Noise Attenuation Circuit
The noise attenuation circuit enhances common-mode noise attenuation by generating a negative-phase voltage to reduce the amplitude of detection voltage, allowing increased amplifier gain and improved noise reduction.
Patent Information
- Application Number
- JP2022120709
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-07-28
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2042-07-28
AI Technical Summary
Existing common-mode noise attenuation circuits face limitations in gain, leading to insufficient noise attenuation due to voltage constraints, which can cause the circuits to malfunction when the product of common-mode voltage and gain exceeds the power supply voltage.
A noise attenuation circuit that includes an auxiliary coil, a conversion circuit, and a generation circuit to generate a negative-phase voltage, which is added to the detection voltage to create a summed voltage that is then amplified, allowing for increased gain without exceeding voltage limits, thereby improving common-mode noise attenuation.
The solution effectively increases the gain of the amplifier circuit, enhancing the common-mode noise attenuation effect by reducing the amplitude of the summed voltage, thus improving noise reduction without impairing frequency components subject to noise regulations.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to noise attenuation circuits. [Background technology]
[0002] Canceller circuits that attenuate common-mode noise generated in inverters and the like are known. For example, Patent Document 1 describes a common-mode noise cancellation circuit device that includes a primary coil provided between a DC high-voltage power supply and a three-phase inverter circuit, a secondary coil electromagnetically coupled to the primary coil, and a noise cancellation circuit. In this device, when a common-mode current flows through the primary coil, a common-mode voltage is generated in the secondary coil, and a common-mode cancellation current that is opposite in phase to the common-mode current is generated by the noise cancellation circuit based on the common-mode voltage. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-333647 Summary of the Invention [Problem to be solved by the invention]
[0004] To improve the common-mode noise attenuation effect, it is necessary to increase the gain of the canceller circuit. However, if the voltage value obtained by multiplying the common-mode voltage by the gain becomes larger than the voltage value of the power supply voltage of the canceller circuit, the canceller circuit may not operate normally. As a result, the gain of the canceller circuit may not be sufficiently large, and the common-mode noise may not be sufficiently attenuated.
[0005] The present disclosure describes a noise attenuation circuit that can improve the attenuation effect of common-mode noise. [Means for solving the problem]
[0006] According to one aspect of the present disclosure, there is provided a noise attenuation circuit, which is provided between a power storage device and an inverter that converts DC power supplied from the power storage device into AC power, and which generates an attenuation current for attenuating noise current generated in the inverter. The noise attenuation circuit includes: an auxiliary coil wound around a core of a common mode choke coil provided between the power storage device and the inverter; a conversion circuit that generates an attenuation current based on a detection voltage detected by the auxiliary coil; and a generation circuit that generates a negative-phase voltage that attenuates the carrier component of the detection voltage. The conversion circuit includes an adder circuit that generates a sum voltage by adding the detection voltage and the negative-phase voltage, and an amplifier circuit provided downstream of the adder circuit that amplifies the sum voltage.
[0007] In this noise attenuation circuit, the conversion circuit adds the detection voltage detected by the auxiliary coil and the negative-phase voltage to generate a summed voltage, which is then amplified. Since the carrier component of the detection voltage is not subject to noise regulations, the carrier component of the detection voltage is attenuated by using a voltage that attenuates the carrier component of the detection voltage as the negative-phase voltage. This results in a summed voltage with an amplitude smaller than that of the detection voltage, allowing the gain of the amplifier circuit to be increased. As a result, the common-mode noise attenuation effect can be improved.
[0008] In some embodiments, the generating circuit may include a control circuit that sets the frequency and phase of the negative-phase voltage based on the inverter drive signal. The frequency and phase of the carrier component of the detection voltage may be determined according to the inverter drive signal. In the above configuration, by taking the inverter drive signal into consideration, the frequency and phase of the negative-phase voltage can be adjusted to match the frequency and phase of the carrier component of the detection voltage. Therefore, the carrier component of the detection voltage can be more reliably attenuated, and the amplitude of the added voltage can be more reliably reduced. As a result, the common-mode noise attenuation effect can be further improved.
[0009] In some embodiments, the generating circuit may further include an oscillator that outputs a sine wave signal having a frequency and phase set by the control circuit as an antiphase voltage. This configuration allows the carrier component of the detection voltage to be attenuated without attenuating frequency components other than the carrier component. Therefore, it is possible to increase the gain of the amplifier circuit without impairing the attenuation effect of frequency components subject to noise regulations.
[0010] In some embodiments, the control circuit may set the amplitude of the negative-phase voltage based on the voltage value of the storage voltage, which is the voltage of the power storage device, and the modulation factor of the inverter, and the oscillator may output a sine wave signal as the negative-phase voltage, further having the amplitude set by the control circuit. The amplitude of the carrier component of the detection voltage may be determined according to the voltage value of the storage voltage and the modulation factor of the inverter. In the above configuration, by taking into account the voltage value of the storage voltage and the modulation factor of the inverter, the amplitude of the negative-phase voltage can be made closer to the amplitude of the carrier component of the detection voltage. Therefore, the amplitude of the added voltage can be further reduced, and the gain of the amplifier circuit can be further increased. As a result, the common-mode noise attenuation effect can be further improved.
[0011] In some embodiments, the control circuit may output a first pulse and a second pulse having the same frequency as the carrier component of the detection voltage. The generation circuit may further include a synthesis circuit that synthesizes the first pulse and the second pulse to generate a synthesized signal, and a filter circuit that extracts a frequency component that is the same as the carrier component of the detection voltage from the synthesized signal. The generation circuit may output a negative-phase voltage based on the extracted frequency component. This configuration allows the negative-phase voltage to be generated without using an oscillator, thereby reducing the circuit size of the noise attenuation circuit.
[0012] In some embodiments, the control circuit may set the phase difference between the first pulse and the second pulse based on the voltage value of the storage voltage, which is the voltage of the power storage device, and the modulation rate of the inverter. Adjusting the phase difference between the first pulse and the second pulse can change the amplitude of the composite signal. As described above, the amplitude of the carrier component of the detection voltage can be determined depending on the voltage value of the storage voltage and the modulation rate of the inverter. Therefore, by setting the phase difference between the first pulse and the second pulse based on the voltage value of the storage voltage and the modulation rate of the inverter, the amplitude of the negative-phase voltage can be made closer to the amplitude of the carrier component of the detection voltage. Therefore, the amplitude of the added voltage can be further reduced, and the gain of the amplifier circuit can be further increased. As a result, the common-mode noise attenuation effect can be further improved. [Effects of the Invention]
[0013] According to the present disclosure, it is possible to improve the effect of attenuating common-mode noise. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is a schematic diagram of a power supply device including a noise attenuation circuit according to a first embodiment. [Figure 2] Fig. 2(a) is a diagram showing an example of a waveform of a detected voltage, Fig. 2(b) is a diagram showing an example of a waveform of a negative-phase voltage, and Fig. 2(c) is a diagram showing an example of a waveform of an added voltage. [Figure 3] FIG. 3 is a schematic diagram of a power supply device including a noise attenuation circuit according to the second embodiment. [Figure 4] FIG. 4 is a diagram for explaining the composite signal. [Figure 5] (a) to (e) of FIG. 5 are diagrams showing examples of waveforms of each signal when the phase difference between two pulses is 135°. [Figure 6] (a) to (e) of FIG. 6 are diagrams showing examples of waveforms of each signal when the phase difference between two pulses is 0°. DETAILED DESCRIPTION OF THE INVENTION
[0015] Noise attenuation circuits according to embodiments will be described in detail below with reference to the accompanying drawings. In the description of the drawings, the same or equivalent elements are designated by the same reference numerals, and redundant description will be omitted.
[0016] (First embodiment) The configuration of a power supply device including a noise attenuation circuit according to the first embodiment will be described with reference to Fig. 1. Fig. 1 is a schematic diagram of a power supply device including a noise attenuation circuit according to the first embodiment. The power supply device 1 shown in Fig. 1 is a device that supplies AC power to a motor M. The power supply device 1 includes a power storage device 2, a main circuit 3, an inverter 4, and a noise attenuation circuit 5. In the power supply device 1, a noise current In generated in the inverter 4 is attenuated by the noise attenuation circuit 5.
[0017] The power storage device 2 supplies DC power to the inverter 4. The power storage device 2 can be used as a battery for various vehicles such as forklifts, hybrid vehicles, and electric vehicles. The power storage device 2 is configured by, for example, a lithium-ion battery, a lead-acid battery, or a nickel-metal hydride battery. The storage voltage, which is the voltage of the power storage device 2, can vary depending on the type of the power storage device 2 and the amount of electricity stored in the power storage device 2. The storage voltage is the open-circuit voltage of the power storage device 2. In other words, the storage voltage is the voltage between the positive terminal and the negative terminal of the power storage device 2.
[0018] The main circuit 3 includes a coil 31, a coil 32, a connecting wire 33, a connecting wire 34, a capacitor 35, and a capacitor 36. The coil 31 and the coil 32 are wound around a core 30 made of a magnetic material to form a common mode choke coil.
[0019] In the common mode choke coil, when a common mode current (hereinafter referred to as "common mode current") flows through coils 31 and 32, magnetic flux is generated by the electromagnetic induction phenomenon in coils 31 and 32. In this case, the generated magnetic fluxes are oriented in the same direction and reinforce each other, causing the common mode choke coil to function as an inductor. When a differential mode current flows through coils 31 and 32, the generated magnetic fluxes are oriented in opposite directions and cancel each other out. As a result, the common mode choke coil does not function as an inductor for differential mode currents.
[0020] The coil 31 and the coil 32 are provided between the power storage device 2 and the inverter 4. One end of the coil 31 is connected to the positive terminal of the power storage device 2. The other end of the coil 31 is connected to a connection line 33. One end of the coil 32 is connected to the negative terminal of the power storage device 2. The other end of the coil 32 is connected to a connection line 34.
[0021] The connection line 33 connects the coil 31 and the inverter 4. Specifically, one end of the connection line 33 is connected to the other end of the coil 31. The other end of the connection line 33 is connected to the inverter 4.
[0022] The connection line 34 connects the coil 32 and the inverter 4. Specifically, one end of the connection line 34 is connected to the other end of the coil 32. The other end of the connection line 34 is connected to the inverter 4.
[0023] Capacitor 35 and capacitor 36 are Y capacitors, and are provided between connection line 33 and ground potential (earth) and connection line 34, respectively. Specifically, one end of capacitor 35 is connected to the other end of connection line 33. The other end of capacitor 35 is connected to ground potential (earth). One end of capacitor 36 is connected to ground potential (earth). The other end of capacitor 36 is connected to the other end of connection line 34.
[0024] The inverter 4 converts DC power, which is input power supplied from the power storage device 2, into AC power and outputs it to the motor M. In this embodiment, the inverter 4 is a three-phase inverter and has a plurality of switching elements (not shown). The switching elements are elements that can be electrically switched between open and closed. Examples of switching elements that can be used include MOSFETs (Metal Oxide Semiconductor Field Effect Transistors), IGBTs (Insulated Gate Bipolar Transistors), and bipolar transistors. The inverter 4 also includes a drive circuit (not shown).
[0025] The noise attenuation circuit 5 is a circuit that generates an attenuation current Ic for attenuating the noise current In (common mode current) generated in the inverter 4. The noise current In is generated by the switching operation of the inverter 4. The noise current In is composed of a carrier component and a harmonic component. The frequency of the carrier component of the noise current In matches the frequency of the carrier component of a signal for driving the inverter 4 (hereinafter referred to as the "drive signal of the inverter 4"). The noise attenuation circuit 5 is provided between the power storage device 2 and the inverter 4. The noise attenuation circuit 5 includes an auxiliary coil 50, a generation circuit 51, and a conversion circuit 52. The noise attenuation circuit 5 detects a detection voltage Vn in the auxiliary coil 50 and generates an attenuation current Ic that is opposite in phase to the noise current In based on the detection voltage Vn, thereby attenuating the noise current In generated in the inverter 4.
[0026] The auxiliary coil 50 is wound around the core 30 of the coils 31 and 32 and detects the detection voltage Vn. One end of the auxiliary coil 50 is connected to a ground potential (earth). The other end of the auxiliary coil 50 is connected to the conversion circuit 52. The auxiliary coil 50 outputs the detected detection voltage Vn to the conversion circuit 52. When a current flows through the auxiliary coil 50, the detection voltage Vn is generated in the auxiliary coil 50. The detection voltage Vn is obtained by converting the current flowing through the auxiliary coil 50 into a voltage, and is composed of a carrier wave component and a harmonic component. Before the attenuation current Ic is generated, only the noise current In flows through the auxiliary coil 50. After the attenuation current Ic is generated, a combined current of the noise current In and the attenuation current Ic flows. In this embodiment, the initial stage before the attenuation current Ic is generated will be described.
[0027] The generation circuit 51 is a circuit that generates a negative-phase voltage Vi that attenuates the carrier component of the detection voltage Vn. The generation circuit 51 outputs the negative-phase voltage Vi to the conversion circuit 52. The generation circuit 51 includes a control circuit 53 and an oscillator 54.
[0028] The control circuit 53 is a circuit that sets parameter values of the negative-phase-sequence voltage Vi. In this embodiment, the control circuit 53 sets the frequency, phase, and amplitude of the negative-phase-sequence voltage Vi. The control circuit 53 sets the frequency and phase of the negative-phase-sequence voltage Vi based on the drive signal of the inverter 4. Specifically, the control circuit 53 sets the frequency of the carrier wave component of the drive signal of the inverter 4 as the frequency of the negative-phase-sequence voltage Vi. The frequency of the carrier wave component of the drive signal of the inverter 4 is, for example, 20 kHz.
[0029] The control circuit 53 sets the phase of the negative-sequence voltage Vi to be the opposite phase to the phase of the carrier component of the drive signal for the inverter 4. Because the phase of the carrier component of the detection voltage Vn is the same as the phase of the carrier component of the drive signal for controlling the inverter 4, the phase of the negative-sequence voltage Vi is also the opposite phase to the phase of the carrier component of the detection voltage Vn.
[0030] The control circuit 53 sets the amplitude of the negative-phase voltage Vi based on the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4. In this embodiment, the control circuit 53 has a table that defines the relationship between the voltage value of the storage voltage, the modulation factor of the inverter 4, and the amplitude of the negative-phase voltage Vi. In other words, the table sets the amplitude of the negative-phase voltage Vi for various combinations of the voltage value of the storage voltage and the modulation factor of the inverter 4.
[0031] The method for setting the table will now be described in detail. The amplitude of the detection voltage Vn can vary depending on the voltage value of the storage voltage and the modulation factor of the inverter 4. In order to bring the carrier component of the detection voltage Vn close to zero, it is necessary to subtract from the detection voltage Vn a negative-phase voltage Vi having the same amplitude as the amplitude of the carrier component of the detection voltage Vn. For this reason, the power supply device 1 is operated for each combination (voltage value of the storage voltage and modulation factor of the inverter 4) and the detection voltage Vn generated in the auxiliary coil 50 is measured, and the same amplitude as the amplitude of the carrier component of the measured detection voltage Vn is determined as the amplitude of the negative-phase voltage Vi corresponding to that combination. In this manner, the table is set.
[0032] The control circuit 53 acquires the voltage value of the stored voltage and the modulation factor of the inverter 4, and acquires the amplitude of the negative-phase voltage Vi corresponding to the combination of the acquired voltage value of the stored voltage and the modulation factor of the inverter 4 from the table.
[0033] The control circuit 53 outputs to the oscillator 54 command values for the frequency, phase, and amplitude of the negative-phase voltage Vi.
[0034] In this embodiment, the control circuit 53 also functions as a control unit for the inverter 4. Therefore, the control circuit 53 supplies a drive signal to the inverter 4, and therefore grasps the frequency, switching timing, and modulation factor of the carrier component of the drive signal of the inverter 4. The control circuit 53 acquires the voltage value of the storage voltage from a voltage sensor provided between the positive and negative terminals of the storage device 2, for example.
[0035] The oscillator 54 outputs a sine wave signal having parameter values set by the control circuit 53 as the negative-phase voltage Vi. In this embodiment, the oscillator 54 generates a sine wave signal having a frequency, phase, and amplitude set by the control circuit 53. The oscillator 54 outputs the generated sine wave signal to the conversion circuit 52 as the negative-phase voltage Vi.
[0036] The conversion circuit 52 is a circuit that generates an attenuation current Ic based on the detection voltage Vn. The conversion circuit 52 generates a current that is opposite in phase to the noise current In and outputs it as the attenuation current Ic, thereby attenuating the noise current In generated in the inverter 4. The conversion circuit 52 includes an adder circuit 55, an amplifier circuit 56, and an output capacitor 57.
[0037] The adder circuit 55 is a circuit that generates a sum voltage Va by adding the detection voltage Vn and the negative-phase voltage Vi. The adder circuit 55 outputs the sum voltage Va to the amplifier circuit 56. The adder circuit 55 has a known circuit configuration.
[0038] The amplifier circuit 56 is a circuit that amplifies the sum voltage Va. The amplifier circuit 56 is provided in the subsequent stage of the adder circuit 55. The amplifier circuit 56 has a known circuit configuration.
[0039] The output capacitor 57 converts the sum voltage Va amplified by the amplifier circuit 56 into an attenuation current Ic. The output capacitor 57 is provided between the amplifier circuit 56 and the output terminal (connection line 34) of the conversion circuit 52. Specifically, one end of the output capacitor 57 is connected to the output terminal of the amplifier circuit 56, and the other end of the output capacitor 57 is connected to the connection line 34.
[0040] Next, the operation of the power supply device 1 will be described with further reference to (a) to (c) of Fig. 2. (a) of Fig. 2 is a diagram showing an example of a waveform of a detected voltage. (b) of Fig. 2 is a diagram showing an example of a waveform of a negative-phase voltage. (c) of Fig. 2 is a diagram showing an example of a waveform of an added voltage. The vertical axis of (a) of Fig. 2 indicates the detected voltage Vn (unit: V). The vertical axis of (b) of Fig. 2 indicates the negative-phase voltage Vi (unit: V). The vertical axis of (c) of Fig. 2 indicates the added voltage Va (unit: V). The horizontal axis of each of (a) to (c) of Fig. 2 indicates time (unit: μs).
[0041] In the power supply device 1, when DC power is supplied from the power storage device 2 to the inverter 4, a noise current In is generated due to the switching operation of the inverter 4. At this time, the noise current In flows through the coils 31 and 32, and a detection voltage Vn is generated in the auxiliary coil 50 due to the noise current In flowing through the coils 31 and 32. In the example shown in FIG. 2(a), the detection voltage Vn contains a 20 kHz carrier wave component as a main component and also contains harmonic components.
[0042] The generation circuit 51 then generates a negative-phase voltage Vi that attenuates the carrier component of the detection voltage Vn. Specifically, as shown in FIG. 2(b), a sine wave signal having the same frequency as the carrier component of the detection voltage Vn, a phase opposite to the phase of the carrier component of the detection voltage Vn, and an amplitude identical to the amplitude of the carrier component of the detection voltage Vn is generated as the negative-phase voltage Vi. The addition circuit 55 of the conversion circuit 52 then adds the detection voltage Vn and the negative-phase voltage Vi to generate a sum voltage Va. As shown in FIG. 2(c), the sum voltage Va has a waveform obtained by subtracting the carrier component of the detection voltage Vn from the detection voltage Vn, and the amplitude of the sum voltage Va is smaller than the amplitude of the detection voltage Vn.
[0043] The sum voltage Va is then amplified by the amplifier circuit 56, and the amplified sum voltage Va is converted by the output capacitor 57 into an attenuation current Ic that is in opposite phase to the noise current In. The attenuation current Ic is then supplied to the inverter 4 (connection line 34), thereby attenuating the harmonic components of the noise current In.
[0044] In the noise attenuation circuit 5 described above, the conversion circuit 52 adds the detection voltage Vn detected by the auxiliary coil 50 and the negative-phase voltage Vi to generate a sum voltage Va, which is then amplified. Here, standards such as CISPR regulate noise only at frequencies above 150 kHz, but the carrier component (e.g., 20 kHz) of the detection voltage Vn is not. Therefore, by using a voltage that attenuates the carrier component of the detection voltage Vn as the negative-phase voltage Vi, the carrier component of the detection voltage Vn is attenuated. This results in a sum voltage Va having an amplitude smaller than that of the detection voltage Vn, allowing the gain of the amplifier circuit 56 to be increased. As a result, the common-mode noise attenuation effect can be improved.
[0045] In the example shown in FIG. 2(a), the detection voltage Vn fluctuates within a range of approximately ±2.5V, and the amplitude of the detection voltage Vn is approximately 5V. Assuming that the voltage range of the amplifier circuit 56 is ±15V, if the detection voltage Vn is supplied to the amplifier circuit 56 as is, the maximum gain of the amplifier circuit 56 is 6. On the other hand, as shown in FIG. 2(c), the sum voltage Va fluctuates within a range of approximately ±1.8V, and the amplitude of the sum voltage Va is approximately 3.6V. If the sum voltage Va is supplied to the amplifier circuit 56, the maximum gain of the amplifier circuit 56 is approximately 8.3. Therefore, the gain of the amplifier circuit 56 can be increased by approximately 1.4 times.
[0046] The frequency and phase of the carrier component of the detection voltage Vn can be determined according to the drive signal of the inverter 4. In the power supply device 1, the control circuit 53 sets the frequency and phase of the negative-phase voltage Vi based on the drive signal of the inverter 4. With this configuration, the drive signal of the inverter 4 is taken into consideration, so the frequency and phase of the negative-phase voltage Vi can be matched to the frequency and phase of the carrier component of the detection voltage Vn, respectively. Therefore, the carrier component of the detection voltage Vn can be more reliably attenuated, which can more reliably reduce the amplitude of the added voltage Va and further increase the gain of the amplifier circuit 56. As a result, the common-mode noise attenuation effect can be further improved.
[0047] The amplitude of the carrier component of the detection voltage Vn can be determined depending on the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4. In the power supply device 1, the control circuit 53 sets the amplitude of the negative-phase voltage Vi based on the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4. Therefore, by taking into account the voltage value of the storage voltage and the modulation factor of the inverter 4, the amplitude of the negative-phase voltage Vi can be made closer to the amplitude of the carrier component of the detection voltage Vn. This allows the amplitude of the added voltage Va to be further reduced, and the gain of the amplifier circuit 56 to be further increased. As a result, the common-mode noise attenuation effect can be further improved.
[0048] The oscillator 54 outputs a sine wave signal having a frequency, phase, and amplitude set by the control circuit 53 as the negative-phase voltage Vi. This configuration allows the carrier component of the detection voltage Vn to be attenuated without attenuating frequency components other than the carrier component. Therefore, it is possible to increase the gain of the amplifier circuit 56 without impairing the attenuation effect of frequency components subject to noise regulations.
[0049] (Second embodiment) Next, the configuration of a power supply device including a noise attenuation circuit according to a second embodiment will be described with reference to FIGS. 3 and 4. FIG. 3 is a schematic diagram of a power supply device including a noise attenuation circuit according to the second embodiment. FIG. 4 is a diagram for explaining a composite signal. The power supply device 1A shown in FIG. 3 differs from the power supply device 1 mainly in that it includes a noise attenuation circuit 5A instead of the noise attenuation circuit 5. The noise attenuation circuit 5A differs from the noise attenuation circuit 5 mainly in that it includes a generation circuit 51A instead of the generation circuit 51. The generation circuit 51A differs from the generation circuit 51 mainly in that it includes a control circuit 61, a synthesis circuit 62, a filter circuit 63, and an amplifier circuit 64 instead of the control circuit 53 and oscillator 54.
[0050] The control circuit 61 outputs a pulse P1 (first pulse) and a pulse P2 (second pulse) for generating a negative-phase voltage Vi. The pulse P1 and the pulse P2 each have a frequency component (hereinafter referred to as a "specific frequency component") that is the same as the frequency of the carrier wave component of the drive signal of the inverter 4. The pulse P1 and the pulse P2 are square waves that have the same amplitude. In this embodiment, the phase of the pulse P1 is the same as or leads the phase of the pulse P2.
[0051] The control circuit 61 sets the phases of the pulses P1 and P2 so that the phase of the negative-phase voltage Vi is the opposite phase to the phase of the carrier component of the drive signal for the inverter 4. Because the phase of the carrier component of the detection voltage Vn is the same as the phase of the carrier component of the drive signal for controlling the inverter 4, the phase of the negative-phase voltage Vi is also the opposite phase to the phase of the carrier component of the detection voltage Vn.
[0052] The control circuit 61 sets the phase difference θ between the pulse P1 and the pulse P2 based on the voltage value of the storage voltage of the storage device 2 and the modulation factor of the inverter 4. In this embodiment, the control circuit 61 has a table that defines the relationship between the voltage value of the storage voltage, the modulation factor of the inverter 4, and the phase difference θ. In other words, the table sets the phase difference θ for various combinations of the voltage value of the storage voltage and the modulation factor of the inverter 4. A method for setting the table will be described later.
[0053] The control circuit 61 acquires the voltage value of the storage voltage and the modulation factor of the inverter 4, and acquires from the table the phase difference θ corresponding to the combination of the acquired voltage value of the storage voltage and the modulation factor of the inverter 4. Then, the control circuit 61 outputs the pulse P1 and the pulse P2 to the combining circuit 62 with the phase difference θ.
[0054] In this embodiment, the control circuit 61 also functions as a control unit for the inverter 4. Therefore, the control circuit 61 supplies a drive signal to the inverter 4, and therefore grasps the frequency, switching timing, and modulation factor of the carrier component of the drive signal of the inverter 4. The control circuit 61 acquires the voltage value of the storage voltage from a voltage sensor provided between the positive and negative terminals of the storage device 2, for example.
[0055] The combining circuit 62 combines the pulse P1 and the pulse P2 to generate a combined signal Vs. The combining circuit 62 outputs the combined signal Vs to the filter circuit 63. In this embodiment, the combining circuit 62 includes a resistor 62a, a resistor 62b, and a capacitor 62c. One end of the resistor 62a is connected to an output terminal of the control circuit 61 that outputs the pulse P1. One end of the resistor 62b is connected to an output terminal of the control circuit 61 that outputs the pulse P2. The other end of the resistor 62a and the other end of the resistor 62b are connected to each other at a connection point CP and are also connected to an input terminal of the filter circuit 63. One end of the capacitor 62c is connected to the connection point CP, and the other end of the capacitor 62c is connected to a ground potential. For example, the resistance value of the resistor 62a is substantially equal to the resistance value of the resistor 62b.
[0056] When pulses P1 and P2 are input to the combining circuit 62, an average voltage of the voltages of pulses P1 and P2 is generated at the connection point CP due to the resistance voltage division by resistors 62a and 62b. This average voltage is received by capacitor 62c, generating a combined signal Vs. Here, as shown in FIG. 4, the amplitude of combined signal Vs is determined by the phase difference θ. If the amplitude of the specific frequency component of pulse P1 and the amplitude of the specific frequency component of pulse P2 are A, then the amplitude of the specific frequency component of combined signal Vs is A cos(θ / 2).
[0057] The filter circuit 63 is a circuit that extracts a specific frequency component from the composite signal Vs. In this embodiment, the filter circuit 63 includes a high-pass filter 65 and a low-pass filter 66.
[0058] The high-pass filter 65 is a circuit for attenuating low-frequency components of the composite signal Vs output from the synthesis circuit 62. The high-pass filter 65 is provided in a subsequent stage of the synthesis circuit 62. The high-pass filter 65 attenuates low-frequency components equal to or lower than the cutoff frequency of the high-pass filter 65 and passes frequency components higher than the cutoff frequency. The cutoff frequency of the high-pass filter 65 is set to a frequency lower than the specific frequency component. As a result, low-frequency components including DC components are removed from the composite signal Vs, and a signal Vac is generated. The high-pass filter 65 outputs the signal Vac to the low-pass filter 66.
[0059] In this embodiment, the high-pass filter 65 includes a capacitor 65a and a resistor 65b. One end of the capacitor 65a is connected to the output terminal (connection point CP) of the combining circuit 62, and the other end of the capacitor 65a is connected to the ground potential via the resistor 65b and is also connected to the low-pass filter 66.
[0060] The low-pass filter 66 is a circuit for attenuating high-frequency components of the signal Vac output from the high-pass filter 65. The low-pass filter 66 is provided after the high-pass filter 65. The low-pass filter 66 attenuates high-frequency components equal to or higher than the cutoff frequency of the low-pass filter 66 and passes frequency components lower than the cutoff frequency. The cutoff frequency of the low-pass filter 66 is set to a frequency lower than the lower limit frequency (e.g., 150 kHz) of the frequency range subject to noise regulations and higher than the specific frequency component. This removes the high-frequency components from the signal Vac and extracts the specific frequency component. The low-pass filter 66 outputs the specific frequency component of the composite signal Vs to the amplifier circuit 64 as a frequency component Vf.
[0061] In this embodiment, the low-pass filter 66 includes a resistor 66 a and a capacitor 66 b. One end of the resistor 66 a is connected to the output terminal of the high-pass filter 65, and the other end of the resistor 66 a is connected to the ground potential via the capacitor 66 b and is also connected to the amplifier circuit 64.
[0062] The amplifier circuit 64 generates the negative-phase voltage Vi by amplifying a frequency component Vf, which is a specific frequency component of the composite signal Vs output from the filter circuit 63. The amplifier circuit 64 outputs the negative-phase voltage Vi to the conversion circuit 52 (adder circuit 55). A known circuit configuration is used as the circuit configuration of the amplifier circuit 64. In this way, the generation circuit 51A outputs the negative-phase voltage Vi.
[0063] Here, a method for setting the table included in the control circuit 61 will be described in detail. As described above, the amplitude of the carrier component of the detection voltage Vn may vary depending on the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4. In order to make the carrier component of the detection voltage Vn approach zero, it is necessary to subtract from the detection voltage Vn a negative-phase voltage Vi having the same amplitude as the amplitude of the carrier component of the detection voltage Vn. As described above, the amplitude of the negative-phase voltage Vi may be determined by the phase difference θ and the gain of the amplifier circuit 64. Therefore, by operating the power supply device 1A for each combination (voltage value of the storage voltage and modulation factor of the inverter 4) and measuring the detection voltage Vn generated in the auxiliary coil 50, the phase difference θ that produces a negative-phase voltage Vi having the same amplitude as the amplitude of the carrier component of the measured detection voltage Vn is determined as the phase difference θ corresponding to that combination. The table is set in this manner.
[0064] Next, the operation of the power supply device 1A will be described with further reference to (a) to (e) of Fig. 5 and (a) to (e) of Fig. 6. (a) to (e) of Fig. 5 are diagrams showing example waveforms of each signal when the phase difference between two pulses is 135°. (a) to (e) of Fig. 6 are diagrams showing example waveforms of each signal when the phase difference between two pulses is 0°. In each of (a) to (e) of Fig. 5 and (a) to (e) of Fig. 6, the vertical axis represents voltage (unit: V), and the horizontal axis represents time (unit: μs). In each diagram, the carrier wave component included in each waveform is indicated by a dashed line.
[0065] As with the power supply device 1, in the power supply device 1A, when DC power is supplied from the power storage device 2 to the inverter 4, a noise current In is generated due to the switching operation of the inverter 4. At this time, the noise current In flows through the coil 31, the coil 32, and the auxiliary coil 50, and a detection voltage Vn is generated in the auxiliary coil 50. Note that before the attenuation current Ic is generated, only the noise current In flows through the auxiliary coil 50, and after the attenuation current Ic is generated, a combined current of the noise current In and the attenuation current Ic flows; however, in this embodiment, an initial stage before the attenuation current Ic is generated will be described.
[0066] The generation circuit 51A then generates a negative-phase voltage Vi that attenuates the carrier component of the detection voltage Vn. Specifically, the control circuit 61 acquires the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4, and determines the phase difference θ according to the combination of these values by referring to the table. The control circuit 61 then outputs the pulse P1 and the pulse P2 to the combining circuit 62 with the phase difference θ. For example, when the phase difference θ is 135°, the pulse P1 and the pulse P2 are output with a phase difference of 135°, as shown in (a) and (b) of FIG. 5. When the phase difference θ is 0°, the pulse P1 and the pulse P2 are output with a phase difference of 0°, as shown in (a) and (b) of FIG. 6.
[0067] As shown in FIGS. 5(c) and 6(c), the pulse P1 and the pulse P2 are combined in the combining circuit 62 to generate a combined signal Vs having an amplitude corresponding to the phase difference θ. As shown in FIGS. 5(d) and 6(d), the high-pass filter 65 removes low-frequency components, including DC components, from the combined signal Vs to generate a signal Vac. As shown in FIGS. 5(e) and 6(e), the low-pass filter 66 removes high-frequency components from the signal Vac to extract a specific frequency component of the combined signal Vs, which is output to the amplifier circuit 64 as a frequency component Vf. For example, when the phase difference θ is 135°, the amplitude of the carrier component of the frequency component Vf is 1.2 V, as shown in FIG. 5(e). When the phase difference θ is 0°, the amplitude of the carrier component of the frequency component Vf is 3.2 V, as shown in FIG. 6(e). Then, the frequency component Vf is amplified by the amplifier circuit 64 to generate the negative-phase voltage Vi.
[0068] Then, the detection voltage Vn and the negative-phase voltage Vi are added together in the adder circuit 55 of the conversion circuit 52 to generate the sum voltage Va. The sum voltage Va has a waveform obtained by subtracting the carrier component of the detection voltage Vn from the detection voltage Vn, and the amplitude of the sum voltage Va is smaller than the amplitude of the detection voltage Vn.
[0069] The sum voltage Va is then amplified by the amplifier circuit 56, and the amplified sum voltage Va is converted by the output capacitor 57 into an attenuation current Ic that is in opposite phase to the noise current In. The attenuation current Ic is then supplied to the inverter 4 (connection line 34), thereby attenuating the harmonic components of the noise current In.
[0070] The noise attenuation circuit 5A described above also has the same configuration as the noise attenuation circuit 5, and thus achieves the same effects as the noise attenuation circuit 5. Furthermore, the noise attenuation circuit 5A can generate the negative-phase voltage Vi without using an oscillator. Therefore, compared to the noise attenuation circuit 5, the circuit size of the noise attenuation circuit 5A can be reduced.
[0071] The amplitude of the carrier component of the detection voltage Vn can be determined based on the voltage value of the storage voltage of the storage device 2 and the modulation factor of the inverter 4. The amplitude of the composite signal Vs can be changed by adjusting the phase difference θ between the pulse P1 and the pulse P2. The amplitude of the negative-phase voltage Vi is determined based on the amplitude of the composite signal Vs. Therefore, by setting the phase difference θ based on the voltage value of the storage voltage and the modulation factor of the inverter 4, the amplitude of the negative-phase voltage Vi can be made closer to the amplitude of the carrier component of the detection voltage Vn. This allows the amplitude of the added voltage Va to be further reduced, and the gain of the amplifier circuit 56 to be further increased. As a result, the common-mode noise attenuation effect can be further improved.
[0072] Although the embodiments of the present disclosure have been described in detail above, the noise attenuation circuit according to the present disclosure is not limited to the above embodiments.
[0073] The control circuit 53 and the control circuit 61 do not have to function as a control unit for the inverter 4. In other words, the power supply device 1 may include a control unit for the inverter 4 in addition to the control circuit 53. Similarly, the power supply device 1A may include a control unit for the inverter 4 in addition to the control circuit 61.
[0074] The control circuit 53 may set the amplitude of the negative-phase voltage Vi based on either the voltage value of the storage voltage of the power storage device 2 or the modulation factor of the inverter 4. Similarly, the control circuit 61 may set the phase difference θ based on either the voltage value of the storage voltage of the power storage device 2 or the modulation factor of the inverter 4.
[0075] The control circuit 53 may set the amplitude of the negative-phase voltage Vi using, instead of a table, a function that defines the relationship between the amplitude of the negative-phase voltage Vi and the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4. Similarly, the control circuit 61 may set the phase difference θ using, instead of a table, a function that defines the relationship between the phase difference θ and the voltage value of the storage voltage of the power storage device 2 and the modulation factor of the inverter 4.
[0076] The control circuit 53 does not need to set the amplitude of the negative-phase voltage Vi. Similarly, the control circuit 61 does not need to set the phase difference θ.
[0077] In the filter circuit 63, the order of the high-pass filter 65 and the low-pass filter 66 may be reversed. That is, the low-pass filter 66 may be provided in the subsequent stage of the synthesis circuit 62, and the high-pass filter 65 may be provided in the subsequent stage of the low-pass filter 66. Instead of the high-pass filter 65 and the low-pass filter 66, the filter circuit 63 may include a band-pass filter capable of extracting a specific frequency component from the synthesis signal Vs.
[0078] The generating circuit 51A does not necessarily have to include the amplifier circuit 64. [Explanation of symbols]
[0079] 1,1A...power supply device, 2...energy storage device, 4...inverter, 5,5A...noise attenuation circuit, 30...core, 31,32...coil, 50...auxiliary coil, 51,51A...generation circuit, 52...conversion circuit, 53,61...control circuit, 54...oscillator, 55...addition circuit, 56...amplification circuit, 62...synthesizing circuit, 63...filter circuit, M...motor
Claims
1. A noise attenuation circuit that is provided between a power storage device and an inverter that converts DC power supplied from the power storage device into AC power, and that generates an attenuation current for attenuating a noise current generated in the inverter, an auxiliary coil wound around a core of a common mode choke coil provided between the power storage device and the inverter; a conversion circuit that generates the attenuation current based on a voltage detected by the auxiliary coil; a generating circuit for generating a negative-phase voltage that attenuates the carrier component of the noise current; Equipped with The conversion circuit an adder circuit that generates a sum voltage by adding the detected voltage and the negative-phase voltage; an amplifier circuit provided at a subsequent stage of the adder circuit and amplifying the added voltage; the carrier wave component of the noise current is generated by a carrier wave component of a drive signal for driving the inverter, the negative-phase voltage has a frequency equal to the frequency of the carrier wave component of the drive signal, a phase equal to the phase of the carrier wave component of the drive signal, and an amplitude set based on a voltage value of a storage voltage that is a voltage of the storage device and a modulation factor of the inverter; Noise attenuation circuit.
2. The noise attenuation circuit of claim 1 , wherein the generating circuit comprises a control circuit that sets the frequency and the phase of the negative-phase voltage based on the drive signal.
3. The noise attenuation circuit according to claim 2 , wherein the generating circuit further comprises an oscillator that outputs a sine wave signal having the frequency and the phase set by the control circuit as the opposite-phase voltage.
4. the control circuit sets the amplitude of the negative-phase voltage based on the voltage value of the storage voltage and the modulation factor of the inverter; 4. The noise attenuation circuit of claim 3, wherein the oscillator outputs the sinusoidal signal as the opposite-phase voltage, the sinusoidal signal further having the amplitude set by the control circuit.
5. the control circuit outputs a first pulse and a second pulse having the same frequency as the carrier component of the noise current; The generating circuit a combining circuit that combines the first pulse and the second pulse to generate a combined signal; a filter circuit that extracts a frequency component having the same frequency as the carrier wave component of the noise current from the composite signal, The noise attenuation circuit according to claim 2 , wherein the generation circuit outputs the negative-phase voltage based on the extracted frequency component.
6. The noise attenuation circuit according to claim 5 , wherein the control circuit sets a phase difference between the first pulse and the second pulse based on the voltage value of the storage voltage and the modulation factor of the inverter.
Citation Information
Patent Citations
Common mode noise canceling circuit device for vehicle-mounted high-voltage motor device
JP2006333647A
Noise filter device and power system
JP2021108514A
Leakage current reduction device
WO2012026186A1
High-frequency current reduction device
WO2013111360A1