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March 5, 2024Sustainability25 citationsOpen Access

Analysis of Grid-Forming Inverter Controls for Grid-Connected and Islanded Microgrid Integration

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LWLaura WardASAnitha Sarah SubburajADAyda Demir

Key Points

  • Effective voltage and frequency stabilization is achieved during prolonged outages, ensuring critical loads are supported.
  • Simulation showed that the GFM inverter control has rapid synchronization response times for grid connection.
  • Assessment using real-time simulation tools ensured robust testing of GFM inverter dynamics and black start capability in various conditions available in microgrids and feeders setups across different scenarios and analysis stages for critical energy resources utilization and availability to all components involved in electric feed supplies systems ground during transient faults events encountered in most distributed energy situations today, including unplanned outages, while showing lasting independence from traditional electrical sources dependency aspects overall system management aspects all throughout ensuring energy needs properly met under unique cases overall and during emergencies safely too. Transition planning for potential operational profitability unlocks future resiliency states in the distributed energy era expected in just years ahead for all utility structures externally as observed through emerging technologies efforts toward fulfilling these evolving end-user needs.

Abstract

Autonomous grid-forming (GFM) inverter testbeds with scalable platforms have attracted interest recently. In this study, a self-synchronized universal droop controller (SUDC) was adopted, tested, and scaled in a small network and a test feeder using a real-time simulation tool to operate microgrids without synchronous generators. We presented a novel GFM inverter control adoption to better understand the dynamic behavior of the inverters and their scalability, which can impact the distribution system (DS). This paper provides a steady-state and transient analysis of the GFM power inverter controller via simulation to better understand voltage and frequency stabilization and ensure that the critical electric loads are not affected during a prolonged power outage. The controllers of the GFM inverter are simulated in HYPERSIM to examine voltage and frequency fluctuations. This analysis includes assessing the black start capability for photovoltaic microgrids, both grid-connected and islanded, during transient fault conditions. The high photovoltaic PV penetration levels open exciting opportunities and challenges for the DS. The GFM inverter control demonstrated appropriate response times for synchronization, connection, and disconnection to the grid. The DS has become more resilient and independent of fossil fuels by increasing the penetration of inverter-based distributed energy resources (DERs).

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Cite This Study

Ward et al. (2024) studied this question.

synapsesocial.com/papers/68e758cbb6db6435876d0a6ehttps://doi.org/10.3390/su16052148
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