Battery diagnostic method and battery system providing the same
The battery diagnostic method addresses the challenge of diagnosing defects in battery banks by using state of charge and internal resistance comparisons, enhancing diagnostic accuracy and reducing costs through precise identification of defective cells.
Patent Information
- Application Number
- JP2024520623
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-05-04
- Filing Date
- 2023-01-27
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2043-01-27
AI Technical Summary
Existing battery systems with multiple connected battery cells face challenges in accurately diagnosing defects in individual cells within a battery bank due to structural difficulties in disassembly and the risk of damage from inrush currents, especially when capacity differences occur among the banks.
A battery diagnostic method that determines a ratio of state of charge change amounts and internal resistance to diagnose defective battery banks by comparing these values to diagnostic reference values based on the number of cells connected in parallel, using a control unit to identify abnormal states.
This method enables accurate defect diagnosis and predicts battery replacement cycles, improving diagnostic accuracy and reducing replacement costs by identifying defective battery banks effectively.
Smart Images

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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of priority based on Korean Patent Application No. 10-2022-0055702, filed May 4, 2022, and all contents disclosed in the documents of that Korean patent application are incorporated herein by reference.
[0002] The present invention relates to a battery diagnostic method for diagnosing the state of a battery bank based on internal resistance and state of charge (SOC), and a battery system that provides the method. [Background technology]
[0003] Recently, the demand for portable electronic products such as laptops, video cameras, and mobile phones has increased dramatically, and the development of electric vehicles, energy storage batteries, robots, satellites, etc. has been in full swing. As a result, research into high-performance batteries that can be repeatedly charged and discharged is being actively conducted.
[0004] Currently available commercial batteries include nickel-cadmium batteries, nickel-metal hydride batteries, nickel-zinc batteries, and lithium batteries. Of these, lithium batteries are attracting attention because they have the advantages of being able to be charged and discharged freely as they have almost no memory effect compared to nickel-based batteries, a very low self-discharge rate, and a high energy density.
[0005] Generally, a battery in which a plurality of battery cells are connected to each other is used depending on the intended use. For example, a battery bank in which a plurality of battery cells are connected in parallel to increase capacity may be used, or a battery bank in which a plurality of battery cells are connected in series to increase output voltage may be used.
[0006] In the case of a battery bank, monitoring each battery cell connected in parallel is costly and structurally difficult. Generally, a battery including at least one battery bank has a structural feature that prevents it from being easily disassembled or separated in order to enhance safety against impact. Therefore, it is difficult to diagnose whether or not each battery cell included in the battery bank has a defect.
[0007] Furthermore, when multiple battery banks are provided and some battery cells included in some battery banks are defective, there is a problem that the batteries may be damaged by inrush current generated due to the difference in capacity between the multiple battery banks. Summary of the Invention [Problem to be solved by the invention]
[0008] The present invention has been devised to solve these problems, and provides a battery diagnostic method that can accurately diagnose the state of a battery including a plurality of battery cells, and a battery system that provides the method. [Means for solving the problem]
[0009] According to one aspect of the present invention, a battery system includes a battery including a plurality of battery banks, each including a plurality of battery cells; and a control unit that, when a predetermined diagnostic condition is satisfied in a charging mode in which the battery is charged with power from an external device, determines a ratio of a second state of charge change amount of the battery bank to a first state of charge change amount of a reference battery bank, and diagnoses a defect in the battery bank by comparing the ratio with a diagnostic reference value, where the diagnostic reference value is determined based on the number of battery cells connected in parallel within the battery bank.
[0010] According to another aspect of the present invention, a battery system includes a battery including a plurality of battery banks, each including a plurality of battery cells; and a control unit that determines a first bank to be diagnosed based on the internal resistance of the plurality of battery banks, and, when a predetermined diagnostic condition is met in a charging mode in which the battery is charged with power from an external device, determines a second bank to be diagnosed by comparing a ratio of a second state of charge change amount of a battery bank to a first state of charge change amount of a reference battery bank with a diagnostic reference value, and diagnoses the battery banks determined to be the first and second banks to be diagnosed among the plurality of battery banks as defective battery banks, where the diagnostic reference value is determined based on the number of battery cells connected in parallel within the battery bank.
[0011] According to another aspect of the present invention, a battery diagnostic method is a method for diagnosing defects in a battery including a plurality of battery banks, each of which includes a plurality of battery cells, and includes: a first defect diagnosis step of determining a first bank to be diagnosed based on the internal resistance of the plurality of battery banks; a second defect diagnosis step of determining a second bank to be diagnosed by comparing a ratio of a second change in state of charge of a battery bank to a first change in state of charge of a reference battery bank with a diagnostic reference value when a predetermined diagnostic condition is met in a charging mode in which the battery is charged with power from an external device; and a diagnosis determination step of diagnosing the first and second battery banks determined to be the first and second battery banks among the plurality of battery banks as defective battery banks, wherein the diagnostic reference value is determined based on the number of battery cells connected in parallel within the battery bank. [Effects of the Invention]
[0012] The present invention determines a reference value for determining a defect in a battery bank based on a value corresponding to the number of battery cells connected in parallel, rather than a fixed value, thereby enabling accurate defect diagnosis even for a battery bank including battery cells connected in parallel.
[0013] The present invention can improve diagnostic accuracy by finally estimating a defective battery bank through a first defect diagnosis method that diagnoses defects based on the internal resistance of the battery bank and a second defect diagnosis method that diagnoses defects based on the state of charge (SOC) of the battery bank.
[0014] The present invention can improve the accuracy of diagnosis and accurately predict the replacement cycle for the battery, thereby reducing the cost of replacing the battery. [Brief explanation of the drawings]
[0015] [Figure 1] 1 is a diagram illustrating a battery system according to an embodiment. [Figure 2] FIG. 4 is an exemplary diagram illustrating a first resistance section according to an embodiment. [Figure 3] FIG. 10 is an exemplary diagram illustrating a second resistance section according to an embodiment. [Figure 4] 1 is a flowchart illustrating a battery diagnostic method according to an embodiment. [Figure 5] 5 is a flowchart illustrating in detail the first defect diagnosis step S100 of FIG. 4. [Figure 6] 5 is a flowchart illustrating in detail the second defect diagnosis step S200 in FIG. 4. DETAILED DESCRIPTION OF THE INVENTION
[0016] Hereinafter, the embodiments disclosed herein will be described in detail with reference to the accompanying drawings. Identical or similar components will be designated by identical or similar drawing numbers, and redundant descriptions thereof will be omitted. The suffixes "module" and / or "section" for components used in the following description are added or used interchangeably solely for the convenience of writing the specification, and do not have any distinct meanings or roles. Furthermore, in describing the embodiments disclosed herein, if it is determined that a detailed description of related publicly known technology may obscure the gist of the embodiments disclosed herein, such a detailed description will be omitted. Furthermore, the accompanying drawings are intended to facilitate understanding of the embodiments disclosed herein, and should not be construed as limiting the technical concepts disclosed herein, and should be understood to include all modifications, equivalents, or alternatives within the concept and technical scope of the present invention.
[0017] Terms including ordinal numbers such as "first," "second," etc. may be used to describe various components, but the components are not limited by the terms. The terms are used only to distinguish one component from another.
[0018] When a component is referred to as being "coupled" or "connected" to another component, it should be understood that the component may be directly coupled or connected to the other component, but that there may be other components in between. Conversely, when a component is referred to as being "directly coupled" or "directly connected" to another component, it should be understood that there are no other components in between.
[0019] In this application, the terms "comprise" or "have" and the like are intended to specify the presence of any feature, number, step, operation, component, part, or combination thereof stated in the specification, but should be understood as not precluding the possible presence or addition of one or more other features, numbers, steps, operations, components, parts, or combinations thereof.
[0020] FIG. 1 is a diagram illustrating a battery system according to an embodiment.
[0021] Referring to FIG. 1, the battery system 1 includes a battery 10 and a BMS 20 .
[0022] The battery 10 may include multiple battery banks connected in series and / or parallel. A battery bank may include multiple battery cells connected in parallel. A battery cell refers to an independent cell that has a negative terminal and a positive terminal and can be physically separated. As an example, one of the pouch-type lithium polymer cells can be considered a battery cell.
[0023] 1 shows battery 10 including three battery banks B1, B2, and B3 connected in series, with each of the three battery banks B1, B2, and B3 including three battery cells connected in parallel. However, this is not limited thereto, and battery 10 may include multiple battery banks including multiple battery cells connected in parallel. Hereinafter, each of the multiple battery banks included in battery 10 may include multiple battery cells with the same connection structure (series connection, parallel connection). In other words, the parallel coefficient μ described below may be the same.
[0024] The BMS 20 includes a measurement unit 21, a storage unit 22, and a control unit 23. In FIG. 1, the BMS 20 is shown as being included in the battery system 1, but is not limited thereto and may also be mounted outside the battery system 1. Furthermore, for example, the BMS 20 may be mounted in various systems that require defect diagnosis for a battery bank, and may function as a defect diagnosis device for the battery 10.
[0025] The measurement unit 21 may include a voltage sensor (not shown) for measuring a bank voltage, which is a voltage across each of the plurality of battery banks, and a current sensor (not shown) for measuring a bank current, which is a current flowing through each of the plurality of battery banks. The measurement unit 21 may transmit the measurement results to the control unit 23.
[0026] For each of the plurality of battery banks, the measurement unit 21 can measure a bank voltage V1 at a first time point when charging of the battery 10 begins, and measure a bank voltage V2 at a second time point a predetermined time after the first time point. The control unit 23 can calculate a voltage difference (ΔV=|V1-V2|) between the voltages of the battery banks measured at the first and second time points.
[0027] For each of the battery banks, the measurement unit 21 can measure the bank voltage and bank current in the charge mode or the discharge mode. The bank current can be the charge current or the discharge current. For example, for each of the battery banks in the charge mode, the control unit 23 can determine the internal resistance based on the voltage difference (ΔV=|V2-V1|) and the charge current. Hereinafter, it is assumed that the battery bank can be charged and / or discharged at a constant current.
[0028] The storage unit 22 may store an internal resistance value estimated by the control unit 23 based on at least one of the bank voltage and the bank current for each of the plurality of battery banks. The storage unit 22 may store a state of charge (SOC) estimated by the control unit 23 based on at least one of the bank voltage and the bank current for each of the plurality of battery banks. The storage unit 22 may estimate the internal resistance value and the state of charge SOC for each of the plurality of battery banks using various methods known in the art.
[0029] The control unit 23 may perform a first fault diagnosis to determine a first diagnostic bank based on the internal resistance values of the plurality of battery banks. The control unit 23 may perform a second fault diagnosis to determine a second diagnostic bank based on the state of charge (SOC) of the plurality of battery banks. In this case, the first diagnostic bank is a battery bank determined to be in an abnormal state based on the result of the first fault diagnosis. The second diagnostic bank is a battery bank determined to be in an abnormal state based on the result of the second fault diagnosis. According to one embodiment, the battery bank determined to be in a normal state in the first fault diagnosis can be used as a reference battery bank in the second fault diagnosis.
[0030] For example, the control unit 23 may perform a second defect diagnosis on all of the battery banks regardless of the results of the first defect diagnosis. As another example, the control unit 23 may perform a second defect diagnosis only on the battery bank determined as the first diagnosis bank in the first defect diagnosis among the battery banks. In this case, the number of diagnosis targets for the second defect diagnosis is reduced, thereby saving diagnosis time.
[0031] According to one embodiment, the control unit 23 may diagnose the battery banks determined as the first diagnosis bank and the second diagnosis bank among the plurality of battery banks as defective. According to another embodiment, the control unit 23 may diagnose the battery bank determined as the second diagnosis bank among the plurality of battery banks as defective.
[0032] Hereinafter, a method for determining the first and second resistance sections for the first defect diagnosis will be described in detail with reference to FIGS.
[0033] FIG. 2 is an exemplary diagram illustrating a first resistance section according to an embodiment.
[0034] Referring to FIG. 2, the control unit 23 can determine a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for a plurality of battery banks, and can determine a first resistance range based on the first reference resistance and the resistance deviation.
[0035] First, the control unit 23 can calculate the internal resistance value for each of the plurality of battery banks based on the following formula 1.
[0036] [Formula 1]
number
[0037] For example, the control unit 23 may calculate a voltage difference (ΔV=|V2-V1|) between a first voltage V1 and a second voltage V2 for the battery bank. Because the magnitude of the charging current I for the battery bank is constant, the control unit 23 may calculate the internal resistance DCIR of the battery bank based on the voltage difference ΔV and the bank current I. In this case, the first voltage V1 may be the bank voltage measured at a first point in time when charging begins, and the second voltage V2 may be the bank voltage measured at a second point in time after a predetermined time has elapsed since the first point in time.
[0038] Next, the control unit 23 may set the median or average value of the internal resistances of the battery banks as the first reference resistance R1. Preferably, the first reference resistance R1 may be the median value of the internal resistances of the target banks. Specifically, when the internal resistances of the battery banks are sorted in order of magnitude, the control unit 23 may set the internal resistance value located in the middle as the first reference resistance R1.
[0039] Next, the control unit 23 calculates the median absolute deviation (MAD) between the first reference resistance R1 and the multiple internal resistance values for the multiple battery banks, and converts the median absolute deviation MAD into a resistance deviation using a predetermined scale constant.
[0040] For example, the control unit 23 can calculate the median absolute deviation MAD between the first reference resistance R1 and the multiple internal resistance values of the multiple battery banks using the following equation 2.
[0041] [Formula 2] D = median(|DCIR i -R1|), (1≦i≦n) Here, i is an index indicating each battery bank and may be 1 or more and n or less, and n may be the total number of battery banks to be diagnosed. R1 is a first reference resistance, and DCIR i is the internal resistance of the i-th battery bank. median() is |DCIR i -R1|, and D may be a median absolute deviation (hereinafter referred to as absolute deviation). That is, D is a function that outputs a median value for the first reference resistance R1 and the internal resistances DCIR of the plurality of battery banks. i It may also be the absolute deviation between the values.
[0042] For example, the control unit 23 can calculate the scale constant using the following equation 3, and convert the absolute deviation into a resistance deviation using the following equation 4.
[0043] [Formula 3]
number
[0044] [Formula 4] S=D×C where S is the converted resistance deviation, D is the absolute deviation according to Equation 2, and C is the scale constant according to Equation 3.
[0045] Next, the control unit 23 can determine the first resistance section based on the first reference resistance R1 and the resistance deviation S.
[0046] Specifically, referring to FIG. 2, the control unit 23 can calculate the first upper limit value U1 by adding the resistance deviation S to the first reference resistance R1. That is, the control unit 23 can calculate the first upper limit value U1 by calculating "R1+S." The control unit 23 can also calculate the first lower limit value L1 by subtracting the resistance deviation from the first reference resistance R1. That is, the control unit 23 can calculate the first lower limit value L1 by calculating "R1-S."
[0047] Referring to Figure 2, the Y axis represents the internal resistance [Ω], and the X axis may represent the serial number of the battery bank. In other words, the X axis value is independent of the internal resistance value, and any printing that can identify each of multiple battery banks can be applied without any restrictions.
[0048] For example, the first lower limit L1 and the first upper limit U1 may be set symmetrically around the first reference resistance R1. A resistance range from the first lower limit L1 to the first upper limit U1 may be set as a first resistance range. In the embodiment of FIG. 2, all of the internal resistance values of the plurality of battery banks may be included in the first resistance range.
[0049] FIG. 3 is an exemplary diagram illustrating a second resistance section according to an embodiment.
[0050] 3, the control unit 23 may determine, as a plurality of target banks, a plurality of battery banks having an internal resistance value smaller than a first reference resistance R1 among the plurality of battery banks. The control unit 23 may determine a second reference resistance R2 based on a plurality of second internal resistance values for the plurality of target banks. The control unit 23 may determine a second resistance section based on the second reference resistance R2 and a parallel deviation. In this case, the parallel deviation P may be a value corresponding to a connection structure of a plurality of battery cells included in the target bank.
[0051] First, the control unit 23 can determine, as a plurality of target banks, a plurality of battery banks whose internal resistance values are smaller than the first reference resistance R1, among the plurality of battery banks.
[0052] The first reference resistance R1 may be the median or average value of the internal resistances of the battery banks. If the first reference resistance R1 is the average value of the internal resistances of the battery banks, a battery bank whose internal resistance is equal to or lower than the average may be selected as the target bank. Conversely, if the first reference resistance R1 is the median value of the internal resistances of the battery banks, a battery bank whose internal resistance is in the bottom 50% may be selected as the target bank.
[0053] Next, the control unit 23 can determine the second reference resistance R2 based on the plurality of second internal resistance values for the plurality of target banks.
[0054] The second reference resistor R2 is a value that represents the internal resistance values of the plurality of target banks, and may be a median value, an average value, etc. Preferably, the second reference resistor R2 may be an average value of the plurality of internal resistance values of the plurality of target banks.
[0055] Next, the control unit 23 can calculate a parallel coefficient μ from the number of parallel connections, and calculate a parallel deviation P by multiplying the parallel coefficient μ by the second reference resistance R2.
[0056] For example, the control unit 23 can calculate the parallel coefficient using the following equation 5. Here, μ is the parallel coefficient, m is the number of parallel connections, and b is a constant, which may be, for example, 0 or 1. In other words, the parallel coefficient μ is related to the reciprocal of the number m of parallel connections.
[0057] [Formula 5]
number
[0058] [Formula 6] P = R2 × μ Next, the control unit 23 can determine the second resistance section based on the second reference resistance R2 and the parallel deviation P.
[0059] Specifically, the control unit 23 can calculate the second upper limit value U2 by adding the parallel deviation P to the second reference resistance R2. That is, the control unit 23 can calculate the second upper limit value U2 by calculating "R2+P." The control unit 23 can calculate the second lower limit value L2 by subtracting the parallel deviation P from the second reference resistance R2. That is, the control unit 23 can calculate the second lower limit value L2 by calculating "R2-P."
[0060] Referring to FIG. 3, the Y-axis may represent the internal resistance [Ω], and the X-axis may represent the serial number of the battery bank. In other words, the X-axis value is independent of the internal resistance, and any printing that can identify each of the multiple battery banks may be used without limitation. Specifically, the multiple battery banks shown in the examples of FIGS. 2 and 3 may be identical.
[0061] For example, the second lower limit value L2 and the second upper limit value U2 may be set symmetrically around the second reference resistance R2, and the resistance section from the second lower limit value L2 to the second upper limit value U2 may be set as the second resistance section.
[0062] The control unit 23 can determine the first diagnostic bank by considering both the first resistance section and the second resistance section, rather than considering only one of the first resistance section and the second resistance section.
[0063] Preferably, the control unit 23 may determine that a battery bank among the plurality of battery banks whose internal resistance values all fall within the first resistance range and the second resistance range is in a normal state. The control unit 23 may determine that a battery bank among the plurality of battery banks whose internal resistance does not fall within the first resistance range or the second resistance range is in an abnormal state and determine the battery bank as a first diagnosis bank. According to one embodiment, the battery bank determined to be in a normal state in the first defect diagnosis may be used as a reference battery bank in the second defect diagnosis.
[0064] For example, referring to Fig. 2, the internal resistance values of the first battery bank B1 and the second battery bank B2 among the plurality of battery banks may fall within the first resistance range. However, referring to Fig. 3, the internal resistance values of the first battery bank B1 and the second battery bank B2 may not fall within the second resistance range. In this case, the control unit 23 may determine the first battery bank B1 and the second battery bank B2 as the first diagnosis banks and subsequently perform additional diagnosis for the presence or absence of a defect based on the state of charge (SOC).
[0065] FIG. 4 is a flowchart illustrating a battery diagnosis method according to one embodiment, FIG. 5 is a flowchart illustrating in detail the first defect diagnosis step S100 of FIG. 4, and FIG. 6 is a flowchart illustrating in detail the second defect diagnosis step S200 of FIG. 4.
[0066] A method for diagnosing defects in multiple battery banks and a battery system that provides the method will be described below with reference to FIGS.
[0067] Referring to FIG. 4, first, the control unit 23 performs a first defect diagnosis on the plurality of battery banks based on the internal resistance DCIR (S100).
[0068] Referring to FIG. 5, in step S100, the control unit 23 determines a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for a plurality of battery banks, and determines a first resistance range based on the first reference resistance and the resistance deviation (S110).
[0069] For example, the control unit 23 may set a median value of a plurality of internal resistance values for a plurality of battery banks as a first reference resistance R1. The control unit 23 may calculate a median absolute deviation (MAD) between the first reference resistance R1 and the internal resistance values of the plurality of battery banks using Equation 2. The control unit 23 may determine a predetermined scale constant using Equation 3 and convert the median absolute deviation MAD into a resistance deviation S using Equation 4.
[0070] The control unit 23 can calculate the first upper limit value U1 by adding the resistance deviation S to the first reference resistance R1. The control unit 23 can calculate the first lower limit value L1 by subtracting the resistance deviation S from the first reference resistance R1. Referring to FIG. 2, the control unit 23 can determine the resistance section from the first lower limit value L1 to the first upper limit value U1 as the first resistance section.
[0071] In step S100, the control unit 23 determines, as target banks, a plurality of battery banks whose internal resistance values are smaller than the first reference resistance R1, determines a second reference resistance R2 based on a plurality of second internal resistance values for the target banks, and determines a second resistance range based on the second reference resistance R2 and the parallel deviation (S130).
[0072] For example, when the first reference resistance R1 is the median value of the internal resistances of a plurality of battery banks, the control unit 23 can select a battery bank whose internal resistance value belongs to the bottom 50% as the target bank.
[0073] The control unit 23 may determine the average value of the internal resistance values of the plurality of target banks as the second reference resistance R2. The control unit 23 may also calculate a parallel coefficient μ from the number m of parallel connections, and calculate a parallel deviation P by multiplying the parallel coefficient μ by the second reference resistance R2. For example, the control unit 23 may calculate the parallel coefficient μ using Equation 5 and calculate the parallel deviation P using Equation 6. In this case, the parallel deviation P may be a value corresponding to the connection structure of the plurality of battery cells included in the target bank.
[0074] The control unit 23 can calculate the second upper limit value U2 by adding the parallel deviation P to the second reference resistance R2. The control unit 23 can calculate the second lower limit value L2 by subtracting the parallel deviation P from the second reference resistance R2. Referring to FIG. 3, the control unit 23 can determine the resistance section from the second lower limit value L2 to the second upper limit value U2 as the second resistance section.
[0075] In step S100, the control unit 23 determines, as a first diagnosis bank, a battery bank whose internal resistance value does not belong to the first resistance range or the second resistance range among the plurality of battery banks (S150).
[0076] For example, referring to Fig. 2, the internal resistance values of the first battery bank B1 and the second battery bank B2 among the plurality of battery banks may be included in the first resistance range. However, referring to Fig. 3, the internal resistance values of the first battery bank B1 and the second battery bank B2 may not be included in the second resistance range. In this case, the control unit 23 may determine the first battery bank B1 and the second battery bank B2 as the first diagnosis banks.
[0077] Next, the control unit 23 performs a second defect diagnosis on the battery banks based on the state of charge SOC of the plurality of battery banks (S200).
[0078] According to one embodiment, the control unit 23 can perform the second fault diagnosis on the first diagnosis bank. According to another embodiment, the control unit 23 can perform the second fault diagnosis on a plurality of battery banks.
[0079] Referring to FIG. 6, in step S200, if a predetermined condition is satisfied, the control unit 23 performs a charging mode in which the battery 10 is charged with power from an external device (S210).
[0080] For example, if the battery usage section is set to 20% or more and less than 80% of the state of charge SOC, the control unit 23 can execute the charging mode when the state of charge SOC of the battery 10 reaches 20%.
[0081] In step S200, the control unit 23 determines whether a first diagnostic condition is satisfied, that is, whether there is at least one battery bank among the plurality of battery banks included in the battery 10 whose state of charge (SOC) has reached a full charge state (S230).
[0082] When predetermined diagnostic conditions are met in a charging mode in which the battery is charged using power from an external device, the control unit 23 can perform a second fault diagnosis by determining the ratio (ΔSOC2 / ΔSOC1) of the second state of charge change amount ΔSOC2 of the battery bank to the first state of charge change amount ΔSOC1 of the reference battery bank, and comparing the determined ratio with a diagnostic reference value to determine a second diagnostic bank.
[0083] For example, if the battery usage interval is set to 20% or more and less than 80% of the state of charge SOC, the control unit 23 may determine that a battery bank has reached a full charge state if there is at least one battery bank whose state of charge SOC has reached 80% among the multiple battery banks included in the battery 10. In other words, the full charge state may be determined by the previously set battery usage interval.
[0084] If the determination result in step S200 is that the first diagnostic condition is satisfied (S230, Yes), the control unit 23 determines whether the second diagnostic condition, which is that the amount of change in the state of charge of the multiple battery banks is equal to or greater than the condition reference value, is satisfied (S250).
[0085] For example, if the condition reference value is assumed to be 45%, when the change in the state of charge of the multiple battery banks, i.e., the increase in the state of charge, from the start of charging is 45%, the control unit 23 can determine that the second diagnosis condition is satisfied.
[0086] As another example, assume that, at a given point in time during the charging mode, the first battery bank B1 is fully charged from 20% to 80% SOC (ΔSOC1=60%), the second battery bank B2 is charged from 25% to 70% SOC (ΔSOC2=45%), the third battery bank B3 is charged from 25% to 72% SOC (ΔSOC3=47%), the fourth battery bank B4 is charged from 25% to 70% SOC (ΔSOC4=45%), and the fifth battery bank B5 is charged from 20% to 70% SOC (ΔSOC5=50%). The control unit 23 determines that the first battery bank B1 has reached full charge (SOC=80%) and thus satisfies the first diagnostic condition, and calculates the SOC changes (ΔSOC) of each of the first through fifth battery banks B1, B2, B3, B4, and B5. 1-5= 60%, 45%, 47%, 45%, 50%) is equal to or greater than the condition reference value (45%), and therefore the control unit 23 can determine that the first diagnostic condition and the second diagnostic condition are satisfied.
[0087] In step S200, if the second diagnostic condition is met (S250, Yes), the control unit 23 determines the ratio of the second state of charge change of the battery bank to the first state of charge change of the reference battery bank, and compares the ratio with the diagnostic reference value to determine the second diagnostic bank (S270).
[0088] The reference battery bank may be determined as a battery bank diagnosed as being in a normal state or a new battery bank with no history of use. According to one embodiment, the reference battery bank may be a battery bank determined to be in a normal state in the first defect diagnosis step. For example, if there are multiple battery banks determined to be in a normal state in the first defect diagnosis step, the control unit 23 may determine the battery bank with the smallest state-of-charge change ΔSOC calculated in the second defect diagnosis step as the reference battery bank. However, the present invention is not limited thereto, and the control unit 23 may determine any one of the multiple battery banks determined to be in a normal state in the first defect diagnosis as the reference battery bank.
[0089] For example, let us assume that the battery 10 includes first through fifth battery banks B1 through B5, and that the first and second battery banks B1 and B2 are diagnosed as first diagnosis banks corresponding to an abnormal state in the first defect diagnosis step, and the third through fifth battery banks B3, B4, and B5 are diagnosed as normal in the second defect diagnosis step. 1-3 Assuming that the change in the state of charge is 47%, 45%, and 50%, the control unit 23 can determine the fourth battery bank B4, which has the smallest change in the state of charge, as the reference battery bank.
[0090] The diagnostic reference value may be determined based on the number of battery cells connected in parallel in the battery bank. For example, the diagnostic reference value may be determined by the following Equation 7:
[0091] [Formula 7]
number
[0092] For example, when attempting to diagnose the case where even one battery cell is defective, n can be set to 1. As another example, when attempting to diagnose the presence of a defective battery cell when two or more battery cells are defective, n can be set to 2. That is, when attempting to detect a battery bank including at least one defective battery cell, n can be set to 1 in Equation 1 above. Hereinafter, it is assumed that m is 5 and n is 1. In this case, the diagnostic reference value Th1 can be determined to be 1.25.
[0093] For example, assume that the state of charge of the reference battery bank changes from 25% to 70% and the state of charge of the first battery bank B1 changes from 20% to 80%. If the ratio (1.33 = 60% / 45%) of the second SOC change amount (60% = 80% - 20%), which is the change amount of the SOC of the first battery bank, to the first SOC change amount (45% = 70% - 25%), which is the change amount of the SOC of the reference battery bank, is greater than or equal to the diagnostic threshold value (Th1 = 1.25), the controller 23 can determine that the first battery bank B1 is the second battery bank to be diagnosed.
[0094] Next, the control unit 23 diagnoses the battery banks determined as the first diagnosis bank and the second diagnosis bank among the plurality of battery banks as defective battery banks (S300).
[0095] According to one embodiment, the accuracy of diagnosis can be improved by finally diagnosing a defective battery bank through a first defect diagnosis method that diagnoses defects based on the internal resistance of the battery bank and a second defect diagnosis method that diagnoses defects based on the state of charge (SOC) of the battery bank.
[0096] In another embodiment, the control unit 23 can diagnose a defective battery bank using only the second defect diagnosis method, which diagnoses defects based on the state of charge (SOC) of the battery bank. In this case, the control unit 23 can determine a reference battery bank using the first defect diagnosis method described above, and determine a second diagnosis bank based on the ratio of the change in the state of charge of the battery bank to the reference battery bank. The second diagnosis bank may be the defective battery bank.
[0097] Although the embodiments of the present invention have been described in detail above, the scope of the present invention is not limited to these examples, and various modifications and improvements made by those skilled in the art to which the present invention pertains also fall within the scope of the present invention. [Explanation of symbols]
[0098] 10 Battery 21 Measuring part 22 Storage 23 Control Unit
Claims
1. A battery including a plurality of battery banks, each battery bank including a plurality of battery cells; a control unit that, when a predetermined diagnostic condition is satisfied in a charging mode in which the battery is charged with power from an external device, determines a ratio of a second state of charge change amount of a battery bank among the plurality of battery banks to a first state of charge change amount of a reference battery bank among the plurality of battery banks, and diagnoses a defect in the battery bank by comparing the ratio with a diagnostic reference value; The diagnostic reference value is determined based on the number of battery cells connected in parallel within the battery bank, The diagnostic reference value is It is determined by the following formula: [formula] [Equation 1] A battery system, wherein Th1 is a diagnostic reference value, m is the number of battery cells connected in parallel in a battery bank, and n is a natural number smaller than m.
2. A battery including a plurality of battery banks, each battery bank including a plurality of battery cells; a control unit that, when a predetermined diagnostic condition is satisfied in a charging mode in which the battery is charged with power from an external device, determines a ratio of a second state of charge change amount of a battery bank among the plurality of battery banks to a first state of charge change amount of a reference battery bank among the plurality of battery banks, and diagnoses a defect in the battery bank by comparing the ratio with a diagnostic reference value; The diagnostic reference value is determined based on the number of battery cells connected in parallel within the battery bank, The control unit In the charging mode, if a first diagnostic condition that at least one battery bank reaches a full charge state and a second diagnostic condition that a change in the state of charge of each of the plurality of battery banks is equal to or greater than a condition reference value are satisfied, and diagnosing defects in the plurality of battery banks.
3. A battery including a plurality of battery banks, each battery bank including a plurality of battery cells; a control unit that, when a predetermined diagnostic condition is satisfied in a charging mode in which the battery is charged with power from an external device, determines a ratio of a second state of charge change amount of a battery bank among the plurality of battery banks to a first state of charge change amount of a reference battery bank among the plurality of battery banks, and diagnoses a defect in the battery bank by comparing the ratio with a diagnostic reference value; The diagnostic reference value is determined based on the number of battery cells connected in parallel within the battery bank, The control unit determining a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for the plurality of battery banks; and determining a first resistance range based on the first reference resistance and the resistance deviation; determining a plurality of battery banks having an internal resistance value smaller than the first reference resistance as a plurality of target banks, determining a second reference resistance based on a plurality of second internal resistance values for the plurality of target banks, and determining a second resistance range based on the second reference resistance and a parallel deviation corresponding to a connection structure of a plurality of battery cells included in each target bank among the plurality of target banks; a battery bank having an internal resistance value that falls within the first resistance range and the second resistance range among the plurality of battery banks is determined as the reference battery bank.
4. The control unit determining a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for the plurality of battery banks; and determining a first resistance range based on the first reference resistance and the resistance deviation; determining a plurality of battery banks having an internal resistance value smaller than the first reference resistance as a plurality of target banks, determining a second reference resistance based on a plurality of second internal resistance values for the plurality of target banks, and determining a second resistance range based on the second reference resistance and a parallel deviation corresponding to a connection structure of a plurality of battery cells included in each target bank among the plurality of target banks; The battery system of claim 1 or 2, wherein a battery bank having an internal resistance value that falls within the first resistance range and the second resistance range among the plurality of battery banks is determined as the reference battery bank.
5. a battery including a plurality of battery banks, each battery bank including a plurality of battery cells; a control unit that determines a first diagnosis bank based on the internal resistance of the plurality of battery banks, and determines a second diagnosis bank by comparing a ratio of a second state of charge change amount of a battery bank to a first state of charge change amount of a reference battery bank with a diagnosis reference value when a predetermined diagnosis condition is satisfied in a charging mode in which the battery is charged with power from an external device, and diagnoses the battery banks determined as the first diagnosis bank and the second diagnosis bank among the plurality of battery banks as defective battery banks, The diagnostic reference value is A battery system determined based on the number of battery cells connected in parallel within a battery bank.
6. The diagnostic reference value is It is determined by the following formula: [formula] [Equation 2] The battery system of claim 5 , wherein Th1 is a diagnostic reference value, m is the number of battery cells connected in parallel in the battery bank, and n is a natural number smaller than m.
7. The control unit In the charging mode, if a first diagnostic condition that at least one battery bank reaches a full charge state and a second diagnostic condition that a change in the state of charge of each of the plurality of battery banks is equal to or greater than a condition reference value are satisfied, The battery system of claim 5 , further comprising: determining said second diagnostic bank.
8. The control unit determining a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for the plurality of battery banks; and determining a first resistance range based on the first reference resistance and the resistance deviation; determining a plurality of battery banks having an internal resistance value smaller than the first reference resistance as a plurality of target banks, determining a second reference resistance based on a plurality of second internal resistance values for the plurality of target banks, and determining a second resistance range based on the second reference resistance and a parallel deviation corresponding to a connection structure of a plurality of battery cells included in each target bank among the plurality of target banks; 8. The battery system according to claim 5, wherein, among the plurality of battery banks, a battery bank whose internal resistance value does not belong to the first resistance range or the second resistance range is determined as the first diagnosis bank.
9. The control unit determining a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for the plurality of battery banks; and determining a first resistance range based on the first reference resistance and the resistance deviation; determining a plurality of battery banks having an internal resistance value smaller than the first reference resistance as a plurality of target banks, determining a second reference resistance based on a plurality of second internal resistance values for the plurality of target banks, and determining a second resistance range based on the second reference resistance and a parallel deviation corresponding to a connection structure of a plurality of battery cells included in each target bank among the plurality of target banks; 8. The battery system according to claim 5, wherein a battery bank among the plurality of battery banks whose internal resistance values belong to the first resistance range and the second resistance range is determined as the reference battery bank.
10. The control unit determining a median value of the plurality of first internal resistance values as the first reference resistance; 9. The battery system of claim 8, further comprising: determining an absolute deviation between the first reference resistance and an internal resistance of each of the plurality of battery banks; and converting the absolute deviation to the resistance deviation using a predetermined scaling constant.
11. The control unit 11. The battery system of claim 10, further comprising: determining a first upper limit value by adding the resistance deviation to the first reference resistance; determining a first lower limit value by subtracting the resistance deviation from the first reference resistance; and determining the first resistance range based on the first upper limit value and the first lower limit value.
12. The control unit determining an average value of the plurality of second internal resistance values as the second reference resistance; 9. The battery system of claim 8, wherein a parallel coefficient is determined based on the number of parallel-connected battery cells included in each target bank among the plurality of target banks, and the parallel deviation is determined by multiplying the parallel coefficient by the second reference resistance.
13. The control unit determining a second upper limit value by adding the parallel deviation to the second reference resistance; determining a second lower limit by subtracting the parallel deviation from the second reference resistance; The battery system according to claim 12 , wherein the second resistance range is determined based on the second upper limit value and the second lower limit value.
14. a measurement unit that measures a bank voltage, which is a voltage across each of the plurality of battery banks, and a bank current, which is a current flowing through each of the plurality of battery banks; a storage unit that stores an internal resistance value and a state of charge (SOC) estimated based on at least one of the bank voltage and the bank current; The battery system of claim 5 further comprising:
15. 1. A method for diagnosing defects in a battery including a plurality of battery banks, each battery bank including a plurality of battery cells, comprising: a first defect diagnosis step of determining a first diagnosis bank based on the internal resistances of the plurality of battery banks; a second defect diagnosis step of determining a second battery bank to be diagnosed by comparing a ratio of a second change in the state of charge of the battery bank to a first change in the state of charge of the reference battery bank with a diagnosis reference value when a predetermined diagnosis condition is satisfied in a charging mode in which the battery is charged with power from an external device; a diagnosis determination step of diagnosing the battery banks determined as the first diagnosis bank and the second diagnosis bank among the plurality of battery banks as defective battery banks; The diagnostic reference value is A battery diagnostic method determined based on the number of battery cells connected in parallel within a battery bank.
16. The diagnostic reference value is It is determined by the following formula: [formula] [Equation 3] 16. The battery diagnosis method of claim 15, wherein Th1 is a diagnosis reference value, m is the number of battery cells connected in parallel in the battery bank, and n is a natural number smaller than m.
17. The second defect diagnosis step includes:
16. The battery diagnostic method of claim 15, wherein the second diagnosis bank is determined when a first diagnosis condition that at least one battery bank reaches a full charge state and a second diagnosis condition that a change in the state of charge of each of the plurality of battery banks is equal to or greater than a condition reference value are satisfied in the charging mode.
18. The first defect diagnosis step includes: determining a first reference resistance and a resistance deviation based on a plurality of first internal resistance values for the plurality of battery banks, and determining a first resistance range based on the first reference resistance and the resistance deviation; determining a plurality of battery banks having an internal resistance value smaller than the first reference resistance as a plurality of target banks, determining a second reference resistance based on a plurality of second internal resistance values for the plurality of target banks, and determining a second resistance range based on the second reference resistance and a parallel deviation corresponding to a connection structure of a plurality of battery cells included in each target bank among the plurality of target banks; and comparing the internal resistance values of each of the plurality of battery banks with the first resistance range and the second resistance range to determine the first diagnostic battery bank and the reference battery bank.
19. The step of determining the first resistance section includes: determining a median value of the plurality of first internal resistance values as the first reference resistance; 20. The battery diagnostic method of claim 18, further comprising determining an absolute deviation between the first reference resistance and an internal resistance of each of the plurality of battery banks, and converting the absolute deviation to the resistance deviation using a predetermined scaling constant.
20. The step of determining the first resistance section includes:
20. The battery diagnostic method of claim 19, further comprising: determining a first upper limit value by adding the resistance deviation to the first reference resistance; determining a first lower limit value by subtracting the resistance deviation from the first reference resistance; and determining the first resistance range based on the first upper limit value and the first lower limit value.
21. The step of determining the second resistance section includes: determining an average value of the plurality of second internal resistance values as the second reference resistance; 20. The battery diagnosis method of claim 18, further comprising: determining a parallel coefficient based on the number of parallel-connected battery cells included in each target bank among the plurality of target banks; and determining the parallel deviation by multiplying the parallel coefficient by the second reference resistance.
22. The step of determining the second resistance section includes: determining a second upper limit value by adding the parallel deviation to the second reference resistance; determining a second lower limit by subtracting the parallel deviation from the second reference resistance; The battery diagnostic method of claim 21 , further comprising determining the second resistance range based on the second upper limit value and the second lower limit value.
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