Rechargeable battery cell and method for producing and operating a rechargeable battery cell
11309595 ยท 2022-04-19
Assignee
Inventors
Cpc classification
H01M10/48
ELECTRICITY
H01M10/4257
ELECTRICITY
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
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
H01M10/0525
ELECTRICITY
H01M2010/4278
ELECTRICITY
International classification
H01M10/48
ELECTRICITY
H01M10/42
ELECTRICITY
Abstract
A rechargeable battery cell includes a cathode, an anode, an electrolyte, and a sensor that is arranged in the rechargeable battery cell. The sensor has at least two sensor electrodes and is accommodated in the rechargeable battery cell without a sheathing at least in sections. Moreover, the at least two sensor electrodes are operated in an electrical potential range that protects the sensor and/or the sensor electrodes against corrosion by the electrolyte. A method for producing and operating a rechargeable battery cell of this kind is also provided.
Claims
1. An accumulator cell comprising: a cathode arranged at a first end of the accumulator cell; an anode arranged at a second end of the accumulator cell that is opposite to the first end; an electrolyte arranged inside of the accumulator cell; and a sensor having at least two sensor electrodes, wherein the sensor is arranged in a central portion of the accumulator cell and is completely surrounded by and in direct contact with the electrolyte except for end portions of the at least two sensor electrodes which project outside of the electrolyte, wherein the at least two sensor electrodes are operated in an electrical potential range that protects the sensor and/or the sensor electrodes from corrosion by the electrolyte, wherein the accumulator cell, in which the sensor is arranged, is a lithium ion accumulator, and wherein a housing of the sensor is completely surrounded by and directly in contact with the electrolyte.
2. The accumulator cell according to claim 1, wherein a first sensor electrode is connected in the accumulator cell such that it is operated at an electric potential of the cathode, and/or a second sensor electrode is connected in the accumulator cell such that it is operated at an electric potential of the anode.
3. The accumulator cell according to claim 1, wherein a first sensor electrode is coupled to the cathode and operated at an electric potential of the cathode, and/or a second sensor electrode is coupled to the anode and operated at an electric potential of the anode.
4. The accumulator cell according to claim 1, further comprising a controller, wherein the controller is coupled to the sensor and configured to drive the sensor.
5. The accumulator cell according to claim 1, wherein the at least two sensor electrodes are not protected within the electrolyte by a passive corrosion protection.
6. The accumulator cell according to claim 1, wherein the at least two sensor electrodes are wired in the accumulator cell such that they are operated in a potential range from greater than 0 V to 3 V with respect to the electrolyte.
7. The accumulator cell according to claim 1, wherein the sensor is a temperature sensor, resistance sensor, gas pressure sensor, or a strain gauge.
8. A method for the manufacture and operation of an accumulator cell, the method comprising the acts of: arranging a sensor in an interior of the accumulator cell so that the sensor is directly exposed to electrolyte in the accumulator cell; connecting sensor electrodes of the sensor to an anode and/or a cathode of the accumulator cell; and operating the sensor electrodes in an electric potential range that protects against corrosion caused by the electrolyte; wherein the accumulator cell, in which the sensor is arranged, is a lithium ion accumulator; and wherein a housing of the sensor is completely surrounded by and directly in contact with the electrolyte.
9. The method according to claim 8, wherein the sensor electrodes are operated in a potential range from greater than 0 V to 3 V with respect to the electrolyte.
10. The accumulator cell according to claim 1, wherein the sensor is housed in the accumulator cell at least partially without cladding.
11. The accumulator cell according to claim 4, wherein the controller is read wirelessly and/or through provided terminals.
12. The accumulator cell according to claim 6, wherein the potential range is 0.1 V to 2 V.
13. The method according to claim 9, wherein the electric potential range is from 0.1 V to 2 V.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DETAILED DESCRIPTION OF THE DRAWINGS
(3) An accumulator cell 10 according to the invention has a housing 12 filled with an electrolyte 14 and includes a cathode 16 as well as an anode 18 opposite to the cathode 16, as shown in
(4) The cathode 16 and the anode 18 are arranged in the electrolyte 14 and lead out of the housing 12 of the accumulator cell 10, where they form a cathode terminal 20 and an anode terminal 22.
(5) A sensor 24 with a first sensor electrode 26 and a second sensor electrode 28 are arranged in the housing 12 of the accumulator cell 10.
(6) The sensor 24, including its sensor electrodes 26, 28, does not include any passive corrosion protection such as, for example, a cladding, and is directly exposed to the electrolyte 14, which would otherwise destroy the sensor 24 and/or the electrodes 26, 28.
(7) For example, the sensor 24 is a temperature sensor, resistance sensor, gas pressure sensor, or strain gauge.
(8) The sensor electrodes 26, 28, which are provided to drive the sensor 24, are brought out of the accumulator cell 10 through the housing 12. The first sensor electrode 26 is coupled via a resistor 30 to the cathode terminal 20. The second sensor electrode 28 is operated at the electric potential of the anode 18.
(9) Alternatively, the sensor electrodes 26, 28, may also not be coupled to the cathode 16 and the anode 18.
(10) An alternative embodiment of an accumulator cell 10 according to the invention has a controller 32, which is cast into the housing 12, as illustrated in
(11) The controller 32 is coupled both to the sensor electrodes 26, 28 of the sensor 24 as well as, via the cathode terminal 20 and the anode terminal 22 respectively, to the cathode 16 and the anode 18 of the accumulator cell 10. The controller 32 is provided to drive the sensor 24 and to operate it in a specific range of electric potential.
(12) The controller 32 can, for example, be driven wirelessly or via terminals (not illustrated).
(13) The sensor 24 can, for example, be read directly via terminals (not illustrated) or via the controller 32.
(14) In all forms of the embodiments herein, the sensor 24 is operated in an electric potential range that protects the sensor 24 and/or the sensor electrodes 26, 28 from corrosion by the principle of cathodic corrosion protection. The sensor 24 is operated deliberately at an electric potential of the cathode 16 and/or of the anode 18, and the operating voltage of the sensor 24 is limited to a range that protects against damaging reactions with the electrolyte 14.
(15) For example, the sensor 24 is operated in a potential range from greater than 0 V to 3 V, such as from 0.1 V to 2 V, with respect to the electrolyte 14, so that a protective current flows that leads to a cathodic polarization in the electrolyte 14 at the surface of the sensor 24, which prevents ions from being detached from the surface of the sensor 24.
(16) If, for example, the accumulator cell 10 is a lithium ion accumulator and the sensor 24 is a sensor with copper sensor electrodes 26, 28, then, through the operation of the sensor electrodes 26, 28 at the electric potential of the anode 18, and through the application of an operating voltage of, for example, 2 V to the sensor 24, the redox potential of the copper sensor electrodes 26, 28 is drawn to a reducing potential which prevents damage to the sensor electrodes 26, 28 through corrosion.
(17) The object of the invention is not, however, limited to the abovementioned accumulator types and materials. The use of the cathodic corrosion protection is, rather, possible for all sensors 24 in accumulator cells 10 which can be operated in a suitable range of electric potential with respect to the electrolyte 14 that prevents a corrosion of the sensor 24.
(18) Alternatively, the sensors 24 or the sensor electrodes 26, 28 can be partially cladded, where the sensor 24 is operated in an electric potential range with respect to the electrolyte 14 that prevents corrosion thereof and thus damage to the sensor 24 and/or the sensor electrodes 26, 28.
(19) The manufacture and operation of the accumulator cell 10 according to the invention proceeds according to the following steps: (a) arranging the sensor 24 in the interior of the accumulator cell 10 so that the sensor 24 is directly exposed to the electrolyte 14, (b) connecting the sensor electrodes 26, 28 to the anode 18 and/or cathode 16 of the accumulator cell 10, and (c) operating the sensor electrodes 26, 28 in an electric potential range that protects against a corrosion caused by the electrolyte 14.
(20) Through the application of the principle of active cathodic corrosion protection, it is ensured that the sensor 24 can be operated in the accumulator cell 10 in direct contact with the electrolyte 14, without resulting in damage to the sensor 24 by corrosion, even when the sensor 24 does not include any passive corrosion protection.
(21) The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.