METHOD AND DEVICE FOR SEALING AN ELECTROCHEMICAL CELL
20170221647 · 2017-08-03
Assignee
Inventors
Cpc classification
H01G11/84
ELECTRICITY
H01M10/0481
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
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
H01M50/461
ELECTRICITY
International classification
H01G11/84
ELECTRICITY
Abstract
A device for sealing an electrochemical cell including a carrier on which an anode is situated and a separator situated between the anode and a cathode, having an elastic connection of the carrier and the separator, an action of force on the separator, caused by a change in volume of the anode, being capable of being absorbed by the elastic connection of the carrier and the separator. In addition, a corresponding method for sealing an electrochemical cell is described.
Claims
1-11. (canceled)
12. A device for sealing an electrochemical cell including a carrier on which an anode is situated and a separator situated between the anode and a cathode, the device comprising: an elastic connector, the elastic connector elastically connecting the carrier and the separator, an action of force on the separator, caused by a change in volume of the anode, being capable of being absorbed by the electric connector.
13. The device as recited in claim 12, wherein the elastic connector is made of a plastic that has a closed porous region, or that has a porous region that is open only toward an interior of the anode and a non-porous region.
14. The device as recited in claim 13, wherein the elastic connector is formed in open porous fashion on a side facing the electrochemical cell.
15. The device as recited in claim 12, wherein the elastic connector is formed with a wave shape on a side facing the electrochemical cell.
16. The device as recited in claim 12, wherein a multiplicity of supporting elements are situated on a surface of the carrier, a distance between the respective supporting elements being from 10 to 100 μm.
17. The device as recited in claim 12, wherein a multiplicity of supporting elements are situated on a surface of the carrier, a distance between the respective supporting elements being from 10 to 20 μm.
18. The device as recited in claim 16, wherein a thickness of the respective supporting element has a thickness of the elastic connector in the compressed state.
19. The device as recited in claim 12, wherein an anode space formed between the carrier and the separator is filled with an electrolyte, the anode space being capable of being filled in a vacuum or under a reduced ambient pressure.
20. The device as recited in claim 12, wherein the elastic connector is respectively connected in media-tight fashion to the carrier and to the separator at their ends.
21. The device as recited in claim 12, wherein the elastic connector has a gap-shaped hollow space that is capable of expansion when there is an expansion of the anode and is capable of being compressed when there is a reduction in size of the anode.
22. A method for sealing an electrochemical cell including a carrier on which an anode is situated and a separator situated between the anode and a cathode, the method comprising: elasticly connecting the carrier and the separator, an action of force on the separator, caused by a change in volume of the anode, being absorbed by the elastic connection.
23. The method as recited in claim 22, wherein an anode space formed between the carrier and the separator is filled with an electrolyte in a vacuum or under a reduced ambient pressure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The figures are intended to impart further understanding of the specific embodiments of the present invention. They illustrate specific embodiments and, in connection with the description, provide explanation of principles and designs of the present invention.
[0023] Other specific embodiments, and many of the named advantages, result with regard to the figures. The depicted elements of the figures are not necessarily shown to scale relative to one another.
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
[0033] In the Figures, identical reference characters designate identical or functionally identical elements, assemblies, or components, unless otherwise indicated.
[0034]
[0035] The device for sealing an electrochemical cell 1 includes a carrier 10 on which an anode 12a, 12b is respectively situated on an upper side and lower side. The device for sealing electrochemical cell 1 has in addition a separator 16, 17 situated between anode 12a, 12b and a respective cathode (not shown in
[0036] The device for sealing electrochemical cell 1 has means 20 for the elastic connection of carrier 10 and separator 16, 17. Means 20 for the elastic connection of carrier 10 and separator 16, 17 are made of a plastic. The plastic has a closed porous region 20a and a non-porous region 20b. Porous region 20a is situated on a side 20c facing electrochemical cell 1. Porous region 20a is made in open porous fashion on side 20c facing electrochemical cell 1. Alternatively, porous region 20a can also be made not in open porous fashion on side 20c facing electrochemical cell 1, having in particular fewer pores, less than 30% of the volume of region 20a.
[0037] Means 20 for the elastic connection of carrier 10 and separator 16, 17 are respectively connected in media-tight fashion with separator 16, 17 and with the carrier at their ends 10a, 10b, 16a, 16b, 17a, 17b. At its end 10a, carrier 10 extends past means 20 for the elastic connection of carrier 10 and separator 16, 17. Here, as a conductive carrier, carrier 10 offers an electrical contacting possibility that can be used for example as connecting element for a current collector of the electrochemical cell, e.g. as a weld contact to the anode. A sealing compound of means 20 for the elastic connection of carrier 10 and separator 16, 17 additionally seals the feedthrough of carrier 10 hermetically against the outer space. Alternatively, carrier 10 can also have a conductive lug as contact possibility. Carrier 10 can alternatively not be led out, or can be led out at both sides, as is appropriate for example in the case of high-power cells.
[0038] The sealing compound of means 20 for the elastic connection of carrier 10 and separator 16, 17 is connected to the separator and to carrier 10 at respective ends of separator 16, 17 and of carrier 10, in particular by gluing or fusing. Due to the formation of anodes 12a, 12b on carrier 10 at both sides, a high surface utilization can be achieved.
[0039]
[0040] Means 20 for the elastic connection of carrier 10 and separator 16, 17 are formed with a wave shape on side 20c facing electrochemical cell 1. Separator 16 and wave-shaped porous region 20a of means 20 for the elastic connection of carrier 10 and separator 16, 17 mesh with one another.
[0041]
[0042] A plurality of supporting elements 22 are situated on a surface of carrier 10. Supporting elements 22 have a spacing of from 10 to 100 μm, preferably 10 to 20 μm. A thickness D of the respective supporting element 22 has a thickness of means 20 for the elastic connection of carrier 10 and separator 16, 17 in the compressed state. Depending on the state of discharge of the electrochemical cell, a distance between the respective separator 16, 17 and carrier 10 varies. In the case of a discharged electrochemical cell, this spacing is minimal. In order to avoid a buckling of the separator in the case of a strong compression of means 20 for the elastic connection of carrier 10 and separator 16, 17, the respective supporting elements 22 are provided on the surface of carrier 10. Due to the provision of supporting elements 22, separator 16, 17 comes to lie against supporting elements 22 in the case of a dissolving anode. The distance between supporting elements 22 is dimensioned so as to be of the order of magnitude of a separator layer thickness, i.e. approximately 10 to 100 μm, in particular 10 to 20 μm.
[0043]
[0044] Supporting elements 22 have an oblong shape. Alternatively, supporting elements 22 can also have some other suitable shape. Supporting elements 22 are uniformly distributed on the surface of carrier 10 in order to enable a uniform support surface for the respective separator 16, 17.
[0045]
[0046] The device for sealing electrochemical cell 1 is shown in
[0047]
[0048] In
[0049]
[0050] In this embodiment, seals 32a, 32b in cathode spaces, having a porous structure, are also provided, formed in open porous fashion on a side facing electrochemical cell 1. In this way, electrolyte can be absorbed or released when the cathode structure expands or contracts during charging or discharging. In this way, an electrolyte reservoir can also be provided in order to additionally provide electrolyte in order to dissolve a reaction product in the cathode during charging or discharging in order to enable a higher kinetic characteristic. In addition, the expansion of the cathode or the contraction of the cathode is volumetrically compensated by the variable side sealing.
[0051]
[0052] In
[0053]
[0054] The method for sealing an electric chemical cell 1, including a carrier 10 on which an anode 12a, 12b is situated and a separator 16, 17 situated between anode 12a, 12b and a cathode, includes an elastic connection S1 of carrier 10 and separator 16, 17, an action of force on separator 16, 17, caused by a change in volume of anode 12a, 12b, being absorbed by means 20 for the elastic connection of carrier 10 and separator 16, 17. The method additionally includes step S2, in which an anode space 13a, 13b formed between carrier 10 and separator 16, 17 is filled with an electrolyte 24a, 24b in a vacuum or under reduced ambient pressure. The filling of anode space 13a, 13b by electrolyte 24a, 24b takes place after the elastic connection S1 of carrier 10 and separator 16, 17 by means 20. Alternatively, the filling of anode space 13a, 13b with electrolyte 24a, 24b can also take place before the step of the elastic connection S1 of carrier 10 and separator 16, 17 by means 20.
[0055] Although the present invention has been described above on the basis of preferred exemplary embodiments, it is not limited thereto, but rather can be modified in many ways. In particular, the present invention can be modified in many ways without departing from the core of the present invention.
[0056] For example, means 20 for the elastic connection of carrier 10 and separator 16, 17 can have any suitable shape and thickness. In addition, the ratio of porous to non-porous regions of means 20 can be provided in a suitable manner.