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VMD-Enabled Current-Based Fast Fault Detection Scheme for DC Microgrid | IEEE Journals & Magazine | IEEE Xplore

VMD-Enabled Current-Based Fast Fault Detection Scheme for DC Microgrid


Abstract:

The utilization of low-voltage direct current (LVdc) distribution system is gaining popularity in recent years due to its numerous advantages. However, the development of...Show More

Abstract:

The utilization of low-voltage direct current (LVdc) distribution system is gaining popularity in recent years due to its numerous advantages. However, the development of efficient fault detection scheme for an LVdc microgrid is a challenging problem. This article proposes a fast and effective variational mode decomposition (VMD)-based fault detection technique for the LVdc distribution system with penetration of renewable sources using the local end current measurements only. This scheme processes the rate of change of current signal of the distribution lines through the VMD algorithm that decomposes it to different modes. The cumulative energy of the most significant mode is being computed and used as a fault detection index. The proposed scheme is tested for pole to pole and pole to ground fault with broad variation in fault location, fault resistance, and distributed generations penetration in grid-connected and islanding mode of microgrid operation. The performance of the proposed technique is compared with the existing differential current and overcurrent relaying scheme as well as other existing schemes. The testing has been done in MATLAB/Simulink and Typhoon hardware-in-loop testbed. The proposed scheme detects all types of fault with wide variation in fault and operating conditions of the microgrid with faster response time. The test results indicate that the proposed protection scheme is a potential candidate for providing effective protection measure for LVdc microgrid.
Published in: IEEE Systems Journal ( Volume: 16, Issue: 1, March 2022)
Page(s): 933 - 944
Date of Publication: 01 March 2021

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I. Introduction

In Recent years, significant research has been made to integrate renewable sources or distributed generations (DGs), such as photovoltaic plants and fuel cells with the distribution power system. A section of the distribution network with conventional sources and loads, along with the integration of DGs, can form an independent power system and is termed as microgrid [1]. Furthermore, the conventional sources are also a category of DG. The large number of DGs inherently generates the direct current (dc) and there is a potential that most household and electronic appliances can be made to work on dc. Thus, the low-voltage dc (LVdc) microgrid can be more suitable for such applications. The LVdc microgrid can be the most potential option of supplying power to remote locations, such as islands and hilly terrains, where the transmission cost is significant.

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