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US20140091748A1 - Battery control systems - Google Patents

Battery control systems
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Publication number
US20140091748A1
US20140091748A1US14/038,763US201314038763AUS2014091748A1US 20140091748 A1US20140091748 A1US 20140091748A1US 201314038763 AUS201314038763 AUS 201314038763AUS 2014091748 A1US2014091748 A1US 2014091748A1
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United States
Prior art keywords
battery
conditioning
charge
voltage
pack
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
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US14/038,763
Inventor
Weston Arthur Hermann
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Quantumscape Corp
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Quantumscape Corp
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Priority to US14/038,763priorityCriticalpatent/US20140091748A1/en
Assigned to QUANTUMSCAPE CORPORATIONreassignmentQUANTUMSCAPE CORPORATIONASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: HERMANN, WESTON ARTHUR
Publication of US20140091748A1publicationCriticalpatent/US20140091748A1/en
Priority to US16/530,771prioritypatent/US20190356012A1/en
Priority to US16/563,487prioritypatent/US20200014055A1/en
Abandonedlegal-statusCriticalCurrent

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Abstract

Various embodiments herein provide methods and apparatus for conditioning a battery. The conditioning may be undertaken to restore charge capacity or power capability, especially when practiced on a battery having a lithium negative electrode and/or a positive electrode having a conversion material. In one embodiment, the conditioning method includes applying a substantially constant current or power until a conditioning voltage is reached, where the conditioning voltage is higher than the maximum voltage used during normal cycling. The method further includes continuing to charge the battery at the conditioning voltage until a maximum conditioning charge is reached. Next, the method includes discharging the battery to about the maximum charge voltage prior to using the battery in an end use. Also provided is a conditioning apparatus that is configured to perform the conditioning method.

Description

Claims (47)

What is claimed is:
1. A method of conditioning a positive electrode of a battery, comprising:
(a) cycling the battery while deployed for end use, wherein cycling during end use is limited to a maximum charge voltage, and wherein the battery comprises a positive electrode having an electrochemically active conversion material;
(b) applying a substantially constant current or substantially constant power to charge the battery until a conditioning voltage is reached, wherein the conditioning voltage is substantially higher than the maximum charge voltage; and
(c) continuing to charge the battery at the conditioning voltage until the battery reaches a maximum conditioning charge.
2. The method ofclaim 1, wherein the method is simultaneously performed on a plurality of batteries connected in a battery pack.
3. The method ofclaim 2, wherein the battery remains installed in the battery pack in a vehicle during the method.
4. The method ofclaim 1, wherein after the method is performed, a charge capacity of the battery is greater than before the method is performed.
5. The method ofclaim 1, wherein the battery comprises a lithium metal negative electrode.
6. The method ofclaim 5, wherein the method increases the uniformity of a distribution of lithium on the negative electrode.
7. The method ofclaim 1, wherein the method results in at least partial de-agglomeration of metal agglomerates present in the conversion material of the positive electrode.
8. The method ofclaim 1, wherein the method substantially de-lithiates the positive electrode.
9. The method ofclaim 8, wherein the method includes breaking bonds between Li and F in the positive electrode and forming bonds between Fe and F in the positive electrode.
10. The method ofclaim 1, wherein the method is initiated in response to a scheduled event.
11. The method ofclaim 10, wherein the scheduled event is performing a threshold number of charge-discharge cycles or passing a threshold number of coulombs or amount of energy to the battery.
12. The method ofclaim 10, wherein the scheduled event is a threshold time interval.
13. The method ofclaim 10, wherein the scheduled event is a threshold distance driven by a vehicle in which the battery is installed.
14. The method ofclaim 1, wherein the method is initiated based on a trigger event.
15. The method ofclaim 14, wherein the trigger event comprises a threshold loss of battery capacity.
16. The method ofclaim 14, wherein the trigger event comprises an increase in overpotential or hysteresis.
17. The method ofclaim 1, wherein the battery is installed in an end use apparatus during operations (a) through (c).
18. The method ofclaim 1, wherein the conversion material comprises fluorine and a metal selected from the group consisting of cobalt, copper, nickel, manganese, and iron.
19. The method ofclaim 1, wherein the conditioning voltage is at least about 4 V vs. lithium.
20. The method ofclaim 19, wherein the maximum charge voltage is about 4 V vs. lithium, or lower.
21. The method ofclaim 20, wherein the conditioning voltage is at least about 4.5 V vs. lithium.
22. The method ofclaim 1, wherein operation (c) further comprises applying a time-varying current or voltage signal that is superimposed on the conditioning voltage.
23. The method ofclaim 1, further comprising heating the battery to a conditioning temperature.
24. The method ofclaim 23, wherein the heating comprises delivering energy to a heater while circulating fluid from the heater proximate the battery to thereby heat the battery to the conditioning temperature.
25. The method ofclaim 23, wherein the conditioning temperature is at least about 90° C.
26. The method ofclaim 1, wherein the maximum conditioning charge charges the battery to a state of charge substantially greater than about 100%.
27. The method ofclaim 28, wherein the maximum conditioning charge corresponds to a state of charge of at least about 105%.
28. The method ofclaim 1, further comprising (d) prior to using the battery for the end use, discharging the battery to about the maximum charge voltage.
29. The method ofclaim 28, wherein operation (d) comprises discharging energy from the battery into a second battery.
30. The method ofclaim 28, wherein operation (d) comprises discharging energy from the battery through a heater and/or heat exchange system.
31. The method ofclaim 28, wherein operation (d) comprises discharging energy from the battery to an external charger.
32. The method ofclaim 28, wherein operation (d) comprises preferentially discharging energy from the battery (i) to a second battery; or (ii) to an external charger, if (i) is not available; or (iii) to a heater and/or heat exchange system, if (i) and (ii) are not available.
33. The method ofclaim 1, wherein the battery comprises a stack of all solid state materials.
34. The method ofclaim 1, wherein operation (c) comprises monitoring charge passed or integrating current delivered to the battery over time.
35. A method of conditioning a positive electrode of a battery, comprising:
deploying the battery in an end use, wherein the battery comprises a positive electrode having an electrochemically active conversion material;
charging and discharging the battery multiple times under operating conditions designed for the end use, wherein the operating conditions for the end use include a maximum charge voltage;
determining that conditioning is to be performed;
conditioning the battery by a process comprising:
(i) applying a substantially constant current or substantially constant power to charge the battery until a conditioning voltage is reached, wherein the conditioning voltage is substantially higher than the maximum charge voltage;
(ii) continuing to charge the battery at the conditioning voltage until the battery reaches a maximum conditioning charge; and
(iii) prior to using the battery for the end use, discharging the battery to about the maximum charge voltage.
36. The method ofclaim 35, wherein the battery further comprises a lithium metal negative electrode.
37. A battery conditioning apparatus comprising:
contacts for electrically connecting to terminals of a battery during conditioning of a battery; and
a power supply coupled to said contacts and configured to control the current, voltage, and/or power delivered to the battery during conditioning;
wherein the apparatus is further configured to:
(i) apply a substantially constant current or substantially constant power to charge the battery until a conditioning voltage is reached, wherein the conditioning voltage is substantially higher than a maximum charge voltage; and
(ii) continue to charge the battery at the conditioning voltage until the battery reaches a maximum conditioning charge.
38. The apparatus ofclaim 37, wherein the apparatus is designed to accommodate in situ conditioning.
39. The apparatus ofclaim 37, wherein the power supply is configured to initiate conditioning based on a trigger event.
40. The apparatus ofclaim 39, wherein the trigger event comprises an increase in overpotential or hysteresis or a loss of battery capacity.
41. The apparatus ofclaim 37, wherein the power supply is configured to initiate conditioning based on a schedule.
42. The apparatus ofclaim 37, wherein the maximum charge voltage is about 4 V vs. lithium, or lower.
43. The apparatus ofclaim 37, wherein the conditioning voltage is about 4.0 V vs. lithium, or higher.
44. The apparatus ofclaim 37, wherein the power supply is further configured to heat the battery until the battery reaches a conditioning temperature of at least about 90° C.
45. The apparatus ofclaim 37, wherein the maximum conditioning charge corresponds to a state of charge of at least about 105%.
46. The apparatus ofclaim 37, wherein the power supply is further configured to (iii) prior to using the battery for the end use, discharge the battery to about the maximum charge voltage.
47. The apparatus ofclaim 46, wherein the apparatus is configured to perform (iii) by preferentially discharging energy from the battery (a) to a second battery; or (b) to an external charger, if (a) is not available; or (c) to a heater and/or heat exchange system, if (a) and (b) are not available.
US14/038,7632012-09-282013-09-27Battery control systemsAbandonedUS20140091748A1 (en)

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Application NumberPriority DateFiling DateTitle
US14/038,763US20140091748A1 (en)2012-09-282013-09-27Battery control systems
US16/530,771US20190356012A1 (en)2012-09-282019-08-02Solid-state electrolyte for a lithium battery
US16/563,487US20200014055A1 (en)2012-09-282019-09-06Battery control systems

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
US201261707405P2012-09-282012-09-28
US14/038,763US20140091748A1 (en)2012-09-282013-09-27Battery control systems

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US16/530,771ContinuationUS20190356012A1 (en)2012-09-282019-08-02Solid-state electrolyte for a lithium battery
US16/563,487ContinuationUS20200014055A1 (en)2012-09-282019-09-06Battery control systems

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US20140091748A1true US20140091748A1 (en)2014-04-03

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US14/038,771AbandonedUS20140093760A1 (en)2012-09-282013-09-27Battery control systems
US14/038,763AbandonedUS20140091748A1 (en)2012-09-282013-09-27Battery control systems
US16/530,771AbandonedUS20190356012A1 (en)2012-09-282019-08-02Solid-state electrolyte for a lithium battery
US16/563,487AbandonedUS20200014055A1 (en)2012-09-282019-09-06Battery control systems
US16/751,156AbandonedUS20200161696A1 (en)2012-09-282020-01-23Battery control systems
US17/448,344ActiveUS12252032B2 (en)2012-09-282021-09-21Battery control systems

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US16/563,487AbandonedUS20200014055A1 (en)2012-09-282019-09-06Battery control systems
US16/751,156AbandonedUS20200161696A1 (en)2012-09-282020-01-23Battery control systems
US17/448,344ActiveUS12252032B2 (en)2012-09-282021-09-21Battery control systems

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US20140093760A1 (en)2014-04-03
US20200014055A1 (en)2020-01-09

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