Fault isolation and system restoration using power converter

US2018166972A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2018166972-A1
Application numberUS-201715840737-A
CountryUS
Kind codeA1
Filing dateDec 13, 2017
Priority dateDec 14, 2016
Publication dateJun 14, 2018
Grant date

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  7. Citations and related patents

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Abstract

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Unique systems, methods, techniques and apparatuses of a DC fault isolation system are disclosed. One exemplary embodiment is a power conversion system comprising a converter including a midpoint connection structured to receive AC power, a first converter arm, a second converter arm, and a control system. The control system is configured to operate the converter a fault condition mode in response to a DC fault condition, wherein the fault condition mode operates at least one full bridge cell of the second converter arm so as to interrupt current flowing between the midpoint connection and the second DC bus rail and operates the first converter arm so as to allow the AC power to flow between the midpoint connection and the first DC bus rail in response to detecting the DC fault condition.

First claim

Opening claim text (preview).

What is claimed is: 1 . A power conversion system comprising: a converter including: a midpoint connection structured to receive AC power, a first converter arm comprising a first plurality of half bridge cells and coupled between the midpoint connection and a first DC bus rail, and a second converter arm comprising a second plurality of half bridge cells and at least one full bridge cell, the second converter arm coupled between the midpoint connection and a second DC bus rail; and a control system configured to: operate the converter in a normal operation mode so as to convert the AC power to DC power and output the DC power to the first DC bus rail and the second DC bus rail, detect a DC fault condition, and operate the converter in a fault condition mode in response to the DC fault condition, wherein the fault condition mode operates the at least one full bridge cell of the second converter arm so as to interrupt current flowing between the midpoint connection and the second DC bus rail and operates the first converter arm so as to allow the AC power to flow between the midpoint connection and the first DC bus rail in response to detecting the DC fault condition. 2 . The system of claim 1 , comprising a protective device coupled to the first DC bus rail, wherein the control system is configured to operate the protective device in order to selectively interrupt current flow through the first DC bus rail. 3 . The system of claim 2 , wherein the protective device is a disconnector. 4 . The system of claim 2 , wherein the control system, during the fault condition mode, is configured to detect a zero current condition at the protective device while the control system is operating the first converter arm so as to allow the AC power to flow between the midpoint connection and the first DC bus rail, and opening the protective device in response to detecting the zero current condition. 5 . The system of claim 4 wherein the control system operates the converter in the normal operation mode following the opening of the protective device but before the control system detects a clearance of the DC fault condition. 6 . The system of claim 1 wherein each half bridge cell of the first plurality of half bridge cells and the second plurality of half bridge cells includes a pair of series coupled semiconductor switches and a capacitor, and wherein the control system is configured to operate the semiconductor switches during the fault condition mode so as to prevent capacitor discharge of the capacitor of each half bridge cell. 7 . The system of claim 1 wherein each full bridge cell includes two pairs of series coupled semiconductor switches and wherein the control system operates the second converter arm so as to interrupt current flowing between the midpoint connection and the second DC bus rail by opening each of the semiconductor switches. 8 . The system of claim 1 , wherein the converter is structured to receive three phase AC power. 9 . A fault isolation system comprising: a modular multilevel converter (MMC) including: an input port structured to be coupled to a multiphase AC power source, a first output port structured to be coupled to a first DC bus rail, and a second output port structured to be coupled to a second DC bus rail, a protective device coupled to the first output port and structured to interrupt current flow through the first DC bus rail; and a control system coupled to the MMC and the protective device, and configured to detect a DC fault condition, operate the MMC so as to interrupt current flow from the input port to the second output port in response to detecting the DC fault condition, operate the MMC so as to allow AC power flow from the input port to the first output port in response to detecting the DC fault condition, detect a zero current condition at the first output port, and interrupt current flow through the first DC bus rail using the protective device in response to detecting a zero current condition at the first output port. 10 . The system of claim 9 , wherein the protective device is a DC circuit breaker. 11 . The system of claim 9 , wherein the MMC includes three upper arms, each arm including a plurality of series coupled half bridge cells coupled between the input port and the first output port such that each phase of the AC power received with the MMC is separately coupled to one arm of the MMC. 12 . The system of claim 11 wherein the MMC includes three lower arms, each arm including a full bridge cell coupled between the input port and the second output port such that each phase of the AC power received with the MMC is separately coupled to one arm of the MMC. 13 . The system of claim 12 , wherein each of the three lower arms includes a plurality of half bridge cells. 14 . The system of claim 9 , wherein the control system is a plurality of controllers. 15 . The system of claim 9 , wherein the control system is configured to operate the MMC in a normal operation mode so as to receive the multiphase AC power and convert the multiphase AC power to DC power, and wherein the control system is configured to operate the MMC in normal operation mode in response to interrupting current flow through the first DC bus rail using the protective device, to detect a clearance of the DC fault condition, and to close the protective device in response to detecting the clearance of the DC fault condition. 16 . A method for operating a modular multilevel converter (MMC) comprising: coupling an MMC input to a power source; coupling a first MMC output to a first DC bus rail; coupling a second MMC output to a second DC bus rail; operating the MMC in a first operating mode including receiving power with the MMC input, converting the power to DC power, and outputting the DC power with the first MMC output and the second MMC output; detecting a DC fault condition; and operating the MMC in a second mode in response to detecting a DC fault condition including receiving power with the MMC input, interrupting current flow between the MMC input and the second MMC output, and transmitting the received power between the MMC input to the first MMC output. 17 . The method of claim 16 comprising coupling a DC protective device to the first DC bus rail, detecting a zero current condition on the first DC bus while operating the MMC in the second mode, and opening the DC protective device during the zero current condition. 18 . The method of claim 17 , comprising operating the MMC a second time in the normal operating mode, detecting a resolution of the DC fault condition, and closing the DC protective device in response to detecting the resolution of the DC fault condition. 19 . The method of claim 16 wherein the MMC includes a plurality of half bridge cells coupled in series between the MMC input and the first MMC output and does not include a full bridge cell coupled between the MMC input and the first MMC output. 20 . The method of claim 16 , wherein the DC power is medium voltage direct current power or high voltage direct current power.

Assignees

Inventors

Classifications

  • H02M1/32Primary

    Means for protecting converters other than automatic disconnection · CPC title

  • in a bridge configuration · CPC title

  • Circuits specially adapted for the generation of control voltages for semiconductor devices incorporated in static converters · CPC title

  • comprising two or more cells, each including a switchable capacitor, the capacitors having a nominal charge voltage which corresponds to a given fraction of the input voltage, and the capacitors being selectively connected in series to determine the instantaneous output voltage · CPC title

  • Converters with outputs that each can have more than two voltages levels · CPC title

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What does patent US2018166972A1 cover?
Unique systems, methods, techniques and apparatuses of a DC fault isolation system are disclosed. One exemplary embodiment is a power conversion system comprising a converter including a midpoint connection structured to receive AC power, a first converter arm, a second converter arm, and a control system. The control system is configured to operate the converter a fault condition mode in respo…
Who is the assignee on this patent?
Abb Schweiz Ag
What technology area does this patent fall under?
Primary CPC classification H02M1/32. Mapped technology areas include Electricity.
When was this patent published?
Publication date Thu Jun 14 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).