Power battery charging method, motor control circuit, and vehicle

The motor control circuit with a three-phase inverter and switch module adapts charging methods to voltage conditions, addressing the volume and cost issues of existing boost charging by boosting or directly charging the battery internally, ensuring efficient and cost-effective power battery charging.

JP7839853B2Active Publication Date: 2026-04-02BYD CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-11-20
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

The existing charging methods for power batteries in electric vehicles, such as direct and boost charging, result in increased device volume and cost due to the necessity of adding a boost circuit for boost charging.

Method used

A motor control circuit comprising a first switch module, a three-phase inverter, and a control module, which allows for adaptive charging methods based on voltage comparison, using the three-phase AC motor and inverter to either boost or directly charge the battery without an external boost circuit.

Benefits of technology

Enables efficient charging of power batteries regardless of the voltage of the power supply module, providing high compatibility and applicability while eliminating the need for an external boost circuit, thus reducing costs and device volume.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a power battery charging method, a motor control circuit, and a vehicle.SOLUTION: A motor control circuit includes a first switch module 102, a three-phase inverter 104, and a control module 108, and a power supply module 101, the first switch module, the three-phase inverter, and a three-phase AC motor 103 form a current circuit. The three-phase AC motor inputs or outputs a current through N wires drawn from connection points of the three-phase coils, and the control module controls the three-phase inverter such that the motor control circuit receives the voltage of the power supply module and outputs direct current. The N wires are drawn from the three-phase AC motor to form a different charging circuit together with the three-phase inverter, the three-phase AC motor, and the power battery, and when it is detected that the voltage of the power supply module is equal to or lower than the voltage of the power battery, the original three-phase inverter and the three-phase AC motor are used to boost the voltage of the power supply module and then charge the power battery.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] (Cross - reference to related applications) This disclosure is based on and claims priority to Chinese Patent Application No. 201811574168.8 filed on December 21, 2018, and all of its contents are incorporated herein by reference.

[0002] This disclosure relates to the technical field of motor control, and particularly to a charging method for a power battery, a motor control circuit, and a vehicle.

Background Art

[0003] With the development and rapid popularization of electric vehicles, the charging technology of the power batteries of electric vehicles has become increasingly important. In addition to meeting the needs of various users, the charging technology needs to satisfy the adaptability and compatibility between the power batteries of electric vehicles and charging posts.

[0004] Currently, the DC charging of power batteries is generally divided into two types: direct charging method and boost charging method. Direct charging means that the positive and negative electrodes of the charging post are directly connected to the positive and negative buses of the power battery through a contactor or relay to directly charge the battery, and there is no boost or buck circuit between the charging post and the power battery. Boost charging means adding and connecting a bidirectional buck - boost DC / DC bridge circuit to the positive and negative buses between the charging post and the power battery.

[0005] For direct charging, if the maximum output voltage of the charging post is lower than the voltage of the power battery, the charging post cannot charge the battery. For boost charging, since a boost circuit composed of a DC / DC bridge circuit, an inductor, and a corresponding control and detection circuit, etc. needs to be added separately, it increases the volume and cost of the entire device.

Summary of the Invention

[0006] This disclosure aims to provide a method for charging a power battery, a motor control circuit, and a vehicle in order to solve the problem in the prior art of increasing the overall volume and cost of the device because it is necessary to add a boost circuit when charging a power battery using a boost charging method.

[0007] The present disclosure is implemented as follows: A motor control circuit according to a first aspect of the present disclosure includes a first switch module, a three-phase inverter, and a control module, wherein a power supply module, the first switch module, the three-phase inverter, and a three-phase AC motor form a current circuit, the midpoints of the three-phase arms of the three-phase inverter are connected to the three-phase coils of the three-phase AC motor, the three-phase AC motor inputs or outputs current via N lines drawn from the connection points of the three-phase coils, the control module is connected to the three-phase inverter, the first switch module, the three-phase AC motor, and the power supply module, respectively, and the control module controls the three-phase inverter so that the motor control circuit receives the voltage from the power supply module and outputs DC.

[0008] A method for charging a power battery based on the motor control circuit described in the first aspect, relating to a second aspect of this disclosure, is: The steps include obtaining the voltage of the power supply module and the voltage of the power battery, and selecting a charging method, including a boost charging method and a direct charging method, based on the voltage of the power supply module and the voltage of the power battery. The method includes the steps of controlling the first switch module and the second switch module to turn on so that the power supply module outputs DC, and controlling the three-phase inverter so that the power supply module charges the power battery using a selected charging method.

[0009] A vehicle relating to a third aspect of this disclosure includes a motor control circuit as described in the first aspect.

[0010] This disclosure provides a method for charging a power battery, a motor control circuit and a vehicle, the motor control circuit comprising a first switch module, a three-phase inverter and a control module, the power supply module, the first switch module, the three-phase inverter and a three-phase AC motor forming a current circuit, the midpoints of the three phase arms of the three-phase inverter being connected to the three phase coils of the three-phase AC motor respectively, the three-phase AC motor inputting or outputting current via N lines drawn from the connection points of the three phase coils, the control module being connected to the three-phase inverter, the first switch module, the three-phase AC motor and the power supply module respectively, the control module controlling the three-phase inverter so that the motor control circuit receives the voltage from the power supply module and outputs DC. The technical means of this disclosure draws the N line from a three-phase AC motor and configures a different charging circuit with a three-phase inverter, a three-phase AC motor, and a power battery. When the control module detects that the maximum output voltage of the power supply module is less than or equal to the voltage of the power battery, it boosts the voltage of the power supply module using the original three-phase inverter and three-phase AC motor before charging the power battery. When the control module detects that the maximum output voltage of the power supply module is higher than the voltage of the power battery, it charges the power battery directly. This allows the power battery to be charged regardless of the voltage of the power supply module, providing high compatibility and applicability, eliminating the need to add an external boost circuit, and thus eliminating the cost of adding a circuit. [Brief explanation of the drawing]

[0011] To more clearly illustrate the technical means of the embodiments of this disclosure, the drawings necessary for describing the embodiments or the prior art will be briefly described below. Clearly, the drawings described below represent only a few embodiments of this disclosure, and those skilled in the art can obtain other drawings based on these drawings without any creative work.

[0012] [Figure 1] This is a schematic diagram of the motor control circuit according to Embodiment 1 of the present disclosure. [Figure 2] This is another schematic diagram of the motor control circuit according to Embodiment 1 of the present disclosure. [Figure 3]This is a circuit diagram of a motor control circuit according to Embodiment 1 of the present disclosure. [Figure 4] This is another circuit diagram of the motor control circuit according to Embodiment 1 of the present disclosure. [Figure 5] This is a flowchart of the charging method for a power battery according to Embodiment 2 of the present disclosure. [Figure 6] This is a current path diagram of the motor control circuit for the power battery charging method according to Embodiment 2 of the present disclosure. [Figure 7] This is another current path diagram of the motor control circuit for the power battery charging method according to Embodiment 2 of the present disclosure. [Figure 8] This is a further current path diagram of the motor control circuit for the power battery charging method according to Embodiment 2 of the present disclosure. [Modes for carrying out the invention]

[0013] To further clarify the purpose, technical solutions, and advantages of this disclosure, the disclosure will be described in more detail below with reference to the drawings and examples. The specific examples described herein are merely interpretive and not limiting of this disclosure.

[0014] To illustrate the technical means of this disclosure, specific examples will be provided below.

[0015] As shown in Figure 1, the motor control circuit according to Embodiment 1 of the present disclosure includes a first switch module 102, a three-phase inverter 104, and a control module 108. The power supply module 101, the first switch module 102, the three-phase inverter 104, and the three-phase AC motor 103 form a current circuit. The midpoints of the three phase arms of the three-phase inverter 104 are connected to the three phase coils of the three-phase AC motor 103, respectively. The three-phase AC motor 103 inputs or outputs current via N lines drawn from the connection points of the three phase coils. The control module 108 is connected to the three-phase inverter 104, the first switch module 102, the three-phase AC motor 103, and the power supply module 101, respectively. The control module 108 controls the three-phase inverter 104 so that the motor control circuit receives the voltage from the power supply module 101 and outputs DC.

[0016] The power supplied by the power supply module 101 may be in the form of a power source such as DC supplied by a DC charging post, DC rectified and output by a single-phase or three-phase AC charging post, electrical energy generated by a fuel cell, or DC rectified by a generator controller when a range extender such as an engine rotates to drive a generator to generate electricity. The first switch module 102 connects the power supply module 101 to a circuit based on a control signal, and causes the power supply module 101, the first switch module 102, the three-phase AC motor 103 and the three-phase inverter to form a current circuit. The first switch module 102 may be a switch provided on the positive and / or negative terminals of the power supply module 101 to realize on / off control of the output current of the power supply module 101. The three-phase AC motor 103 includes three phase coils connected at the midpoint and may be a permanent magnet synchronous motor or an asynchronous motor. The three-phase AC motor 103 is a three-phase four-wire system, that is, the three phase coils The three-phase inverter 104 inputs or outputs current via an N line drawn from the connection point, and includes six power switch units, the power switches may be of device type such as transistors, IGBTs, or MOS tubes, with two power switch units forming one phase arm, forming a total of three phase arms, the connection points of the two power switch units in each phase arm are connected to one phase coil of the three-phase AC motor 103, and the control module 108 can acquire the voltage, current, and temperature of the power battery 106, the phase current of the three-phase AC motor 103, and the voltage of the power supply module 101. The control module 108 includes a vehicle controller, a motor controller control circuit, and a BMS battery manager circuit, the three of which are connected by a CAN line, and the different modules of the control module 108 control the on / off of the power switches of the three-phase inverter 104 and the on / off of the first switch module 102 based on the acquired information to achieve on / off of different current circuits.

[0017] The first switch module 102 is controlled to connect the power supply module 101 to the circuit. For example, when a DC charging gun is inserted into the vehicle's DC charging inlet, the control module 108 compares the voltage of the power supply module 101 with the voltage of the charging target component, which may be a rechargeable battery. Depending on the comparison result, it selects a different charging method to charge the power battery. If the voltage of the power supply module 101 is less than or equal to the voltage of the power battery, it charges the power battery using a DC boost charging method. This allows the three-phase coils of the three-phase AC motor 103 to store electrical energy. The control module 108 controls the first switch module 102 and the second switch module 105 to turn on, and the three-phase inverter 104 controls the power supply module 101, the three-phase inverter 104, and the three-phase coils of the three-phase AC motor 103 to store inductive energy. A voltage storage circuit is formed, that is, the power supply module 101 charges the three-phase coils of the three-phase AC motor 103, and then the power supply module 101 and the three-phase coils of the three-phase AC motor 103 charge the power battery 106. At this time, the three-phase coils of the three-phase AC motor 103 also output voltage, so by superimposing the voltage output by the power supply module 101 and the voltage output by the three-phase coils, the voltage of the power supply module 101 is increased, enabling normal charging of the power battery. When the control module 108 detects that the voltage of the power supply module 101 is higher than the voltage of the power battery, the control module 108 controls the first switch module 102 to turn on, so that the external power supply charges the power battery using the three-phase AC motor 103 and the three-phase inverter 104.

[0018] In an embodiment of the present disclosure, a neutral wire is drawn from a three-phase AC motor to form different charging circuits together with a three-phase inverter, a three-phase AC motor, and a power battery. When the control module detects that the maximum output voltage of the power supply module is lower than the voltage of the power battery, the original three-phase inverter and three-phase AC motor are used to boost the voltage of the power supply module and then charge the power battery. When the control module detects that the maximum output voltage of the power supply module is higher than the voltage of the power battery, the power battery is directly charged. Thus, regardless of the level of the voltage of the power supply module, the power battery can be charged, with high compatibility and applicability, eliminating the need to add an external boost circuit and the cost associated with adding a circuit.

[0019] As shown in FIG. 2, in an embodiment of Embodiment 1 of the present disclosure, the motor control circuit further includes a second switch module 105. The three-phase inverter 104 is connected to the power battery 106 by the second switch module 105, and the second switch module 105 is connected to the control module 108.

[0020] The second switch module 105 connects the power battery 106 to the circuit or disconnects it from the circuit.

[0021] Regarding the second switch module 105, as a first embodiment, the second switch module 105 is a third switch, and the third switch is connected between the first end of the three-phase inverter 104 and the positive electrode of the power battery 106.

[0022] As a second embodiment of the second switch module 105, the second switch module 106 is a fourth switch, and the fourth switch is connected between the second end of the three-phase inverter 104 and the negative electrode of the power battery.

[0023] As a third embodiment of the second switch module 105, the second switch module 106 includes the above-mentioned third switch and fourth switch.

[0024] In the first embodiment of the first switch module, the first switch module 102 is the first switch, and the first switch is connected between the positive terminal of the power supply module 101 and the connection point of the three-phase coils of the three-phase AC motor 103.

[0025] In a second embodiment of the first switch module 102, the first switch module 102 is a second switch, and the second switch is connected between the negative terminal of the power supply module 101 and the second terminal of the three-phase inverter 104.

[0026] As a third embodiment of the first switch module 102, the first switch module 102 includes the first switch and the second switch.

[0027] The connections in this embodiment may be as follows: The first and second ends of the first switch module 102 are connected to the positive and negative terminals of the power supply module 101; the third end of the first switch module 102 is connected to the connection point of the three-phase coils of the three-phase AC motor 103; the fourth end of the first switch module 102 is connected to the second end of the three-phase inverter 104 and the second end of the second switch module 105; the first end of the three-phase inverter 104 is connected to the first end of the second switch module 105; and the third and fourth ends of the second switch module 105 are connected to the positive and negative terminals of the power battery 106.

[0028] The first switch module 102 includes a first switch and a second switch, the second switch module 105 includes a third switch and a fourth switch, the first and second ends of the first switch are the first and third ends of the first switch module 102, respectively, the first and second ends of the second switch are the second and fourth ends of the first switch module 102, respectively, the first and second ends of the third switch are the first and third ends of the second switch module 105, respectively, and the first and second ends of the fourth switch are the second and fourth ends of the second switch module 105, respectively.

[0029] Regarding the three-phase inverter 104, specifically, the three-phase inverter 104 includes a first power switch unit, a second power switch unit, a third power switch unit, a fourth power switch unit, a fifth power switch unit, and a sixth power switch unit, the control terminal of each power switch unit being connected to the control module 108, and the input terminals of the first power switch unit, the third power switch unit, and the fifth power switch unit being connected in common to form the first terminal of the three-phase inverter 104, and the second power switch unit The output terminals of the fourth power switch unit and the sixth power switch unit are connected in common to form the second terminal of the three-phase inverter 104. The first phase coil of the three-phase AC motor 103 is connected to the output terminal of the first power switch unit and the input terminal of the fourth power switch unit. The second phase coil of the three-phase AC motor 103 is connected to the output terminal of the third power switch unit and the input terminal of the sixth power switch unit. The third phase coil of the three-phase AC motor 103 is connected to the output terminal of the fifth power switch unit and the input terminal of the second power switch unit.

[0030] In the three-phase inverter 104, the first and fourth power switch units constitute the A-phase arm, the third and sixth power switch units constitute the B-phase arm, and the input terminal of the fifth power switch unit and the second power switch unit constitute the C-phase arm. The control method for the three-phase inverter 104 may be any one or a combination of several of the following. For example, by combining one, two, or three phases of any of the three-phase arms A, B, and C, a total of seven different heating control methods can be realized, which is flexible and simple.The switching of the arms is advantageous for selecting low, medium, and high power heating. For example, for low power heating, the power switch of any one phase arm is selected and controlled, and the three phase arms are switched sequentially. For example, first, phase A arm operates alone, controlling the first and fourth power switch units to perform heating for a certain period of time. Next, phase B arm operates alone, controlling the third and sixth power switch units to perform heating for the same period of time. Then, phase C arm operates alone, controlling the fifth power switch unit. The power switch unit and the second power switch unit are controlled to perform heating for the same amount of time, then the A-phase arm is switched to operate. This process is repeated to achieve sequential energization and heating of the three-phase inverter 104 and the three-phase coils, resulting in more balanced three-phase heating. For example, for medium-power heating, the power switches of any two-phase arms are selected and controlled, and the three-phase arms are switched sequentially. For example, the A and B-phase arms operate first, followed by the first power switch unit, the fourth power switch unit, the third power switch unit, and the sixth power switch unit. The coil is controlled to perform heating for a certain period of time, then the B and C phase arms operate to control the third, sixth, fifth, and second power switch units to perform heating for the same period of time, then the C and A phase arms operate to control the fifth, second, first, and fourth power switch units to perform heating for the same period of time, then the system switches back to the A and B phase arms and operates, repeating this process for the three-phase inverter 104 and the three-phase coils. The heat generation is more balanced. For example, for high-power heating, the power switch of the three-phase arm is selected and controlled. Because the three-phase circuit is theoretically balanced, the three-phase currents are balanced, achieving a balance in the heat generation of the three-phase inverter 104 and the three-phase coils. The three-phase currents are basically DC, their average values ​​are basically the same, and the three-phase windings are symmetrical. In this case, the combined three-phase magnetomotive force inside the motor is basically zero, the stator magnetic field is basically zero, the motor basically does not generate torque, and is advantageous in significantly reducing stress on the powertrain.

[0031] The technical means of this disclosure will be specifically described below with reference to a concrete circuit structure.

[0032] Figure 3 is a circuit diagram of an example of a motor control circuit of the present disclosure. For the convenience of explaining the motor control circuit, the above figure omits other electrical equipment and considers only the power battery 106, three-phase inverter 104, and three-phase AC motor 103. The first switch module 102 includes switches K1 and K2, the second switch module 105 includes switches K3 and K4, the first power switch unit of the three-phase inverter 104 includes a first upper arm VT1 and a first upper arm diode VD1, the second power switch unit includes a second lower arm VT2 and a second lower arm diode VD2, and the third power switch unit includes a third upper arm VT The third power switch unit includes a third upper arm diode VD3, the fourth power switch unit includes a fourth lower arm VT4 and a fourth lower arm diode VD4, the fifth power switch unit includes a fifth upper arm VT5 and a fifth upper arm diode VD5, and the sixth power switch unit includes a sixth lower arm VT6 and a sixth lower arm diode VD6. The three-phase AC motor 103 is a three-phase four-wire system, with an N wire drawn from the connection point of the three-phase coils and connected to switch K1. The three-phase coils are connected between the upper and lower arms of phases A, B, and C of the three-phase inverter 104, respectively, and both ends of the power battery 106 are also connected in parallel to capacitor C2.

[0033] Figure 4 is a circuit diagram of another example of the motor control circuit of the present disclosure, which differs from Figure 3 in that an inductor L1 is connected in series between switch K1 and the positive terminal of the power supply module 101, and a capacitor C1 is connected in parallel between the power supply module and switches K1 and K2. The capacitor C1 may be selected according to the relevant local charging regulations, charging protocols, etc., and the capacitance value may be adjusted as needed. Inductor L1 may be provided between capacitor C1 and switch K1.

[0034] As shown in Figure 5, the charging method for a power battery based on the motor control circuit according to Example 1, according to Example 2 of the present disclosure, includes the following steps S101 to S102.

[0035] In step S101, the voltage of the power supply module and the voltage of the power battery are obtained, and a charging method, including a boost charging method and a direct charging method, is selected based on the voltage of the power supply module and the voltage of the power battery.

[0036] In step S102, the power supply module is controlled to turn on the first switch module so that it outputs DC, and the three-phase inverter is controlled so that the power supply module charges the power battery using the selected charging method.

[0037] In the above steps, as shown in Figure 1, the execution unit is the control module 108. When the control module 108 detects that the power supply module 101 has been connected to the circuit, for example, when a charging gun is inserted into the vehicle's DC charging inlet, the control module 108 compares the voltage of the power supply module 101 with the voltage of the power battery 106, selects a different charging method according to the comparison result, and charges the power battery 106. If the maximum output voltage of the power supply module 101 is less than or equal to the voltage of the power battery 106, the power battery 106 is charged using the DC boost charging method, and the three-phase AC motor 103 Since the three-phase coils can store electrical energy, the first switch module 102 is controlled to turn on, and the power supply module 101 charges the three-phase coils of the three-phase AC motor 103. Then, the power supply module 101 and the three-phase coils of the three-phase AC motor 103 are controlled to charge the power battery 106. In the discharge process, the three-phase coils of the three-phase AC motor 104 also output voltage, so by superimposing the voltage output by the power supply module 101 and the voltage output by the three-phase coils, the power supply The voltage of the power module 101 can be boosted, enabling normal charging of the power battery 106. When the control module 108 detects that the maximum output voltage of the power supply module 101 is higher than the voltage of the power battery 106, the control module 108 controls the first switch module 102 to turn on, so that the output voltage of the power supply module 101 directly charges the power battery 106. In the embodiment of this disclosure, the N line is drawn from the three-phase coils of the three-phase AC motor to form a different charge / discharge circuit with the power battery and three-phase inverter. When the control module detects that the maximum output voltage of the power supply module is less than or equal to the voltage of the power battery, the voltage of the power supply module is boosted using the original three-phase inverter 103 and three-phase AC motor before charging the power battery. When the control module detects that the maximum output voltage of the power supply module is higher than the voltage of the power battery, the voltage of the power supply module directly charges the power battery. This allows the power battery to be charged regardless of the voltage of the power supply module, providing high compatibility and applicability, eliminating the need to add an external boost or buck circuit, and eliminating the cost of adding circuits.

[0038] Furthermore, the step of selecting the charging method based on the voltage of the power supply module and the voltage of the power battery is, The process includes the step of selecting a boost charging method when it is detected that the voltage of the power supply module is less than or equal to the voltage of the power battery.

[0039] The step of controlling the three-phase inverter so that the power supply module charges the power battery using the selected charging method is: The process includes controlling a three-phase inverter to increase the charging voltage of the power supply module and then charging the power battery, such that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process of the power battery by the three-phase coils of the power supply module and the three-phase coils of the three-phase AC motor alternate.

[0040] As one embodiment, as shown in Figure 1, the power supply module 101, the first switch module 102, the three-phase AC motor 103, and the three-phase inverter 104 constitute a charging circuit, and the power supply module 101, the first switch module 102, the three-phase AC motor 103, the three-phase inverter 104, and the power battery 106 constitute a discharge circuit.

[0041] The step of controlling the three-phase inverter so that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process of the power supply module and the three-phase coils of the three-phase AC motor to the power battery are performed alternately is as follows: The procedure includes controlling the three-phase inverter 104 to alternately turn on the charging circuit and the discharging circuit.

[0042] In this embodiment, the neutral wire is drawn from the three-phase AC motor 103 and connected to the power supply module 101 by the first switch module 102, thereby controlling the three-phase inverter 104. This enables the three-phase AC motor 103 to form a charging circuit and a discharging circuit together with the power supply module 101, the three-phase inverter 104, and the power battery 106. By controlling the charging circuit and the discharging circuit to be turned on alternately, the power battery 106 can be charged even when the voltage of the power supply module 101 is lower than or equal to the voltage of the power battery 106. This provides high compatibility and applicability, eliminates the need to add an external boost circuit, and eliminates the cost associated with adding circuits.

[0043] In one embodiment, the three-phase inverter 104 includes three phase arms, each phase arm includes two series-connected power switch units, and the three phase coils of the three-phase AC motor 103 are connected to the connection points of the two power switch units of each phase arm.

[0044] The step of controlling the three-phase inverter so that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process of the power supply module and the three-phase coils of the three-phase AC motor to the power battery are performed alternately is as follows: The procedure includes controlling the two power switch units of at least one phase arm in the three-phase inverter 104 to alternately turn on so that the charging process of the three-phase coils of the three-phase AC motor 103 by the power supply module 101 and the discharging process of the power supply module 101 and the three-phase coils of the three-phase AC motor 103 to the power battery 106 occur alternately.

[0045] Regarding the control of the three-phase inverter 104, the DC charging function can be realized by switching to different arms as needed and controlling them to turn on. For example, the arm controlled to turn on may be any one-phase, two-phase, or three-phase arm of the three-phase arms, and charging can be performed using a total of seven different switching methods.

[0046] Furthermore, the step of controlling the two power switch units of at least one phase arm in the three-phase inverter to be turned on alternately is: The process includes obtaining the number of arms on of the three-phase inverter 104 based on the power to be charged by the power battery 106, and controlling the corresponding number of arms to operate based on the number of arms on.

[0047] The number of arms to be turned on is selected based on the power to be charged from the power battery 106, and the power to be charged from the power battery 106 can be obtained according to the charging power command issued by the battery manager. Controlling the corresponding number of arms to operate means that current flows through the arms of that phase, i.e., the two power switch units of the arms of that phase are turned on alternately and participate in different current circuits. For example, for low-power boost charging, boost charging can be performed by operating any one phase arm, for medium-power boost charging, boost charging can be performed by operating any two phase arms, and for high-power boost charging, boost charging can be performed by operating all three phase arms simultaneously.

[0048] In this embodiment, based on the power to be charged to the power battery, a corresponding number of arms are operated to perform boost charging, and a corresponding control method is implemented based on the power to be charged to the power battery to improve the charging efficiency to the power battery.

[0049] In the first embodiment, the steps of obtaining the number of arms of a three-phase inverter turned on based on the power to be charged by the power battery, and controlling the corresponding number of arms to operate based on the number of arms turned on, When it is detected that the power to be charged by the power battery 106 is less than a first predetermined power, the system determines that one arm of the three-phase inverter 104 is ON, and controls it so that one of the three phase arms operates or the three phase arms are switched sequentially to operate.

[0050] When the control module 108 detects that the power to be charged by the power battery 106 is low, it can satisfy the charging requirement by controlling it to turn on one of the three-phase arms. Assuming that the three-phase arms include A-phase arms, B-phase arms, and C-phase arms, it may control the three-phase arms to always be operational, or it may control them to switch between operational phases sequentially. Switching between operational phases sequentially means that the three-phase arms operate in sequence. For example, by first operating the A-phase arm and keeping the B-phase and C-phase arms inactive, then operating the B-phase arm and keeping the A-phase and C-phase arms inactive, then operating the C-phase arm and keeping the A-phase and B-phase arms inactive, and then switching between operational phases sequentially, a balance can be achieved between the heat generation of the three-phase inverter 104 and the three-phase coils.

[0051] In a second embodiment, the steps of obtaining the number of arms of a three-phase inverter turned on based on the power to be charged by the power battery, and controlling the corresponding number of arms to operate based on the number of arms turned on, are as follows: When it is detected that the power to be charged by the power battery 106 is greater than or equal to a first predetermined power and less than a second predetermined power, it is determined that the number of ON arms of the three-phase inverter 104 is 2, and the process includes the step of controlling the three-phase inverter so that any two phase arms of the three-phase arms operate or so that three sets of two phase arms of the three-phase arms operate in sequence, wherein the three-phase inverter includes A-phase arms, B-phase arms and C-phase arms, the first set of two phase arms includes A-phase arms and B-phase arms, the second set of two phase arms includes A-phase arms and C-phase arms, and the first set of three phase arms includes B-phase arms and C-phase arms.

[0052] When the control module 108 detects that the power to be charged by the power battery 106 is greater than or equal to a first predetermined power and less than a second predetermined power, it can satisfy the charging request by controlling it to turn on two arms of the three-phase arm. Alternatively, it may control it so that any two arms of the three-phase arm are always operating, or it may control it to operate by sequentially switching between three pairs of two-phase arms of the three-phase arm. For example, the A-phase arm and the B-phase arm may be the first pair of two-phase arms, and the A-phase arm and the C-phase arm may be the second pair. By using two sets of two-phase arms, with the B-phase and C-phase arms forming a third set of two-phase arms, specifically by first controlling the operation of the first set of two-phase arms while preventing the C-phase arm from operating, then controlling the operation of the second set of two-phase arms while preventing the B-phase arm from operating, then controlling the operation of the third set of two-phase arms while preventing the A-phase arm from operating, and finally controlling the operation of the three sets of two-phase arms in sequence, it is possible to achieve a balance in heat generation between the three-phase inverter 104 and the three-phase coils.

[0053] In the second embodiment described above, if the control module detects that the power to be charged by the power battery is greater than or equal to a first predetermined power and less than a second predetermined power, it further determines that the number of ON arms of the three-phase inverter is 2, The control module 108 includes the step of transmitting PWM control signals with a 180-degree phase difference to each of the two phase arms.

[0054] To reduce the total ripple of the charging circuit, an inverter switch phase shift control method can be used. When only two phase arms need to operate, the phases of the two phase control signals transmitted to each of the two phase arms are shifted by approximately 180°. In this way, the positive and negative ripples of the two phase coils are superimposed on each other and cancel each other out, thereby significantly reducing the total ripple.

[0055] In a third embodiment, the control module obtains the number of arms on a three-phase inverter based on the power to be charged by the power battery, and controls the corresponding number of arms to operate based on the number of arms on. When the control module 108 detects that the power to be charged by the power battery 106 is equal to or greater than a second predetermined power, it determines that three arms of the three-phase inverter 104 are ON, and controls the three-phase arms to operate simultaneously.

[0056] When the control module 108 detects that the power battery 106 needs to be charged, it controls the three arms of the three-phase arm to turn on in order to satisfy the charging requirement. It controls the three arms of the three-phase arm to operate simultaneously, and because the three-phase circuit is theoretically balanced, the current output by the three-phase arm is balanced, achieving a balance in the heat generation of the three-phase inverter 104 and the three-phase coil.

[0057] In the third embodiment described above, when the control module detects that the power to be charged by the power battery is equal to or greater than a second predetermined power, it further determines that the number of ON arms of the three-phase inverter is 3, Steps include: transmitting PWM control signals with the same phase to three-phase arms; Alternatively, the method includes the step of transmitting PWM control signals with different phases to three-phase arms, wherein the phase of the PWM control signal for one phase arm is shifted by 120 degrees and -120 degrees from the phases of the PWM control signals for the other two phase arms, respectively.

[0058] To reduce the total ripple in the charging circuit, an inverter switch phase shift control method can be used. When controlling all three phase arms to operate, the three phase control signals output to the three phase arms are shifted in phase by approximately 120°. In this way, the positive and negative ripples of the three phase coils are superimposed on and cancel each other out, significantly reducing the total ripple. Furthermore, a synchronous control method can be used, where the power switches of the three phase arms are controlled simultaneously, turning on and off synchronously. In this way, the three phase currents increase simultaneously when turning on and decrease simultaneously when turning off, which is advantageous as the three phase currents tend to be more equal at any given moment. As a result, the three-phase combined magnetomotive force tends to be zero, the stator magnetic field tends to be zero, and the motor basically does not generate torque.

[0059] In the third embodiment described above, the control module 108 further acquires the current value of each phase arm when the three phase arms are operating simultaneously, and adjusts the control signals for each phase arm so that the average current value of the three phase arms is within the same predetermined current range.

[0060] In actual circuits, the three-phase circuits of the three-phase AC motor 103 and the motor controller are not always exactly the same. Therefore, during open-loop control, the three-phase currents are not necessarily equal, and the current difference can increase over time. For this reason, independent closed-loop control of the three-phase currents is necessary to control the average value of the three-phase currents within the same predetermined balance value accuracy range.

[0061] In the third embodiment described above, the control module 108 further acquires the current value of each phase arm when the three phase arms are operating simultaneously, and adjusts the control signals for each phase arm so that the current values ​​of the three phase arms are not exactly the same, and the current difference value between each pair of phase arms is smaller than a predetermined current threshold.

[0062] When performing independent closed-loop control of three phases of current, it is possible to control the current of one phase so that it is slightly larger than the currents of the other two phases, and the currents of the other two phases so that their average values ​​are equal or slightly unequal. In this way, the magnetic field generated by the three phases of current is not zero, but is very small. At this time, the motor torque is also not zero, but is very small. In a vehicle, this results in the motor rotating shaft outputting a small torque, which is advantageous in engaging the gear gap and reducing jitter and noise caused by torque fluctuations. The magnitude of the current and the magnitude of the output torque can be determined by controlling the magnitude of the three phases of current as needed.

[0063] In one embodiment, the charging circuit and the discharging circuit can be controlled to be turned on alternately in the following manner: The control module 108 outputs a PWM control signal to the three-phase inverter 104 to turn on the charging circuit and the discharging circuit alternately, obtains the power to be charged from the power battery 106, obtains the corresponding current based on the power to be charged, compares the actual charging current to the power battery 106 with the corresponding current obtained based on the power to be charged, and adjusts the duty cycle of the PWM control signal according to the comparison result to adjust the current output to the power battery 106.

[0064] The control module 108 receives the power to be charged transmitted by the battery manager, obtains the current corresponding to the power to be charged, compares the charging current for charging the power battery 106 with the current corresponding to the power to be charged, and adjusts the PWM on duty cycle to increase if the charging current is less than the current value corresponding to the required charging power, and adjusts the PWM on duty cycle to decrease if the charging current is greater than the current value corresponding to the required charging power, thereby satisfying the charging power.

[0065] The technical means of this disclosure will be specifically explained below with reference to the specific circuit structure shown in Figure 3.

[0066] The control steps of the control module 108 specifically include the following steps 1 to 5.

[0067] In step 1, the control module 108 controls switches K1, K2, and K3 to close.

[0068] As shown in Figure 6, in step 2, the control module 108 transmits a PWM control signal to the three-phase inverter 104. During the ON period of each PWM control signal cycle, the control module 108 controls the three-phase inverter 104 to turn on the fourth lower arm VT4 of phase A, turn off the switch for the first upper arm VT1, and turn off all the upper and lower arm power switches of the other two phases, B and C. At this time, the phase A coil turns on, the current increases, and the inductor begins to store energy. The voltage of the phase A inductor is positive at the right end and negative at the left end, while the voltages of the phase B and C inductors are the opposite of those of phase A.

[0069] As shown in Figure 7, in step 3, during the off period in each PWM control signal cycle, the control module 108 controls the four lower arm VT4 of phase A of the three-phase inverter 104 to turn off, the first upper arm VT1 to turn on, and the other two phase upper and lower arm power switches of phases B and C to turn off. The phase A current flows through the upper arm diode and commutates, the inductor begins to discharge, and the current decreases. At this time, the voltage of the phase A inductor is positive at the left end and negative at the right end, and the voltages of the phase B and C inductors are the opposite of the phase A voltage. By superimposing the voltage of the phase A inductor and the voltage of the power supply module 101, the voltage is boosted and the battery is charged.

[0070] In step 4, the control module 108 acquires the battery charging current and adjusts the PWM on-duty ratio to increase if the current is less than the current value corresponding to the required charging power, and adjusts the PWM on-duty ratio to decrease if the current is greater than the current value corresponding to the required charging power, thereby satisfying the charging power. It also detects the three-phase current of the motor, which helps in overcurrent and overtemperature control.

[0071] In step 5, steps 2-4 are repeated before the battery is fully charged. Once the battery is fully charged, the control detection circuit turns off switches K1, K2, K3, and K4.

[0072] For ease of understanding, Figures 6 and 7 both show arrows indicating the direction of current flow during the energy storage and discharge stages. These two figures only show a switching method that achieves charging using the A-phase arm and A-phase coil. If necessary, it may be switched to a method that achieves charging using one phase of either the B or C-phase arm and one phase of either the B or C-phase coil, a method that achieves charging using any two-phase arm and any two-phase coil, or a charging control method in which the three-phase coils of the three-phase arm operate simultaneously.

[0073] Assuming that the maximum output voltage of the DC charging post is higher than the voltage of the power battery 106, in a specific implementation, Figure 8 is a schematic circuit diagram of one embodiment of the motor control circuit of the present disclosure, the connection method being identical to that of Figure 3, and during direct charging, the three-phase coils are naturally turned on via the upper arm diode of the three-phase inverter 104 to form a three-phase charging current. Therefore, such a charging method cannot achieve switching between the different arms and coils of the three phases, as in boost charging. In a specific implementation, to realize the direct charging method, as shown in Figure 8, the control steps specifically include the following steps 1 to 4.

[0074] In step 1, the control module 108 controls all six power switches of the three-phase inverter 104 to be turned off.

[0075] In step 2, the control module 108 controls switches K1, K2, K3, and K4 to close, the power supply module 101 starts supplying power, and the three phase coils of the three-phase AC motor 103 and the upper arm diodes of the three-phase inverter 104 start charging the power battery 106. The magnitude of the charging current is controlled by the control module 108 transmitting the charging power or charging current to the DC charging post.

[0076] In step 3, the control module 108 acquires the battery charging current and the three-phase current of the motor to perform overcurrent and overtemperature control during the charging process.

[0077] In step 4, steps 2 and 3 are repeated until the power battery is fully charged. Once the power battery is fully charged, the control module 108 turns off switches K1, K2, K3, and K4.

[0078] To facilitate understanding, arrows indicating the direction of current flow are shown in Figure 8. Since the three phase currents are DC and their average values ​​are essentially the same, the three phase heat generation of the motor and inverter is essentially the same. Furthermore, the three phase windings are symmetrical, and in this case the combined three phase magnetomotive force inside the motor is essentially zero. As a result, the stator magnetic field is essentially zero, the motor essentially generates no torque, which is advantageous for significantly reducing stress on the powertrain.

[0079] The DC charging method for power batteries, corresponding systems, and apparatus described herein can be applied to the embodiments described above, but are not limited thereto, and can be applied to electric vehicles, plug-in hybrid cars, and other vehicle types.

[0080] The vehicle according to Embodiment 3 of this disclosure includes the motor control circuit according to the above embodiment.

[0081] The above embodiments are for illustrative purposes only and not limiting purposes, and the disclosure has been described in detail with reference to the above embodiments. However, it should be understood by those skilled in the art that the means described in the above embodiments can still be modified or some of their technical features can be replaced with equivalents, and such modifications or replacements will not cause the essence of the corresponding means to deviate from the spirit and scope of the means relating to each embodiment of the disclosure, and will all fall within the scope of protection of the disclosure.

Claims

1. A motor control circuit, comprising a first switch module, a three-phase inverter, and a control module, The power supply module, the first switch module, the three-phase inverter, and the three-phase AC motor form a current circuit, and the midpoints of the three phase arms of the three-phase inverter are connected to the three phase coils of the three-phase AC motor, respectively. The three-phase AC motor inputs or outputs current via the N line drawn from the connection point of the three-phase coils. The control module is connected to the three-phase inverter, the first switch module, the three-phase AC motor, and the power supply module, respectively. The control module controls the three-phase inverter so that the motor control circuit receives the voltage from the power supply module and outputs DC. The power supply module, the first switch module, the three-phase AC motor, and the three-phase inverter constitute a charging circuit, and the power supply module, the first switch module, the three-phase AC motor, the three-phase inverter, and the power battery constitute a discharge circuit. The three-phase inverter is controlled so that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process of the power battery by the power supply module and the three-phase coils of the three-phase AC motor are performed alternately, thereby increasing the charging voltage of the power supply module before charging the power battery. The step of controlling the three-phase inverter so that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process to the power battery by the power supply module and the three-phase coils of the three-phase AC motor are performed alternately, The process includes controlling the two power switch units of at least one phase arm in the three-phase inverter to alternately turn on so that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process of the power battery by the power supply module and the three-phase coils of the three-phase AC motor occur alternately. The step of controlling the three-phase inverter so that the charging process of the three-phase coils of the three-phase AC motor by the power supply module and the discharging process of the power battery by the power supply module and the three-phase coils of the three-phase AC motor are performed alternately, The step includes controlling the three-phase inverter to alternately turn on the charging circuit and the discharging circuit, Each phase arm of the three-phase inverter includes two series-connected power switch units, and the three-phase coils of the three-phase AC motor are connected to the connection points of the two power switch units of each phase arm, respectively. The step of controlling two power switch units of at least one phase arm in the three-phase inverter to alternately turn on is: A motor control circuit comprising the steps of obtaining the number of arms of the three-phase inverter turned on based on the power to be charged by the power battery, and controlling the corresponding number of arms to operate based on the number of arms turned on.

2. The system further includes a second switch module, wherein the three-phase inverter is connected to the power battery by the second switch module, and the second switch module is connected to the control module. The motor control circuit according to claim 1, which controls the first switch module to turn on so that the power supply module outputs DC, and controls the three-phase inverter so that the power supply module charges the power battery using a selected charging method.

3. The motor control circuit according to claim 2, wherein the first and second ends of the first switch module are connected to the positive and negative terminals of the power supply module, the third end of the first switch module is connected to the connection point of the three-phase coils of the three-phase AC motor, the fourth end of the first switch module is connected to the second end of the three-phase inverter and the second end of the second switch module, the first end of the three-phase inverter is connected to the first end of the second switch module, and the third and fourth ends of the second switch module are connected to the positive and negative terminals of the power battery.

4. The motor control circuit according to claim 3, wherein the first switch module includes a first switch and a second switch, the second switch module includes a third switch and a fourth switch, the first and second ends of the first switch are the first and third ends of the first switch module, respectively, the first and second ends of the second switch are the second and fourth ends of the first switch module, respectively, the first and second ends of the third switch are the first and third ends of the second switch module, respectively, and the first and second ends of the fourth switch are the second and fourth ends of the second switch module, respectively.

5. The first switch module is the first switch, and the first switch is connected between the positive terminal of the power supply module and the connection point of the three-phase coils of the three-phase AC motor. Alternatively, the first switch module may be a second switch, and the second switch may be connected between the negative terminal of the power supply module and the second terminal of the three-phase inverter. The motor control circuit according to claim 1, which controls the first switch module to turn on so that the power supply module outputs DC, and controls the three-phase inverter so that the power supply module charges the power battery using a selected charging method.

6. The second switch module is a third switch, and the third switch is connected between the first terminal of the three-phase inverter and the positive terminal of the power battery. Alternatively, the motor control circuit according to claim 2, wherein the second switch module is a fourth switch, and the fourth switch is connected between the second terminal of the three-phase inverter and the negative terminal of the power battery.

7. A method for charging a power battery based on the motor control circuit described in claim 1, The steps include obtaining the voltage of the power supply module and the voltage of the power battery, and selecting a charging method, including a boost charging method and a direct charging method, based on the voltage of the power supply module and the voltage of the power battery. A method for charging a power battery, comprising the steps of controlling the first switch module to turn on the power supply module so that it outputs DC, and controlling the three-phase inverter so that the power supply module charges the power battery using a selected charging method.

8. The step of selecting a charging method based on the voltage of the power supply module and the voltage of the power battery is: A method for charging a power battery according to claim 7, further comprising the step of selecting a boost charging method when it is detected that the maximum output voltage of the power supply module is less than or equal to the voltage of the power battery.

9. The step of obtaining the number of arms of the three-phase inverter turned on based on the power to be charged by the power battery, and controlling the corresponding number of arms to operate based on the number of arms turned on, A method for charging a power battery according to claim 7, comprising the step of: when the control module detects that the power to be charged to the power battery is less than a first predetermined power, it determines that one arm of the three-phase inverter is ON, and controls the inverter to operate either one of the three phase arms or to switch the three phase arms sequentially.

10. The step of obtaining the number of arms of the three-phase inverter turned on based on the power to be charged by the power battery, and controlling the corresponding number of arms to operate based on the number of arms turned on, The method for charging a power battery according to claim 9, wherein when the control module detects that the power to be charged to the power battery is greater than or equal to a first predetermined power and less than a second predetermined power, it determines that the number of ON arms of the three-phase inverter is 2, and controls the inverter so that any two of the three phase arms operate or three sets of two phase arms operate in sequence, wherein the three-phase inverter includes A phase arm, B phase arm and C phase arm, the first set of two phase arms includes A phase arm and B phase arm, the second set of two phase arms includes A phase arm and C phase arm, and the third set of two phase arms includes B phase arm and C phase arm.

11. When the control module detects that the power to be charged by the power battery is greater than or equal to a first predetermined power and less than a second predetermined power, it determines that the number of ON arms of the three-phase inverter is 2, and then, A method for charging a power battery according to claim 10, comprising the step of the control module transmitting PWM control signals having a phase difference of 180 degrees to each of the two phase arms.

12. The control module obtains the number of arms on the three-phase inverter based on the power to be charged by the power battery, and controls the corresponding number of arms to operate based on the number of arms on. A method for charging a power battery according to any one of claims 7 to 11, comprising the step of: when the control module detects that the power to be charged to the power battery is equal to or greater than a second predetermined power, it determines that the number of ON arms of the three-phase inverter is three, and controls the three-phase arms to operate simultaneously.

13. When the control module detects that the power to be charged by the power battery is equal to or greater than a second predetermined power, it determines that three arms of the three-phase inverter are ON, and then, The step of transmitting a PWM control signal with the same phase to a three-phase arm, Alternatively, the method for charging a power battery according to claim 12, comprising the step of transmitting PWM control signals with different phases to three-phase arms, wherein the phase of the PWM control signal of one-phase arm is shifted by 120 degrees and -120 degrees from the phase of the PWM control signals of the other two-phase arms, respectively.

14. A vehicle comprising a motor control circuit according to any one of claims 1 to 6.

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