CONTROL OF MMC DURING FAULT
20200177098 ยท 2020-06-04
Assignee
Inventors
Cpc classification
B60M3/02
PERFORMING OPERATIONS; TRANSPORTING
H02M1/32
ELECTRICITY
H02M1/0025
ELECTRICITY
H02J3/00125
ELECTRICITY
H02M7/4835
ELECTRICITY
International classification
H02M7/483
ELECTRICITY
B60M3/02
PERFORMING OPERATIONS; TRANSPORTING
H02J3/00
ELECTRICITY
Abstract
A method of controlling a Modular Multilevel Converter (MMC) during a fault in a power grid to which the MMC is connected is disclosed. The MMC includes a plurality of phases, each including at least one phase leg. Each phase leg includes a plurality of series connected converter cells. The method includes determining that a fault has occurred in the power grid, the fault including a reduced voltage in the power grid. The method also includes, for each phase leg of the MMC, reducing the DC voltage of the phase leg by a predetermined amount from a nominal DC voltage to a reduced DC voltage, the DC voltage being the sum of all respective voltages over an energy storage of each cell of the phase leg. The method also includes determining that the fault has been cleared, whereby the voltage in the power grid is returned to nominal. The method also includes for each of the phase legs of the MMC, increasing the DC voltage back to the nominal DC voltage.
Claims
1. A method of controlling a Modular Multilevel Converter, MMC, during a fault in a power grid to which the MMC is connected, the MMC comprising a plurality of phases, each phase comprising at least one phase leg, wherein each phase leg comprises a plurality of series connected converter cells, the method comprising: determining that a fault has occurred in the power grid, said fault including a reduced voltage in the power grid; for each phase leg of the MMC, reducing the DC voltage of the phase leg by a predetermined amount from a nominal DC voltage to a reduced DC voltage, the DC voltage being the sum of all respective voltages over an energy storage of each cell of the phase leg; determining that the fault has been cleared, whereby the voltage in the power grid is returned to nominal; and for each of the phase legs of the MMC, increasing the DC voltage back to the nominal DC voltage.
2. The method of claim 1, wherein the predetermined amount is within the range of 5-20% of the nominal DC voltage.
3. The method of claim 1, wherein the reducing includes updating a voltage reference for the phase leg.
4. The method of claim 1, wherein the MMC is in double-wye or delta configuration.
5. The method of claim 1, wherein the MMC is configured for a railway intertie.
6. A computer program product embodied on a non-transitory computer readable medium and comprising computer-executable components for causing a control arrangement of a Modular Multilevel Converter, MMC, to perform the method of claim 1 when the computer-executable components are run on processing circuitry comprised in the control arrangement.
7. A control arrangement for controlling a Modular Multilevel Converter, MMC, during a fault in a power grid to which the MMC is connected, the MMC comprising a plurality of phases, each phase comprising at least one phase leg, wherein each phase leg comprises a plurality of series connected converter cells, the control arrangement comprising: processing circuitry; and data storage storing instructions executable by said processing circuitry whereby said control arrangement is operative to: determine that a fault has occurred in the power grid, said fault including a reduced voltage in the power grid; for each phase leg of the MMC, reduce the DC voltage of the phase leg by a predetermined amount from a nominal DC voltage to a reduced DC voltage, the DC voltage being the sum of all respective voltages over an energy storage of each cell of the phase leg; determine that the fault has been cleared, whereby the voltage in the power grid is returned to nominal; and for each of the phase legs of the MMC, increase the DC voltage back to the nominal DC voltage.
8. The method of claim 2, wherein the reducing includes updating a voltage reference for the phase leg.
9. The method of claim 2, wherein the MMC is in double-wye or delta configuration.
10. The method of claim 3, wherein the MMC is in double-wye or delta configuration.
11. The method of claim 2, wherein the MMC is configured for a railway intertie.
12. The method of claim 3, wherein the MMC is configured for a railway intertie.
13. The method of claim 4, wherein the MMC is configured for a railway intertie.
14. A computer program product embodied on a non-transitory computer readable medium and comprising computer-executable components for causing a control arrangement of a Modular Multilevel Converter, MMC, to perform the method of claim 2 when the computer-executable components are run on processing circuitry comprised in the control arrangement.
15. A computer program product embodied on a non-transitory computer readable medium and comprising computer-executable components for causing a control arrangement of a Modular Multilevel Converter, MMC, to perform the method of claim 3 when the computer-executable components are run on processing circuitry comprised in the control arrangement.
16. A computer program product embodied on a non-transitory computer readable medium and comprising computer-executable components for causing a control arrangement of a Modular Multilevel Converter, MMC, to perform the method of claim 4 when the computer-executable components are run on processing circuitry comprised in the control arrangement.
17. A computer program product embodied on a non-transitory computer readable medium and comprising computer-executable components for causing a control arrangement of a Modular Multilevel Converter, MMC, to perform the method of claim 5 when the computer-executable components are run on processing circuitry comprised in the control arrangement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Embodiments will be described, by way of example, with reference to the accompanying drawings, in which:
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] Embodiments will now be described more fully hereinafter with reference to the accompanying drawings, in which certain embodiments are shown. However, other embodiments in many different forms are possible within the scope of the present disclosure. Rather, the following embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Like numbers refer to like elements throughout the description.
[0020] The following description is focused on a Railway Intertie MMC (3-phase to 1-phase direct converter (see
[0025]
[0026]
[0027]
[0028] The nominal DC voltage of a phase leg 3 (i.e. the sum of all individual cell 4 DC voltages of the phase leg) is chosen in such a way that the converter 1 is able to run at maximum grid 5 voltage, e.g. maximum specified grid 5a voltage on the 3-phase side and simultaneously maximum grid 5b voltage on the 1-phase side for a railway intertie. Apart from that, some control margin is considered in the nominal DC voltage.
[0029] In accordance with the present invention, during grid failure and the resulting lower grid voltage, the required DC voltage of a phase leg is kept lower than in normal operation. At the time instant of the fault entry, the DC voltage may be reduced by a certain amount (e.g. by 10%).
[0030] Normally the active power is controlled on the 1-phase 5b side, that means that depending on the sign of the active power, the 1-phase side is injecting or withdrawing energy from the converter 1. The total stored converter energy has to be maintained at a constant value, that means that the average of all cell DC voltages has to be controlled to a constant value (nominal cell DC voltage). This is done by a DC voltage controller, typically comprised in the control arrangement 10 of the converter 1, whose output is the active current reference for the 3-phase side current controller. To reduce the DC voltage during a fault in a power grid 5 in accordance with the present invention, e.g. the first or second power grids 5a or 5b, typically the 1-phase power grid 5b, of
[0031] During the whole fault, the DC voltage will be kept at the reduced value. At the time instant when the grid voltage recovers, the DC voltage will raise again fast. The difference is now that due to the earlier reduction in DC voltage, the cell DC voltages do not hit the overvoltage limit and the converter 1 stays in operation.
[0032] The same strategy may be applied for faults on the 3-phase grid 5a side, or any other power grid 5 side of an MMC.
[0033]
[0034] In some embodiments of the present invention, the predetermined amount with which the DC voltage is reduced is within the range of 5-20%, e.g. about 10%, of the nominal DC voltage.
[0035] In some embodiments of the present invention, the reducing M2 of the DC voltage includes updating a voltage reference for the phase leg 3, e.g. by a DC voltage controller of a control arrangement 10 of the converter 1.
[0036] In some embodiments of the present invention, the MMC 1 in in double-wye or delta configuration, e.g. as illustrated in
[0037] In some embodiments of the present invention, the MMC (1) is configured for a railway intertie. However, a railway intertie is only an example and embodiments of the present invention may be useful also for any other converter application, e.g. STATCOM in delta topology (see
[0038] Embodiments of the method of the present invention may be performed by a control arrangement 10 of the MMC 1, which control arrangement comprises processing circuitry associated with a data storage. The processing circuitry may be equipped with one or more processing units CPU in the form of microprocessor(s) executing appropriate software stored in associated memory for procuring required functionality. However, other suitable devices with computing capabilities could be comprised in the processor, e.g. an application specific integrated circuit (ASIC), a field programmable gate array (FPGA), a complex programmable logic device (CPLD), etc., in order to control the MMC 1 and perform embodiments of the method of the present disclosure, while executing appropriate software, e.g. stored in a suitable data storage, such as a RAM, a Flash memory or a hard disk, or in the processing circuitry itself (as e.g. in case of an FPGA).
[0039] Embodiments of the present invention may be conveniently implemented using one or more conventional general purpose or specialized digital computer, computing device, machine, or microprocessor, including one or more processors, memory and/or computer readable storage media programmed according to the teachings of the present disclosure. Appropriate software coding can readily be prepared by skilled programmers based on the teachings of the present disclosure, as will be apparent to those skilled in the software art.
[0040] In some embodiments, the present invention includes a computer program product which is a non-transitory storage medium or computer readable medium (media) having instructions stored thereon/in which can be used to program a computer to perform any of the methods/processes of the present invention. Examples of the storage medium can include, but is not limited to, any type of disk including floppy disks, optical discs, DVD, CD-ROMs, microdrive, and magneto-optical disks, ROMs, RAMs, EPROMs, EEPROMs, DRAMs, VRAMs, flash memory devices, magnetic or optical cards, nanosystems (including molecular memory ICs), FPGA or any type of media or device suitable for storing instructions and/or data.
[0041] The present disclosure has mainly been described above with reference to a few embodiments. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the present disclosure, as defined by the appended claims.