CN104467485A - Multi-stage power amplification pulse width-modulation type switch voltage stabilizing power source - Google Patents

Multi-stage power amplification pulse width-modulation type switch voltage stabilizing power source Download PDF

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Publication number
CN104467485A
CN104467485A CN201410707533.3A CN201410707533A CN104467485A CN 104467485 A CN104467485 A CN 104467485A CN 201410707533 A CN201410707533 A CN 201410707533A CN 104467485 A CN104467485 A CN 104467485A
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China
Prior art keywords
power amplifier
output
resistance
diode
pole
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Pending
Application number
CN201410707533.3A
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Chinese (zh)
Inventor
罗娅
车容俊
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Chengdu Cuopu Technology Co Ltd
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Chengdu Cuopu Technology Co Ltd
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Priority to CN201410707533.3A priority Critical patent/CN104467485A/en
Publication of CN104467485A publication Critical patent/CN104467485A/en
Priority to CN201510310454.3A priority patent/CN104993705A/en
Pending legal-status Critical Current

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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
    • H02M3/00Conversion of dc power input into dc power output
    • H02M3/22Conversion of dc power input into dc power output with intermediate conversion into ac
    • H02M3/24Conversion of dc power input into dc power output with intermediate conversion into ac by static converters
    • H02M3/28Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac
    • H02M3/325Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal
    • H02M3/335Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only
    • H02M3/33507Conversion of dc power input into dc power output with intermediate conversion into ac by static converters using discharge tubes with control electrode or semiconductor devices with control electrode to produce the intermediate ac using devices of a triode or a transistor type requiring continuous application of a control signal using semiconductor devices only with automatic control of the output voltage or current, e.g. flyback converters
    • 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

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Dc-Dc Converters (AREA)
  • Amplifiers (AREA)

Abstract

The invention discloses a multi-stage power amplification pulse width-modulation type switch voltage stabilizing power source which is mainly composed of a diode rectifier U, a power amplifier P1, a transformer T, a switch filter circuit connected between the diode rectifier U and the power amplifier P1 in series, a power source output circuit connected with a secondary side coil L2 of the transformer T, a voltage transformation feedback circuit connected with a secondary side coil L3 of the transformer T, a switch control circuit connected with the voltage transformation feedback circuit, an oscillator connected with the switch control circuit and the like. The multi-stage power amplification pulse width-modulation type switching voltage stabilizing power source is characterized in that a logic protection amplification circuit is further connected between the negative electrode output end of the diode rectifier U and the negative electrode output end of the power amplifier P1 in series. Field-effect tubes are used for forming the switch control circuit, so that the multi-stage power amplification pulse width-modulation type switching voltage stabilizing power source has a voltage increasing mode and a voltage reducing mode, the change of the output current in the full voltage range is controlled within +/-0.1%, and the change control range of the output current is greatly enlarged compared with a traditional switch voltage stabilizing power source.

Description

A kind of multiple power levels amp pulse width modulation type switching power supply
Technical field
The present invention relates to a kind of switching power supply, specifically refer to a kind of multiple power levels amp pulse width modulation type switching power supply.
Background technology
Along with continuous progress scientific and technological at present, electronic product also brings great convenience to people are in life while function from strength to strength.Voltage stabilizing circuit is just runed and gives birth to, and traditional series connection linear regulator type voltage stabilizing circuit has the features such as stability is high, output voltage is adjustable, ripple coefficient is little, circuit is simple.But the Correctional tube of these series connection linear regulator type voltage stabilizing circuits is always operating at magnifying state, and have electric current to flow through, therefore the power consumption of its pipe is comparatively large, the efficiency of circuit is not high, generally can only reach about 30% ~ 50% always.In order to overcome above-mentioned defect, people just have developed switching mode voltage stabilizing circuit.
In switching mode voltage stabilizing circuit, surge pipe is operated on off state, pipe alternation saturated with cut-off two states in.When pipe saturation conduction, though it is large to flow through pipe current, but tube voltage drop is very little; When pipe ends, tube voltage drop is large, but the electric current flow through is close to zero.Therefore, under power output the same terms, the efficiency of switching mode voltage stabilizer coin series regulator is high, generally can reach about 80% ~ 90%.But it is comparatively large that the switching mode voltage stabilizer that current people adopt but exists ripple coefficient, when Correctional tube constantly switches between saturated and cut-off state, radio frequency interference can be produced to circuit, circuit more complicated and cost is higher.
Summary of the invention
The object of the invention is to the defect that ripple coefficient is comparatively large, radio frequency interference is serious, circuit is complicated and efficiency is not high overcoming the existence of current switching mode voltage stabilizer, a kind of multiple power levels amp pulse width modulation type switching power supply is provided.
Object of the present invention is achieved through the following technical solutions: a kind of multiple power levels amp pulse width modulation type switching power supply, primarily of diode rectifier U, power amplifier P1, transformer T, be serially connected in the switched filter circuit between diode rectifier U and power amplifier P1, the power output circuit be connected with the secondary coil L2 of transformer T, the transformation feedback circuit be connected with the secondary coil L3 of transformer T, the ON-OFF control circuit be connected with transformation feedback circuit, the oscillator be connected with ON-OFF control circuit, the current comparator I1 be connected with ON-OFF control circuit, the current comparator I2 be connected with ON-OFF control circuit, respectively with oscillator, the slope equalizer W that current comparator I1 is connected with current comparator I2, the PWM controller be connected with current comparator I1 with power amplifier P1 respectively, and output is connected with the tap on the primary coil L1 of transformer T, and the sliding damper that input is connected with the output of power amplifier P1 forms.Meanwhile, between the cathode output end and the negative input of power amplifier P1 of diode rectifier U, virtual protection amplifying circuit is also serially connected with, this virtual protection amplifying circuit is primarily of power amplifier P3, power amplifier P4, NAND gate IC1, NAND gate IC2, negative pole is connected with the electrode input end of power amplifier P3, the polar capacitor C7 that positive pole is connected with the negative input of NAND gate IC2 after resistance R7, one end is connected with the negative input of NAND gate IC1, the resistance R4 that the other end is connected with the electrode input end of power amplifier P3, be serially connected in the resistance R5 between the negative input of power amplifier P3 and output, one end is connected with the output of NAND gate IC1, the resistance R6 that the other end is connected with the negative input of power amplifier P4, be serially connected in the polar capacitor C8 between the electrode input end of power amplifier P4 and output, positive pole is connected with the output of NAND gate IC2, negative pole is in turn through electric capacity C9 that voltage stabilizing didoe D4 is connected with the output of power amplifier P3 after resistance R8, P pole is connected with the output of power amplifier P4, N pole is in turn through diode D5 that resistance R10 is connected with the tie point of resistance R8 with voltage stabilizing didoe D4 after resistance R9, and N pole is connected with the negative pole of electric capacity C9, the voltage stabilizing didoe D6 that P pole is connected with the tie point of resistance R10 with diode D5 forms, the electrode input end of described NAND gate IC1 is connected with the negative input of power amplifier P3, the electrode input end of the output NAND gate IC2 of power amplifier P4 is connected, and its electrode input end is then connected with the output of power amplifier P3, described resistance R9 is connected with the cathode output end of diode rectifier U with the tie point of resistance R10, and the positive pole of polar capacitor C7 is then connected with the negative input of power amplifier P1.
Further, described switched filter circuit is by triode Q, and electric capacity C1, electric capacity C2, resistance R1, resistance R2 and diode D1 form; The base stage of described triode Q forms loop with its collector electrode in turn after resistance R2, diode D1 and resistance R1, and electric capacity C1 and resistance R1 is in parallel, and electric capacity C2 and resistance R2 is in parallel; The collector electrode of triode Q is connected with the cathode output end of diode rectifier U, its grounded emitter; The cathode output end of diode rectifier U is then directly connected with the negative input of power amplifier P1, and resistance R2 is then connected with the electrode input end of power amplifier P1 with the tie point of diode D1; The primary coil L1 of transformer T is then in parallel with diode D1.
The diode D2 that described power output circuit is connected with the Same Name of Ends of secondary coil L2 by P pole, N pole is connected with the non-same polarity of secondary coil L2 after electric capacity C3, and the inductance L 4 that one end is connected with the N pole of diode D2, the other end is connected with the non-same polarity of secondary coil L2 after electric capacity C4 forms.
Described transformation feedback circuit is made up of diode D3 and electric capacity C5; The P pole of described diode D3 is connected with the non-same polarity of secondary coil L3, its N pole is connected with the Same Name of Ends of secondary coil L3 after electric capacity C5, the Same Name of Ends ground connection of described secondary coil L3.
Described ON-OFF control circuit is made up of field effect transistor MOS, power amplifier P2, voltage comparator U1, inductance L 5 and resistance R3; Described inductance L 5 is serially connected between the output of power amplifier P1 and the N pole of diode D3, and the drain electrode of field effect transistor MOS is connected with the N pole of diode D3, its source electrode ground connection, its grid after resistance R3 are then connected with the output of power amplifier P2; The S end of voltage comparator U1 is connected with the output of oscillator, and its R end is connected with the output of current comparator I1, and its Q end is then connected with the negative input of power amplifier P2; The electrode input end of power amplifier P2 is then connected with the drain electrode of field effect transistor MOS; The electrode input end of current comparator I2 is then connected with the two ends of resistance R3 with negative input, and its output is connected with the input of oscillator with the negative input of current comparator I1 respectively after slope equalizer W; The electrode input end of current comparator I1 is then connected with the output of power amplifier P1; An output of PWM controller is connected with the negative input of power amplifier P1 with the negative input of current comparator I1 respectively, its another output ground connection after electric capacity C6.
The present invention comparatively prior art compares, and has the following advantages and beneficial effect:
(1) the present invention make use of the controlling functions of PWM fully, can automatically regulate electric power output voltage value according to duty ratio, guarantees the stable of output valve.
(2) initiative of the present invention slope equalizer and voltage, current comparator are used in a power, not only effectively reduce circuit self and external radio frequency interference, but also greatly simplify circuit structure, cost of manufacture and maintenance cost are had reduction by a relatively large margin.
(3) the present invention utilizes field effect transistor to form ON-OFF control circuit, the present invention is not only made to have possessed boost mode and decompression mode, but also making the change of full voltage range output current control between ± 0.1%, the output current change control range of more traditional switching power supply is greatly improved.
Accompanying drawing explanation
Fig. 1 is overall structure schematic diagram of the present invention.
Fig. 2 is virtual protection amplification circuit structure schematic diagram of the present invention.
Embodiment
Below in conjunction with embodiment, the present invention is described in further detail, but embodiments of the present invention are not limited thereto.
Embodiment
As shown in Figure 1, diode rectifier U, power amplifier P1, transformer T, switched filter circuit, power output circuit, transformation feedback circuit, ON-OFF control circuit, oscillator, current comparator I1, current comparator I2, slope equalizer W, PWM controller, sliding damper and virtual protection amplifying circuit have been the present invention includes.Wherein, transformer T is by the primary coil L1 being arranged on its former limit, and the secondary coil L2 and the secondary coil L3 that are arranged on its secondary form.The present invention is provided with a sliding tap on the primary coil L1 of transformer T, this sliding tap is then controlled by sliding damper, to guarantee to adjust turn ratio between the primary coil L1 of transformer T and secondary coil L2 and secondary coil L3 according to the duty ratio of PWM controller and the common results of ON-OFF control circuit, thus realize the output of different voltage.
The input of diode rectifier U is used for the civil power of external 220V, between the cathode output end that switched filter circuit is then serially connected in this diode rectifier U and the electrode input end of power amplifier P1.
The structure of described virtual protection amplifying circuit as shown in Figure 2, it is primarily of power amplifier P3, power amplifier P4, NAND gate IC1, NAND gate IC2, negative pole is connected with the electrode input end of power amplifier P3, the polar capacitor C7 that positive pole is connected with the negative input of NAND gate IC2 after resistance R7, one end is connected with the negative input of NAND gate IC1, the resistance R4 that the other end is connected with the electrode input end of power amplifier P3, be serially connected in the resistance R5 between the negative input of power amplifier P3 and output, one end is connected with the output of NAND gate IC1, the resistance R6 that the other end is connected with the negative input of power amplifier P4, be serially connected in the polar capacitor C8 between the electrode input end of power amplifier P4 and output, positive pole is connected with the output of NAND gate IC2, negative pole is in turn through electric capacity C9 that voltage stabilizing didoe D4 is connected with the output of power amplifier P3 after resistance R8, P pole is connected with the output of power amplifier P4, N pole is in turn through diode D5 that resistance R10 is connected with the tie point of resistance R8 with voltage stabilizing didoe D4 after resistance R9, and N pole is connected with the negative pole of electric capacity C9, the voltage stabilizing didoe D6 that P pole is connected with the tie point of resistance R10 with diode D5 forms.
Meanwhile, the electrode input end of described NAND gate IC1 is connected with the negative input of power amplifier P3; The electrode input end of the output NAND gate IC2 of power amplifier P4 is connected, and its electrode input end is then connected with the output of power amplifier P3; Described resistance R9 is connected with the cathode output end of diode rectifier U with the tie point of resistance R10, and the positive pole of polar capacitor C7 is then connected with the negative input of power amplifier P1.
As shown in Figure 1, described switched filter circuit is by triode Q, and electric capacity C1, electric capacity C2, resistance R1, resistance R2 and diode D1 form.Wherein, the base stage of triode Q forms loop with its collector electrode in turn after resistance R2, diode D1 and resistance R1.Electric capacity C1 and resistance R1 is in parallel, and electric capacity C2 and resistance R2 is in parallel, to form typical RC filter circuit.Meanwhile, the collector electrode of triode Q is connected with the cathode output end of diode rectifier U, its grounded emitter; The cathode output end of diode rectifier U is then directly connected with the negative input of power amplifier P1, and resistance R2 is then connected with the electrode input end of power amplifier P1 with the tie point of diode D1.Primary coil L1 and the diode D1 of described transformer T are in parallel.
In this switched filter circuit, resistance R1, electric capacity C1 and diode D1 form feedback-clamp circuit, can improve the peak-inverse voltage of conversion efficiency and reduction power amplifier P1 electrode input end.
Power output circuit is used for the direct voltage of stable output, and it is made up of diode D2, electric capacity C3, inductance L 4 and electric capacity C4.During connection, the P pole of diode D2 is connected with the Same Name of Ends of secondary coil L2, and its N pole is connected with the non-same polarity of secondary coil L2 after electric capacity C3.One end of described inductance L 4 is connected with the N pole of diode D2, the other end is connected with the non-same polarity of secondary coil L2 after electric capacity C4.The two ends of electric capacity C4 then as the output of whole power supply, for external loading provides required voltage and current.
Transformation feedback circuit is used for providing feedback operation voltage, to guarantee that ON-OFF control circuit can control sliding damper according to feedback voltage for ON-OFF control circuit.This transformation feedback circuit is then made up of diode D3 and electric capacity C5.During connection, the P pole of described diode D3 is connected with the non-same polarity of secondary coil L3, its N pole is connected with the Same Name of Ends of secondary coil L3 after electric capacity C5, meanwhile, and the Same Name of Ends ground connection of this secondary coil L3.
ON-OFF control circuit is switching control section of the present invention, and it is made up of field effect transistor MOS, power amplifier P2, voltage comparator U1, inductance L 5 and resistance R3.As shown in Figure 1, this inductance L 5 is serially connected between the output of power amplifier P1 and the N pole of diode D3, and the drain electrode of field effect transistor MOS is connected with the N pole of diode D3, its source electrode ground connection, its grid after resistance R3 are then connected with the output of power amplifier P2.
The S end of voltage comparator U1 is connected with the output of oscillator, and its R end is connected with the output of current comparator I1, and its Q end is then connected with the negative input of power amplifier P2.The electrode input end of power amplifier P2 is then connected with the drain electrode of field effect transistor MOS.The electrode input end of current comparator I2 is connected with the two ends of negative input with resistance R3, and during to guarantee field effect transistor MOS conducting, it can collect operating voltage from resistance R3 two ends.
Simultaneously, the output of this current comparator I2 is connected with the input of oscillator with the negative input of current comparator I1 respectively after slope equalizer W, to guarantee that slope equalizer W can provide auxiliary slope-compensation for current comparator I1, make its working stability.
The electrode input end of current comparator I1 is then connected with the non-same polarity of primary coil L1 with the output of power amplifier P1; An output of PWM controller is connected with the negative input of power amplifier P1 with the negative input of current comparator I1 respectively, its another output ground connection after electric capacity C6.
During use, the voltage acting on diode rectifier U carries out after filtering as the primary coil L1 of transformer T and power amplifier P1 provides operating voltage through switched filter circuit.When inductance coil L5 senses that external loading changes, when its induction reactance just changes, now power amplifier P2 impels field effect transistor MOS conducting under the acting in conjunction of voltage comparator U1 and inductance L 5, the pulse signal that PWM controller provides acts on power amplifier P1 and current comparator I1 after current comparator I1, sliding damper is obtained electric, and automatically regulate sliding tap according to the situation of change of load, thus change the primary coil L1 of transformer T and the turn ratio between secondary coil L2 and secondary coil L3, final realization is to the stable power-supplying function of load.
As mentioned above, just the present invention can well be realized.

Claims (5)

1. a multiple power levels amp pulse width modulation type switching power supply, primarily of diode rectifier U, power amplifier P1, transformer T, be serially connected in the switched filter circuit between diode rectifier U and power amplifier P1, the power output circuit be connected with the secondary coil L2 of transformer T, the transformation feedback circuit be connected with the secondary coil L3 of transformer T, the ON-OFF control circuit be connected with transformation feedback circuit, the oscillator be connected with ON-OFF control circuit, the current comparator I1 be connected with ON-OFF control circuit, the current comparator I2 be connected with ON-OFF control circuit, respectively with oscillator, the slope equalizer W that current comparator I1 is connected with current comparator I2, the PWM controller be connected with current comparator I1 with power amplifier P1 respectively, and output is connected with the tap on the primary coil L1 of transformer T, and the sliding damper that input is connected with the output of power amplifier P1 forms, it is characterized in that, virtual protection amplifying circuit is also serially connected with between the cathode output end and the negative input of power amplifier P1 of diode rectifier U, this virtual protection amplifying circuit is primarily of power amplifier P3, power amplifier P4, NAND gate IC1, NAND gate IC2, negative pole is connected with the electrode input end of power amplifier P3, the polar capacitor C7 that positive pole is connected with the negative input of NAND gate IC2 after resistance R7, one end is connected with the negative input of NAND gate IC1, the resistance R4 that the other end is connected with the electrode input end of power amplifier P3, be serially connected in the resistance R5 between the negative input of power amplifier P3 and output, one end is connected with the output of NAND gate IC1, the resistance R6 that the other end is connected with the negative input of power amplifier P4, be serially connected in the polar capacitor C8 between the electrode input end of power amplifier P4 and output, positive pole is connected with the output of NAND gate IC2, negative pole is in turn through electric capacity C9 that voltage stabilizing didoe D4 is connected with the output of power amplifier P3 after resistance R8, P pole is connected with the output of power amplifier P4, N pole is in turn through diode D5 that resistance R10 is connected with the tie point of resistance R8 with voltage stabilizing didoe D4 after resistance R9, and N pole is connected with the negative pole of electric capacity C9, the voltage stabilizing didoe D6 that P pole is connected with the tie point of resistance R10 with diode D5 forms, the electrode input end of described NAND gate IC1 is connected with the negative input of power amplifier P3, the electrode input end of the output NAND gate IC2 of power amplifier P4 is connected, and its electrode input end is then connected with the output of power amplifier P3, described resistance R9 is connected with the cathode output end of diode rectifier U with the tie point of resistance R10, and the positive pole of polar capacitor C7 is then connected with the negative input of power amplifier P1.
2. a kind of multiple power levels amp pulse width modulation type switching power supply according to claim 1, it is characterized in that, described switched filter circuit is by triode Q, and electric capacity C1, electric capacity C2, resistance R1, resistance R2 and diode D1 form; The base stage of described triode Q forms loop with its collector electrode in turn after resistance R2, diode D1 and resistance R1, and electric capacity C1 and resistance R1 is in parallel, and electric capacity C2 and resistance R2 is in parallel; The collector electrode of triode Q is connected with the cathode output end of diode rectifier U, its grounded emitter; The cathode output end of diode rectifier U is then directly connected with the negative input of power amplifier P1, and resistance R2 is then connected with the electrode input end of power amplifier P1 with the tie point of diode D1; The primary coil L1 of transformer T is then in parallel with diode D1.
3. a kind of multiple power levels amp pulse width modulation type switching power supply according to claim 2, it is characterized in that, the diode D2 that described power output circuit is connected with the Same Name of Ends of secondary coil L2 by P pole, N pole is connected with the non-same polarity of secondary coil L2 after electric capacity C3, and the inductance L 4 that one end is connected with the N pole of diode D2, the other end is connected with the non-same polarity of secondary coil L2 after electric capacity C4 forms.
4. a kind of multiple power levels amp pulse width modulation type switching power supply according to claim 3, it is characterized in that, described transformation feedback circuit is made up of diode D3 and electric capacity C5; The P pole of described diode D3 is connected with the non-same polarity of secondary coil L3, its N pole is connected with the Same Name of Ends of secondary coil L3 after electric capacity C5, the Same Name of Ends ground connection of described secondary coil L3.
5. a kind of multiple power levels amp pulse width modulation type switching power supply according to claim 4, it is characterized in that, described ON-OFF control circuit is made up of field effect transistor MOS, power amplifier P2, voltage comparator U1, inductance L 5 and resistance R3; Described inductance L 5 is serially connected between the output of power amplifier P1 and the N pole of diode D3, and the drain electrode of field effect transistor MOS is connected with the N pole of diode D3, its source electrode ground connection, its grid after resistance R3 are then connected with the output of power amplifier P2; The S end of voltage comparator U1 is connected with the output of oscillator, and its R end is connected with the output of current comparator I1, and its Q end is then connected with the negative input of power amplifier P2; The electrode input end of power amplifier P2 is then connected with the drain electrode of field effect transistor MOS; The electrode input end of current comparator I2 is then connected with the two ends of resistance R3 with negative input, and its output is connected with the input of oscillator with the negative input of current comparator I1 respectively after slope equalizer W; The electrode input end of current comparator I1 is then connected with the output of power amplifier P1; An output of PWM controller is connected with the negative input of power amplifier P1 with the negative input of current comparator I1 respectively, its another output ground connection after electric capacity C6.
CN201410707533.3A 2014-11-27 2014-11-27 Multi-stage power amplification pulse width-modulation type switch voltage stabilizing power source Pending CN104467485A (en)

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Application Number Priority Date Filing Date Title
CN201410707533.3A CN104467485A (en) 2014-11-27 2014-11-27 Multi-stage power amplification pulse width-modulation type switch voltage stabilizing power source
CN201510310454.3A CN104993705A (en) 2014-11-27 2015-06-09 Multistage power amplification and pulse width modulation type mixed protection stabilized switching power supply

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Application Number Priority Date Filing Date Title
CN201410707533.3A CN104467485A (en) 2014-11-27 2014-11-27 Multi-stage power amplification pulse width-modulation type switch voltage stabilizing power source

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CN201510310454.3A Withdrawn CN104993705A (en) 2014-11-27 2015-06-09 Multistage power amplification and pulse width modulation type mixed protection stabilized switching power supply

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CN108336923A (en) * 2018-04-13 2018-07-27 武汉华中华昌能源电气科技有限公司 A kind of impulse circuit and the Square wave pulses source with the impulse circuit

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CN107990913A (en) * 2017-12-21 2018-05-04 中国船舶重工集团公司第七0七研究所 A kind of programmable DC regulated power supply for optical fibre gyro test
CN111524706B (en) * 2020-04-27 2022-03-04 宁波奥克斯电气股份有限公司 Electrolytic capacitor protection device and method and air conditioner
CN113252126B (en) * 2021-05-21 2022-06-03 中国水利水电科学研究院 Terminal system capable of identifying personal water consumption

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN108336923A (en) * 2018-04-13 2018-07-27 武汉华中华昌能源电气科技有限公司 A kind of impulse circuit and the Square wave pulses source with the impulse circuit
CN108336923B (en) * 2018-04-13 2023-10-20 武汉华中华昌能源电气科技有限公司 Pulse circuit and rectangular wave pulse source with same

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Application publication date: 20150325