Electric vehicle battery cell with sense tabs
10886576 ยท 2021-01-05
Assignee
Inventors
Cpc classification
H01M2010/4271
ELECTRICITY
Y02P70/50
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
H01M10/425
ELECTRICITY
H01M10/441
ELECTRICITY
H01M2220/10
ELECTRICITY
H01M50/249
ELECTRICITY
H01M10/0585
ELECTRICITY
Y02T10/70
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
Y02E60/10
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
H01M2220/20
ELECTRICITY
H01M50/204
ELECTRICITY
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
H01M10/482
ELECTRICITY
International classification
H01M10/42
ELECTRICITY
H01M10/48
ELECTRICITY
Abstract
A battery includes a first battery cell including an endplate current collector cathode, an endplate current collector anode, a plurality of battery cell components between the endplate current collector cathode and the endplate current collector anode, each battery cell component including a cathode, a separator, an anode and a bipolar current collector, and at least one sense tab connected to and extending from one of the bipolar current collectors between the endplate current collector cathode and the endplate current collector anode. A second battery cell is connected in parallel to the first battery cell via the endplate current collector cathode and the endplate current collector anode. A voltmeter is connected between a first sense tab and one of the following: the endplate current collector cathode, endplate current collector anode or a second sense tab of the at least one sense tabs, the voltmeter being electrically isolated from at least one of the endplate current collector cathodes and the endplate current collector anodes via at least one battery cell component of the first battery cell and measuring at least two of the battery cell components. A battery cell, a method, an electric vehicle battery and an electric vehicle are also provided.
Claims
1. A battery comprising: a first battery cell including an endplate current collector cathode, an endplate current collector anode, a plurality of battery cell components between the endplate current collector cathode and the endplate current collector anode, each battery cell component including a cathode, a separator, an anode and a bipolar current collector, and at least one sense tab connected to and extending from one of the bipolar current collectors between the endplate current collector cathode and the endplate current collector anode; a second battery cell connected in parallel to the first battery cell via the endplate current collector cathode and the endplate current collector anode; a first voltmeter connected between a first sense tab of the at least one sense tab and one of the following: the endplate current collector cathode, the endplate current collector anode or a second sense tab of the at least one sense tab, the voltmeter being electrically isolated from at least one of the endplate current collector cathode or the endplate current collector anode via at least one battery cell component of the first battery cell and measuring at least two of the battery cell components.
2. The battery as recited in claim 1 further comprising a second voltmeter connected between the first sense tab, the second sense tab or a further sense tab of the at least one sense tab and one of the following: the endplate current collector cathode or the endplate current collector anode.
3. The battery as recited in claim 2 wherein the first voltmeter is connected between the first sense tab and the second sense tab, and the second voltmeter is connected between the second sense tab and the endplate current collector cathode or the endplate current collector anode.
4. The battery as recited in claim 2 wherein the first voltmeter is connected between the first sense tab and the second sense tab, and the second voltmeter is connected between the further sense tab and the endplate current collector cathode or the endplate current collector anode.
5. The battery as recited in claim 4 wherein the second sense tab and the further sense tab are spaced apart by at least the cathode, the separator and the bipolar current collector of one of the battery cell components.
6. The battery as recited in claim 1 wherein the first voltmeter monitors at least 25 battery cell components.
7. The battery as recited in claim 6 wherein the first voltmeter monitors at least 50 battery cell components.
8. The battery as recited in claim 1 wherein a number of battery cell components for each of the first and second battery cells is at least 25.
9. The battery as recited in claim 8 wherein the number of battery cell components for each of the first and second battery cells is at least 50.
10. The battery as recited in claim 8 further comprising at least 48 further battery cells connected in parallel to the first battery cell via the endplate current collector cathode and the endplate current collector anode.
11. The battery as recited in claim 1 wherein the first battery cell has a voltage of at least 210 volts.
12. A battery cell comprising: an endplate current collector cathode; an endplate current collector anode; at least 25 battery cell components between the endplate current collector cathode and the endplate current collector anode, each battery cell component including a cathode, a separator, an anode and a bipolar current collector; and ten or fewer sense tabs connected to and extending from one of the bipolar current collectors between the endplate current collector cathode and the endplate current collector anode.
13. The battery cell as recited in claim 12 wherein the number of battery cell components is at least 50.
14. The battery cell as recited in claim 12 wherein five or fewer sense tabs are provided.
15. The battery cell as recited in claim 14 wherein exactly two sense tabs are provided for the battery cell.
16. The battery cell as recited in claim 14 wherein exactly one sense tab is provided for the battery cell.
17. A method for monitoring the battery as recited in claim 1 comprising monitoring the first voltmeter during charging.
18. A method for monitoring the battery as recited in claim 1 comprising monitoring the first voltmeter during operation.
19. An electric vehicle battery comprising the battery as recited in claim 1.
20. An electric vehicle or hybrid vehicle comprising the electric vehicle battery as recited in claim 19.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The following describe several nonlimiting embodiments of the present invention, in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
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(13) If voltmeters 1030, 1040 are used to measure the voltage of cell 1100, the voltmeters 1030, 1040 still receive current from cells 1200 and 1300. Thus even if a cell 1100 is out of order, a battery management system (BMS) receiving information from the voltmeters 1030, 1040 will believe that cell 1100 is functioning correctly.
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(15) Bipolar current collector 126 can be made of copper or aluminum or nickel-coated aluminum or nickel for example, and the sense tabs 106, 108 can made from the same material and may be integral with the bipolar current collector 126. Preferably, the bipolar current collector 126 and sense tabs 106, 108 are made of a thin foil of aluminum coated with nickel.
(16) Separator 122 can be a dielectric material, for example a porous polyethylene or polyethylene-polypropylene foil (typically 8 to 25 m thickness). Anode 124 and cathode 120 can be deposited for example by vapor deposition or other film technology on separator 122.
(17) The battery may incorporate a polymer frame as disclosed in U.S. patent application Ser. No. 15/432,401, filed Feb. 14, 2017, hereby incorporated by reference herein, and typical electrolytes such as liquids or gels may be used. However, the present invention also can incorporate solid-state electrolytes such as lithium oxide or sulfide glasses or glass ceramics or ceramics as electrolytes.
(18) Each battery cell component 110, 112 typically will have a voltage of 4.2V, and each battery cell may be of high voltage, defined herein greater than 200V. Battery cell 100 thus typically will have 50 battery cell components or more, and preferably 100 battery cell components or more. In one embodiment 200 battery cell components are provided for each battery cell 100, shown schematically by line 101, so that a voltage around 800V is provided. This is the case for the battery cells shown in each of the figures schematically.
(19) A battery pack for a vehicle can have more than 50 of the high voltage battery cells in parallel, for example 70 battery cells 100.
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(22) A battery management system (BMS) with voltmeter 420 can monitor U1, which can be Ubatt-Ucell. Since the voltmeter 420 is not connected to battery cells 412 and 414 in parallel, should a battery component within the voltmeter 420 measurement area fail or malfunction, for example during operation or charging, the voltmeter 420 will register a change indicating a failure or issue with battery cell 410 within the voltmeter measurement area. Also, if the top battery component malfunctions and the BMS is monitoring Ubatt, an issue with the top cell component can be identified, For example if the top cell component in
(23) Battery cells 412, 414 can be provided similar voltmeters and monitoring by the BMS. As opposed to the prior art, where sense tabs are required for every cell component and each cell component is individually monitored, the present invention provides for a less expensive, reliable way to monitor battery cell charging and operation, and to identify malfunctions and failures more easily. For example, if 70 battery cells of 200 cell components each are used in a vehicle battery, 14000 sense tabs and voltmeters and the respective monitoring function of the BMS would be needed. While this provides more accuracy, it is impractical from a cost and manufacturing standpoint. Also, each sense tab, if used with liquid or gel electrolyte, represents a potential leakage point. The present invention permits 70 sense tabs for use with the embodiment of
(24) The malfunctioning battery cell also can then be bypassed to permit continued operation until servicing.
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(30) As shown schematically in