Device for determining the state of charge of a battery, associated method and motor vehicle
The method and device for determining the state of charge of lithium-ion batteries by regulating voltage and measuring current intensity address the imprecision of traditional methods, enabling precise state of charge determination and resetting.
Patent Information
- Application Number
- FR2023006485
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-06-22
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2043-06-22
AI Technical Summary
Existing methods for determining the state of charge of lithium-ion batteries, such as using open circuit voltage, are not sufficiently precise due to small variations in impedance between 40% and 70% state of charge, making it difficult to accurately reset the state of charge.
A method and device that regulate the battery voltage to a reference voltage associated with a reference state of charge, measure the current intensity, compare it to a predetermined threshold, and reset the state of charge to the reference value when the current intensity is below the threshold, thereby ensuring accurate state of charge determination.
This approach allows for precise determination and resetting of the battery state of charge, even in the range where traditional methods are imprecise, thereby improving the accuracy and reliability of battery management systems.
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Abstract
Description
Title of the invention: Device for determining the state of charge of a battery, associated method and motor vehicle
[0001] The present invention relates to the determination of battery charge states.
[0002] The present invention relates more particularly to a method for determining the state of charge of a battery, a device for determining the state of charge of a battery, and a motor vehicle comprising such a device.
[0003] Generally, motor vehicles are equipped with lead acid type batteries.
[0004] The state of charge of a battery is conventionally determined by coulometric counting from measurements delivered by a probe measuring the quantity of electricity circulating at the terminals of the battery.
[0005] It is necessary to regularly recalibrate the state of charge determined by coulometric counting to correct measurement errors.
[0006] To reset the state of charge of such batteries, the state of charge is reset from the measurement of the open circuit voltage of the battery at rest for at least one hour and from a curve linking the value of the open circuit voltage to a state of charge.
[0007] The variation in the state of charge relative to the variation in the open circuit voltage is sufficient to accurately determine the state of charge of the battery from the variation in the open circuit voltage across said battery.
[0008] Following changes in regulations, lead acid batteries are gradually being replaced by lithium-ion batteries of the Lithium Iron Phosphate / Graphite LFP / G type.
[0009] However, since the variation in the state of charge relative to the variation in the open circuit voltage is small, generally less than 1.7 mV per percentage variation in the state of charge for a state of charge between 40% and 70% of the maximum charge of the battery, the method of resetting the state of charge of the battery from the open circuit voltage of the battery is not sufficiently precise for this type of battery.
[0010] Document DE102012222457 proposes a method for determining the state of charge of a lithium battery of the LPF / G type from the value of the internal resistance of the battery.
[0011] According to this method, an electronic system causes a current pulse of known value, and the resulting voltage jump is measured to determine the impedance of the battery. The state of charge is determined from the impedance and a table relating impedance values to charge states.
[0012] To deliver an accurate state of charge, it is necessary for the impedance to vary sufficiently.
[0013] This condition is met in the vicinity of a zero (0%) or full (100%) state of charge. However, between these two states of charge, the variation in impedance is too small to determine a sufficiently precise state of charge.
[0014] The aim of the invention is to overcome all or part of these drawbacks, in particular by resetting the state of charge of a battery to a predetermined value to reset the state of charge.
[0015] The subject of the invention is a method for determining the state of charge of a battery.
[0016] The method comprises the following steps:
[0017] (a) a regulation of the voltage at the terminals of the battery so that said voltage is equal to a reference voltage, the value of the reference voltage being chosen so that the battery is charging and is associated with a reference state of charge of the battery,
[0018] (b) a measurement of the current flowing through the battery,
[0019] (c) a comparison of the measured current intensity at an intensity threshold of predetermined load, and
[0020] (d) resetting the battery charge state the measured current intensity is equal to or less than the charging intensity threshold, with the reset battery state of charge equal to the reference state of charge.
[0021] Preferably, the battery is integrated into a motor vehicle, the method comprises starting the vehicle before implementing steps (a) to (d).
[0022] Advantageously, the method comprises updating the reset state of charge of the battery from the quantity of electricity passing through the terminals of the battery.
[0023] Preferably, when the reference state of charge of the battery is less than or equal to 70% of the maximum state of charge of the battery and the state of charge of the battery is reset, the method comprises regulating the voltage across the battery so that said voltage is equal to a first nominal voltage, the first nominal voltage being greater than the reference voltage so as to charge the battery.
[0024] Advantageously, when the reference state of charge of the battery is greater than or equal to 90% of the maximum state of charge of the battery and the state of charge of the battery is reset, the method comprises regulating the voltage at the terminals of the battery so that said voltage is equal to a second nominal voltage, the second nominal voltage being lower than the reference voltage so as to discharge the battery.
[0025] Preferably, the first nominal voltage is equal to the second voltage nominal.
[0026] Advantageously, the battery is a lithium iron phosphate / graphite battery.
[0027] A device for determining the state of charge of a battery is also provided.
[0028] The device comprises:
[0029] - regulating means configured to regulate the voltage across the terminals of the battery such that said voltage is equal to a reference voltage, the value of the reference voltage being chosen such that the battery is charging and is associated with a reference state of charge of the battery,
[0030] - means for measuring the intensity of the current flowing through the battery,
[0031] - comparison means configured to compare the intensity of the current measured at a predetermined load intensity threshold, and
[0032] - means for resetting the state of charge of the battery configured to re initialize the state of charge to the reference state of charge when the measured current intensity is equal to or less than the charge intensity threshold.
[0033] Advantageously, the device further comprises coulometric counting means configured to update the reset charge state of the battery from the quantity of electricity passing through the terminals of the battery.
[0034] Also provided is a motor vehicle comprising a battery and a device for determining the state of charge as defined previously and configured to determine the state of charge of the battery.
[0035] Other aims, characteristics and advantages of the invention will appear on reading the following description, given solely by way of non-limiting example, and made with reference to the appended drawings in which:
[0036] [Fig.l]
[0037] schematically illustrates an example of temporal evolution of the state of charge and of a current circulating in a charging LPF / G battery;
[0038] [Fig.2]
[0039] schematically illustrates an example of a motor vehicle according to the invention;
[0040] [Fig.3]
[0041] schematically illustrates a first example of a method for determining the state of charge of a battery according to the invention; and
[0042] [Fig.4]
[0043] schematically illustrates a second example of the method for determining the state of charge of the battery according to the invention.
[0044] [Fig.l] illustrates an example of the temporal evolution of the current Ibatt at the terminals of the battery and of the state of charge SOC (“State of Charge” in English) of the battery when charging the LPF / G type battery under a constant voltage equal to the voltage of the battery having a SOC of 100%.
[0045] A SOC of 100% is representative of a battery charged to its maximum storage capacity, and a SOC of 0% is representative of a completely discharged battery.
[0046] At an instant tl, the current Ibatt is equal to II and the state of charge SOC is equal to SOC1, for example equal to 99%.
[0047] At a time t2 subsequent to time t1, the current Ibatt is equal to 12 and the state of charge SOC is equal to SOC2, for example equal to 100%.
[0048] When the battery is charged under a constant voltage equal to the voltage of the battery having an SOC of 100% and the current Ibatt at the terminals of the battery is between II and 12, it can be assumed that the SOC of the battery is at least equal to SOC1, for example 99%.
[0049] Reference is made to [Fig.2] which schematically illustrates an example of a motor vehicle 1.
[0050] The vehicle 1 comprises a battery 2, for example lithium-ion of the LPF / G type, an electric load 3, an energy management computer 4 controlling the electric load 3, a control system 5 of the battery 2, and a processing module 6.
[0051] The load 3 connected to the battery 2 comprises for example a power converter or an alternator capable of charging the battery 2.
[0052] The computer 4 comprises regulation means 7 capable of controlling the voltage at the terminals of the electrical load 3 connected to the battery 2 so that the regulation means 7 impose the value of the voltage at the terminals of the battery 2, for example between 12.5 V and 15 V.
[0053] When the value of the voltage imposed by the regulating means 7 at the terminals of the battery 2 is greater than the voltage at the terminals of the battery 2, the battery 2 is powered by the load 3 so that the battery 2 is charging.
[0054] When the value of the voltage imposed by the regulating means 7 is lower than the voltage at the terminals of the battery 2, the battery 2 supplies the load 3 so that the battery 2 is discharging.
[0055] The control system 5 comprises means 8 for measuring the intensity of a current flowing at the terminals of the battery 2 to determine the current flowing through the battery 2, coulometric counting means 9 for determining the quantity of electricity passing through the terminals of the battery 2, means 10 for determining the SOC of the battery 2 from the measurements delivered by the counting means 9.
[0056] The measuring means 8 comprise for example a current sensor.
[0057] The control system 5 further stores a nominal voltage value Vnomequal to the nominal voltage of battery 2 for example in a memory (not shown) of system 5.
[0058] The control system 5 may further comprise control means 11 determining a drift rate of the SOC determined by the determination means 10 from the measurements delivered by the measurement means 8 and the measurements delivered by the counting means 9.
[0059] The control means 11 determine the SOC drift rate from the measurement accuracy of the current sensor and the self-discharge of cells of the battery 2 which contribute to the SOC drift.
[0060] The measurement accuracy and the self-discharge of the cells are for example determined from at least one model as a function of the kilometers traveled by the vehicle 1 or the lifetime of the cells.
[0061] The control system 5 may further comprise correction means 12 correcting the SOC determined by the determination means 10 according to the loss of storage capacity of the battery 2 linked to the aging of the battery 2.
[0062] The processing module 6 comprises comparison means 14, reset means 15, and a memory 16.
[0063] The memory 16 stores a plurality of triplets 17, 18.
[0064] Each triplet 17, 18 comprises a reference state of charge SOClref, SOC2ref of the battery, a reference voltage Vlref, V2ref, and a predetermined charge intensity threshold Slref, S2 ref.
[0065] The reference voltage Vlref, V2ref of each triplet 17, 18 is equal to the voltage at the terminals of the battery 2 when it has reached the reference state of charge SOClref, SOC2 ref associated with said reference voltage Vlref, V2ref of said triplet.
[0066] The charging intensity threshold S lref, S2ref of each triplet 17, 18 is chosen so that when the current at the terminals of the battery 2 is less than or equal to the charging intensity threshold Slref, S2ref, it can be assumed that the SOC of the battery is at least equal to the reference state of charge SOClref, SOC2ref associated with said triplet.
[0067] The reference voltage Vlref, V2ref, the reference state of charge SOClref, SOC2ref, and the predetermined charging intensity threshold S lref, S2ref are determined for each triplet 17, 18, for example empirically by analyzing the time evolution of the current at the terminals of the battery 2 and of the state of charge SOC of the battery 2 during battery charging under a constant voltage equal to the reference voltage Vlref, V2ref, [Fig.l] illustrating an example of such a time evolution.
[0068] For example, it is assumed that in the following, the reference state of charge SOC1 ref of a first triplet 17 is equal to 70%, the reference voltage Vlref is equal to 13.3 V, and the charge intensity threshold Slref is chosen so that when the current flowing through the battery 2 is less than the charge intensity threshold Slref, the state of charge of the battery 2 is greater than or equal to SOClref.
[0069] It is further assumed, for example, that in the following that the reference state of charge SOC2ref of the second triplet 18 is equal to 100%, the reference voltage V2ref is equal to 14.4 V, and the charging intensity threshold S2ref is chosen so that when the current flowing through the battery 2 is less than the charging intensity threshold S2 ref, the state of charge of the battery 2 is greater than or equal to SOC2ref.
[0070] For example, assume that the nominal voltage value Vnomest equals 13.6 V.
[0071] The regulating means 7, the measuring means 8, the color counting means- metric 9, the comparison means 14, and the reset means 15 form a device for determining the state of charge of the battery 2.
[0072] The state of charge SOC of the battery 2 is generally maintained above 70% to guarantee the power supply of an on-board network supplying on-board systems of the vehicle 1 and in particular the device for determining the state of charge, and below 90% in order to reduce the aging of the battery 2 and to maintain sufficient charge acceptance allowing the smoothing of the voltage of the on-board network supplied by the battery 2.
[0073] Now two examples of a method for determining the state of charge of the battery 2 implementing the device for determining the state of charge are detailed.
[0074] Preferably, the method is implemented by the control means 11 after the vehicle 1 has been started.
[0075] The method can also be implemented by the control means 11 when the drift rate of the SOC determined by the control means 11 is greater than a predetermined drift threshold.
[0076] [Fig.3] illustrates a first example of a method for determining the state of charge of the battery.
[0077] It is assumed that in this example the SOC of the battery 2 determined by the determination means 10 is reset to the reference state of charge SOClref of the first triplet 17 equal for example to 70%.
[0078] It is assumed that in a first step 20, the vehicle 1 is started.
[0079] During a step 21, the control means 11 control the regulation means 7 so that the voltage across battery 2 is equal to the reference voltage V1 ref of the first triplet 17.
[0080] The measuring means 8 measure the intensity of the current flowing through the terminals of the battery 2 and the comparison means 14 compare the current measured by the measuring means 8 with the charging intensity threshold S lref of the first triplet 17.
[0081] As long as the current intensity measured by the measuring means 8 is greater than the charge intensity threshold Slref (step 22), the method continues at step 21.
[0082] As soon as the intensity of the current measured by the measuring means 8 is equal to or in lower than the charging intensity threshold Slref, in step 23, the reset means 15 resets the SOC of the battery 2 to the reference state of charge SOClref, in this case to the value 70%.
[0083] During a step 24, as the state of charge of the battery 2 is equal to the reference state of charge SOClref which is less than or equal to 70% of the maximum state of charge of the battery 2 and the state of charge of the battery is reset, the control means 11 control the regulation means 7 so that the voltage at the terminals of the battery 2 is equal to a first nominal voltage, for example equal to the nominal voltage Vnom, for example equal to 13.6 V.
[0084] As the value of the reference voltage V lrefest is lower than the value of the first nominal voltage, the battery 2 is charging.
[0085] Between two successive resets of the SOC of the battery 2, the SOC of the battery is continuously updated by the determination means 10 from the quantity of electricity passing through the terminals of the battery 2 determined by the coulometric counting means 9.
[0086] [Fig.4] illustrates a second example of a method for determining the state of charge of the battery 2.
[0087] It is assumed in this example that the SOC of the battery 2 determined by the determination means 10 is reset to the reference state of charge SOC2ref of the second triplet 18 equal for example to 100%.
[0088] It is assumed that in the first step 20, the vehicle 1 is started.
[0089] During a step 31, the control means 11 control the regulation means 7 so that the voltage across battery 2 is equal to the reference voltage V2 ref of the second triplet 18.
[0090] The measuring means 8 measure the intensity of the current flowing through the terminals of the battery 2 and the comparison means 14 compare the intensity of the current measured by the measuring means 8 with the charging intensity threshold S2ref of the second triplet 18.
[0091] As long as the current intensity measured by the measuring means 8 is greater than the charging intensity threshold S2ref (step 32), the method continues at step 31.
[0092] As soon as the current measured by the measuring means 8 is equal to or less than the charging intensity threshold S2ref, in step 33, the resetting means 15 resets the SOC of the battery 2 to the reference state of charge SOC2ref, in this case to the value 100%.
[0093] During a step 34, as the state of charge of the battery 2 is equal to the reference state of charge SOC2ref which is less than or equal to 90% of the maximum state of charge of the battery and the state of charge of the battery is reset, the control means 11 control the regulation means 7 so that the voltage at the terminals of battery 2 is equal to a second nominal voltage for example equal to the nominal voltage Vnom for example equal to 13.6 V.
[0094] The first and second nominal voltages may be the same or different.
[0095] As the value of the reference voltage V2ref is greater than the value of the second nominal voltage, the battery 2 is discharging.
[0096] Between two successive resets of the SOC of the battery 2, the SOC of the battery is continuously updated by the determination means 10 from the quantity of electricity passing through the terminals of the battery 2 determined by the coulometric counting means 9.
[0097] The device for determining the state of charge makes it possible to reset and determine the state of charge of the battery 2 having an open circuit voltage profile as a function of the state of charge having a low slope, for example less than 1.7 mV per unit of state of charge in a precise manner over the range of state of charge of said battery.
[0098] Of course, the battery 2 may be different from a lithium-ion battery of the LPF / G type, for example a sodium-ion battery.
Claims
Claims
1. A method for determining the state of charge of a battery (2), characterized in that the method comprises the following steps: (a) regulating the voltage across the battery (2) so that said voltage is equal to a reference voltage (Vlref, V2ref), the value of the reference voltage being chosen so that the battery is charging and is associated with a reference state of charge of the battery (SOClref, SOC2ref), (b) measuring the current flowing through the battery, (c) comparing the measured current intensity with a predetermined charging intensity threshold (Slref, S2ref), and (d) resetting the state of charge of the battery when the measured current intensity is equal to or less than the charging intensity threshold, the state of charge of the reset battery being equal to the reference state of charge.
2. A method according to claim 1, wherein the battery is integrated into a motor vehicle (1), the method comprising starting the vehicle before carrying out steps (a) to (d).
3. A method according to claim 1 or 2, the method comprising updating the reset state of charge of the battery from the amount of electricity flowing through the terminals of the battery.
4. Method according to one of claims 1 to 3, wherein when the reference state of charge (SOClref) of the battery (2) is less than or equal to 70% of the maximum state of charge of the battery and the state of charge of the battery is reset, the method comprises regulating the voltage at the terminals of the battery so that said voltage is equal to a first nominal voltage, the first nominal voltage being greater than the reference voltage so as to charge the battery.
5. Method according to one of claims 1 to 4, wherein when the reference state of charge (SOC2ref) of the battery (2) is greater than or equal to 90% of the maximum state of charge of the battery and the state of charge of the battery is reset, the method comprises regulating the voltage at the terminals of the battery so that said voltage is equal to a second nominal voltage, the second nominal voltage being lower than the reference voltage so as to discharge the battery.
6. The method of claim 5, wherein the first nominal voltage is equal to the second nominal voltage.
7. A method according to any one of claims 1 to 6, wherein the battery (2) is a lithium iron phosphate / graphite battery.
8. Device for determining the state of charge of a battery, characterized in that the device comprises: - regulating means (7) configured to regulate the voltage across the terminals of the battery (2) so that said voltage is equal to a reference voltage (Vlref, V2ref), the value of the reference voltage being chosen so that the battery is charging and is associated with a reference state of charge (SOClref, SOC2ref) of the battery, - measuring means (8) for measuring the intensity of the current flowing through the battery, - comparing means (14) configured to compare the measured current intensity with a predetermined charging intensity threshold (Slref, S2ref), and - resetting means (15) of the state of charge of the battery (2) configured to reset the state of charge to the reference state of charge (SOClref,SOC2ref) when the measured current intensity is equal to or lower than the load intensity threshold (Slref, S2ref).,
9. Device according to claim 8, further comprising coulometric counting means (9) configured to update the reset state of charge of the battery (2) from the quantity of electricity passing through the terminals of the battery.
10. A motor vehicle (1) comprising a battery (2) and a state of charge determination device according to claim 8 or 9 configured to determine the state of charge of the battery.