CHARGING METHOD FOR SERIES BATTERY CELLS

20230246460 · 2023-08-03

    Inventors

    Cpc classification

    International classification

    Abstract

    This invention discloses a charging method for series rechargeable battery cells. This invention comprises a Total Voltage Follow-up Procedure (TVFP) in combination with an Artificial Intelligent Equalizing Procedure (AIEP). The TVFP detects deviation of a total voltage and accordingly modifies a trigger voltage for voltage equaling procedure; the AIEP controls the voltage difference of the series battery cells within a predetermined range.

    Claims

    1. A charging method for series battery cells, comprising a charger and series battery cells: Step 1: setting a charging voltage/current to a charger; Step 2: charging the series battery cells; Step 3: starting Total Voltage Follow-up Procedure (TVFP); Step 4: BMS checking a total voltage of the series battery cells, is it greater than or equal to a Target Voltage (TV)? if yes, going to next step; Step 5: Calculating an Average Battery Cell Voltage (ABCV) for the series battery cells, ABCV is defined to be “total voltage of series battery cells” divided by “numbers of series battery cells”; and setting an Equalizing Trigger Voltage (ETV) referring to the ABCV; Step 6: Checking each battery cell voltage, is it greater than or equal to the Equalizing Trigger Voltage (ETV)? if yes going to next step; Step 7: starting Equalizing Procedure for Battery Cells, discharging specific battery cells; Step 8: checking battery cell voltages, are all battery cell voltages below the Equalizing Trigger Voltage (ETV)? if yes, going to next step; Step 9: checking Minimum Battery Cell Voltage (MBCV), is it smaller than a predetermined Battery Cell Voltage Low Limit (BCVLL)? if yes going to next step; Step 10: Starting AI Equalizing Procedure (AIEP); Step 11: Checking the following: (1) is the total voltage greater than a predetermined Total Voltage Low Limit (TVLL)? (2) is the minimum battery cell voltage smaller than a predetermined Battery Cell Voltage Low Limit (BCVLL)? (3) is the maximum battery cell voltage greater than a predetermined Battery Cell Voltage High Limit (BCVHL)? if yes going to next step; Step 12: setting an AI Equalizing Trigger Voltage (AIETV); Step 13: starting AI Equalizing Procedure (AIEP), discharging specific battery cells until all battery cell voltages below the AI Equalizing Trigger Voltage (AIETV); Step 14: Checking Battery Cell Voltage Difference (BCVD), “maximum battery cell voltage” minus “minimum battery cell voltage”, is it smaller than a predetermined Voltage Difference Setting Value (VDSV)? if yes, going back to step 3.

    2. The charging method for series battery cells according to claim 1, wherein the AI Equalizing Procedure (AIEP) in step 10 further comprises: Step X: turning on the AIEP procedure for a predetermined time period and then closing the procedure.

    3. The method for charging series battery cells according to claim 1, wherein the Target Voltage (TV) in step 4 is lower than the Charging Voltage (CV).

    4. The method for charging series battery cells according to claim 3, wherein the Target Voltage (TV) equals to the Charging Voltage (CV) multiplied by a coefficient k1: TV=CV*k1, wherein k1=98.5˜99.5%.

    5. The method for charging series battery cells according to claim 1, wherein the Equalizing Trigger Voltage (ETV) in step 5 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k2: ETV=ABCV*k2, wherein k2=1.0005˜1.0007.

    6. The method for charging series battery cells according to claim 1, wherein the Minimum Battery Cell Voltage (MBCV) in step 9 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k3: MBCV=ABCV*k3, wherein k3=96.5%˜98.5%.

    7. The method for charging series battery cells according to claim 1, wherein the Total Voltage Low Limit (TVLL) in step 11 equals to the charging voltage (CV) multiplied by a coefficient k4: TVLL=CV*k4, wherein k4=99.5˜99.7%.

    8. The method for charging series battery cells according to claim 1, wherein the Battery Cell Voltage Low Limit (BCVLL) in step 11 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k5: BCVLL=ABCV*k5, wherein k5=99.3˜99.7%.

    9. The method for charging series battery cells according to claim 1, wherein the Battery Cell Voltage High Limit (BCVHL) in step 11 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k6: BCVHL=ABCV*k6, wherein k6=1.007˜1.010.

    10. The method for charging series battery cells according to claim 1, wherein the Voltage Difference Setting Value (VDSV) in step 14 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k7: VDSV=ABCV*k7, wherein, k7=0.5%˜3.5%.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0012] FIG. 1 shows a prior art.

    [0013] FIG. 2A shows uneven charged battery cells according to the prior art.

    [0014] FIG. 2B shows even charged battery cells according to the present invention.

    [0015] FIGS. 3˜4 shows a charging method according to the present invention.

    DETAILED DESCRIPTION OF THE INVENTION

    [0016] FIG. 2B shows even charged battery cells according to the present invention.

    [0017] FIG. 2B shows that after charging with the present invention, the charging states among the series battery cells are approximately the same. For example, the voltages of the battery cells 34, 35, and 36 are all approximately equal to the voltage average line L2. Therefore, the voltages among the battery cells being charged are approximately the same, which improves the power efficiency of the series battery cells.

    [0018] FIGS. 3˜4 shows a charging method according to the present invention.

    [0019] FIGS. 3˜4 discloses a charging method for series battery cells according to the present invention which comprises a charger and series battery cells, the charger charging the series battery cells according to the following steps:

    [0020] Step 1: setting a charging voltage/current to a charger; for example, in FIG. 3, 550V/15A charging 160 pieces of lithium-ion battery cells connected in series;

    [0021] Step 2: charging the series battery cells;

    [0022] Step 3: starting a Total Voltage Follow-up Procedure (TVFP);

    [0023] Step 4: BMS checking a total voltage of the series battery cells, and determining whether it is greater than or equal to a Target Voltage (TV)? If no, going back to step 2; if yes, going to next step;

    for example, in FIG. 3, a target voltage (TV) is set to be 550V*0.99=545V; wherein coefficient 0.99 is changeable according to different requirement;

    [0024] Step 5: Calculating an Average Battery Cell Voltage (ABCV) for the series battery cells, ABCV=“total voltage of series battery cells” divided by “numbers of series battery cells”; and

    setting an Equalizing Trigger Voltage (ETV) based on the ABCV;
    for example, in FIG. 3, ABCV is calculated to be 545V/160=3406 mV, and the ETV is set to be 3406 mV+2 mV, wherein the 2 mV is changeable according to different requirement;

    [0025] Step 6: Checking each battery cell voltage, is it greater than or equal to the Equalizing Trigger Voltage (ETV)? If no, going back to step 4; if yes going to next step;

    [0026] Step 7: starting Equalizing Procedure for Battery Cells, discharging specific battery cells;

    [0027] Step 8: checking battery cell voltages, are all battery cell voltages below the Equalizing Trigger Voltage (ETV)? if no, going back to step 7; if yes, going to next step;

    [0028] Step 9: checking the Minimum Battery Cell Voltage (MBCV), is it smaller than a predetermined Battery Cell Voltage Low Limit (BCVLL)? If no, going back to step 8; if yes going to next step;

    for example, in FIG. 3, BCVLL is set to be 3320 mV, wherein the 3320 mV is changeable according to different requirement;

    [0029] Step 10: Starting AI Equalizing Procedure (AIEP);

    [0030] Step 11: Checking the following:

    (1) is the total voltage greater than a predetermined Total Voltage Low Limit (TVLL)? for example, in FIG. 4, TVLL is set to be 550V-2V, wherein the 2V is changeable according to different requirement;
    (2) is the minimum battery cell voltage smaller than a predetermined Battery Cell Voltage Low Limit (BCVLL)?
    for example, in FIG. 4, BCVLL is set to be 3390 mV, wherein the 3390 mV is changeable according to different requirement;
    (3) is the maximum battery cell voltage greater than a predetermined Battery Cell Voltage High Limit (BCVHL)?
    for example, in FIG. 4, BCVHL is set to be 3438 mV-2 mV, wherein the 2 mV is changeable according to different requirement;
    If no, going back to step 3; if yes going to next step;

    [0031] Step 12: setting AI Equalizing Trigger Voltage (AIETV);

    for example, in FIG. 4, AIETV is set to be 3438 mV-2 mV which is the same as BCVHL;

    [0032] Step 13: starting AI Equalizing Procedure (AIEP), discharging specific battery cells until all battery cell voltages below the AI Equalizing Trigger Voltage (AIETV);

    [0033] Step 14: Checking Battery Cell Voltage Difference (BCVD), that is, maximum battery cell voltage minus minimum battery cell voltage, is it smaller than a predetermined Voltage Difference Setting Value (VDSV)? if no, going back to step 11; if yes, going back to step 3;

    for example, in FIG. 4 VDSV is set to be 20 mV, wherein the 20 mV is changeable according to different requirement;

    [0034] The AI Equalizing Procedure (AIEP) in step 10 further comprises an optional step X:

    Step X: turning on the AIEP procedure for a predetermined time period and then closing the procedure. For example, turning on 5 hours and then turning off.

    [0035] The preferred embodiment uses actual parameters as an example is only for facilitating readers understanding, and which should not be used to limit the right scope of this invention. Except for the actual parameters described in the specification, the following description is also sought to protect:

    [0036] wherein, the Target Voltage (TV) in step 4 is lower than the Charging Voltage (CV);

    [0037] wherein the Target Voltage (TV) in step 4 equals to the Charging Voltage (CV) multiplied by a coefficient k1:

    TV=CV*k1, wherein k1=98.5˜99.5%.

    [0038] wherein the Equalizing Trigger Voltage (ETV) in step 5 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k2:

    ETV=ABCV*k2, wherein k2 equals to 1.0005˜1.0007.

    [0039] wherein the Minimum Battery Cell Voltage (MBCV) in step 9 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k3:

    MBCV=ABCV*k3, wherein k3=96.5%˜98.5%.

    [0040] wherein the Total Voltage Low Limit (TVLL) in step 11 equals to the charging voltage (CV) multiplied by a coefficient k4:

    TVLL=CV*k4, wherein k4=99.5˜99.7%.

    [0041] wherein the Battery Cell Voltage Low Limit (BCVLL) in step 11 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k5:

    BCVLL=ABCV*k5, wherein k5=99.3˜99.7%.

    [0042] wherein the Battery Cell Voltage High Limit (BCVHL) in step 11 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k6:

    BCVHL=ABCV*k6, wherein k6=1.007˜1.010.

    [0043] wherein the Voltage Difference Setting Value (VDSV) in step 14 equals to the Average Battery Cell Voltage (ABCV) multiplied by a coefficient k7:

    VDSV=ABCV*k7, wherein, k7=0.5%˜3.5%.

    [0044] While several embodiments have been described by way of example, it will be apparent to those skilled in the art that various modifications may be configured without departs from the spirit of the present invention. Such modifications are all within the scope of the present invention, as defined by the appended claims.