CN110557034B - Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine - Google Patents

Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine Download PDF

Info

Publication number
CN110557034B
CN110557034B CN201910949692.7A CN201910949692A CN110557034B CN 110557034 B CN110557034 B CN 110557034B CN 201910949692 A CN201910949692 A CN 201910949692A CN 110557034 B CN110557034 B CN 110557034B
Authority
CN
China
Prior art keywords
resistor
capacitor
voltage
twenty
operational amplifier
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.)
Active
Application number
CN201910949692.7A
Other languages
Chinese (zh)
Other versions
CN110557034A (en
Inventor
冯文联
谢传波
胡洲
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.)
Chongqing Camel Power Machinery Co ltd
Original Assignee
Chongqing Cameo Gasoline Engine Co ltd
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 Chongqing Cameo Gasoline Engine Co ltd filed Critical Chongqing Cameo Gasoline Engine Co ltd
Priority to CN201910949692.7A priority Critical patent/CN110557034B/en
Publication of CN110557034A publication Critical patent/CN110557034A/en
Application granted granted Critical
Publication of CN110557034B publication Critical patent/CN110557034B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • 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
    • H02M7/145Conversion 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 thyratron or thyristor type requiring extinguishing means
    • H02M7/155Conversion 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 thyratron or thyristor type requiring extinguishing means using semiconductor devices only
    • H02M7/1555Conversion 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 thyratron or thyristor type requiring extinguishing means using semiconductor devices only with control circuit

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Control Of Eletrric Generators (AREA)
  • Rectifiers (AREA)

Abstract

The invention discloses a pre-stage pre-voltage-stabilizing system of an intermediate-frequency permanent magnet power generation welding machine, which comprises a three-phase alternating-current generator, a pre-voltage-stabilizing rectification circuit, a three-phase voltage sampling circuit, a controller, an electric welding frequency conversion unit and a power generation frequency conversion unit, wherein the pre-voltage-stabilizing rectification circuit is connected with the three-phase voltage sampling circuit; the voltage output end of the three-phase alternating-current generator is connected with the voltage input end of the pre-voltage-stabilizing rectification circuit, the voltage output end of the pre-voltage-stabilizing rectification circuit is connected with the voltage input ends of the electric welding frequency conversion unit and the power generation frequency conversion unit respectively, the three-phase voltage output end of the three-phase alternating-current generator is connected with the three-phase voltage input end of the three-phase voltage sampling circuit, the voltage output end of the three-phase voltage sampling circuit is connected with the voltage input end of the controller, and the control output end of the controller is connected with the control input end of the pre-voltage-stabilizing rectification circuit. The invention adjusts the conduction angle of the controlled silicon in the pre-voltage-stabilizing rectification circuit through the controller to output stable voltage, thereby avoiding the electromagnetic interference between the electric welding and the power generation unit and improving the working efficiency.

Description

Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine
Technical Field
The invention relates to the technical field of electronic circuits, in particular to a pre-voltage-stabilizing system for a front stage of an intermediate-frequency permanent magnet power generation welding machine.
Background
Along with the rapid development of society and industry, the market prospect of the equipment that only possesses single function is littleer and more, therefore the demand of multi-functional equipment is bigger and bigger, for example with the power generation function and the electric welding function integration to integrative equipment, not only portable can also adapt to different operational environment demands.
When circuits among different functional units are integrated on one device, the voltage supplied to a main loop of a welding unit fluctuates due to the fluctuation of the rotating speed of an engine, the fluctuation range is from DC300 to 600 volts, and the signal conduction among the circuits has mutual electromagnetic interference to influence the stability of output voltage, thereby bringing great inconvenience to work.
Disclosure of Invention
The invention provides a pre-voltage stabilizing system of a front stage of a medium-frequency (600 Hz) permanent magnet power generation welding machine, aiming at the problem of mutual electromagnetic interference between variable-frequency power generation and electric welding in the prior art.
In order to achieve the purpose, the invention provides the following technical scheme:
a pre-stage voltage stabilizing system of an intermediate frequency permanent magnet power generation welding machine comprises an electric welding frequency conversion unit, a power generation frequency conversion unit, a three-phase alternating current generator, a pre-voltage stabilizing rectification circuit, a three-phase voltage sampling circuit and a controller;
the three-phase voltage output end of the three-phase alternating current generator is respectively connected with the three-phase voltage input end of the pre-voltage-stabilizing rectification circuit and the three-phase voltage input end of the three-phase voltage sampling circuit, the three-phase voltage output end of the three-phase voltage sampling circuit is connected with the controller, the signal regulation output end of the controller is connected with the signal regulation input end of the pre-voltage-stabilizing rectification circuit, and the output end of the pre-voltage-stabilizing rectification circuit is respectively connected with the input end of the electric welding frequency conversion unit and the input end of the power generation frequency conversion unit.
Preferably, the three-phase voltage sampling circuit comprises operational amplifiers U1, U2, U3 and a three-phase voltage input terminal A, B, C:
the A end is connected with one end of a first resistor, the other end of the first resistor is connected with one end of a second resistor, the other end of the second resistor is connected with the non-inverting input end of an operational amplifier U1, the other end of the second resistor is also connected with one end of a third resistor and one end of a first capacitor respectively, and the other end of the third resistor and the other end of the first capacitor are grounded after being connected in parallel; an inverting input end of the operational amplifier U1 is respectively connected with one end of a fourth resistor, one end of a sixth resistor and one end of a third capacitor, the other end of the fourth resistor is connected with one end of a fifth resistor, and the other end of the fifth resistor is grounded; the other end of the sixth resistor and the other end of the third capacitor are connected in parallel and then connected with the output end of the operational amplifier U1, the output end of the operational amplifier U1 is also connected with one end of a seventh resistor, the other end of the seventh resistor is respectively connected with an ADC _ DC port of the controller and one end of a fourth capacitor, and the other end of the fourth capacitor is grounded; the positive power supply end of the operational amplifier U1 is respectively connected with one end of a first power supply and one end of a second capacitor, and the other end of the second capacitor is grounded; the negative power supply end of the operational amplifier U1 is grounded;
the end B is connected with one end of an eighth resistor, the other end of the eighth resistor is connected with one end of a ninth resistor, the other end of the ninth resistor is connected with the non-inverting input end of the operational amplifier U2, the other end of the ninth resistor is also connected with one end of a tenth resistor and one end of a fifth capacitor respectively, and the other end of the tenth resistor and the other end of the fifth capacitor are connected with a second power supply after being connected in parallel; the inverting input end of the operational amplifier U2 is respectively connected with the output end of the U2 and one end of an eleventh resistor, and the other end of the eleventh resistor is connected with the non-inverting input end of the operational amplifier U3; the output end of the operational amplifier U2 is further connected with one end of a fifteenth resistor, the other end of the fifteenth resistor is respectively connected with an ADC _ AC _ U port of the controller and one end of a seventh capacitor, and the other end of the seventh capacitor is grounded; a positive power supply end of the operational amplifier U2 is respectively connected with a third power supply and one end of a sixth capacitor, and the other end of the sixth capacitor is grounded; the negative power supply end of the operational amplifier U2 is grounded;
the end C is connected with one end of a twelfth resistor, the other end of the twelfth resistor is connected with the inverting input end of an operational amplifier U3, the inverting input end of the operational amplifier U3 is further connected with one end of a thirteenth resistor and one end of an eighth capacitor respectively, the other end of the thirteenth resistor and the other end of the eighth capacitor are connected with the output end of an operational amplifier U3 after being connected in parallel, the output end of the operational amplifier U3 is further connected with one end of a fourteenth resistor, the other end of the fourteenth resistor is connected with a ZERO _ PLUS _ M port of the controller and one end of a ninth capacitor respectively, and the other end of the ninth capacitor is grounded; the positive power supply end of the operational amplifier U3 is connected with the fourth power supply, and the negative power supply end of the operational amplifier U3 is grounded.
Preferably, the pre-regulated rectifier circuit comprises an optocoupler and a thyristor:
the control output end of the controller is connected with one end of a sixteenth resistor, the other end of the sixteenth resistor is connected with the anode of the input end of the optical coupler, and the cathode of the input end of the optical coupler is grounded; a collector of an output end of the optocoupler is respectively connected with an emitter of the first triode, one end of the eighteenth resistor and one end of the nineteenth resistor, the emitter of the output end of the optocoupler is respectively connected with a base of the first triode and one end of the seventeenth resistor, and the other end of the seventeenth resistor and the other end of the eighteenth resistor are respectively connected with a collector of the second triode; the other end of the nineteenth resistor is respectively connected with one end of a twentieth resistor, the cathode of the first diode and one end of a tenth capacitor, the other end of the twentieth resistor is connected with one end of a twenty-first resistor, the other end of the twenty-first resistor is respectively connected with one end of a twenty-second resistor, one end of a twenty-fourth resistor, one end of an eleventh capacitor and the base level of the second triode, the other end of the twenty-second resistor is connected with one end of a twenty-third resistor, and the other end of the twenty-third resistor is grounded; the other end of the tenth capacitor, the anode of the first diode, the other end of the twenty-fourth resistor and the other end of the eleventh capacitor are connected in parallel and then connected with the emitter of the second triode;
the emitter of the second triode is also respectively connected with one end of a twenty-fifth resistor, one end of a twenty-sixth resistor, one end of a twelfth capacitor, one end of a thirteenth capacitor and one end of a fourteenth capacitor, the other end of the twenty-fifth resistor and the other end of the twenty-sixth resistor are connected in parallel and then are respectively connected with a collector of the first triode, one end of the twenty-seventh resistor, one end of the twenty-eighth resistor and one end of the twenty-ninth resistor, the other end of the twenty-seventh resistor is respectively connected with the other end of the twelfth capacitor and a control electrode of the third controlled silicon, the other end of the twenty-eighth resistor is respectively connected with the other end of the thirteenth capacitor and a control electrode of the second controlled silicon, the other end of the twenty-ninth resistor is respectively connected with the other end of the fourteenth capacitor and a control electrode of the first controlled silicon, and an anode of the first controlled silicon, an anode of the second controlled silicon and an anode of the third controlled silicon are respectively connected with a three-phase voltage output end of the three-phase alternating current generator; the cathode of the first silicon controlled rectifier, the cathode of the second silicon controlled rectifier and the cathode of the third silicon controlled rectifier are connected in parallel and then connected with a fifth power supply; the anode of the second diode, the anode of the third diode and the anode of the fourth diode are respectively connected with the three-phase voltage output end of the three-phase alternating-current generator, and the cathode of the second diode, the cathode of the third diode and the cathode of the fourth diode are connected in parallel and then connected with the external module.
In summary, due to the adoption of the technical scheme, compared with the prior art, the invention at least has the following beneficial effects:
according to the invention, the three-phase half-controlled rectifier bridge is arranged, the controller judges and outputs the PWM waveform signal by collecting the voltage signal of the generator, and the pre-voltage-stabilizing rectifier circuit is controlled to adjust the output voltage of the generator so as to improve the stability of the output voltage, so that the problem of mutual electromagnetic interference between variable-frequency power generation and electric welding is solved, the reliability of the variable-frequency power generation and the electric welding is improved, the loss of elements is reduced, and the working efficiency is improved.
Description of the drawings:
fig. 1 is a schematic structural diagram of a pre-voltage stabilizing system at a front stage of an intermediate-frequency permanent magnet power generation welding machine according to an exemplary embodiment of the invention.
Fig. 2 is a structural diagram of a three-phase voltage sampling circuit according to an exemplary embodiment of the present invention.
Fig. 3 is a block diagram of a controller according to an exemplary embodiment of the present invention.
Fig. 4 is a structural diagram of a pre-stabilized rectifier circuit according to an exemplary embodiment of the present invention.
Detailed Description
The present invention will be described in further detail with reference to examples and embodiments. It should be understood that the scope of the above-described subject matter is not limited to the following examples, and any techniques implemented based on the disclosure of the present invention are within the scope of the present invention.
Fig. 1 is an exemplary pre-voltage stabilizing system of a pre-voltage stabilizing rectification circuit 2 of an intermediate frequency permanent magnet generator welder, which includes a three-phase ac generator 1, a pre-voltage stabilizing rectification circuit 3, a three-phase voltage sampling circuit 3, a controller 4, an electric welding frequency conversion unit 5 and an electric power generation frequency conversion unit 6.
The voltage output end of the three-phase alternating-current generator 1 is connected with the voltage input end of the pre-voltage-stabilizing rectification circuit 2, the voltage output end of the pre-voltage-stabilizing rectification circuit 2 is respectively connected with the voltage input ends of the electric welding frequency conversion unit 5 and the power generation frequency conversion unit 6, the output end of the electric welding frequency conversion unit 5 is connected with an electric welding element, and the output end of the power generation frequency conversion unit 6 is connected with an electric load; and the three-phase voltage output end of the three-phase alternating current generator 1 is connected with the three-phase voltage input end of the three-phase voltage sampling circuit 3, the voltage output end of the three-phase voltage sampling circuit 3 is connected with the voltage input end of the controller 4, and the control output end of the controller 4 is connected with the control input end of the pre-stabilized voltage rectification circuit 2.
In this embodiment, the three-phase AC generator 1 sends out the intermediate frequency three-phase power (AC 300-400V) with a frequency of 600HZ to the pre-stabilized rectifier circuit 2, and the three-phase voltage sampling circuit 3 samples the output voltage of the three-phase AC generator 1 and feeds back the sampled data to the controller 4, and the controller 4 outputs the PWM signal to control the conduction angle of the pre-stabilized rectifier circuit 2, so as to stabilize the output voltage, for example, DC380V, thereby avoiding the electromagnetic interference between the electric welding frequency conversion unit 5 and the power generation frequency conversion unit 6 caused by the fluctuation of the voltage.
Fig. 2 is an exemplary three-phase voltage sampling circuit including operational amplifiers U1, U2, U3, and a three-phase alternator output terminal A, B, C, and fig. 3 is a controller block diagram:
the A end is connected with one end of a first resistor R1, the other end of the first resistor R1 is connected with one end of a second resistor R2, the other end of the second resistor R2 is connected with the non-inverting input end of U1, the other end of the second resistor R2 is connected with one end of a third resistor R3 and one end of a first capacitor C1, and the other end of the third resistor R3 and the other end of the first capacitor C1 are grounded after being connected in parallel; the reverse input end of the U1 is respectively connected with one end of a fourth resistor R4, one end of a sixth resistor R6 and one end of a third capacitor C3, the other end of the fourth resistor R4 is connected with one end of a fifth resistor R5, and the other end of the fifth resistor R5 is grounded; the other end of the sixth resistor R6 and the other end of the third capacitor C3 are connected in parallel and then connected with the output end of the U1, the output end of the U1 is also connected with one end of the seventh resistor R7, the other end of the seventh resistor R7 is connected with an ADC _ DC port of the controller and one end of the fourth capacitor C4, and the other end of the fourth capacitor C4 is grounded; the positive electrode of the voltage end of U1 is respectively connected with a first power supply Vcc and one end of a second capacitor C2, and the other end of the second capacitor C2 is grounded; the negative electrode of the voltage end of U1 is grounded;
the B end is connected with one end of an eighth resistor R8, the other end of the eighth resistor R8 is connected with one end of a ninth resistor R9, the other end of the ninth resistor R9 is connected with the non-inverting input end of U2, the other end of the ninth resistor R9 is also connected with one end of a tenth resistor R10 and one end of a fifth capacitor C5 respectively, and the other end of the tenth resistor R10 and the other end of the fifth capacitor C5 are connected with a second power supply VCC/2 after being connected in parallel; the inverting input end of the U2 is respectively connected with the output end of the U2 and one end of an eleventh resistor R11, and the other end of the eleventh resistor R11 is connected with the non-inverting input end of the U3; the output end of the U2 is further connected to one end of a fifteenth resistor R15, the other end of the fifteenth resistor R15 is connected to the ADC _ AC _ U port of the controller and one end of a seventh capacitor C7, respectively, and the other end of the seventh capacitor C7 is grounded; a positive power supply end of the U2 is respectively connected with a third power supply Vcc and one end of a sixth capacitor C6, and the other end of the sixth capacitor C6 is grounded; the negative power supply end of the U2 is grounded;
the end C is connected with one end of a twelfth resistor R12, the other end of the twelfth resistor R12 is connected with the inverting input end of U3, the inverting input end of U3 is also connected with one end of a thirteenth resistor R13 and one end of an eighth capacitor C8, the other end of the thirteenth resistor R13 and the other end of the eighth capacitor C8 are connected with the output end of U3 after being connected in parallel, the output end of U3 is also connected with one end of a fourteenth resistor R14, the other end of the fourteenth resistor R14 is connected with the ZERO _ PLUS _ M port of the controller and one end of a ninth capacitor C9, and the other end of the ninth capacitor C9 is grounded; the positive power supply end of the U3 is connected with a fourth power supply Vcc/2, and the negative power supply end of the U3 is grounded.
The three-phase voltage sampling circuit is used for collecting three-phase output voltage signals of the three-phase alternating-current generator, comparing the voltage signals with preset voltage of the controller, and if the voltage signals exceed the preset voltage, the controller sends PWM signals to the pre-voltage-stabilizing rectification circuit to adjust voltage waveforms.
Fig. 4 is an exemplary pre-regulated rectifier circuit, which includes an optocoupler and a thyristor:
a control output end (MX _ Con) of the controller is connected with one end of a sixteenth resistor (R16), the other end of the sixteenth resistor (R16) is connected with an anode of an input end of the optical coupler, and a cathode of the input end of the optical coupler is grounded; a collector of an output end of the optocoupler is respectively connected with an emitter of the first triode (Q1), one end of an eighteenth resistor (R18) and one end of a nineteenth resistor (R19), an emitter of the output end of the optocoupler is respectively connected with a base level of the first triode (Q1) and one end of a seventeenth resistor (R17), and the other end of the seventeenth resistor (R17) and the other end of the eighteenth resistor (R18) are respectively connected with a collector of the second triode (Q2); the other end of the nineteenth resistor (R19) is respectively connected with one end of a twentieth resistor (R20), the negative electrode of the first diode (D1) and one end of a tenth capacitor (C10), the other end of the twentieth resistor (R20) is connected with one end of a twenty-first resistor (R21), the other end of the twenty-first resistor (R21) is respectively connected with one end of a twenty-second resistor (R22), one end of a twenty-fourth resistor (R24), one end of an eleventh capacitor (C11) and the base level of a second triode (Q2), the other end of the twenty-second resistor (R22) is connected with one end of a twenty-third resistor (R23), and the other end of the twenty-third resistor (R23) is grounded; the other end of the tenth capacitor (C10), the anode of the first diode (D1), the other end of the twenty-fourth resistor (R24) and the other end of the eleventh capacitor (C11) are connected in parallel and then connected with the emitter of the second triode (Q2);
the emitter of the second triode (Q2) is further connected with one end of a twenty-fifth resistor (R25), one end of a twenty-sixth resistor (R26), one end of a twelfth capacitor (C12), one end of a thirteenth capacitor (C13) and one end of a fourteenth capacitor (C14), the other end of the twenty-fifth resistor (R25) and the other end of the twenty-sixth resistor (R26) are connected in parallel and then respectively connected with the collector of the first triode (Q1), one end of a twenty-seventh resistor (R27), one end of a twenty-eighth resistor (R28) and one end of a twenty-ninth resistor (R29), the other end of the twenty-seventh resistor (R27) is connected with the other end of the twelfth capacitor (C12) and the control electrode of the third thyristor (S3), the other end of the twenty-eighth resistor (R28) is respectively connected with the other end of the thirteenth capacitor (C6) and the control electrode of the second thyristor (S2), and the other end of the twenty-eighth resistor (R29) is respectively connected with the control electrode of the fourteenth capacitor (R14) (S1), the anode of the first thyristor (S1), the anode of the second thyristor (S2) and the anode of the third thyristor (S3) are respectively connected with the three-phase voltage output end of the three-phase alternating-current generator; the cathode of the first silicon controlled rectifier (S1), the cathode of the second silicon controlled rectifier (S2) and the cathode of the third silicon controlled rectifier (S3) are connected in parallel and then are connected with a fifth power supply; the anode of the second diode (D2), the anode of the third diode (D3) and the anode of the fourth diode (D4) are respectively connected with the three-phase voltage output end of the three-phase alternating-current generator, and the cathode of the second diode (D2), the cathode of the third diode (D3) and the cathode of the fourth diode (D4) are connected in parallel and then connected with the external module.
In this embodiment, the thyristors S1, S2, and S3, the second diode D2, the third diode D3, and the fourth diode D4 form a three-phase half-controlled rectifier circuit.
In this embodiment, controller 4 gathers three-phase alternator 1's output voltage signal through three-phase sampling circuit 3, when the voltage that detects surpassed and predetermine the voltage in the controller, controller 4 will output PWM wave form adjustment in advance the conduction angle of silicon controlled rectifier in steady voltage rectifier circuit 2 in order to adjust three-phase alternator 1's output voltage, thereby guarantee output voltage's stability, avoid causing the electromagnetic interference between electric welding frequency conversion unit 5 and the electricity generation frequency conversion unit 6 because of the fluctuation of voltage, the damage rate of component has been reduced, and then improve work efficiency.
It will be understood by those of ordinary skill in the art that the foregoing embodiments are specific examples for carrying out the invention, and that various changes in form and details may be made therein without departing from the spirit and scope of the invention in practice.

Claims (2)

1. A pre-voltage stabilizing system of a front-stage of an intermediate-frequency permanent magnet power generation welding machine comprises an electric welding frequency conversion unit and a power generation frequency conversion unit, and is characterized by comprising a three-phase alternating current generator, a pre-voltage stabilizing rectification circuit, a three-phase voltage sampling circuit and a controller, wherein the controller judges and outputs a PWM (pulse width modulation) waveform signal by collecting a voltage signal of the three-phase alternating current generator, so that the pre-voltage stabilizing rectification circuit is controlled to adjust the output voltage of the three-phase alternating current generator so as to improve the stability of the output voltage;
the three-phase voltage output end of the three-phase alternating current generator is respectively connected with the three-phase voltage input end of the pre-voltage-stabilizing rectification circuit and the three-phase voltage input end of the three-phase voltage sampling circuit, the three-phase voltage output end of the three-phase voltage sampling circuit is connected with the controller, the signal regulation output end of the controller is connected with the signal regulation input end of the pre-voltage-stabilizing rectification circuit, and the output end of the pre-voltage-stabilizing rectification circuit is respectively connected with the input end of the electric welding frequency conversion unit and the input end of the power generation frequency conversion unit;
the pre-stabilized voltage rectification circuit comprises an optical coupler and a silicon controlled rectifier:
the control output end of the controller is connected with one end of a sixteenth resistor (R16), the other end of the sixteenth resistor (R16) is connected with the anode of the input end of the optical coupler, and the cathode of the input end of the optical coupler is grounded; a collector of an output end of the optocoupler is respectively connected with an emitter of the first triode (Q1), one end of an eighteenth resistor (R18) and one end of a nineteenth resistor (R19), an emitter of the output end of the optocoupler is respectively connected with a base level of the first triode (Q1) and one end of a seventeenth resistor (R17), and the other end of the seventeenth resistor (R17) and the other end of the eighteenth resistor (R18) are respectively connected with a collector of the second triode (Q2); the other end of the nineteenth resistor (R19) is respectively connected with one end of a twentieth resistor (R20), the cathode of a voltage stabilizing diode (D1) and one end of a tenth capacitor (C10), the other end of the twentieth resistor (R20) is connected with one end of a twenty-first resistor (R21), the other end of the twenty-first resistor (R21) is respectively connected with one end of a twenty-second resistor (R22), one end of a twenty-fourth resistor (R24), one end of an eleventh capacitor (C11) and the base level of a second triode (Q2), the other end of the twenty-second resistor (R22) is connected with one end of a twenty-third resistor (R23), and the other end of the twenty-third resistor (R23) is grounded; the other end of the tenth capacitor (C10), the anode of the voltage stabilizing diode (D1), the other end of the twenty-fourth resistor (R24) and the other end of the eleventh capacitor (C11) are connected in parallel and then are connected with the emitting electrode of the second triode (Q2);
the emitter of the second triode (Q2) is further connected with one end of a twenty-fifth resistor (R25), one end of a twenty-sixth resistor (R26), one end of a twelfth capacitor (C12), one end of a thirteenth capacitor (C13) and one end of a fourteenth capacitor (C14), the other end of the twenty-fifth resistor (R25) and the other end of the twenty-sixth resistor (R26) are connected in parallel and then respectively connected with the collector of the first triode (Q1), one end of a twenty-seventh resistor (R27), one end of a twenty-eighth resistor (R28) and one end of a twenty-ninth resistor (R29), the other end of the twenty-seventh resistor (R27) is connected with the other end of the twelfth capacitor (C12) and the control electrode of the third thyristor (S3), the other end of the twenty-eighth resistor (R28) is respectively connected with the other end of the thirteenth capacitor (C6) and the control electrode of the second thyristor (S2), and the other end of the twenty-eighth resistor (R29) is respectively connected with the control electrode of the fourteenth capacitor (R14) (S1), the anode of the first thyristor (S1), the anode of the second thyristor (S2) and the anode of the third thyristor (S3) are respectively connected with the three-phase voltage output end of the three-phase alternating-current generator; the cathode of the first silicon controlled rectifier (S1), the cathode of the second silicon controlled rectifier (S2) and the cathode of the third silicon controlled rectifier (S3) are connected in parallel and then are connected with a fifth power supply; the anode of the second diode (D2), the anode of the third diode (D3) and the anode of the fourth diode (D4) are respectively connected with the three-phase voltage output end of the three-phase alternating-current generator, and the cathode of the second diode (D2), the cathode of the third diode (D3) and the cathode of the fourth diode (D4) are connected in parallel and then connected with the external module.
2. The forestage pre-voltage-stabilizing system of the intermediate-frequency permanent magnet power generation welding machine as claimed in claim 1, wherein the three-phase voltage sampling circuit comprises operational amplifiers U1, U2, U3 and a three-phase voltage input end A, B, C:
the A end is connected with one end of a first resistor (R1), the other end of the first resistor (R1) is connected with one end of a second resistor (R2), the other end of the second resistor (R2) is connected with the non-inverting input end of an operational amplifier U1, the other end of the second resistor (R2) is connected with one end of a third resistor (R3) and one end of a first capacitor (C1) respectively, and the other end of the third resistor (R3) is connected with the other end of the first capacitor (C1) in parallel and then grounded; an inverting input end of the operational amplifier U1 is respectively connected with one end of a fourth resistor (R4), one end of a sixth resistor (R6) and one end of a third capacitor (C3), the other end of the fourth resistor (R4) is connected with one end of a fifth resistor (R5), and the other end of the fifth resistor (R5) is grounded; the other end of the sixth resistor (R6) and the other end of the third capacitor (C3) are connected in parallel and then connected with the output end of the operational amplifier U1, the output end of the operational amplifier U1 is also connected with one end of a seventh resistor (R7), the other end of the seventh resistor (R7) is respectively connected with an ADC _ DC port of the controller and one end of a fourth capacitor (C4), and the other end of the fourth capacitor (C4) is grounded; the positive power supply end of the operational amplifier U1 is respectively connected with one end of a first power supply and one end of a second capacitor (C2), and the other end of the second capacitor (C2) is grounded; the negative power supply end of the operational amplifier U1 is grounded;
the B end is connected with one end of an eighth resistor (R8), the other end of the eighth resistor (R8) is connected with one end of a ninth resistor (R9), the other end of the ninth resistor (R9) is connected with the non-inverting input end of an operational amplifier U2, the other end of the ninth resistor (R9) is further connected with one end of a tenth resistor (R10) and one end of a fifth capacitor (C5) respectively, and the other end of the tenth resistor (R10) and the other end of the fifth capacitor (C5) are connected with a second power supply after being connected in parallel; the inverting input end of the operational amplifier U2 is respectively connected with the output end of the U2 and one end of an eleventh resistor (R11), and the other end of the eleventh resistor (R11) is connected with the non-inverting input end of the operational amplifier U3; the output end of the operational amplifier U2 is further connected with one end of a fifteenth resistor (R15), the other end of the fifteenth resistor (R15) is respectively connected with an ADC _ AC _ U port of the controller and one end of a seventh capacitor (C7), and the other end of the seventh capacitor (C7) is grounded; the positive power supply end of the operational amplifier U2 is respectively connected with a third power supply and one end of a sixth capacitor (C6), and the other end of the sixth capacitor (C6) is grounded; the negative power supply end of the operational amplifier U2 is grounded;
the end C is connected with one end of a twelfth resistor (R12), the other end of the twelfth resistor (R12) is connected with the inverting input end of an operational amplifier U3, the inverting input end of the operational amplifier U3 is also connected with one end of a thirteenth resistor (R13) and one end of an eighth capacitor (C8) respectively, the other end of the thirteenth resistor (R13) and the other end of the eighth capacitor (C8) are connected with the output end of the operational amplifier U3 after being connected in parallel, the output end of the operational amplifier U3 is also connected with one end of a fourteenth resistor (R14), the other end of the fourteenth resistor (R14) is connected with the ZERO _ PLUS _ M port of the controller and one end of a ninth capacitor (C9) respectively, and the other end of the ninth capacitor (C9) is grounded; the positive power supply end of the operational amplifier U3 is connected with the fourth power supply, and the negative power supply end of the operational amplifier U3 is grounded.
CN201910949692.7A 2019-10-08 2019-10-08 Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine Active CN110557034B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201910949692.7A CN110557034B (en) 2019-10-08 2019-10-08 Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201910949692.7A CN110557034B (en) 2019-10-08 2019-10-08 Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine

Publications (2)

Publication Number Publication Date
CN110557034A CN110557034A (en) 2019-12-10
CN110557034B true CN110557034B (en) 2021-08-27

Family

ID=68742375

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201910949692.7A Active CN110557034B (en) 2019-10-08 2019-10-08 Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine

Country Status (1)

Country Link
CN (1) CN110557034B (en)

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6038155A (en) * 1998-03-31 2000-03-14 International Rectifier Corporation Three phase SCR rectifier bridge with soft start control IC
CN201204560Y (en) * 2008-05-06 2009-03-04 吴坚 Synchronous machine microcomputer excitation controller
CN201388162Y (en) * 2009-02-13 2010-01-20 上海新时达电气股份有限公司 Pre-charge control circuit of transducer
CN201629687U (en) * 2010-03-23 2010-11-10 王聪 DC stringing rectifying power supply for mine
CN102130616A (en) * 2011-03-28 2011-07-20 株洲南车时代电气股份有限公司 Device and method for controlling precharge on frequency converter
CN202160123U (en) * 2011-07-11 2012-03-07 常州格力博工具有限公司 Three-phase half-controlled rectifier circuit integrated module
CN103595268A (en) * 2013-11-26 2014-02-19 中国人民解放军重庆通信学院 Frequency converter

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5151266B2 (en) * 2007-06-20 2013-02-27 株式会社リコー Switching regulator and switching regulator operation control method
CN203813665U (en) * 2013-11-27 2014-09-03 苏州贝克微电子有限公司 Low-noise step-down switching voltage regulator with programmable voltage conversion rate limiter

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6038155A (en) * 1998-03-31 2000-03-14 International Rectifier Corporation Three phase SCR rectifier bridge with soft start control IC
CN201204560Y (en) * 2008-05-06 2009-03-04 吴坚 Synchronous machine microcomputer excitation controller
CN201388162Y (en) * 2009-02-13 2010-01-20 上海新时达电气股份有限公司 Pre-charge control circuit of transducer
CN201629687U (en) * 2010-03-23 2010-11-10 王聪 DC stringing rectifying power supply for mine
CN102130616A (en) * 2011-03-28 2011-07-20 株洲南车时代电气股份有限公司 Device and method for controlling precharge on frequency converter
CN202160123U (en) * 2011-07-11 2012-03-07 常州格力博工具有限公司 Three-phase half-controlled rectifier circuit integrated module
CN103595268A (en) * 2013-11-26 2014-02-19 中国人民解放军重庆通信学院 Frequency converter

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
数码发电机整流电源的稳压控制技术研究;李欧迅;《中国优秀硕士学位论文 工程科技Ⅱ辑》;20091215;正文第40页 *

Also Published As

Publication number Publication date
CN110557034A (en) 2019-12-10

Similar Documents

Publication Publication Date Title
US20080013352A1 (en) Active rectifier system with power factor correction
CN103368442A (en) Grid-connected inverter
CN110557034B (en) Pre-stage voltage stabilizing system of intermediate-frequency permanent magnet power generation welding machine
CN103918171B (en) Fairing
CN102355189B (en) Controller of generator
CN2437076Y (en) Precision sine-wave frequency-conversion power source
CN102769271B (en) A kind of AC power output protection circuit
CN204707046U (en) A kind of aviation frequency converter
CN114499256A (en) Novel safe and stable three-phase inverter
Shaikh et al. Analysis of field oriented controlled AC drive fed by a back-to-back three level NPC converter
CN203859678U (en) Switching power supply of photovoltaic grid-connected inverter
CN110620499A (en) Single-phase electric input circuit based on three-phase Vienna PFC topology and control method
CN111614281A (en) Novel low-voltage high-frequency band inverter circuit
CN210327379U (en) Single-phase electric input circuit based on three-phase Vienna PFC topology
CN211860005U (en) Three-phase input multiphase output type four-quadrant all-in-one machine circuit
CN219107724U (en) Visual light source controller
CN215268103U (en) Motor soft start system and power equipment
CN214480322U (en) Novel low-voltage high-frequency band inverter circuit
CN210273973U (en) Frequency converter delay control circuit
CN116613781B (en) Control method of DC bus oscillation suppression device based on duty ratio calculation
CN217159542U (en) Common-mode surge voltage impact resistance circuit of air conditioner variable frequency controller
CN211786827U (en) Vibration exciter power regulating circuit
CN214228121U (en) Control voltage conversion circuit based on isolation transformer and electrical equipment applying control voltage conversion circuit
WO2022068007A1 (en) Air conditioner control circuit, air conditioner control method, circuit board, and air conditioner
CN217469785U (en) Three-phase alternating current chopped mode rectification voltage stabilizing circuit

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant
TR01 Transfer of patent right

Effective date of registration: 20220609

Address after: Room 3-1, building 3, No. 57, Congyuan Road, caijiagang Town, Beibei District, Chongqing 400709

Patentee after: CHONGQING CAMEL POWER MACHINERY Co.,Ltd.

Address before: 400700 No. 11 Jinyun Avenue, Beibei District, Chongqing

Patentee before: CHONGQING CAMEO GASOLINE ENGINE Co.,Ltd.

TR01 Transfer of patent right