersion and performance by terminating the process at the right time, thereby improving the quality and reliability of battery slurry production.

✦ Generated by Eureka AI based on patent content.

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Abstract

To accurately detect the state of a slurry during stirring without being exposed to the atmosphere and without being exposed to the atmosphere.SOLUTION: A stirring tank 20 stores a battery slurry SL in a non-exposed state. The stirring device 10 stirs the slurry SL in the stirring tank 20. An observation container 30 is connected to the stirring tank 20. A circulation device 40 circulates the slurry SL between the stirring tank 20 and the observation container 30 without being exposed to the atmosphere. A detection device 50 detects the state of the slurry SL by irradiating the slurry SL in the observation container 30 with X-rays and detecting the X-rays transmitted through the slurry SL.SELECTED DRAWING: Figure 1
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Description

Technical Field

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[0001] The present invention relates to an apparatus and a method for manufacturing a slurry for a battery, that is, a slurry that becomes a material for a positive electrode, a negative electrode, an electrolyte, etc. of a battery.

Background Art

[0002] In recent years, from the viewpoints of reducing carbon dioxide emissions and reducing adverse effects on the global environment, the popularity of electric vehicles such as EVs and HEVs has been progressing. Therefore, the development of batteries to be mounted on electric vehicles etc. has been urgent, and the technology for manufacturing high-quality slurries for batteries has become important.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In order to manufacture a high-quality slurry for a battery, optimization of the dispersion state of each substance constituting the slurry is required. Specifically, optimization of the dispersion state of an active material, a solid electrolyte, a binder, a conductive assistant, a solvent, an additive, etc. is required. If it is not optimized, in the completed battery, the assumed electrical performance may not be exhibited, and there is a risk that the assumed initial performance and durability may not be exhibited. Therefore, it is required to grasp the state of the slurry in detail during the stirring of the slurry.

[0005] However, the slurry for a battery may contain substances that dislike contact with the atmosphere, such as a sulfur-based solid electrolyte. Therefore, it is difficult to take out the slurry from the stirring tank during stirring and check the state of the slurry.

[0006] Therefore, conventionally, the state of the slurry was estimated based on torque, viscosity, temperature, and visual inspection during slurry stirring. As a result, it was difficult to grasp the state of the slurry in detail.

[0007] This invention has been made in view of the above circumstances, and aims to enable accurate detection of the state of a slurry during stirring without exposure to the atmosphere. [Means for solving the problem]

[0008] The inventors of the present invention discovered that by circulating the slurry between a stirring tank and an observation container without exposure to the atmosphere, and by irradiating the slurry in the observation container with X-rays to detect the state of the slurry, the state of the slurry during stirring can be observed accurately without exposure to the atmosphere, leading to the present invention. The present invention comprises the following manufacturing apparatus (1) to (4) and manufacturing method (5).

[0009] (1) A stirring tank for storing the slurry for batteries in an air-free environment, where it is not exposed to the atmosphere, A stirring device for stirring the slurry in the aforementioned stirring tank, An observation container connected to the aforementioned stirring tank, A circulation device that circulates the slurry between the stirring tank and the observation container without exposure to the atmosphere, A detection device that detects the state of the slurry by irradiating the slurry in the observation container with X-rays and detecting the X-rays that have passed through the slurry, A manufacturing apparatus for battery slurry having the following features.

[0010] This configuration allows for the detection of the slurry state during stirring without exposure to the atmosphere by circulating the slurry between the stirring tank and the observation container, and by irradiating the slurry in the observation container with X-rays. Furthermore, because the slurry state is detected using X-rays, it can be detected with greater accuracy compared to methods that estimate the slurry state based on torque, viscosity, temperature, visual inspection, etc., during slurry stirring. Thus, the slurry state during stirring can be detected accurately without exposure to the atmosphere.

[0011] (2) The inside of the observation container is formed in a tapered shape that decreases in diameter as the slurry moves in the circulation direction. The apparatus for manufacturing battery slurry as described in (1) above.

[0012] With this configuration, the inside of the observation container tapers in diameter, allowing for the selection of the inner diameter portion of the observation container with good X-ray resolution when analyzing the slurry state. Therefore, the slurry state can be detected with high resolution.

[0013] (3) The detection device comprises a main body that irradiates and detects X-rays, and a rotating device that rotates the other of the main body and the observation container relative to one of them, The detection device, through the cooperation of the rotating device and the main body, irradiates the slurry in the observation container with X-rays from multiple different angles, thereby detecting the state of the slurry from these multiple angles. A manufacturing apparatus for battery slurry according to (1) or (2), comprising a three-dimensional analysis device that performs a three-dimensional analysis of the slurry based on the detected state of the slurry from multiple angles.

[0014] This configuration allows for a more accurate understanding of the slurry's state based on three-dimensional analysis.

[0015] (4) The apparatus for manufacturing a battery slurry according to (3), comprising a stirring control device that determines the timing for ending the stirring of the slurry based on the results of the three-dimensional analysis.

[0016] According to this configuration, by determining the timing of the end of the stirring of the slurry based on the result of the three-dimensional analysis, it becomes easy to end the stirring at an appropriate timing without excess or deficiency.

[0017] (5) A stirring step of stirring a slurry stored in a stirring tank in a non-atmospheric exposure state where it is not exposed to the atmosphere, During the stirring step, a circulation step of circulating the slurry between the stirring tank and the observation container in a non-atmospheric exposure state, A detection step of detecting the state of the slurry by irradiating the slurry flowing from the stirring tank to the observation container by the circulation with X-rays and detecting the X-rays transmitted through the slurry, A method for manufacturing a battery slurry having the above steps.

[0018] Also by this method, similar to the apparatus of (1) above, the state of the slurry during stirring can be detected accurately in a non-atmospheric exposure state.

Effects of the Invention

[0019] As described above, according to the apparatus of (1) and the method of (5), the state of the slurry during stirring can be detected accurately in a non-atmospheric exposure state. Further, according to the configurations of (2) to (4) that cite (1), respective additional effects can be obtained.

Brief Description of the Drawings

[0020] [Figure 1] It is a diagram showing a manufacturing apparatus for battery slurry of the first embodiment. [Figure 2] It is a diagram showing an observation container and a detection device. [Figure 3] It is a diagram showing an example of a three-dimensional image of the slurry. [Figure 4] It is a diagram showing an image of the analysis of the outer peripheral portion of the slurry. [Figure 5] It is a diagram showing an image of the analysis result of the outer peripheral portion. [Figure 6] It is a diagram showing an image of the analysis of the central portion of the slurry. [Figure 7] This is a diagram illustrating the results of the central part of the analysis. [Figure 8] This is a flowchart showing a method for manufacturing a battery slurry. [Modes for carrying out the invention]

[0021] Embodiments of the present invention will be described below with reference to the drawings. However, the present invention is not limited in any way to the following embodiments and can be implemented with appropriate modifications without departing from the spirit of the invention.

[0022] [First Embodiment] Figure 1 shows a manufacturing apparatus 100 for a battery slurry SL according to this embodiment. The manufacturing apparatus 100 includes a stirring device 10, a stirring tank 20, an observation container 30, a circulation device 40, a detection device 50, a three-dimensional analysis device 60, and a stirring control device 70.

[0023] Slurry SL contains, for example, active material, binder, conductive additive, solvent, and other substances, as well as substances that do not tolerate contact with the atmosphere, such as sulfur-based solid electrolytes. Therefore, slurry SL must be handled in an air-free environment, without exposure to the atmosphere.

[0024] The stirring tank 20 stores the slurry SL without exposure to the atmosphere. The stirring device 10 is a device that stirs the slurry SL in the stirring tank 20 and is controlled by the stirring control device 70. Inside the stirring tank 20, a heater 25 is provided for heating the slurry SL. The observation container 30 is a cylindrical container and is connected to the stirring tank 20 by a circulation device 40.

[0025] The circulation device 40 includes an inlet pipe 41, an inlet valve 42, a connecting pipe 43, a pump 44, an outlet pipe 45, and an outlet valve 46. One end of the inlet pipe 41 is connected to the stirring tank 20, and the other end is connected to one end of the observation container 30. The inlet valve 42 is located in the middle of the inlet pipe 41 and opens and closes the inlet pipe 41. One end of the connecting pipe 43 is connected to the end of the observation container 30 opposite to the side to which the inlet pipe 41 is connected, and the other end is connected to the suction port of the pump 44. One end of the outlet pipe 45 is connected to the discharge port of the pump 44, and the other end is connected to the stirring tank 20. The outlet valve 46 is located in the middle of the outlet pipe 45 and opens and closes the outlet pipe 45.

[0026] Hereinafter, the inlet valve 42 and the outlet valve 46 will be collectively referred to as "valves 42, 46". The circulation device 40 circulates the slurry SL between the stirring tank 20 and the observation container 30 without exposure to the atmosphere by opening valves 42, 46 and then operating the pump 44.

[0027] Figure 2 shows the observation container 30 and the detection device 50. Hereafter, the direction in which the slurry SL circulates will be simply referred to as the "circulation direction." The inside of the observation container 30 is tapered, becoming narrower as it moves in the circulation direction. The average inner diameter of the observation container 30 is approximately 7 mm.

[0028] The detection device 50 has a main body 53 and a rotating device 57, and the main body 53 has an irradiation unit 51 and a detection unit 52. The irradiation unit 51 irradiates the slurry SL in the observation container 30 with X-rays. The detection unit 52 detects the state of the slurry SL by detecting the X-rays that have passed through the slurry SL.

[0029] The rotating device 57 rotates the main body 53 and the observation container 30 relative to each other, with respect to the direction of circulation. Specifically, in this embodiment, the main body 53 is fixed, and the rotating device 57 rotates the observation container 30. However, alternatively, the observation container 30 may be fixed, and the rotating device 57 may be used to rotate the observation container 30.

[0030] The detection device 50 repeatedly performs a series of cooperative operations between the rotating device 57 and the main body 53, such as rotating the observation container 30 by a predetermined angle using the rotating device 57, and then detecting the state of the slurry SL using the main body 53. As a result, the detection device 50 irradiates the slurry SL in the observation container 30 with X-rays from multiple different angles and detects the state of the slurry SL from multiple angles.

[0031] As shown in Figure 1, the 3D analysis device 60 has an image creation unit 61 and an image analysis unit 62. The image creation unit 61 creates a 3D image based on the state of the slurry SL from multiple detected angles. The image analysis unit 62 analyzes the state of the slurry SL based on the created 3D image. The stirring control device 70 determines whether or not to terminate the stirring of the slurry SL based on the analysis results.

[0032] Next, we will explain the analysis performed by the 3D analysis device 60, referring to Figures 3 to 7.

[0033] Figure 3 shows an example of a three-dimensional image of slurry SL created by the image creation unit 61. In this image, slurry SL contains the active material P. Hereafter, the region around the center line of slurry SL in the observation container 30 will be referred to as the "central region Ac," and the region on the outer periphery of central region Ac will be referred to as the "outer region Ao." Specifically, central region Ac and outer region Ao each occupy 45% of the area in each cross-section of slurry SL cut by a plane perpendicular to the circulation direction.

[0034] Figure 4 shows an image of the analysis of the outer periphery Ao by the image analysis unit 62. Specifically, it is a view of a mesh formed by connecting the centers of gravity of the active material P detected in the outer periphery Ao with straight lines, in the direction of circulation. Therefore, the intersections of the mesh indicate the presence of active material P, and the three-dimensional spacing between the intersections indicates the distance D between the centers of gravity of the active material P.

[0035] Figure 5 is an image showing the results of the analysis of the outer perimeter Ao by the image analysis unit 62, and shows the distribution of the distance D between centroids in the outer perimeter Ao. Specifically, the horizontal axis of Figure 5 represents the distance D between centroids, and the vertical axis represents the number of active materials P belonging to that distance D.

[0036] Figure 6 shows an image of the analysis of the central Ac by the image analysis unit 62. Specifically, it is a view of the mesh, which is formed by connecting the centers of gravity of the active material P detected in the central Ac with straight lines, in the direction of circulation. Figure 7 shows an image of the analysis results of the central Ac by the image analysis unit 62, and shows the distribution of the distance D between centers of gravity in the central Ac.

[0037] A comparison of Figure 5 and Figure 7 shows that the deviation in the distance D between centers of gravity is greater in the outer periphery Ao than in the central area Ac. In this case, the stirring control device 70 determines that the slurry SL has not reached the target state and that the stirring of the slurry SL is insufficient, and continues stirring the slurry SL. On the other hand, if there is not much difference in the distribution of the distance D between centers of gravity between the outer periphery Ao and the central area Ac, the stirring control device 70 determines that the slurry SL has reached the target state and that the stirring of the slurry SL is sufficient, and terminates the stirring of the slurry SL.

[0038] Figure 8 is a flowchart showing the method for manufacturing a battery slurry SL using the manufacturing apparatus 100 described above. In the following, "S" before the numbers stands for "step".

[0039] First, in S11, the worker or other person puts the slurry SL into the stirring tank 20 without exposing it to the atmosphere and presses the stirring start button on the manufacturing device 100 to start stirring the slurry SL.

[0040] Next, we will explain S21 and S22, which are stirring steps performed after S11. First, in S21, the stirring control device 70 sets the stirring conditions. Specifically, for example, in the first S21 in the flow, predetermined stirring conditions are set, and in subsequent S21s, these stirring conditions are updated sequentially. Next, in S22, the stirring control device 70 performs stirring by controlling the stirring device 10 based on the set stirring conditions.

[0041] Next, we will explain S41 and S42, which are circulation processes performed after S22. First, in S41, the circulation device 40 opens valves 42 and 46. Next, in S42, the circulation device 40 operates pump 44 to guide the slurry SL in the stirring tank 20 into the observation container 30. Next, in S43, the circulation device 40 closes valves 42 and 46.

[0042] Next, we will explain S51, which is a detection step performed after S43. In S51, the rotating device 57 and the main body 53 perform the aforementioned cooperative operation to detect the state of the slurry SL inside the observation container 30 from multiple angles.

[0043] Next, we will explain S61 and S62, which are analysis steps performed after S51. First, in S61, the image creation unit 61 creates a three-dimensional image based on the state of the slurry SL detected from multiple angles. Next, in S62, the image analysis unit 62 analyzes the current state of the slurry SL, that is, the distribution of the distance D between centroids, based on the created three-dimensional image.

[0044] Next, we will explain S71 to S73, which are stirring control steps performed after S62. First, in S71, the stirring control device 70 sets the target state of the slurry SL based on information other than 3D images, such as past battery test results, raw material data, and stirring state information.

[0045] Next, in S72, the stirring control device 70 determines whether the current state of the slurry SL, that is, the distribution of the distance D between the centers of gravity, has reached the target state. If the determination is negative, the process returns to S11 and the stirring conditions are reset. Specifically, for example, the stirring conditions are reset so that the stirring torque decreases as the deviation between the current state of slurry SL and the target state decreases. On the other hand, if the determination in S72 is positive, the process proceeds to S73 and stirring is terminated.

[0046] In S81, following S73, the workers remove the completed battery slurry SL from the stirring tank 20 without exposure to the atmosphere. This completes the flow process.

[0047] The effects of this embodiment are summarized below. The circulation device 40 circulates the slurry SL between the stirring tank 20 and the observation container 30 without exposure to the atmosphere. The detection device 50 detects the state of the slurry SL by irradiating the slurry SL in the observation container 30 with X-rays and detecting the X-rays that have passed through the slurry SL. Therefore, the state of the slurry SL during stirring can be detected without exposure to the atmosphere. Moreover, because the state of the slurry SL is detected by X-rays, the state of the slurry SL can be detected with greater accuracy compared to cases where the state of the slurry SL is estimated based on torque, viscosity, temperature, visual inspection, etc., during slurry stirring. As a result, the state of the slurry SL during stirring can be detected accurately without exposure to the atmosphere.

[0048] Furthermore, the inside of the observation container 30 is tapered, with the diameter decreasing as it moves in the circulation direction. Therefore, when analyzing the state of the slurry SL, it is possible to select the inner diameter portion of the observation container 30 with good X-ray resolution. As a result, the state of the slurry SL can be detected with high resolution.

[0049] Furthermore, the detection device 50 detects the state of the slurry SL from multiple angles, and the 3D analysis device 60 performs a 3D analysis of the slurry SL based on the state of the slurry SL from these multiple angles. This 3D analysis allows for a more accurate understanding of the state of the slurry SL.

[0050] Furthermore, the stirring control device 70 determines the timing to end the stirring of the slurry SL based on the results of the three-dimensional analysis. This makes it easier to end the stirring at the appropriate time without excessive or insufficient stirring. [Explanation of Symbols]

[0051] 10 Stirring device 20 Stirring tank 30 Observation containers 40 Circulation device 50 Detection device 53 Main body 57 Rotating device 60 3D analysis equipment 70. Stirring control device 100 Battery slurry manufacturing equipment SL Slurry

Claims

1. A stirring tank for storing the slurry for batteries in an air-free environment, and A stirring device for stirring the slurry in the aforementioned stirring tank, An observation container connected to the aforementioned stirring tank, A circulation device that circulates the slurry between the stirring tank and the observation container without exposure to the atmosphere, The device includes a detection device that detects the state of the slurry by irradiating the slurry in the observation container with X-rays and detecting the X-rays that have passed through the slurry. The inside of the observation container is formed in a tapered shape that decreases in diameter as the slurry moves in the circulation direction. Manufacturing equipment for battery slurry.

2. The detection device comprises a main body for irradiating and detecting X-rays, and a rotating device for rotating the other of the main body and the observation container relative to one of them. The detection device, through the cooperation of the rotating device and the main body, irradiates the slurry in the observation container with X-rays from multiple different angles, thereby detecting the state of the slurry from these multiple angles. The manufacturing apparatus for battery slurry according to claim 1, comprising a three-dimensional analysis device that performs a three-dimensional analysis of the slurry based on the state of the slurry detected from the multiple angles.

3. A stirring tank for storing a slurry for batteries in an air-free environment, A stirring device for stirring the slurry in the aforementioned stirring tank, An observation container for observing slurry, which is connected to the aforementioned stirring tank, A circulation device that circulates the slurry between the stirring tank and the observation container without exposure to the atmosphere, The device includes a detection device that detects the state of the slurry by irradiating the slurry in the observation container with X-rays and detecting the X-rays that have passed through the slurry. The detection device comprises a main body for irradiating and detecting X-rays, and a rotating device for rotating the other of the main body and the observation container relative to one of them. The detection device, through the cooperation of the rotating device and the main body, irradiates the slurry in the observation container with X-rays from multiple different angles, thereby detecting the state of the slurry from these multiple angles. A manufacturing apparatus for battery slurry, comprising a three-dimensional analysis device that performs a three-dimensional analysis of the slurry based on the state of the slurry detected from multiple angles.

4. The apparatus for manufacturing a battery slurry according to claim 2 or 3, comprising a stirring control device that determines the timing for ending the stirring of the slurry based on the results of the three-dimensional analysis.

5. A stirring process in which a slurry stored in a stirring tank is stirred without exposure to the atmosphere, During the stirring process, a circulation process is performed in which the slurry is circulated between the stirring tank and the observation container without exposure to the atmosphere. The system includes a detection step of detecting the state of the slurry by irradiating the slurry that has flowed from the stirring tank into the observation container by the circulation with X-rays and detecting the X-rays that have passed through the slurry. The inside of the observation container is formed in a tapered shape that decreases in diameter as the slurry moves in the circulation direction. A method for manufacturing a slurry for batteries.

Citation Information

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