Charging device

The charging device addresses current ripples by using a control unit to adjust PWM duty ratios based on current fluctuations, ensuring stable charging currents and reducing capacitor requirements.

JP7758000B2Active Publication Date: 2025-10-22TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2023028533
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-02-27
Publication Date
2025-10-22
Estimated Expiration
2043-02-27

AI Technical Summary

Technical Problem

Existing power conversion devices for electric vehicles experience ripples in output current due to dead time and delays in switching operations of switch circuits driven by PWM signals, leading to fluctuations in the charging current.

Method used

A charging device with multiple legs and a control unit that monitors current fluctuations using a sensor and adjusts the duty ratio of PWM signals based on these fluctuations to suppress current variations, employing a sampling period other than 1/N of the carrier period to accurately detect and control the duty ratio.

Benefits of technology

The solution effectively suppresses current fluctuations during charging, reducing ripple and allowing for efficient charging with various voltage sources, and potentially decreasing capacitor capacity.

✦ Generated by Eureka AI based on patent content.

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Abstract

To suppress fluctuations of current for charging a power storage device mounted on a vehicle.SOLUTION: A charging device according to the present invention includes: a plurality of legs in each of which an upper arm having a switching element and a lower arm having a switching element are connected in series, the upper arm is connected to a power storage device mounted on a vehicle, and the lower arm is connected to a negative electrode of a DC charger; a motor having three-phase coils each connected between the upper arm and the lower arm of the corresponding leg and having a neutral point connected to a positive electrode of the charger; a driving unit that drives the switching elements by using PWM signals; and a control unit that monitors a measurement result obtained by a sensor measuring current flowing from the plurality of legs to the power storage device, and gives, to the driving unit, an instruction on a duty ratio of the PWM signal to narrow a fluctuation range of the current on the basis of the monitored fluctuation range. The control unit monitors the measurement result of the sensor at a period other than 1 / N of a period of the PWM signals, where N is a number of the plurality of legs that are used for charging the power storage device.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a charging device. [Background technology]

[0002] Patent Document 1 discloses a power conversion device as an invention related to charging electric vehicles. This power conversion device has three switch circuits, a reactor, an input smoothing capacitor, and an output smoothing capacitor. The power conversion device operates the three switch circuits as a two-phase or three-phase interleaved circuit to step down the input voltage and charge an on-board power storage device. The switch circuits for each phase are composed of upper and lower arm semiconductor switches, each driven by a PWM (Pulse Width Modulation) signal. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2018-93608 Summary of the Invention [Problem to be solved by the invention]

[0004] In an interleaved circuit, switching operations are performed by PWM signals in the switch circuits of each phase, which causes ripples in the output current. In the power conversion device disclosed in Patent Document 1, the duty ratio of the PWM signal is set to a predetermined duty ratio in accordance with the number of phases in the interleaved circuit in order to suppress ripples, but when driven by a PWM signal, there is a dead time and delays in turning on and off the switch circuits, so the output PWM signal may not have the predetermined duty ratio, causing ripples.

[0005] The present invention has been made in view of the above, and has an object to suppress fluctuations in the current that charges an electric storage device mounted on a vehicle. [Means for solving the problem]

[0006] The charging device of the present invention comprises a plurality of legs in which an upper arm having a switching element and a lower arm having a switching element are connected in series, the upper arm being connected to a storage device mounted on a vehicle and the lower arm being connected to the negative electrode of a DC charger, a motor in which each of the coils of each of the three phases is connected midway between the upper arm and the lower arm of the corresponding leg and the neutral point is connected to the positive electrode of the charger, a drive unit that drives the switching element with a PWM signal, and a control unit that monitors the measurement results of a sensor that measures the current flowing from the plurality of legs to the storage device and instructs the drive unit to change the duty ratio of the PWM signal so that the fluctuation range is reduced based on the fluctuation range of the monitored current, where N is the number of legs used to charge the storage device, and the control unit monitors the measurement results of the sensor at a period other than 1 / N of the carrier period of the PWM signal.

[0007] This makes it possible to reliably monitor fluctuations in the current flowing through the power storage device and control the duty ratio of the PWM signal based on the current fluctuations, thereby suppressing fluctuations in the current used to charge the power storage device installed in the vehicle.

[0008] In the above, the motor may be a motor that drives drive wheels of the vehicle.

[0009] This allows the motor to drive the drive wheels and the charger to charge the power storage device.

[0010] In the above, the number of legs used in charging the power storage device may be determined based on the voltage of the charging device and the voltage of the power storage device.

[0011] This allows the power storage device to be charged by chargers with various voltages. [Effects of the Invention]

[0012] The charging device according to the present invention has an effect of suppressing fluctuations in the current that charges the power storage device mounted on the vehicle. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 1 is a block diagram showing the configuration of a charging device 10 according to an embodiment. [Figure 2] FIG. 2 is a block diagram showing the configuration of the control unit. [Figure 3] FIG. 3 is a flowchart showing the flow of processing executed by the control unit. [Figure 4] FIG. 4 is a diagram showing an example of waveforms of a carrier, a PWM signal, a phase current, and a charging current. [Figure 5] FIG. 5 is a diagram showing an example of waveforms of a carrier, a PWM signal, a phase current, and a charging current. DETAILED DESCRIPTION OF THE INVENTION

[0014] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will be described in detail below with reference to the accompanying drawings. However, the present invention is not limited to the following embodiments.

[0015] [Embodiment] FIG. 1 is a block diagram showing the configuration of a charging device 10 according to an embodiment of the present invention. The charging device 10 is mounted on, for example, an electric vehicle (BEV: Battery Electric Vehicle). The electric vehicle is equipped with a secondary battery 2 that can be charged and discharged. The secondary battery 2 is an electricity storage device that supplies power to a motor 14 that drives the drive wheels of the electric vehicle. The charging device 10 is connected to a rapid charger 1 installed at a charging station for electric vehicles, and charges the secondary battery 2 with power supplied as direct current from the rapid charger 1.

[0016] The charging device 10 includes legs 10u, 10v, and 10w, a motor 14, a current sensor 20, a drive circuit 30, a control unit 40, and capacitors C1 and C2. In the charging device 10, a first power line L1 is connected to the positive electrode of a connector of the quick charger 1, and a second power line L2 is connected to the negative electrode of the connector of the quick charger 1. One end of the capacitor C1 is connected to the first power line L1, and the other end of the capacitor C1 is connected to the second power line L2.

[0017] The motor 14 is a three-phase motor that serves as a power source for driving the drive wheels of the electric vehicle. The motor 14 includes stator coils 141, 142, and 143 that function as reactors. When the secondary battery 2 is charged by the rapid charger 1, the stator coils 141, 142, and 143 store and release electrical energy supplied from the rapid charger 1. One end of each of the stator coils 141, 142, and 143 is connected to a neutral point NP. The other end of the stator coil 141 is connected to the leg 10u, the other end of the stator coil 142 is connected to the leg 10v, and the other end of the stator coil 143 is connected to the leg 10w. The neutral point NP is also connected to the first power line L1.

[0018] Legs 10u, 10v, and 10w are circuits for boosting the voltage applied from the rapid charger 1, and control the accumulation of electrical energy from the rapid charger 1 to the stator coils 141, 142, and 143 and the release of electrical energy from the stator coils 141, 142, and 143. Legs 10u, 10v, and 10w are provided in parallel between a third power line L3 connected to the positive electrode of the secondary battery 2 and a second power line L2 connected to the negative electrode of the secondary battery 2.

[0019] The pair of leg 10u and stator coil 141, the pair of leg 10v and stator coil 142, and the pair of leg 10w and stator coil 143 each function as a power conversion circuit that performs single-phase power conversion. The legs 10u, 10v, and 10w are driven by PWM signals supplied from a drive circuit 30. Interleaved power conversion can be performed by shifting the phases of the PWM signals that drive the legs 10u, 10v, and 10w. When PWM signals are supplied to the legs 10u, 10v, and 10w with a phase difference of 120 degrees, the legs 10u, 10v, and 10w function as a three-phase interleaved circuit. When one of the legs 10u, 10v, and 10w is stopped and PWM signals are supplied to the remaining two with a phase difference of 180 degrees, the legs 10u, 10v, and 10w function as a two-phase interleaved circuit.

[0020] The leg 10u has an upper arm 11u and a lower arm 11d. In the upper arm 11u, a switching element T1u and a diode D1u are connected in parallel, and in the lower arm 11d, a switching element T1d and a diode D1d are connected in parallel. In the upper arm 11u, the cathode side of the diode D1u is connected to the third power line L3, and the anode side of the diode D1u is connected to the lower arm 11d and the stator coil 141. In the lower arm 11d, the cathode side of the diode D1d is connected to the anode side of the diode D1u, and the anode side of the diode D1d is connected to the second power line L2. The switching elements T1u and T1d are, for example, IGBTs (Insulated Gate Bipolar Transistors) or MOSFETs (Metal Oxide Semiconductor Field Effect Transistors). The diodes D1u and D1d are diodes for refluxing current.

[0021] The leg 10v has an upper arm 12u and a lower arm 12d. In the upper arm 12u, a switching element T2u and a diode D2u are connected in parallel, and in the lower arm 12d, a switching element T2d and a diode D2d are connected in parallel. In the upper arm 12u, the cathode side of the diode D2u is connected to the third power line L3, and the anode side of the diode D2u is connected to the lower arm 12d and the stator coil 142. In the lower arm 12d, the cathode side of the diode D2d is connected to the anode side of the diode D2u, and the anode side of the diode D2d is connected to the second power line L2. The switching element T2u and the switching element T2d are, for example, IGBTs or MOSFETs. The diodes D2u and D2d are diodes for circulating current.

[0022] The leg 10w has an upper arm 13u and a lower arm 13d. In the upper arm 13u, a switching element T3u and a diode D3u are connected in parallel, and in the lower arm 13d, a switching element T3d and a diode D3d are connected in parallel. In the upper arm 13u, the cathode side of the diode D3u is connected to the third power line L3, and the anode side of the diode D3u is connected to the lower arm 13d and the stator coil 143. In the lower arm 13d, the cathode side of the diode D3d is connected to the anode side of the diode D3u, and the anode side of the diode D3d is connected to the second power line L2. The switching elements T3u and T3d are, for example, IGBTs or MOSFETs. The diodes D3u and D3d are diodes for circulating current.

[0023] One end of the capacitor C2 is connected to the third power line L3, and the other end of the capacitor C2 is connected to the second power line L2. The capacitor C2 is a capacitor for smoothing the current that charges the secondary battery 2. The current sensor 20 is a sensor that measures the current value of the current flowing through the third power line L3. The current sensor 20 outputs a signal indicative of the measurement result to the control unit 40. The drive circuit 30 is a circuit that outputs a PWM signal for driving each arm of the legs 10u, 10v, and 10w. The drive circuit 30 outputs a PWM signal corresponding to a duty ratio instructed by the control unit 40.

[0024] The control unit 40 has a function of instructing the duty ratio of the PWM signal output from the drive circuit 30. Fig. 2 is a block diagram showing the configuration of the control unit 40. The control unit 40 is configured by a processor 401, a RAM 402, a ROM 403, an input / output interface 404, and a communication interface 405, which are connected to a bus 406.

[0025] The RAM (Random Access Memory) 402 is composed of a volatile memory. The RAM 402 serves as a workspace when the processor 401 performs arithmetic processing, and stores the results of the arithmetic processing of the processor 401. The ROM (Read Only Memory) 403 is composed of a non-volatile memory. The ROM 403 stores programs used by the processor 401 to perform arithmetic processing. The input / output interface 404 acquires the signal output by the current sensor 20. The communication interface 405 is composed of a communication module that performs wired information communication. The communication interface 405 communicates with the ECU (Electronic Control Unit) 100.

[0026] The processor 401 is, for example, a CPU (Central Processing Unit), which reads a program from a ROM 403 and executes the program using a RAM 402 as a workspace. The processor 401 may be a FPGA (Field-Programmable Gate Array), a DSP (Digital Signal Processor), or a GPU (Graphics Processing Unit). The processor 401 executes the program to realize a function of controlling the duty ratio of a PWM signal.

[0027] The ECU 100 is a higher-level device that is responsible for the main control of the vehicle's drive system. The ECU 100 is connected to a connector of the rapid charger 1 via a communication line CL. The ECU 100 communicates information with the rapid charger 1 via the communication line CL, and acquires from the rapid charger 1 information about the voltage when the rapid charger 1 charges the secondary battery 2. The ECU 100 transmits the voltage information acquired from the rapid charger 1 to the control unit 40.

[0028] Next, an example of the operation of the charging device 10 will be described. Fig. 3 is a flowchart showing the flow of processing executed by the control unit 40. When the first power line L1, the second power line L2, and the communication line CL are connected to the rapid charger 1 by connectors, the ECU 100 communicates with the rapid charger 1 and acquires information about the voltage when the rapid charger 1 charges the secondary battery 2. The ECU 100 sends this information to the control unit 40. The control unit 40 acquires information indicating the charging voltage sent from the ECU 100 (step S1).

[0029] Next, the control unit 40 determines the number of phases of the interleave circuit to be driven to charge the secondary battery 2 according to the voltage indicated by the information acquired in step S1 (step S2). For example, if the charging voltage of the rapid charger 1 is 400V and the voltage for charging the secondary battery 2 is 800V, the number of phases is set to 2. Alternatively, if the charging voltage of the rapid charger 1 is 400V and the voltage for charging the secondary battery 2 is 1200V, the number of phases is set to 3.

[0030] Next, the control unit 40 determines the sampling period of the signal output from the current sensor 20 (step S3). Here, the control unit 40 determines the sampling period according to the number of phases determined in step S2. If the number of phases determined in step S2 is N, the control unit 40 sets the sampling period to a period other than 1 / N of the carrier period of the PWM signal that drives the legs 10u, 10v, and 10w. For example, when the control unit 40 operates the legs 10u, 10v, and 10w as a two-phase interleaved circuit, the control unit 40 sets the sampling period of the signal output from the current sensor 20 to a period other than 1 / 2 of the carrier period of the PWM signal. Furthermore, when the control unit 40 operates the legs 10u, 10v, and 10w as a three-phase interleaved circuit, the control unit 40 sets the sampling period of the signal output from the current sensor 20 to a period other than 1 / 3 of the carrier period of the PWM signal.

[0031] Next, the control unit 40 sends an output command to the drive circuit 30 to instruct it to output a PWM signal (step S4). This output command includes the duty ratio of the PWM signal and the number of phases determined in step S2. The drive circuit 30 outputs a PWM signal based on the duty ratio included in the output command, and causes the legs 10u, 10v, and 10w to operate as an interleaved circuit with the number of phases included in the output command.

[0032] FIG. 4 shows an example of the waveforms of the carrier of the PWM signal, the PWM signal, the phase current, and the charging current flowing to the secondary battery 2 when the control unit 40 operates the legs 10u, 10v, and 10w as a two-phase interleaved circuit and outputs a command to set the duty ratio to 50%.

[0033] When a command for a duty ratio of 50% is output, when legs 10u and 10v are driven as a two-phase interleaved circuit, due to dead time, switching element on delay, switching element off delay, and the like, the PWM signals output by drive circuit 30 to switching elements T1u, T1d, T2u, and T2d have a duty ratio less than 50%, as shown in FIG. 4. In this case, for example, if legs 10u and 10v are driven and leg 10w is stopped to form a two-phase interleaved circuit, the phase current flowing between leg 10u and stator coil 141 will have the waveform shown by the solid line in FIG. 4, and the phase current flowing between leg 10v and stator coil 142 will have the waveform shown by the dashed-dotted line in FIG. 4. Because the charging current is the sum of the currents flowing from legs 10u and 10v of the two-phase interleaved circuit, it fluctuates according to the phase current, generating ripples as shown in FIG. 4.

[0034] The control unit 40 samples this charging current at the sampling period determined in step S3 and detects the fluctuation range of the charging current (step S5). If this sampling period is 1 / N of the carrier period, sampling is performed, for example, at timings t1 and t2 shown in FIG. 4. In this case, the charging current is detected as a constant value, and fluctuations in the charging current cannot be detected. On the other hand, in this embodiment, the sampling period is set to a period other than 1 / N of the carrier period, and sampling is performed, for example, at timings t11, t12, t13, and t14 shown in FIG. 4. In this case, the charging current is not detected as a constant value, so the control unit 40 can detect the fluctuation range of the charging current.

[0035] Next, the control unit 40 determines whether the fluctuation range of the detected charging current is equal to or less than a predetermined threshold (step S6). Here, the threshold is, for example, the fluctuation range of the charging current that is allowable when charging the secondary battery 2. If the fluctuation range of the charging current is equal to or less than the predetermined threshold (YES in step S6), the control unit 40 ends the processing of FIG.

[0036] If the fluctuation range of the charging current exceeds a predetermined threshold (NO in step S6), the control unit 40 instructs the drive circuit 30 on the duty ratio of the PWM signal according to the fluctuation range of the charging current detected in step S5 (step S7). Specifically, the control unit 40 sets the duty ratio so as to reduce the fluctuation range of the charging current, sends an output command including the set duty ratio to the drive circuit 30, and returns the process to step S5.

[0037] For example, the control unit 40 increases the duty ratio instructed in step S7 by a predetermined amount compared to the duty ratio instructed in step S4 and sends an output command to the drive circuit 30. The control unit 40 then detects the fluctuation range of the charging current, and if the fluctuation range has become smaller, repeats the process of increasing the duty ratio by a predetermined amount and sending an output command to the drive circuit 30 until the fluctuation range of the charging current becomes equal to or smaller than the threshold, and the operation of detecting the fluctuation range. On the other hand, after the control unit 40 increases the duty ratio instructed in step S7 by a predetermined amount compared to the duty ratio instructed in step S4 and outputs an output command to the drive circuit 30, it then detects the fluctuation range of the charging current and if the fluctuation range has become larger, repeats the process of decreasing the duty ratio by a predetermined amount and sending an output command to the drive circuit 30 until the fluctuation range of the charging current becomes equal to or smaller than the threshold, and the operation of detecting the fluctuation range.

[0038] Fig. 5 shows an example of the waveforms of the carrier of the PWM signal, the PWM signal, the phase current, and the charging current flowing to the secondary battery 2 when the legs 10u, 10v, and 10w are operated as a two-phase interleaved circuit and the fluctuation range of the charging current is reduced to a threshold value or less by changing the duty ratio of the PWM signal. The control unit 40 controls the duty ratio in accordance with the detection result of the charging current, so that the phase current flowing through leg 10u has the waveform shown by the solid line in Fig. 5, and the phase current flowing through leg 10v has the waveform shown by the dashed dotted line in Fig. 5. The charging current is the sum of the currents flowing from legs 10u and 10v of the two-phase interleaved circuit, and therefore has suppressed fluctuations as shown in Fig. 5.

[0039] As described above, according to this embodiment, ripple in the charging current can be suppressed by controlling the duty ratio of the PWM signal that drives the legs 10u, 10v, and 10w. Furthermore, because ripple in the charging current can be suppressed, the capacitance of the capacitor C2 can be reduced. Furthermore, according to this embodiment, fluctuations in the charging current can be detected by setting the sampling period of the charging current to a value other than 1 / N of the carrier period of the PWM signal.

[0040] [Variations] Although the embodiments of the present invention have been described above, the present invention is not limited to the above-described embodiments and can be implemented in various other forms. For example, the above-described embodiments may be modified as follows to implement the present invention. The above-described embodiments and the following modifications may be combined with each other. The present invention also includes configurations in which the components of the above-described embodiments and modifications are appropriately combined. Furthermore, further effects and modifications can be easily derived by those skilled in the art. Therefore, the broader aspects of the present invention are not limited to the above-described embodiments and modifications, and various modifications are possible.

[0041] In the present invention, the current sensor 20 may be provided between the neutral point NP and the quick charger 1.

[0042] In the present invention, a switch connecting the first power line L1 and the third power line L3 and a switch connecting the first power line L1 and the neutral point NP of the stator coils 141, 142, and 143 may be provided. In this case, when charging the secondary battery 2 without boosting the voltage of the rapid charger 1, the switch between the first power line L1 and the third power line L3 is turned on to connect the first power line L1 and the third power line L3, and the switch between the first power line L1 and the neutral point NP is turned off to disconnect the first power line L1 from the neutral point NP. On the other hand, when charging the secondary battery 2 by boosting the voltage of the rapid charger 1, the switch between the first power line L1 and the third power line L3 is turned off to disconnect the first power line L1 from the third power line L3, and the switch between the first power line L1 and the neutral point NP is turned on to connect the first power line L1 and the neutral point NP. [Explanation of symbols]

[0043] 1 quick charger 2 Secondary battery 10 Charging device 10u, 10v, 10w leg 11u, 12u, 13u upper arm 11d, 12d, 13d lower arm 14 Motor 20 Current Sensor 30 Drive circuit 40 Control Unit 100 ECU 141, 142, 143 Stator coil

Claims

1. a plurality of legs, each of which has an upper arm having a switching element and a lower arm having a switching element connected in series, the upper arm being connected to a power storage device mounted on a vehicle, and the lower arm being connected to a negative electrode of a DC charger; a motor having a coil for each of three phases connected to a midpoint between the upper arm and the lower arm of the corresponding leg and a neutral point connected to a positive electrode of the charger; a drive unit that drives the switching element with a PWM signal; a control unit that monitors a measurement result of a sensor that measures the current flowing from the plurality of legs to the power storage device, and instructs the drive unit to adjust the duty ratio of the PWM signal based on a fluctuation range of the monitored current so that the fluctuation range becomes small; and When the number of legs used in charging the power storage device is N, the control unit monitors the measurement results of the sensor at a period other than 1 / N of the period of the carrier of the PWM signal. Charging device.

2. The motor is a motor that drives the drive wheels of the vehicle. The charging device according to claim 1 .

3. The number of legs used for charging the power storage device is determined based on the voltage of the charging device and the voltage of the power storage device. The charging device according to claim 1 .

Citation Information

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