WO2015155823A1 - 電力変換装置、電力変換制御方法 - Google Patents
電力変換装置、電力変換制御方法 Download PDFInfo
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- WO2015155823A1 WO2015155823A1 PCT/JP2014/060114 JP2014060114W WO2015155823A1 WO 2015155823 A1 WO2015155823 A1 WO 2015155823A1 JP 2014060114 W JP2014060114 W JP 2014060114W WO 2015155823 A1 WO2015155823 A1 WO 2015155823A1
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/42—Conversion of dc power input into ac power output without possibility of reversal
- H02M7/44—Conversion of dc power input into ac power output without possibility of reversal by static converters
- H02M7/48—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/53—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/537—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters
- H02M7/5387—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration
- H02M7/53871—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration with automatic control of output voltage or current
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02P—CONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
- H02P27/00—Arrangements or methods for the control of AC motors characterised by the kind of supply voltage
- H02P27/04—Arrangements or methods for the control of AC motors characterised by the kind of supply voltage using variable-frequency supply voltage, e.g. inverter or converter supply voltage
- H02P27/06—Arrangements or methods for the control of AC motors characterised by the kind of supply voltage using variable-frequency supply voltage, e.g. inverter or converter supply voltage using dc to ac converters or inverters
- H02P27/08—Arrangements or methods for the control of AC motors characterised by the kind of supply voltage using variable-frequency supply voltage, e.g. inverter or converter supply voltage using dc to ac converters or inverters with pulse width modulation
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M1/00—Details of apparatus for conversion
- H02M1/08—Circuits specially adapted for the generation of control voltages for semiconductor devices incorporated in static converters
- H02M1/084—Circuits specially adapted for the generation of control voltages for semiconductor devices incorporated in static converters using a control circuit common to several phases of a multi-phase system
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/02—Conversion of ac power input into dc power output without possibility of reversal
- H02M7/04—Conversion of ac power input into dc power output without possibility of reversal by static converters
- H02M7/12—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/21—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/217—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
- H02M7/219—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only in a bridge configuration
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/42—Conversion of dc power input into ac power output without possibility of reversal
- H02M7/44—Conversion of dc power input into ac power output without possibility of reversal by static converters
- H02M7/48—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/53—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/537—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters
- H02M7/5387—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration
Definitions
- the present invention relates to a power conversion device, and more particularly to a vehicle power conversion device used for a vehicular rotary motor mounted on a vehicle such as an automobile.
- a full-wave rectification method using a diode as a rectifying element is generally known.
- a rectification method using a switching element as a rectifying element and reducing a loss due to the rectifying element has been used aiming at higher efficiency.
- An object of the present invention is to obtain a power conversion device or the like in which a switching element is surely turned off before a diode is turned off even if the rotational speed fluctuates, and a reverse current does not occur.
- the present invention includes 2N switching elements for N (N is an integer of 2 or more) phase provided for each of the upper and lower arms, 2N freewheeling diodes connected in parallel to the 2N switching elements, Detected by the diode energization state detection unit, the diode energization state detection unit for detecting the on timing and the off timing of the 2N freewheel diodes from the voltages of the respective units of the power conversion unit, A synchronization signal generating / monitoring unit that generates an ON-side synchronization signal that is synchronously controlled based on an ON timing and generates an OFF-side synchronization signal that is synchronously controlled based on an OFF timing, of the 2N freewheel diodes; Switching control of the switching element based on the on-side synchronization signal and the off-side synchronization signal.
- a gate command generation PWM unit that generates a gate command signal to be turned on, a gate on state detection unit that detects an on timing and an off timing of the 2N switching elements from voltages of each unit of the power conversion unit, and a gate on state detection unit
- a gate command monitoring unit that generates a diode-on detection interval signal based on the gate-on timing of the 2N switching elements detected in the step and the gate command signal generated by the gate command generation PWM unit
- a gate control section including a diode-on section monitoring section that measures a change rate of the diode-on detection section signal generated by the gate command monitoring section, and the gate command generation PWM section includes the diode-on section According to the rate of change of the diode-on detection interval signal of the monitoring unit, the switching element is turned on.
- the power conversion device or the like adjusts the gate command signal so as to adjust the timing.
- the switching element in a vehicle power conversion device that does not require a sensor for detecting the rotational position, even if the rotational speed fluctuates, the switching element is securely turned off before the diode is turned off. In addition, current backflow can be prevented.
- FIG. 1 is a block diagram showing a schematic configuration of a vehicle power converter according to Embodiment 1 of the present invention.
- U phase upper arm, UH phase, U phase lower arm is UL phase
- V phase upper arm is VH phase
- V-phase lower arm is VL phase
- W phase upper arm is WH phase
- W phase lower arm is WL phase
- the power conversion device includes a gate control unit 120 and a power conversion unit 11.
- the power conversion unit 11 performs power conversion based on the stator gate command signal S16 generated by the gate control unit 120.
- the gate control unit 120 generates a stator gate command signal S16 based on the voltage detection signal S11 output from the power conversion unit 11.
- FIG. 2 is a block diagram showing an example of a schematic configuration of the power conversion unit in FIG.
- the power conversion unit 11 includes a three-phase motor element winding 313 associated with a stator (also referred to as a stator) and a field winding associated with a rotor (also referred to as a rotor) as a rotary motor.
- a line 314 is provided.
- the power conversion unit 11 is provided with positive terminals P and FP and negative terminals N and FN.
- the positive terminals P and FP are connected to the positive side of the storage battery 44, and the negative terminals N and FN are storage batteries. 44 is connected to the negative electrode side.
- a capacitor may be used instead of the storage battery 44.
- the positive side voltage VP of the storage battery 44 gives a DC load voltage
- the negative side voltage VN of the storage battery 44 gives a ground voltage.
- the stator side (313) includes a U-phase upper arm switching element (hereinafter referred to as UH element) 31, a U-phase lower arm switching element (hereinafter referred to as UL element) 33, a V-phase upper arm switching element (hereinafter referred to as VH). 35), V-phase lower arm switching element (hereinafter referred to as VL element) 37, W-phase upper arm switching element (hereinafter referred to as WH element) 39, and W-phase lower arm switching element (hereinafter referred to as WL element). 311) is provided.
- UH element U-phase upper arm switching element
- UL element U-phase lower arm switching element
- VH V-phase upper arm switching element
- VL element V-phase lower arm switching element
- WH element W-phase upper arm switching element
- WL element W-phase lower arm switching element
- the UH element 31, UL element 33, VH element 35, VL element 37, WH element 39 and WL element 311 may be IGBTs, bipolar transistors, or electric fields. An effect transistor may be used.
- a U-phase upper arm freewheel diode (hereinafter referred to as a UH diode) 32 is connected to the UH element 31 in parallel.
- a U-phase lower arm freewheel diode (hereinafter referred to as a UL diode) 34 is connected to the UL element 33 in parallel.
- a V-phase upper arm freewheel diode (hereinafter referred to as a VH diode) 36 is connected to the VH element 35 in parallel.
- a V-phase lower arm freewheel diode (hereinafter referred to as VL diode) 38 is connected to the VL element 37 in parallel.
- a W-phase upper arm freewheel diode (hereinafter referred to as WH diode) 310 is connected to the WH element 39 in parallel.
- a W-phase lower arm freewheel diode (hereinafter referred to as WL diode) 312 is connected to the WL element 311 in parallel.
- the UH element 31, UL element 33, VH element 35, VL element 37, WH element 39, and WL element 311 constitute a three-phase bridge circuit, and the connection point between the UH element 31 and the UL element 33 is the motor element winding 313.
- the connection point between the VH element 35 and the VL element 37 is connected to the V-phase terminal of the motor element winding 313, and the connection point between the WH element 39 and the WL element 311 is connected to the motor element winding 313.
- W-phase terminal it is connected to the electric motor in a circular manner at equiangular intervals.
- connection point between the UH element 31, the VH element 35, and the WH element 39 is connected to the positive terminal P via the stator gate driving unit 315, and the connection point between the UL element 33, the VL element 37, and the WL element 311 is a stator gate.
- the negative electrode side terminal N is connected to the negative electrode side N via the drive unit 315.
- a stator gate drive unit 315 and a three-phase voltage detection unit 318 are provided on the stator side (313).
- the stator gate driving unit 315 performs the gate of the UH element 31, the gate of the UL element 33, the gate of the VH element 35, the gate of the VL element 37, the gate of the WH element 39, and WL.
- the gate of the element 311, the UH element 31, the UL element 33, the VH element 35, the VL element 37, the WH element 39 and the WL element 311 are turned on / off.
- the three-phase voltage detection unit 318 applies the voltage Vp of the positive terminal applied to the connection point between the UH element 31, the VH element 35 and the WH element 39, and the connection point between the UL element 33, the VL element 37 and the WL element 311.
- the W-phase induced voltage Vw generated at the connection point between the element 39 and the WL element 311 is detected and output as a voltage detection signal S11.
- a field switching element 324 for controlling the field current by PWM Pulse Width Modulation
- a field free wheel diode 326 is connected in parallel to the field switching element 324.
- the field switching element 324 an IGBT may be used, a bipolar transistor may be used, or a field effect transistor may be used.
- a diode 325 is connected between a pair of wires connected to both ends of the field winding 314, a field switching element 324 is inserted into one of these wires, and a resistor 30 is inserted into the other. .
- a rotor gate drive unit 317, a rotor gate command generation unit 319, and a rotor current detection unit 320 are provided on the rotor side.
- the rotor current detector 320 outputs a detected value irot of the rotor current based on the voltage across the resistor 30.
- the rotor gate command generation unit 319 generates a rotor gate command signal S21 based on the detected value irot of the rotor current.
- the rotor gate drive unit 317 turns on / off the field switching element 324 by driving the gate of the field switching element 324 based on the rotor gate command signal S21.
- FIG. 2 shows the case of a three-phase field winding type generator motor having a three-phase motor armature winding 313 provided in the stator and a field winding 314 provided in the rotor.
- the number of phases and the field system are not limited to these.
- a multiphase other than three phases, a permanent magnet system, or the like may be used.
- the three-phase motor element winding 313 in the power conversion unit 11 and the field winding 314 provided in the rotor are also included. May be a separate structure type generator-motor apparatus physically separated from other components.
- the gate drive unit 120 includes a diode energization state detection unit 12, a synchronization detection PLL unit 13, a cycle check unit 14, a stator gate command generation PWM unit 15, a stator gate on state detection unit 16, and a stator gate.
- a command monitoring unit 17, a diode on section monitoring unit 18, a diode on signal integration unit (hereinafter referred to as a Don signal integration unit) 12g, and a diode off signal integration unit (hereinafter referred to as a Doff signal integration unit) 12ga are provided. .
- the diode energization state detection unit 12 inputs the voltage detection signal S11, and the on-timing of the six UH diodes 32, UL diodes 34, VH diodes 36, VL diodes 38, WH diodes 310, and WL diodes 312 in FIG. Detects off timing.
- the diode energization state detection unit 12 includes: U-phase upper arm diode on signal detector (hereinafter referred to as UH phase Don signal detector) 12a, U-phase lower arm diode on signal detector (hereinafter referred to as UL phase Don signal detector) 12b, V-phase upper arm diode on signal detector (hereinafter referred to as VH phase Don signal detector) 12c, V-phase lower arm diode on signal detector (hereinafter referred to as VL phase Don signal detector) 12d, W-phase upper arm diode on signal detector (hereinafter referred to as WH-phase Don signal detector) 12e, W-phase lower arm diode on signal detector (hereinafter referred to as WL phase Don signal detector) 12 f, U phase upper arm diode off signal detector (hereinafter referred to as UH phase Doff signal detector) 12aa, U-phase lower arm diode off signal detector (hereinafter referred to as UL phase Doff signal detector) 12ba, V
- the UH phase Don signal detection unit 12a outputs a U phase upper arm diode on detection signal (hereinafter referred to as a UH phase Don detection signal) S12uh based on the on timing of the UH diode 32.
- the UL phase Don signal detection unit 12b outputs a U phase lower arm diode ON detection signal (hereinafter referred to as UL phase Don detection signal) S12ul based on the ON timing of the UL diode 34.
- UL phase Don detection signal U phase lower arm diode ON detection signal
- the VH phase Don signal detector 12c outputs a V phase upper arm diode on detection signal (hereinafter referred to as a VH phase Don detection signal) S12vh based on the on timing of the VH diode 36.
- the VL phase Don signal detection unit 12d outputs a V phase lower arm diode ON detection signal (hereinafter referred to as a VL phase Don detection signal) S12vl based on the ON timing of the VL diode 38.
- the WH phase Don signal detection unit 12e outputs a W phase upper arm diode ON detection signal (hereinafter referred to as a WH phase Don detection signal) S12wh based on the ON timing of the WH diode 310.
- a W phase upper arm diode ON detection signal hereinafter referred to as a WH phase Don detection signal
- the WL-phase Don signal detection unit 12f outputs a W-phase lower arm diode ON detection signal (hereinafter referred to as a WL-phase Don detection signal) S12wl based on the ON timing of the WL diode 312.
- the UH phase Doff signal detection unit 12aa outputs a U phase upper arm diode off detection signal (hereinafter referred to as a UH phase Doff detection signal) S12uha based on the off timing of the UH diode 32.
- the UL phase Doff signal detection unit 12ba outputs a U phase lower arm diode off detection signal (hereinafter referred to as a UL phase Doff detection signal) S12ula based on the off timing of the UL diode 34.
- a UL phase Doff detection signal U phase lower arm diode off detection signal
- the VH phase Doff signal detector 12ca outputs a V phase upper arm diode off detection signal (hereinafter referred to as a VH phase Doff detection signal) S12vha based on the off timing of the VH diode 36.
- a VH phase Doff detection signal (hereinafter referred to as a VH phase Doff detection signal) S12vha based on the off timing of the VH diode 36.
- the VL phase Doff signal detection unit 12da outputs a V phase lower arm diode off detection signal (hereinafter referred to as a VL phase Doff detection signal) S12vla based on the off timing of the VL diode 38.
- the WH phase Doff signal detection unit 12ea outputs a W phase upper arm diode off detection signal (hereinafter referred to as a WH phase Doff detection signal) S12wha based on the off timing of the WH diode 310.
- a W phase upper arm diode off detection signal hereinafter referred to as a WH phase Doff detection signal
- WL phase Doff signal detection unit 12fa outputs a W phase lower arm diode off detection signal (hereinafter referred to as WL phase Doff detection signal) S12wla based on the off timing of WL diode 312.
- the UH phase Don signal detector 12a, the UL phase Don signal detector 12b, the VH phase Don signal detector 12c, the VL phase Don signal detector 12d, the WH phase Don signal detector 12e, the WL phase Don signal detector 12f As the UH phase Doff signal detection unit 12aa, the UL phase Doff signal detection unit 12ba, the VH phase Doff signal detection unit 12ca, the VL phase Doff signal detection unit 12da, the WH phase Doff signal detection unit 12ea, and the WL phase Doff signal detection unit 12fa, For example, a synchronous counter can be used.
- the synchronous counter it is possible to determine whether the diode is on or off by continuing to detect whether the diode is on or off within a predetermined period, and to reduce erroneous detection due to noise contamination. it can.
- the Don signal integration unit 12g has the same UH phase Don detection signal S12uh, UL phase Don detection signal S12ul, VH phase Don detection signal S12vh, VL phase Don detection signal S12vl, WH phase Don detection signal S12wh, and WL phase Don detection signal S12wl.
- a diode-on integrated signal S12 integrated on the time series is generated.
- the Doff signal integration unit 12ga has the same UH phase Doff detection signal S12uha, UL phase Doff detection signal S12ula, VH phase Doff detection signal S12vha, VL phase Doff detection signal S12vla, WH phase Doff detection signal S12wha, and WL phase Doff detection signal S12wla.
- a diode-off integrated signal S12a integrated on the time series is generated.
- the Don signal integration unit 12g and the Doff signal integration unit 12ga for example, a 6-input OR circuit can be used, respectively.
- the UH phase Don signal detection unit 12a, the UL phase Don signal detection unit 12b, the VH phase Don signal detection unit 12c, the VL phase Don signal detection unit 12d, the WH phase Don signal detection unit 12e, and the WL phase Don signal detection unit 12f may be configured so that the outputs are shared through a buffer (integrated on the same time series), the UH phase Doff signal detection unit 12aa, and the UL phase Doff signal detection unit 12ba.
- VH phase Doff signal detection unit 12ca, VL phase Doff signal detection unit 12da, WH phase Doff signal detection unit 12ea, and WL phase Doff signal detection unit 12fa are shared through a buffer (integrated on the same time series)
- the Doff signal integration unit 12ga may be configured as described above.
- the synchronization detection PLL unit 13 generates an on-side synchronization signal S13 that is synchronously controlled based on the diode-on integrated signal S12, and generates an off-side synchronization signal S13a that is synchronously controlled based on the diode-off integrated signal S12a. That is, the synchronization detection PLL unit 13 can be provided with an on-side PLL circuit 121 and an off-side PLL circuit 122. Then, the on-side PLL circuit 121 generates an on-side synchronization signal S13 that is synchronously controlled based on the diode-on integrated signal S12. The off-side PLL circuit 122 generates an off-side synchronization signal S13a that is synchronously controlled based on the diode-off integrated signal S12a.
- the generation of the on-side synchronization signal S13 and the generation of the off-side synchronization signal S13a can be performed independently. That is, the synchronization detection PLL unit 13 can be provided with an on-side PLL circuit 121 and an off-side PLL circuit 122.
- the on-side PLL circuit 121 can generate the on-side synchronization signal S13 that is synchronously controlled based on the diode-on integrated signal S12.
- the off-side PLL circuit 122 can generate the off-side synchronization signal S13a that is synchronously controlled based on the diode-off integrated signal S12a.
- FIG. 3 is a block diagram illustrating an example of a phase synchronization circuit used in the on-side PLL circuit 121 and the off-side PLL circuit 122 of the synchronization detection PLL unit 13 of the power conversion device in FIG.
- a phase synchronization circuit (PLL) 51 includes a 1 / n divider 52, a phase comparison period (PD) 53, a PI controller (P (proportional) I (integral) control) 54, and a voltage controlled oscillator (VCO) 55. Is provided. Note that a low pass filter may be used instead of the PI controller 54.
- the oscillation signal ⁇ * generated by the voltage controlled oscillator 55 is frequency-divided by n (n is a positive integer) by the 1 / n divider 52 and then input to the phase comparator 53.
- the waveform of the oscillation signal ⁇ * may be a sine wave W1 or a rectangular wave W2.
- the phase comparator 53 compares the phase with the externally input periodic signal Sy, and the comparison result is input to the voltage controlled oscillator 55 via the PI controller 54, whereby the phase of the oscillation signal ⁇ * is obtained.
- the frequency of the oscillation signal ⁇ * is controlled so that is coincident with the phase of the periodic signal Sy.
- the oscillation signal ⁇ * is integrated by the integrator (1 / s) 56 to generate a triangular wave signal ⁇ *.
- the triangular wave signal ⁇ * is output as the on-side synchronization signal S13 by using the diode-on integrated signal S12 as the periodic signal Sy. To do.
- the triangular wave signal ⁇ * is output as the off-side synchronization signal S13a by using the diode-off integrated signal S12a as the periodic signal Sy. To do.
- the cycle check unit 14 includes a UH phase Don detection signal S12uh, a UL phase Don detection signal S12ul, a VH phase Don detection signal S12vh, a VL phase Don detection signal S12vl, a WH phase Don detection signal S12wh, and a WL phase Don detection signal.
- the stator gate command generation PWM unit 15 performs switching control of the UH element 31, the UL element 33, the VH element 35, the VL element 37, the WH element 39, and the WL element 311 based on the on-side synchronization signal S13 and the off-side synchronization signal S13a.
- a gate command signal S16 for performing the above is generated.
- the stator gate command generation PWM unit 15 includes: U-phase upper arm-on-side triangular wave generator (UH phase OnPWM) 15a, U-phase upper arm off-side triangular wave generator (UH phase OffPWM) 15aa, U-phase upper arm gate command signal generator (UH phase SW) 15ab, U-phase lower arm on-side triangular wave generator (UL phase OnPWM) 15b, U-phase lower arm off-side triangular wave generator (UL phase OffPWM) 15ba, U-phase lower arm gate command signal generator (UL-phase SW) 15bb, V-phase upper arm on-side triangular wave generator (VH phase OnPWM) 15c, V-phase upper arm off-side triangular wave generator (VH phase OffPWM) 15ca, V-phase upper arm gate command signal generator (VH phase SW) 15cb, V-phase lower arm on-side triangular wave generator (VL phase OnPWM) 15d, V-phase lower arm off side triangular wave generator (VL
- the U-phase upper arm on-side triangular wave generation unit 15a is based on the U-phase upper arm on-side triangular wave (from the previous on-timing of the UH diode 32 indicated by the UH-phase Don detection signal S12uh to the current on-timing S13). (Hereinafter referred to as UH phase on-side triangular wave) S15uh is generated.
- the U-phase upper arm off-side triangular wave generator 15aa generates a U-phase upper arm off-side triangular wave (based on the off-side synchronization signal S13a from the previous off timing to the current off timing of the UH diode 32 indicated by the UH phase Doff detection signal S12uha. (Hereinafter referred to as UH-phase off-side triangular wave) S15 uha is generated.
- the U-phase upper arm gate command signal generation unit 15ab generates the gate command signal S16uh of the UH element 31 based on the comparison result between the UH phase on-side triangular wave S15uh and the UH phase off-side triangular wave S15uha.
- the U-phase lower arm on-side triangular wave generator 15b is based on the on-phase synchronization signal S13 from the previous on-timing of the UL diode 34 indicated by the UL-phase Don detection signal S12ul to the current on-timing ( (Hereinafter referred to as UL phase on-side triangular wave) S15ul is generated.
- the U-phase lower arm off-side triangular wave 15ba is based on the U-phase lower arm off-side triangular wave (based on the off-side synchronization signal S13a from the previous off timing to the current off timing of the UL diode 34 indicated by the UL phase Doff detection signal S12ula. (Hereinafter referred to as UL phase off-side triangular wave) S15 ula is generated.
- the U-phase lower arm gate command signal generation unit 15bb generates the gate command signal S16ul of the UL element 33 based on the comparison result between the UL phase on-side triangular wave S15ul and the UL phase off-side triangular wave S15ula.
- the V-phase upper arm on-side triangular wave generator 15c is based on the V-phase upper arm on-side triangular wave (on the basis of the on-side synchronization signal S13 from the previous on-timing to the current on-timing of the VH diode 36 indicated by the VH phase Don detection signal S12vh. (Hereinafter referred to as VH phase on-side triangular wave) S15vh is generated.
- the V-phase upper arm off-side triangular wave generator 15ca generates a V-phase upper arm off-side triangular wave (based on the off-side synchronization signal S13a from the previous off timing to the current off timing of the VH diode 36 indicated by the VH phase Doff detection signal S12vha. (Hereinafter referred to as VH phase off-side triangular wave) S15 vha is generated.
- the V-phase upper arm gate command signal generation unit 15cb generates the gate command signal S16vh of the VH element 35 based on the comparison result between the VH-phase on-side triangular wave S15vh and the VH-phase off-side triangular wave S15vha.
- the V-phase lower arm on-side triangular wave generating unit 15d generates a V-phase lower arm on-side triangular wave (based on the on-side synchronization signal S13 from the previous on-timing of the VL diode 38 indicated by the VL-phase Don detection signal S12vl to the current on-timing ( (Hereinafter referred to as the VL phase on-side triangular wave) S15vl is generated.
- V-phase lower arm off-side triangular wave 15da is based on the V-phase lower arm off-side triangular wave (based on the off-side synchronization signal S13a from the previous off timing to the current off timing of the VL diode 38 indicated by the VL phase Doff detection signal S12vla. (Hereinafter referred to as VL phase off-side triangular wave) S15vla is generated.
- the V-phase lower arm gate command signal generation unit 15db generates the gate command signal S16vl of the VL element 37 based on the comparison result between the VL-phase on-side triangular wave S15vl and the VL-phase off-side triangular wave S15vla.
- the W-phase upper arm on-side triangular wave generating unit 15e is based on the on-phase synchronization signal S13 from the previous on-timing of the WH diode 310 indicated by the WH-phase Don detection signal S12wh to the current on-timing ( (Hereinafter referred to as the WH phase on-side triangular wave) S15wh is generated.
- the W-phase upper arm off-side triangular wave generating unit 15ea is based on the off-phase synchronization signal S13a from the previous off timing to the current off timing of the WH diode 310 indicated by the WH-phase Doff detection signal S12wha. (Hereinafter referred to as WH phase off-side triangular wave) S15wha is generated.
- the W-phase upper arm gate command signal generation unit 15eb generates the gate command signal S16vh of the WH element 39 based on the comparison result between the WH-phase on-side triangular wave S15wh and the WH-phase off-side triangular wave S15whha.
- the W-phase lower arm on-side triangular wave generating unit 15f is based on the on-phase synchronization signal S13 from the previous on-timing of the WL diode 312 indicated by the WL-phase Don detection signal S12wl to the current on-timing ( (Hereinafter referred to as WL phase on-side triangular wave) S15wl is generated.
- the W-phase lower arm off-side triangular wave generation unit 15fa is based on the off-phase synchronization signal S13a from the previous off timing to the current off timing of the WL diode 312 indicated by the WL phase Doff detection signal S12wla. (Hereinafter referred to as WL phase off-side triangular wave) S15vla is generated.
- the W-phase lower arm gate command signal generation unit 15fb generates the gate command signal S16wl of the VL element 311 based on the comparison result between the WL-phase on-side triangular wave S15wl and the WL-phase off-side triangular wave S15wl.
- FIG. 4 is a timing chart showing signal waveforms at various parts of the power conversion apparatus of FIG.
- the U phase (a) UH phase Don detection signal S12uh, (c) UL phase Don detection signal S12ul, (b) UH phase Doff detection signal S12uha, (d) UL phase Doff detection signal.
- the direct current set by the positive terminal voltage Vp and the negative terminal voltage Vn is converted into a three-phase alternating current and applied to the U-phase terminal, V-phase terminal, and W-phase terminal of the motor element winding 313. Is done.
- the rotor current detector 320 outputs a signal indicating the detected value irot of the rotor current to the rotor gate command generator 319 according to the voltage across the resistor 30.
- the rotor gate command generation unit 319 generates a rotor gate command signal S21 based on the detected value irot of the rotor current, and the rotor gate command signal S21 is input to the rotor gate drive unit 317, whereby the field switching element 324 is generated. Are driven.
- the three-phase voltage detection unit 318 detects the positive terminal voltage Vp, the negative terminal voltage Vn, the U-phase induced voltage Vu, the V-phase induced voltage Vv, and the W-phase induced voltage Vw as a voltage detection signal S11. 1 is input to the diode energization state detection unit 12.
- the diode energization state detection unit 12 is configured such that when a forward current flows through the UH diode 32, the UL diode 34, the VH diode 36, the VL diode 38, the WH diode 310, and the WL diode 312, and a forward voltage Vf is generated at both ends thereof. Detects diode on state.
- the diode energization state detection unit 12 has no forward current flowing through the UH diode 32, UL diode 34, VH diode 36, VL diode 38, WH diode 310, and WL diode 312, and the both ends thereof are open.
- the diode off state is detected when the direction voltage Vf is not generated.
- the U-phase induced voltage Vu decreases in the negative direction to Vn ⁇ Vf with respect to the negative terminal voltage Vn, and when the current flows through the UL diode 34, the positive direction. Increases in amplitude to Vp + Vf with respect to the positive terminal voltage Vp. Focusing on the U-phase induced voltage Vu, the switching devices (UH element, UL element) 31 and 33 are turned on by synchronous rectification, so that only the on period decreases by this Vf and the positive terminal voltage Vp and the negative side An amplitude determined by the terminal voltage Vn is generated. Further, when the switching devices (UH element, UL element) 31, 33 are turned off, the U-phase induced voltage Vu returns to the amplitude determined by the positive terminal voltage Vp, Vp + Vf, and Vn ⁇ Vf.
- the diode energization state detection unit 12 detects the ON timing of each of the UH diode 32, the VH diode 36, and the WH diode 310 based on the following equations (1) to (3).
- the diode energization state detection unit 12 detects the off timing of each of the UH diode 32, the VH diode 36, and the WH diode 310 based on the following formulas (4) to (6).
- the off state of the UH diode 32 Vu ⁇ Vp (4) OFF state of VH diode 36: Vv ⁇ Vp (5) WH diode 310 OFF state: Vw ⁇ Vp (6)
- the diode energization state detection unit 12 detects the ON timing of each of the UL diode 34, the VL diode 38, and the WL diode 312 based on the following equations (7) to (9).
- the diode energization state detection unit 12 detects the off timing of each of the UL diode 34, the VL diode 38, and the WL diode 312 based on the following formulas (10) to (12).
- the UH diode 32 When the phases of the U-phase induced voltage Vu, the V-phase induced voltage Vv, and the W-phase induced voltage Vw are shifted by 120 °, the UH diode 32 indicates that the U-phase induced voltage Vu is an expression with respect to the positive terminal voltage Vp. Conduction is started at a timing satisfying (1). Then, the UH phase Don signal detection unit 12a detects the ON state of the UH diode 32 and outputs the UH phase Don detection signal S12uh to the Don signal integration unit 12g.
- the UH diode 32 stops conducting at the timing when the U-phase induced voltage Vu satisfies the expression (4) with respect to the positive terminal voltage Vp.
- the UH phase Doff signal detection unit 12aa detects the OFF state of the UH diode 32 and outputs the UH phase Doff detection signal S12uha to the Doff signal integration unit 12ga.
- the ON state and the OFF state of the UL diode 34, the VH diode 36, the VL diode 38, the WH diode 310, and the WL diode 312 are the positive side of the U-phase induced voltage Vu, the V-phase induced voltage Vv, and the W-phase induced voltage Vw. It can detect by comparing with terminal voltage Vp and negative side terminal voltage Vn.
- the diode energization state detection unit 12 includes a UH phase Don detection signal S12uh, a UL phase Don detection signal S12ul, a VH phase Don detection signal S12vh, a VL phase Don detection signal S12vl, a WH phase Don detection signal S12wh, and a WL phase Don detection signal.
- S12wl is output to the Don signal integration unit 12g, the cycle check unit 14, and the stator gate command generation PWM unit 15.
- the Don signal integration unit 12g includes the UH phase Don detection signal S12uh, the UL phase Don detection signal S12ul, the VH phase Don detection signal S12vh, the VL phase Don detection signal S12vl, the WH phase Don detection signal S12wh, and the WL phase Don detection signal S12wl.
- the diode-on integrated signal S ⁇ b> 12 is generated by taking the logical sum of these and output to the on-side PLL circuit 121.
- the diode energization state detection unit 12 includes a UH phase Doff detection signal S12uha, a UL phase Doff detection signal S12ula, a VH phase Doff detection signal S12vha, a VL phase Doffn detection signal S12vla, a WH phase Doff detection signal S12wha, and a WL phase Doff detection signal.
- S12wla is output to the Doff signal integration unit 12ga, the cycle check unit 14, and the stator gate command generation PWM unit 15.
- the Doff signal integration unit 12ga includes the UH phase Doff detection signal S12uha, the UL phase Doff detection signal S12ula, the VH phase Doff detection signal S12vha, the VL phase Doffn detection signal S12vla, the WH phase Doff detection signal S12wa, and the WL phase Doff detection signal S12wla. Is generated and output to the off-side PLL circuit 122.
- the on-side PLL circuit 121 generates the on-side synchronization signal S13 that is synchronously controlled based on the diode-on integrated signal S12, and the off-side PLL circuit 122 is the off-state that is synchronously controlled based on the diode-off integrated signal S12a.
- a side synchronization signal S13a is generated.
- the on-side PLL circuit 121 is locked only when the diode on-timing for the six phases UH, UL, VH, VL, WH, and WL is close to equal intervals, and the on-side synchronization is performed. Since signal S13 is not generated, there is no short circuit or open between the 6 phases of UH phase, UL phase, VH phase, VL phase, WH phase and WL phase by synchronous control based on diode-on integrated signal S12 Detecting that the V and W phases are shifted by + 120 ° and -120 ° with respect to the U phase, and detecting that the UL phase is shifted by 180 ° with respect to the UH phase You can do it.
- the off-side PLL circuit 121 is locked only when the diode off timings for the six phases UH, UL, VH, VL, WH, and WL are close to equal intervals, and the off-side synchronization is performed. Since the signal S13a is not generated, there is no short circuit or open between the 6 phases of the UH phase, the UL phase, the VH phase, the VL phase, the WH phase, and the WL phase by performing synchronous control based on the diode-off integrated signal S12a. Detecting that the V and W phases are shifted by + 120 ° and -120 ° with respect to the U phase, and detecting that the UL phase is shifted by 180 ° with respect to the UH phase You can do it.
- the on-state PLL circuit 121 and the off-state are turned off.
- the side PLL circuit 121 can be locked stably, and the on-side synchronization signal S13 and the off-side synchronization signal S13a can be generated stably.
- FIG. 5 is a timing chart showing a method for monitoring whether the period and detection order of each phase by the period check unit 14 in FIG. 1 are correct over all phases.
- the cycle check unit 14 performs a predetermined synchronization determination section SK before and after the time axis of the on-side synchronization signal S13 in the UH phase, UL phase, VH phase, VL phase, WH phase, and WL phase. Provide for each phase.
- the synchronization determination section SK is connected to all phases of the UH phase, the UL phase, the VH phase, the VL phase, the WH phase, and the WL phase, and the UH phase Don detection signal S12uh, the UL phase Don detection signal S12ul, and the VH phase Don.
- the detection signal S12vh, the VL phase Don detection signal S12vl, the WH phase Don detection signal S12wh, and the WL phase Don detection signal S12wl are in the UH phase, UL phase, VH phase, VL phase, WH phase, and WL phase synchronization determination intervals SK, respectively. It is determined whether or not the detection cycle of the diode-on timing is observed by checking whether or not it is present. Then, when it is confirmed that the detection cycle of the diode-on timing is observed, the cycle check unit 14 outputs a synchronization determination signal S14 to the stator gate command generation PWM unit 15.
- the cycle check unit 14 can determine whether or not the detection cycle of the diode off timing is kept in the same manner as the diode on timing determination process.
- Curr_phase [i] and Last_phase [i] are data such as flags that are written and rewritten in, for example, an area assigned to a specific position on the memory.
- FIG. 6A and 6B are diagrams for explaining phase determination in the cycle check unit 14, wherein FIG. 6A is a block diagram showing a schematic configuration of a phase detection register for determining which phase is the current phase, and FIG. 6B. Indicates an ON-side synchronization signal.
- FIG. 6 each time the on-side synchronization signal S13 advances by one cycle Y1, the argument i of Curr_phase [i] and Last_phase [i] is incremented by 1 to i + 1.
- Curr_phase [i] and Last_phase [i] circulate indefinitely.
- phase data in the case of 3 phases, Null indicating phase detection failure, UH indicating that a UH phase has been detected, UL indicating that a UL phase has been detected, VH indicating that a VH phase has been detected, VL indicating that a VL phase has been detected, WH indicating that the WH phase has been detected, and WL indicating that the WL phase has been detected, 7 types are prepared.
- FIG. 7 is a diagram showing a list of current and past phase detection update methods of the power conversion device of FIG.
- the UH phase is taken as an example, but the same applies to other UL phases, VH phases, VL phases, WH phases, and WL phases.
- the on-side synchronization signal S13, the PLL angle 0 detection timing at that time, the UH phase Don (diode on) timing, the ancestor Don (diode on) timing, and the Curr_phase [i ], Last_phase [i] is shown.
- Curr_phase [i] UH is written in Curr_phase [i] at the timing when the UH phase diode-on is detected. It is.
- the information of Curr_phase [i] is inherited to Last_phase [i] basically every time the on-side synchronization signal S13 advances by one cycle Y1. If the previous and current phase detections are the same, the Last_phase [i] data is updated. If the previous and current phase detections are different, the same phase is continuously detected by writing null. Make sure that
- Last_phase [i] is set to the detection phase state by a preset number of periods. On the condition that there is no change, it is possible to output a synchronization determination signal S14 indicating a state in which synchronization and phase detection are successful.
- a synchronization determination signal S14 indicating a state in which synchronization and phase detection are successful.
- pattern (3) when there is data in Last, other phase pulses different from last are ignored, and in pattern (6), it becomes null when multiple pulses arrive (including simultaneous arrival).
- pattern (8) when there is data in Last, the other-phase pulse different from last is ignored.
- the cycle check unit 14 In addition to the synchronization determination signal S14, the cycle check unit 14 outputs the value of Last_phase [n] in the current cycle of the on-side synchronization signal S13 to the stator gate command generation PWM unit 15 as phase estimation information S14a. Similarly, the cycle check unit 14 outputs the value of Last_phase [n] in the current cycle of the off-side synchronization signal S13 to the stator gate command generation PWM unit 15 as phase estimation information S14b.
- the U-phase upper arm on-side triangular wave generator 15a is activated at 0 ° of the on-side synchronization signal S13 in the UH phase detection section of the previous cycle.
- the UH phase on-side triangular wave S15uh is generated based on the count value counted at the time interval reset at 0 ° of the on-side synchronization signal S13 in the UH phase detection section of the current cycle.
- the U-phase upper arm off-side triangular wave generation unit 15aa is activated at 0 ° of the off-side synchronization signal S13a in the UH phase detection interval of the previous cycle, and is turned off in the UH phase detection interval of the current cycle.
- the UH phase off-side triangular wave S15uha is generated based on the count value counted at the time interval reset at 0 ° of the side synchronization signal S13a.
- the stator gate command generation PWM unit 15 also turns on the other UL phase, VH phase, VL phase, WH phase, and WL phase in the same manner as the method of generating the UH phase on-side triangular wave S15uh and the UH phase off-side triangular wave S15uha. A triangular wave and an off-side triangular wave are generated.
- the U-phase upper arm gate command signal generation unit 15ab generates the UH phase when the UH phase on-side triangular wave S15uh and the UH phase off-side triangular wave S15uha are generated to have a downward slope.
- the gate command signal S16uh is generated so that the UH element 31 is turned on in a section where the level of the on-side triangular wave S15uh> the level of the UH-phase off-side triangular wave S15uha.
- the UH element 31 When the UH element 31 is turned on in a section where the level of the UH phase on-side triangular wave S15uh> the level of the UH phase off-side triangular wave S15uha, the UH element 31 is avoided from the viewpoint of avoiding the reverse flow of the current flowing through the UH element 31. A margin may be expected in the ON section.
- a level LV4 indicating whether or not 31 is turned on may be provided.
- a level LV1 indicating whether the element 31 is turned off may be provided.
- a level LV3 indicating the ON section angle of the current synchronous rectification UH element 31 may be provided.
- This level LV3 may turn on the UH element 31 after the falling time t1 of the UH-phase Don detection signal S12uh in order to turn on the UH element 31 after the UH diode 32 is turned on in synchronous rectification. It is possible to determine how many times the UH element 31 is to be turned on within the possible interval and at an electrical angle as a synchronous rectification.
- the UH-phase on-side triangular wave S15uh reaches level LV4
- the UH-phase on-side triangular wave S15uh reaches level LV3 before the UH-phase off-side triangular wave S15uha reaches level LV1 after the on-timing of the UH diode.
- the front can be defined as the ON period of the SH element 31.
- the U-phase upper arm gate command signal generation unit 15ab sets the ON period of the UH element 31 by comparing the level of the UH-phase ON-side triangular wave S15uh with the level LV3. That is, in (j) (k) of FIG.
- Time t1 is the time when the UH phase on-side triangular wave S15uh reaches level LV4
- Time t3 is the time when the UH phase on-side triangular wave S15uh reaches level LV3
- the time t4 is the time when the UH phase off-side triangular wave S15uha reaches the level LV1
- PMA from time t1 to time t2 is a margin period on the UH phase on-side triangular wave S15uh side
- the TMA from the time t4 to the rising edge of the UH phase off-side triangular wave S15uha indicates the margin period on the UH phase off-side triangular wave S15uha side
- the KON from the time t1 to the time t3 before indicates the ON period of the UH element 31.
- the stator gate command generation PWM unit 15 also applies the gate command signals S16ul, S16vh, S16vl, S16wh, and other UL phases, VH phases, VL phases, WH phases, and WL phases in the same manner as the method of generating the gate command signal S16uh. S16wl is generated.
- the stator gate ON state detection unit 16 detects the ON timing and OFF timing of the UH element 31, UL element 33, VH element 35, VL element 37, WH element 39 and WL element 311 based on the voltage detection signal S11.
- the switching element ON detection signal S17 is output.
- the stator gate command monitoring unit 17 monitors the synchronous rectification operation by comparing the ON timing of the UH element 31, the UL element 33, the VH element 35, the VL element 37, the WH element 39, and the WL element 311 with the stator gate command signal S16. Then, the diode-on detection interval signal S18 is output.
- stator gate command generation PWM unit 15 outputs a diode-on detection interval measurement signal S19 based on the diode-on detection interval signal S18 output from the stator gate command monitoring unit 17, for example, in the gate command signal adjustment unit 1501. .
- the diode-on section monitoring section 18 outputs a diode-on detection section change rate signal S20 based on the diode-on detection section measurement signal S19 output from the gate command signal adjustment section 1501.
- the stator gate command generation PWM unit 15 includes an on-side synchronization signal S13, an off-side synchronization signal S13a, a monitoring result by the stator gate command monitoring unit 17 (diode-on detection section signal S18), and a monitoring result by the diode-on section monitoring unit 18 (A stator gate command signal S16 is generated based on the diode-on detection interval change rate signal S20).
- the stator gate command monitoring unit 17 turns off the UH element 31, the UL element 33, the VH element 35, the VL element 37, the WH element 39, and the WL element 311, the UH diode 32, the UL diode 34, the VH diode 36, and VL. It is detected whether the diode 38, the WH diode 310, and the WL diode 312 are turned off as estimated by the gate command generation PWM unit 15.
- the stator gate command monitoring unit 17 performs the UH diode 32 after the UH element 31 is turned off within the time from the off timing of the UH element 31 to the off timing of the UH diode 32. Whether or not the ON period can be detected is monitored, and if it can be detected, the time length is notified to the stator gate command generation PWM unit 15.
- stator gate command generation PWM unit 15 determines, in the gate command signal adjustment unit 1501, the detection state of the on / off time margin of the UH element 31 in the synchronous rectification, and based on the detection state, Shorten or lengthen the ON section compared to the previous cycle.
- FIG. 8 is a timing chart showing signal waveforms of respective parts of the power conversion device of FIG.
- FIG. 8 is a timing chart relating to the U-phase upper arm side, where (a) is a gate command signal S16uh, (b) is a UH element on detection signal S17uh, (c) is a UH diode on detection section signal S18uh, (d) is U-phase induced voltage Vu and (e) indicate UH-phase on-side triangular wave S15uh and UH-phase off-side triangular wave S15uha. Referring to FIG. 8, only the U-phase induced voltage Vu will be described.
- a threshold TH1 for detecting a voltage change corresponding to the forward voltage Vf of the UH diode 32 from the positive terminal voltage Vp is detected with respect to the positive terminal voltage Vp. Take (set) the U-phase induced voltage Vu.
- the threshold value TH1 may be set around Vf / 2.
- the ON detection of the UH element 31 and the threshold value TH1 are set not by the ground potential reference but by the differential with respect to the positive terminal voltage Vp, and the differential comparison amplifier (provided in the stator gate ON state detection unit 16 is shown in the figure. If it is detected by (omitted), the detection accuracy can be improved.
- a threshold TH2 for detecting a voltage change of the forward voltage Vf of the UL diode 34 from the negative terminal voltage Vn is set (set) with respect to the U-phase induced voltage Vu.
- the threshold value TH2 may be set around Vf / 2.
- the detection accuracy can be improved.
- stator gate on state detection unit 16 outputs a UH element on detection signal S17uh to the stator gate command monitoring unit 17 as a detection result of the gate on state of the UH element 31.
- the stator gate on state detection unit 16 The UL element on detection signal S17ul is output as a detection result of the gate on state of the UL element 33, As a detection result of the gate on state of the VH element 35, a VH element on detection signal S17vh is output, As a detection result of the gate-on state of the VL element 37, a VL element-on detection signal S17vl is output, A WH element on detection signal S17wh is output as a detection result of the gate on state of the WH element 39, A WL element ON detection signal S17wl is output as a detection result of the gate ON state of the WL element 311.
- the stator gate command monitoring unit 17 starts from the rising timing t11 of the gate command signal S16uh from the stator gate command generation PWM unit 15 and starts from the falling timing t12 of the UH element ON detection signal S17uh in the subsequent events.
- the UH diode on detection section signal S18uh after the UH element 31 is turned off is generated and output to the stator gate command generation PWM section 15. .
- stator gate command monitoring unit 17 The UL diode on detection section signal S18ul after the UL element 33 is turned off is output, The VH diode on detection section signal S18vh after the VH element 35 is turned off is output, The VL diode on detection section signal S18vl after the VL element 37 is turned off is output, The WH diode on detection section signal S18wh after the WH element 39 is turned off is output, The WL diode ON detection interval signal S18wl after the WL element 311 is turned off is output.
- the gate command signal adjustment unit 1501 of the stator gate command generation PWM unit 15 includes a UL diode on detection interval measurement signal S19ul, a VH diode on detection interval measurement signal S19vh, a VL diode on detection interval measurement signal S19vl, and a WH diode on detection.
- the section measurement signal S19wh and the WL diode ON detection section measurement signal S19wl are output.
- the gate command signal adjustment unit 1501 of the stator gate command generation PWM unit 15 compares the current UH phase off-side triangular wave S15uha with the level LV1, and the time of the section in which level LV1> UH phase off-side triangular wave S15uha is satisfied.
- Period (T2) is measured and recorded by a second counter (not shown) that counts at a predetermined time period (H1).
- the gate command signal adjustment unit 1501 of the stator gate command generation PWM unit 15 compares these times (T1) and (T2) to determine whether the off timing of the UH element 31 is too early or too late.
- T1 and T2 the gate command signal adjustment unit 1501 of the stator gate command generation PWM unit 15 compares these times (T1) and (T2) to determine whether the off timing of the UH element 31 is too early or too late.
- stator gate command generation PWM unit 15 can generate the stator gate command signal S16 so that the UH element 31 can be turned off while always maintaining proper rotation with respect to the rotational fluctuation of the rotary motor.
- the diode on section monitoring unit 18 includes a UH diode on detection section, a UL diode on detection section, a VH diode on detection section, a VL diode on detection section, a WH diode on detection section, and a WL diode counted by the stator gate command generation PWM section 15. Based on the ON detection interval, a diode ON detection interval change rate signal S20 is generated.
- the diode-on detection interval change rate signal S20 indicates the change rate from the diode-on detection interval two phases before to the diode-on detection interval one phase before. Taking the UH phase as an example, the rate of change from the WH diode on detection interval two phases before to the VL diode detection interval one phase before is output as a diode on detection interval change rate signal S20uh.
- the diode on detection interval change rate signal S20 is: The change rate from the WL diode ON detection interval to the VH diode detection interval is output as a UL diode ON detection interval change rate signal S20ul, The change rate from the UH diode ON detection interval to the WL diode detection interval is output as a VH diode ON detection interval change rate signal S20vh. The change rate from the UL diode ON detection interval to the WH diode detection interval is output as a VL diode ON detection interval change rate signal S20vl. The change rate from the VH diode ON detection interval to the UL diode detection interval is output as a WH diode ON detection interval change rate signal S20wh. The change rate from the VL diode on detection interval to the UH diode detection interval is output as the WL diode on detection interval change rate signal S20wl.
- the gate command signal adjustment unit 1501 of the stator gate command generation PWM unit 15 causes the diode-on detection interval to rapidly decrease when the diode-on detection interval change rate signal S20 shows a decrease on the minus side and the decrease rate exceeds a predetermined value.
- the gate command signal S16 is adjusted so that the level LV1 is significantly increased (by a voltage equal to or greater than a predetermined value) and the off timing is greatly accelerated (by a predetermined time). To do. Further, when the diode-on detection interval change rate signal S20 is on the negative side and the decrease rate is equal to or less than a predetermined value or on the positive side, the gate command signal S16 is adjusted to control the off timing based on the comparison result between T1 and T2. .
- stator gate command generation PWM unit 15 can reliably turn off the UH element 31 before the diode is turned off even during sudden acceleration.
- the gate command signal adjustment unit 1501 of the stator gate command generation PWM unit 15 changes the increase amount of the level LV1 according to the decrease rate of the diode-on detection interval change rate signal S20, thereby increasing the time width for advancing the off timing.
- the gate command signal S16 is adjusted so as to be changed.
- the UH element 31 can be reliably turned off before the diode is turned off without extremely reducing the on-time of the switching element.
- the gate command signal adjustment unit 1501 stores in advance a table indicating the relationship between the change rate of the diode-on detection interval change rate signal S20 and the adjustment amount of the level LV1 in a memory (not shown) or the like.
- the adjustment amount of LV1 is determined.
- the level LV1 is set so that the adjustment amount increases as the decrease rate increases.
- the switching element is surely turned off before the diode is turned off, and a vehicle power converter that does not generate a backflow of current is realized. it can.
- the Don signal integration unit 12g and the Doff signal integration unit 12ga, the synchronization detection PLL unit 13, and the cycle check unit 14 constitute a synchronization signal generation / monitoring unit.
- the power conversion device according to the present invention can be applied to various types of rotary electric motors.
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Abstract
Description
図1は、この発明の実施の形態1に係る車両用の電力変換装置の概略構成を示すブロック図である。なお、以下の説明では、
U相上アームをUH相、
U相下アームをUL相、
V相上アームをVH相、
V相下アームをVL相、
W相上アームをWH相、
W相下アームをWL相、
と呼ぶ。この場合、UVWの3相分に対し上下アームを区別することで、2×3=6相分を全相として扱う。
UL素子33にはU相下アームフリーホイールダイオード(以下、ULダイオードと称す)34が並列に接続され、
VH素子35にはV相上アームフリーホイールダイオード(以下、VHダイオードと称す)36が並列に接続され、
VL素子37にはV相下アームフリーホイールダイオード(以下、VLダイオードと称す)38が並列に接続され、
WH素子39にはW相上アームフリーホイールダイオード(以下、WHダイオードと称す)310が並列に接続され、
WL素子311にはW相下アームフリーホイールダイオード(以下、WLダイオードと称す)312が並列に接続されている。
U相上アームダイオードオン信号検出部(以下、UH相Don信号検出部と称す)12a、
U相下アームダイオードオン信号検出部(以下、UL相Don信号検出部と称す)12b、
V相上アームダイオードオン信号検出部(以下、VH相Don信号検出部と称す)12c、
V相下アームダイオードオン信号検出部(以下、VL相Don信号検出部と称す)12d、
W相上アームダイオードオン信号検出部(以下、WH相Don信号検出部と称す)12e、
W相下アームダイオードオン信号検出部(以下、WL相Don信号検出部と称す)12 f、
U相上アームダイオードオフ信号検出部(以下、UH相Doff信号検出部と称す)12aa、
U相下アームダイオードオフ信号検出部(以下、UL相Doff信号検出部と称す)12ba、
V相上アームダイオードオフ信号検出部(以下、VH相Dff信号検出部と称す)12ca、
V相下アームダイオードオフ信号検出部(以下、VL相Doff信号検出部と称す)12da、
W相上アームダイオードオフ信号検出部(以下、WH相Doff信号検出部と称す)12ea、
W相下アームダイオードオフ信号検出部(以下、WL相Doff信号検出部と称す)12fa、が設けられている。
U相上アームオン側三角波生成部(UH相OnPWM)15a、
U相上アームオフ側三角波生成部(UH相OffPWM)15aa、
U相上アームゲート指令信号生成部(UH相SW)15ab、
U相下アームオン側三角波生成部(UL相OnPWM)15b、
U相下アームオフ側三角波生成部(UL相OffPWM)15ba、
U相下アームゲート指令信号生成部(UL相SW)15bb、
V相上アームオン側三角波生成部(VH相OnPWM)15c、
V相上アームオフ側三角波生成部(VH相OffPWM)15ca、
V相上アームゲート指令信号生成部(VH相SW)15cb、
V相下アームオン側三角波生成部(VL相OnPWM)15d、
V相下アームオフ側三角波生成部(VL相OffPWM)15da、
V相下アームゲート指令信号生成部(VL相SW)15db、
W相上アームオン側三角波生成部(WH相OnPWM)15e、
W相上アームオフ側三角波生成部(WH相OffPWM)15ea、
W相上アームゲート指令信号生成部(WH相SW)15eb、
W相下アームオン側三角波生成部(WL相OnPWM)15f、
W相下アームオフ側三角波生成部(WL相OffPWM)15fa、および
W相下アームゲート指令信号生成部(WL相SW)15fbを設ける。
また、(e)U相誘起電圧信号Vu、(f)V相誘起電圧信号Vv、(g)W相誘起電圧信号Vw、(h)オン側同期信号S13、(i)オフ側同期信号S13aを示す。
Vp≦Vu≦Vp+Vf (1)
VHダイオード36のオン状態:
Vp≦Vv≦Vp+Vf (2)
WHダイオード310のオン状態:
Vp≦Vw≦Vp+Vf (3)
Vu<Vp (4)
VHダイオード36のオフ状態:
Vv<Vp (5)
WHダイオード310のオフ状態:
Vw<Vp (6)
-Vf≦Vu≦0 (7)
VLダイオード38のオン状態:
-Vf≦Vv≦0 (8)
WLダイオード312のオン状態:
-Vf≦Vw≦0 (9)
0<Vu(10)
VLダイオード38のオフ状態:
0<Vv(11)
WLダイオード312のオフ状態:
0<Vw(12)
相検出の失敗を示すnull、
UH相が検出されたことを示すUH、
UL相が検出されたことを示すUL、
VH相が検出されたことを示すVH、
VL相が検出されたことを示すVL、
WH相が検出されたことを示すWH、および
WL相が検出されたことを示すWL、
の7種類を用意する。
(1)~(10)の10パターンのそれぞれ、オン側同期信号S13と、その時のPLL角度0検出タイミング、UH相Don(ダイオードオン)タイミング、他祖Don(ダイオードオン)タイミングと、Curr_phase[i]、Last_phase[i]が示されている。
なお図7において、パターン(3)では、Lastにデータがある場合はlastと異なる他相パルスは無視し、パターン(6)では、複数パルスが来た時点でnullになり(同時到達を含む)、パターン(8)では、Lastにデータがある場合はlastと異なる他相パルスは無視する。
すなわち、図4の(j)(k)において、
時刻t1はUH相Don検出信号S12uhの立ち下がり、
時刻t2はUH相オン側三角波S15uhがレベルLV4に達する時刻、
時刻t3はUH相オン側三角波S15uhがレベルLV3に達する時刻、
時刻t4はUH相オフ側三角波S15uhaがレベルLV1に達する時刻、
時刻t1から時刻t2までのPMAはUH相オン側三角波S15uh側のマージン期間、
時刻t4からUH相オフ側三角波S15uhaの立ち上がりまでのTMAはUH相オフ側三角波S15uha側のマージン期間、および
時刻t1後から時刻t3前までのKONがUH素子31のオン区間
をそれぞれ示す。
図8において、U相誘起電圧Vuだけに着目して説明すると、正極側端子電圧Vpに対し、正極側端子電圧VpよりUHダイオード32の順電圧Vf分の電圧変化を検出するための閾値TH1をU相誘起電圧Vuに対して取る(設定する)。閾値TH1はVf/2前後に取ればよい。
UL素子33のゲートオン状態の検出結果としてUL素子オン検出信号S17ulを出力し、
VH素子35のゲートオン状態の検出結果としてVH素子オン検出信号S17vhを出力し、
VL素子37のゲートオン状態の検出結果としてVL素子オン検出信号S17vlを出力し、
WH素子39のゲートオン状態の検出結果としてWH素子オン検出信号S17whを出力し、
WL素子311のゲートオン状態の検出結果としてWL素子オン検出信号S17wlを出力する。
UL素子33がオフされた後のULダイオードオン検出区間信号S18ulを出力し、
VH素子35がオフされた後のVHダイオードオン検出区間信号S18vhを出力し、
VL素子37がオフされた後のVLダイオードオン検出区間信号S18vlを出力し、
WH素子39がオフされた後のWHダイオードオン検出区間信号S18whを出力し、
WL素子311がオフされた後のWLダイオードオン検出区間信号S18wlを出力する。
WLダイオードオン検出区間からVHダイオード検出区間の変化率をULダイオードオン検出区間変化率信号S20ulとして出力し、
UHダイオードオン検出区間からWLダイオード検出区間の変化率をVHダイオードオン検出区間変化率信号S20vhとして出力し、
ULダイオードオン検出区間からWHダイオード検出区間の変化率をVLダイオードオン検出区間変化率信号S20vlとして出力し、
VHダイオードオン検出区間からULダイオード検出区間の変化率をWHダイオードオン検出区間変化率信号S20whとして出力し、
VLダイオードオン検出区間からUHダイオード検出区間の変化率をWLダイオードオン検出区間変化率信号S20wlとして出力する。
この場合、ゲート指令信号調整部1501は例えばダイオードオン検出区間変化率信号S20の変化率とレベルLV1の調整量との関係を示すテーブルをメモリ(図示省略)等に予め格納し、該テーブルに従ってレベルLV1の調整量を判定する。減少率が上がる程、レベルLV1の調整量が大きくなるように設定する。
なお、Don信号統合部12gおよびDoff信号統合部12ga、同期検出PLL部13、周期チェック部14が同期信号生成・監視部を構成する。
12 ダイオード通電状態検出部、
12a U相上アームダイオードオン信号検出部、
12b U相下アームダイオードオン信号検出部、
12c V相上アームダイオードオン信号検出部、
12d V相下アームダイオードオン信号検出部、
12e W相上アームダイオードオン信号検出部、
12f W相下アームダイオードオン信号検出部、
12aa U相上アームダイオードオフ信号検出部、
12ba U相下アームダイオードオフ信号検出部、
12ca V相上アームダイオードオフ信号検出部、
12da V相下アームダイオードオフ信号検出部、
12ea W相上アームダイオードオフ信号検出部、
12fa W相下アームダイオードオフ信号検出部、
12g ダイオードオン信号統合部、
12ga ダイオードオフ信号統合部、
120 ゲート制御部、
121 オン側PLL回路、
122 オフ側PLL回路、
13 同期検出PLL部、
14 周期チェック部、
15 ステータゲート指令生成PWM部、
15a U相上アームオン側三角波生成部、
15aa U相上アームオフ側三角波生成部、
15ab U相上アームゲート指令信号生成部、
15b U相下アームオン側三角波生成部、
15ba U相下アームオフ側三角波生成部、
15bb U相下アームゲート指令信号生成部、
15c V相上アームオン側三角波生成部、
15ca V相上アームオフ側三角波生成部、
15cb V相上アームゲート指令信号生成部、
15d V相下アームオン側三角波生成部、
15da V相下アームオフ側三角波生成部、
15db V相下アームゲート指令信号生成部、
15e W相上アームオン側三角波生成部、
15ea W相上アームオフ側三角波生成部、
15eb W相上アームゲート指令信号生成部、
15f W相下アームオン側三角波生成部、
15fa W相下アームオフ側三角波生成部、
15fb W相下アームゲート指令信号生成部、
16 ステータゲートオン状態検出部、
17 ステータゲート指令監視部、
18 ダイオードオン区間監視部、
30 抵抗、
31 U相上アームスイッチング素子、
32 U相上アームフリーホイールダイオード、
33 U相下アームスイッチング素子、
34 U相下アームフリーホイールダイオード、
35 V相上アームスイッチング素子、
36 V相上アームフリーホイールダイオード、
37 V相下アームスイッチング素子、
38 V相下アームフリーホイールダイオード、
39 W相上アームスイッチング素子、
310 W相上アームフリーホイールダイオード、
311 W相下アームスイッチング素子、
312 W相下アームフリーホイールダイオード、
313 電動機子巻線、
314 界磁巻線、
315 ステータゲート駆動部、
317 ロータゲート駆動部、
318 3相相電圧検知部、
319 ロータゲート指令生成部、
320 ロータ電流検出部、
324 界磁スイッチング素子、
325 ダイオード、
326 界磁フリーホイールダイオード、
51 位相同期回路(PLL)、
52 1/nデバイダ、
53 位相比較器(PD)、
54 PI制御器、
55 電圧制御発振器(VCO)、
56 積分器(1/s)、
CR0~CR5,LR0~LR5 相検出レジスタ、
1501 ゲート指令信号調整部。
Claims (5)
- 上下アームごとに設けられたN(Nは2以上の整数)相分の2N個のスイッチング素子と、
前記2N個のスイッチング素子にそれぞれ並列接続された2N個のフリーホイールダイオードと、
を含む電力変換部と、
前記電力変換部の各部の電圧から前記2N個のフリーホイールダイオードのオンタイミングとオフタイミングを検出するダイオード通電状態検出部と、
前記ダイオード通電状態検出部にて検出された前記2N個分のフリーホイールダイオードの、オンタイミングに基づいて同期制御されたオン側同期信号を生成し、オフタイミングに基づいて同期制御されたオフ側同期信号を生成する同期信号生成・監視部と、
前記オン側同期信号および前記オフ側同期信号に基づいて、前記スイッチング素子のスイッチング制御を行わせるゲート指令信号を生成するゲート指令生成PWM部と、
前記電力変換部の各部の電圧から前記2N個のスイッチング素子のオンタイミングとオフタイミングを検出するゲートオン状態検出部と、
前記ゲートオン状態検出部にて検出された前記2N個のスイッチング素子のゲートオンタイミングと、前記ゲート指令生成PWM部にて生成された前記ゲート指令信号に基づいて、ダイオードオン検出区間信号を生成するゲート指令監視部と、
前記ゲート指令監視部にて生成された前記ダイオードオン検出区間信号の変化率を計測するダイオードオン区間監視部と、
を含むゲート制御部と、
を備え、
前記ゲート指令生成PWM部が、前記ダイオードオン区間監視部の前記ダイオードオン検出区間信号の変化率に従って前記スイッチング素子のオフタイミングを調整するように前記ゲート指令信号を調整する、電力変換装置。 - 前記ゲート指令生成PWM部は、前記ゲート指令監視部が生成したダイオードオン検出区間信号のオン区間を計測したダイオードオン検出区間計測信号を生成するゲート指令信号調整部を含み、
前記ダイオードオン区間監視部は、前記ゲート指令信号調整部が生成したダイオードオン検出区間計測信号に基づき、オン区間計測値の変化率を計測してダイオードオン検出区間変化率信号を生成し、
前記ゲート指令信号調整部は、前記ダイオードオン検出区間変化率信号がマイナス側で減少を示しかつ減少率が所定値を超える場合、スイッチング素子のオフタイミングを所定以上の時間分早くするよう前記ゲート指令信号を調整する、
請求項1に記載の電力変換装置。 - 前記ゲート指令生成PWM部は、前記ゲート指令監視部が生成したダイオードオン検出区間信号のオン区間を計測したダイオードオン検出区間計測信号を生成するゲート指令信号調整部を含み、
前記ダイオードオン区間監視部は、前記ゲート指令信号調整部が生成したダイオードオン検出区間計測信号に基づき、オン区間計測値の変化率を計測してダイオードオン検出区間変化率信号を生成し、
前記ゲート指令信号調整部は、前記ダイオードオン検出区間変化率信号がマイナス側で減少を示す場合、前記ダイオードオン検出区間変化率信号の減少率に応じて、スイッチング素子のオフタイミングを早める時間幅を変更するように前記ゲート指令信号を調整する請求項1に記載の電力変換装置。 - 前記スイッチング素子のオフタイミングが前記フリーホイールダイオードのオフタイミングの前である請求項1から3までのいずれか1項に記載の電力変換装置。
- 上下アームごとに設けられたN(Nは2以上の整数)相分の2N個のスイッチング素子と、前記2N個のスイッチング素子にそれぞれ並列接続された2N個のフリーホイールダイオードとを含む電力変換部を、ゲート制御部で制御する電力変換制御方法であって、
前記電力変換部の各部の電圧から前記2N個のフリーホイールダイオードのオンタイミングとオフタイミングを検出する工程と、
前記ダイオード通電状態検出部にて検出された前記2N個分のフリーホイールダイオードの、オンタイミングに基づいて同期制御されたオン側同期信号を生成し、オフタイミングに基づいて同期制御されたオフ側同期信号を生成する工程と、
前記オン側同期信号および前記オフ側同期信号に基づいて、PWMにより、前記スイッチング素子のスイッチング制御を行わせるゲート指令信号を生成する工程と、
前記電力変換部の各部の電圧から前記2N個のスイッチング素子のオンタイミングとオフタイミングを検出する工程と、
検出された前記2N個のスイッチング素子のゲートオンタイミングと、生成された前記ゲート指令信号に基づいて、ダイオードオン検出区間信号を生成する工程と、
生成された前記ダイオードオン検出区間信号の変化率を計測する工程と、
を備え、
前記ゲート指令信号を生成する工程において、前記ダイオードオン検出区間信号の変化率に従って前記スイッチング素子のオフタイミングを調整するように前記ゲート指令信号を調整する、電力変換制御方法。
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JP2008228450A (ja) * | 2007-03-13 | 2008-09-25 | Mitsubishi Electric Corp | 車両用電力変換装置 |
JP2010110176A (ja) * | 2008-10-31 | 2010-05-13 | Mitsubishi Electric Corp | 車両用電力変換装置 |
JP2012010555A (ja) * | 2010-06-28 | 2012-01-12 | Mitsubishi Electric Corp | 電力変換装置 |
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US9780694B2 (en) | 2017-10-03 |
EP3131193B1 (en) | 2018-07-04 |
JPWO2015155823A1 (ja) | 2017-04-13 |
EP3131193A1 (en) | 2017-02-15 |
EP3131193A4 (en) | 2017-12-06 |
US20170005593A1 (en) | 2017-01-05 |
JP6272461B2 (ja) | 2018-01-31 |
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