Method for determining the state of a secondary battery, apparatus for determining the state of a secondary battery, and secondary battery

The method calculates a relaxation spectrum and applies a refresh process to identify and address irreversible degradation in secondary batteries, improving battery life and safety by distinguishing between reversible and irreversible distributions.

JP2026054572APending Publication Date: 2026-03-30HITACHI LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-17
Publication Date
2026-03-30

AI Technical Summary

Technical Problem

Existing methods struggle to accurately distinguish between irreversible and reversible distributions of degradation in secondary batteries, such as degradation distributions and state of charge (SOC) distributions, hindering effective measures to prevent or reverse non-uniform degradation.

Method used

A method involving calculation of a relaxation spectrum in a biaxial coordinate system, followed by a refresh process to eliminate SOC distributions, and comparison of spectra before and after the process to determine the nature of electrode non-uniformity.

Benefits of technology

Enables accurate identification of irreversible degradation distributions, allowing for appropriate operational adjustments or replacement, thereby extending battery life and ensuring safety.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026054572000001_ABST
    Figure 2026054572000001_ABST
Patent Text Reader

Abstract

The object of the present invention is to provide a method for determining the state of a secondary battery, a device for determining the state of a secondary battery, and a secondary battery that can analyze the electrode state inside the battery and determine whether an irresolvable distribution such as a degradation distribution is formed on the electrodes or an irresolvable distribution such as a state of charge (SOC) distribution is formed. [Solution] The present invention provides a method for determining the state of a secondary battery, which is a method for determining the internal state of a secondary battery, and is characterized by including a calculation step of calculating a relaxation spectrum in a biaxial coordinate system in which one axis represents relaxation time and the other axis represents intensity; a processing step of refreshing the non-uniformity of the internal state of the secondary battery; and a comparison step of comparing the shape information of the relaxation spectrum before and after applying the refresh processing.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a method for determining the state of a secondary battery, a device for determining the state of a secondary battery, and a secondary battery.

Background Art

[0002] Lithium-ion secondary batteries (hereinafter referred to as secondary batteries) are expected to be applied to various product groups ranging from electric mobility applications such as electric vehicles to stationary power sources, and their demand is steadily increasing. Generally, it is known that the life of a secondary battery is closely related to its usage conditions, and if the secondary battery is continuously used under high-load conditions such as high current, the battery performance will rapidly deteriorate. Therefore, in order to stably use the secondary battery until the end of the product life, it is important to appropriately determine the deterioration state of the secondary battery.

[0003] In recent years, attempts have also been made to reuse used batteries that have reached the end of their life in electric vehicles as stationary power sources. In order to ensure the reliability and safety of the reuse, a method for determining the risk of rapid performance deterioration in used batteries is required.

[0004] Examples of deterioration events that cause rapid performance deterioration of secondary batteries include the phenomenon in which the electrodes inside the battery deteriorate unevenly (hereinafter referred to as uneven deterioration). It is known that when uneven deterioration progresses, the capacity and resistance of the secondary battery rapidly deteriorate, and ultimately lead to malfunction or failure of the secondary battery product.

[0005] Fig. 1 schematically shows the process in which uneven deterioration occurs and the state in which uneven deterioration progresses inside the battery. When a secondary battery is used under high load, a temperature distribution is formed inside the battery due to the difference in heat dissipation rates between the central part and the end part of the electrode, and the reaction rate on the electrode changes due to the generated temperature distribution, resulting in a distribution of the state of charge (hereinafter referred to as SOC) on the electrode.

[0006] While these temperature and SOC distributions can be resolved by applying appropriate thermal and electrical treatments to the secondary battery, if the secondary battery is used without resolving these distributions, a non-uniform degradation distribution (uneven degradation) will form inside the battery according to the temperature and SOC distribution. The reason for this degradation distribution is that the degradation of the secondary battery depends on temperature and SOC. If the secondary battery continues to be used in a state of non-uniform degradation, the degradation in locally degraded areas will progress further, ultimately leading to a rapid decrease in secondary battery capacity or failure or malfunction of the battery product.

[0007] A characteristic of non-uniform degradation is that the initial symptoms of degradation include the appearance of SOC (State of Charge) distributions on the electrodes. At this stage, the distribution can be eliminated through electrical processing, thereby preventing the occurrence of non-uniform degradation. On the other hand, once the SOC distribution progresses to a degradation distribution, it becomes difficult to eliminate the distribution, and it becomes necessary to reconsider high-load operation, such as reducing the current value when using secondary batteries.

[0008] From the above, it can be seen that there are two main ways to prevent defects and failures in battery products caused by uneven degradation. One is to detect the occurrence of uneven degradation early and prevent its progression by replacing the battery or reducing the current load during use. This method cannot prevent the occurrence of uneven degradation itself, but it can slow down the progression of degradation, so it can be expected to extend the battery life.

[0009] Another method involves detecting and eliminating the formation of temperature and state-of-case (SOC) distributions within the battery, thereby preventing the occurrence of uneven degradation. This method fundamentally eliminates the risk of battery product defects and failures caused by uneven degradation, and is expected to improve product safety and reliability in addition to extending battery life.

[0010] To achieve early detection and prevention of non-uniform degradation, a method for accurately detecting the degradation state inside a battery is required. For example, Patent Document 1 describes a method for accurately evaluating the non-uniformity (uneven degradation) of the degradation state formed within the electrodes of a secondary battery. [Prior art documents] [Patent Documents]

[0011] [Patent Document 1] Japanese Patent Publication No. 2022-185511 [Overview of the Initiative] [Problems that the invention aims to solve]

[0012] As mentioned above, in order to suppress the progression of non-uniform degradation and extend the lifespan of batteries, it is necessary to change the treatment applied to the battery product depending on whether an unresolved distribution such as non-uniform degradation occurs or a resolvable distribution such as SOC distribution occurs. For example, if an unresolvable distribution occurs, battery replacement or a change in operating method will be necessary. On the other hand, if a resolvable distribution occurs, the battery can be used continuously with the same operating method as before by applying a treatment to eliminate that distribution.

[0013] The method described in Patent Document 1 can determine whether or not the electrode state inside the battery is non-uniform, and is therefore considered effective for detecting the distribution of degradation (non-uniform degradation) and the SOC distribution that occur inside the battery. On the other hand, it is difficult to identify the cause of the non-uniform electrode state using this method alone, and it is not possible to distinguish whether the cause of the non-uniformity is due to the formation of an irresolvable distribution, such as the degradation distribution, or to the formation of an irresolvable distribution, such as the SOC distribution. For this reason, it is difficult to appropriately apply measures that are effective in suppressing the progression of non-uniform degradation to battery products using the method described in Patent Document 1.

[0014] The object of the present invention is to provide a method for determining the state of a secondary battery, a device for determining the state of a secondary battery, and a secondary battery that can analyze the electrode state inside the battery and determine whether an irresolvable distribution such as a degradation distribution is formed on the electrodes or an irresolvable distribution such as a state of charge (SOC) distribution is formed. [Means for solving the problem]

[0015] The present invention provides a method for determining the state of a secondary battery, which is a method for determining the internal state of a secondary battery, and is characterized by including a calculation step of calculating a relaxation spectrum in a biaxial coordinate system in which one axis represents relaxation time and the other axis represents intensity; a processing step of refreshing the non-uniformity of the internal state of the secondary battery; and a comparison step of comparing the shape information of the relaxation spectrum before and after applying the refresh processing.

[0016] Alternatively, the secondary battery state determination device of the present invention is a secondary battery state determination device for determining the internal state of a secondary battery, and is characterized by comprising: a calculation unit that calculates a relaxation spectrum in a biaxial coordinate system in which one axis is the relaxation time and the other axis is the intensity; a processing unit that applies a process to refresh the non-uniformity of the internal state of the secondary battery; and a comparison unit that compares the shape information of the relaxation spectrum before and after the application of the refresh process.

[0017] Alternatively, the present invention relates to a secondary battery having a state determination device for determining the internal state of the secondary battery, wherein the state determination device comprises a calculation unit for calculating a relaxation spectrum in a biaxial coordinate system where one axis represents relaxation time and the other axis represents intensity, a processing unit for applying a process to refresh the non-uniformity of the internal state of the secondary battery, and a comparison unit for comparing the shape information of the relaxation spectrum before and after the application of the refresh process. [Effects of the Invention]

[0018] According to the present invention, it is possible to provide a method for determining the state of a secondary battery, a device for determining the state of a secondary battery, and a secondary battery that can analyze the electrode state inside the battery and determine whether an irresolvable distribution such as a degradation distribution is formed on the electrodes or an irresolvable distribution such as a state of charge (SOC) distribution is formed. [Brief explanation of the drawing]

[0019] [Figure 1] This is a conceptual diagram illustrating the process of non-uniform degradation and the conditions under which non-uniform degradation progresses. [Figure 2]It is a block diagram of a secondary battery state determination system in this embodiment. [Figure 3] It is a diagram showing the shape information of a relaxation spectrum. [Figure 4] It is a diagram showing relaxation spectra before and after the electrode state becomes non-uniform. [Figure 5] It is a diagram showing a processing flow in the state determination system shown in FIG. 2.

Embodiment for Carrying out the Invention

[0020] Hereinafter, embodiments (examples) for carrying out the present invention will be described with reference to the drawings. In the following description of the examples, descriptions of other examples applicable to the examples will be given as appropriate. The present invention is not limited to the following examples, and different examples can be combined with each other or arbitrarily modified within a range that does not significantly impair the effects of the present invention. Also, the same members will be denoted by the same reference numerals, and redundant descriptions will be omitted. Furthermore, those having the same function will be given the same name. The illustrated content is merely schematic, and for the convenience of illustration, it may be changed from the actual configuration within a range that does not significantly impair the effects of the present invention, or the illustration of some members may be omitted or modified between the drawings. Also, in the same example, it is not always necessary to include all configurations.

Example

[0021] FIG. 2 is a block diagram of a secondary battery state determination system in this embodiment. Hereinafter, this state determination system 100, secondary battery 210, and its control device 220 will be collectively referred to as battery system 300. Therefore, battery system 300 includes state determination system 100, secondary battery 210, and its control device 220.

[0022] The state determination system 100 determines the electrode state inside the secondary battery 210, and if the electrode state is non-uniform, it determines whether the cause is due to an unresolved factor or a resolvable factor. Unresolved factors include, for example, events that cause the degradation state of the electrodes to become non-uniform, such as degradation distribution (non-uniform degradation), and resolvable factors include, for example, events that cause the charge state of the electrodes to become non-uniform, such as SOC distribution. However, the method of this embodiment is not necessarily limited to these events.

[0023] The state determination system 100 comprises a measurement unit 11, a calculation unit 12, a recording unit 13, a processing unit 14, a comparison unit 15, a determination unit 16, a display unit 17 which is a presentation unit, and a control unit 18. These may all be configured as a single unit, or at least some of them may be configured separately. When they are all configured as a single unit, the state determination system 100 can be called a determination device. On the other hand, when at least some of them are configured separately, for example, that part may be stored on a server located in a remote location via a network. In this embodiment, the control device 220 of the secondary battery 210 and the control unit 18 of the state determination system 100 are described as being configured separately, but they may be integrated.

[0024] The measurement unit 11 measures at least one of the time-series data of DC current value and DC voltage value during charging or discharging of the secondary battery 210. The measurement timing is performed during use, including during charging or discharging of the secondary battery 210, or during standby when no charging or discharging is performed. In addition, the time-series data measured at this time may also include time-series data of the temperature of the secondary battery 210.

[0025] The measurement unit 11 extracts time-series data from the measured time-series data during a period (timing) in which the relaxation spectrum can be calculated. The relaxation spectrum is a continuous function of relaxation time, and is a spectrum (hereinafter referred to as the relaxation spectrum) in a biaxial coordinate system where one axis (e.g., the horizontal axis) is relaxation time and the other axis (e.g., the vertical axis) is intensity (spectral intensity). For example, it is preferable to extract time-series data for at least one period, such as during constant voltage charging, after charging, or after discharge. After charging, it may be after constant voltage charging or after constant current charging. After discharge, it may be after constant voltage discharge or after constant current discharge.

[0026] When extracting time-series data during constant-voltage charging, the measurement unit 11 extracts time-series data for the voltage, current, and temperature of the secondary battery 210 from the time t1 when constant-voltage charging begins to the time t2 when constant-voltage charging ends. Constant-voltage charging is a charging method in which the secondary battery 210 is charged while maintaining a constant voltage value. Furthermore, the measurement unit 11 also extracts the voltage value of the secondary battery 210 before (preferably immediately before) the start of charging. There is no limit to the time from time t1 to time t2, but it is preferably 1 minute or more and 30 minutes or less, more preferably 10 minutes or more and 20 minutes or less.

[0027] When extracting time-series data after charging (after charging is complete) or after discharging (after discharging is complete), the measurement unit 11 extracts time-series data of the voltage, current, and temperature of the secondary battery 210 from the end time of charging or discharging t3 to a predetermined time t4. Furthermore, the measurement unit 11 also acquires the current value immediately before the end of charging or discharging of the secondary battery 210. There is no limit to the time from time t3 to time t4, but it is preferably 1 minute or more and 30 minutes or less, more preferably 10 minutes or more and 20 minutes or less.

[0028] There are no restrictions on how the measurement unit 11 acquires measurement data (including the above-mentioned time-series data, voltage value before charging starts, current value immediately before charging / discharging, etc.) from the secondary battery 210. For example, the measurement unit 11 can measure data related to the secondary battery 210 (e.g., measurement data) at a location different from where the secondary battery 210 is installed. This allows, for example, when the secondary battery 210 is installed in a vehicle, ship, aircraft, etc., the measurement data of the secondary battery 210 to be centrally managed on a server located remotely. This improves convenience.

[0029] Specifically, for example, the measurement unit 11 may acquire measurement data from the secondary battery 210 via an electrical circuit, a communication circuit such as a wired LAN, or from a secondary battery 210 located in a remote location via a network such as a wireless LAN, or it may acquire measurement data using a combination of these methods. Furthermore, in the process of the measurement unit 11 acquiring measurement data from the secondary battery 210, it may acquire the measurement data via some other device. For example, the measurement unit 11 may acquire measurement data from the secondary battery 210 via an external device (not shown), such as a charge / discharge device. Alternatively, the measurement unit 11 may store the measurement data acquired from the secondary battery 210 on a server and then retrieve that measurement data.

[0030] Next, the calculation unit 12 calculates the relaxation spectrum from the measurement data of the measurement unit 11. The specific method for calculating the relaxation spectrum is as follows, but the calculation method is not limited to the example below.

[0031] <Calculation Method 1: Calculating the relaxation spectrum from measurement data during constant voltage charging> In this case, the relaxation spectrum ρ(τ) can be calculated using the measurement data from (Equation 1).

[0032]

number

[0033] ρ(τ) represents the relaxation spectrum, ΔV is the difference between the battery voltage value before charging starts (preferably immediately before) and the voltage value during constant voltage charging, and I(t) represents the time series data of the current value during constant voltage charging. Also, the symbol L -1 This shows the inverse Laplace transform for I(t) / ΔV.

[0034] <Calculation Method 2: Calculating the relaxation spectrum from measurement data after charging or discharging> In this case, the relaxation spectrum ρ(τ) can be calculated using the measurement data from (Equation 2).

[0035]

number

[0036] ρ(τ) represents the relaxation spectrum, I0 represents the current value immediately before the end of charging or discharging, and V(t) represents the time-series data of the voltage value after charging or discharging. Also, the symbol L -1 This shows the inverse Laplace transform for V(t) / I0.

[0037] The recording unit 13 stores the relaxation spectrum calculated by the calculation unit 12. Figure 3 shows the relaxation spectrum calculated using (Equation 1).

[0038] The processing unit 14 applies a charge / discharge process (hereinafter referred to as a refresh process) to the secondary battery 210 that is effective in eliminating the SOC distribution formed on the electrodes. Examples of refresh processes include a charge refresh process that fully charges, intermittently charges, or charges the secondary battery 210 at a constant voltage, and a discharge refresh process that completely discharges, intermittently discharges, or discharges the secondary battery 210 at a constant voltage. Here, full charge (complete discharge) refers to a process of charging (discharging) the secondary battery 210 until its charge rate reaches 100% (0%), or a process of charging (discharging) the secondary battery 210 until its voltage reaches a voltage value corresponding to a charge rate of 100% (0%). In other words, by performing a process that includes at least one of full charge, intermittent charge, constant voltage charge, complete discharge, intermittent discharge, and constant voltage discharge in the processing unit 14, it is possible to eliminate the SOC distribution.

[0039] Furthermore, intermittent charging (intermittent discharging) refers to a process in which the battery is charged (discharged) repeatedly in short bursts and pauses until a predetermined charge level is reached, while constant voltage charging (constant voltage discharging) refers to a process in which the secondary battery 210 is charged (discharged) while maintaining its voltage at a predetermined level.

[0040] The processing unit 14 applies at least one of the aforementioned charge refresh process or discharge refresh process to the secondary battery 210. It is preferable that the charge refresh process or discharge refresh process be applied to the secondary battery 210 multiple times, but since the processing time required for the processing unit 14 increases with the number of applications, it is sufficient that it be applied to the secondary battery 210 at least once.

[0041] Furthermore, when applying the charge refresh process or discharge refresh process multiple times, it is preferable to alternate between the charge refresh process and the discharge refresh process. For example, the refresh process can be efficiently performed by alternately performing full charge and complete discharge.

[0042] In the processing unit 14, in addition to the refresh process by charging and discharging, a refresh process by temperature control of the secondary battery 210 may also be applied. The refresh process by temperature control refers to a process in which the secondary battery 210 is left to stand in a constant temperature environment to equalize the temperature inside the secondary battery 210. During this time, it is preferable not to perform any charging, discharging, or other processes on the secondary battery, and it is preferable to provide such a standing time of at least one hour.

[0043] Before and after applying the refresh process of the processing unit 14, the measurement unit 11 measures the charge and discharge data of the secondary battery 210, the calculation unit 12 calculates the relaxation spectrum from the respective charge and discharge data, and the calculation result is recorded in the recording unit 13. The processing flow of this state determination system 100 will be described later.

[0044] The comparison unit 15 acquires relaxation spectra from the recording unit 13 at the time before and after applying the refresh process, and compares the shape information of the relaxation spectra before and after the refresh process. Examples of shape information of the relaxation spectra used for comparison include the total area of ​​the relaxation spectrum, the number of peaks, the peak area, the peak position, and the peak full width at half maximum. In other words, by including at least one of the following in the relaxation spectrum—the number of peaks, the peak position, the peak area, the peak full width at half maximum, and the peak skewness—a necessary and appropriate comparison can be made.

[0045] Figure 3 shows the relationship between peak area (S1, S2), peak position (τ1, τ2), and full width at half maximum (w1, w2) as shape information of the relaxation spectrum. Regarding the method of comparing areas, the area of ​​each peak in the relaxation spectrum may be compared, the sum of the peak areas may be compared, or the difference in area between two relaxation spectra may be evaluated using the following formula.

[0046]

number

[0047] Here, ρ(τ) and ρ'(τ) represent the relaxation spectra before and after the refresh process, respectively, and X represents the difference in area between these relaxation spectra.

[0048] The determination unit 16 first determines whether the electrode state of the secondary battery 210 is non-uniform, and if it is, it determines whether the cause is an irresolvable one resulting from the occurrence of non-uniform degradation, or an irresolvable one resulting from the formation of a state of charge distribution, etc.

[0049] To determine whether the electrode state is non-uniform, the determination unit 16 uses information obtained by comparing, for example, the relaxation spectrum acquired before the refresh process is applied with the relaxation spectrum acquired when the secondary battery 210 is new. If the difference in shape information between these relaxation spectra is greater than a pre-set threshold, it is determined that the electrode state is non-uniform. Examples of pre-set thresholds include "a change of one or more peaks in the relaxation spectrum", "a change of X% or more in the area of ​​the relaxation spectrum", and "a change of Y% or more in the peak position of the relaxation spectrum".

[0050] Figure 4 shows the relaxation spectra before and after the electrode state becomes non-uniform. This shows a comparison of the relaxation spectra of a lithium-ion secondary battery composed of a lithium iron phosphate positive electrode and a graphite negative electrode. The dark solid line shows the relaxation spectrum when the battery is new (uniform), and the light solid line shows the relaxation spectrum measured when the electrode state becomes non-uniform (battery degradation). From the figure, it can be seen that the number of peaks in the relaxation spectrum increases from two to three when the battery is degraded, suggesting that the electrode state has become non-uniform.

[0051] If the electrode state is determined to be non-uniform, the determination unit 16 refers to the comparison unit 15 and checks the amount of change in the shape information of the relaxation spectrum before and after the refresh process. If the amount of change before and after the refresh process is greater than a pre-set threshold, it is considered that the relaxation spectrum has changed significantly due to the refresh process, and the non-uniform state formed on the electrode is determined to be resolvable, like the SOC distribution. Conversely, if no significant difference is confirmed in the shape information of the relaxation spectrum before and after the refresh process, it is determined that the non-uniform state formed on the electrode is irresolvable, like non-uniform degradation.

[0052] The threshold value in the determination unit 16 may be changed during the operation of the secondary battery 210. For example, the threshold value may be temporarily set at the time of factory shipment of the product equipped with the secondary battery 210, and after investigating the operating status of the product after shipment, the temporarily set threshold value may be changed at a time such as during maintenance.

[0053] In the display unit 17, based on the determination result of the determination unit 16, it is displayed whether the electrode state of the secondary battery 210 is non-uniform, and further, if it is non-uniform, whether it can be eliminated. When it is determined that the electrode state is non-uniform, the severity thereof may also be barometerized and displayed together. For example, when determining the non-uniformity of the electrode state using the difference in the area of the relaxation spectrum (see formula 3), if the difference in area is less than or equal to threshold value A, the severity is low, if it is greater than or equal to threshold value A and less than or equal to B, the severity is medium, and if it is greater than or equal to threshold value B and less than or equal to C (where A < B < C), it may be displayed in the display unit 17 as high severity.

[0054] As described above, by including the calculation unit 12 that calculates the relaxation spectrum in a two-axis coordinate system with one axis being the relaxation time and the other axis being the intensity, the processing unit 14 that applies a process for refreshing the non-uniformity of the internal state to the secondary battery, and the comparison unit 15 that compares the shape information of the relaxation spectrum before and after the application of the refresh process, it becomes possible to analyze the electrode state inside the battery and determine whether an irreparable distribution such as a deterioration distribution is formed on the electrode or whether a reparable distribution such as a SOC distribution is formed. Further, by including the determination unit 16 that determines whether it is reparable due to the formation of the charge rate distribution when the electrode state is non-uniform based on the comparison result of the comparison unit 15, an appropriate refresh process or the like can be performed.

[0055] Note that the method of barometerization of the present invention is not necessarily limited to the above method, and the severity may be digitized as a percentage or displayed using color information such as a color bar.

[0056] By converting the comparison result of the shape information into at least one of numerical information, color information, voice information, and character strings in the presentation unit and presenting the progress of the non-uniformity of the electrode state of the secondary battery, the state of the secondary battery can be grasped. Note that in the display unit 17, which is an example of the presentation unit, by converting the comparison result of the shape information into at least one of numerical information, color information, and character strings and displaying the progress of the non-uniformity of the electrode state of the secondary battery, the state of the secondary battery can be grasped.

Example

[0057] The control unit 18 changes the operation method and control method of the secondary battery 210 based on the determination result of the determination unit 16. The following shows the determination result of the determination unit 16 and an example of how the operation method and control method of the secondary battery 210 are changed based on it.

[0058] If it is determined that the electrode state is not non-uniform, no changes will be made to the operation method of the secondary battery 210.

[0059] Furthermore, if it is determined that the electrode state has become non-uniform and that this non-uniformity can be resolved, an additional refresh process is performed on the secondary battery 210. In addition, it is checked whether the shape information of the relaxation spectrum has changed before and after the additional refresh process, and if a change is observed in the shape information, the refresh process is performed again. This operation is repeated until the shape information of the relaxation spectrum no longer changes before and after the refresh process, thereby completely eliminating any resolvable distributions such as the SOC distribution.

[0060] Next, if it is determined that the electrode state has become non-uniform and that this non-uniformity cannot be resolved, the current load when operating the secondary battery 210 is reduced, or the secondary battery 210 is replaced with a new battery.

[0061] Figure 5 shows the processing flow of the state determination system 100. In the state determination system 100, at the timing of determining the state of the secondary battery, charge and discharge data necessary for calculating the relaxation spectrum is acquired in the measurement step S11. Then, the relaxation spectrum is calculated from the acquired charge and discharge data in the calculation step S12. In other words, in the calculation step S12, the relaxation spectrum in a biaxial coordinate system, where one axis is relaxation time and the other axis is intensity, is calculated. The calculation result is also saved in the recording step S13.

[0062] Next, in processing step S14, a refresh process is applied to the secondary battery 210. In other words, in processing step S14, the non-uniformity of the internal state of the secondary battery is refreshed. After the refresh process is completed, charge and discharge data of the secondary battery 210 is acquired again in metering step S11-2, and the relaxation spectrum is calculated using this data in calculation step S12-2.

[0063] Subsequently, the calculation results are saved in recording step S13-2, and the relaxation spectra before and after the refresh process, saved in recording steps S13 and S13-2, are compared in comparison step S15. In other words, in comparison step S15, the shape information of the relaxation spectra before and after the refresh process is compared. A necessary and appropriate comparison can be made by using at least one of the following in the relaxation spectrum: the number of peaks, the position of the peaks, the area of ​​the peaks, the full width at half maximum of the peaks, and the skewness of the peaks.

[0064] Based on the comparison, in the determination step S16, if there is a significant difference in the shape information of the relaxation spectrum before and after the refresh process, it is determined that the non-uniformity of the electrode state can be resolved; if there is no significant difference, it is determined that it cannot be resolved. The determination result is then displayed in the display step S17. If the electrode state is not non-uniform, these processes are terminated. If the electrode state is non-uniform, the process proceeds to the control step S18 based on the determination result. This information may also be displayed in the display step S17. Furthermore, in the display step S17, the comparison result of the shape information is converted into at least one of numerical information, color information, and strings, and the progress of the non-uniformity of the electrode state of the secondary battery is displayed, allowing the state of the secondary battery to be understood.

[0065] Thus, by including a calculation step of calculating a relaxation spectrum in a biaxial coordinate system where one axis represents relaxation time and the other axis represents intensity, a processing step of refreshing the non-uniformity of the internal state of the secondary battery, and a comparison step of comparing the shape information of the relaxation spectrum before and after the refresh process, it becomes possible to analyze the electrode state inside the battery and determine whether an irresolvable distribution such as a degradation distribution is formed on the electrodes, or whether an irresolvable distribution such as a SOC distribution is formed. Furthermore, based on the comparison results of the shape information, it is determined whether or not additional refresh processing is necessary for the secondary battery. This determination makes it possible to further improve the SOC distribution.

[0066] In control step S18, if the non-uniformity can be eliminated, an additional refresh process is applied to the secondary battery 210 to completely eliminate the SOC distribution and other issues. If the non-uniformity cannot be eliminated, a change in the operation method of the secondary battery 210 or whether the secondary battery needs to be replaced is determined and proposed.

[0067] The secondary battery 210 to which this embodiment can be applied includes any form such as a secondary battery cell, secondary battery module, secondary battery pack, or secondary battery system. Furthermore, the secondary battery 210 to which this embodiment can be applied may be installed in electric mobility such as ships, aircraft, or vehicles (battery-powered trains, electric vehicles, etc.), or it may be installed in a stationary battery storage system, and its use may be changed during use. For example, it can also be applied when a secondary battery 210 used in electric mobility is reused as a stationary battery storage system.

[0068] Furthermore, this embodiment can be applied regardless of the degradation state of the secondary battery 210. For example, the secondary battery 210 may be a new battery (in an undegraded state), or it may be a battery that has become degraded (e.g., used, secondhand) due to use in some application. Alternatively, it may be a secondary battery 210 that has deteriorated over time as a result of being unused for a long period of time.

[0069] Furthermore, this embodiment can be applied not only to detecting non-uniformity of the electrode state in the secondary battery 210 and determining whether it can be resolved, but also to control the secondary battery 210 during use to extend its lifespan and suppress its degradation. [Explanation of Symbols]

[0070] 11...Measurement unit, 12...Calculation unit, 13...Recording unit, 14...Processing unit, 15...Comparison unit, 16...Determination unit, 17...Display unit, 18...Control unit, 100...Status determination system, 210...Secondary battery, 220...Control device, 300...Battery system.

Claims

1. A method for determining the internal state of a secondary battery, A calculation step to calculate the relaxation spectrum in a biaxial coordinate system where one axis represents relaxation time and the other axis represents intensity, A processing step to refresh the non-uniformity of the internal state of the secondary battery, A method for determining the state of a secondary battery, characterized by including a comparison step of comparing the shape information of the relaxation spectrum before and after the application of a refresh process.

2. In the method for determining the state of a secondary battery according to claim 1, A method for determining the state of a secondary battery, characterized in that the processing step includes at least one of the following for the secondary battery: full charge, intermittent charge, constant voltage charge, complete discharge, intermittent discharge, and constant voltage discharge.

3. In the method for determining the state of a secondary battery according to claim 1, A method for determining the state of a secondary battery, characterized in that the shape information includes at least one of the number of peaks in the relaxation spectrum, the position of the peaks, the area of ​​the peaks, the full width at half maximum of the peaks, and the skewness of the peaks.

4. In the method for determining the state of a secondary battery according to any one of claims 1 to 3, A method for determining the state of a secondary battery, characterized by determining whether or not to apply an additional refresh process to the secondary battery based on the comparison results of the shape information.

5. In the method for determining the state of a secondary battery according to any one of claims 1 to 3, A method for determining the state of a secondary battery, characterized by determining whether it is necessary to change the operating method of the secondary battery or replace the secondary battery based on the comparison results of the shape information.

6. In the method for determining the state of a secondary battery according to any one of claims 1 to 3, A method for determining the state of a secondary battery, characterized by including the step of converting the comparison result of the shape information into at least one of numerical information, color information, sound information, and strings, and presenting the progress of the non-uniformity of the electrode state of the secondary battery.

7. A secondary battery state determination device for determining the internal state of a secondary battery, A calculation unit calculates a relaxation spectrum in a biaxial coordinate system where one axis represents relaxation time and the other axis represents intensity. A processing unit that applies a process to refresh the non-uniformity of the internal state of the secondary battery, A secondary battery state determination device characterized by comprising a comparison unit that compares the shape information of the relaxation spectrum before and after the application of a refresh process.

8. In the secondary battery state determination device according to claim 7, A secondary battery state determination device characterized by comprising a determination unit that determines, based on the comparison results of the comparison unit, whether the unevenness of the electrode state is resolvable due to the formation of a charge rate distribution.

9. A secondary battery having a state determination device for determining the internal state of the secondary battery, The state determination device is A calculation unit calculates a relaxation spectrum in a biaxial coordinate system where one axis represents relaxation time and the other axis represents intensity. A processing unit that applies a process to refresh the non-uniformity of the internal state of the secondary battery, A secondary battery characterized by comprising a comparison unit that compares the shape information of the relaxation spectrum before and after the application of a refresh process.

10. In the secondary battery according to claim 9, The state determination device is characterized by comprising a determination unit that determines, based on the comparison results of the comparison unit, whether the unevenness of the electrode state is resolvable due to the formation of a charge rate distribution.

Citation Information

Patent Citations

  • State determination device, secondary battery system and state determination method

    JP2022185511A