METHOD FOR RESTORING PERFORMANCE
20250357513 · 2025-11-20
Inventors
Cpc classification
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M8/18
ELECTRICITY
H01M8/188
ELECTRICITY
International classification
Abstract
The invention relates to a method for restoring the performance of a vanadium redox flow battery module in a battery system, the method comprising the following steps in the order indicated: identifying at least one degraded battery module; switching off the pumps of the at least one degraded battery module at a time t1; switching on the pumps of the at least one degraded battery module at a time t2; wherein the length of the time interval t=t2t1 is selected such that, at the time t2, a terminal voltage of the degraded battery module is negative, but overcharging of the electrolyte located in the cell assembly of the degraded battery module is avoided, and wherein these steps, with the exception of the first step, take place while the battery system is being discharged.
Claims
1. A method for restoring performance of a vanadium redox flow battery module in a battery system, wherein the battery system comprises: at least two battery modules connected in series, a power conversion system; and a control device, wherein the at least two battery modules are connected to the power conversion system, and wherein each battery module comprises: a cell device; a tank device for storing an electrolyte; and two pumps for conveying the electrolyte through the cell device, wherein the control device is configured to detect an operating state of the power conversion system and to drive the two pumps in the at least two battery modules, wherein the method comprises the following steps in the indicated order: identifying at least one degraded battery module from the at least two battery modules; switching off pumps of the at least one degraded battery module at a time t.sub.1; and switching on the pumps of the at least one degraded battery module at a time t.sub.2, wherein a length of a time interval t=t.sub.2t.sub.1 is selected such that, at time t.sub.2, a terminal voltage of the at least one degraded battery module is negative, but overcharging of the electrolyte present in the cell device of the at least one degraded battery module is avoided, and wherein switching off the pumps and switching on the pumps are carried out while the battery system is being discharged.
2. The method according to claim 1, wherein, after switching off the pumps of the at least one degraded battery module at a time t.sub.1, the method further comprises the following steps in the indicated order: switching on the pumps of the at least one degraded battery module at time t.sub.2 and operating the pumps of the at least one degraded battery module at a first pump rate; and operating the pumps of the at least one degraded battery module at a time t.sub.3 after t.sub.2 at a second pump rate, wherein the length of the time interval t=t.sub.2t.sub.1 is selected such that at time t.sub.2 a terminal voltage of the at least one degraded battery module is negative, wherein the first pump rate is selected such that the terminal voltage of the at least one degraded battery module is negative during a time interval between t.sub.2 and t.sub.3, but overcharging of the electrolyte present in the cell device of the at least one degraded battery module in the time interval between t.sub.2 and t.sub.3 is avoided, wherein the second pump rate is selected such that the terminal voltage of the at least one degraded battery module becomes positive after t.sub.3, and wherein these steps are carried out while the battery system is being discharged.
3. The battery system of claim 1, wherein the at least two battery modules comprise at least two vanadium redox flow battery modules, and wherein the control device is further configured to carry out the method of claim 1.
4. The battery system according to claim 3, wherein the control device is further configured to detect a terminal voltage of the at least two battery modules.
5. A computer program comprising instructions that cause the battery system of claim 1 to carry out the method according to claim 1.
6. A computer-readable medium on which the computer program according to claim 5 is stored.
7. The battery system of claim 2, wherein the at least two battery modules comprise at least two vanadium redox flow battery modules, and wherein the control device is further configured to carry out the method of claim 2.
8. The battery system according to claim 7, wherein the control device is further configured to detect a terminal voltage of the at least two battery modules.
9. A computer program comprising instructions that cause the battery system of claim 2 to carry out the method according to claim 2.
10. A computer-readable medium on which the computer program according to claim 9 is stored.
Description
[0006] The invention is explained below with reference to the figures. The figures show in detail:
[0007]
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[0010]
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[0012]
[0013] On the right side of
[0014]
[0015] For the following explanations, it is assumed that one or more degraded battery modules 1 have been identified that suffer from the deterioration in efficiency described at the beginning. A person skilled in the art is aware of several possibilities for doing this. For example, the terminal voltage of the battery modules 1 and the charge or discharge current can be detected during operation of the battery system, so that the resistance of the battery modules 1 can be calculated from these values. Degraded battery modules 1 exhibit an increased resistance. Alternatively, the battery modules 1 can be monitored by use of impedance spectroscopy (EISElectrochemical Impedance Spectroscopy). In this case the impedance Z of the battery modules is determined as a function of the angular frequency =2f. It is advantageous to display Z() in the form of a so-called Nyquist diagram. The real part of Z() is plotted in the x-direction and the negative imaginary part of Z() is plotted in the y-direction. The unit of Z() is ohms.
[0016] In the following, the method according to the invention is described. For this purpose, a sign convention is used according to which the terminal voltage of the battery modules has the positive sign during normal operation of the battery system.
[0017] The method according to the invention for restoring the performance of at least one degraded battery module 1 in a battery system comprises the following steps in the indicated order: [0018] identifying at least one degraded battery module 1; [0019] switching off the pumps 4 of the at least one degraded battery module 1 at a time t.sub.1; [0020] switching on the pumps 4 of the at least one degraded battery module 1 at a (later) time t.sub.2;
wherein the length of the time interval t=t.sub.2t.sub.1 is selected such that at time t.sub.2 the terminal voltage of the degraded battery module 1 is negative, but overcharging of the electrolyte present in the cell assembly of the degraded battery module 1 is avoided, and wherein these steps, with the exception of the first step, takes place while the battery system is being discharged.
[0021] The first step, i.e. identifying at least one degraded battery module, can be carried out during any operating state of the battery system, i.e. both while the battery system is charged and while the battery system is discharged. The other steps, on the other hand, can only be carried out when the battery system is discharged. The identifying step is a step in which it is checked whether the subsequent steps of the method according to the invention should be carried out on a battery module. That is, the method according to the invention in the narrower sense consists of the steps mentioned after the identifying step. In some of the following explanations, the term method according to the invention is used in this narrower sense. This is the case when it is clear from the context that one or more battery modules have already been identified.
[0022] The electrochemical processes that take place in the degraded battery module in question during the implementation of the method according to the invention are explained in more detail with reference to
[0023]
[0024] The effect of step switching off the pumps 4 of the at least one degraded battery module 1 at a time t.sub.1 is to cause the described polarity reversal. In principle, this can also be achieved by operating the pumps 4 at a very low delivery rate. Therefore, in the present document, switching off the pumps is understood to mean an operation of the pumps that leads to the described polarity reversal.
[0025] The time t.sub.2 can be determined most easily by detecting the terminal voltage by means of the control device: if the terminal voltage is sufficiently negative but has not yet fallen below the critical limit, then the pumps are switched on again. However, the time t.sub.2 can also be determined without detecting the terminal voltage. This can be done by a calculation in which at least the following variables are taken into account: state of charge at time t.sub.1, magnitude of discharge current and volume of electrolyte in one cell of the cell assembly of the battery module in question. If the terminal voltage is to be used to determine t.sub.2, then it must be possible to detect voltages with negative signs.
[0026] While the pumps are switched off, the discharge current flowing through the battery system can also be reduced. This allows the time point t.sub.2 to be postponed. That is, in this case the time interval t=t.sub.2t.sub.1 becomes larger.
[0027] If necessary, the method according to the invention can be carried out several times in succession until the performance of the degraded battery module has been restored to a sufficient degree. In repeating, the first step does not necessarily have to be carried out. However, it can be advantageously carried out to check whether the battery module in question still exhibits any degradation. If there is no or insufficient improvement even after the method according to the invention has been carried out several times, the degradation is at least partially based on non-reversible processes and other maintenance measures can be initiated for the battery module in question.
[0028] The inventors have found that the desired effect can be increased by extending the time span during which the terminal voltage remains in the negative range. This can advantageously be achieved by operating the pumps, that are switched on at time t.sub.2, subsequently at a reduced pump rate. The term reduced refers to the pump rate that was present before time t.sub.1.
[0029] In the time interval between t.sub.2 and t.sub.3 the discharge current flowing through the battery system can also be reduced. This means that the pump rate in this time interval has to or can be reduced less strongly.
[0030] It is to be mentioned that when the pumps are switched on at time t.sub.2 inhomogeneities form in the cell arrangement of the battery module in question. These arise from the fact that fresh electrolyte with a different composition from the rest of the electrolyte present in the cell arrangement is supplied to a specific point in the cell arrangement. This leads to locally different potential states, causing corresponding equalizing currents to form.
[0031] The method according to the invention, as shown in
wherein the length of the time interval t=t.sub.2t.sub.1 is selected such that at time t.sub.2 the terminal voltage of the at least one degraded battery module 1 is negative, and wherein the first pump rate is selected such that the terminal voltage of the at least one battery module 1 is negative during the time interval between t.sub.2 and t.sub.3, but overcharging of the electrolyte present in the cell assembly of the at least one degraded battery module 1 in the time interval between t.sub.2 and t.sub.3 is avoided, and wherein the second pump rate is selected such that the terminal voltage of the at least one degraded battery module 1 becomes positive after t.sub.3, and wherein these steps, with the exception of the first step, take place while the battery system is being discharged.
[0036] The method according to the invention as shown in
[0037] Since the battery modules are connected in series in the battery system, the terminal voltages of the battery modules add up. This means that the voltage curve shown in
[0038] In order to ensure that the battery system can continue to function properly while the method according to the invention is being carried out, the total voltage applied to the power conversion system must not become negative. This limits the number of battery modules on which the method according to the invention can be carried out simultaneously. In the limiting case, the number of normally operated battery modules must be greater than the number of battery modules on which the method according to the invention is carried out at a given time. In practice, it will be advantageous if the number of normally operated battery modules is significantly greater than the number of battery modules on which the method according to the invention is carried out at a given time.
[0039] To minimize the demands on the power conversion system, it is advantageous if the method according to the invention is only carried out on one battery module at a given time. That is, if more than one battery module are degraded, then the method according to the invention is carried out successively on only one affected battery module at a time.
[0040] The method according to the invention can also be advantageously carried out prophylactically. That is, the method is carried out from time to time on each battery module of the battery system. In this case, of course, it is not necessary to first determine whether the battery modules are actually suffering from a significant degree of degradation. It is simply assumed that each battery module degrades to some extent after a certain period of time. The step identifying at least one degraded battery module 1 then consists merely in determining at least one battery module on which the method according to the invention is to be carried out. This can be done, for example, by first determining an operating time after which a prophylactic execution of the method according to the invention is to be carried out on a battery module. Said identifying step then consists in that for the battery modules of the battery system it is checked whether there are any battery modules that have been operated for longer than the predetermined operating time since the start of operation or the last time the method according to the invention has been carried out. If this is the case, then the steps of the method according to the invention that follow the identifying step are carried out on the battery modules identified in this way.
[0041] By use of the method according to the invention, the performance of degraded battery modules can be at least partially restored. The method can be carried out during normal operation of the battery system. No additional hardware is required for carrying out the method, rather the means that are present in ordinary battery modules are sufficient. Only the control device must be configured in such a way that it can execute the method steps according to the invention. For this purpose, a corresponding computer program is run in the control device, which can also be stored on a computer-readable medium.
LIST OF REFERENCE SYMBOLS
[0042] 1 Battery module [0043] 2 Cell assembly [0044] 3 Tank device [0045] 4 Pump [0046] 5 Measuring device for detecting the terminal voltage [0047] 6 Power conversion system [0048] 7 Control device