Battery with variable electrochemical cells configuration
10487033 ยท 2019-11-26
Assignee
Inventors
- Thierry Guena (Longueuil, CA)
- Cedric Reboul-Salze (Montreal, CA)
- Patrick Leblanc (Boucherville, CA)
- Frederic Cotton (Montreal, CA)
- Alain Vallee (Varennes, CA)
Cpc classification
H01M10/0587
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
C07C2527/03
CHEMISTRY; METALLURGY
H01M10/6556
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
H01M50/213
ELECTRICITY
H01M10/0525
ELECTRICITY
H01M10/6551
ELECTRICITY
C07C39/16
CHEMISTRY; METALLURGY
International classification
H01M10/0525
ELECTRICITY
H01M10/6551
ELECTRICITY
C07C39/16
CHEMISTRY; METALLURGY
H01M10/0587
ELECTRICITY
H01M10/6556
ELECTRICITY
Abstract
A lithium battery comprising a plurality of electrochemical cells assembled together and a rigid casing forming an enclosure. The plurality of electrochemical cells includes: at least one first electrochemical cell, at least one second electrochemical cell; and at least one third electrochemical cell disposed between the at least one first electrochemical cell and the at least one second electrochemical cell. The at least one first electrochemical cell is disposed between a first wall of the casing and the at least one third electrochemical cell. The at least one second electrochemical cell is disposed between a second wall of the casing and the at least one third electrochemical cell. The first and second walls provide a heat sink path to dissipate excess heat generated by the plurality of electrochemical cells. The at least one first and second electrochemical cells are more capacitive than the at least one third electrochemical cell.
Claims
1. A lithium battery comprising: a plurality of electrochemical cells assembled together, the plurality of electrochemical cells including: at least one first electrochemical cell; at least one second electrochemical cell; and at least one third electrochemical cell disposed between the at least one first electrochemical cell and the at least one second electrochemical cell; and a rigid casing having a plurality of walls forming an enclosure, the plurality of walls including a first wall and a second wall, the second wall being disposed opposite the first wall, the at least one first electrochemical cell being disposed between the first wall and the at least one third electrochemical cell, the at least one second electrochemical cell being disposed between the second wall and the at least one third electrochemical cell, the first and second walls providing a heat sink path to dissipate excess heat generated by the plurality of electrochemical cells, the at least one first electrochemical cell being more capacitive than the at least one third electrochemical cell, and the at least one second electrochemical cell being more capacitive than the at least one third electrochemical cell.
2. A lithium battery as defined in claim 1, wherein: the at least one third electrochemical cell includes n laminates; and the at least one first electrochemical cell and the at least one second electrochemical cell each include at least n+1 laminates.
3. A lithium battery as defined in claim 2, wherein the at least one first electrochemical cell and the at least one second electrochemical cell each include at least n+2 laminates.
4. A lithium battery as defined in claim 1, wherein: the plurality of walls includes an internal wall providing a further heat sink path; the plurality of electrochemical cells further includes: at least one fourth electrochemical cell; at least one fifth electrochemical cell being disposed between the at least one third electrochemical cell and the internal wall, the at least one third electrochemical cell being disposed between the at least one first electrochemical cell and the at least one fifth electrochemical cell; and at least one sixth electrochemical cell being disposed between the at least one fourth electrochemical cell and the internal wall, the at least one fourth electrochemical cell being disposed between the at least one second electrochemical cell and the at least one sixth electrochemical cell; the at least one second electrochemical cell being more capacitive than the at least one fourth electrochemical cell, the at least one fifth electrochemical cell being more capacitive than the at least one third electrochemical cell, and the at least one sixth electrochemical cell being more capacitive than the at least one fourth cell.
5. A lithium battery as defined in claim 4, wherein: the at least one third electrochemical cell and the at least one fourth electrochemical cell each include n laminates; and the at least one first electrochemical cell, the at least one second electrochemical cell, the at least one fifth electrochemical cell and the at least one sixth electrochemical cell each include at least n+1 laminates.
6. A lithium battery as defined in claim 5, wherein the at least one first electrochemical cell, the at least one second electrochemical cell, the at least one fifth electrochemical cell and the at least one sixth electrochemical cell each include at least n+2 laminates.
7. A lithium battery as defined in claim 1, wherein the at least one first electrochemical cell and the at least one second electrochemical cell each have a lower impedance than the at least one third electrochemical cell.
8. A lithium battery as defined in claim 7, wherein: each electrochemical cell of the plurality of electrochemical cells includes an anode, a cathode and an electrolyte; and the cathode of the at least one first electrochemical cell and the cathode of the at least one second electrochemical cell are thinner than the cathode of the at least one third electrochemical cell.
9. A lithium battery as defined in claim 8, wherein the cathode of the at least one first electrochemical cell and the cathode of the at least one second electrochemical cell have a thickness of approximately 10 m less than the cathode of the at least one third electrochemical cell.
10. A lithium battery as defined in claim 1, wherein: each electrochemical cell of the plurality of electrochemical cells consists of a multi-layer assembly of single laminates; and the electrochemical cells of the plurality of electrochemical cells are stacked one against the other to form a bundle.
11. A lithium battery as defined in claim 1, wherein each electrochemical cell of the plurality of electrochemical cells consists of a single laminate rolled multiple times into a spiral to form a cylindrical electrochemical cell.
12. A lithium battery as defined in claim 1, further comprising a pressure system disposed between the first wall and the at least one first electrochemical cell.
13. A lithium battery as defined in claim 12, wherein the pressure system includes: a plate; and a series of springs disposed between the first wall and the plate.
14. A lithium battery as defined in claim 1, wherein: one of the at least one first electrochemical cell is the electrochemical cell of the plurality of electrochemical cells which is closest to the first wall; and one of the at least one second electrochemical cell is the electrochemical cell of the plurality of electrochemical cells which is closest to the second wall.
15. A lithium battery as defined in claim 4, wherein: one of the at least one fifth electrochemical cell is adjacent to the internal wall; and one of the at least one sixth electrochemical cell is adjacent to the internal wall.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a better understanding of the present invention, as well as other aspects and further features thereof, reference is made to the following description which is to be used in conjunction with the accompanying drawings, where:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
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(18) The battery 10 includes a rigid casing 30 made of extruded aluminum having side walls 32 and upper and lower walls 34 forming an enclosure 37. The stack of electrochemical cells 12 are assembled together to form a bundle 38 which is inserted into the enclosure 37 formed by the rigid casing 30 for protection and for thermally isolating the bundle 38 to maintain optimal temperatures of the electrochemical cells 12. In the illustrated embodiment of
(19) The battery 10 includes a heating system (not shown) located along the side walls 32 of the rigid casing 30. The heating system provides heat to the bundles 37 and 39 through the side walls 32 of the rigid casing 30 to maintain the battery 10 at a nominal temperature of 40 C. in floating mode and to rapidly raise the temperature of the electrochemical cells 12 to between 60 C. and 80 C. at the beginning of their discharge mode.
(20) Once the discharge temperature has been reached, the upper and lower walls 34 and 36 and the internal wall 40 of the rigid casing 30 provide a heat sink path to dissipate excess heat generated by the bundles 38 of electrochemical cells 12 in order to prevent overheating of the electrochemical cells 12.
(21) Each electrochemical cell 12 consists of a multi-layer assembly of single laminates 20 as illustrated schematically in
(22) The cathode 26 preferably has a thickness of 70 m2 m; the anode 22 preferably has a thickness of 50 m2 m; and the electrolyte 24 preferably has a thickness of 40 m2 m.
(23) Bundles of electrochemical cells 12 typically include a plurality of identical electrochemical cells 12 having the same number of laminates 20 and therefore having the same capacity.
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(27) There emerges from the graphs of
(28) To alleviate this problem, the inventors have tested a new bundle assembly in which the electrochemical cells close to the heat sinks provided by the upper and lower walls 34 and 36 and/or to the internal wall 40 have a different configuration than the electrochemical cells located farther away from the heat sinks.
(29) In one embodiment, the electrochemical cells 12 close to the heat sinks have a higher capacity than the electrochemical cells located farther away from the heat sinks. To produce electrochemical cells 12 having a higher capacity, one solution is to increase the active surface of the electrochemical cell 12 by adding laminates 20 and effectively lowering the impedance or internal resistance of the electrochemical cell thereby increasing the capacity of the electrochemical cell 12.
(30) Referring back to
(31) Referring back to
(32) Thus, the new configurations of bundle of electrochemical cells in which the electrochemical cells positioned adjacent or close to the heat sinks of the rigid casing i.e. upper and lower walls and internal wall of the rigid casing are more capacitive than the electrochemical cells of the bundle located farther away from the heat sinks solves the problem of premature end of discharge of the battery 10. The new configuration takes into account the position of the electrochemical cells relative to the various heat sinks of the rigid casing by increasing the capacity of the electrochemical cells close to the heat sinks and the increased capacity of the those electrochemical cells is obtained by adding laminates 20 to the electrochemical cells.
(33) The more capacitive electrochemical cells 12 described have n+2 and n+4 laminates 20. However, various configurations of bundles 38 are possible depending on the measured differences of end of voltage of the electrochemical cells of a bundle 38. Configuration wherein the electrochemical cells 12 close to the heat sinks of the rigid casing have n+1, n+2, n+3, n+4 and n+5 are possible and contemplated.
(34) Another solution to the problem of premature end of cycle of the electrochemical cells 12 located adjacent to the heat sinks provided by the upper and lower walls 34 and 36 and the internal wall 40, contemplated by the inventors was to lower the impedance or internal resistance of those electrochemical cells adjacent to the heat sinks by reducing the thickness of the cathodes 26 of each laminate 20.
(35) In another specific embodiment, the impedance of the electrochemical cells 12 adjacent to the heat sinks is reduced by producing laminates 20 in which the cathode 26 is thinner than the cathode 26 of the laminates 20 of the other electrochemical cells 12. An electrochemical cell 12 in which each constituent laminate 20 is made with a cathode 26 having a thickness of 60 m2 m instead of 70 m2 m or approximately 10 m less than the cathode of the laminates of the other electrochemical cells 12 of the bundle 38 will have a lower capacity than the other electrochemical cells but will perform better in discharge mode at lower temperature and this increased discharge capability should compensate for the lower temperature experienced by those electrochemical cells 12 close to the heat sinks. Preferably, the electrochemical cells 12 in which each constituent laminate 20 is made with a thinner cathode 26 should include more laminate 20 in order to compensate for the lower capacity.
(36) The inventors have therefore tested a new bundle configuration in which the electrochemical cells 12 close to the heat sinks of the upper and lower walls 34 and 36 and/or to the internal wall 40 include laminates 20 made with a cathode 26 having a thickness of approximately 10 m less than the cathode of the laminates of the other electrochemical cells 12 of the bundle 38 i.e a thickness of 60 m2 m instead of 70 m2 m. Referring back to
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(38) Referring back to
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(42) There emerges once again from the graph of
(43) The same solutions previously described apply to the embodiment of the battery of
(44) The other solution also applies to the embodiment of the battery of
(45) The various solutions to the problem of premature end of cycle of the electrochemical cells located adjacent to the heat sinks provided by the walls of the casing of a battery also apply to a battery having plurality of cylindrical electrochemical cells or a plurality of prismatic electrochemical cells.
(46) With reference to
(47) With reference to
(48) Similarly, a battery which includes a plurality of prismatic electrochemical cells inserted in a rigid casing will encounter the same problem wherein the prismatic electrochemical cells closest or adjacent to the walls of the rigid casing which act as heat sinks will reach the end of their discharge voltage before the electrochemical cells located away from the heat sinks reach their end of discharge voltage and therefore the battery will reach its end of discharge voltage when one of the electrochemical cells reaches its end of discharge voltage. The battery will stop operating while a plurality of its prismatic electrochemical cells is still within their voltage discharge operating window. The prismatic battery therefore stopped operating with capacity remaining.
(49) As described with reference to cylindrical electrochemical cells 52, a prismatic electrochemical cell consists of a single laminate flat rolled multiple times into a flat spiral roll; the length of the single laminate defines the number of layers or turns in the flat spiral roll which defines the capacity of the prismatic electrochemical cell. Therefore, to increase the capacity of the prismatic electrochemical cell close to or adjacent to the walls of the rigid casing, it is possible to produce prismatic electrochemical cells having a longer laminate rolled into a flat spiral roll and therefore produce a an electrochemical cell having one or more layers or turns in the flat spiral roll. As previously described, positioning prismatic electrochemical cells having more capacity adjacent to the walls of the rigid casing which act as heat sinks solves the problem of reaching the end of their discharge voltage before the prismatic electrochemical cells located away from the heat sinks reach their end of discharge voltage. As well, producing prismatic electrochemical cells with a laminate having a thinner cathode rolled into a flat spiral roll will have a lower impedance and more layers or turns in the flat spiral roll thereby increasing the discharge capability of the electrochemical call at lower temperature.
(50) The same problematic applies to batteries using cooling systems to maintain the temperature of their electrochemical cells below a predetermined temperature threshold. The electrochemical cells located closest to the path of the cooling fluid which acts as heat sinks will reach their end of their discharge voltage before the electrochemical cells located away from the heat sinks. As described with reference to the previous embodiments of the invention, the problem is solved by rearranging the electrochemical cells in the battery such that the electrochemical cells positioned adjacent to the heat sink path of the cooling system have a different configuration than the other electrochemical cells of the battery.
(51) Modifications and improvements to the above-described embodiments of the present invention may become apparent to those skilled in the art. The foregoing description is intended to be exemplary rather than limiting. The scope of the present invention is therefore intended to be limited solely by the scope of the appended claims.