CN203103969U - Trigger device applied to magnetically controlled reactor - Google Patents

Trigger device applied to magnetically controlled reactor Download PDF

Info

Publication number
CN203103969U
CN203103969U CN 201320034429 CN201320034429U CN203103969U CN 203103969 U CN203103969 U CN 203103969U CN 201320034429 CN201320034429 CN 201320034429 CN 201320034429 U CN201320034429 U CN 201320034429U CN 203103969 U CN203103969 U CN 203103969U
Authority
CN
China
Prior art keywords
module
diode
voltage
output
triode
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.)
Expired - Fee Related
Application number
CN 201320034429
Other languages
Chinese (zh)
Inventor
费远鹏
李宁
刘辉
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.)
SUZHOU INDUSTRIAL PARK HESHUN ELECTRICAL CO LTD
Original Assignee
SUZHOU INDUSTRIAL PARK HESHUN ELECTRICAL 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 SUZHOU INDUSTRIAL PARK HESHUN ELECTRICAL CO LTD filed Critical SUZHOU INDUSTRIAL PARK HESHUN ELECTRICAL CO LTD
Priority to CN 201320034429 priority Critical patent/CN203103969U/en
Application granted granted Critical
Publication of CN203103969U publication Critical patent/CN203103969U/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Images

Classifications

    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E40/00Technologies for an efficient electrical power generation, transmission or distribution
    • Y02E40/30Reactive power compensation

Landscapes

  • Control Of Electrical Variables (AREA)

Abstract

The utility model relates to a trigger device applied to a magnetically controlled reactor. The trigger device comprises a power supply module which is used for converting alternating current from a power grid to direct current, an energy taking module, a photoelectric interface module, a controller which is connected with the photoelectric interface module and a trigger module which is located between a thyristor gate and the photoelectric interface module. The energy taking module comprises a first voltage stabilizing tube and a second voltage stabilizing tube. The output end of the first voltage stabilizing tube which converts direct current voltage from the power supply module to 12V voltage is used as a first output end. The output end of the second voltage stabilizing tube is used as a second output end. A branch which is formed by connecting a first resistor and a first light emitting diode in series is connected in parallel with a second capacitor. A branch which is formed by connecting a second resistor and a second light emitting diode in series is connected in parallel with a third capacitor. The trigger device provided by the utility model has the advantages of precise triggering, good stability and small power consumption, can be well applied to the magnetically controlled reactor, and can display the working state of the magnetically controlled reactor in real time.

Description

The magnet controlled reactor trigger equipment
Technical field
The utility model relates to a kind of magnet controlled reactor trigger equipment, belongs to the magnet controlled reactor technical field.
Background technology
The thyristor power model of high-voltage great-current is a kind of high pressure valve photoelectricity triggering system, can be used in transformer station and the power distribution network.
In order to satisfy the requirement of remote big capacity transmission of electric energy in recent years, transmission voltage is more and more higher; The scale of electric power system is increasing, the energy output sustainable growth; Show outstanding problem day because the lack of uniformity of China's energy and Load distribution, the dynamic reactive power in the electrical network support, the power delivery ability is restricted.Owing to a large amount of uses of large capacity single phase load and unbalanced load, the three-phase imbalance problem of electrical network is day apparent giving prominence to also simultaneously.For administering the problems referred to above, in electric power system, to introduce reactive power compensator and carry out reactive power compensation, magnet controlled reactor (MCR) is to use always always, it is bringing into play important effect aspect dynamic reactive support, the improvement electrical network three-phase imbalance.Compare with active equipment, it is having huge advantage aspect stability and the compensation capacity.Wherein, the reliable triggering of thyristor is one of key technology of whole device.Thyristor triggering mode commonly used at present has electromagnetism triggering mode, photoelectricity triggering mode and light triggering mode.Traditional electromagnetism triggering mode generally adopts pulse transformer to form the isolation of high electronegative potential, and the simultaneity of pulse, accuracy are difficult to satisfy the series-parallel requirement of high-pressure system device.
Summary of the invention
The purpose of this utility model provides a kind of magnet controlled reactor trigger equipment, this trigger equipment have trigger accurately, good stability, power consumption be little, can be applicable to magnet controlled reactor well; And can show the magnet controlled reactor operating state in real time.
For achieving the above object, the technical solution adopted in the utility model is: a kind of magnet controlled reactor trigger equipment comprises being used for and will being converted to galvanic power module from grid alternating current, getting energy module, optic electric interface module, the controller that is connected to the optic electric interface module and the trigger module between described gate circuit transistor gate and optic electric interface module;
Described trigger module is used to receive the synchronizing current signal from the optic electric interface module, it comprise series connection by the 2nd triode, the preamplifying circuit that the 3rd triode is formed and by the 1st triode, the back level amplifying circuit that the 2nd diode and the 3rd diode are composed in series, described the 2nd triode, the 3rd triode base stage separately is connected to described second output of getting the energy module through the 4th resistance and the 3rd resistance respectively, the tie point of described the 2nd diode cathode and the 3rd diode cathode is connected to the described gate circuit transistor gate of stating, drive the 2nd triode from the synchronizing current signal of optic electric interface module successively after by the 3rd its conducting of diode base drive, the 1st triode conducting enters the thyristor gate leve thereby the output of the tie point by the 2nd diode and the 3rd diode is used to control the synchronous triggering signal of reactor switching angle;
Described first voltage-stabiliser tube, second voltage-stabiliser tube that can module comprises series connection of getting, this will be converted into the output of first voltage-stabiliser tube of 12V voltage as first output from the power module direct voltage, the output of described second voltage-stabiliser tube is as second output, branch road by the 1st resistance and the series connection of the 1st light-emitting diode is in parallel with described the 2nd electric capacity, and is in parallel with described the 3rd electric capacity by the branch road of the 2nd resistance and the series connection of the 2nd light-emitting diode;
Described optic electric interface module, the light pulse signal that is used for fetching self-controller is converted into the synchronizing current signal.
Further improvement project is as follows in the technique scheme:
1, in the such scheme, one the 1st electric capacity and described transformers connected in parallel are used for filtering and exchange interference.
2, in the such scheme, described the 3rd light-emitting diode that is used to indicate the triggering state and the tie point that is connected to the 2nd diode and the 3rd diode after the 7th resistance is connected.
3, in the such scheme, cross-over connection has the 2nd electric capacity between described first output and the ground connection, and cross-over connection has the 3rd electric capacity between second output and the ground connection.
Because the technique scheme utilization, the utility model compared with prior art has following advantage and effect:
The utility model magnet controlled reactor trigger equipment, it is positioned at the electrical network hot side, gate circuit transistor gate and optic electric interface module are provided with trigger module, use optical fiber to finish the isolation of signal transmission and high electronegative potential, all are better than the equipment of electromagnetism triggering mode on pulse quality still is isolation performance; Secondly, the utility model circuit design can obtain the working power stable, that ripple is little by the slave unit primary side, in more abominable electromagnetic environment, overcome the strong electromagnetic that circuit is caused of cut-offfing of big electric current in the main circuit, thyristor, have certain interference free performance; Once more, the utility model trigger equipment, its branch road by the 1st resistance and the series connection of the 1st light-emitting diode is in parallel with described the 2nd electric capacity, branch road by the series connection of the 2nd resistance and the 2nd light-emitting diode is in parallel with described the 3rd electric capacity, the 3rd light-emitting diode that is used to indicate the triggering state and the tie point that is connected to the 2nd diode and the 3rd diode after the 7th resistance is connected; Realize the triggering of thyristor module, it is accurate, timely and synchronous to guarantee to trigger.
Description of drawings
Accompanying drawing 1 is the utility model magnet controlled reactor trigger equipment system construction drawing;
Accompanying drawing 2 is got energy modular circuit structure chart for the utility model;
Accompanying drawing 3 is the utility model trigger module circuit structure diagram.
In the above accompanying drawing: 1, reactor; 2, thyristor; 3, power module; 4, get the energy module; 5, optic electric interface module; 6, controller; 7, trigger module.
Embodiment
Below in conjunction with drawings and Examples the utility model is further described:
Embodiment: a kind of magnet controlled reactor trigger equipment comprises being used for and will being converted to galvanic power module 3 from grid alternating current, getting energy module 4, optic electric interface module 5, the controller 6 that is connected to optic electric interface module 5 and the trigger module 7 between described thyristor 2 gate poles and optic electric interface module 5;
Described trigger module 7 is used to receive the synchronizing current signal from optic electric interface module 5, it comprise series connection by the 2nd triode Q2, the preamplifying circuit that the 3rd triode Q3 forms and by the 1st triode Q1, the back level amplifying circuit that the 2nd diode D2 and the 3rd diode D3 are composed in series, described the 2nd triode Q2, the 3rd triode Q3 base stage separately is connected to described second output of getting energy module 4 through the 4th resistance R 4 and the 3rd resistance R 3 respectively, described the 2nd diode D2 tie point anodal and the 3rd diode D3 positive pole is connected to described thyristor 2 gate poles of stating, drive the 2nd triode Q2 from the synchronizing current signal of optic electric interface module 5 successively after by the 3rd its conducting of diode D3 base drive, the 1st triode Q1 conducting enters thyristor 2 gate leves thereby the output of the tie point by the 2nd diode D2 and the 3rd diode D3 is used to control the synchronous triggering signal of reactor 1 switching angle;
The described first voltage-stabiliser tube U1, the second voltage-stabiliser tube U2 that can module 4 comprises series connection that get, this will be converted into the output of the first voltage-stabiliser tube U1 of 12V voltage as first output from power module 3 direct voltages, the output of the described second voltage-stabiliser tube U2 is as second output, branch road by the 1st resistance and 1 series connection of the 1st LED is in parallel with described the 2nd capacitor C 2, and is in parallel with described the 3rd capacitor C 3 by the branch road of the 2nd resistance and 2 series connection of the 2nd LED;
Described optic electric interface module, the light pulse signal that is used for fetching self-controller is converted into the synchronizing current signal.
One the 1st capacitor C 1 is in parallel with described transformer T1, is used for filtering and exchanges interference.
Described the 3rd LED 3 that is used to indicate the triggering state and the tie point that is connected to the 2nd diode D2 and the 3rd diode D3 after the 7th resistance R 7 is connected.
Cross-over connection has that cross-over connection has the 3rd capacitor C 3 between the 2nd capacitor C 2, the second outputs and the ground connection between described first output and the ground connection.
The present embodiment magnet controlled reactor is as follows with the trigger equipment course of work.
Power module is realized hypotensive effect by a little transformer module T1, and removing positive half cycle by diode D1 is direct voltage, and capacitor C 1 is carried out filter action.
Wherein get the energy module by voltage-stabiliser tube U1, U2, capacitor C 2, C3 and resistance R 1, R2 and two light-emitting diodes constitute, the direct voltage of power module generation produces 12V voltage through U1, is triode Q1, Q2 power supply after C2 filtering, and LED1 has connected with resistance R 1 and shown the effect of getting energy.The 5V voltage that the voltage that U1 produces produces through U2 after capacitor C 3 filtering, for optical receiver HFBR-2412 and Q3 power supply and draw high Q3 voltage, LED2 connect with R2 instigate the 5V power supply get the energy result.
Wherein the optic electric interface module mainly is made of core devices HFBR-2412 optical receiver, and the reception light pulse is converted into the signal of telecommunication and exports with positive logic.
Wherein trigger module comprises preamplifying circuit and back level amplifying circuit; Preamplifying circuit bag NPN type triode Q3, Q2 and base resistance R3, R4; Back level amplifying circuit comprises positive-negative-positive switching tube Q1, resistance R 5, resistance R 6, diode D2, D3 etc.The signal that comes out in the optical receiver enters its conducting of Q3 base drive, and follow-up Q2 is conducting thereupon also, thereby positive-negative-positive switching tube Q1 conducting enters the thyristor gate leve through diode D2 output synchronous triggering signal.LED3 connects with resistance R 7 and instigates the triggering state synchronously.
The utility model is in operation, and power module is from hot side, and promptly the equipment primary side is obtained the required power supply of system works; Described optic electric interface module receives the light pulse from the control system optical-fibre channel, i.e. light signal, and be converted into the signal of telecommunication; By the subsequent triggers circuit weak pulse is converted to the satisfied requirement that triggers towards the signal amplification, the current impulse of enough amplitudes is arranged, output to the gate leve of thyristor, be used for triggering the thyristor valve group.
Owing to adopted above technical scheme, the beneficial effects of the utility model are: the operating current of (1) circuit board own is little, low in energy consumption, and main circuit work is not had influence substantially; (2) owing to adopted the photoelectricity triggering mode to realize synchronism, accuracy and the promptness of triggering signal; (3) cost is low, and hardware circuit is simple, is easy to realize.In a word, can be useful for well in the empty reactor of magnetic (MCR), solve its key problem based on the utility model of said structure.Lifting for the performance of magnet controlled reactor type reactive-load compensator has great importance.
The foregoing description only is explanation technical conceive of the present utility model and characteristics, and its purpose is to allow the personage who is familiar with this technology can understand content of the present utility model and enforcement according to this, can not limit protection range of the present utility model with this.All equivalences of being done according to the utility model spirit change or modify, and all should be encompassed within the protection range of the present utility model.

Claims (4)

1. magnet controlled reactor trigger equipment is characterized in that: comprise be used for be converted to galvanic power module (3) from grid alternating current, getting can module (4), optic electric interface module (5), be connected to the controller (6) of optic electric interface module (5) and be positioned at described thyristor (2) gate pole and optic electric interface module (5) between trigger module (7);
Described trigger module (7) is used for receiving the synchronizing current signal from optic electric interface module (5), it comprise series connection by the 2nd triode, the preamplifying circuit that the 3rd triode is formed and by the 1st triode, the back level amplifying circuit that the 2nd diode and the 3rd diode are composed in series, described the 2nd triode, the 3rd triode base stage separately is connected to described second output of getting energy module (4) through the 4th resistance and the 3rd resistance respectively, the tie point of described the 2nd diode cathode and the 3rd diode cathode is connected to described thyristor (2) gate pole of stating, drive the 2nd triode from the synchronizing current signal of optic electric interface module (5) successively after by the 3rd its conducting of diode base drive, the 1st triode conducting enters thyristor (2) gate leve thereby the output of the tie point by the 2nd diode and the 3rd diode is used to control the synchronous triggering signal of reactor (1) switching angle;
Described get can module (4) comprise first voltage-stabiliser tube, second voltage-stabiliser tube of series connection, this will be converted into the output of first voltage-stabiliser tube of 12V voltage as first output from power module (3) direct voltage, the output of described second voltage-stabiliser tube is as second output, branch road by the 1st resistance and the series connection of the 1st light-emitting diode is in parallel with described the 2nd electric capacity, and is in parallel with described the 3rd electric capacity by the branch road of the 2nd resistance and the series connection of the 2nd light-emitting diode;
Described optic electric interface module, the light pulse signal that is used for fetching self-controller is converted into the synchronizing current signal.
2. trigger equipment according to claim 1 is characterized in that: one the 1st electric capacity and described transformers connected in parallel are used for filtering and exchange interference.
3. trigger equipment according to claim 1 is characterized in that: described the 3rd light-emitting diode that is used to indicate the triggering state and the tie point that is connected to the 2nd diode and the 3rd diode after the 7th resistance is connected.
4. trigger equipment according to claim 1 is characterized in that: cross-over connection has the 2nd electric capacity between described first output and the ground connection, and cross-over connection has the 3rd electric capacity between second output and the ground connection.
CN 201320034429 2013-01-23 2013-01-23 Trigger device applied to magnetically controlled reactor Expired - Fee Related CN203103969U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN 201320034429 CN203103969U (en) 2013-01-23 2013-01-23 Trigger device applied to magnetically controlled reactor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN 201320034429 CN203103969U (en) 2013-01-23 2013-01-23 Trigger device applied to magnetically controlled reactor

Publications (1)

Publication Number Publication Date
CN203103969U true CN203103969U (en) 2013-07-31

Family

ID=48855346

Family Applications (1)

Application Number Title Priority Date Filing Date
CN 201320034429 Expired - Fee Related CN203103969U (en) 2013-01-23 2013-01-23 Trigger device applied to magnetically controlled reactor

Country Status (1)

Country Link
CN (1) CN203103969U (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105656467A (en) * 2016-01-24 2016-06-08 广州市金矢电子有限公司 Unidirectional thyristor trigger throttling circuit and trigger device thereof
WO2016134669A1 (en) * 2015-02-27 2016-09-01 广州市金矢电子有限公司 Thyristor drive apparatus

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016134669A1 (en) * 2015-02-27 2016-09-01 广州市金矢电子有限公司 Thyristor drive apparatus
US10236879B2 (en) 2015-02-27 2019-03-19 Qiaoshi Guo Thyristor driving apparatus
CN105656467A (en) * 2016-01-24 2016-06-08 广州市金矢电子有限公司 Unidirectional thyristor trigger throttling circuit and trigger device thereof
CN105656467B (en) * 2016-01-24 2018-09-28 广州市金矢电子有限公司 Unidirectional thyristor triggers throttle circuit and its trigger device

Similar Documents

Publication Publication Date Title
CN105305831B (en) A kind of bridge converter one-channel signal gate drive circuit of use isolating transformer
CN203103973U (en) Monitorable magnetically controlled reactor
CN203103969U (en) Trigger device applied to magnetically controlled reactor
CN104319789B (en) Power reactor
CN103138274B (en) Monitorable magnetically-controlled reactor
CN204794099U (en) Intelligence economize on electricity compensation controller
CN202856709U (en) Photoelectric triggering device for thyristor valve of high-voltage TSC (thyristor switched capacitor)
CN101841166A (en) Double DSP control method for photovoltaic grid-connected inverter
CN203103970U (en) Magnetically controlled reactor applied to power grid reactive power compensation
CN203103974U (en) Monitor triggering plate used for magnetically controlled reactor
CN203103972U (en) Magnetically controlled reactor with protection function
CN203674984U (en) Photovoltaic system self-powered power circuit
CN102185526A (en) Novel quasi-grid-connected wind-light-electricity complementary power station
CN203103971U (en) Power grid reactive power compensation device with protection function
CN204794684U (en) Electric current bypass and CCCV main circuit of constant voltage circuit are changeed in single line constant current
CN203103975U (en) Triggering device used for power grid reactive compensation
CN204556725U (en) The miniature power consumption pick-up unit of electrical equipment
CN102496872A (en) Intelligent civil engineering power distribution station
CN203811672U (en) Bridge arm current direction measuring device of modular multilevel converter
CN104269865B (en) There is the magnet controlled reactor of anti-interference function
CN203942282U (en) Static passive compensation device trigger board
CN207780090U (en) A kind of double table electrical energy measurement control devices
CN204794074U (en) Constant voltage source among electric current voltage conversion circuit makes can circuit
CN202856610U (en) Multimode fiber-based photoelectric triggering device for high-voltage thyristor switched capacitor
CN104466975B (en) High-reliability compensation reactor

Legal Events

Date Code Title Description
C14 Grant of patent or utility model
GR01 Patent grant
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20130731

Termination date: 20190123

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