Battery systems and methods
The battery system accurately estimates high-rate degradation in secondary batteries with non-aqueous electrolytes by calculating polarization relaxation, ensuring proper power limits and preventing battery deterioration.
Patent Information
- Application Number
- JP2023067271
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-04-17
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2043-04-17
AI Technical Summary
Existing battery systems struggle to accurately estimate the presence or absence of high-rate degradation in secondary batteries with non-aqueous electrolytes due to detection errors in current sensors, leading to inaccurate estimation of charging and discharging power limits.
A battery system that includes a voltage sensor and a processing device to calculate an evaluation value based on the degree of polarization relaxation after charging or discharging, allowing for accurate estimation of high-rate degradation by analyzing the difference in voltage values before and after polarization relaxation.
Enables precise estimation of high-rate degradation, preventing lithium deposition and overcharging by setting appropriate power limits, thereby maintaining battery health.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a battery system and method, and more particularly to a battery system and method for estimating the presence or absence of degradation of a secondary battery containing a non-aqueous electrolyte. [Background technology]
[0002] Secondary batteries with non-aqueous electrolytes, such as lithium-ion batteries, have been attracting attention. When such secondary batteries are frequently charged or discharged at high rates (large currents), the ion concentration in the non-aqueous electrolyte becomes uneven. As a result, the internal resistance of the secondary battery increases, causing the secondary battery to deteriorate. This deterioration of secondary batteries is also called "high-rate deterioration."
[0003] Japanese Patent Application Laid-Open Publication No. 2017-103080 (Patent Document 1) discloses a battery system. The battery system includes a secondary battery, a current sensor, and a control device. The current sensor detects the charging current or discharging current of the secondary battery. The control device calculates an evaluation value for evaluating high-rate degradation of the secondary battery based on the detected value of the current sensor. The control device determines whether an integrated value of the evaluation value is higher than a threshold value. If the integrated value is higher than the threshold value, the control device limits the charging power or discharging power of the battery to prevent excessive high-rate degradation. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-103080 Summary of the Invention [Problem to be solved by the invention]
[0005] In the battery system described above, if the detection value of the current sensor contains a detection error, the error resulting from the detection error may accumulate in the integrated value. As a result, the accumulated error in the integrated value may become too large to ignore. In this case, it may be impossible to properly estimate the presence or absence of high-rate degradation based on the integrated value (it may be impossible to limit the charging power or discharging power at an appropriate time).
[0006] The present disclosure has been made to solve the above-mentioned problems, and its purpose is to provide a battery system and method that can appropriately estimate the presence or absence of deterioration of a secondary battery containing a non-aqueous electrolyte. [Means for solving the problem]
[0007] The battery system disclosed herein is a battery system for estimating the presence or absence of degradation of a secondary battery containing a non-aqueous electrolyte. This degradation is a phenomenon in which the internal resistance of the secondary battery increases due to a bias in the ion concentration in the non-aqueous electrolyte. The battery system includes a voltage sensor and a processing device. The voltage sensor detects a voltage value of the secondary battery. The processing device is configured to perform a calculation process and an estimation process. The calculation process includes a process of calculating, based on the voltage value, an evaluation value for evaluating the degree of polarization relaxation after charging or discharging the secondary battery. The estimation process includes a process of estimating the presence or absence of degradation of the secondary battery based on the evaluation value. [Effects of the Invention]
[0008] According to the present disclosure, it is possible to appropriately estimate whether or not a secondary battery containing a non-aqueous electrolyte has deteriorated. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a diagram schematically showing an overall configuration of a charge / discharge system including a vehicle on which a battery system according to a first embodiment is mounted. [Figure 2] FIG. 2 is a diagram showing in detail the hardware configuration of a vehicle and power equipment. [Figure 3]10 is a diagram illustrating the transition of the voltage value after external charging of the battery is stopped, depending on whether high-rate degradation is present or not. FIG. [Figure 4] FIG. 10 is a diagram illustrating the transition of the voltage value VV after the discharge of the battery is stopped, depending on whether or not high-rate degradation occurs. [Figure 5] 3 is a flowchart illustrating a process executed by an ECU (Electronic Control Unit) in the embodiment. [Figure 6] 4 is a flowchart illustrating a procedure of a calculation process according to the first embodiment. [Figure 7] 4 is a flowchart illustrating an example of a procedure of an estimation process according to the first embodiment. [Figure 8] FIG. 10 is a diagram illustrating how the amount of polarization relaxation differs depending on whether high-rate degradation occurs or not, when external charging is performed so that the SOC (State Of Charge) increases from 10% to 30%. [Figure 9] FIG. 10 is a diagram illustrating how the amount of polarization relaxation differs depending on whether high-rate degradation occurs or not, when external charging is performed so that the SOC increases from 50% to 70%. [Figure 10] 10 is a flowchart illustrating a process executed by an ECU in a first modification. [Figure 11] FIG. 10 is a diagram illustrating an example of an evaluation value in Modification 2. [Figure 12] FIG. 10 is a diagram illustrating another example of the evaluation value in Modification 2. [Figure 13] 10 is a flowchart illustrating a procedure of a calculation process in Modification 2. [Figure 14] 10 is a flowchart illustrating an example of a procedure of an estimation process in Modification 2. [Figure 15] FIG. 10 is a diagram illustrating an example of an evaluation value in Modification 3. [Figure 16] FIG. 10 is a diagram illustrating another example of the evaluation value in Modification 3. [Figure 17] 10 is a flowchart illustrating a process executed by an ECU in a third modification. [Figure 18]13 is a flowchart illustrating a procedure of a calculation process in Modification 3. [Figure 19] 13 is a flowchart illustrating an example of a procedure of an estimation process in Modification 3. [Figure 20] FIG. 10 is a diagram illustrating an example of data used for normalization processing in the second embodiment. [Figure 21] 10 is a flowchart illustrating a process executed by an ECU in the second embodiment. [Figure 22] 10 is a flowchart illustrating details of a normalization process procedure. [Figure 23] 10 is a flowchart illustrating details of a procedure for a progress calculation process. [Figure 24] FIG. 10 is a diagram illustrating an example of data used for normalization processing in a modification of the second embodiment. [Figure 25] FIG. 10 is a diagram illustrating a normalization process according to a modification of the second embodiment. [Figure 26] 10 is a flowchart illustrating a process executed by an ECU in a modification of the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. The same or corresponding parts in the drawings will be denoted by the same reference numerals, and the description thereof will not be repeated. The embodiments and their modifications may be combined with each other as appropriate.
[0011] [Embodiment 1] 1 is a diagram schematically showing an overall configuration of a charge / discharge system including a vehicle on which a battery system according to Embodiment 1 is mounted. Referring to FIG. 1, charge / discharge system 100 includes vehicle 1 and power equipment 5.
[0012] The vehicle 1 is an electric vehicle equipped with a battery 20, for example, an electric vehicle (BEV: Battery Electric Vehicle). The vehicle 1 may be another type of electric vehicle, such as a plug-in hybrid electric vehicle (PHEV). The vehicle 1 is electrically connected to an electric power facility 5 via a charging cable 6. The vehicle 1 is configured to perform external charging, in which the battery 20 is charged using power supplied from an electric power facility external to the vehicle 1, such as the electric power facility 5. The vehicle 1 is also configured to perform external discharging, in which power stored in the battery 20 is discharged to the electric power facility 5.
[0013] The power equipment 5 is provided outside the vehicle 1. The power equipment 5 is a direct current (DC) charging equipment configured to supply high-current power feed to the battery 20 via a charging cable 6 during external charging. It is assumed that high-current power is also supplied from the battery 20 to the power equipment 5 during external discharging.
[0014] 2 is a diagram showing in detail the hardware configuration of vehicle 1 and power equipment 5. Referring to FIG. 2, power equipment 5 includes an AC / DC converter 51, an HMI (Human Machine Interface) device 53, and a control circuit 55.
[0015] The AC / DC converter 51 converts AC power from the power grid (AC power supply) 7 into DC power. This DC power is used to charge the battery 20. During external discharging, the AC / DC converter 51 converts DC power from the battery 20 into AC power and supplies it to the power grid 7. The HMI device 53 receives various user operations from the user of the vehicle 1. The user operations include an operation to instruct the start of external charging of the vehicle 1 and an operation to set a charging stop SOC (target SOC) during external charging. The control circuit 55 determines the user operations, controls the AC / DC converter 51, and exchanges various information with the vehicle 1 via, for example, CAN (Controller Area Network) communication.
[0016] The vehicle 1 includes an inlet 11, a voltage sensor 121, a current sensor 122, charging relays 131 and 132, a PCU (Power Control Unit) 16, a motor generator 17, and drive wheels 19. The vehicle 1 further includes a battery 20, system main relays (SMRs) 141 and 142, a voltage sensor 21, a current sensor 22, and a temperature sensor 23. The vehicle 1 further includes an HMI device 30, a start switch (ST-SW) 35, and an ECU 40.
[0017] The inlet 11 is configured to be connectable to a charging connector 61 of the charging cable 6. The voltage sensor 121 detects the DC voltage between the charging line PL1 and the charging line NL1. The current sensor 122 detects the current flowing through the charging line PL1. The charging relay 131 is connected to the charging line PL1. The charging relay 132 is connected to the charging line NL1.
[0018] The PCU 16 is electrically connected between the power lines PL2, NL2 and the motor generator 17. The PCU 16 is configured to drive the motor generator 17 by converting the output power of the battery 20 into AC power. The PCU 16 can also convert the AC power generated by the motor generator 17 into DC power to charge the battery 20.
[0019] The motor generator 17 is an AC rotating electric machine, such as a permanent magnet synchronous motor with a rotor in which a permanent magnet is embedded. The output torque of the motor generator 17 is transmitted to the drive wheels 19, thereby causing the vehicle 1 to travel. The motor generator 17 can also generate electricity using the rotational force of the drive wheels 19 when the vehicle 1 is braking.
[0020] The battery 20 is a secondary battery containing a nonaqueous electrolyte, and in this example, it is a lithium-ion battery whose reaction-participating substance is lithium ions. The state of charge of the battery 20 is represented by its SOC. The SOC corresponds one-to-one with the voltage VB of the battery 20. The battery 20 includes a plurality of cells 25. The negative electrode material of the battery 20 includes graphite. Lithium is absorbed between layers of the layered structure of the graphite. As a result, the graphite has a stage structure in which lithium is regularly absorbed in each specific layer. The stage structure changes due to changes in the SOC.
[0021] Battery 20 stores electric power for generating driving force for vehicle 1. Battery 20 can also store electric power generated by motor generator 17. The positive electrode of battery 20 is electrically connected to charging line PL1 and power line PL2 via SMR 141. The negative electrode of battery 20 is electrically connected to charging line NL1 and power line NL2 via SMR 142.
[0022] The voltage sensor 21 detects a voltage value VV of the battery 20 and provides the voltage value VV to the ECU 40. The voltage value VV is a detected value of the voltage VB of the battery 20. The current sensor 22 detects a current value CV of the battery 20 and provides the current value CV to the ECU 40. The current value CV is a detected value of the current IB of the battery 20. The current value CV is positive when the battery 20 is discharging and negative when the battery 20 is charging. The temperature sensor 23 detects a temperature value TV of the battery 20 and provides the temperature value TV to the ECU 40. The temperature value TV is a detected value of the temperature TB of the battery 20.
[0023] The HMI device 30 receives various user operations. The start switch 35 receives an operation to instruct starting or stopping the driving system of the vehicle 1. Starting the driving system corresponds to turning on the SMRs 141 and 142. Stopping the driving system corresponds to turning off the SMRs 141 and 142. After the driving system is stopped (SMRs 141 and 142 are turned off), the battery 20 is electrically disconnected from the PCU 16, and charging or discharging of the battery 20 stops.
[0024] The ECU 40 includes a CPU 41, a memory 42, and a timer 43. The CPU 41 executes various types of arithmetic processing. The memory 42 includes a ROM 42A and a RAM 42B. The ROM 42A stores programs executed by the CPU 41 and various types of data. The memory 42 may be included in the vehicle 1 as an external component of the ECU 40.
[0025] The ECU 40 controls various devices of the vehicle 1, such as the charging relays 131 and 132, the SMRs 141 and 142, the PCU 16, and the motor generator 17. The ECU 40 controls the charging power and discharging power of the battery 20 while the vehicle 1 is running by controlling the PCU 16. The ECU 40 can also limit the charging power and discharging power while the vehicle 1 is running (setting small upper limits for the charging power and the discharging power). The ECU 40 is configured to control the on / off of the charging relays 131 and 132 and the on / off of the SMRs 141 and 142. The ECU 40 estimates the SOC of the battery 20 based on the voltage value VV, the current value CV, and the temperature value TV. The ECU 40 sequentially stores the history of the voltage value VV and the current value CV in the memory 42.
[0026] The ECU 40 can execute an external charging control process that controls external charging. During this process, the ECU 40 turns on the charging relays 131 and 132 and the SMRs 141 and 142, and exchanges various information with the control circuit 55 via CAN communication. For example, the ECU 40 receives information from the control circuit 55 indicating that the start of external charging has been instructed using the HMI device 53. The ECU 40 can also execute an external discharging control process that controls external discharging.
[0027] During the external charging control process, the ECU 40 transmits a control command CM to the control circuit 55 to instruct power supply from the power equipment 5 to the inlet 11 (battery 20). The ECU 40 executes the external charging control process through the control command CM. The external charging control process includes a stop process to stop external charging. The stop process is executed when the SOC of the battery 20 reaches a charging stop SOC. The stop process is also executed when the voltage value VV reaches a charging completion voltage value of the battery 20 that corresponds to the charging stop SOC. The monitoring target for the stop process may be either the SOC or the voltage value VV. The stop process corresponds to, for example, a process of transmitting a control command CM to the power equipment 5 to instruct it to stop power supply and turning off the charging relays 131, 132 and the SMRs 141, 142. The ECU 40 can also start external charging by transmitting a control command CM to the power equipment 5 to instruct it to start power supply.
[0028] The battery 20, the voltage sensor 21, the current sensor 22, the temperature sensor 23, the charging relays 131 and 132, the SMRs 141 and 142, the PCU 16, and the ECU 40 form an example of a "battery system" of the present disclosure.
[0029] When the battery 20 is frequently charged and discharged at a high rate, for example, when external charging is performed using the power facility 5 (DC charging facility), the ion concentration in the nonaqueous electrolyte of the battery 20 becomes uneven. As a result, the internal resistance of the battery 20 increases, causing deterioration of the battery 20. Such deterioration, i.e., the phenomenon in which the internal resistance of the battery 20 increases due to uneven ion concentration in the nonaqueous electrolyte of the battery 20, is also referred to as "high-rate degradation" of the battery 20. When high-rate degradation of the battery 20 is detected, the ECU 40 preferably limits the charging and discharging power during driving to prevent further progression of the high-rate degradation. To limit the charging and discharging power in this manner at the appropriate time, it is necessary to appropriately estimate the presence or absence of high-rate degradation. Failure to appropriately estimate the presence or absence of high-rate degradation and to limit the charging and discharging power at the appropriate time may result in lithium deposition in the battery 20 and local overcharging and over-discharging.
[0030] One method for estimating the presence or absence of high-rate degradation is to calculate an integrated value of the detection values (current values CV) of the current sensor 22 and estimate the presence or absence of high-rate degradation based on this integrated value. In this method, detection errors in each current value CV may accumulate in the integrated value. This may result in a decrease in the accuracy of the estimation result of the presence or absence of high-rate degradation. Another method is to estimate the presence or absence of high-rate degradation based on detection values from multiple sensors in the vehicle 1. In this method, detection errors in the detection values of each sensor may adversely affect the estimation result. Still another method is to measure the impedance of the battery 20 and estimate the presence or absence of high-rate degradation based on the increase in the measured impedance. Because an increase in impedance is related not only to high-rate degradation but also to wear-out degradation of the battery 20, it is difficult to accurately distinguish between high-rate degradation and wear-out degradation using this method. As a result, it may be impossible to accurately estimate the presence or absence of high-rate degradation. As such, these methods may result in a decrease in the accuracy of the estimation result of the presence or absence of high-rate degradation.
[0031] The inventors have noticed that the presence or absence of high-rate degradation is reflected in the degree of polarization relaxation of the battery 20; specifically, the behavior of the voltage VB during polarization relaxation changes when high-rate degradation is present. Polarization is a phenomenon in which, after a current flows through the battery 20, an electromotive force is temporarily generated in the opposite direction to the current. In other words, polarization is a phenomenon in which the voltage VB temporarily increases after charging the battery 20, or the voltage VB temporarily decreases after discharging the battery 20. Polarization is resolved after a sufficiently long time has passed after charging or discharging (the electromotive force becomes zero and the voltage VB stabilizes). A method for estimating the presence or absence of high-rate degradation will be described below in the first embodiment.
[0032] The ECU 40 executes a calculation process and an estimation process to estimate the presence or absence of high-rate degradation. The calculation process corresponds to a process of calculating, according to the voltage value VV, an evaluation value for evaluating the degree of polarization relaxation after charging or discharging the battery 20. The estimation process corresponds to a process of estimating the presence or absence of high-rate degradation according to the evaluation value.
[0033] According to this configuration, the result of estimating the presence or absence of high-rate degradation is estimated based on the evaluation value (degree of polarization relaxation). The degree of polarization relaxation is easily calculated based on the voltage value VV. Therefore, to estimate the presence or absence of high-rate degradation, the integrated value of the detection value (current value CV) of the current sensor 22 and the detection values of many other sensors are not necessarily required. As a result, it is possible to avoid a situation in which the estimation result is affected by detection errors of many detection values. Therefore, the presence or absence of high-rate degradation can be appropriately estimated.
[0034] In this first embodiment, the evaluation value is the magnitude of the difference between the voltage value VV when charging or discharging of battery 20 stops and the voltage value VV when the secondary battery is depolarized after charging or discharging stops. In this case, the estimation process includes a process of estimating that there is no high-rate degradation when the magnitude of the difference is less than a predetermined first threshold, and a process of estimating that there is high-rate degradation when the magnitude of the difference is equal to or greater than the first threshold. This point will be explained in detail below.
[0035] 3 is a diagram illustrating the transition of the voltage value VV (voltage VB) after external charging of battery 20 is stopped, depending on whether high-rate degradation occurs. Referring to FIG. 3, lines 200 and 220 represent the transition of the voltage value VV in cases A and B, respectively. In this example, it is assumed that high-rate degradation occurs in case A and that high-rate degradation does not occur in case B.
[0036] At time t0, external charging is stopped. The voltage value VV at time t0 is also referred to as V0. V0 in cases A and B is also referred to as V0a and V0b, respectively (V0a > V0b). In both cases A and B, polarization relaxation (decrease in voltage value VV) begins after time t0 (lines 200 and 220). V0 varies depending on the charging stop SOC and the temperature TB and current IB during charging. The temperature TB during charging refers, for example, to the temperature TB immediately after charging. The current IB during charging refers, for example, to the average value of the current IB during charging.
[0037] At time t1, a predetermined time PR (e.g., 1 hour) has passed since time t0. The voltage value VV at time t1 is also represented as V1. V0 in cases A and B is also represented as V1a and V1b, respectively. In case A, polarization relaxation is not yet complete and continues. On the other hand, in case B, polarization has already been eliminated (polarization relaxation has been completed). The voltage value VV at the time of polarization elimination after charging or discharging has stopped is represented as V2. In this example, V1b is equal to V2.
[0038] Time t2 is later than time t1. In both cases A and B, at time t2, the voltage value VV is equal to V2, and therefore the polarization is eliminated. V2 is determined depending on the temperature TB. The time until the polarization is eliminated in case A (the length of the period from time t0 to time t2) is longer than the time until the polarization is eliminated in case B (the length of the period from time t0 to time t1). This means that the polarization relaxation is prolonged when high-rate degradation occurs.
[0039] In this example, the evaluation value EVV is the difference value (more specifically, its magnitude) ΔV02 between the voltage value V0 and the voltage value V2. The difference values ΔV02 in cases A and B are also represented as ΔV02a and ΔV02b, respectively (ΔV02a>ΔV02b). ΔV02a and ΔV02b correspond to the polarization relaxation amounts in cases A and B, respectively. The polarization relaxation amount in case A is greater than the polarization relaxation amount in case B. In this way, the presence or absence of high-rate degradation is reflected in the polarization relaxation amount (difference value ΔV02).
[0040] The ECU 40 determines the elimination of polarization based on the cessation of the decrease in the voltage value VV (the voltage value VV becoming constant). In case A, the ECU 40 determines that the polarization has been eliminated at time t2 and calculates ΔV02a. In this example, since ΔV02a is greater than or equal to a predetermined first threshold value, the ECU 40 estimates that there is high-rate degradation. In case B, the ECU 40 determines that the polarization has been eliminated at time t1 and calculates ΔV02b. In this example, since ΔV02b is less than the first threshold value, the ECU 40 estimates that there is no high-rate degradation.
[0041] The error included in the difference value ΔV02 is basically only the detection error of the voltage sensor 21 (specifically, the detection errors of V0 and V2), and is not affected by the errors of many other sensors. In Embodiment 1, since the evaluation value EVV is calculated as the difference value ΔV02, it is less likely to be affected by detection errors other than the detection error of the voltage sensor 21. As a result, the presence or absence of high-rate degradation can be accurately estimated according to the difference value ΔV02.
[0042] FIG. 4 is a diagram illustrating the transition of the voltage value VV (voltage VB) after the discharge of the battery 20 depending on the presence or absence of high-rate degradation. Referring to FIG. 4, lines 250 and 270 represent the transitions of the voltage value VV in cases A and B, respectively.
[0043] At time t0D, due to a user operation on the start switch �5, the running system is stopped and the discharge is stopped. The voltage value VV at time t0D is also represented as V0D. The V0D in cases A and B are also represented as V0Da and V0Db, respectively (V0Da < V0Db). In both cases A and B, after time t0D, polarization relaxation (increase in the voltage value VV) starts (lines 250 and 270). The voltage V0D changes depending on the discharge stop SOC, the temperature TB during discharge, and the current IB during discharge. The temperature TB during discharge refers to, for example, the temperature TB immediately after discharge. The current IB during discharge refers to, for example, the average value of the current IB during discharge. The discharge stop SOC corresponds to the SOC when the running system is off.
[0044] At time t1D, a predetermined time PRD has passed since time t0D. The voltage value VV at time t1D is also represented as V1D. V1D in cases A and B are also represented as V1Da and V1Db, respectively. In case A, polarization relaxation is not yet complete and continues. On the other hand, in case B, polarization has already been eliminated. The voltage value VV at the time of polarization elimination after charging or discharging has stopped is represented as V2D, and in this example, V1Db is equal to V2D.
[0045] Time t2D is later than time t1D. In both cases A and B, at time t2D, the voltage value VV is equal to V2D, and therefore the polarization is eliminated. V2D is determined depending on the temperature TB.
[0046] In this example, the evaluation value EVV is a difference value (more specifically, its magnitude) ΔV02D between V0D and V2D. The difference values ΔV02D (polarization relaxation amounts) in cases A and B are also represented as ΔV02Da and ΔV02Db, respectively (ΔV02Da>ΔV02Db).
[0047] The ECU 40 determines that polarization has been eliminated based on the fact that the increase in the voltage value VV has stopped. In case A, the ECU 40 determines that polarization has been eliminated at time t2D and calculates ΔV02Da. In this example, because ΔV02Da is equal to or greater than the first threshold value, the ECU 40 estimates that high-rate degradation has occurred. In case B, the ECU 40 determines that polarization has been eliminated at time t1D and calculates ΔV02Db. In this example, because ΔV02Db is less than the first threshold value, the ECU 40 estimates that high-rate degradation has not occurred.
[0048] The error included in the difference value ΔV02D is also less susceptible to detection errors other than the detection error (specifically, the detection error of V0D and V2D) of the voltage sensor 21. As a result, the presence or absence of high-rate degradation can be accurately estimated according to the difference value ΔV02D.
[0049] 5 is a flowchart illustrating processing executed by ECU 40 in this embodiment. This flowchart starts when ECU 40 receives information indicating that an instruction to start external charging has been issued from control circuit 55. In the following, steps are abbreviated as "S."
[0050] 5, ECU 40 acquires voltage value VV, current value CV, and temperature value TV from voltage sensor 21, current sensor 22, and temperature sensor 23, respectively (S15). ECU 40 calculates the SOC based on voltage value VV, current value CV, and temperature value TV (S20). ECU 40 calculates, for example, the SOC during external charging (charging start SOC).
[0051] The ECU 40 determines whether the SOC has reached the charging stop SOC or whether the voltage value VV has reached the charging completion voltage value corresponding to the charging stop SOC (S25). This charging completion voltage value is stored in the memory 42. If the SOC has not yet reached the charging stop SOC or the voltage value VV has not yet reached the charging completion voltage value (NO in S25), the process returns to S15. If the SOC has reached the charging stop SOC or the voltage value VV has reached the charging completion voltage value (YES in S25), the process proceeds to S30.
[0052] The ECU 40 stops external charging (S30). The ECU 40 stores the voltage value VV (V0) at the time when external charging stopped in the memory 42. The ECU 40 calculates the average value of the current value CV during external charging (S35) and stores this average value in the memory 42.
[0053] The ECU 40 acquires the voltage value VV (S40). The ECU 40 determines whether the polarization has been eliminated based on the voltage value VV (S45). If the polarization has not been eliminated (NO in S45), the process returns to S40. If the polarization has been eliminated (YES in S45), the ECU 40 executes the calculation process and estimation process described above (S50, S70).
[0054] 6 is a flowchart illustrating the procedure of the calculation process (S50) in the first embodiment. Referring to FIG. 6, the ECU 40 reads the voltage value VV (V0) at the time when external charging was stopped from the memory 42 (S52). The ECU 40 calculates the difference ΔV02 as the evaluation value EVV (S54). Thereafter, the process returns to the process of FIG. 5 and proceeds to S70.
[0055] FIG. 7 is a flowchart illustrating the procedure of the estimation process (S70) in the first embodiment. Referring to FIG. 7, the ECU 40 determines whether the difference ΔV02 is equal to or greater than a threshold value TH1 (corresponding to the first threshold value described above) (S72). If the difference ΔV02 is equal to or greater than the threshold value TH1 (YES in S72), the ECU 40 estimates that high-rate degradation is present (S74). If the difference ΔV02 is less than the threshold value TH1 (NO in S72), the ECU 40 estimates that high-rate degradation is absent (S76). Thereafter, the process returns to the process of FIG. 5 and proceeds to S80.
[0056] Referring again to FIG. 5, the ECU 40 sets the upper limit value Win of the charging power and the upper limit value Wout of the discharging power according to the results of the estimation process (S80). For example, if the ECU 40 estimates in S76 that there is no high-rate degradation, it sets the upper limit value Win to its default value and the upper limit value Wout to its default value. On the other hand, if the ECU 40 estimates there is high-rate degradation in S74, it sets the upper limit value Win to a value smaller than the default value and the upper limit value Wout to a value smaller than the default value, thereby limiting the charging power or discharging power of the battery 20. As a result, lithium deposition in the battery 20 and local overcharging and over-discharging can be avoided. The default values of the upper limit value Win and the upper limit value Wout are stored in the memory 42.
[0057] 5 to 7, ECU 40 executes the calculation process and estimation process after external charging, but the calculation process and estimation process may be executed after discharging is stopped (after the driving system is stopped). In this case, the calculation process corresponds to the process of calculating the difference value ΔV02D (FIG. 4), and the estimation process corresponds to the process of estimating the presence or absence of high-rate degradation according to whether the difference value ΔV02D is equal to or greater than threshold value TH1.
[0058] As described above, according to the first embodiment, the result of estimating the presence or absence of high-rate degradation is estimated in accordance with the evaluation value EVV (for example, the difference value ΔV02 or the difference value ΔV02D). As a result, the presence or absence of high-rate degradation can be appropriately estimated.
[0059] [First Modification of First Embodiment] When the SOC is within a predetermined SOC range around 60% (e.g., a range of 50% to 70%), the stage structure of the negative electrode of the battery 20 changes. Hereinafter, the range of 50% to 70% is also referred to as the "first range," and a range different from the first range (e.g., a range of 10% to 50% or 80% to 90%) is also referred to as the "second range." The inventors discovered that because the stage structure changes in the first range, the behavior of polarization relaxation differs significantly depending on whether high-rate degradation occurs. Specifically, when the charge termination SOC is within the first range, ΔV02a (FIG. 3) is significantly larger than ΔV02b. This point will be explained in detail below.
[0060] 8 is a diagram illustrating how the amount of polarization relaxation differs depending on whether high-rate degradation occurs when external charging is performed so that the SOC increases from 10% to 30%. That is, this example shows the case where external charging is performed within the second range.
[0061] Referring to Figure 8, the horizontal axis represents time, and the vertical axis represents a change ΔVV in the voltage value VV after time t0. The change ΔVV corresponds to VV(t0)-VV(t) (VV(t0)=V0). Times t0 to t2 and the difference value ΔV02 (ΔV02a, ΔV02b) are the same as those shown in Figure 3. In this example, the charging stop SOC is 30%, and the threshold value TH1 is TH11.
[0062] Lines 300 and 320 represent the change ΔVV in cases A and B, respectively. Lines 300 and 320 are based on lines 200 and 220, respectively.
[0063] 9 is a diagram illustrating how the amount of polarization relaxation differs depending on whether high-rate degradation occurs when external charging is performed so that the SOC increases from 50% to 70%. That is, this example shows a case where external charging is performed within a first range.
[0064] Referring to Figure 9, this figure differs from Figure 8 in that it shows lines 350 and 370 instead of lines 300 and 320. Lines 350 and 370 represent the change ΔVV in cases A and B, respectively. Lines 350 and 370 are based on lines 200 and 220, respectively. The charge termination SOC is 70%.
[0065] 8, ΔV02a is significantly larger than ΔV02b (ΔV02a>>ΔV02b). Therefore, as long as the threshold value TH1 is set appropriately, the ECU 40 can easily estimate the presence or absence of high-rate degradation according to the difference value ΔV02.
[0066] In this way, the behavior of polarization relaxation may differ depending on the charge stop SOC. In order to easily estimate the presence or absence of high-rate degradation according to the difference value ΔV02 (i.e., for ΔV02a to be significantly greater than ΔV02b), it is preferable that the charge stop SOC be within the first range (50% to 70%) described above.
[0067] In this first modification, the stop process described above includes stopping external charging so that the charging stop SOC falls within a first range (predetermined SOC range) when a predetermined condition for executing the calculation process and the estimation process is met. The predetermined condition is, for example, that a predetermined period (one month, for example) has elapsed since the estimation process was last executed. Information indicating the predetermined period is stored in the memory 42. The ECU 40 executes the calculation process and the estimation process after executing the stop process as described above.
[0068] With this configuration, external charging is stopped so that the charging stop SOC falls within the first range (even if the charging stop SOC is set within the second range). This forcibly creates a situation in which the presence or absence of high-rate degradation can be easily determined. As a result, the presence or absence of high-rate degradation can be easily estimated based on the difference value ΔV02. Therefore, the accuracy of estimating the presence or absence of high-rate degradation can be further improved.
[0069] In this example, in order to appropriately estimate the presence or absence of high-rate degradation, the ECU 40 sets the threshold value TH1 to TH12, which is lower than the threshold value TH1 (TH11) in the example of FIG. 8. Note that, because the behavior of polarization relaxation may differ depending on the characteristics of the battery 20 (cells 25), it may be preferable that the threshold value TH1 be higher than TH11. In this case, the ECU 40 may set the threshold value TH1 to a value higher than TH11. In this way, by setting the threshold value TH1 when the charging stop SOC is within the first range to be different from the threshold value TH1 when the charging stop SOC is within the second range, the presence or absence of high-rate degradation can be appropriately and easily estimated.
[0070] 10 is a flowchart illustrating processing executed by ECU 40 in Modification 1. This flowchart differs from the flowchart of the embodiment (FIG. 5) in that S10 and S12 are added, but is otherwise the same as the flowchart of FIG.
[0071] 10, the ECU 40 determines whether predetermined conditions for executing the calculation process and the estimation process are met (S10). If the predetermined conditions are not met (NO in S10), the process ends. If the predetermined conditions are met (YES in S10), the ECU 40 sets the charging stop SOC to an SOC within a first range (e.g., 70%) (S12). In this case, the aforementioned charging completion voltage value is determined so as to correspond one-to-one to the set SOC. After S12, the process returns to the process of FIG. 5 and proceeds to S15. Thereafter, the ECU 40 executes the stop process so that the charging stop SOC falls within the first range (S30), and executes the calculation process (S50) and the estimation process (S70) after the stop process.
[0072] In the above description, the predetermined SOC range is a 50% to 70% SOC range (first range), and the stopping process is a process of stopping external charging so that the charging stop SOC falls within the predetermined SOC range. However, such a predetermined SOC range may vary depending on the physical properties of battery 20, and may be appropriately predetermined based on these physical properties. Therefore, the "predetermined SOC range" in the present disclosure is not necessarily limited to a range of 50% to 70%, as long as it is predetermined as a range in which the stage structure changes when the SOC falls within the SOC range.
[0073] As described above, according to Modification 1, a situation in which the presence or absence of high-rate degradation can be easily determined is forcibly created, thereby further improving the accuracy of estimating the presence or absence of high-rate degradation.
[0074] [Modification 2 of Embodiment 1] The evaluation value EVV is not limited to the difference value ΔV02 (ΔV02D). The evaluation value EVV in the second modification will be described below.
[0075] Fig. 11 is a diagram illustrating an example of an evaluation value EVV in Modification 2. Referring to Fig. 11, lines 200, 220, times t0, t1, t2, V0 (V0a, V0b), V2, and difference values ΔV02 (ΔV02a, ΔV02b) are the same as those described in Fig. 3. V2 is an example of a "second value" in the present disclosure.
[0076] Time t1p is a time before time t1 and is an example of a "first time" in the present disclosure. At time t1p, a predetermined time PRP has elapsed since time t0. The voltage value VV at time t1p is also referred to as V1p. V1p is an example of a "first value" in the present disclosure.
[0077] V1p in cases A and B are also represented as V1pa and V1pb, respectively. ΔV01p is the difference between V0 and V1p (more specifically, its magnitude). ΔV01p in cases A and B are also represented as ΔV01pa and ΔV01pb, respectively. ΔV01pa and ΔV01pb are stored in memory 42 at time t1p. In both cases A and B, polarization relaxation is not yet complete at time t1p and is continuing.
[0078] In both cases A and B, in response to polarization elimination, the ECU 40 calculates the polarization relaxation rate RR, which is the ratio of ΔV01p to the difference value ΔV02, as the evaluation value EVV. For example, in case A, the polarization relaxation rate RR is calculated at time t2 as the ratio of ΔV01pa to ΔV02a. In case B, the polarization relaxation rate RR is calculated at time t1 as the ratio of ΔV01pb to ΔV02b. ΔV01p is an example of the "first change amount" of the present disclosure. The difference value ΔV02 is an example of the "second change amount" of the present disclosure.
[0079] The polarization relaxation rate RR (ΔV01pa / ΔV02a) in Case A is lower than the polarization relaxation rate RR (ΔV01pb / ΔV02b) in Case B. This means that the polarization relaxes more slowly when high-rate degradation is present than when it is not present.
[0080] The ECU 40 according to this second modification estimates the presence or absence of high-rate degradation according to the polarization relaxation rate RR at time t1p. In this case, the estimation process includes a process of estimating that there is no high-rate degradation when the polarization relaxation rate RR is equal to or greater than a predetermined second threshold value, and a process of estimating that there is high-rate degradation when the polarization relaxation rate RR is less than the second threshold value.
[0081] The presence or absence of high-rate degradation is related to whether the polarization relaxes relatively quickly or slowly. Whether the polarization relaxation is fast or slow is reflected in the polarization relaxation rate RR at time t1p. For example, if there is no high-rate degradation, the polarization is almost completely eliminated at time t1p, so the polarization relaxation rate RR at time t1p is relatively high. On the other hand, if there is high-rate degradation, the polarization is not yet fully eliminated at time t1p, so the polarization relaxation rate RR at time t1p is relatively low.
[0082] According to the estimation process of Modification 2, the presence or absence of high-rate degradation is estimated in accordance with the polarization relaxation rate RR at time t1p. This allows the ECU 40 to appropriately estimate the presence or absence of high-rate degradation based on whether the polarization relaxation is fast or slow.
[0083] Fig. 12 is a diagram illustrating another example of the evaluation value EVV in Modification 2. Referring to Fig. 12, lines 250, 270, times t0D, t1D, t2D, V0D (V0Da, V0Db), V2D, and difference value ΔV02D (ΔV02Da, ΔV02Db) are the same as those described in Fig. 4. V2D is an example of a "second value" in the present disclosure.
[0084] Time t1pD is a time before time t1D and is an example of a "first time" in the present disclosure. At time t1pD, a predetermined time PRPD has elapsed since time t0. The voltage value VV at time t1pD is also referred to as V1pD. V1pD is an example of a "first value" in the present disclosure.
[0085] V1pD in cases A and B are also represented as V1pDa and V1pDb, respectively. ΔV01pD is the difference between V0D and V1pD (more specifically, its magnitude). ΔV01pD in cases A and B are also represented as ΔV01pDa and ΔV01pDb, respectively. In cases A and B, ΔV01pDa and ΔV01pDb are stored in memory 42 at time t1pD. In both cases A and B, polarization relaxation is not yet complete at time t1pD and is continuing.
[0086] In both cases A and B, in response to polarization elimination, the ECU 40 calculates the polarization relaxation rate RR, which is the ratio of ΔV01pD to the difference value ΔV02D, as the evaluation value EVV. For example, in case A, the polarization relaxation rate RR is calculated at time t2D as the ratio of ΔV01pDa to ΔV02Da. In case B, the polarization relaxation rate RR is calculated at time t1D as the ratio of ΔV01pDb to ΔV02Db. ΔV01pD is an example of the "first change amount" in the present disclosure. The difference value ΔV02D is an example of the "second change amount" in the present disclosure.
[0087] The polarization relaxation rate RR (ΔV01pDa / ΔV02Da) in Case A is lower than the polarization relaxation rate RR (ΔV01pDb / ΔV02Db) in Case B. In this example, the presence or absence of high-rate degradation is also reflected in the polarization relaxation rate RR. Therefore, similar to the example in FIG. 11, the ECU 40 can estimate the presence or absence of high-rate degradation according to the polarization relaxation rate RR.
[0088] 13 is a flowchart illustrating the procedure of the calculation process (S50A) in Modification 2. This flowchart differs from the flowchart of Embodiment 1 (FIG. 6) in that S52A and S54A are executed instead of S52 and S54. S50A is executed instead of S50.
[0089] 13, the ECU 40 reads V0, V1p, and V2 from the memory 42 (S52A). The ECU 40 calculates the polarization relaxation rate RR at time t1p as an evaluation value EVV (S54A). Thereafter, the process returns to the process of FIG. 5 and proceeds to S70A, which will be described below.
[0090] 14 is a flowchart illustrating the procedure of the estimation process (S70A) in Modification 2. This flowchart differs from the flowchart of Embodiment 1 (FIG. 7) in that S72A, S74A, and S76A are executed instead of S72, S74, and S76. S70A is executed instead of S70.
[0091] 14, the ECU 40 determines whether the polarization relaxation rate RR at time t1p is equal to or greater than a threshold value TH2 (corresponding to the second threshold value described above) (S72A). If the polarization relaxation rate RR is equal to or greater than the threshold value TH2 (YES in S72A), the ECU 40 estimates that high-rate degradation is not present (S76A). If the polarization relaxation rate RR is less than the threshold value TH1 (NO in S72A), the ECU 40 estimates that high-rate degradation is present (S74A). Thereafter, the process returns to the process of FIG. 5 and proceeds to S80.
[0092] The ECU 40 may execute the calculation process and estimation process after stopping the discharge of the battery 20. In this case, the ECU 40 calculates the polarization relaxation rate RR at time t1pD, and estimates the presence or absence of high-rate degradation according to the calculation result.
[0093] As described above, the ECU 40 may calculate the polarization relaxation rate RR at time t1p (t1pD) as the evaluation value EVV, and estimate the presence or absence of high-rate degradation according to the polarization relaxation rate RR.
[0094] [Third Modification of First Embodiment] The evaluation value EVV is not limited to the difference value ΔV02 (ΔV02D) and the polarization relaxation rate RR. The evaluation value EVV in Modification 3 will be described below.
[0095] Fig. 15 is a diagram illustrating an example of evaluation value EVV in Modification Example 3. Referring to Fig. 15, lines 200, 220, times t0, t1, t2, V0 (V0a, V0b), and V2 are the same as those described in Fig. 3. Time t1p is the same as that described in Fig. 11.
[0096] Time t1pi is a time slightly after time t1p and before time t1. The predetermined period from time t1p to time t1pi is also referred to as the predetermined period PP. The amount of change in the voltage value VV during the predetermined period PP is also referred to as the amount of change VR. The amount of change VR is an example of the "third amount of change" of the present disclosure. When the length of the predetermined period PP is sufficiently short, the amount of change VR corresponds to the rate of change (differential coefficient) of the voltage value VV at time t1p. The amounts of change VR in cases A and B are also referred to as VRa and VRb, respectively.
[0097] In case A, the change VR is higher than in case B (VRa>VRb). This is because the polarization is almost completely eliminated at time t1p in case B, whereas the polarization is not yet fully eliminated at time t1p in case A (lines 200, 220).
[0098] The ECU 40 estimates the presence or absence of high-rate degradation according to the amount of change VR. In this case, the estimation process includes a process of estimating that there is no high-rate degradation when the amount of change VR is less than a third threshold value, and a process of estimating that there is high-rate degradation when the amount of change VR is equal to or greater than the third threshold value.
[0099] As mentioned above, the presence or absence of high-rate degradation is related to whether the polarization relaxes relatively quickly or slowly. Whether the polarization relaxation is fast or slow is reflected in the amount of change VR. For example, if there is no high-rate degradation, the polarization is largely eliminated at time t1p, so the amount of change VR is relatively small. On the other hand, if there is high-rate degradation, the polarization has not yet been fully eliminated at time t1p, so the amount of change VR is relatively large.
[0100] According to the above estimation process, the presence or absence of high-rate degradation is estimated based on the amount of change VR. In this case, the ECU 40 can immediately calculate the amount of change VR after the predetermined period PP has elapsed after time t1p. As a result, the voltage value VV at the time of polarization elimination (time t1 or time t2) is not necessarily required to estimate the presence or absence of high-rate degradation. Therefore, even if the user of the vehicle 1 starts driving the vehicle 1 without waiting until polarization elimination, the ECU 40 can appropriately estimate the presence or absence of high-rate degradation immediately after the predetermined period PP. As a result, the charging power and discharging power can be limited earlier than in the first embodiment and its first to third modifications. Therefore, protection of the battery 20 can be started earlier, and user convenience can be improved.
[0101] Fig. 16 is a diagram illustrating another example of the evaluation value EVV in Modification Example 3. Referring to Fig. 16, lines 250, 270, times t0D, t1D, t2D, V0D (V0Da, V0Db), and V2D are the same as those described in Fig. 4. Time t1pD is the same as that described in Fig. 12.
[0102] Time t1piD is a time slightly after time t1pD and before time t1D. The predetermined period from time t1pD to time t1piD is also referred to as the predetermined period PPD. The amount of change in the voltage value VV during the predetermined period PPD is also referred to as the amount of change VRD. The amount of change VRD is an example of the "third amount of change" of the present disclosure. When the length of the predetermined period PPD is sufficiently short, the amount of change VRD corresponds to the rate of change of the voltage value VV at time t1pD. The amounts of change VRD in cases A and B are also referred to as VRDa and VRDb, respectively.
[0103] In Case A, the change VRD is higher than in Case B (VRDa>VRDb). This is because the polarization is almost completely eliminated at time t1pD in Case B, whereas the polarization is not yet fully eliminated at time t1pD in Case A (lines 250, 270).
[0104] The ECU 40 estimates the presence or absence of high-rate degradation according to the change amount VRD. In this case, the estimation process includes a process of estimating that there is no high-rate degradation when the change amount VRD is less than a third threshold value, and a process of estimating that there is high-rate degradation when the change amount VRD is equal to or greater than the third threshold value. According to this estimation process, the ECU 40 can estimate the presence or absence of high-rate degradation immediately after the predetermined period PPD, as in the example of FIG. 15 .
[0105] 17 is a flowchart illustrating the processing executed by the ECU 40 in Modification 3. This flowchart differs from the flowchart of the embodiment (FIG. 5) in that S44, S50B, and S70B are executed instead of S45, S50, and S70, respectively, but is otherwise the same as the flowchart of FIG.
[0106] 17, after S15 to S35, ECU 40 determines whether or not a predetermined period PP has elapsed since time t1p, i.e., whether or not time t1pi has arrived (S44). If the predetermined period PP has not yet elapsed since time t1p (NO in S44), the process returns to S40. If the predetermined period PP has elapsed since time t1p (YES in S44), the process proceeds to S50B and S70B.
[0107] 18 is a flowchart illustrating the procedure of the calculation process (S50B) in Modification 3. This flowchart differs from the flowchart (FIG. 6) in Embodiment 1 in that S52B and S54B are executed instead of S52 and S54.
[0108] 18, ECU 40 reads V1p from memory 42 (S52B), and calculates the amount of change VR as evaluation value EVV (S54B). Thereafter, the process returns to the process of FIG. 17 and proceeds to S70B.
[0109] 19 is a flowchart illustrating the procedure of the estimation process (S70B) in Modification 3. This flowchart differs from the flowchart of Embodiment 1 (FIG. 7) in that S72B, S74B, and S76B are executed instead of S72, S74, and S76.
[0110] 19, ECU 40 determines whether or not the change VR is equal to or greater than a threshold value TH3 (corresponding to the third threshold value described above) (S72B). If the change VR is equal to or greater than threshold value TH3 (YES in S72B), ECU 40 estimates that high-rate degradation is present (S74B). If the change VR is less than threshold value TH3 (NO in S72B), ECU 40 estimates that high-rate degradation is absent (S76B). Thereafter, the process returns to the process of FIG. 17 and proceeds to S80.
[0111] The ECU 40 may execute the calculation process and estimation process at time t1piD after stopping the discharge of the battery 20. In this case, the ECU 40 calculates the change amount VRD and estimates the presence or absence of high-rate degradation according to the calculation result.
[0112] As described above, the ECU 40 may calculate the amount of change VR (VRD) as the evaluation value EVV, and estimate the presence or absence of high-rate degradation according to the amount of change VR (VRD).
[0113] [Fourth Modification of First Embodiment] 11 and 12, the voltage value VV (V2 or V2D) at the time of depolarization of battery 20 after charging or discharging has stopped may be stored in advance in memory 42. In this case, the voltage value VV at the time of depolarization is stored in memory 42 in association with the temperature value TV immediately after charging or discharging has stopped (for example, at time t0 or time t0D).
[0114] According to such a configuration, the ECU 40 can pre-determine V2 (V2D) according to the temperature value TV immediately after charging or discharging before depolarization (at times t1, t2, t1D or t2D). As a result, the ECU 40 can calculate the polarization relaxation rate RR at time t1p (t1pD), so it is not necessarily required to wait until time t2 (t2D). Therefore, similar to the third modification example of the first embodiment, the convenience for the user can be improved.
[0115] [Modification Example 5 of Embodiment 1] In the second to fourth modification examples of the first embodiment, the voltage value VV (V0 or V0D) when charging and discharging stops is made different depending on the presence or absence of high-rate deterioration (for example, V0a > V0b, or V0Da < V0Db). In contrast, the second to fourth modification examples of the first embodiment are also applicable to cases where V0 (V0D) is independent of the presence or absence of high-rate deterioration (specifically, V0a is equal to V0b, or V0Da is equal to V0Db).
[0116] [Modification Example 6 of Embodiment 1] The ECU 40 may execute calculation processing and estimation processing after external discharge control. That is, the "discharge of the secondary battery" in the present disclosure includes both discharge during traveling and external discharge.
[0117] [Embodiment 2] How the high-rate deterioration progresses (for example, on a daily basis) is estimated according to the previous evaluation value EVV (previous evaluation value) calculated at a time point a predetermined period before the current time point and the current evaluation value EVV (current evaluation value) calculated at the current time point. The current time point is also referred to as the "first time point", and the time point a predetermined period before the first time point is also referred to as the "second time point". By comparing the current evaluation value with the previous evaluation value (for example, calculating the magnitude of the difference value between the current evaluation value and the previous evaluation value), it becomes possible to calculate (observe) the progress degree of high-rate deterioration from the second time point to the first time point. In this way, the progress degree is used to observe the transition of the evaluation value EVV.
[0118] The evaluation value EVV may vary depending on a predetermined parameter that affects polarization relaxation of the battery 20, in addition to the presence or absence of high-rate degradation (the degree of polarization relaxation). The parameter may be, for example, the current IB during charging and discharging or the temperature TB. If the current parameter, which is a parameter at the time when the current evaluation value is calculated (a first time point), differs from the previous parameter, which is a parameter at the time when the previous evaluation value was calculated (a second time point), the result of the comparison between the current evaluation value and the previous evaluation value may be affected by the numerical difference between these parameters. For example, even if no high-rate degradation actually progresses between the first time point and the second time point, if the current IB during charging and discharging at the first time point differs from the current IB during charging and discharging at the second time point, the current evaluation value may differ from the previous evaluation value due to the numerical difference between these currents IB. As a result, it may be erroneously estimated that high-rate degradation progressed between the first time point and the second time point.
[0119] In this way, if the current parameters are different from the previous parameters, the degree of progress of high-rate degradation may not be calculated appropriately according to the results of the comparison. Therefore, in order to properly calculate the degree of progress of high-rate degradation, it is preferable to reduce the influence of the numerical difference between the current parameters and the previous parameters as much as possible.
[0120] In the second embodiment, the ECU 40 has a feature for addressing the above problem. Specifically, the ECU 40 executes a normalization process and a progress calculation process. The normalization process corresponds to a process of normalizing at least one of the previous evaluation value and the current evaluation value in accordance with a reference value of the parameter, a current parameter, and a previous parameter. The reference value is pre-stored in the memory 42. The normalization process is executed to reduce the influence of a numerical difference between the previous parameter and the current parameter on the calculation result of the progress of high-rate degradation (for example, to align the conditions of the current IB or the temperature TB).
[0121] The progress calculation process corresponds to a process of estimating the progress of high-rate degradation from the second time point to the first time point according to the result of the normalization process. Specifically, the progress calculation process corresponds to a process of comparing one normalized parameter (which may be either the current parameter or the previous parameter) with the other non-normalized parameter, or comparing the normalized current parameter with the normalized previous parameter, and estimating the progress of high-rate degradation according to the comparison result.
[0122] The ECU 40 sets the upper limit values Win and Wout according to the results of the progress calculation process. For example, if the calculated progress is less than a predetermined threshold progress, the ECU 40 maintains the upper limit values Win and Wout at the upper limit values Win and Wout at the second time point, respectively. If the progress is equal to or greater than the predetermined threshold progress, the ECU 40 sets the upper limit values Win and Wout to be smaller than the upper limit values Win and Wout at the second time point, respectively. This limits the charging power and discharging power, thereby preventing further progression of high-rate degradation.
[0123] According to the normalization process and the progress calculation process, the progress is calculated with at least one of the previous parameter and the current parameter normalized. This reduces the influence of the numerical difference between these parameters on the calculation result of the progress of high-rate degradation. As a result, it becomes possible to properly calculate the progress of high-rate degradation.
[0124] FIG. 20 is a diagram illustrating an example of data used for normalization processing in the second embodiment. Referring to FIG. 20, data 400 is stored in memory 42. In this example, the predetermined parameter that affects polarization relaxation is the current IB during external charging. In this example, the current IB during external charging is the average of the current IB during external charging, but it may be the current IB immediately before external charging is stopped, or a current determined according to the amount of IR drop in battery 20 immediately after external charging is stopped. In this example, the evaluation value EVV is the difference ΔV02 (FIG. 3).
[0125] The data 400 represents the difference ΔV02 when the current IB is Ia, Ib, or Ic for each of the initial point in time of use of the battery 20, the first point in time, and the second point in time (e.g., 10 days ago). The temperature TB during external charging is assumed to be TB1 at each of the initial point in time of use, the first point in time, and the second point in time. The second point in time is later than the initial point in time of use. Ia is assumed to be the reference value Iref of the current IB in the normalization process. The data 400 includes initial evaluation value information 410, previous evaluation value information 420, and current evaluation value information 430.
[0126] The initial evaluation value information 410 includes the difference ΔV02 calculated in the evaluation test at the initial stage of use for each current IB (current value CV) during external charging. This difference ΔV02 corresponds to the initial evaluation value, which is the evaluation value EVV at the initial stage of use. At the initial stage of use, the battery 20 is new and has not yet been used, so there is no high-rate degradation.
[0127] The initial evaluation value information 410 includes ΔV02_Ia0, ΔV02_Ib0, and ΔV02_Ic0. ΔV02_Ia0, ΔV02_Ib0, and ΔV02_Ic0 correspond to the difference ΔV02 when the current IB is Ia, Ib, or Ic in the evaluation test, respectively. In this way, the initial evaluation value information 410 indicates a first relationship, which is a correspondence relationship between the initial evaluation value and the current IB. This relationship includes a correspondence relationship between Ia and the reference evaluation value (ΔV02_Ia0), which is the initial evaluation value when the current IB is Ia (reference value Iref). ΔV02_Ia0 corresponds to the multiplication value of ΔV02_Ic0 and the coefficient C1a. ΔV02_Ib0 corresponds to the multiplication value of ΔV02_Ic0 and the coefficient C1b.
[0128] The previous evaluation value information 420 includes a difference ΔV02 (ΔV02_Ia1) as the previous evaluation value calculated at the second time point. Assume that the current IB was Ia at the second time point. In this example, ΔV02_Ia1 is equal to ΔV02_Ia0. This indicates that there was no high-rate degradation at the second time point, as was the case at the initial point of use. The following description of the second embodiment is based on the assumption that there was no high-rate degradation at the second time point. In this example, the previous parameter is equal to the reference value Iref(Ia).
[0129] The current evaluation value information 430 includes a difference ΔV02 (ΔV02_Ic2) as a current evaluation value calculated at a first point in time. It is assumed that the current IB is Ic at the time ΔV02_Ic2 is calculated (first point in time).
[0130] Since the current IB at the second time point when the previous evaluation value was calculated is Ia, while the current IB at the first time point when the current evaluation value was calculated is Ic, it is difficult to properly calculate the degree of progress of high-rate degradation based on the results of a simple comparison between the previous evaluation value and the current evaluation value.
[0131] The ECU 40 uses the first relationship (coefficient C1a) to perform normalization processing to normalize the current evaluation value in accordance with the current parameter (Ic), the previous parameter (Ia), and the reference value Iref. In this example, since the previous parameter is equal to the reference value Iref, the ECU 40 does not need to normalize the previous evaluation value, and normalizes the current evaluation value by multiplying the current evaluation value by the coefficient C1a. The previous parameter and the current parameter are stored in the memory 42.
[0132] The normalized current evaluation value (ΔV02_Ia2n) is calculated as a value that would be obtained if the current parameter were the reference value Iref(Ia). The normalized current evaluation value is larger than the previous evaluation value by the increment INC1. The ECU 40 can calculate the degree of progress of high-rate deterioration from the second time point to the first time point according to the increment INC1. The ECU 40 may use, for example, the increment INC1 as the degree of progress.
[0133] The reference value may be a current parameter. In this case, the normalization process corresponds to a process of normalizing the previous evaluation value in accordance with the current parameter (Ic), the previous parameter (Ia), and the reference value Iref using the first relationship (coefficient C1a). Specifically, the ECU 40 normalizes the previous evaluation value by multiplying the previous evaluation value by the reciprocal of the coefficient C1a. The current evaluation value (ΔV02_Ic2) is larger than the normalized previous evaluation value (ΔV02_Ia1n) by an increment INC1n. The ECU 40 may calculate the degree of progress of high-rate deterioration in accordance with the increment INC1n.
[0134] As a predetermined parameter affecting polarization relaxation, the temperature TB during external charging (e.g., immediately after external charging) may be used instead of the current IB during external charging. In this case, it is assumed that the current IB during external charging is the same at the initial point in time of use, the first point in time, and the second point in time. Data 400 represents a difference ΔV02 that depends on the temperature TB for each of the initial point in time of use, the first point in time, and the second point in time. Initial evaluation value information 410 includes the difference ΔV02 calculated in the evaluation test at the initial point in time of use for each temperature TB (temperature value TV) during external charging. Each of these differences corresponds to an initial evaluation value. ECU 40 performs a normalization process in accordance with the correspondence between the initial evaluation value and the temperature TB, the temperature TB when the current evaluation value was calculated, the temperature TB when the previous evaluation value was calculated, and the reference value of the temperature TB, thereby performing a progress calculation process.
[0135] 21 is a flowchart illustrating the processing executed by the ECU 40 in the second embodiment. This flowchart starts when the evaluation value EVV (current evaluation value) is calculated at a first time point.
[0136] 21, ECU 40 determines whether the current parameters match the previous parameters (S105). If the current parameters match the previous parameters (YES in S105), the process proceeds to progress calculation processing (S120). If the current parameters differ from the previous parameters (NO in S105), the process proceeds to normalization processing (S110) and progress calculation processing (S120).
[0137] 22 is a flowchart illustrating the details of the procedure of the normalization process (S110). Referring to FIG. 22, the ECU 40 reads out the initial evaluation value information 410 (first relationship) and the reference value Iref of the current IB from the memory 42 (S112). The ECU 40 normalizes the current evaluation value using the initial evaluation value information 410 in accordance with the reference value Iref, the current parameter, and the previous parameter (S114). Thereafter, the process returns to the process of FIG. 21 and proceeds to S120.
[0138] 23 is a flowchart illustrating the details of the procedure of the progress calculation process (S120). Referring to FIG. 23, ECU 40 switches the process (S122) in accordance with the result of the determination made in S105 of FIG. 21 as to whether the current parameter matches the previous parameter.
[0139] If the current parameter is different from the previous parameter (NO in S122), the ECU 40 calculates the degree of progress of high-rate degradation according to the magnitude of the difference between the normalized current evaluation value and the previous evaluation value (for example, the increment INC1 in FIG. 20) (S124). If the current parameter matches the previous parameter (YES in S122), the ECU 40 calculates the degree of progress according to the magnitude of the difference between the current evaluation value and the previous evaluation value (S126). Thereafter, the process returns to the process of FIG. 21 and proceeds to S140.
[0140] Referring again to FIG. 21, the ECU 40 sets the upper limit value Win and the upper limit value Wout (S140) in accordance with the result of the progress degree calculation process (S120).
[0141] As described above, according to the second embodiment, the influence of the numerical difference between the previous parameter and the current parameter on the calculation result of the progress of high-rate degradation is reduced. As a result, it becomes possible to properly calculate the progress of high-rate degradation. Therefore, it is possible to properly avoid further progress of high-rate degradation.
[0142] [Modification of the second embodiment] When the first relationship described above is used, the normalization process is based on the assumption that there is no high-rate degradation at the second time point (V02_Ia1=V02_Ia0 in FIG. 20). This variation describes a normalization process that can also be applied to an example where there is high-rate degradation at the second time point.
[0143] First, ECU 40 estimates whether or not high-rate degradation exists at the second time point according to the previous evaluation value. If ECU 40 estimates that high-rate degradation exists at the second time point, ECU 40 determines the degree of high-rate degradation at the second time point according to the previous evaluation value and performs normalization processing according to the degree of high-rate degradation. The degree of high-rate degradation is calculated by the following formula (1) as a change rate (%) indicating how much the evaluation value at the time of high-rate degradation, which is the evaluation value EVV at the time of high-rate degradation, has changed from the corresponding initial evaluation value.
[0144] (High-rate degradation level) = {[(High-rate degradation evaluation value) - (Initial evaluation value)] / (Initial evaluation value)} × 100…(1) The ECU 40 estimates that high-rate degradation is present when the high-rate degradation level is non-zero (or equal to or greater than a predetermined threshold degradation level). Otherwise, the ECU 40 estimates that high-rate degradation is absent.
[0145] The corresponding initial evaluation value is the initial evaluation value when the current IB at the initial point of use is the current IB when the evaluation value during high-rate degradation is calculated. For example, when the current IB when the evaluation value during high-rate degradation is calculated is Ic (FIG. 20), the initial evaluation value (ΔV02_Ic0) corresponding to Ic is the corresponding initial evaluation value.
[0146] The high-rate degradation degree is calculated based on a specific evaluation value during high-rate degradation (e.g., V02_Icx). For example, the ECU 40 calculates the high-rate degradation degree by substituting the specific evaluation value into the evaluation value during high-rate degradation in equation (1).
[0147] Fig. 24 is a diagram illustrating an example of data used for the normalization process in this modified example. Referring to Fig. 24, initial evaluation value information 410 and high-rate degradation evaluation value information 440 are stored in memory 42. Initial evaluation value information 410 is the same as that in Fig. 20. In this example, the predetermined parameter is the current IB during external charging, but may also be the temperature TB immediately after external charging.
[0148] The high-rate degradation evaluation value information 440 includes ΔV02_Iax, ΔV02_Ibx, and ΔV02_Icx. ΔV02_Iax, ΔV02_Ibx, and ΔV02_Icx correspond to the difference ΔV02 when the current IB is Ia, Ib, or Ic in the evaluation test. This evaluation test is performed under conditions where the degree of high-rate degradation is X% (>0). ΔV02_Iax, ΔV02_Ibx, and ΔV02_Icx each correspond to an evaluation value under high-rate degradation under such conditions.
[0149] The evaluation value information 440 during high-rate degradation indicates a second relationship, which is a correspondence relationship between the evaluation value during high-rate degradation and the current IB. The evaluation value information 440 during high-rate degradation differs from the initial evaluation value information 410 in that it is associated with the degree of high-rate degradation. The evaluation value information 440 during high-rate degradation indicates how the evaluation value EVV changes depending on the current IB during high-rate degradation. It is assumed that the current IB when the evaluation test was conducted under conditions in which the degree of high-rate degradation was X% was IB1. ΔV02_Iax corresponds to the multiplication value of ΔV02_Icx and the coefficient C2a. ΔV02_Ibx corresponds to the multiplication value of ΔV02_Icx and the coefficient C2b. The memory 42 may further store, for each current value CV, evaluation value information during high-rate degradation (not shown) for a degree of high-rate degradation other than X%.
[0150] Fig. 25 is a diagram illustrating the normalization process in this modified example. Referring to Fig. 25, data 450 is stored in memory 42. The reference value Iref is assumed to be Ia, as in the example of Fig. 20. The data 450 includes initial evaluation value information 410, previous evaluation value information 470, and current evaluation value information 480.
[0151] The previous evaluation value information 470 includes a difference ΔV02 (ΔV02_Icx) as the previous evaluation value calculated at a second time point. Assume that the current IB was Ic at the time ΔV02_Icx was calculated (the second time point). Because the degree of high-rate degradation at the second time point is X%, ΔV02_Icx is larger than ΔV02_Ic0 by an increment INC2. In this example, the previous evaluation value is used as the high-rate degradation evaluation value corresponding to the second time point.
[0152] The current evaluation value information 480 includes the difference ΔV02 (ΔV02_Ia2) as the current evaluation value calculated at the first point in time. It is assumed that the current IB is Ia at the first point in time.
[0153] The degree of high-rate degradation at the second time point is determined using equation (1) in accordance with the previous evaluation value and the corresponding initial evaluation value, with the previous evaluation value being the evaluation value at the time of high-rate degradation.
[0154] The ECU 40 estimates the presence or absence of high-rate degradation at the second time point according to the previous evaluation value, and if it estimates that high-rate degradation exists at the second time point, determines the degree of high-rate degradation (X%) at the second time point. The ECU 40 executes normalization processing according to the determined degree of high-rate degradation. This normalization processing corresponds to normalizing the previous evaluation value according to the current IB at the second time point and the reference value Iref (Ia) using evaluation value information at high-rate degradation (e.g., evaluation value information at high-rate degradation 440 (second relationship)) associated with the determined degree of high-rate degradation. The normalization processing is processing in which the previous evaluation value is multiplied by a coefficient C2a (≠ C1a).
[0155] The normalized previous evaluation value (ΔV02_IaXn) is calculated as the value that would be obtained if the current IB at the second time point were the reference value Iref. The normalized previous evaluation value is larger than ΔV02_Ia0 by an increment INC2n. The increment INC2n is the product of the increment INC2 and a coefficient cn. In this example, the following equation (2) holds true.
[0156] ΔV02_IaXn=(ΔV02_Ia0)+(INC2n) =(ΔV02_Ic0)×(C1a)+(INC2)×(cn)…(2) When executing the progress calculation process, ECU 40 can calculate the progress of high-rate degradation from the initial point in time of use to the second point in time according to increment INC2 (or increment INC2n). Similarly, when executing the progress calculation process, ECU 40 can calculate the progress of high-rate degradation from the second point in time to the first point in time according to increment INC3. Increment INC3 is the difference between the difference ΔV02 (ΔV02_Ia2) at the first point in time and ΔV02_IaXn. By executing the progress calculation process in this manner, the progression of high-rate degradation can be appropriately observed.
[0157] Fig. 26 is a flowchart illustrating the processing in this modification that is executed by ECU 40. Referring to Fig. 26, this flowchart differs from the flowchart of the second embodiment (Fig. 21) in that S106 to S108, S110A1, S110A2, S120A, and S140A are executed instead of S110, S120, and S140, but is otherwise the same as the flowchart of Fig. 21.
[0158] If the current parameters match the previous parameters (YES in S105), the process proceeds from S105 to S120A, otherwise (NO in S105), the process proceeds from S105 to S106.
[0159] The ECU 40 reads the previous evaluation value from the memory 42 (S106) and estimates whether or not there is high-rate degradation at the second time point according to the previous evaluation value (S107). If there is no high-rate degradation at the second time point (NO in S107), the ECU 40 executes normalization processing using the first relationship (initial evaluation value information 410) (S110A1). S110A1 is the same as S110 in the second embodiment (FIG. 22).
[0160] If high-rate degradation exists at the second time point (YES in S107), the ECU 40 determines the degree of high-rate degradation at the second time point according to the evaluation value at the time of high-rate degradation and the corresponding initial evaluation value, using the previous evaluation value as the evaluation value at the time of high-rate degradation (S108). The ECU 40 executes normalization processing using a second relationship associated with the determined degree of high-rate degradation (S110A2). Specifically, the ECU 40 normalizes the previous evaluation value according to the previous parameter and the reference value (for example, by multiplying the previous evaluation value by a coefficient C2a) using the second relationship.
[0161] The ECU 40 executes a progress calculation process (S120A) according to whether S110A1 or S110A2 has been executed. When S110A1 is executed, S120A is the same as S124 (FIG. 23). When S110A2 is executed, S120A corresponds to a process of calculating an increment INC2n as the progress at the second time point and calculating an increment INC3 as the progress from the second time point to the first time point. Note that when the current parameter matches the previous parameter (YES in S105), the progress calculation process corresponds to a process of calculating the magnitude of the difference between the previous evaluation value and the current evaluation value as the progress.
[0162] The ECU 40 sets the upper limit values Win and Wout in accordance with the result of the progress calculation process (S140A). For example, if the increment INC3 is equal to or greater than the threshold progress, the ECU 40 sets the upper limit values Win and Wout to be smaller than the upper limit values Win and Wout at the second time point, respectively.
[0163] According to this modification, if there is high-rate degradation at the second time point, the previous evaluation value is normalized using high-rate degradation evaluation value information 440 (second relationship) instead of initial evaluation value information 410 (first relationship). This allows the previous evaluation value to be properly normalized even in a situation where there is high-rate degradation at the second time point. As a result, the progress of high-rate degradation from the second time point to the first time point can be more properly calculated.
[0164] The embodiments disclosed herein should be considered to be illustrative in all respects and not restrictive. The scope of the present invention is defined by the claims, not by the above description, and is intended to include all modifications within the meaning and scope of the claims. [Explanation of symbols]
[0165] 1 Vehicle, 5 Power equipment, 20 Battery, 21,121 Voltage sensor, 22,122 Current sensor, 23 Temperature sensor, 35 Start switch, 40 ECU.
Claims
1. A battery system for estimating the presence or absence of deterioration of a secondary battery containing a non-aqueous electrolyte, wherein the deterioration is a phenomenon in which the internal resistance of the secondary battery increases due to a bias in ion concentration in the non-aqueous electrolyte, a voltage sensor for detecting a voltage value of the secondary battery; a processing unit configured to perform the calculation process and the estimation process; the calculation process includes a process of calculating an evaluation value for evaluating a degree of polarization relaxation after charging or discharging the secondary battery according to the voltage value; the estimation process includes a process of estimating the presence or absence of the deterioration in accordance with the evaluation value, the evaluation value is a magnitude of a difference between the voltage value when the charging or discharging is stopped and the voltage value when polarization of the secondary battery is eliminated after the charging or discharging is stopped, The estimation process includes: a process of estimating that there is no degradation when the magnitude of the difference value is less than a first threshold value; and estimating that the deterioration exists when the magnitude of the difference value is equal to or greater than the first threshold value, The battery system is mounted on a vehicle, the vehicle is configured to perform external charging to charge the secondary battery using power supplied from power equipment provided outside the vehicle, the processing device is further configured to execute a stop process to stop the external charging when an SOC of the secondary battery reaches a charge stop SOC during the external charging or when the voltage value reaches a charge completion voltage value of the secondary battery corresponding to the charge stop SOC, the stopping process includes, when a predetermined condition for executing the calculation process and the estimation process is satisfied, stopping the external charging so that the charging stop SOC is within a range of 50% or more and 70% or less; The processing device executes the calculation process and the estimation process after the stop process.
2. A battery system for estimating the presence or absence of deterioration of a secondary battery containing a non-aqueous electrolyte, wherein the deterioration is a phenomenon in which the internal resistance of the secondary battery increases due to a bias in ion concentration in the non-aqueous electrolyte, a voltage sensor for detecting a voltage value of the secondary battery; a processing unit configured to perform the calculation process and the estimation process; the calculation process includes a process of calculating an evaluation value for evaluating a degree of polarization relaxation after charging or discharging the secondary battery according to the voltage value; the estimation process includes a process of estimating the presence or absence of the deterioration in accordance with the evaluation value, the evaluation value is a magnitude of a difference between the voltage value when the charging or discharging is stopped and the voltage value when polarization of the secondary battery is eliminated after the charging or discharging is stopped, The estimation process includes: a process of estimating that there is no degradation when the magnitude of the difference value is less than a first threshold value; and estimating that the deterioration exists when the magnitude of the difference value is equal to or greater than the first threshold value, The battery system is mounted on a vehicle, the vehicle is configured to perform external charging to charge the secondary battery using power supplied from power equipment provided outside the vehicle, The negative electrode material of the secondary battery contains graphite, the processing device is further configured to execute a stop process to stop the external charging when an SOC of the secondary battery reaches a charge stop SOC during the external charging or when the voltage value reaches a charge completion voltage value of the secondary battery corresponding to the charge stop SOC, the stopping process includes, when a predetermined condition for executing the calculation process and the estimation process is satisfied, stopping the external charging so that the charging stop SOC falls within a predetermined SOC range; the SOC range is predetermined as a range in which the stage structure of the graphite changes when the SOC falls within the SOC range; The processing device executes the calculation process and the estimation process after the stop process.
3. A battery system for estimating the presence or absence of deterioration of a secondary battery containing a non-aqueous electrolyte, wherein the deterioration is a phenomenon in which the internal resistance of the secondary battery increases due to a bias in ion concentration in the non-aqueous electrolyte, a voltage sensor for detecting a voltage value of the secondary battery; a processing unit configured to perform the calculation process and the estimation process; the calculation process includes a process of calculating an evaluation value for evaluating a degree of polarization relaxation after charging or discharging the secondary battery according to the voltage value; the estimation process includes a process of estimating the presence or absence of the deterioration in accordance with the evaluation value, the evaluation value is a polarization relaxation rate, which is a ratio of the first change amount to the second change amount, the first change amount is a magnitude of a difference between the voltage value when the charging or discharging is stopped and a first value that is the voltage value at a first time a predetermined time after the charging or discharging is stopped, the second change amount is a magnitude of a difference between the voltage value when the charging or discharging is stopped and a second value that is the voltage value when polarization of the secondary battery is eliminated after the charging or discharging is stopped, The estimation process includes: a process of estimating that there is no degradation when the polarization relaxation rate is equal to or greater than a second threshold value; and estimating that the deterioration occurs when the polarization relaxation rate is less than the second threshold value.
4. A battery system for estimating the presence or absence of deterioration of a secondary battery containing a non-aqueous electrolyte, wherein the deterioration is a phenomenon in which the internal resistance of the secondary battery increases due to a bias in ion concentration in the non-aqueous electrolyte, a voltage sensor for detecting a voltage value of the secondary battery; a processing unit configured to perform the calculation process and the estimation process; the calculation process includes a process of calculating an evaluation value for evaluating a degree of polarization relaxation after charging or discharging the secondary battery according to the voltage value; the estimation process includes a process of estimating the presence or absence of the deterioration in accordance with the evaluation value, the evaluation value is a third change amount that is a change amount of the voltage value during a predetermined period after a first time that is a predetermined time after the charging or discharging is stopped, The estimation process includes: a process of estimating that there is no deterioration when the third change amount is less than a third threshold value; and estimating that the deterioration occurs when the third amount of change is equal to or greater than the third threshold value.
5. A battery system for estimating the presence or absence of deterioration of a secondary battery containing a non-aqueous electrolyte, wherein the deterioration is a phenomenon in which the internal resistance of the secondary battery increases due to a bias in ion concentration in the non-aqueous electrolyte, a voltage sensor for detecting a voltage value of the secondary battery; a processing unit configured to perform the calculation process and the estimation process; the calculation process includes a process of calculating an evaluation value for evaluating a degree of polarization relaxation after charging or discharging the secondary battery according to the voltage value; the estimation process includes a process of estimating the presence or absence of the deterioration in accordance with the evaluation value, the evaluation value is a magnitude of a difference between the voltage value when the charging or discharging is stopped and the voltage value when polarization of the secondary battery is eliminated after the charging or discharging is stopped, The estimation process includes: a process of estimating that there is no degradation when the magnitude of the difference value is less than a first threshold value; and estimating that the deterioration exists when the magnitude of the difference value is equal to or greater than the first threshold value, the evaluation value depends on a predetermined parameter that affects the polarization relaxation; a storage device that stores a first relationship that is a relationship between an initial evaluation value, which is the evaluation value at an initial point in time of use of the secondary battery, and the parameter; a previous evaluation value, which is the evaluation value at a second point in time that is after the initial point in time of use and before the first point in time; and a previous parameter, which is the parameter when the previous evaluation value is calculated; the first relationship includes a relationship between a reference evaluation value, which is the initial evaluation value when the parameter is a reference value of the parameter, and the reference value; the processing unit is further configured to perform a normalization process and a progress calculation process; the normalization process includes a process of normalizing at least one of the previous evaluation value and the current evaluation value using the first relationship in accordance with a current parameter that is the parameter when a current evaluation value that is the evaluation value at the first time point is calculated, the previous parameter, and the reference value; A battery system, wherein the progress calculation process includes a process of calculating the progress of the deterioration from the second time point to the first time point according to a result of the normalization process.
6. the storage device further stores a second relationship between a degradation evaluation value, which is the evaluation value when the secondary battery is degraded, and the parameter, in association with a degradation level of the secondary battery; the deterioration degree is determined according to the deterioration evaluation value and the initial evaluation value when the parameter at the initial point in time of use is the parameter when the deterioration evaluation value is calculated, The processing device includes: Estimating the presence or absence of the deterioration at the second time point according to the previous evaluation value; When it is estimated that the deterioration exists at the second time point, the previous evaluation value is set as the evaluation value at the time of deterioration, and the deterioration degree at the second time point is determined; The battery system according to claim 5 , wherein the normalization process includes a process of normalizing the previous evaluation value in accordance with the previous parameter and the reference value by using the second relationship associated with the deterioration level.
7. 7. The battery system according to claim 5, wherein the parameter is a temperature of the secondary battery.
8. 7. The battery system according to claim 5, wherein the parameter is a charging current or a discharging current of the secondary battery.
9. The battery system according to claim 1 , wherein the processing device limits charging power or discharging power of the secondary battery when it is estimated that the secondary battery is deteriorated.
10. A method for estimating the presence or absence of deterioration of a secondary battery that contains a non-aqueous electrolyte and is mounted on a vehicle, wherein the deterioration is a phenomenon in which an internal resistance of the secondary battery increases due to a bias in ion concentration in the non-aqueous electrolyte, and the vehicle is configured to perform external charging in which the secondary battery is charged using power supplied from a power facility provided outside the vehicle, The method comprises: acquiring a voltage value from a voltage sensor that detects a voltage value of the secondary battery; stopping the external charging when an SOC of the secondary battery reaches a charging stop SOC during the external charging or when the voltage value reaches a charging completion voltage value of the secondary battery corresponding to the charging stop SOC; calculating an evaluation value for evaluating the degree of polarization relaxation after charging or discharging the secondary battery; and estimating the presence or absence of the deterioration according to the evaluation value, the evaluation value is a magnitude of a difference between the voltage value when the charging or discharging is stopped and the voltage value when polarization of the secondary battery is eliminated after the charging or discharging is stopped, The estimating step includes: if the magnitude of the difference value is less than a first threshold, inferring that there is no degradation; and estimating that the deterioration exists when the magnitude of the difference value is equal to or greater than the first threshold value; the step of stopping includes, when predetermined conditions for calculating the evaluation value and estimating the presence or absence of deterioration are satisfied, stopping the external charging so that the charge stop SOC is within a range of 50% or more and 70% or less; The method, wherein the calculating step and the estimating step are performed after the external charging is stopped.
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