WO2015180152A1 - Convertisseur de fréquence multi-machine - Google Patents

Convertisseur de fréquence multi-machine Download PDF

Info

Publication number
WO2015180152A1
WO2015180152A1 PCT/CN2014/078968 CN2014078968W WO2015180152A1 WO 2015180152 A1 WO2015180152 A1 WO 2015180152A1 CN 2014078968 W CN2014078968 W CN 2014078968W WO 2015180152 A1 WO2015180152 A1 WO 2015180152A1
Authority
WO
WIPO (PCT)
Prior art keywords
communication port
unit
execution
inverter
units
Prior art date
Application number
PCT/CN2014/078968
Other languages
English (en)
Chinese (zh)
Inventor
柯冬生
Original Assignee
深圳市英威腾电气股份有限公司
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 深圳市英威腾电气股份有限公司 filed Critical 深圳市英威腾电气股份有限公司
Priority to CN201480019864.6A priority Critical patent/CN105431792B/zh
Priority to PCT/CN2014/078968 priority patent/WO2015180152A1/fr
Publication of WO2015180152A1 publication Critical patent/WO2015180152A1/fr

Links

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
    • H02M5/00Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B19/00Programme-control systems
    • G05B19/02Programme-control systems electric
    • G05B19/418Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS] or computer integrated manufacturing [CIM]
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B19/00Programme-control systems
    • G05B19/02Programme-control systems electric
    • G05B19/418Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS] or computer integrated manufacturing [CIM]
    • G05B19/41845Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS] or computer integrated manufacturing [CIM] characterised by system universality, reconfigurability, modularity
    • 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
    • H02M5/00Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases
    • H02M5/40Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc
    • H02M5/42Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc by static converters
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P5/00Arrangements specially adapted for regulating or controlling the speed or torque of two or more electric motors
    • H02P5/74Arrangements specially adapted for regulating or controlling the speed or torque of two or more electric motors controlling two or more ac dynamo-electric motors
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P90/00Enabling technologies with a potential contribution to greenhouse gas [GHG] emissions mitigation
    • Y02P90/02Total factory control, e.g. smart factories, flexible manufacturing systems [FMS] or integrated manufacturing systems [IMS]

Definitions

  • the invention mainly relates to the field of power electronics technology, and in particular to a multi-machine frequency converter. Background technique
  • the single-unit inverters use a control unit to directly control an inverter unit.
  • the control unit generally does not control the rectifier unit.
  • the specific structure can be as shown in Figure 1-a.
  • the single-machine inverter should be operated synchronously (ie, the speed/torque of the load motor of at least two single-machine inverters is the same or the output of the corresponding or at least two single-machine inverters is connected in parallel with the load motor or asynchronous to realize the factory macro)
  • At least two single-machine inverters form a multi-machine system of the inverter, and each inverter is based on the RS485 bus communication mode.
  • the structure of the 485 bus communication mode is shown in Figure 1-b.
  • the console transmits the system running frequency to each inverter through the 485 bus.
  • Each inverter transmits the status feedback information to the console through the bus.
  • the system gives the shutdown signal and the torque signal sent by the main inverter to the slave inverter through a separate signal line connection.
  • Such multiple frequency converters are connected to realize complicated control line wiring, and the serial bus wiring is too long.
  • the inventors found that the existing inverter system has some defects in the dual-machine or multi-machine master-slave control application: 485 bus mode communication exists, the master-slave communication mode itself has weak anti-interference , the shortcomings of poor signal transmission stability. Due to the limitation of communication methods, it is difficult to transmit signals over long distances. Moreover, the master-slave system has a complicated control structure, and multiple signal lines work at the same time, and the installation operation is cumbersome. Summary of the invention
  • the embodiment of the invention provides a multi-machine frequency converter, in order to simplify the complexity of the wiring structure under the multi-machine scene of the inverter and improve the stability and reliability of the multi-machine operation of the inverter.
  • a first aspect of the embodiment of the present invention provides a multi-machine frequency converter, which may include:
  • a main control unit N1 execution units connected in series through a communication port, wherein the N1 execution units share a common DC bus;
  • the first communication port of the main control unit is connected to the second communication port of the first execution unit of the N1 execution units, wherein the N1 execution units comprise a total of Nil rectification units and N12 inverses.
  • the Nil is a positive integer
  • the N12 is a positive integer greater than 1
  • the first execution unit is an execution unit at one end edge position among the N1 execution units connected in series through a communication port.
  • the second communication port of the main control unit is connected to the first communication port of the second execution unit of the N1 execution units, where the second execution unit is the serial connection through the communication port.
  • the multi-machine frequency converter further includes N2 execution units connected in series through a communication port, wherein the N2 execution units share the DC bus;
  • a second communication port of the main control unit is connected to a first communication port of a third execution unit of the N2 execution units connected in series through a communication port, where the N2 is a positive integer, and the N2 execution units are The rectifying unit and/or the inverting unit are included, wherein the third executing unit is an executing unit at one end edge position among the N2 executing units connected in series through the communication port.
  • the first execution unit is an inverter unit, and the first communication port of the first execution unit is connected to the second communication port of the fourth execution unit of the N1 execution units, where
  • the fourth execution unit is a rectification unit or an inverter unit;
  • the first execution unit is a rectification unit, and the first communication port of the first execution unit is connected to the second communication port of the fifth execution unit of the N1 execution units, wherein the fifth execution The unit is a rectification unit or an inverter unit.
  • the communication port is a fiber communication port or an Ethernet communication port or a level signal communication port or a differential communication interface.
  • a second aspect of the embodiment of the present invention provides a multi-machine frequency converter, which may include:
  • the main control unit N3 execution units connected in series through the communication port, and N4 execution units connected in series through the communication port;
  • the N3 execution units and the N4 execution units share a common DC bus
  • the first communication port of the main control unit is connected to a second communication port of a sixth execution unit of the N3 execution units connected in series through a communication port, and the second communication port of the main control unit Connecting with a first communication port of a seventh one of the N4 execution units connected in series via a communication port;
  • the N3 execution units and the N4 execution units include XI rectification units and X2 inverter units, wherein the XI is a positive integer, and the X2 is a positive integer greater than 1, the
  • the six execution unit is an execution unit at one end edge position among the N3 execution units connected in series through the communication port, and the seventh execution unit is an execution unit at one end edge position among the N4 execution units connected in series through the communication port. .
  • the sixth execution unit is a rectification unit, and the first communication port of the sixth execution unit is connected to a second communication port that is connected to the ninth execution unit of the N3 execution units, where the ninth
  • the execution unit is a rectifying unit or an inverter unit;
  • the sixth execution unit is an inverter unit
  • the first communication port of the sixth execution unit is connected to the second communication port of the eighth execution unit of the N3 execution units, where
  • the eighth execution unit is a rectification unit or an inverter unit.
  • the communication port is a fiber communication port or an Ethernet communication port or a level signal communication port or a differential communication interface.
  • a third aspect of the embodiment of the present invention provides a multi-machine frequency converter, which may include:
  • N5 rectifying units N6 inverter units connected in series through a communication port, wherein the N5 rectifying units and the N6 inverter units have a common DC bus;
  • the first communication port of the main control unit is connected to the second communication port of the first inverter unit of the N6 inverter units, the N5 is a positive integer, and the N6 is a positive integer greater than 1.
  • the first inverter unit is an inverter unit at one end edge position among the N6 inverter units connected in series through a communication port.
  • the second communication port of the main control unit is connected to the first communication port of the second inverter unit of the N6 inverter units, wherein the second inverter unit is connected in series through the communication port.
  • the inverter unit is located at the other end edge position.
  • the communication port is a fiber communication port or an Ethernet communication port or a level signal communication port or a differential communication interface.
  • a fourth aspect of the embodiments of the present invention provides a multi-machine frequency converter, which may include: a main control unit, N9 rectifying units, N7 inverter units connected in series through a communication port, and N8 inverter units connected in series through a communication port; wherein, the N9 rectifying units, the N7 inverter units, and the N8 inverter units common to the DC bus;
  • the first communication port of the main control unit is connected to a second communication port of the first inverter unit of the N7 inverter units connected in series through the communication port, and the second communication port of the main control unit is Connecting, by the first communication port of the second inverter unit of the N8 inverter units connected in series by the communication port;
  • the N7 and the N8 are positive integers, and the first inverter unit is an inverter unit at one end edge position of the N7 inverter units connected in series through a communication port, where the second inverse
  • the variable unit is an inverter unit at one end edge position among the N8 inverter units connected in series through the communication port.
  • the communication port is a fiber communication port or an Ethernet communication port or a level signal communication port or a differential communication interface.
  • the multi-machine frequency converter includes a main control unit and a plurality of execution units, which is advantageous for effectively reducing the parallel cost compared with the existing inverter multi-machine system.
  • the 485 bus communication mode in the conventional inverter multi-machine system is replaced by the serial communication mode between the main control unit of the inverter and the multiple execution units, thereby facilitating the elimination of the defects of poor anti-interference and short transmission distance of the transmission signal. It is beneficial to realize the ultra-long transmission with strong anti-interference ability, which is beneficial to improve the stability and reliability of the multi-machine operation scene of the inverter.
  • the interconnection structure between the main control unit and the execution unit is relatively simple, and the installation and wiring are relatively simple.
  • the structure of the embodiment of the present invention is advantageous for simplifying the wiring structure complexity of the multi-machine scene of the inverter. Moreover, since the execution units are connected in series through the communication port, this is advantageous for improving the scalability of the multi-machine operation of the inverter, and multiple execution units can be connected in series through the communication port according to different scenarios to meet the corresponding requirements.
  • FIG. 1a is a schematic diagram of a stand-alone frequency converter provided by the prior art
  • Figure 1-b is a parallel diagram of a plurality of single-machine frequency converters provided by the prior art
  • FIG. 2-a is a schematic diagram of a multi-machine frequency converter according to an embodiment of the present invention.
  • FIG. 2 is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 2-c is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 2-d is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 2 e is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 2-f is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 2-g is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • FIG. 3 - a is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • FIG. 3 - b is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 3 - c are schematic diagrams of another multi-machine frequency converter according to an embodiment of the present invention.
  • FIG. 3 - d is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • 3 e is a schematic diagram of another multi-machine frequency converter provided by an embodiment of the present invention.
  • Figure 4-a is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • Figure 4-b is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • FIG. 5 is a schematic diagram of another multi-machine frequency converter according to an embodiment of the present invention.
  • the embodiment of the invention provides a multi-machine frequency converter, in order to simplify the complexity of the wiring structure under the multi-machine scene of the inverter and improve the stability and reliability of the multi-machine operation of the inverter.
  • the multi-machine frequency converter provided by the embodiment of the present invention includes: a main control unit, at least one rectifying unit, and at least two inverter units, wherein some or all of the rectifying units in the multi-machine frequency converter may be the main control unit
  • the controlled rectification unit is controlled, or it may be an uncontrollable rectification unit that is not controlled by the main control unit.
  • FIG. 2-a is a schematic structural diagram of a multi-machine frequency converter according to an embodiment of the present invention.
  • a multi-machine frequency converter provided by an embodiment of the present invention may include:
  • the main control unit 201 and the N1 execution units 202 connected in series through the communication port, the N1 execution unit common DC bus 210.
  • the first communication port P1 of the main control unit 201 is connected to the second communication port P0 of the first execution unit among the N1 execution units 202.
  • the first execution unit is an execution unit at one end edge position among the above-mentioned N1 execution units connected in series through the communication port (wherein, in the example architecture of FIG. 2-a, one end edge position of the N1 execution units after the series connection is remaining The first execution unit of the second communication port P0, and the other end edge position is the second execution unit of the remaining first communication port P1).
  • the execution unit 202 is a rectification unit or an inverter unit.
  • the N1 execution units 202 include a total of Nil rectification units and N12 inverter units.
  • the Nil is a positive integer
  • the N12 is a positive integer greater than 1.
  • each execution unit 202 in FIG. 2-a includes two communication ports (communication port P0 and communication port P1).
  • the functions of the two communication ports may be the same or similar, and in some scenarios, the two communication The ports are interchangeable.
  • the communication port P0 and the communication port P1 of each of the execution units in the intermediate position in the N1 execution units 202 are connected to the other execution units 202, respectively, to realize the concatenation of the N1 execution units 202.
  • the main control unit 201 can send a command word, a data word (for example, a data word including a pulse width modulation (PWM), such as a voltage angle and a voltage modulation ratio) and/or a state through the first communication port P1. Words, etc.
  • the first execution unit can pass its second communication
  • the port P0 receives the command word, the data word and/or the status word from the main control unit 201, and the first execution unit can forward it through the first communication port P1 (for the transparently transmittable data, it can be directly forwarded, for the processing to be processed
  • the data can then be forwarded after processing) the received command word from the master unit 201, the data receive command word, the data word and/or the status word, and the like.
  • the "forwarding" in the embodiments of the present invention may be that the received data is directly forwarded without modification, or may be forwarded after the received data is correspondingly repaired, for example, for the received command.
  • the transparently transceivable content of the word, data word and/or status word can be directly forwarded without modification, and the content of the received command word, data word and/or status word cannot be transparently transmitted. It is forwarded after modification.
  • the N1 execution units 202 may generate a synchronization signal according to information such as a reference clock and a time compensation value sent by the main control unit; and may also be based on a command word and a data word from the main control unit 201 (eg, including a voltage angle and a voltage modulation ratio, etc.) The data word of the PWM wave key data) and/or the status word are correspondingly operated.
  • the N1 execution units 202 can enter a state of power-on startup or hibernation according to a command word from the main control unit 201.
  • the N1 execution units 202 may generate synchronized pulse width modulated waves according to data words from the main control unit 201 including PWM voltage key data such as voltage angle and voltage modulation ratio; and use the generated pulse width wave to drive the motor to operate.
  • the present invention provides a multi-machine frequency converter capable of achieving parallel synchronization and/or asynchronous operation, which is significantly reduced compared with the prior art method of implementing parallel functions by using multiple frequency converters.
  • the realization cost replace the 485 bus communication mode in the conventional inverter multi-machine system by serial communication mode (such as switched Ethernet communication mode) between the main control unit of the inverter and multiple execution units, which is beneficial to Eliminating the defects of poor anti-interference and short transmission distance of the transmission signal is beneficial to realize the ultra-long transmission with strong anti-interference ability, which is beneficial to improve the stability and reliability of the multi-machine operation scene of the inverter.
  • the interconnection structure between the main control unit and the execution unit is relatively simple, and the installation and wiring are relatively simple. It can be seen that this structure is advantageous for simplifying the wiring structure complexity of the multi-machine scene of the inverter. And because the execution units are connected in series through the communication port, this is beneficial to improve the scalability of the multi-machine operation of the inverter, and multiple execution units can be connected in series through the communication port according to different scenarios to meet the corresponding requirements.
  • the main control unit 201 further includes a second communication port P0, and the main control unit 201 can A command word, a data word, and/or a status word or the like is transmitted through the second communication port P0.
  • the second communication port P0 of the main control unit 201 may also be connected to the first communication port P1 of the second execution unit of the N1 execution units 202.
  • the main control unit 201 can send a command word, a data word, and/or a status word to each execution unit 202 through the second communication port P0 and/or the first communication port P1, which is equivalent to providing two
  • the communication channel for transmitting information and the introduction of the communication loop enable the communication channel between the units to have a redundant backup function, and the anti-fault and fault tolerance capabilities are enhanced, which is beneficial to further improve the stability and reliability of the system operation.
  • the multi-machine frequency converter may further include N2 execution units 203 connected in series through a communication port, wherein the N2 execution units 203 share a common DC bus 210.
  • the second communication port P0 of the main control unit 201 is connected to the first communication port P1 of the third execution unit among the N2 execution units 203 connected in series through the communication port, wherein the N2 is a positive integer, and the N2 is
  • the execution unit includes a rectification unit and/or an inverter unit, wherein the third execution unit is an execution unit at one end edge position among the N2 execution units 203 connected in series through the communication port.
  • main control unit 201 includes two communication ports, both of which are connected to the communication port of the execution unit, and the main difference from the architecture shown in FIG. 2-b is that the main control unit A communication loop is not formed between the 201 and the execution unit.
  • the main control unit 201 can also include more communication ports, and each communication port of the main control unit 201 can be connected to the communication port of the execution unit in the manner shown in Figure 2-c.
  • the first execution unit may be an inverter unit, and the first communication port P1 of the first execution unit may be the same as the N1
  • the second communication port P0 of the fourth execution unit among the execution units is connected, wherein the fourth execution unit is a rectification unit or an inverter unit.
  • the first execution unit may be a rectification unit, and the first communication port P1 and the N1 execution units of the first execution unit are The second communication port P0 of the fifth execution unit is connected, wherein the fifth execution unit is a rectification unit or Inverter unit.
  • FIG. 2-d, FIG. 2-e, FIG. 2-f, and FIG. 2-g exemplify that, in the N1 execution units connected in series through the communication port, the rectifying unit and the inverting unit may be staggered with each other.
  • the rectifying unit and the inverting unit may also not be staggered with each other.
  • the communication port of the execution unit and the control unit may be a fiber optic communication port or an Ethernet communication port or a level signal communication port or a differential communication interface or other type of communication port.
  • the main control unit 201 is configured to periodically send a first system reference clock signal generated by a first system reference clock; calculate each of the N12 inverter units And a time compensation value corresponding to the inverter unit, and transmitting the time compensation value corresponding thereto to each of the N12 inverter units.
  • Each of the N12 inverter units is configured to perform time offset compensation on the local clock by using the received time compensation value after receiving the time compensation value corresponding thereto. Generating, according to the phase-locked loop, the clock signal generated by the currently received first reference clock of the main control unit 201 for synchronizing the synchronization signal of the pulse width modulated wave generated by the inverter unit .
  • FIG. 3-a is a schematic structural diagram of another multi-machine frequency converter according to another embodiment of the present invention.
  • another multi-machine frequency converter provided by another embodiment of the present invention may include: The main control unit 301, the N3 execution units 302 connected in series through the communication port, and the N4 execution units 303 connected in series through the communication port.
  • the N3 execution units and the N4 execution units share a common DC bus 310.
  • the first communication port P1 of the main control unit 301 is connected to the second communication port P0 of the sixth execution unit of the N3 execution units connected in series through the communication port, and the second communication port P0 and the pass of the main control unit are The first communication port P1 of the seventh execution unit of the above-described N4 execution units connected in series with the communication port is connected.
  • the N3 execution units and the N4 execution units include XI rectification units and X2 inverter units, wherein the XI is a positive integer, the X2 is a positive integer greater than 1, and the sixth execution unit passes An execution unit at one end edge position among the above-mentioned N3 execution units connected in series with the communication port, wherein the seventh execution unit is an execution unit at one end edge position among the N4 execution units connected in series through the communication port.
  • N3 and N4 are positive integers, and the sum of N3 and N4 is greater than or equal to 3.
  • the N3 execution units and the N4 execution units located on both sides of the main control unit 301 in the architecture shown in FIG. 3-a are compared with the architecture shown in FIG. 2-a in the foregoing embodiment.
  • the CCP includes XI rectifier units and X2 inverter units. That is, at least one inverter unit can be deployed on both sides of the main control unit 301.
  • one of the main control units 301 At least two inverter units and at least one rectifier unit are deployed on the side (the N1 execution units 202 include a total of Nil rectifier units and N12 inverter units).
  • the main control unit 301 can send a command word, a data word, and/or a status word to the N3 execution units 302 and the N4 execution units 303 through the first communication port P1 and the second communication port P0, respectively, and specifically send and forward.
  • the process is similar to the previous part and will not be described here.
  • the sixth execution unit may be a rectification unit, and the first communication port P1 of the sixth execution unit may be executed with the N3.
  • the second communication port P0 of the ninth execution unit among the units is connected, wherein the ninth execution unit is a rectification unit or an inverter unit.
  • the sixth execution unit may be an inverter unit, and the first communication port P1 and the N3 execution units of the sixth execution unit. middle The second communication port po of the eighth execution unit is connected, wherein the eighth execution unit is a rectification unit or an inverter unit.
  • FIG. 3-b, FIG. 3-c, FIG. 3-d, and FIG. 3-e exemplify that in the N3 execution units connected in series through the communication port, the rectifying unit and the inverting unit can be staggered with each other.
  • the rectifying unit and the inverting unit may also not be staggered with each other.
  • the communication port of the execution unit and the control unit may be a fiber optic communication port or an Ethernet communication port or a level signal communication port or a differential communication interface or other type of communication port.
  • the present invention provides a multi-machine frequency converter capable of achieving parallel synchronous and/or asynchronous operation, which is obviously compared with the prior art method of implementing parallel functions by using multiple frequency converters.
  • the implementation cost is reduced; wherein, in the serial communication mode (such as switched Ethernet communication mode) between the main control unit of the frequency converter and the multiple execution units, the 485 bus communication mode in the conventional inverter multi-machine system is replaced.
  • the serial communication mode such as switched Ethernet communication mode
  • the 485 bus communication mode in the conventional inverter multi-machine system is replaced.
  • it is advantageous to eliminate the defect that the transmission signal has poor anti-interference and short transmission distance, and is beneficial to realize ultra-long transmission with strong anti-interference ability, thereby improving the stability and reliability of the multi-machine operation scene of the inverter.
  • the interconnection structure between the main control unit and the execution unit is relatively simple, and the installation and wiring are relatively simple. It can be seen that this structure is advantageous for simplifying the wiring structure complexity of the multi-machine scene of the inverter. Moreover, since the execution units are connected in series through the communication port, this is advantageous for improving the scalability of the multi-machine operation of the inverter, and multiple execution units can be connected in series through the communication port according to different scenarios to meet the corresponding requirements.
  • the following mainly takes the architecture shown in Figure 3-a as an example to illustrate some ways to generate synchronization signals in multi-machine inverters.
  • the way in which synchronous signals are generated in multi-machine inverters under other architectures can be analogized.
  • the main control unit 301 is configured to periodically send a first system reference clock signal generated by the first system reference clock, and calculate each of the X2 inverter units. And a time compensation value corresponding to the inverter unit, and transmitting the time compensation value corresponding thereto to each of the X2 inverter units.
  • Each of the X2 inverter units is configured to perform time offset compensation on the local clock by using the received time compensation value after receiving the time compensation value corresponding thereto.
  • the first system reference clock signal sent by the currently received main control unit 301 is step-locked with the local clock after time offset compensation based on a phase locked loop, based on the local clock.
  • Clock signal generation for synchronous correction A synchronization signal of a pulse width modulated wave generated by the inverter unit.
  • the main control unit 301 is configured to send, to each of the X2 inverter units, pulse width modulated wave key data corresponding thereto.
  • Each of the X2 inverter units is configured to generate a synchronization signal; generate a pulse width modulated wave based on the received pulse width modulated wave key data from the main control unit 301, and use the synchronization signal
  • the pulse width modulated wave generated by the synchronous correction drives the motor to operate by the pulse width modulated wave after the synchronization correction.
  • FIG. 4-a is a schematic structural diagram of another multi-machine frequency converter according to another embodiment of the present invention.
  • another multi-machine frequency converter provided by another embodiment of the present invention may include: a main control unit 401, N5 rectifying units 402, and N6 inverter units 403 connected in series through a communication port. .
  • the N5 rectifying units 402 and the N6 inverter units 403 share a common DC bus 410.
  • the first communication port P1 of the main control unit 401 is connected to the second communication port P0 of the first inverter unit of the N6 inverter units, wherein the N5 is a positive integer, and the N6 is greater than 1.
  • the first inverter unit is an inverter unit at one end edge position among the N6 inverter units connected in series via a communication port.
  • one end edge position of the N6 inverter units after the series connection is the first inverter unit of the remaining second communication port P0, and the other end edge position is the second of the remaining first communication port P1.
  • the inverter unit is connected, and the second communication port P0 remaining in the first inverter unit is connected to the first communication port P1 of the above-mentioned main control unit 401.
  • N5 rectifying units 402 are uncontrollable rectifying units that are not controlled by the main control unit 401.
  • some rectifying units are controllable rectifying units that can be controlled by the main control unit.
  • the main control unit 401 can send a command word, a data word, and/or a status word to the first inverting unit through the first communication port P1, and the specific sending and forwarding processes are similar to the foregoing, and are not described herein.
  • the present invention provides a multi-machine frequency converter capable of achieving parallel synchronization and/or no Simultaneous operation, compared with the prior art method of implementing parallel function by using multiple frequency converters, significantly reduces the implementation cost; replacing serial communication between the main control unit and the inverter unit of the inverter
  • the 485 bus communication mode in the conventional inverter multi-machine system is beneficial to eliminate the defects of poor anti-interference and short transmission distance of the transmission signal, which is beneficial to realize the ultra-long transmission with strong anti-interference ability, which is beneficial to improve the multi-machine operation of the inverter. Stable reliability of the scene.
  • the interconnection structure between the main control unit and the inverter unit is relatively simple, and the installation and wiring are relatively simple.
  • this structure is advantageous for simplifying the wiring structure complexity of the multi-machine operation scene of the inverter. Moreover, since the inverter units are connected in series through the communication port, this is advantageous for improving the scalability of the multi-machine operation scene of the inverter, and multiple inverter units can be connected in series through the communication port according to different scenarios to meet the corresponding requirements.
  • FIG. 4-b shows that in some embodiments of the present invention, the main control unit 401 includes a second communication port P0, which is the same as the second inverter unit of the N6 inverter units.
  • a communication port PI connection wherein the second inverter unit is an inverter unit at another edge position among the N6 inverter units connected in series through the communication port.
  • FIG. 4-b shows a communication loop design structure.
  • the communication loop is introduced so that the communication channel between the units has a redundancy backup function, and the main control unit 401 can pass the first communication port P1 and/or
  • the second communication port P0 sends a command word, a data word and/or a status word to each inverter unit, which is equivalent to providing two communication channels for transmitting information, and the anti-fault and fault tolerance capability is enhanced, which is beneficial to further improve the system. Reliability of operation.
  • the communication port of the inverter unit, the rectifying unit, and the control unit may be a fiber optic communication port or an Ethernet communication port or a level signal communication port or a differential communication interface or other type of communication port.
  • the main control unit 401 is configured to periodically send a first system reference clock signal generated by the first system reference clock, and calculate each of the N6 inverter units. And a time compensation value corresponding to the inverter unit, and transmitting the time compensation value corresponding thereto to each of the N6 inverter units.
  • Each of the N6 inverter units is configured to use the received time after receiving the time compensation value corresponding thereto.
  • the compensation value performs time offset compensation on the local clock, and the first system reference clock signal sent by the currently received main control unit 401 and the local clock after performing time offset compensation are stepped based on the phase locked loop. Locking, generating a synchronization signal for synchronously correcting a pulse width modulated wave generated by the inverter unit based on a clock signal generated by the local clock.
  • the main control unit 401 is configured to send, to each of the N6 inverter units, pulse width modulated wave key data corresponding thereto.
  • Each of the N6 inverter units is configured to generate a synchronization signal; generate a pulse width modulated wave based on the received pulse width modulated wave key data from the main control unit 401, and utilize the synchronization signal
  • the pulse width modulated wave generated by the synchronous correction drives the motor to operate by the pulse width modulated wave after the synchronization correction.
  • FIG. 5 is a schematic structural diagram of another multi-machine frequency converter according to another embodiment of the present invention. As shown in FIG. 5, another multi-machine frequency converter provided by another embodiment of the present invention may include:
  • the N9 rectifier units, the N7 inverter units, and the N8 inverter units have a common DC bus 510.
  • the first communication port P1 of the main control unit 501 is connected to the second communication port P0 of the third inverter unit of the N7 inverter units 503 connected in series via the communication port, and the second communication of the main control unit 501 is
  • the port P0 is connected to the first communication port P1 of the fourth inverter unit of the above-described N8 inverter units 504 connected in series via the communication port.
  • the N7 and the N8 are positive integers
  • the third inverter unit is an inverter unit having one end edge position among the N7 inverter units connected in series via a communication port, wherein the fourth inverter unit is a communication unit.
  • one end edge position of the N7 inverter units 503 after the series connection is the third inverter unit of the remaining second communication port P0, and the other end edge position is the remaining first communication port P1.
  • the fifth inverting unit is connected, and the remaining second communication port P0 of the third inverting unit is connected to the first communication port P1 of the main control unit 501.
  • One end edge position of the N8 inverter units 504 after the series connection is the fourth inverter unit of the remaining first communication port P1
  • the other end edge position is the sixth inverter unit of the remaining second communication port P0, and the fourth inverter
  • the remaining first communication port P1 of the unit is connected to the second communication port P0 of the above-mentioned main control unit 501.
  • N9 rectifying units 502 are uncontrollable rectifying units that are not controlled by the main control unit 501.
  • some rectifying units are controllable rectifying units that can be controlled by the main control unit.
  • At least one inverter unit can be deployed on each side of the main control unit 501, and the architecture shown in FIG. 4-a is in the architecture shown in FIG. At least two inverter units are deployed on one side of the main control unit 301.
  • the communication port of the inverter unit, the rectifying unit, and the control unit may be a fiber optic communication port or an Ethernet communication port or a level signal communication port or a differential communication interface or other type of communication port.
  • the main control unit 501 can send a command word, a data word, and/or a status word to the third inverting unit and the second inverting unit through the first communication port P1 and the second communication port P0, respectively, and specifically send and forward.
  • the process is similar to the previous part and will not be described here.
  • the present invention provides a multi-machine frequency converter capable of achieving parallel synchronous and/or asynchronous operation, which is obviously compared with the prior art method of implementing parallel functions by using multiple frequency converters.
  • the implementation cost is reduced; the 485 bus communication mode in the conventional inverter multi-machine system is replaced by the serial communication mode between the main control unit and the inverter unit of the inverter, thereby facilitating the elimination of poor anti-interference of the transmission signal and the transmission distance.
  • Short defects are conducive to the realization of ultra-long transmission with strong anti-interference ability, which is beneficial to improve the stability and reliability of the multi-machine operation scene of the inverter.
  • the interconnection structure between the main control unit and the inverter unit is relatively simple, and the installation and wiring are relatively simple. It can be seen that this structure is advantageous for simplifying the wiring structure complexity of the multi-machine operation scene of the inverter. Moreover, since the inverter units are connected in series through the communication port, this is advantageous for improving the scalability of the multi-machine operation scenario of the inverter, and multiple inverter units can be connected in series through the communication port according to different scenarios to meet the corresponding requirements.
  • the main control unit 501 is configured to periodically send the first system reference clock signal generated by the first system reference clock; calculate each inverse of the N10 inverter units. And changing a time compensation value corresponding to the unit, and transmitting the time compensation value corresponding thereto to each of the N10 inverter units.
  • Each of the N10 inverter units is configured to perform time offset compensation on the local clock by using the received time compensation value after receiving the time compensation value corresponding thereto. Generating, according to the phase-locked loop, the clock signal generated by the first system reference ground clock sent by the currently received main control unit 501, for synchronizing the synchronization signal of the pulse width modulated wave generated by the inverter unit.
  • the N10 inverter units include the N7 inverter units and the N8 inverter units.
  • the operation control mode of multi-machine inverters under other architectures can be analogized.
  • the main control unit 501 is configured to send, to each of the N10 inverter units, pulse width modulated wave key data corresponding thereto;
  • the N10 inverter units include the N7 inverter units and the N8 inverter units.
  • Each of the N10 inverter units is configured to generate a synchronization signal; generating a pulse width modulated wave based on the received pulse width modulated wave key data from the main control unit 501, and synchronizing with the synchronization signal
  • the pulse width modulated wave generated by the correction is used to drive the motor operation by the pulse width modulated wave after the synchronization correction.
  • each functional unit in each embodiment of the present invention may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.
  • the above integrated unit can be implemented in the form of hardware or in the form of a software functional unit.
  • the above-described integrated unit, if implemented in the form of a software functional unit and sold or used as a stand-alone product, may be stored in a computer readable storage medium.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Quality & Reliability (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Automation & Control Theory (AREA)
  • Inverter Devices (AREA)

Abstract

La présente invention concerne un convertisseur de fréquence multi-machine, qui peut comprendre : une unité de commande principale et N1 unités d'exécution couplées en série au moyen d'un port de communication, ladite N1 unité d'exécution partageant une barre omnibus commune pour CC; le premier port de communication de l'unité de commande principale est connecté au second port de communication de la première unité d'exécution des N1 unités d'exécution; les N1 unités d'exécution comprennent N11 unités de redresseur et N12 unités d'onduleur; N11 est un nombre entier positif et N12 est un nombre entier positif supérieur à 1; ladite première unité d'exécution est une unité d'exécution située dans une position marginale desdites N1 unités d'exécution connectées en série au moyen d'un port de communication. Les modes de réalisation de la présente invention concernent une solution technique qui est propice à réduire la complexité des configurations de câblage de convertisseur de fréquence dans le contexte de machines multiples et à améliorer la stabilité et la fiabilité du fonctionnement multi-machine de convertisseurs de fréquence.
PCT/CN2014/078968 2014-05-30 2014-05-30 Convertisseur de fréquence multi-machine WO2015180152A1 (fr)

Priority Applications (2)

Application Number Priority Date Filing Date Title
CN201480019864.6A CN105431792B (zh) 2014-05-30 2014-05-30 多机变频器
PCT/CN2014/078968 WO2015180152A1 (fr) 2014-05-30 2014-05-30 Convertisseur de fréquence multi-machine

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2014/078968 WO2015180152A1 (fr) 2014-05-30 2014-05-30 Convertisseur de fréquence multi-machine

Publications (1)

Publication Number Publication Date
WO2015180152A1 true WO2015180152A1 (fr) 2015-12-03

Family

ID=54697929

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2014/078968 WO2015180152A1 (fr) 2014-05-30 2014-05-30 Convertisseur de fréquence multi-machine

Country Status (2)

Country Link
CN (1) CN105431792B (fr)
WO (1) WO2015180152A1 (fr)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105763131B (zh) * 2016-04-01 2018-08-10 苏州汇川技术有限公司 一种变频器的断电同步运行方法以及系统

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101877541A (zh) * 2009-04-29 2010-11-03 深圳市英威腾电气股份有限公司 一种大功率四象限变频器及功率单元
CN102969906A (zh) * 2012-11-22 2013-03-13 太原理工大学 独立馈电的级联型高压变频器及其馈电方法
CN103257642A (zh) * 2013-04-28 2013-08-21 深圳市英威腾电气股份有限公司 变频器多机主从控制系统
CN103779952A (zh) * 2014-02-20 2014-05-07 张立伟 太阳能供电及发电一体化的变频系统

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH07222456A (ja) * 1994-01-31 1995-08-18 Meidensha Corp インバータ・システム

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101877541A (zh) * 2009-04-29 2010-11-03 深圳市英威腾电气股份有限公司 一种大功率四象限变频器及功率单元
CN102969906A (zh) * 2012-11-22 2013-03-13 太原理工大学 独立馈电的级联型高压变频器及其馈电方法
CN103257642A (zh) * 2013-04-28 2013-08-21 深圳市英威腾电气股份有限公司 变频器多机主从控制系统
CN103779952A (zh) * 2014-02-20 2014-05-07 张立伟 太阳能供电及发电一体化的变频系统

Also Published As

Publication number Publication date
CN105431792A (zh) 2016-03-23
CN105431792B (zh) 2018-02-02

Similar Documents

Publication Publication Date Title
WO2015180150A1 (fr) Procédé pour convertisseur de fréquence multi-machine générant un signal de synchronisation et convertisseur de fréquence multi-machine
JP2007295647A (ja) インバータの同期運転方式
CN100356654C (zh) 一种逆变电源的自动主从并联装置
Kirrmann et al. Seamless and low-cost redundancy for substation automation systems (high availability seamless redundancy, HSR)
CN104660083B (zh) 用于控制并联逆变器的装置
JP2015198458A (ja) インバータシステム及び複数のインバータの並列同期運転制御方法
AU2012244320A1 (en) Power system controlling and monitoring power semiconductor devices employing two serial signals
CN102624075B (zh) 模块化ups系统多机并联方法及连接方案
CN102916921A (zh) 一种载波同步方法、装置及系统
KR20150141316A (ko) 병렬운전 인버터 시스템의 pwm 동기화 장치
EP2362534B1 (fr) Systèmes et procédés permettant de contrôler un circuit électrique avec des contrôleurs séparés
CN111262271A (zh) 一种低成本的多储能逆变器并联的通信系统
WO2015180152A1 (fr) Convertisseur de fréquence multi-machine
JP2007330072A (ja) 無停電電源装置の同期制御方法
JP2017153125A (ja) クロックを同期するための方法、システム、および装置
Kirrmann et al. Performance of a full-hardware PTP implementation for an IEC 62439-3 redundant IEC 61850 substation automation network
CN101291058B (zh) 用于交流源系统的双交流母线同步装置
WO2015180151A1 (fr) Procédé de commande de fonctionnement de convertisseur de fréquence multi-machine, et convertisseur de fréquence multi-machine
US20050265262A1 (en) Data transmission device, data transmission system, and method
KR102162464B1 (ko) 병렬 인버터 시스템
WO2014176861A1 (fr) Procédé d'émission de signal et procédé de traitement de défaillance, et système de commande maître-esclave de machines multiples de convertisseur de fréquence
KR101984106B1 (ko) Rs-422 신호 규격 전환 방법 및 장치
CN117318277A (zh) 并机电路、户用储能系统及其数据传输控制方法
Firla et al. Multi-node Communication Solution for Synchronous Control of Distributed Power Electronic Devices
CN117498445A (zh) 逆变器串联输出方法、逆变器串联输出电路及存储介质

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 201480019864.6

Country of ref document: CN

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 14893567

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 14893567

Country of ref document: EP

Kind code of ref document: A1