System for managing at least one sub-assembly of an electric battery
11398648 ยท 2022-07-26
Assignee
Inventors
- Thierry Scordilis (Cormondreche, CH)
- Jerome Saby (Colombier, CH)
- Arnaud Casagrande (Bole, CH)
- Luca De Rosa (Colombier, CH)
Cpc classification
Y02T90/16
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
H01M2010/4271
ELECTRICITY
B60L58/21
PERFORMING OPERATIONS; TRANSPORTING
H01M10/425
ELECTRICITY
B60L58/18
PERFORMING OPERATIONS; TRANSPORTING
B60L58/12
PERFORMING OPERATIONS; TRANSPORTING
B60L3/0046
PERFORMING OPERATIONS; TRANSPORTING
B60L58/22
PERFORMING OPERATIONS; TRANSPORTING
H02J7/0048
ELECTRICITY
H01M10/48
ELECTRICITY
International classification
Abstract
The system (4) is provided for managing at least one sub-assembly (2) of an electric battery. Each sub-assembly comprises a plurality of power storage cells (12). The system includes, for each power storage cell, a circuit (14) for managing the state of the cell and a communication circuit (16), which is configured such that it receives and transmits data relative to the cell. The communication circuit is configured such that it transposes, over a carrier frequency, the data to be received and transmitted, the value of said carrier frequency being greater than or equal to 1 GHz. The management system further includes, for each sub-assembly, a loss cable (18) connecting the power storage cells of said sub-assembly. The loss cable acts as a waveguide and is coupled by capacitive coupling to the communication circuit of each power storage cell.
Claims
1. A system for managing at least one sub-assembly of an electric battery, the one or each sub-assembly comprising: a plurality of power storage cells, wherein the system further comprises, for each power storage cell, a circuit for managing a state of the cell and a communication circuit, the communication circuit being configured to receive and transmit data relative to the cell, wherein the communication circuit is configured to transpose, over a carrier frequency, the data to be received and to be transmitted, the value of said carrier frequency being greater than or equal to 1 GHz, wherein the system further comprises, for the one or for each sub-assembly, a loss cable connecting the power storage cells of said sub-assembly, said loss cable acting as a waveguide and being coupled by capacitive coupling to the communication circuit of each power storage cell, wherein the loss cable is formed by a twisted pair comprising two strands, and wherein the capacitive coupling is formed by a part for separating the strands, said part being inserted between, on one hand, the two strands of the twisted pair and on the other hand the communication circuit of the power storage cell.
2. The system according to claim 1, wherein the value of the carrier frequency is substantially equal to 5.7 GHz.
3. The system according to claim 1, wherein the system further comprises, for each power storage cell, capacitive coupling means electrically connected to the communication circuit of the cell, and wherein the loss cable is coupled to the communication circuit of each power storage cell via the capacitive coupling means.
4. The system according to claim 1, wherein the separating part comprises a metal coating and a plastic base, said plastic base defining two semi-cylindrical longitudinal cavities and two longitudinal through-grooves, each longitudinal through-groove extending substantially in the center of one of the cavities over the entire length of the base, the metal coating extending in a continuous manner on the bottom of each semi-cylindrical cavity, inside the longitudinal grooves, and on the outside of the base in order to form a conductive track on an external face of the base, the two strands of the twisted pair each extending in one of the semi-cylindrical cavities.
5. The system according to claim 1, wherein the loss cable has a coaxial form.
6. The system according to claim 5, wherein the loss cable comprises a plurality of slots made in an external shield of the cable.
7. The system according to claim 5, wherein the capacitive coupling is further formed by a cable pass ring, the ring comprising, on the inner surface thereof, a metal coating, the loss cable being inserted into the ring of each power storage cell.
8. The system according to claim 1, wherein the communication circuit of each power storage cell is configured such that it transposes, by amplitude modulation and/or frequency modulation, over the carrier frequency, the data to be received and transmitted.
9. The system according to claim 1, wherein the management circuit and the communication circuit of each power storage cell are electrically powered by said power storage cell.
10. An electric battery comprising at least one sub-assembly and a system for managing the one or more sub-assemblies, the one or each sub-assembly including a plurality of power storage cells, wherein the management system is as claimed in claim 1.
11. The electric battery according to claim 10, further comprising a central member for concentrating and processing data, and, for the at least one sub-assembly or for each sub-assembly, a module for managing the state of the sub-assembly and a communication module, the communication module of the at least one sub-assembly or of each sub-assembly being coupled firstly to the loss cable of said sub-assembly and connected secondly to the central data concentration and processing member.
12. The electric battery according to claim 11, wherein the central data concentration and processing member comprises a computing unit configured to dynamically modify the boundary between the upstream communication of data originating from the power storage cells, and the downstream communication of data to the power storage cells.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The purposes, advantages and features of the management system according to the invention, as well as of the electric battery comprised therein, will appear more clearly in the following description which is given on the basis of at least one non-limiting embodiment shown by way of the drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF THE INVENTION
(8)
(9) Each sub-assembly 2 of the electric battery 1 comprises a plurality of power storage cells 12. In the example embodiment in
(10) As shown in
(11) As shown in
(12) The circuit 14 for managing the state of a power storage cell 12 is configured such that it monitors the state of the cell 12, such as for example the state of charge, the consumption, the temperature and/or the voltage level of the cell 12. For this purpose, the management circuit 14 includes, for example, a plurality of dedicated electronic sensors. The circuit 14 for managing the state of a cell 12 includes two terminals, each of the terminals being connected to one respective terminal of the cell 12. Thus, each management circuit 14 is connected in parallel with the cell 12 monitored thereby. As shown in
(13) The communication circuit 16 of a power storage cell 12 is configured such that it receives and transmits data relative to the cell 12. The data to be transmitted are, for example, measurement data on the state of charge of the cell 12, the power consumption thereof, the temperature thereof and/or the voltage level at the terminals thereof. The data to be received are, for example, requests to measure these different parameters. The communication circuit 16 of each cell 12 is further configured such that it transposes, over a carrier frequency having a value that is greater than or equal to 1 GHz, the data to be received and transmitted. The communication circuit 16 is, for example, configured so as to carry out such a transposition of data via an amplitude modulation and/or via a frequency modulation. Preferably, the value of the carrier frequency is substantially equal to 5.7 GHz. However, this carrier frequency can also be 2.45 GHz.
(14) For each power storage cell 12, the circuit 14 for managing the state of the cell and the communication circuit 16 are, for example, each integrated onto a dedicated printed circuit board. In such a case, the two printed circuit boards are electrically connected to one another. Alternatively, the circuit 14 for managing the state of the cell and the communication circuit 16 can share the same printed circuit board.
(15) Preferably, for each power storage cell 12, the circuit 14 for managing the state of the cell and the communication circuit 16 are electrically powered by the power storage cell itself. These two circuits 14, 16 are thus completely separate from the power circuit of the electric battery 1, and are directly powered by the power storage cell 12 with which they are associated.
(16) Each loss cable 18 acts as a waveguide and is coupled, by capacitive coupling, to the communication circuit 16 of each power storage cell 12 of the sub-assembly 2 with which it is associated. Capacitive coupling takes place, for example, by way of the capacitive coupling means 20, as shown in
(17) Referring back to
(18) Preferably, the central data concentration and processing member 6 comprises a computing unit configured so as to dynamically modify the boundary between the upstream communication of data originating from the power storage cells 12, and the downstream communication of data to the power storage cells 12.
(19) A first embodiment of the invention will now be described with reference to
(20) According to this first embodiment, the capacitive coupling means 20 are formed by a part for separating the strands 22. The separating part 20 is inserted between, on the one hand, the two strands 22 of the twisted pair 18 and on the other hand the communication circuit 16 of the power storage cell 12. More specifically, as shown in
(21) In the position of use of the separating part 20, the base 28 is disposed on the communication circuit 16 of the power storage cell 12, the face of the base 28 on which the metal coating 38 extends being in contact with the circuit 16. The two strands 22 of the twisted pair 18 each extend in a corresponding semi-cylindrical cavity 34. The movable cover 30 is in the closed position and closes over the strands 22. The data signal is present on the metal coating 38, and the separating part 20 allows the twisted pair 18 to be coupled, by capacitive coupling, to the communication circuit 16.
(22) A second embodiment of the invention will now be described with reference to
(23) As shown in
(24) Although not shown, the coaxial cable could be considered to be bonded to the battery and capacitive coupling takes place between the battery elements, i.e. between the loss cable and a microstrip on the electronic module.
(25)