CN1585245A - Three-phase power factor compensating converter with flexibly switching - Google Patents

Three-phase power factor compensating converter with flexibly switching Download PDF

Info

Publication number
CN1585245A
CN1585245A CNA031548202A CN03154820A CN1585245A CN 1585245 A CN1585245 A CN 1585245A CN A031548202 A CNA031548202 A CN A031548202A CN 03154820 A CN03154820 A CN 03154820A CN 1585245 A CN1585245 A CN 1585245A
Authority
CN
China
Prior art keywords
electrically connected
inductance
switch module
main switch
electric capacity
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CNA031548202A
Other languages
Chinese (zh)
Other versions
CN1332502C (en
Inventor
张育铭
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Taida Electronic Industry Co Ltd
Delta Optoelectronics Inc
Original Assignee
Delta Optoelectronics Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Delta Optoelectronics Inc filed Critical Delta Optoelectronics Inc
Priority to CNB031548202A priority Critical patent/CN1332502C/en
Publication of CN1585245A publication Critical patent/CN1585245A/en
Application granted granted Critical
Publication of CN1332502C publication Critical patent/CN1332502C/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Images

Classifications

    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P80/00Climate change mitigation technologies for sector-wide applications
    • Y02P80/10Efficient use of energy, e.g. using compressed air or pressurized fluid as energy carrier

Landscapes

  • Dc-Dc Converters (AREA)
  • Rectifiers (AREA)

Abstract

The converter is composed of three voltage increase inductors, six master switches, two slave switches, a resonance inductor, two output capacitors and two diodes. The master switch is comprised of the switch component, a diode and a resonance capacitor. The convertor is connected with a controlling circuit, according to the method of the six-step wave, the controlling circuit combines the six sine pulse modulation signal (SPWM) by the method of flexible switching, which generates the driving signal of the switches and achieves the compensation.

Description

Has the flexible three phase power factor buck converter of switching
Technical field
The present invention is a kind of three phase power factor buck converter, refers to a kind of flexible three phase power factor buck converter of switching that has especially.
Background technology
Relevant prior art of the present invention, see also Fig. 1, this circuit is by three filter capacitor Crt, Crs, Cst, three boost type inductance L r, Ls, Lt, six diode Dr, Ds, Dt, Du, Dv and Dw and output capacitance Cb be connected in parallel to each other be electrically connected constitute, be the device that a tradition is improved the three-phase rectifier power factor (PF).Though this device has the simple advantage of framework, the improvement of its power factor (PF) also can only be accomplished the stage near 0.93, and its inductance material of using is silicon steel sheet, thus this inductance not only size is big and weight is extremely heavy.Because above-mentioned shortcoming is arranged, the method for this kind passive type power factor compensation, the method for passive/active modes power factor compensation replaces at present.
Relevant prior art two sees also Fig. 2, and this device promptly is to be suggested for the shortcoming that solves prior art one.The difference of itself and prior art one is to have added initiatively a switch S and a diode Db, like this then by by control this switch S Push And Release, can obtain high power factor, and rate of total harmonics (total harmonic distortion:THD) also comes well than the method for passive type power factor improvement.But this prior art still has several significant disadvantage, and existing division is as follows:
(1). this initiatively switch because of causing very big switch cost the contrary recovery time (time of reverse recovery:trr) of the diode that adopted, especially even more serious when being output as high pressure, for example when output voltage is 800VDC (voltage direct current, i.e. high direct voltage).
(2). the miniaturization of magnet assembly is difficult for, and its reason is to improve switching frequency for miniaturization is essential, but as after improving switching frequency, but therefore can cause high switch cost, and cause infeasible.
(3). this framework can't satisfy rate of total harmonics (THD) less than 5% demand.
Therefore, the inventor has proposed a kind of flexible three phase power factor buck converter of switching that has, it can have following advantage simultaneously: promptly improve input power factor, make power factor (PF) (power factor) near 1, reduce rate of total harmonics, make THD<5%, magnet assembly compact in size, improve the efficient of power factor compensation transducer and reduce main switch voltage change ratio (dv/dt), reduce auxiliary switch current changing rate (di/dt) and reduce electromagnetic interference etc.
Summary of the invention
The main purpose of this case is to provide a kind of flexible three phase power factor buck converter (three-phase power factor correction converter) of switching (soft-switching) that has, and adjust according to the method for six rank (six steps) ripple, it is synthetic to obtain the drive signal of this each switch of transducer from a control circuit six sinusoidal pulse wave modulation signals (SPWM) to be added that no-voltage detects with flexible switching mode work, promotes this transducer according to this and improves its power factor (PF).
Another main purpose of this case is to provide a kind of three phase power factor buck converter, and this transducer comprises: one first inductance; One second inductance; One the 3rd inductance; One first electric capacity, the one end is electrically connected with this first inductance, one end, and its other end is electrically connected with this second inductance, one end; One second electric capacity, the one end is electrically connected with this end of this second inductance, and its other end is electrically connected with the 3rd inductance one end; One the 3rd electric capacity, the one end is electrically connected with this end of this first inductance, and this end of its other end and the 3rd inductance is electrically connected; One first main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this first inductance other end; One second main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this second inductance other end, and this second end is electrically connected with this this second end of first main switch module; One the 3rd main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with the 3rd inductance other end, and this second end is electrically connected with this this second end of second main switch module; One the 4th main switch module has a control end, one first end and one second end, and wherein this second end is electrically connected with this this other end of first inductance; One the 5th main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this first end of the 4th main switch module, and this second end is electrically connected with this this other end of second inductance; One the 6th main switch module, tool one control end, one first end and one second end, wherein this first end is electrically connected with this first end of the 5th main switch module, and this second end is electrically connected with this other end of the 3rd inductance; One first auxiliary switch has a control end, one first end and one second end, and wherein this second end is electrically connected with this second end of the 3rd main switch module; One second auxiliary switch has a control end, one first end and one second end, and wherein this first end is electrically connected with this first end of the 6th main switch module, and this second end is electrically connected with this first end of this first auxiliary switch; One the 4th inductance, the one end is electrically connected with this first end of this first auxiliary switch; One the 4th electric capacity, an end is electrically connected with the 4th inductance other end; One the 5th electric capacity, an end is electrically connected with this other end of the 4th inductance; One first diode, an anode tap is electrically connected with this second end of this first auxiliary switch and a cathode terminal is electrically connected with the 4th electric capacity other end; And one second diode, one anode tap is electrically connected with the 5th electric capacity other end and a cathode terminal is electrically connected with this first end of this second auxiliary switch, wherein, the two ends of one load of this transducer are electrically connected with this other end of the 4th electric capacity and this other end of the 5th electric capacity respectively, and this transducer is electrically connected with a civil power through this first inductance this end to the 3rd inductance, this transducer passes through this first main switch module to the 6th main switch module in addition, this control end of this first auxiliary switch and this second auxiliary switch is electrically connected with a control circuit to import a drive signal, utilize these six main switch modules of these drive and this two auxiliary switches, the improvement of reaching power factor (PF).
According to above-mentioned conception, this first main switch module to each of the 6th main switch module all further comprises a switch module, one diode assembly and a capacitance component, this switch module tool one control end, one first end and one second end promptly are respectively this first main switch module to the 6th this control end of main switch module, this first end and this second end, and this this first end of diode assembly one anode tap and this switch module is electrically connected, this this second end of diode assembly one cathode terminal and this switch module is electrically connected, in addition, the two ends of this capacitance component are electrically connected with this cathode terminal with this anode tap of this diode assembly respectively.
According to above-mentioned conception, this switch module, this first auxiliary switch and second auxiliary switch be a mos field effect transistor (MOSFET) and a tool one igbt (IGBT) and the diode combination that is electrically connected in parallel the two one of, this capacitance component is the electric capacity that resonates in addition.
According to above-mentioned conception, this capacitance component be a built-in electric capacity and one add electric capacity the two one of.
According to above-mentioned conception, this first inductance, this second inductance and the 3rd inductance are a boost type inductance.
According to above-mentioned conception, this first electric capacity, this second electric capacity and the 3rd electric capacity are a filter capacitor.
According to above-mentioned conception, the 4th inductance is a resonance inductance.
According to above-mentioned conception, the 4th electric capacity and the 5th electric capacity are an electrochemical capacitor.
According to above-mentioned conception, this first auxiliary switch and this second auxiliary switch also can be a unidirectional igbt (IGBT).
According to above-mentioned conception, this first diode and this second diode also can be a synchronous rectifier diode.
According to above-mentioned conception, this synchronous rectification diode further comprises a diode assembly and a synchronous rectifier switch, wherein this diode assembly has an anode tap and a cathode terminal, and this synchronous rectification switch has a control end, one first end and one second end, this anode tap is electrically connected with this first end, and this second end is electrically connected with this cathode terminal.
According to above-mentioned conception, this control circuit further comprises: one first differential amplifier circuit is electrically connected on this civil power; One accurate full-wave rectifying circuit is electrically connected on this first differential amplifier circuit; One zero hand over testing circuit (zero-crossing detector) more, are electrically connected on this first differential amplifier circuit; One input current; One Hall current sensor (Hall CT sensor) is electrically connected on this input current; One accurate full-wave rectifying circuit is electrically connected on this Hall current sensor (Hall CT sensor); One output voltage; One second differential amplifier circuit is electrically connected on this output voltage; One digital signal processor (DSP), has built-in AC/DC (A/D) transducer, be electrically connected on this precision full-wave rectifying circuit, this zero friendship testing circuit, this precision full-wave rectifying circuit and this second differential amplifier circuit more, read this civil power one input voltage, this input current and this output voltage and export six sinusoidal pulse bandwidth modulation signals according to this six rank wave method with this AC/DC (A/D) transducer; One direct current connected voltage (dc-link voltage); One no-voltage testing circuit is electrically connected on this direct current connected voltage (dc-link voltage); One compound programmable logic device (CPLD), be electrically connected with this no-voltage testing circuit with this digital signal processor, and switch (soft-switching) mode according to these six sinusoidal pulse bandwidth modulation signals and this no-voltage testing circuit with flexibility and do to synthesize, drive signal to obtain and to export these; An and driver for isolating, have a chip for driving and a plurality of output, be electrically connected with this compound programmable logic device (CPLD) and this digital signal processor (DSP), wherein, this driver is exported these and is driven signal, and by this chip for driving to promote this first to the 6th main switch module and this first and this second auxiliary switch module.
Cooperate following graphic detailed description by the following examples, will one more deep understanding be arranged the advantage and the feature of above-mentioned narration and this case.
Description of drawings
Fig. 1 improves the circuit diagram of transducer for existing three phase power factor
Fig. 2 improves the circuit diagram of transducer for existing another kind of three phase power factor
Fig. 3 is the circuit diagram of the three phase power factor buck converter of a preferred embodiment of the present invention
Fig. 4 is the waveform schematic diagram of driving signal, resonance inductor electric current and second to the 5th resonant capacitor voltage of first to the 3rd main switch module, first and second auxiliary switch of three phase power factor buck converter of the present invention
Fig. 5 to Figure 12 is the equivalent circuit diagram of each circuit operating mode of three phase power factor buck converter of the present invention
Figure 13 is the circuit diagram of the control circuit of three phase power factor buck converter of the present invention
Figure 14 is the circuit diagram of the three phase power factor buck converter of another preferred embodiment of the present invention
Wherein, description of reference numerals is as follows:
1 control circuit
101 first differential amplifier circuits
102 accurate full-wave rectifying circuits
103 0 hand over testing circuit more
104 Hall current sensors
105 accurate full-wave rectifying circuits
106 second differential amplifier circuits
107 digital signal processors
108 no-voltage testing circuits
109 compound programmable logic devices
110 driver for isolating
Embodiment
See also Fig. 3, it is the circuit diagram of a preferred embodiment of the present invention, and is existing that its framework and operation principles division is as follows.This one has the flexible three phase power factor buck converter of switching (soft-switching), be by three boost inductance Lr, Ls and Lt, three filter capacitor Crs, Cst and Crt (in order to the high-frequency harmonic of elimination input line voltage), six main switch module Sr, Ss, St, Su, Sv and Sw, two auxiliary switch Sx1 and Sx2,1 resonance inductor Lri, two main diode Db 1With Db 2(adopting the rectifier stack that forward voltage is lower to form) and two outputs (electrolysis) capacitor C b 1With Cb 2Constitute Deng electronic building brick.Wherein, each main switch module of first to the 6th main switch module all contains a diode and a resonance electric capacity and its in parallel electrical connection, and the order of complying with first to the 6th main switch module is respectively diode Dr, Ds, Dt, Du, Dv and Dw and capacitor C r, Cs, Ct, Cu, Cv and Cw.It adopts in parallel electrical connection of mode shown in Figure 3 to form to each other.This transducer (has only when the ripple of each rank three main switch modules to activate in addition three main switch modules then for closing: for example according to the method for six rank ripples, Sr, Ss and St activate during the first rank ripple, Su, Sv and Sw activate during the second rank ripple, Ss, Sr and St activate during the 3rd rank ripple, Sv, Su and Sw activate during the quadravalence ripple, St, Ss and Sr activate during the 5th rank ripple, Sw, Su and Sv activate during the 6th rank ripple) with flexible the switching (switch first to the 6th main switch module during no-voltage, switch first to second auxiliary switch during with zero current).By the running of these assemblies, can obtain plurality of advantages as the aforementioned; That is: improve input power factor, make power factor (PF) (power factor) near 1, reduce rate of total harmonics, make rate of total harmonics (THD)<5%, magnet assembly miniaturization of size, improve the efficient of power factor compensation transducer and reduce main switch module voltage rate of change (dv/dt), reduce auxiliary switch current changing rate (di/dt) and reduce electromagnetic interference etc.
With next framework, with order it is divided into pattern 0 to pattern 8 (wherein pattern 8 is identical with pattern 0) according to the operating principle that each switch switches, and operation principle of the present invention is described by the order of Fig. 4 to Figure 12 at the above-mentioned preferred embodiment of the present invention.
Wherein Fig. 4 is the driving signal waveform of three groups of main switch module Sr, Ss among the present invention and St, first auxiliary switch, second auxiliary switch etc., the current i of the resonance inductor Lri that flows through LriWaveform and the magnitude of voltage V of cross-over connection resonant capacitor Crt, Cru, Crv and Crs Crt, V Cru, V CrvWith V CrsWaveform.Wherein separate by the time that transverse axis indicated, be pattern 0 (Mode 0) with the former then at T0, it between T0-T1 pattern 1 (Mode 1), being pattern 2 (Mode 2) between T1-T2, is mode 3 (Mode3) between T2-T3, is pattern 4 (Mode 4) between T3-T4, between T4-T5 pattern 5 (Mode 5), being pattern 6 (Mode 6) between T5-T6, is mode 7 (Mode 7) between T6-T7, is pattern 8 (Mode 8) between T7-T8.Because of pattern 8 is equal to pattern 0, thus self mode 8, that is be that 0 of pattern begins a new circulation again.
See also Fig. 5, it is the equivalent circuit diagram of the operating principle of pattern 0 (Mode 0).Under the pattern of this Mode, boost type inductance L r is in discharge mode, and energy of its guiding inductance L r, Ls and Lt and civil power Vr, Vs and Vt is via diode Dr, Db1, and Db2, Dv, Dw are released into output capacitance Cb 1, Cb 2And load.
See also Fig. 6, it is the equivalent circuit diagram of the operating principle of pattern 1 (Mode 1).This pattern starts from auxiliary switch Sx 1(or Sx 2) activation (turn on), work as Sx 1During activation, because the relation of resonance inductor Lri, so auxiliary switch Sx 1Be able under the situation of zero current, activate, so no switch cost.And during this mode operating, the electric current (i on the resonance inductor Lri Lri) then being linear rising, its equation can followingly be represented:
( V 0 - 1 2 V 0 ) = Lri di Lri dt , That is
i Lri = 1 2 V 0 Lri t .
See also Fig. 7, it is the equivalent circuit diagram of the operating principle of pattern 2 (Mode 2).This pattern starts from i Lr=i LriThe time, this moment is because of diode D B1The closing of very steady (smooth) (turn off) is with at diode D B1On do not produce any switch cost.And at diode D B1When closing, produce resonance between resonance inductor Cu, Cs and Ct and the boost inductance Lr, this pattern ends at that time point of three main switch module Sr, Ss and St activation (turn on).
See also Fig. 8, it is the equivalent circuit diagram of the operating principle of mode 3 (Mode 3).Mode 3 when its Vdc-link of Vct or (magnitude of voltage of the 3rd main switch module St second end) near zero the time, because of the activation (turn on) of main switch module Sr, Ss and St, and opened the running of this pattern.Boost type inductance L r, Ls and Lt are in the state of energy storage when main switch module Sr, Ss and St activation, and resonance inductor Lri then discharges with following formula:
i Lri = - 1 2 V 0 Lri t
When the electric current of the resonance inductor Lri that flows through was released into 0, it was naturally by diode D B2Give and pin (blocking), because of diode D B2Be in against inclined to one side, and this pattern is convenient to finish this moment.
See also Fig. 9, it is the equivalent circuit diagram of the operating principle of pattern 4 (Mode 4).This pattern starts from i LriPut to 0 o'clock, during this pattern, remove to carry out the first auxiliary switch Sx 1(or the second auxiliary switch Sx 2) close, can obtain the first auxiliary switch Sx 1(or the second auxiliary switch Sx 2) when zero current, switch, so the advantage of no switch cost.Boost type inductance L r, Ls and Lt still locate the energy storage pattern during this.
See also Figure 10, it is the equivalent circuit diagram of the operating principle of pattern 5 (Mode 5).Close (turn off) in the no-voltage at main switch module St, opened the running of this pattern 5.Because resonant capacitor Cu, Cv and Ct concern that main switch module St closes the situation in no-voltage, and Vc tThen rise with linear-charging, relational expression therebetween can followingly be represented:
V ct = i LT Cu + Cv + Ct t .
See also Figure 11, it is the equivalent circuit diagram of the operating principle of pattern 6 (Mode 6).Pattern 6 starts from resonant capacitor C tVoltage Vc tEqual output voltage V 0The time, this moment is because of Vc tVoltage is output voltage V 0Institute's strangulation (clamp) is with the boost type inductance L of flowing through tCurrent i LtTo thereby flow into output capacitance C B1, C B2And load.
See also Figure 12, it is the equivalent circuit diagram of the operating principle of mode 7 (Mode 7).This pattern start from main switch module Ss close (turn off) the time, the current i of the boost type inductance L s that flows through LsThe resonant capacitor Cs that comprised among main switch module Ss and the Sv and Cv are carried out linearity to discharge and recharge.When the voltage of the resonant capacitor Cv of main switch module Sv reduces to zero, and during the diode assembly Dv conducting of main switch module Sv, this pattern promptly comes to an end.
As for pattern 8 (Mode 8), because of pattern 8 is equal to pattern 0, so 8 of self modes begin a new circulation again.Be that boost type inductance L ri is in discharge mode, the energy of its guiding inductance L r, Ls and Lt and civil power Vr, Vs and Vt is via diode Dr, Db 1, Db 2, Dv, Dw are released into output capacitance Cb 1, Cb 2And load.
Figure 13 then is the calcspar of the control circuit 1 of three phase power factor buck converter proposed by the invention, this control circuit 1 comprises one first differential amplifier circuit 101, the input voltage Vr of itself and a civil power, Vs is electrically connected with Vt, one accurate full-wave rectifying circuit 102, it is electrically connected with this first differential amplifier circuit, one zero hand over testing circuit (zero-crossing detector) 103 more, it is electrically connected with this first differential amplifier circuit 101, one Hall current sensor (Hall CT sensor) 104, its with once the boost type inductance L r that flows through that measures gained, the current i of Ls and Lt Lr, i LsWith i LtBe electrically connected, one accurate full-wave rectifying circuit 105, it is electrically connected with this Hall current sensor (Hall CT sensor) 104, one second differential amplifier 106, one digital signal processor (DSP) 107, itself and this precision full-wave rectifying circuit 102, should zero friendship get over testing circuit 103, this precision full-wave rectifying circuit 105 is electrically connected with this second differential amplifier 106 (Vo of its input is the output end voltage value of this transducer), one compound programmable logic device (Programmable logic device:CPLD) 109, itself and this digital signal processor (DSP) 107 and no-voltage testing circuit a 108 (V of its input Dc-linkBe the second terminal voltage value of each main switch module) be electrically connected, a driver for isolating 110, it is electrically connected with this digital signal processor (DSP) 107 and this compound programmable logic device (CPLD) 109, and it also is electrically connected with output drive signal with the control end of the second auxiliary switch (not shown) with this first to the 6th main switch module (not shown), first auxiliary switch and drives this three phase power factor buck converter.This control circuit 1 is to be the processing unit at center with digital signal processor (DSP), and the major function of DSP is by being read input voltage Vr, Vs and Vt by built-in AC/DC transducer (A/Dconverter), input current i Lr, i Ls, i LtAnd this three phase power factor is improved the signal of an output voltage V o of transducer, come combine digital phase-locked loop (digitalphase-locked loop is called for short DPLL), electric current parametric amplifier signal, the current feedback compensation, sinusoidal pulse bandwidth modulation (SPWM) signal and Voltage Feedback compensate function.6 sinusoidal pulse bandwidth modulation (SPWM) signals of its output of DSP then export CPLD to, CPLD adopts the method and flexible switch (soft-switching) of six rank (six steps) ripple again, promptly when this second terminal voltage value of this first to the 6th main switch module Vdc-link is zero, start and close this first to the 6th main switch module, and be zero (to be i at the electric current of this first and second auxiliary switch of flowing through Lri=0) time, opens and closes this first and second auxiliary switch; The signal of these six sinusoidal pulse bandwidths modulation (SPWM) is added that no-voltage detects to switch with flexibility does synthetic and obtain the drive signal of six main switch modules and two auxiliary switches that this signal is by removing to promote six main switch modules and two auxiliary switches by the drive IC (can be that the light lotus root is closed drive IC) of driver for isolating.
See also Figure 14, it is the framework of another preferred embodiment of the present invention.This framework is in two auxiliary switch Sx1 and Sx2 with the different of aforementioned preferred embodiment, can adopt unidirectional IGBT, and can use synchronous rectification diode (Db on two main diodes 1+ Sb 1) and (Db 2+ Sb 2) pattern.So can significantly reduce conduction loss, and these two synchronous rectification switchs can just activate (turn on) after the conducting of mos field effect transistor (MOSFET) internal body diodes, to guarantee not having switch cost.
By above-mentioned explanation as can be known, the characteristics of three phase power factor buck converter of the present invention are opened and closed when no-voltage and auxiliary switch are in the state of zero current for producing the driving signal of each switch with six sinusoidal pulse bandwidth modulating signals of method adjustment of six rank ripples and utilizing the main switch module to be in, adopt the rectifier stack that forward voltage is lower to form rectification circuit simultaneously, and can adopt less magnet assembly because of reducing switch cost.Therefore, the power factor compensation transducer of this case can obtain lower conduction loss and switch cost, less magnet assembly size, the efficient of improving input power factor, reduction rate of total harmonics, raising power factor compensation transducer and advantages such as reduction main switch voltage change ratio (dv/dt), reduction auxiliary switch current changing rate (di/dt) and reduction electromagnetic interference.
Therefore, modification and variation that those skilled in the art do by being described in detail of the above embodiments all should belong to the protection range of claims of the present invention.

Claims (10)

1. three phase power factor buck converter is characterized in that comprising:
One first inductance;
One second inductance;
One the 3rd inductance;
One first electric capacity, the one end is electrically connected with this first inductance, one end, and its other end is electrically connected with this second inductance, one end;
One second electric capacity, the one end is electrically connected with this end of this second inductance, and its other end is electrically connected with the 3rd inductance one end;
One the 3rd electric capacity, the one end is electrically connected with this end of this first inductance, and this end of its other end and the 3rd inductance is electrically connected;
One first main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this first inductance other end;
One second main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this second inductance other end, and this second end is electrically connected with this this second end of first main switch module;
One the 3rd main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with the 3rd inductance other end, and this second end is electrically connected with this this second end of second main switch module;
One the 4th main switch module has a control end, one first end and one second end, and wherein this second end is electrically connected with this this other end of first inductance;
One the 5th main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this first end of the 4th main switch module, and this second end is electrically connected with this this other end of second inductance;
One the 6th main switch module has a control end, one first end and one second end, and wherein this first end is electrically connected with this first end of the 5th main switch module, and this second end is electrically connected with this other end of the 3rd inductance;
One first auxiliary switch has a control end, one first end and one second end, and wherein this second end is electrically connected with this second end of the 3rd main switch module;
One second auxiliary switch has a control end, one first end and one second end, and wherein this first end is electrically connected with this first end of the 6th main switch module, and this second end is electrically connected with this first end of this first auxiliary switch;
One the 4th inductance, the one end is electrically connected with this first end of this first auxiliary switch;
One the 4th electric capacity, an end is electrically connected with the 4th inductance other end;
One the 5th electric capacity, an end is electrically connected with this other end of the 4th inductance;
One first diode, an anode tap is electrically connected with this second end of this first auxiliary switch and a cathode terminal is electrically connected with the 4th electric capacity other end; And
One second diode, an anode tap are electrically connected with the 5th electric capacity other end and a cathode terminal is electrically connected with this first end of this second auxiliary switch;
Wherein, the two ends of one load of this transducer are electrically connected with this other end of the 4th electric capacity and this other end of the 5th electric capacity respectively, and this transducer is electrically connected with a civil power by this first inductance this end to the 3rd inductance, this transducer is electrically connected with a control circuit to import a drive signal by this first main switch module this control end to the 6th main switch module, this first auxiliary switch and this second auxiliary switch in addition, utilize these six main switch modules of these drive and this two auxiliary switches, the improvement of reaching power factor (PF).
2. three phase power factor buck converter as claimed in claim 1, it is characterized in that, wherein this first main switch module to each switch module of the 6th main switch module all further comprises a switch module, one diode assembly and a capacitance component, this switch module has a control end, one first end and one second end promptly are respectively this first main switch module to the 6th this control end of main switch module, this first end and this second end, and this this first end of diode assembly one anode tap and this switch module is electrically connected, this this second end of diode assembly one cathode terminal and this switch module is electrically connected, and the two ends of this capacitance component are electrically connected with this cathode terminal with this anode tap of this diode assembly respectively in addition.
3. three phase power factor buck converter as claimed in claim 2, it is characterized in that, wherein this switch module, this first auxiliary switch and this second auxiliary switch be a mos field effect transistor and have an igbt and the diode combination that is electrically connected in parallel the two one of, this capacitance component is the electric capacity that resonates in addition.
4. three phase power factor buck converter as claimed in claim 2 is characterized in that, wherein this capacitance component be a built-in electric capacity and one add electric capacity the two one of.
5. three phase power factor buck converter as claimed in claim 1 is characterized in that, wherein this first inductance, this second inductance and the 3rd inductance are a boost type inductance.
6. three phase power factor buck converter as claimed in claim 1 is characterized in that, wherein this first electric capacity, this second electric capacity and the 3rd electric capacity are a filter capacitor.
7. three phase power factor buck converter as claimed in claim 1 is characterized in that, wherein the 4th inductance is a resonance inductance.
8. three phase power factor buck converter as claimed in claim 1 is characterized in that wherein the 4th electric capacity and the 5th electric capacity are an electrochemical capacitor.
9. three phase power factor buck converter as claimed in claim 1 is characterized in that, wherein:
This first auxiliary switch and this second auxiliary switch also can be a unidirectional igbt;
This first diode and this second diode also can be a synchronous rectifier diode; And/or
This synchronous rectification diode further comprises a diode assembly and a synchronous rectifier switch, wherein this diode assembly has an anode tap and a cathode terminal, and this synchronous rectification switch tool one control end, one first end and one second end, this anode tap is electrically connected with this first end, and this second end is electrically connected with this cathode terminal.
10. three phase power factor buck converter as claimed in claim 1 is characterized in that wherein this control circuit further comprises:
One first differential amplifier circuit is electrically connected on this civil power;
One accurate full-wave rectifying circuit is electrically connected on this first differential amplifier circuit;
One zero hand over testing circuit more, are electrically connected on this first differential amplifier circuit;
One input current;
One Hall current sensor is electrically connected on this input current;
One accurate full-wave rectifying circuit is electrically connected on this Hall current sensor;
One output voltage;
One second differential amplifier circuit is electrically connected on this output voltage;
One digital signal processor, has a built-in AC/DC transducer, be electrically connected on this precision full-wave rectifying circuit, this zero friendship testing circuit, this precision all-wave testing circuit and this second differential amplifier circuit more, to read this civil power one input voltage, this input current and this output voltage and six sinusoidal pulse bandwidth modulation signals of foundation one or six rank wave method outputs by this AC/DC transducer;
One direct current connected voltage;
One no-voltage testing circuit is electrically connected on this direct current connected voltage;
One compound programmable logic device, be electrically connected with this no-voltage testing circuit with this digital signal processor, and do synthetic with flexible switching mode to obtain and to export these driving signal according to these six sinusoidal pulse bandwidth modulation signals and this no-voltage testing circuit; And a driver for isolating, tool one chip for driving and a plurality of output are electrically connected with this compound programmable logic device and this digital signal processor,
Wherein, this driver is exported these and is driven signal, and by this chip for driving to promote this first to the 6th main switch module and this first and this second auxiliary switch module.
CNB031548202A 2003-08-20 2003-08-20 Three-phase power factor compensating converter with flexibly switching Expired - Fee Related CN1332502C (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CNB031548202A CN1332502C (en) 2003-08-20 2003-08-20 Three-phase power factor compensating converter with flexibly switching

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CNB031548202A CN1332502C (en) 2003-08-20 2003-08-20 Three-phase power factor compensating converter with flexibly switching

Publications (2)

Publication Number Publication Date
CN1585245A true CN1585245A (en) 2005-02-23
CN1332502C CN1332502C (en) 2007-08-15

Family

ID=34598009

Family Applications (1)

Application Number Title Priority Date Filing Date
CNB031548202A Expired - Fee Related CN1332502C (en) 2003-08-20 2003-08-20 Three-phase power factor compensating converter with flexibly switching

Country Status (1)

Country Link
CN (1) CN1332502C (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102983757A (en) * 2012-12-03 2013-03-20 江苏嘉钰新能源技术有限公司 Boost circuit without switching device for electrical equipment
RU2766558C1 (en) * 2021-06-04 2022-03-15 Федеральное государственное бюджетное образовательное учреждение высшего образования «Московский авиационный институт (национальный исследовательский университет)» Three-phase ac-to-dc converter with increased power factor

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH09140145A (en) * 1995-11-15 1997-05-27 Samsung Electron Co Ltd Boosting converter provided with power-factor compensating circuit
CN1132298C (en) * 2000-12-26 2003-12-24 艾默生网络能源有限公司 Triphase single-switch power factor correcting step-up converter

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102983757A (en) * 2012-12-03 2013-03-20 江苏嘉钰新能源技术有限公司 Boost circuit without switching device for electrical equipment
RU2766558C1 (en) * 2021-06-04 2022-03-15 Федеральное государственное бюджетное образовательное учреждение высшего образования «Московский авиационный институт (национальный исследовательский университет)» Three-phase ac-to-dc converter with increased power factor

Also Published As

Publication number Publication date
CN1332502C (en) 2007-08-15

Similar Documents

Publication Publication Date Title
CN111697837B (en) Direct-current transformer topology based on three-level CLLLC resonant converter and control method
CN108448913A (en) A kind of isolated form AC-DC converter of the single stage type based on crisscross parallel non-bridge PFC circuits and LLC resonance
EP2677650A1 (en) Interleaving three-level dc/dc converter and ac/dc converter
CN1929276A (en) Soft switch back exciting converter used for solar energy photovoltaic generation incorporate in power network
CN1545194A (en) Cascading bidirectional DC-DC converter
CN1967997A (en) Five-level double step-down full bridge inverter
CN1374747A (en) Switch power source device
CN101847936B (en) Soft switching full-bridge direct-current converter with lag leg connected with auxiliary network in parallel
CN1558539A (en) Transformer clamping zero voltage switch three level full bridge converter and its expansion circuit
CN1123962C (en) Soft switching method for power switching transistor of DC converter and soft-switching DC converter
CN1866704A (en) Dual-tube dual-forward-excitation boosting type single-stage power factor correction circuit
CN1630173A (en) Combined type full-bridge three-level DC converter and full-bridge three-level DC converter
CN1592061A (en) Push-pull converter and method for power supply device and uninterrupted power supply system
CN1734903A (en) Three-level output soft-switch isolated DC converter
CN101604916A (en) Based on the pi-type auxiliary network Zero-voltage switch full-bridge direct current converter
CN1324798C (en) Two-way two-tube positive excitation converter topology
CN1120561C (en) Mixed bridge-type zero-voltage and zero-current switch three level DC converter
CN2415540Y (en) Three-level DC Converter of zero-voltage zero-current switch
CN1734904A (en) Single switch double output booster converter
CN100488019C (en) Double smoothing inductance full-bridge inverter main circuit
CN1170359C (en) Low-loss step-up method and device
CN1140045C (en) Quasi-single-stage power converter with power factor correction
CN2431675Y (en) Wide load range zero voltage zero current switch power converter
CN1585245A (en) Three-phase power factor compensating converter with flexibly switching
CN200983560Y (en) A combination switch and power supply device

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20070815

Termination date: 20170820

CF01 Termination of patent right due to non-payment of annual fee