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CN112871759A - Lithium battery voltage drop evaluation method and system - Google Patents

Lithium battery voltage drop evaluation method and system Download PDF

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Publication number
CN112871759A
CN112871759A CN202110038037.3A CN202110038037A CN112871759A CN 112871759 A CN112871759 A CN 112871759A CN 202110038037 A CN202110038037 A CN 202110038037A CN 112871759 A CN112871759 A CN 112871759A
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battery
voltage drop
tray
pressure drop
lower limit
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CN112871759B (en
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王欢
崔立丰
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Hunan Lingpai Energy Storage Technology Co ltd
Hunan Lingpai Lithium Energy Co ltd
Hunan Lingpai New Energy Research Institute Co ltd
Hengyang Lingpai New Energy Technology Co Ltd
Hunan Lead Power Dazhi Technology Inc
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Suzhou Lingpai New Energy Technology Co ltd
Sichuan Xinminya Battery Technology Co Ltd
Hunan Lingpai New Energy Technology Co Ltd
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B07SEPARATING SOLIDS FROM SOLIDS; SORTING
    • B07CPOSTAL SORTING; SORTING INDIVIDUAL ARTICLES, OR BULK MATERIAL FIT TO BE SORTED PIECE-MEAL, e.g. BY PICKING
    • B07C5/00Sorting according to a characteristic or feature of the articles or material being sorted, e.g. by control effected by devices which detect or measure such characteristic or feature; Sorting by manually actuated devices, e.g. switches
    • B07C5/34Sorting according to other particular properties
    • B07C5/344Sorting according to other particular properties according to electric or electromagnetic properties
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

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Abstract

本发明提供了一种锂电池压降测评方法,所述方法包括如下步骤:S1:计算每个托盘电池的压降,计算该托盘内电池压降的上下限公差;S2:获取每个托盘中压降平均值;S3:根据S1所获得的上下限公差和S2获得的压降平均值,计算上下限标准;S4:对比每个托盘里电池压降数据与S3所得的上下限标准。本发明所提供的锂电池压降测评方法,解决了现有技术中对一批次或一天生产的电池,统一进行统计计算,所导致的压降测评不准确的问题,通过对各个托盘内电池分别设定压降标准,以托盘为单位进行压降挑选,提高了每个电池的压降判断的准确性。

Figure 202110038037

The present invention provides a method for evaluating the pressure drop of a lithium battery. The method includes the following steps: S1: Calculate the pressure drop of each tray battery, and calculate the upper and lower limit tolerances of the battery pressure drop in the tray; S2: Obtain the pressure drop of each tray Average pressure drop; S3: Calculate the upper and lower limit standards according to the upper and lower limit tolerances obtained by S1 and the average pressure drop obtained by S2; S4: Compare the battery pressure drop data in each tray with the upper and lower limit standards obtained by S3. The lithium battery pressure drop evaluation method provided by the present invention solves the problem of inaccurate pressure drop evaluation caused by uniform statistical calculation of batteries produced in one batch or one day in the prior art. The pressure drop standard is set separately, and the pressure drop selection is carried out in units of trays, which improves the accuracy of the pressure drop judgment of each battery.

Figure 202110038037

Description

Lithium battery voltage drop evaluation method and system
Technical Field
The invention belongs to the field of lithium battery manufacturing, and particularly relates to a lithium battery voltage drop evaluation method and system.
Background
Lithium batteries are inevitably subjected to voltage drop due to chemical reaction or internal micro-short circuit due to structural and manufacturing limitations. The detection is needed after the processing of the lithium battery is finished, the battery which is not in accordance with the pressure drop standard is detected, otherwise, the service time of the battery is seriously influenced, the consistency among the batteries is further influenced, the grouping rate is reduced, and the service power and the service life of the grouped batteries are reduced.
At present, the method generally adopted in the industry is high temperature plus normal temperature standing, the voltage difference before and after the standing of batteries produced in a batch or a day is tested, and the batteries with the difference exceeding the standard difference parameter are selected as unqualified products. The method has certain problems that aging is carried out in a large environment, the pressure drop condition among batteries is different, some pressure drops are not reflected greatly, and some pressure drops are amplified to be unqualified products, so that the subsequent matching is influenced.
The battery which is not selected out due to large voltage drop can cause over-quick voltage drop and short service time in the subsequent use process. If the batteries are assembled, the consistency of the batteries is poor, so that the overall power and the service life are influenced. In addition, the batteries with qualified pressure drop are regarded as unqualified products due to the environmental difference of each tray, and unnecessary loss is caused.
Therefore, it is desirable to provide an evaluation method for lithium battery voltage drop, which can more accurately evaluate the voltage drop of each battery, so as to avoid erroneous judgment caused by simultaneous detection of a large number of batteries in the prior art.
Disclosure of Invention
In order to solve the problems, the invention provides a lithium battery voltage drop evaluation method and a lithium battery voltage drop evaluation system.
In order to achieve the above object, the present invention provides a lithium battery voltage drop evaluation method, which comprises the following steps:
s1: calculating the voltage drop of each tray battery, and calculating the tolerance of the upper limit and the lower limit of the voltage drop of the battery in the tray;
s2: obtaining an average value of pressure drop in each tray;
s3: calculating an upper limit standard and a lower limit standard according to the upper limit tolerance and the lower limit tolerance obtained in the step S1 and the average value of the pressure drop obtained in the step S2;
s4: the cell pressure drop data in each tray was compared with the upper and lower limit criteria obtained at S3.
The lithium battery voltage drop evaluation method provided by the invention is also characterized in that the calculation method of the voltage drop value K of each tray battery in S1 is as follows:
K=(OCV1-OCV2)/(t1-t2)
here, OCV1 is the open circuit voltage of the battery detected at time t1, and OCV2 is the open circuit voltage of the battery detected at time t 2.
The lithium battery voltage drop evaluation method provided by the invention is also characterized in that the upper and lower limit standards of S3 meet the condition that statistical data obey or approximately obey normal distribution, and the voltage drop values covered by the upper and lower limit standards are not less than 99.73% of all voltage drop values.
The lithium battery voltage drop evaluation method provided by the invention is also characterized in that the upper and lower limit standards of S3 are the average voltage drop value plus the tolerance of the upper and lower limits.
The invention also aims to provide a lithium battery voltage drop evaluation system which comprises an automatic loading and unloading assembly and a battery testing assembly, wherein the automatic loading and unloading assembly is in data connection with the battery testing assembly through a serial PLC.
The lithium battery voltage drop evaluation system provided by the invention is also characterized in that the automatic loading and unloading assembly comprises a carrying hand for loading and unloading.
The lithium battery voltage drop evaluation system provided by the invention is also characterized in that the battery testing assembly comprises a testing module and a control module, wherein the control module is respectively connected with the testing module and the automatic loading and unloading assembly and is used for controlling the testing module to test the battery, generating a working command according to a testing result, sending the working command to the automatic loading and unloading assembly and controlling the automatic loading and unloading assembly to work.
The lithium battery voltage drop evaluation system provided by the invention also has the characteristics that the test module is further configured to execute the following operations:
detecting the voltage drop of each tray cell, and calculating the upper and lower limit tolerance and the average value of the voltage drop;
calculating an upper limit standard and a lower limit standard according to the upper limit tolerance and the lower limit tolerance and the average value of the pressure drop;
comparing the battery voltage drop data in each tray with the upper and lower limit standards;
if the voltage drop of the battery in the tray is within the upper and lower limit standards, sending OK to the control module;
and if the voltage drop of a certain battery in the tray is not within the upper and lower limit standards, judging that the battery is abnormal, and sending NG to the control module.
The lithium battery voltage drop evaluation system provided by the invention is also characterized in that the abnormal battery in the abnormal tray is manually picked up and replaced by a new battery to carry out detection again until the test module obtains an OK result.
Has the advantages that:
the lithium battery voltage drop evaluation method provided by the invention solves the problem of inaccurate voltage drop evaluation caused by unified statistical calculation of batteries produced in batches or in one day in the prior art, and improves the accuracy of voltage drop judgment of each battery by respectively setting voltage drop standards for the batteries in each tray and selecting the voltage drops by taking the tray as a unit.
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Fig. 1 is a schematic diagram of a working flow of a lithium battery voltage drop evaluation system provided by the invention.
Detailed Description
Exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. While exemplary embodiments of the present disclosure are shown in the drawings, it should be understood that the present disclosure may be embodied in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.
It is to be understood that the terminology used herein is for the purpose of describing particular example embodiments only, and is not intended to be limiting. As used herein, the singular forms "a", "an" and "the" may be intended to include the plural forms as well, unless the context clearly indicates otherwise. The terms "comprises," "comprising," "including," and "having" are inclusive and therefore specify the presence of stated features, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and/or groups thereof. The method steps, processes, and operations described herein are not to be construed as necessarily requiring their performance in the particular order described or illustrated, unless specifically identified as an order of performance. It should also be understood that additional or alternative steps may be used.
A lithium battery voltage drop evaluation method is characterized by comprising the following steps:
s1: calculating the voltage drop of each tray battery, and calculating the tolerance of the upper limit and the lower limit of the voltage drop of the battery in the tray:
the method for calculating the voltage drop value K of each tray cell is as follows:
K=(OCV1-OCV2)/(t1-t2)
wherein OCV1 is the open circuit voltage of the battery detected at time t1, and OCV2 is the open circuit voltage of the battery detected at time t 2;
s2: obtaining an average value of pressure drop in each tray;
s3: calculating an upper limit standard and a lower limit standard according to the upper limit tolerance and the lower limit tolerance obtained in the step S1 and the average value of the pressure drop obtained in the step S2;
s4: the cell pressure drop data in each tray was compared with the upper and lower limit criteria obtained at S3.
In some embodiments, the upper and lower limit criteria of S3, which satisfy the statistical data to comply or approximately comply with a normal distribution, cover no less than 99.73% of all pressure drop values. The upper and lower limit standard is the average value of pressure drop plus the tolerance of the upper and lower limits. The adjustment of the specific tolerance needs to finally determine the tolerance of the upper limit and the lower limit of the voltage drop according to the actual state of the battery, the requirement of battery consistency (the power battery needs to be matched and has corresponding strict consistency requirement), the battery test result and other considerations.
In some embodiments of the invention, the lithium battery voltage drop evaluation system is characterized by comprising an automatic loading and unloading assembly and a battery testing assembly, wherein the automatic loading and unloading assembly is in data connection with the battery testing assembly through a serial PLC. The automatic feeding and discharging assembly comprises a carrying hand used for feeding and discharging. The battery testing assembly comprises a testing module and a control module, wherein the control module is respectively connected with the testing module and the automatic feeding and discharging assembly and is used for controlling the testing module to test the battery, generating a working command according to a testing result, sending the working command to the automatic feeding and discharging assembly and controlling the automatic feeding and discharging assembly to work. The test module is further configured to perform the following operations: detecting the voltage drop of each tray cell, and calculating the upper and lower limit tolerance and the average value of the voltage drop; calculating an upper limit standard and a lower limit standard according to the upper limit tolerance and the lower limit tolerance and the average value of the pressure drop; comparing the battery voltage drop data in each tray with the upper and lower limit standards; if the voltage drop of the battery in the tray is within the upper and lower limit standards, sending OK to the control module; and if the voltage drop of a certain battery in the tray is not within the upper and lower limit standards, judging that the battery is abnormal, and sending NG to the control module. And the abnormal battery in the abnormal tray is manually picked up, and the abnormal battery is replaced by a new battery for re-detection until the test module obtains an OK result.
As shown in fig. 1, the test module separately sets information windows such as OCV #1, OCV #2, or OCVx + n, and OCVx, and respectively detects the voltage and calculates the voltage drop. And after the tray battery test is finished, the test module judges the result and uploads the result to the control module, and the control module feeds back information to the F-PLC. In addition, the test module simultaneously reads the ID of the current tray, judges whether the battery in the tray is abnormal, and sends OK if the battery is proper and sends NG if the battery is improper. The tray can be selected to add a mechanical picking function or manually pick out the bad batteries until the system sends OK, and then the tray can be moved to the next step. And after the abnormal tray picks out the defective battery, marking the defective battery, and binding the newly added battery with the tray ID to cover the previous tray ID information.
The control system controls the automatic operation of the tray clamp, information interaction is carried out on the PLC and the test module, the carrying hands are controlled, the tray is placed in the test cabinet, after the test is finished, the tray is transferred to the standing frame, data exchange and grouping are carried out according to the test result, and the carrying hands are controlled to feed and discharge.
The system obtains voltage data uploaded by an upper computer, automatically selects two measurement results of the tray to obtain a voltage difference value, sends the voltage drop delta V of the battery in the tray to be greater than or equal to the upper and lower limit standard voltage drop (delta Vmean +/-V tolerance) as an NG signal, feeds the NG signal back to the test system, marks the corresponding battery, and picks out the corresponding battery in a corresponding process.
The above description is only for the preferred embodiment of the present invention, but the scope of the present invention is not limited thereto, and any changes or substitutions that can be easily conceived by those skilled in the art within the technical scope of the present invention are also included in the scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.

Claims (9)

1.一种锂电池压降测评方法,其特征在于,所述方法包括如下步骤:1. a lithium battery voltage drop evaluation method, is characterized in that, described method comprises the steps: S1:计算每个托盘电池的压降,计算该托盘内电池压降的上下限公差;S1: Calculate the pressure drop of each tray battery, and calculate the upper and lower limit tolerances of the battery pressure drop in the tray; S2:获取每个托盘中压降平均值;S2: Obtain the average pressure drop in each tray; S3:根据S1所获得的上下限公差和S2获得的压降平均值,计算上下限标准;S3: Calculate the upper and lower limit standards according to the upper and lower limit tolerances obtained by S1 and the average pressure drop obtained by S2; S4:对比每个托盘里电池压降数据与S3所得的上下限标准。S4: Compare the battery voltage drop data in each tray with the upper and lower limit standards obtained in S3. 2.根据权利要求1所述的锂电池压降测评方法,其特征在于,所述S1中每个托盘电池的压降值K的计算方法如下:2. The method for evaluating the voltage drop of a lithium battery according to claim 1, wherein the method for calculating the voltage drop value K of each tray battery in the S1 is as follows: K=(OCV1-OCV2)/(t1-t2)K=(OCV 1 -OCV 2 )/(t 1 -t 2 ) 其中,OCV1为t1时刻检测的电池的开路电压,OCV2为t2时刻检测的电池的开路电压。Wherein, OCV 1 is the open circuit voltage of the battery detected at time t1 , and OCV 2 is the open circuit voltage of the battery detected at time t2 . 3.根据权利要求1所述的锂电池压降测评方法,其特征在于,所述S3中上下限标准满足统计数据服从或近似服从正态分布,所述上下限标准所涵盖的压降值不少于所有压降值的99.73%。3. The method for evaluating the voltage drop of a lithium battery according to claim 1, wherein the upper and lower limit criteria in the S3 satisfy that the statistical data obeys or approximately obeys a normal distribution, and the voltage drop value covered by the upper and lower limit criteria does not. Less than 99.73% of all pressure drop values. 4.根据权利要求1所述的锂电池压降测评方法,其特征在于,所述S3中上下限标准=压降平均值+上下限公差。4 . The method for evaluating the voltage drop of a lithium battery according to claim 1 , wherein the upper and lower limit standards in S3 = the average value of the voltage drop + the upper and lower limit tolerances. 5 . 5.一种锂电池压降测评系统,其特征在于,所述系统包括自动上下料组件和电池测试组件,所述自动上下料组件与所述电池测试组件通过串行PLC数据连接。5. A lithium battery voltage drop evaluation system, characterized in that the system comprises an automatic loading and unloading assembly and a battery testing assembly, and the automatic loading and unloading assembly and the battery testing assembly are connected by serial PLC data. 6.根据权利要求5所述的锂电池压降测评系统,其特征在于,所述自动上下料组件包括用于上下料的搬运手。6 . The lithium battery pressure drop evaluation system according to claim 5 , wherein the automatic loading and unloading component comprises a handling hand for loading and unloading. 7 . 7.根据权利要求5所述的锂电池压降测评系统,其特征在于,所述电池测试组件包括测试模块和控制模块,所述控制模块分别与所述测试模块和所述自动上下料组件连接,用于控制所述测试模块对电池的测试,并根据测试结果生成工作命令,将其发给自动上下料组件,控制所述自动上下料组件工作。7 . The lithium battery voltage drop test and evaluation system according to claim 5 , wherein the battery test assembly comprises a test module and a control module, and the control module is respectively connected with the test module and the automatic loading and unloading assembly. 8 . , which is used to control the testing of the battery by the test module, and generate work orders according to the test results, send them to the automatic loading and unloading components, and control the automatic loading and unloading components to work. 8.根据权利要求7所述的锂电池压降测评系统,其特征在于,所述测试模块进一步被配置为执行下述操作:8. The lithium battery voltage drop evaluation system according to claim 7, wherein the test module is further configured to perform the following operations: 检测每个托盘电池的压降,计算上下限公差和压降平均值;Detect the pressure drop of each tray battery, calculate the upper and lower tolerances and the average pressure drop; 根据所述上下限公差和所述压降平均值,计算上下限标准;Calculate the upper and lower limit standards according to the upper and lower limit tolerances and the average value of the pressure drop; 对比每个托盘里电池压降数据与所述上下限标准;Compare the battery voltage drop data in each tray with the upper and lower limit standards; 若托盘中电池压降均在上下限标准内,则发送OK给控制模块;If the battery voltage drop in the tray is within the upper and lower limits, send OK to the control module; 若托盘中某一电池的压降不在上下限标准内,则判断为异常,发送NG给控制模块。If the pressure drop of a battery in the tray is not within the upper and lower limits, it is judged as abnormal, and NG is sent to the control module. 9.根据权利要求8所述的锂电池压降测评系统,其特征在于,所述异常托盘中的异常电池通过人工捡出,并用新电池替换异常电池重新进行检测,直至测试模块得到OK的结果。9 . The lithium battery voltage drop evaluation system according to claim 8 , wherein the abnormal battery in the abnormal tray is manually picked up, and the abnormal battery is replaced with a new battery for re-detection until the test module obtains an OK result. 10 . .
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