VOLTAGE BALANCING SYSTEM

DE602020058874T2Active Publication Date: 2025-09-17GLOBE (JIANGSU) CO LTD
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Patent Information

Application Number
DE602020058874
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-31
Filing Date
2020-12-16
Publication Date
2025-09-17
Estimated Expiration
2040-12-16

AI Technical Summary

Technical Problem

In battery packs with multiple cells connected in series, voltage imbalance occurs due to inconsistent power consumption of independent isolated power supplies, leading to inefficiencies in recycling and management.

Method used

A voltage balancing system with a balancing module that adjusts the connection of constant value balancing resistors or switch tubes based on current and voltage differences between high-side and low-side analog front ends, using a microcontroller to manage equalization.

Benefits of technology

The system effectively balances voltage across battery cells, reducing power consumption discrepancies and maintaining consistent cell performance.

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Description

Technical field

[0001] The present invention relates to a voltage balancing system, which belongs to a field of battery management.Background art

[0002] In current battery pack industry, in order to achieve high voltage, multiple battery cells are usually connected in series, but the number of battery cells managed by the analog front end (AFE) is limited, so two or more AFEs are used to manage them separately. When two independent AFEs are employed to monitor the battery cells, a high-end AFE needs to use an isolation chip to communicate with the MCU because of a potential difference compared with the MCU.

[0003] As shown in FIG. 1, at present, a common isolation chip on the market requires two independent isolated power supplies (VCC1, VCC2) to supply power to the isolation chip, the two independent power supplies are provided by two analog front ends (U1, U2), respectively. Because the power consumption of the isolated power supply VCC1 and VCC2 is not consistent, this causes the voltage of BAT1 to BAT(n) and BAT (n1) to BAT (2n) to gradually differ after a period of use of the entire battery pack, which is very unfavorable for the recycling of the entire battery pack.

[0004] EP 2475064 discloses a battery system and a storage system. The battery system comprises a battery comprising a plurality of battery modules, a plurality of measuring units, each comprising a plurality of primary analog front end AFE modules connected in series and a secondary analog front end AFE module connected to one of the primary AFE modules in the series. Furthermore, there is provided an isolator for providing electrical isolation between the measuring units and a processor. The isolator is connected to one of the secondary AFE modules.

[0005] In view of the above, there is a need to provide a voltage balancing system for balancing a voltage difference between two sets of battery cells.Summary of invention

[0006] The present invention provides a voltage balancing system according to claim 1.

[0007] As a further improvement of the invention, the voltage output by the high-side analog front end is defined as a first voltage, and the voltage output by the low-side analog front end is defined as a second voltage, and wherein the balancing module is a constant value balancing resistor connecting with the high-side analog front end or the low-side analog front end when a voltage difference between the first voltage and the second voltage is a constant value.

[0008] As a further improvement of the invention, a working current of the high-side analog front end is defined as a first current and a working current of the low-side analog front end is defined as a second current, and the first current and the second current remain unchanged within normal working voltage range of corresponding analog front end, and wherein when the second current is greater than the first current, the constant value balancing resistor is connected to the low-side analog front end; when the first current is greater than the second current, the constant value balancing resistor is connected to the high-side analog front end.

[0009] As a further improvement of the invention, when the second current is greater than the first current, a resistance R of the constant value balancing resistor is equal to a ratio of the second voltage to a difference between the second current and the first current; when the first current is greater than the second current, the resistance R of the constant value balancing resistor is equal to a ratio of the first voltage to the difference between the second current and the first current.

[0010] As a further improvement of the invention, the voltage output by the high-side analog front end is defined as a first voltage, and the voltage output by the low-side analog front end is defined as a second voltage, and wherein the balancing module connects to the microcontroller and consists of a balancing switch tube and a balancing resistor when a voltage difference between the first voltage and the second voltage is a non-constant value.

[0011] As a further improvement of the invention, the balancing module comprises a first balancing circuit connected to the high-side analog front end and a second balancing circuit connected to the low-side analog front end, the first balancing circuit consists of a first balancing switch tube and a first balancing resistor connecting with the first balancing switch tube, and the second balancing circuit consists of a second balancing switch tube and a second balancing resistor connecting with the second balancing switch tube.

[0012] As a further improvement of the invention, the first balancing switch tube is also respectively connected to an output end of the microcontroller and the high-side analog front end, and a switch signal of the first balancing switch tube is sent by the microcontroller; and wherein the second balancing switch tube is also respectively connected to an output end of the microcontroller and the low-side analog front end, and a switch signal of the second balancing switch tube is sent by the microcontroller.

[0013] As a further improvement of the invention, the microcontroller collects and compares sums of voltage output by the first set of battery cells and the second set of battery cells, respectively, wherein when a sum of voltage of the first set of battery cells is greater than that of the second set of battery cells, the microcontroller turns on the first balancing switch tube to start the first balancing circuit; when a sum of voltage of the second set of battery cells is greater than that of the first set of battery cells, the microcontroller turns on the second balancing switch tube to start the second balancing circuit.

[0014] As a further improvement of the invention, the microcontroller turns on the corresponding balancing circuit when voltage difference between the sum of voltage of the first set of battery cells and that of the second set of battery cells is greater than 100mv and shuts down the corresponding balancing circuit when the voltage difference between the sum of voltage of the first set of battery cells and that of the second set of battery cells is less than 20mv.

[0015] As a further improvement of the invention, further comprising a low dropout regulator connected between the battery cells and the microcontroller.

[0016] The above general description and the following detailed description are intended to be illustrative and not restrictive.Brief description of drawings

[0017] FIG. 1 is a schematic diagram showing a conventional voltage management system of battery cells. FIG. 2 is a schematic structural diagram of a voltage balancing system in accordance with a first embodiment of the present invention. FIG. 3 is a schematic structural diagram of one of the schemes shown in FIG. 1. FIG. 4 a schematic structural diagram of a voltage balancing system in accordance with a second embodiment of the present invention. Description of embodiment

[0018] The exemplary embodiment will be described in detail herein, and the embodiment is illustrated in the accompanying drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings indicate the same or similar elements. The embodiment described in the following exemplary embodiment does not represent all embodiments consistent with present invention. On the contrary, they are only examples of devices, systems, machines, and methods consistent with some aspects of the invention as detailed in the appended claims.

[0019] Reference will now be made to the drawing figures to describe the embodiments of the present disclosure in detail. In the following description, the same drawing reference numerals are used for the same elements in different drawings.

[0020] The present invention discloses a voltage balancing system, adapted for balancing controlling of voltage of battery cells in a battery pack. For the convenience and clarity of description, the following will take the battery cells including two sets of battery cells as an example for detailed description, but it should not be limited to this.

[0021] As shown in FIG. 2, the voltage balancing system comprises analog front end (AFE), microcontroller (MCU) U3, communication isolating module, low dropout regulator (LDO) U4 and balancing module 30. The LDO U4 connects between the battery cells and the microcontroller U3.

[0022] The battery cells 10 is defined to include a first set of battery cells 11 and a second set of battery cells 12, and the first set of battery cells 11 and the second of battery cells 12 connected in series. The analog front end (AFE) is arranged in parallel with the battery cells 10, and comprises a high-side analog front end U1 connected in parallel with the first set of battery cells 11 and a low-side analog front end U2 connected in parallel with the second set of battery cells 12. The high-side analog front end U1 is used to collect the analog voltage output by the first set of battery cells 11 and transmit the collected voltage to the microcontroller U3, and the low-side analog front end U2 is used to collect the analog voltage output by the second set of battery cells 11 and transmit the collected voltage to the microcontroller U3.

[0023] Preferably, the low-side analog front end U2 communicates with the microcontroller U3 through a second communication channel 22, so that when the microcontroller U3 needs to collect the analog voltage of any battery in the second set of battery cells 12, the second communication channel 22 may be used for the transmission of instructions, and the low-side analog front end U2 will quickly detect and extract the analog value of the corresponding battery after receiving such instructions. At the same time, the low-side analog front end U2 integrates therein an ADC module, so that after the low-side analog front end U2 detects the analog voltage value of the second set of battery cells 12, it could be directly converted to the digital quantity and sent to the microcontroller U3 through the second communication channel 22.

[0024] The high-side analog front end U1 communicates with the microcontroller U3 via the communication isolating module. Specifically, the communication isolating module connects between the high-side analog front end U1 and the microcontroller U3, and connects the communicating interface of the high-side analog front end U1 with the communicating interface of the microcontroller U3, so as to realize the communication between the high-side analog front end U1 and the microcontroller U3. Preferably, the high-side analog front end U1, the communication isolating module and the microcontroller U3 communicates with each other through a first communication channel 21, and the specific communicating process thereof could refer to the communicating process between the low-side analog front end U2 and the microcontroller U3. No detailed description is given here now.

[0025] The communication isolating module is powered by two separate isolated power supplies (VCC1, VCC2), and the isolated power supply VCC1 is provided by the high-side analog front end U1, the isolated power supply VCC2 is provided by the low-side analog front end U2. The balancing module 30 is arranged at a back end of the low-side analog front end U2 or the high-side analog front end U1, which is used to balance the voltage difference between the isolated power supply VCC 1 and VCC2.

[0026] The isolated power supply VCC1 can also be understood as the voltage of the first set of battery cells 11, since the high-side analog front end U1 collects the voltage value of a single battery of the first set of battery cells 11; while the isolated power supply VCC2 can also be understood as the voltage of the second set of battery cells 12, since the low-side analog front end U2 collects the voltage value of a single battery of the second set of battery cells. Therefore, the balancing module 30 can be understood as: be used to balance the voltage of the first set of battery cells 11 and the second set of battery cells 12.

[0027] As shown in FIG. 2, it is the first embodiment of the present invention. In this embodiment, the voltage output by the high-side analog front end U1 is defined as a first voltage (i.e., the isolated power supply VCC1), and the voltage output by the low-side analog front end U2 is defined as a second voltage (i.e., the isolated power supply VCC2). When the voltage difference between the first voltage and the second voltage is a constant value, the balancing module 30 is a constant value balancing resistor R connected to the high-side analog front end U1 or the low-side analog front end U2.

[0028] As shown in FIG. 3, a working current of the high-side analog front end U1 is defined as a first current I1, a working current of the low-side analog front end U2 is defined as second current I2, and the first current I1 and the second current I2 remain unchanged within the normal working voltage scope of corresponding analog front end. When the second current I2 is greater than the first current I1, the constant value balancing resistor R is connected to the low-side analog front end U2, at this time, the resistance R of the constant value balancing resistor=the second voltage / (the second current-the first current), ie. VCC2 / (I2-I1); while when the first current I1 is greater than the second current I2, the constant value balancing resistor R is connected to the high-side analog front end U1, at this time, the resistance R of the constant value balancing resistor=the first voltage / (the first current-the second current), i.e. VCC1 / (I1-I2). In this way, a purpose of balancing the operating power consumption of the isolated power supply VCC1 and VCC2 is achieved, so that the voltage of the two sets of battery cells managed by the high-side analog front end U1 and the low-side analog front end U2 are not different.

[0029] As shown in FIG. 4, it is the second embodiment of the present invention. In this embodiment, the voltage output by the high-side analog front end U1 is defined as the first voltage (i.e. isolating power supply VCC1), the voltage output by the low-side analog front end U2 is defined as the second voltage (i.e. isolating power supply VCC 2). When the voltage difference between the first voltage and the second voltage is a non-constant value, the balancing module 30 is connected to the microcontroller 3 and composed by the balancing switch tube and the balancing resistor.

[0030] Specifically, the balancing module 30 comprises a first balancing circuit A connected with the high-side analog front end U1 and a second balancing circuit B connected with the low-side analog front end U2. The first balancing circuit A is composed by a first balancing switch tube 31 and a first balancing resistor 32 connected with the first balancing switch tube 31, and the second balancing circuit B is composed by a second balancing switch tube 33 and a second balancing resistor 34 connected with the second balancing switch tube 33.

[0031] The first balancing switch tube 31 also connects to output ends of the microcontroller U3 and the high-side analog front end U1, respectively, and the switch signal of the first balancing switch tube 31 is sent from the microcontroller U3; the first balancing resistor 32 has one end thereof connected to the first balancing switch tube 31 and the other end grounded; the second balancing switch tube 33 also connects to the output ends of the microcontroller U3 and the low-side analog front end U2, and the switch signal of the second balancing switch tube 33 is sent from the microcontroller U3; the second balancing resistor 34 has one end thereof connected to the second balancing switch tube 33 and the other end grounded.

[0032] When the balancing module 30 of this embodiment is working, firstly, the microcontroller U3 collects the single battery voltage data of the first set of battery cells 11 emitted by the high-side analog front end U1, and the single battery voltage data of the second set of battery cells 12 emitted by the low-side analog front end U2; then, calculating and obtaining the voltage sum of the added-up voltage of the first set of battery cells 11 and the voltage sum of the added-up voltage of the second set of battery cells 12, respectively, and comparing the voltage sums of the two sets of battery cells; finally, when the voltage sum of the first set of battery cells 11 is greater than the voltage sum of the second set of battery cells 12, the microcontroller U3 judges and controls corresponding first balancing switch tube 31 to turn on (i.e. sending switch signals), the first balancing circuit A then starts to operate; when the voltage sum of the second set of battery cells 12 is greater than the voltage sum of the first set of battery cells 11, the microcontroller U3 judges and controls corresponding second balancing switch tube 33 to turn on (ie. sending switch signals), the second balancing circuit B then starts to operate. In this way, the voltage difference between the two sets of battery cells managed respectively by the high-side analog front end U1 and the low-side analog front end U2 is reduced.

[0033] Of course, it is not that when the sum of the voltages of the first set of battery cells 11 must be equal to the sum of the voltages of the second set of battery cells 12, the balancing module 30 does not work. Those skilled in the art can also set a preset value in advance. When the voltage difference between the two voltage sums exceeds the preset value, the microcontroller U3 will control the corresponding balancing circuit to turn on, otherwise the microcontroller U3 can always control the corresponding balancing circuit to close. For example, the microcontroller U3 controls the corresponding balancing circuit (A or B) to start when the voltage difference between the voltage sum of the first set of battery cells 11 and the voltage sum of the second set of battery cells 12 is greater than 100mv; the microcontroller U3 controls the corresponding balancing circuit (A or B) to turn off when the voltage difference between the voltage sum of the first set of battery cells 11 and the voltage sum of the second set of battery cells 12 is less than 20mv.

[0034] In summary, the voltage equalization system of the present invention is provided with a balancing module 30 at the back end of the low-side analog front end U2 or the high-side analog front end U1, so that the balancing module 30 can be used to balance the voltages of the first set of battery cells 11 and the second set of battery cells 12 according to actual situation, so as to shorten the voltage difference between the two sets of battery cells.

[0035] The above embodiment is only used to illustrate present invention and not to limits the technical solutions described in present invention. The understanding of this specification should be based on those skilled in the art, although present invention has been described in detail with reference to the above embodiment.

Claims

1. A voltage balancing system for balancing a voltage difference between two sets of battery cells (10) which battery cells (10) comprise a first set of battery cells (11) and a second set of battery cells (12) connected in series, the voltage balancing system comprising: a high-side analog front end connected to the first set of battery cells (11), a low-side analog front end connected to the second set of battery cells (12), wherein the analog front ends are employed to monitor the battery cells (10), a microcontroller (MCU) communicating with the high-side analog front end and the low-side analog front end, and a communication isolating module connected between the high-side analog front end and the microcontroller (MCU), characterized in that the communication isolating module is powered by two separate isolated power supplies (VCC1, VCC2), a first power supply (VCC1) voltage being output by the high-side analog front end, and a second power supply (VCC2) voltage being output by the low-side analog front end, wherein the voltage balancing system further comprises a balancing module (30), which is connected to the low-side analog front end or the high-side analog front end to balance the voltage difference between the first power supply (VCC1) and the second power supply (VCC2), thereby also balancing the voltage difference between the first set of battery cells (11) and the second set of battery cells (12).

2. The voltage balancing system of claim 1, wherein the voltage output by the high-side analog front end is defined as a first voltage, and the voltage output by the low-side analog front end is defined as a second voltage, and wherein the balancing module (30) is a constant value balancing resistor connecting with the high-side analog front end or the low-side analog front end when a voltage difference between the first voltage and the second voltage is a constant value.

3. The voltage balancing system of claim 2, wherein a working current of the high-side analog front end is defined as a first current and a working current of the low-side analog front end is defined as a second current, and the first current and the second current remain unchanged within normal working voltage range of corresponding analog front end, and wherein when the second current is greater than the first current, the constant value balancing resistor is connected to the low-side analog front end; when the first current is greater than the second current, the constant value balancing resistor is connected to the high-side analog front end.

4. The voltage balancing system of claim 3, wherein when the second current is greater than the first current, a resistance R of the constant value balancing resistor is equal to a ratio of the second voltage to a difference between the second current and the first current; when the first current is greater than the second current, the resistance R of the constant value balancing resistor is equal to a ratio of the first voltage to the difference between the second current and the first current.

5. The voltage balancing system of claim 1, wherein the voltage balancing system defines the voltage output by the high-side analog front end as a first voltage, and defines the voltage output by the low-side analog front end as a second voltage, and wherein the balancing module (30) connects to the microcontroller and consists of a balancing switch tube (31, 33) and a balancing resistor (32, 34) when a voltage difference between the first voltage and the second voltage is a non-constant value.

6. The voltage balancing system of claim 5, wherein the balancing module (30) comprises a first balancing circuit connected to the high-side analog front end and a second balancing circuit connected to the low-side analog front end, the first balancing circuit consists of a first balancing switch tube (31) and a first balancing resistor (32) connecting with the first balancing switch tube (31), and the second balancing circuit consists of a second balancing switch tube (33) and a second balancing resistor (34) connecting with the second balancing switch tube (33).

7. The voltage balancing system of claim 6, wherein the first balancing switch tube (31) is also respectively connected to an output end of the microcontroller and the high-side analog front end, and a switch signal of the first balancing switch tube (31) is sent by the microcontroller; and wherein the second balancing switch tube (33) is also respectively connected to an output end of the microcontroller and the low-side analog front end, and a switch signal of the second balancing switch tube (33) is sent by the microcontroller.

8. The voltage balancing system of claim 7, wherein the microcontroller collects and compares sums of voltage output by the first set of battery cells (11) and the second set of battery cells (12), respectively, wherein when a sum of voltage of the first set of battery cells (11) is greater than that of the second set of battery cells (12), the microcontroller turns on the first balancing switch tube (31) to the first balancing circuit; when a sum of voltage of the second set of battery cells is greater than that of the first set of battery cells (11), the microcontroller turns on the second balancing switch tube (33) to start the second balancing circuit.

9. The voltage balancing system of claim 8, wherein the microcontroller turns on the corresponding balancing circuit when voltage difference between the sum of voltage of the first set of battery cells (11) and that of the second set of battery cells (12) is greater than 100mv and shuts down the corresponding balancing circuit when the voltage difference between the sum of voltage of the first set of battery cells (11) and that of the second set of battery cells (12) is less than 20mv.

10. The voltage balancing system of claim 1, further comprising a low dropout regulator connected between the battery cells (10) and the microcontroller.