CAPACITIVELY COUPLED DATA LINK FOR A SEALED BATTERY
20220373603 · 2022-11-24
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
G01R31/367
PHYSICS
H01M2010/4278
ELECTRICITY
International classification
G01R31/367
PHYSICS
H01M10/42
ELECTRICITY
Abstract
A capacitively coupled data link for a battery is disclosed. The battery comprises a battery cell and a battery management system. The battery is disposed in a battery case. The data li communicates data between the battery management system and a data terminal disposed outside of the battery case. The data link comprises an interior date link portion coupled to the battery management system. The interior data link portion comprises an interior electrode disposed on an inside surface of the battery case and an interior transceiver disposed inside of the battery case coupled to the interior electrode. The data link further comprises an exterior data link portion coupled to data terminal. The exterior data link portion comprises an exterior electrode disposed o
outside surface of the battery case opposite the interior electrode, and an exterior transceiver disposed outside of the battery case coupled to the exterior electrode. The interior electrode, the exterior electrode and the battery case disposed therebetween form a capacitive communication link between the interior data link portion and the exterior data link portion.
Claims
1. A capacitively coupled data link for a battery, the battery comprising a plurality of electrically interconnected battery cells and a battery management system adapted to monitor and/or control battery functions, wherein the battery is disposed in a sealed battery case, wherein the data link communicates data between the battery management system and a data terminal disposed outside of the battery case, the data link comprising: an interior data link portion communicatively coupled to the battery management system, the interior data link portion comprising an interior electrode disposed on an inside surface of the battery case and an interior transceiver disposed inside of the battery case and coupled to the interior electrode; and an exterior data link portion communicatively coupled to data terminal, the exterior data link portion comprising an exterior electrode disposed on an outside surface of the battery case opposite the interior electrode, and an exterior transceiver disposed outside of the battery case and coupled to the exterior electrode; wherein the interior electrode, the exterior electrode and the battery case disposed therebetween form a capacitive communication link between the interior data link portion and the exterior data link portion.
2. The capacitively coupled data link of claim 1, wherein the interior data link portion includes a sensor for detecting a presence of a sensor actuator, the sensor actuator disposed outside of the battery case, and a switch operable in response to the detected presence of the sensor actuator for turning on the interior transceiver.
3. The capacitively coupled data link of claim 2, wherein the switch is operable under control of the battery management system.
4. The capacitively coupled data link of claim 3, wherein the sensor comprises a magnetic sensor and the sensor actuator comprises a magnet.
5. The capacitively coupled data link of claim 4, wherein the exterior transceiver is disposed in an exterior transceiver housing and the magnet is disposed within the exterior transceiver housing.
6. The capacitively coupled data link of claim 1, wherein the battery case is substantially sealed from entry of water.
7. The capacitively coupled data link of claim 1, wherein the interior electrode comprises an interior transmitter electrode and an interior receiver electrode, and the interior transceiver comprises an interior transmitter coupled to the interior transmitter electrode and an interior receiver coupled to the interior receiver electrode; the exterior electrode comprises an exterior transmitter electrode and an exterior receiver electrode, and the exterior transceiver comprises an exterior transmitter coupled to the exterior transmitter electrode and an exterior receiver coupled to the exterior receiver electrode; and the interior transmitter electrode is disposed opposite the exterior receiver electrode and the exterior transmitter electrode is disposed opposite the interior receiver electrode.
8. The capacitively coupled data link of claim 1, wherein each of the interior and exterior transceivers transmit utilizing amplitude modulation.
9. The capacitively coupled data link of claim 8, wherein the amplitude modulation comprises ON-OFF keying.
10. The capacitively coupled data link of claim 1, wherein the interior and exterior transceivers comprise serial data transceivers.
11. The capacitively coupled data link of claim 1, wherein the interior and exterior electrodes are formed of copper foil.
12. A capacitively coupled serial data link for a battery, the battery comprising a plurality of electrically interconnected battery cells and a battery management system adapted to monitor and/or control battery functions, wherein the battery is disposed in a sealed battery case, wherein the serial data link communicates serial data between the battery management system and a data terminal disposed outside of the battery case, the serial data link comprising: an interior data link portion communicatively coupled to the battery management system, the interior data link portion comprising an interior transmitter electrode and an interior receiver electrode, each of the interior transmitter electrode and the interior receiver electrode disposed on an inside surface of the battery case, and an interior transceiver comprising an interior transmitter and an interior receiver, disposed inside of the battery case and coupled to the interior electrodes; and an exterior data link portion communicatively coupled to data terminal, the exterior data link portion comprising an exterior transmitter electrode and an exterior receiver electrode, each of the exterior transmitter electrode and exterior receiver electrode disposed on an outside surface of the battery case opposite the corresponding interior electrodes, and an exterior transceiver disposed outside of the battery case coupled to the exterior electrodes; wherein the interior transmitter electrode and the interior receiver electrode, the corresponding exterior receiver electrode and transmitter electrode, and the battery case disposed therebetween form a duplex capacitive serial communication link for communicating data between the battery management system and the data terminal via the interior data link portion and the exterior data link portion.
13. The capacitively serial coupled data link of claim 12, wherein the interior data link portion includes: a sensor for detecting a presence of a sensor actuator disposed outside of the battery case; and a switch operable in response to the detected presence of the sensor actuator for turning on the interior transceiver.
14. The capacitively coupled serial data link of claim 13, wherein the switch is operable under control of the battery management system.
15. The capacitively coupled serial data link of claim 14, wherein the sensor comprises a magnetic sensor and the sensor actuator comprises a magnet.
16. The capacitively coupled serial data link of claim 15, wherein the exterior transceiver is disposed in an exterior transceiver housing and the magnet is disposed within the exterior transceiver housing. electrode.
17. The capacitively coupled data link of claim 12, wherein each of the interior and exterior transceivers transmit utilizing amplitude modulation.
18. The capacitively coupled data link of claim 17, wherein the amplitude modulation comprises ON-OFF keying.
19. A capacitively coupled serial data link for a battery, the battery comprising a plurality of interconnected battery cells and a battery management system adapted to monitor and/or control battery functions, wherein the battery is disposed in a sealed battery case, wherein the serial data link communicates serial data between the battery management system and a data terminal disposed outside of the battery case, the serial data link comprising: an interior data link portion communicatively coupled to the battery management system, the interior data link portion comprising an interior transmitter electrode and an interior receiver electrode, each of the interior transmitter electrode and the interior receiver electrode disposed on an inside surface of the battery case, and an interior transceiver comprising an interior transmitter and an interior receiver, disposed inside of the battery case and coupled to the interior electrodes; and an exterior data link portion communicatively coupled to data terminal, the exterior data link portion comprising an exterior transmitter electrode and an exterior receiver electrode, each of the exterior transmitter electrode and exterior receiver electrode disposed on an outside surface of the battery case opposite the corresponding interior electrodes, and an exterior transceiver disposed outside of the battery case coupled to the exterior electrodes; wherein the interior transmitter electrode and the interior receiver electrode, the corresponding exterior receiver electrode and transmitter electrode, and the battery case disposed therebetween form a duplex capacitive serial communication link for communicating data between the battery management system and the data terminal via the interior data link portion and the exterior data link portion; and wherein the interior data link portion includes a magnetic sensor for detecting a presence of a magnet proximally disposed outside of the battery case and a switch operable under control of the battery management system in response to the detected presence of the magnet for turning on the interior transceiver.
20. The capacitively coupled serial data link of claim 19, wherein the exterior transceiver is disposed in an exterior transceiver housing and the magnet is disposed within the exterior transceiver housing.
21. (canceled)
Description
DESCRIPTION OF THE FIGURES
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] While this invention is susceptible of embodiments in many different forms, there will be described herein in detail, a specific embodiment thereof with the understanding that the present disclosure is to be considered an exemplification of the principles of the invention and is not intended to limit the invention to the specific embodiment illustrated.
[0017] Referring to
[0018] The battery 10 may further include a conventional battery management system, or BMS, 22, which may include an interior date communications port 23, which may be a serial data communications port. In order to communicate with the INS 22 via the interior data communications port 23, a data terminal 24 (
[0019] As noted above, in certain situations it may be desirable for the battery case 14 to be sealed. For example, the battery case of a marine battery may be sealed to prevent, or otherwise limit, water from entering the battery case 14 and damaging components therein. In accordance with the present invention, and as illustrated in
[0020] The capacitively coupled data link 26 may comprise an interior data link ion 26a, which may be physically disposed inside the battery case 14 and an exterior data link portion, 26b, which may be physically disposed outside the battery case 14.
[0021] The interior data link portion 26a may include an interior transceiver, which may comprise an interior receiver 28a and an interior transmitter 30a. As discussed below, the interior data link port on 26a may also include a power switch 32 and a sensor 34, such as a magnetic sensor. Similarly, the exterior data link portion 26b may include an exterior receiver 28b (associated with the interior transmitter 30a) and an exterior transmitter 30b (associated with the interior receiver 28a). As discussed below, the exterior data link portion 28b may also include a sensor actuator, such as a magnet 36.
[0022] Each of the interior and exterior receivers 28a, 28b, and the interior and exterior transmitters 30a, 30b, may include respective electrodes 38, which may be placed on, and engage, the respective inside surface and the outside surface of the battery case 14. Specifically, the electrode 38 of the interior receiver 28a is placed opposite the electrode 30 of the exterior transmitter 30b, and the electrode 38 exterior receiver 28b is placed opposite the electrode 38 of the interior transmitter 30a. The battery case 14 as a whole, or at least the portion of the battery case 14 between the opposing electrodes 38 may be made of plastic, or such other material to properly function as a dielectric, such that the respective opposing electrodes 38 cooperatively function as a capacitor.
[0023] The data communication between the data terminal 24 and the BMS 22 over the data link 26 may be used such as to read the battery's state of health, to recalibrate measurement functions such as cell voltages and current measurements, read battery events that may be recorded by the BMS, such as temperature extremes, short circuits, operating time, charging time, and the like. The data communication may also provide a method to update BMS firmware with new firmware revisions.
[0024] One embodiment of a transmitter, which may be utilized as either or both of the interior transmitter 30a or exterior transmitter 30b, is illustrated in block diagram in
[0025] Referring to
[0026] The transmitter may use a form of amplitude modulation known as ON-OFF keying (also known as OOK). The second gate of U2 may be used as a carrier signal gate. As illustrated in
[0027] One embodiment of a receiver, which may be utilized as either or both of the interior receiver 28a or exterior receiver 26b, is illustrated in
[0028] The electrode 28 of the receiving coupling capacitor may be connected to JP3 (
[0029] The demodulator components diode D1, capacitor C6, and resistor R12 may implement an envelope detector.
[0030] A comparator, IC2, may implement a basic data slicer, which may convert the demodulated signal back into a digital compatible serial data stream. The serial output is output on pin 5 of JP1.
[0031] There may be situations in which power consumption of circuitry needs to be minimized, and the first and second transmitters 30a, 30b, and first and second receivers 28a, 28b should only be powered at certain times, such as when the data terminal 24 needs to communicate with the BMS, or other circuitry inside the battery case 14. This may be accomplished utilizing the magnetic sensor 34 and the magnet 36.
[0032]
[0033] By using the magnet 36 and associated magnetic sensor 34, the interior transmitter 30a and interior receiver 28a, should only consume power when needed. In general, power consumption of the magnetic sensor 34 is very low compared to the power consumption of the interior transmitter 30a and interior receiver 28a.
[0034] The data link 10 lay provide electrical isolation from the battery voltage when the battery cells 12 are connected in series. With electrical isolation, a data terminal can safely communicate with each of the battery cells 12 in the series connection.
[0035] There may be assorted variations of the actual serial data communication, such as carrier frequency, data rate, data format, and the size of actual metal electrodes.
[0036] One particular embodiment is illustrated in
[0037]
[0038]
[0039] In operation, the input electrode of the exterior receiver 28b may be aligned with output electrode 38 of the interior transmitter 30a inside of the battery case 14. Additionally, the output electrode 38 of the exterior transmitter 30b on the outside of the battery case 14 may be aligned with input electrode 38 of the interior receiver 28a on the inside of the battery case 14.
[0040] Utilizing a discrete electrode 38 for each of the transmitters 30a, 30b, and each of the receivers 28a, 28b, permits duplex data traffic. It is contemplated that one could use a single, shared interior electrode 38 for both the interior transmitter 30a and interior receiver 28a, and a single, shared exterior electrode 38 for both the exterior transmitter 30b and exterior receiver 28a, for half-duplex data traffic.
[0041] In the embodiment illustrated in
[0042] It is to be understood that this disclosure is not intended to limit the invention to any particular form described, but to the contrary, the invention is intended to include all modifications, alternatives and equivalents falling within the spirit and scope of the invention.