CN106655831A - Adjustable single-phase optocoupler current double type step-down rectifier applicable to high voltages - Google Patents

Adjustable single-phase optocoupler current double type step-down rectifier applicable to high voltages Download PDF

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Publication number
CN106655831A
CN106655831A CN201710144709.2A CN201710144709A CN106655831A CN 106655831 A CN106655831 A CN 106655831A CN 201710144709 A CN201710144709 A CN 201710144709A CN 106655831 A CN106655831 A CN 106655831A
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China
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input end
synchronous
output port
module
end mouth
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Inventor
廖无限
肖强晖
湛政
任于涵
胡正国
易椠椠
戴启
廖晓宇
肖雅文
张健
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Hunan University of Technology
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Hunan University of Technology
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Priority to CN201710144709.2A priority Critical patent/CN106655831A/en
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS 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
    • H02M7/00Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
    • H02M7/02Conversion of ac power input into dc power output without possibility of reversal
    • H02M7/04Conversion of ac power input into dc power output without possibility of reversal by static converters
    • H02M7/12Conversion 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
    • H02M7/21Conversion 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
    • H02M7/217Conversion 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
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS 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
    • H02M1/00Details of apparatus for conversion
    • H02M1/14Arrangements for reducing ripples from dc input or output
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS 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
    • H02M7/00Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
    • H02M7/02Conversion of ac power input into dc power output without possibility of reversal
    • H02M7/04Conversion of ac power input into dc power output without possibility of reversal by static converters
    • H02M7/12Conversion 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
    • H02M7/21Conversion 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
    • H02M7/217Conversion 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
    • H02M7/23Conversion 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 arranged for operation in parallel

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Rectifiers (AREA)

Abstract

The invention discloses an adjustable single-phase optocoupler current double type step-down rectifier applicable to high voltages. The step-down rectifier comprises a main circuit module, a synchronous step-down module and a control circuit module, the main circuit module comprises two AC input ports, two DC output ports and a main circuit, the synchronous step-down module comprises two AC input ports, two synchronous step-down output ports and a synchronous step-down circuit, and the control circuit module comprises two synchronous input ports and a control circuit. Compared with the traditional current double type rectifier, the adjustable single-phase optocoupler current double type step-down rectifier disclosed by the invention can be directly applied to a high-voltage rectifier circuit without adding a step-down transformer at the input end to perform step-down, is both applicable to conventional square wave and is applicable to sine wave, triangular wave, sawtooth wave and other AC-DC power supply changeover, can also adjust the voltages at the DC output ports and can also reduce and improve the ripple waves of the output voltage.

Description

Suitable for high pressure and adjustable single-phase optocoupler times flow pattern buck rectifier
Technical field
The present invention relates to flow pattern rectifier again, is that one kind is related to be applied to high pressure and adjustable single-phase light more specifically Coupling times flow pattern buck rectifier.
Background technology
Currently, it is used in traditional current doubler rectifier in high-frequency rectification field more, compared with full-wave rectifying circuit, times stream rectification The vice-side winding of the high frequency transformer of device only needs a single winding, without centre cap;Compared with full bridge rectifier, times stream The few half of number of diodes that rectification circuit is used.Therefore, current-doubling rectifier combines full-wave rectifying circuit and full-bridge rectification The advantage of both circuits.Certainly, current-doubling rectifier will use an output inductor, structure slightly complicated more.But this electricity The operating frequency of sense and conveying electric current are the half of inductance used by full-wave rectifying circuit, thus can be made it is less, also beneficial to dissipating Heat, additionally it is possible to reduce and improve the ripple of output voltage.But traditional some problems of the current doubler rectifier person of there is also need into one Step is solved:
(1)Traditional current doubler rectifier is not directly applicable high-pressure type rectification circuit, to realize that step-down rectifier is exported, generally Increase step-down transformer in its input to be matched therewith, thus can produce higher cost;
(2)Traditional current doubler rectifier is suitable only for high-frequency rectification circuit, and its ac input end needs to provide the symmetrical positive and negative side of high frequency Ripple power supply, is generally unsuitable for the ac input end power supply of the other forms such as sine wave, triangular wave, sawtooth waveforms;
(3)Traditional current doubler rectifier is difficult to the adjustment to its output voltage.
The content of the invention
In view of this, the present invention is intended to provide a kind of be applied to high pressure and adjustable single-phase optocoupler times flow pattern step-down rectifier Device, the defect that traditional current doubler rectifier can be overcome to exist.
Traditional current doubler rectifier generally will increase step-down and become to realize the function that step-down rectifier is exported in ac input end Depressor is matched therewith, and the primary conductive pathway of every half work period is brought out from the one of the secondary side of step-down transformer Send out, Jing inductance, output loading, one of diode return the other end of the secondary side of step-down transformer, now conform to the principle of simplicity From the point of view of in the quantitative relationship of change, output voltage is equal to the pressure that the AC-input voltage of the secondary side of step-down transformer is deducted on inductance Drop and the pressure drop of diode, but the linear zone of diode is narrower, it operates mainly in switch region, because diode pressure drop very It is little, if ignoring the pressure drop of diode, it is believed that it is secondary that the main output voltage of every half work period is equal to step-down transformer The AC-input voltage of side deducts pressure drop on inductance.If diode is substituted for the photoelectrical coupler of linear zone wider range, Step-down transformer is rejected simultaneously, then the main output voltage of current doubler rectifier deducts the pressure drop on inductance equal to AC-input voltage, The pressure drop between photoelectrical coupler output par, c port is deducted again, it is also possible to is realized the step-down rectifier output of current doubler rectifier, is entered One step, traditional current doubler rectifier is difficult to the adjustment to its output voltage.
In order to realize the purpose of foregoing invention, the concrete offer of the present invention is applied to high pressure and adjustable single-phase optocoupler times flow pattern Buck rectifier technical scheme is:Including main circuit module, synchronous buck module and control circuit module three parts.
(1)Described main circuit module includes two ac input end mouths, two direct current output ports and a main circuits, Two of which ac input end mouth is respectively ac input end mouth ACH-in1With ac input end mouth ACH-in2, two direct current outputs Port is respectively direct current output port DCOUT+With direct current output port DCOUT-, further, main circuit again by inductance L1, inductance L2, Photoelectrical coupler U1 output par, cs and photoelectrical coupler U2 output par, cs are constituted, ac input end mouth ACH-in1With photoelectrical coupler The emitter stage of U2 output par, cs, one end of inductance L2 are connected, the other end and the direct current output port DC of inductance L2OUT+, inductance L1 One end be connected, the other end of inductance L1 and the emitter stage of photoelectrical coupler U1 output par, cs, ac input end mouth ACH-in2Phase Even, the colelctor electrode of photoelectrical coupler U1 output par, cs and the colelctor electrode of photoelectrical coupler U2 output par, cs, direct current output port DCOUT-It is connected;
(2)Described synchronous buck module is same comprising two ac input end mouths, two synchronism output ports being depressured and one Step reduction voltage circuit, two of which ac input end mouth is respectively ac input end mouth ACL-in1With ac input end mouth ACL-in2, two The synchronism output port of individual step-down is respectively synchronism output port SYOUT1With synchronism output port SYOUT2, synchronous buck circuit by Conventional device is constituted, and two ac input end mouths that its effect is to maintain main circuit module are synchronous with two of synchronous buck module Signal synchronization between output port, and the amplitude of its output voltage is reduced, to the work for matching the control circuit module Parameter;
(3)Described control circuit module includes two synchronous input end mouths and a control circuit, and two of which is synchronously input into Port is respectively synchronous input end mouth SYin1With synchronous input end mouth SYin2, further, control circuit is again by adjustable resistance Rw, electricity Resistance R1, resistance R2, photoelectrical coupler U1 importations and photoelectrical coupler U2 importations composition, synchronous input end mouth SYin1With One end of adjustable resistance Rw is connected, and the other end of adjustable resistance Rw is connected with one end of one end of resistance R1 and resistance R2, synchronous Input port SYin2The diode sun of diode cathode, photoelectrical coupler U2 importations with photoelectrical coupler U1 importations Extremely be connected, the other end of resistance R1 is connected with the diode anode of photoelectrical coupler U1 importations, the other end of resistance R2 and The diode cathode of photoelectrical coupler U2 importations is connected;
(4)The ac input end mouth AC of main circuit moduleH-in1, synchronous buck module ac input end mouth ACL-in1With it is external Exchange input bus Line1 is connected, the ac input end mouth AC of main circuit moduleH-in2, synchronous buck module ac input end Mouth ACL-in2It is connected with the external input bus Line2 that exchanges, the synchronism output port SY of synchronous buck moduleOUT1With control electricity The synchronous input end mouth SY of road modulein1It is connected, the synchronism output port SY of synchronous buck moduleOUT2With control circuit module Synchronous input end mouth SYin2It is connected, the direct current output port DC of main circuit moduleOUT+With direct current output port DCOUT-Between be used for External load RL;
(5)In the cycle point of operating voltage between external exchange input bus Line1 and external exchange input bus Line2 For positive half period and negative half-cycle two large divisions:
When positive half period is operated in, described synchronous buck module input only has a guiding path, synchronous buck module Also there was only a guiding path between output end and control circuit module, described main circuit module there are two guiding paths, its The guiding path of middle synchronous buck module input is Jing exchange input bus Line1 until the exchange of synchronous buck module is input into Port ACL-in1, the synchronous buck circuit of synchronous buck inside modules, the ac input end mouth AC of synchronous buck moduleL-in2, then To exchange input bus Line2, the guiding path between synchronous buck module output end and control circuit module is synchronism output Port SYOUT1, control circuit module synchronous input end mouth SYin1, adjustable resistance Rw, resistance R1, photoelectrical coupler U1 input units Point, synchronous input end mouth SYin2, synchronous buck module synchronism output port SYOUT2, synchronous buck inside modules synchronous drop Volt circuit, returns synchronism output port SYOUT1
And first guiding path of main circuit module is friendships of the external exchange input bus Line1 of Jing up to main circuit module Stream input port ACH-in1, inductance L2, direct current output port DCOUT+, external load RL, direct current output port DCOUT-, light thermocouple Clutch U1 output par, c and ac input end mouth ACH-in2, return external exchange input bus Line2;Main circuit module Article 2 guiding path, mainly by the premenstrual negative half-cycle energy storage of inductance L1 after, in positive half period formed afterflow return Road, i.e., from inductance L1, through direct current output port DCOUT+, external load RL, direct current output port DCOUT-And photoelectric coupling Device U1 output par, cs, return inductance L1;
When negative half-cycle is operated in, described synchronous buck module input also only has a guiding path, synchronous buck mould Also there was only a guiding path between block output end and control circuit module, described main circuit module also there are two guiding paths Footpath, the guiding path of wherein synchronous buck module input is friendships of the Jing exchange input bus Line2 up to synchronous buck module Stream input port ACL-in2, the synchronous buck circuit of synchronous buck inside modules, the ac input end mouth of synchronous buck module ACL-in1, then to exchange input bus Line1, the guiding path between synchronous buck module output end and control circuit module is Synchronism output port SYOUT2, control circuit module synchronous input end mouth SYin2, photoelectrical coupler U2 importations, resistance R2, Adjustable resistance Rw, synchronous input end mouth SYin1, synchronous buck module synchronism output port SYOUT1, synchronous buck inside modules Synchronous buck circuit, return synchronism output port SYOUT2
And first guiding path of main circuit module is friendships of the external exchange input bus Line2 of Jing up to main circuit module Stream input port ACH-in2, inductance L1, direct current output port DCOUT+, external load RL, direct current output port DCOUT-, light thermocouple Clutch U2 output par, c and ac input end ACH-in1, then to external exchange input bus Line1;The second of main circuit module Bar guiding path, mainly by inductance L2 after previous positive half period energy storage, the continuous current circuit formed in negative half-cycle, i.e., From inductance L2, through direct current output port DCOUT+, external load RL, direct current output port DCOUT-With photoelectrical coupler U2 Output par, c, returns inductance L2;In addition, positive half period or negative half-cycle are either operated in, direct current output port DCOUT+ Voltage be higher than direct current output port DCOUT-Voltage, period all benefits from the work of inductance L1 and inductance L2 energy storage and afterflow again With, high-voltage one-phase rectification function is not only realized, a times stream rectification function is also achieved, and also can reduce and improve output electricity The ripple of pressure.
The invention has the beneficial effects as follows, there is provided one kind is applied to high pressure and adjustable single-phase optocoupler times flow pattern step-down rectifier Device, with characteristic simple, rational in infrastructure, that structure is convenient, with low cost is designed, compared with traditional current doubler rectifier, can be direct High-pressure type rectification circuit is applied to, is depressured without the need for increasing step-down transformer in input, be not only suitable for conventional square wave, and Suitable for the conversion of the powers of alterating and direct current such as sine wave, triangular wave, sawtooth waveforms, it is also possible to which the voltage of direct current output port is adjusted It is whole, and also can reduce and improve the ripple of output voltage.
Description of the drawings
In order to be illustrated more clearly that the embodiment of the present invention or technical scheme, below will be in embodiment or technical scheme description The required accompanying drawing for using is briefly described, it should be apparent that, drawings in the following description are only the more typical reality of the present invention The explanation of a structure composition or circuit diagram is applied, for those skilled in the art, on the premise of not paying creative work, Can be with according to these other accompanying drawings of accompanying drawings acquisition.
Fig. 1 is a kind of canonical schema of traditional current doubler rectifier.
Fig. 2 applies to high pressure and a kind of canonical schema of adjustable single-phase optocoupler times flow pattern buck rectifier.
Fig. 3 applies to high pressure and adjustable single-phase optocoupler times flow pattern buck rectifier is operated in positive half period guiding path Schematic diagram.
Fig. 4 applies to high pressure and adjustable single-phase optocoupler times flow pattern buck rectifier is operated in negative half-cycle guiding path Schematic diagram.
Specific embodiment
To make purpose, technical scheme and the advantage of the embodiment of the present invention clearer, below in conjunction with the embodiment of the present invention In accompanying drawing, the technology of the present invention composition, technical scheme and embodiment are clearly and completely described, it is clear that described reality Apply a part of embodiment that example is only the present invention, rather than the embodiment of whole.Based on the embodiment in the present invention, this area The other embodiment that those of ordinary skill is obtained under the premise of creative work is not made, belongs to the model of present invention protection Enclose.
In conjunction with the drawings and specific embodiments, the present invention is further described.
As shown in Figure 1, it is a kind of canonical schema of traditional current doubler rectifier.Traditional current doubler rectifier is to realize step-down The function of rectification output, generally will increase step-down transformer and be matched therewith in ac input end, every half work period Primary conductive pathway is one end of the secondary side from step-down transformer, Jing inductance, output loading, one of those two pole Pipe, returns the other end of the secondary side of step-down transformer, and now in simplified quantitative relationship, output voltage is equal to drop The AC-input voltage of the secondary side of pressure transformer deducts the pressure drop of the pressure drop on inductance and diode, but diode is linear Area is narrower, and it operates mainly in switch region, because of the pressure drop very little of diode, if ignoring the pressure drop of diode, it is believed that per half The main output voltage of individual work period is equal to the AC-input voltage of step-down transformer secondary side and deducts pressure drop on inductance.In addition There is a continuous current circuit every half work period, additionally it is possible to reduce and improve the ripple of output voltage.
As shown in Figure 2, apply to high pressure and a kind of typical case of adjustable single-phase optocoupler times flow pattern buck rectifier illustrates Figure, including main circuit module, synchronous buck module and control circuit module three parts;
(1)Described main circuit module includes two ac input end mouths, two direct current output ports and a main circuits, wherein Two ac input end mouths are respectively ac input end mouth ACH-in1With ac input end mouth ACH-in2, two direct current output ports Respectively direct current output port DCOUT+With direct current output port DCOUT-, further, main circuit is again by inductance L1, inductance L2, photoelectricity Coupler U1 output par, cs and photoelectrical coupler U2 output par, cs are constituted, ac input end mouth ACH-in1It is defeated with photoelectrical coupler U2 Go out the emitter stage of part, one end of inductance L2 to be connected, the other end and the direct current output port DC of inductance L2OUT+, inductance L1 one End is connected, the other end of inductance L1 and the emitter stage of photoelectrical coupler U1 output par, cs, ac input end mouth ACH-in2It is connected, light The colelctor electrode of electric coupler U1 output par, cs and colelctor electrode, the DC of direct current output port of photoelectrical coupler U2 output par, csOUT- It is connected;
(2)Described synchronous buck module is same comprising two ac input end mouths, two synchronism output ports being depressured and one Step reduction voltage circuit, two of which ac input end mouth is respectively ac input end mouth ACL-in1With ac input end mouth ACL-in2, two The synchronism output port of individual step-down is respectively synchronism output port SYOUT1With synchronism output port SYOUT2, synchronous buck circuit by Conventional device is constituted, and two ac input end mouths that its effect is to maintain main circuit module are synchronous with two of synchronous buck module Signal synchronization between output port, and the amplitude of its output voltage is reduced, to the work for matching the control circuit module Parameter;
(3)Described control circuit module includes two synchronous input end mouths and a control circuit, and two of which is synchronously input into Port is respectively synchronous input end mouth SYin1With synchronous input end mouth SYin2, further, control circuit is again by adjustable resistance Rw, electricity Resistance R1, resistance R2, photoelectrical coupler U1 importations and photoelectrical coupler U2 importations composition, synchronous input end mouth SYin1With One end of adjustable resistance Rw is connected, and the other end of adjustable resistance Rw is connected with one end of one end of resistance R1 and resistance R2, synchronous Input port SYin2The diode sun of diode cathode, photoelectrical coupler U2 importations with photoelectrical coupler U1 importations Extremely be connected, the other end of resistance R1 is connected with the diode anode of photoelectrical coupler U1 importations, the other end of resistance R2 and The diode cathode of photoelectrical coupler U2 importations is connected;
(4)The ac input end mouth AC of main circuit moduleH-in1, synchronous buck module ac input end mouth ACL-in1With it is external Exchange input bus Line1 is connected, the ac input end mouth AC of main circuit moduleH-in2, synchronous buck module ac input end Mouth ACL-in2It is connected with the external input bus Line2 that exchanges, the synchronism output port SY of synchronous buck moduleOUT1With control electricity The synchronous input end mouth SY of road modulein1It is connected, the synchronism output port SY of synchronous buck moduleOUT2With control circuit module Synchronous input end mouth SYin2It is connected, the direct current output port DC of main circuit moduleOUT+With direct current output port DCOUT-Between be used for External load RL.
In the cycle of operating voltage between external exchange input bus Line1 and external exchange input bus Line2 It is divided into positive half period and negative half-cycle two large divisions.
As shown in Figure 3, apply to high pressure and adjustable single-phase optocoupler times flow pattern buck rectifier is operated in positive half cycle Phase guiding path schematic diagram, when positive half period is operated in, described synchronous buck module input only has a guiding path, Also there was only a guiding path between synchronous buck module output end and control circuit module, described main circuit module there are two Guiding path, the guiding path of wherein synchronous buck module input is that Jing exchanges input bus Line1 until synchronous buck mould The ac input end mouth AC of blockL-in1, the synchronous buck circuit of synchronous buck inside modules, the ac input end of synchronous buck module Mouth ACL-in2, then to exchange input bus Line2, the guiding path between synchronous buck module output end and control circuit module It is synchronism output port SYOUT1, control circuit module synchronous input end mouth SYin1, adjustable resistance Rw, resistance R1, photoelectric coupling Device U1 importations, synchronous input end mouth SYin2, synchronous buck module synchronism output port SYOUT2, in synchronous buck module The synchronous buck circuit in portion, returns synchronism output port SYOUT1
And first guiding path of main circuit module is friendships of the external exchange input bus Line1 of Jing up to main circuit module Stream input port ACH-in1, inductance L2, direct current output port DCOUT+, external load RL, direct current output port DCOUT-, light thermocouple Clutch U1 output par, c and ac input end mouth ACH-in2, return external exchange input bus Line2;Main circuit module Article 2 guiding path, mainly by the premenstrual negative half-cycle energy storage of inductance L1 after, in positive half period formed afterflow return Road, i.e., from inductance L1, through direct current output port DCOUT+, external load RL, direct current output port DCOUT-And photoelectric coupling Device U1 output par, cs, return inductance L1.
As shown in Figure 4, apply to high pressure and adjustable single-phase optocoupler times flow pattern buck rectifier is operated in negative half period Phase guiding path schematic diagram, when negative half-cycle is operated in, described synchronous buck module input also only has a guiding path Footpath, also only has a guiding path, described main circuit module between synchronous buck module output end and control circuit module There are two guiding paths, the guiding path of wherein synchronous buck module input is that Jing exchanges input bus Line2 until synchronization The ac input end mouth AC of voltage reduction moduleL-in2, the synchronous buck circuit of synchronous buck inside modules, the exchange of synchronous buck module Input port ACL-in1, then to exchange input bus Line1, leading between synchronous buck module output end and control circuit module Path is synchronism output port SYOUT2, control circuit module synchronous input end mouth SYin2, photoelectrical coupler U2 input units Point, resistance R2, adjustable resistance Rw, synchronous input end mouth SYin1, synchronous buck module synchronism output port SYOUT1, synchronous drop Synchronous buck circuit inside die block, returns synchronism output port SYOUT2
And first guiding path of main circuit module is friendships of the external exchange input bus Line2 of Jing up to main circuit module Stream input port ACH-in2, inductance L1, direct current output port DCOUT+, external load RL, direct current output port DCOUT-, light thermocouple Clutch U2 output par, c and ac input end ACH-in1, then to external exchange input bus Line1;The second of main circuit module Bar guiding path, mainly by inductance L2 after previous positive half period energy storage, the continuous current circuit formed in negative half-cycle, i.e., From inductance L2, through direct current output port DCOUT+, external load RL, direct current output port DCOUT-With photoelectrical coupler U2 Output par, c, returns inductance L2;
In addition, positive half period or negative half-cycle are either operated in, direct current output port DCOUT+Voltage be higher than direct current output Port DCOUT-Voltage, period all benefits from the effect of inductance L1 and inductance L2 energy storage and afterflow, not only realizes high pressure list again Commutating phase function, also achieves a times stream rectification function, and also can reduce and improve the ripple of output voltage.
The above, is only presently preferred embodiments of the present invention, and any pro forma restriction is not made to the present invention.If If carrying out various changes and modifications to embodiment of the present invention, but still within the spirit and principles in the present invention, should be included in Within the claims of the present invention.

Claims (1)

1. high pressure and adjustable single-phase optocoupler times flow pattern buck rectifier, including main circuit module, synchronous buck module are applied to With control circuit module three parts, it is characterized in that:
(1)Described main circuit module includes two ac input end mouths, two direct current output ports and a main circuits, wherein Two ac input end mouths are respectively ac input end mouth ACH-in1With ac input end mouth ACH-in2, two direct current output ports Respectively direct current output port DCOUT+With direct current output port DCOUT-, further, main circuit is again by inductance L1, inductance L2, photoelectricity Coupler U1 output par, cs and photoelectrical coupler U2 output par, cs are constituted, ac input end mouth ACH-in1It is defeated with photoelectrical coupler U2 Go out the emitter stage of part, one end of inductance L2 to be connected, the other end and the direct current output port DC of inductance L2OUT+, inductance L1 one End is connected, the other end of inductance L1 and the emitter stage of photoelectrical coupler U1 output par, cs, ac input end mouth ACH-in2It is connected, light The colelctor electrode of electric coupler U1 output par, cs and colelctor electrode, the DC of direct current output port of photoelectrical coupler U2 output par, csOUT- It is connected;
(2)Described synchronous buck module is same comprising two ac input end mouths, two synchronism output ports being depressured and one Step reduction voltage circuit, two of which ac input end mouth is respectively ac input end mouth ACL-in1With ac input end mouth ACL-in2, two The synchronism output port of individual step-down is respectively synchronism output port SYOUT1With synchronism output port SYOUT2, synchronous buck circuit by Conventional device is constituted, and two ac input end mouths that its effect is to maintain main circuit module are synchronous with two of synchronous buck module Signal synchronization between output port, and the amplitude of its output voltage is reduced, to the work for matching the control circuit module Parameter;
(3)Described control circuit module includes two synchronous input end mouths and a control circuit, and two of which is synchronously input into Port is respectively synchronous input end mouth SYin1With synchronous input end mouth SYin2, further, control circuit is again by adjustable resistance Rw, electricity Resistance R1, resistance R2, photoelectrical coupler U1 importations and photoelectrical coupler U2 importations composition, synchronous input end mouth SYin1With One end of adjustable resistance Rw is connected, and the other end of adjustable resistance Rw is connected with one end of one end of resistance R1 and resistance R2, synchronous Input port SYin2The diode sun of diode cathode, photoelectrical coupler U2 importations with photoelectrical coupler U1 importations Extremely be connected, the other end of resistance R1 is connected with the diode anode of photoelectrical coupler U1 importations, the other end of resistance R2 and The diode cathode of photoelectrical coupler U2 importations is connected;
(4)The ac input end mouth AC of main circuit moduleH-in1, synchronous buck module ac input end mouth ACL-in1With it is external Exchange input bus Line1 is connected, the ac input end mouth AC of main circuit moduleH-in2, synchronous buck module ac input end Mouth ACL-in2It is connected with the external input bus Line2 that exchanges, the synchronism output port SY of synchronous buck moduleOUT1With control electricity The synchronous input end mouth SY of road modulein1It is connected, the synchronism output port SY of synchronous buck moduleOUT2With control circuit module Synchronous input end mouth SYin2It is connected, the direct current output port DC of main circuit moduleOUT+With direct current output port DCOUT-Between be used for External load RL.
CN201710144709.2A 2017-03-13 2017-03-13 Adjustable single-phase optocoupler current double type step-down rectifier applicable to high voltages Pending CN106655831A (en)

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CN111007377A (en) * 2019-12-23 2020-04-14 广东宝星新能科技有限公司 Temperature sampling circuit, temperature sampling system and UPS system of IGBT module
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Publication number Priority date Publication date Assignee Title
US11259413B2 (en) 2018-04-05 2022-02-22 Abb Power Electronics Inc. Inductively balanced power supply circuit and method of manufacture
CN111007377A (en) * 2019-12-23 2020-04-14 广东宝星新能科技有限公司 Temperature sampling circuit, temperature sampling system and UPS system of IGBT module

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Application publication date: 20170510