The microprocessor 114 controls the switches 104_1-104_N for cell balancing. The microprocessor 114 also controls the analog multiplexer 110 for channel selection, e.g., it selects positive terminals of the battery cells 106_1-106_N by turning on the switches 108_1-108_N. The ND converter 112 receives terminal voltages at those positive terminals of the selected battery cells and generates corresponding digital information. The microprocessor 114 reads the digital information from the ND converter 112, calculates the cell voltages of the battery cells 106 _1-106 _N according to the digital information, and compares the cell voltages with a predetermined level denoting a specific state of charge to determine the states of the battery cells 106_1-106_N. The microprocessor 114 also determines the voltage differences between the cell voltages and compares the voltage differences with a reference level to ascertain if there is a need to balance the battery pack. By way of example, the microprocessor 114 determines which cell of the battery cells 106_1-106_N has the highest voltage, and turns on a corresponding switch of the switches 104_1-104_N to bleed off charge from that cell. Thus, the cells in the battery pack can be balanced. However, the above method is a resource-intensive process that requires an ND converter 112 to convert the cell voltages to digital signals, and a microprocessor 114 to read the digital signals and make a determination of which cells to balance and when. This method is relatively complex and expensive to implement.
In one embodiment, a cell balancing system includes comparators coupled to battery cells. The Kth comparator compares a cell voltage for the Kth battery cell with a reference threshold. A result of the comparison includes information useful for identifying a subset of the battery cells that have reached the reference threshold. The cell balancing system also includes a controlling logic circuit, coupled to the comparators, that selects a battery cell from the subset of the battery cells and turns on a corresponding switch to discharge the selected battery cell.
Features and advantages of embodiments of the claimed subject matter will become apparent as the following detailed description proceeds, and upon reference to the drawings, wherein like numerals depict like parts, and in which:
Reference will now be made in detail to the embodiments of the present invention. While the invention will be described in conjunction with these embodiments, it will be understood that they are not intended to limit the invention to these embodiments. On the contrary, the invention is intended to cover alternatives, modifications and equivalents, which may be included within the spirit and scope of the invention as defined by the appended claims.
Furthermore, in the following detailed description of the present invention, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be recognized by one of ordinary skill in the art that the present invention may be practiced without these specific details. In other instances, well known methods, procedures, components, and circuits have not been described in detail as not to unnecessarily obscure aspects of the present invention.
In one embodiment, a cell balancing system includes multiple comparators for making a measurement of battery cells. Each of the comparators compares a cell voltage of a cell of the battery cells with a reference threshold and generates comparison information. The cell balancing system also includes a controlling logic circuit for controlling multiple switches coupled to the battery cells, so that the battery cells can reach substantially the same voltage. By way of example, the controlling logic circuit selects a cell of the battery cells that reaches the reference threshold based on the comparison information, and turns on a corresponding switch to discharge the selected cell. Thus, the battery pack can achieve a balance condition. Advantageously, compared with the conventional cell balancing system in
As shown in
In one embodiment, the reference resistors 212_1-212_N are coupled to each other in series and have substantially the same impedance. Therefore, the respective voltages V212
In one embodiment, the Kth comparator 208_K (K=1, 2, . . . , N−1) compares the cell voltage V206
Additionally, the detecting circuit 218 with a reference threshold V′TH is used to detect the voltage of the battery cell 206_N. The reference threshold V′TH can be equal to or slightly greater than the reference threshold VTH mentioned above. Similar to the comparators 208_1-208_M (M=N−1), if the voltage of the battery cell 206_N is greater than the reference threshold V′TH, then the detecting circuit 218 generates a control signal, e.g., a logic high signal, to the controlling logic circuit 210, such that the controlling logic circuit 210 turns on the corresponding switch 204_N to discharge the battery cell 206_N for a period of time. The battery cell 206_N is discharged through the load resistor 202_N and the voltage of the battery cell 206_N decreases.
In one embodiment, if a subset of the battery cells 206_1-206_M (where a subset includes one or more battery cells) have reached the reference threshold VTH, then a corresponding subset of the comparators 208_1-208_M (M=N−1) can output logic high signals in parallel. In one such embodiment, the controlling logic circuit 210 randomly selects a battery cell from the subset of the battery cells 206_1-206_M, and turns on the corresponding switch 204_1-204_M to discharge the selected battery cell.
In one embodiment, the cell balancing system 200 alternates between a measure mode and a balance mode. By way of example, the cell balancing system 200 includes timer circuitry (not shown). When the cell balancing system 200 enters the measure mode, the timer circuitry starts to measure time. The cell balancing system 200 operates in the measure mode for a first predetermined duration (hereinafter, measure duration). When the measure duration is expired, the timer circuitry generates a trigger signal and restarts to measure time. In response to the trigger signal, the cell balancing system 200 enters the balance mode. The cell balancing system 200 operates in the balance mode for a second predetermined duration (hereinafter, balance duration). When the balance duration is expired, the timer circuitry generates another trigger signal and restarts to measure time. In response to this trigger signal, the cell balancing system 200 enters the measure mode again.
In operation, in one embodiment, the cell balancing system 200 operates for the measure duration and the balance duration alternately. In the measure duration, the comparators 208_1-208_M (M=N−1) compare the cell voltages of battery cells 206_1-206_M (M=N−1) with the reference thresholds VTH, e.g., the voltages V212
When the balance duration is expired, the cell balancing system 200 enters a new measure duration, and the switch 204—f (f=1, 2, . . . , N−1) and/or the switch 204_N are turned off. By operating in the measure duration and the balance duration alternately, the battery cells 206_1-206_N can reach substantially the same voltage, and the battery pack can achieve a balance condition. As used herein, “substantially the same” means that a difference between the voltages of the battery cells 206— 1-206 _N is permissible so long as the difference is relatively small and can be ignored.
In operation in another embodiment, in the measure duration, the controlling logic circuit 210 receives the output signals from the comparators 208_1-208_M (M=N−1) and determines which comparator outputs a logic high signal at the end of the measure duration, e.g., to determine which battery cell 206_1-206_M (M=N−1) has a cell voltage greater than the reference threshold VTH at the end of the measure duration. In the measure duration, the controlling logic circuit 210 also receives the output signal from the detecting circuit 218, and determines whether the cell voltage of the battery cell 206_N is greater than the reference threshold V′TH at the end of the measure duration.
At the end of the measure duration, the controlling logic circuit 210 identifies a subset of the battery cells 206_1-206_M that have reached the reference threshold VTH. If the subset of the battery cells 206_1-206_M includes only one battery cell—e.g., if the cell voltage of a battery cell 206—a (a=1, 2, . . . , N−1) is greater than the reference threshold VTH and the voltages of the rest of the battery cells 206_1-206_(N−1) are not greater than the reference threshold VTH, then the battery cell 206—a is selected to be discharged during the balance duration following the measure duration. If the subset of the battery cells 206_1-206_M includes multiple battery cells—e.g., if cell voltages of two or more battery cells are greater than the reference threshold VTH—then one battery cell in the multiple battery cells is, in one embodiment, randomly chosen to be discharged during the balance duration; however, other means may be used to select a battery cell to be discharged. Additionally, if the cell voltage of the battery cell 206_N is greater than the reference threshold V′TH, the battery cell 206_N can be discharged during the balance duration. By operating in the measure duration and the balance duration alternately, the battery cells 206_1-206_N can have substantially the same cell voltage, e.g., the battery pack including the battery cells 206_1-206_N is balanced.
Furthermore, in one embodiment, the balancing process mentioned above is also suited to the battery cells when the battery cells are discharging, e.g., the balancing process when charging the battery cells is similar to the balancing process when discharging the battery cells.
In one embodiment, the reference threshold VTH increases if an average level VAVE of the cell voltages of the battery cells 206_1-206_N increases, or decreases if the average level VAVE decreases. Moreover, the reference threshold VTH can be less than the average level VAVE of the battery voltages. By way of example, the reference resistors 212_1-212_N receive power from the battery cells 206_1-206_N through a resistor 216. Thus, the voltages across the reference resistors 212_1-212_N increase as the average level VAVE of the battery voltages increases, or decrease as the average level VAVE decreases, and the voltage across each reference resistor 212_1-212_N, e.g., the reference threshold VTH, is less than the average level VAVE of the battery voltages. Advantageously, since the reference threshold VTH is less than the average level VAVE of the battery voltages, the cell balancing system can start the balancing process at an early stage. Furthermore, since the reference threshold VTH can vary as the average level VAVE of the cell voltages of the battery cells 206_1-206_N varies, the balancing process of the battery cells 206_1-206_N is more stable.
Although, in the example of
Advantageously, a balanced condition does not need to be determined or established since this operation is a self-regulating process. Furthermore, the circuit structure of the cell balancing system 200 is simpler compared with that of the conventional cell balancing system 100. Due to its simpler circuit structure, the cell balancing process can be implemented less expensively and more easily.
In one embodiment, the reference threshold VTH is provided by a set of series-coupled reference resistors, e.g., the reference resistors 212_1-212_4 in
In one embodiment, the controlling logic circuit 210 detects the status of the battery cells during each measure duration. In the example of
In another embodiment, the controlling logic circuit 210 detects the status of the battery cells at the end of each measure duration. In the example of
In block 402, comparator circuitry, e.g., including the comparators 208_1-208_M, compares the cell voltages of the battery cells 206_1-206_M with reference thresholds VTH, e.g., the voltages V212
In block 404, the controlling logic circuit 210 identifies a subset (including one or more battery cells) of the battery cells 206_1-206_M that have reached a corresponding subset of the reference thresholds VTH. By way of example, if the controlling logic circuit 210 detects that the battery cell 206_2 has reached the voltage V212
In block 406, the controlling logic circuit 210 selects a battery cell from the identified subset of the battery cells 206_1-206_M. In one embodiment, the controlling logic circuit 210 selects the battery cell in the battery cells 206_1-206_M that first reaches the reference threshold VTH. In another embodiment, the controlling logic circuit 210 randomly selects a battery cell from the battery cells in the subset.
In block 408, the controlling logic circuit 210 can turn on a corresponding switch 204_1-204_M to discharge the selected battery cell.
In summary, embodiments according to the present invention provide cell balancing systems. In one embodiment, a cell balancing system includes multiple comparators for making a measurement of battery cells by comparing cell voltages with a reference threshold. The cell balancing system also includes a controlling logic circuit for controlling multiple switches coupled to the battery cells, so that all the battery cells can reach substantially the same voltage. By way of example, the controlling logic circuit turns on a corresponding switch to discharge a battery cell that reaches the reference threshold. The cell balancing system operates in a measure duration and a balance duration alternately. In this way, the battery cells can reach substantially the same voltage, and the battery pack can achieve a balance condition. Advantageously, a determination of a balanced condition is not needed since this operation is a self-regulating process. Furthermore, compared with the conventional cell balancing system in
While the foregoing description and drawings represent embodiments of the present invention, it will be understood that various additions, modifications and substitutions may be made therein without departing from the spirit and scope of the principles of the present invention as defined in the accompanying claims. One skilled in the art will appreciate that the invention may be used with many modifications of form, structure, arrangement, proportions, materials, elements, and components and otherwise, used in the practice of the invention, which are particularly adapted to specific environments and operative requirements without departing from the principles of the present invention. The presently disclosed embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims and their legal equivalents, and not limited to the foregoing description.
The present application claims priority to the U.S. provisional application filed on Sep. 2, 2011, Ser. No. 61/530,751, hereby incorporated by reference in its entirety.
Number | Date | Country | |
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61530751 | Sep 2011 | US |