All-solid-state battery system

The control device in solid-state batteries addresses internal short circuits by switching to discharge mode and applying increased restraining pressure, effectively managing lithium deposition to prevent further short circuits.

JP7845255B2Active Publication Date: 2026-04-14TOYOTA JIDOSHA KK
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-04-13
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Solid-state batteries experience internal short circuits due to deposited lithium during charging, which can lead to further circuit progression if not adequately managed.

Method used

Implementing a control device that switches from charging to discharging mode upon detecting an internal short circuit, increases discharge rate, and applies enhanced restraining pressure after discharge to dissolve deposited lithium and prevent further short circuits.

Benefits of technology

Effectively suppresses the progression of internal short circuits by dissolving deposited lithium and preventing electrode layer connection, thereby maintaining battery integrity.

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Patent Text Reader

Abstract

To provide an all solid battery system capable of suppressing the progression of internal short circuits caused by metallic lithium precipitation in all solid batteries.SOLUTION: An all solid battery system 100 has an all solid battery 1 and an ECU 20 (control unit) that executes charge control and discharge control of the all solid battery 1. When an internal short circuit is detected during charge control of the all solid battery 1, ECU 20 switches charge control to discharge control to discharge the all solid battery 1.SELECTED DRAWING: Figure 5
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Description

Technical Field

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[0001] The present disclosure relates to an all-solid-state battery system.

Background Art

[0002] Japanese Patent Application Laid-Open No. 2019-145247 (Patent Document 1) discloses a method of recovering the capacity of an all-solid-state battery by charging and discharging the all-solid-state battery while constraining it under high pressure.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0008] In the all-solid-state battery system relating to the first aspect described above, preferably, if an internal short circuit is detected during charging control of the all-solid-state battery, the control device continues discharge control until the all-solid-state battery is over-discharged. With this configuration, the deposited metallic lithium can be more reliably dissolved by discharge. As a result, the progression of an internal short circuit in the all-solid-state battery can be more reliably suppressed.

[0009] The all-solid-state battery system relating to the first aspect described above preferably further comprises a restraining jig for restraining the all-solid-state battery. When an internal short circuit is detected during charging control of the all-solid-state battery, the control device increases the restraining pressure applied by the restraining jig compared to when no internal short circuit is detected. With this configuration, in areas where a crack has occurred in the all-solid-state battery, the fragments of the all-solid-state battery can be joined together by the restraining pressure applied by the restraining jig.

[0010] In this case, preferably, the control device increases the confinement pressure after the discharge control of the all-solid-state battery is completed. With this configuration, it is possible to suppress the increase in confinement pressure before the deposited metallic lithium dissolves. As a result, it is possible to suppress the promotion of internal short circuits in the all-solid-state battery caused by the expansion of the deposited metallic lithium due to the increase in confinement pressure.

[0011] In the all-solid-state battery system relating to the first aspect described above, preferably, the control device increases the discharge rate of the all-solid-state battery when an internal short circuit is detected during the charging control of the all-solid-state battery, compared to when an internal short circuit is not detected. With this configuration, the rate at which the deposited metallic lithium dissolves can be improved, so that the next charging control can be performed more quickly.

[0012] According to this disclosure, it is possible to suppress the progression of internal short circuits caused by the deposition of metallic lithium in all-solid-state batteries. [Brief explanation of the drawing]

[0013] [Figure 1] This figure shows the configuration of an electric vehicle equipped with an all-solid-state battery system according to one embodiment. [Figure 2] This is a schematic diagram showing a battery including an all-solid-state battery and a restraining jig according to one embodiment. [Figure 3] This is a cross-sectional view of an all-solid-state battery according to one embodiment. [Figure 4] This is a cross-sectional view showing how metallic lithium is deposited in an all-solid-state battery. [Figure 5] This is a flowchart illustrating a charging method for an all-solid-state battery according to one embodiment. [Figure 6] This figure shows a method for detecting an internal short circuit in a solid-state battery based on the change in voltage value. [Modes for carrying out the invention]

[0014] The embodiments of this disclosure will be described in detail below with reference to the drawings. In the drawings, the same or corresponding parts are denoted by the same reference numerals, and their descriptions will not be repeated.

[0015] <Overall Structure> Figure 1 is a schematic diagram showing the overall configuration of an electric vehicle 110 equipped with an all-solid-state battery system 100 according to this embodiment. The all-solid-state battery system 100 comprises a battery 10 including a plurality of all-solid-state batteries 1 (see Figure 2). Each all-solid-state battery 1 is a single cell. The all-solid-state battery system 100 also comprises an ECU (Electronic Control Unit) 20, a monitoring module 30, and a restraining jig 40 (see Figure 2). The ECU 20 is an example of a "control device" as disclosed herein.

[0016] Note that the electric vehicle 110 is configured to be able to run using the electric power stored in the battery 10. The electric vehicle 110 is a battery electric vehicle (BEV) that does not include an engine (internal combustion engine), but may be a hybrid vehicle (HEV) including an engine, or a plug-in hybrid vehicle (PHEV).

[0017] The ECU 20 is configured to execute charge control and discharge control of the battery 10 (all-solid-state battery 1). The ECU 20 includes a processor 21, a RAM (Random Access Memory) 22, and a storage device 23.

[0018] The ECU 20 may be a computer. The processor 21 may be a CPU (Central Processing Unit). The RAM 22 functions as a working memory that temporarily stores data processed by the processor 21.

[0019] The storage device 23 is configured to be able to store the stored information. In the storage device 23, in addition to programs, information used in the programs (for example, maps, mathematical formulas, and various parameters) are stored. By the processor 21 executing the programs stored in the storage device 23, various controls in the ECU 20 are executed.

[0020] The monitoring module 30 includes various sensors that detect the state of the battery 10 (all-solid-state battery 1) (for example, voltage, current, and temperature), and outputs the detection results to the ECU 20. Specifically, the monitoring module 30 detects the voltage of each of the plurality of all-solid-state batteries 1 (see FIG. 2). In addition to the above sensor function, the monitoring module 30 may further have a SOC (State Of Charge) estimation function, a SOH (State of Health) estimation function, a cell voltage equalization function, a diagnosis function, and a communication function. The ECU 20 can acquire the state of the battery 10 (for example, temperature, current, voltage, SOC, and internal resistance) based on the output of the monitoring module 30.

[0021] The battery 10 is charged by the power supplied from the charge and discharge stand 200. The power supplied from the charge and discharge stand 200 is stored in the battery 10. Also, the battery 10 discharges the power stored in the battery 10 to the charge and discharge stand 200. Each of the power supplied from the charge and discharge stand 200 to the battery 10 and the power supplied from the battery 10 to the charge and discharge stand 200 is transmitted through the charging plug 201 of the charge and discharge stand 200 connected to the charging port 111 of the electric vehicle 110.

[0022] FIG. 2 is a diagram showing the overall configuration of the battery 10. A plurality of all-solid-state batteries 1 of the battery 10 are stacked in the X direction shown in FIG. 2. In the example shown in FIG. 2, four all-solid-state batteries 1 are stacked. The number of all-solid-state batteries 1 is not particularly limited.

[0023] The plurality of all-solid-state batteries 1 are constrained in the X direction by the constraint jig 40. As a result, a predetermined constraint pressure is applied to each of the plurality of all-solid-state batteries 1 in the X direction.

[0024] The constraint jig 40 includes a pair of plates 41 that sandwich the plurality of all-solid-state batteries 1 in the X direction. The constraint jig 40 also includes a support portion 42 that supports the plurality of all-solid-state batteries 1 (the plate 41 on the X2 side) from the X2 side. The constraint jig 40 also includes a pressing portion 43 (for example, an actuator) that presses the plurality of all-solid-state batteries 1 (the plate 41 on the X1 side) from the X1 side. The pressing force by the pressing portion 43 is controlled by the ECU 20. Thereby, the constraint pressure of the all-solid-state battery 1 can be controlled.

[0025] <All-solid-state battery> FIG. 3 is a diagram schematically showing the configuration of the all-solid-state battery 1. The all-solid-state battery 1 includes a positive electrode layer 2, a negative electrode layer 3, and a solid electrolyte layer 4 as power storage elements. The all-solid-state battery 1 may include an exterior body (not shown) for housing the power storage elements. The exterior body is, for example, a pouch made of a metal foil laminate film.

[0026] The battery 10 may be a monopolar stacked battery (a stacked battery connected in parallel) or a bipolar stacked battery (a stacked battery connected in series). The shape of the battery may be, for example, coin-type, laminate-type, cylindrical, or prismatic.

[0027] ≪Positive electrode layer≫ The positive electrode layer 2 includes a positive electrode active material layer 2a and a positive electrode current collector 2b. The positive electrode active material layer 2a is formed by coating the surface of the positive electrode current collector 2b with a positive electrode slurry (a slurry prepared by kneading the material of the positive electrode active material layer 2a with a solvent) and drying it. The positive electrode active material layer 2a is in close contact with the solid electrolyte layer 4. The thickness of the positive electrode active material layer 2a is, for example, 0.1 μm or more and 1000 μm or less.

[0028] ≪Negative electrode layer≫ The negative electrode layer 3 includes a negative electrode active material layer 3a and a negative electrode current collector 3b. The negative electrode active material layer 3a is formed by coating the surface of the negative electrode current collector 3b with a negative electrode slurry (a slurry prepared by kneading the materials of the negative electrode active material layer 3a with a solvent) and drying it. The negative electrode active material layer 3a is in close contact with the solid electrolyte layer 4. The thickness of the negative electrode active material layer 3a is, for example, 0.1 μm or more and 1000 μm or less.

[0029] ≪Solid electrolyte layer≫ The solid electrolyte layer 4 is interposed between the positive electrode layer 2 and the negative electrode layer 3. The solid electrolyte layer 4 separates the positive electrode layer 2 from the negative electrode layer 3. The thickness of the solid electrolyte layer 4 is, for example, 0.1 μm or more and 1000 μm or less.

[0030] Furthermore, the positive electrode layer 2, the solid electrolyte layer 4, and the negative electrode layer 3 are stacked in the direction (X direction) in which multiple all-solid-state batteries 1 are stacked. In the example shown in Figure 3, the positive electrode layer 2 is located on the X1 side of the solid electrolyte layer 4, and the negative electrode layer 3 is located on the X2 side of the solid electrolyte layer 4. Note that the positions of the positive electrode layer 2 and the negative electrode layer 3 may be reversed from the example shown in Figure 3.

[0031] Here, as shown in Figure 4, cracks 4a may occur in the solid electrolyte layer 4. When the all-solid-state battery 1 with cracks 4a is charged, metallic lithium 4b is deposited in the solid electrolyte layer 4 from the negative electrode layer 3 side. As the deposited metallic lithium 4b grows, the positive electrode layer 2 and the negative electrode layer 3 may become electrically connected via the metallic lithium 4b. In this case, an internal short circuit occurs in the all-solid-state battery 1.

[0032] Therefore, in this embodiment, if an internal short circuit is detected during the charging control of the solid-state battery 1, the ECU 20 switches from charging control to discharging control and discharges the solid-state battery 1. By discharging the solid-state battery 1, it is possible to dissolve the deposited metallic lithium 4b.

[0033] <How to charge solid-state batteries> Here, with reference to Figures 5 and 6, a method for charging the all-solid-state battery 1 while suppressing internal short circuits will be described.

[0034] In step S1, the processor 21 of the ECU 20 (hereinafter referred to as ECU 20) starts charging control of the solid-state battery 1.

[0035] In step S2, the ECU 20 acquires information on the voltage value of the solid-state battery 1. Specifically, the ECU 20 acquires information on the voltage value of each of the multiple solid-state batteries 1 based on information from the monitoring module 30.

[0036] In step S3, the ECU 20 determines whether the battery 10 has reached the target charge level or the preset charging time. If the answer in step S3 is Yes, the process ends. If the answer in step S3 is No, the process proceeds to step S4.

[0037] In step S4, the ECU 20 determines whether an internal short circuit (minor short circuit) is detected in the solid-state battery 1. More specifically, it determines whether the change in the voltage value of the solid-state battery 1 is below a predetermined range. The predetermined range is a range (for example, within ±5% of the center value) (see Figure 6) centered on the change in the voltage value of the solid-state battery 1 per unit time (ΔV / Δt) predicted based on the charging current value of the solid-state battery 1. If the change is below the predetermined range (Yes in S4), the process proceeds to step S5. If the change is within the predetermined range (No in S4), the process returns to step S3. Note that in step S4, if the change in at least one of the multiple solid-state batteries 1 is below the predetermined range, the process proceeds to step S5.

[0038] Note that the determination method in step S4 is not limited to the above example. For example, the determination may be based on the absolute value of the charging voltage (|V|), or on the change in the charging voltage (ΔV / ΔI) in response to the change in the charging current.

[0039] Furthermore, the ECU20 may use a trained model generated by machine learning techniques such as deep learning in the process of detecting internal short circuits in the all-solid-state battery 1. This makes it possible to detect (or predict in advance) internal short circuits in the all-solid-state battery 1 more quickly.

[0040] In step S5, the ECU20 determines that an internal short circuit (minor short circuit) has occurred (or is beginning to occur) in the all-solid-state battery 1.

[0041] In step S6, the ECU 20 switches the control of the solid-state battery 1 from charge control to discharge control. That is, the ECU 20 starts the discharge control of the solid-state battery 1. The ECU 20 may also discharge (supply power to) the power stored in the solid-state battery 1 to the charge / discharge stand 200. Alternatively, the ECU 20 may discharge the power stored in the solid-state battery 1 using a discharge circuit (not shown) provided in the electric vehicle 110.

[0042] In step S7, the ECU 20 sets parameters such that the discharge rate of the solid-state battery 1 is higher than the normal rate (when no internal short circuit is detected). For example, the ECU 20 sets the discharge current value of the solid-state battery 1 to a value greater than the normal discharge current value (discharge current value during normal external power supply). Increasing the discharge rate does not accelerate the degradation of the solid-state battery 1. Therefore, by setting a higher discharge rate for the solid-state battery 1, the discharge time can be shortened.

[0043] In step S8, the ECU 20 determines whether the solid-state battery 1 is in an over-discharge state. Here, the voltage value of the solid-state battery 1 corresponding to a State of Charge (SOC) of 0% for the electric vehicle 110 is predetermined. In step S8, the ECU 20 determines whether the voltage value of at least one of the multiple solid-state batteries 1 has fallen below the voltage value corresponding to a SOC of 0%. If the solid-state battery 1 is in an over-discharge state (Yes in S8), the process proceeds to step S9. If the solid-state battery 1 is not in an over-discharge state (No in S8), the process in step S8 is repeated. By discharging the solid-state battery 1 until it reaches an over-discharge state, the metallic lithium 4b deposited in the crack 4a can be completely dissolved.

[0044] In step S8, the ECU 20 may determine whether the voltage value of at least one of the multiple solid-state batteries 1 has fallen below the voltage value corresponding to SOC 0% by a predetermined amount or more. Alternatively, the ECU 20 may determine whether the voltage values ​​of all of the multiple solid-state batteries 1 have fallen below the voltage value corresponding to SOC 0%, or whether the voltage value corresponding to SOC 0% has fallen below the predetermined amount or more.

[0045] In step S9, the ECU 20 stops the discharge control of the solid-state battery 1. In step S10, the ECU 20 sets the restraining pressure (pressing force by the pressing part 43) of the restraining jig 40 to a value greater than the restraining pressure of the restraining jig 40 under normal conditions (when no internal short circuit is detected). The restraining pressure greater than under normal conditions may be the optimal value for restoring the cracks in the solid-state battery 1 (joining the fragments together), which was calculated during testing at the manufacturing stage of the solid-state battery 1. The above optimal value is stored in the storage device 23 of the ECU 20.

[0046] Furthermore, the above-mentioned confinement pressure, which is greater than the normal pressure, may be a predetermined fixed value. The above-mentioned confinement pressure may also be appropriately calculated based on the degree of internal short circuit predicted by the change in the voltage value of the all-solid-state battery 1, etc.

[0047] It is conceivable to increase the confinement pressure during the discharge of the all-solid-state battery 1. However, metallic lithium may remain during the discharge of the all-solid-state battery 1. Therefore, as the confinement pressure increases, the solid electrolyte layer 4 may be damaged by the metallic lithium, and the crack 4a may expand. By increasing the confinement pressure after the discharge of the all-solid-state battery 1 has stopped (i.e., after the metallic lithium 4b has dissolved), damage to the solid electrolyte layer 4 can be prevented.

[0048] In step S11, the ECU 20 continues to restrain the solid-state battery 1 for a predetermined time using the restraining pressure set in step S10. The predetermined time may be a time calculated during testing or other procedures during the manufacturing stage of the solid-state battery 1. The predetermined time is stored in the storage device 23 of the ECU 20. After that, the ECU 20 performs a process to return the restraining pressure by the restraining jig 40 to its normal value (the restraining pressure when no internal short circuit is detected).

[0049] In step S12, the ECU 20 resumes charging control of the solid-state battery 1. The process then returns to step S2.

[0050] As described above, in this embodiment, if an internal short circuit is detected during the charging control of the solid-state battery 1, the ECU 20 switches the charging control to discharge control and discharges the solid-state battery 1. This allows the discharge to dissolve the metallic lithium 4b that has deposited at the location where an internal short circuit (minor short circuit) has occurred in the solid-state battery 1. Furthermore, it is possible to suppress the growth of metallic lithium 4b. As a result, it is possible to prevent the positive electrode layer 2 and the negative electrode layer 3 from being completely short-circuited by metallic lithium 4b.

[0051] In the above embodiment, an example was shown in which discharge control is continued until the all-solid-state battery 1 is over-discharged, but the disclosure is not limited thereto. Discharge control may be stopped before the all-solid-state battery 1 enters an over-discharge state.

[0052] In the above embodiment, an example was shown in which the restraining pressure by the restraining jig 40 is increased after the completion of discharge control of the all-solid-state battery 1, but the disclosure is not limited thereto. For example, the restraining pressure may be increased starting a predetermined time before the completion of discharge control.

[0053] In the above embodiment, an example was shown in which the discharge rate after an internal short circuit in the all-solid-state battery 1 is detected is increased compared to the discharge rate when no internal short circuit is detected. However, the disclosure is not limited to this. The discharge rate after an internal short circuit in the all-solid-state battery 1 is detected may be less than or equal to the discharge rate when no internal short circuit is detected.

[0054] In the above embodiment, an example was shown in which the all-solid-state battery system 100 is mounted on an electric vehicle, but the disclosure is not limited thereto. The all-solid-state battery system 100 may also be mounted on, for example, a stationary energy storage device.

[0055] Furthermore, the configurations (processes) of the above embodiments and each of the above modified examples may be combined with each other.

[0056] The embodiments disclosed herein should be considered in all respects to be illustrative and not restrictive. The scope of this disclosure is indicated by the claims rather than by the description of the embodiments above, and all modifications within the meaning and scope equivalent to the claims are intended to be included. [Explanation of symbols]

[0057] 1 solid-state battery, 10 batteries, 20 ECUs (control units), 40 restraint fixtures, 100 solid-state battery systems.

Claims

1. All-solid-state batteries and A control device that performs charging and discharging control of the all-solid-state battery, The system comprises a restraining jig for restraining the all-solid-state battery, The control device is If an internal short circuit is detected during the charging control of the all-solid-state battery, the charging control is switched to the discharge control to discharge the all-solid-state battery. A solid-state battery system that increases the restraining pressure by the restraining jig after the completion of the discharge control of the solid-state battery.

2. The all-solid-state battery system according to claim 1, wherein the control device continues the discharge control until the all-solid-state battery is over-discharged if an internal short circuit is detected during the charge control of the all-solid-state battery.

3. The all-solid-state battery system according to claim 1 or 2, wherein the control device increases the restraining pressure by the restraining jig compared to when the internal short circuit is detected during the charging control of the all-solid-state battery.

4. The all-solid-state battery system according to claim 1 or 2, wherein the control device increases the discharge rate of the all-solid-state battery compared to when the internal short circuit is not detected, when the internal short circuit is detected during the charging control of the all-solid-state battery.

5. The control device is After the discharge control of the all-solid-state battery is completed, the restraining pressure by the restraining jig is increased to a set value. The all-solid-state battery system according to claim 1 or 2, wherein the set value is calculated based on the amount of change in the voltage value of the all-solid-state battery caused by the internal short circuit.

6. The control device is After the discharge control of the all-solid-state battery is completed, the restraining pressure by the restraining jig is increased from a reference value to a set value. After increasing the restraining pressure to the set value, the restraining pressure is maintained at the set value for a predetermined time, and then the restraining pressure is reduced to the reference value. The all-solid-state battery system according to claim 1 or 2, wherein the charging control is restarted after the restraining pressure has been reduced to the reference value.

Citation Information

Patent Citations

  • Nonaqueous electrolyte secondary cell

    JP1997147909A

  • Battery system, method of using battery, and method of regenerating battery

    JP2011142016A

  • Regeneration process of solid secondary battery

    JP2019145247A

  • Manufacturing method of all-solid battery

    JP2020068170A

  • All-solid lithium ion secondary battery, manufacturing method thereof, all-solid lithium ion secondary battery system arranged by use thereof, and method for charging all-solid lithium ion secondary battery

    JP2020167068A