Publication | Open Access
Fault Current Control and Protection in a Standalone DC Microgrid Using Adaptive Droop and Current Derivative
79
Citations
21
References
2020
Year
EngineeringPower Electronics ConverterPhotovoltaic SystemPower ElectronicsPhotovoltaicsCurrent DerivativePower System ControlRenewable Energy SystemsPower SystemsElectrical EngineeringDc MicrogridsSolar PowerComputer EngineeringDistributed Control SystemMicrogridsPower System ProtectionSmart GridFault Current ControlNovel Fault DetectionCurrent Derivative Algorithm
This article presents a novel fault detection, characterization, and fault current control algorithm for a standalone solar-photovoltaic (PV) based dc microgrids. The protection scheme is based on the current derivative algorithm. The overcurrent and current directional/differential comparison based protection schemes are incorporated for the dc microgrid fault characterization. For a low impedance fault, the fault current is controlled based on the current/voltage thresholds and current direction. Generally, the droop method is used to control the power-sharing between the converters by controlling the reference voltage. In this article, an adaptive droop scheme is also proposed to control the fault current by calculating a virtual resistance R <sub xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink"> droop</sub> , and to control the converter output reference voltage. For a high impedance fault, differential comparison method is used to characterize the fault. These algorithms effectively control the converter pulsewidth and reduce the flow of source current from a particular converter, which helps to increase the fault clearing time. Additionally, a trip signal is sent to the corresponding dc circuit breaker (DCCB), to isolate the faulted converter, feeder or a dc bus. The dc microgrid protection design procedure is detailed, and the performance of the proposed method is verified by simulation analysis.
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