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Open AccessJournal ArticleDOI

Parameter Optimization of Universal Droop and Internal Model Controller for Multi Inverter-Fed DGs Based on Accurate Small-Signal Model

V. Naresh Kumar, +1 more
- 25 Jul 2019 - 
- Vol. 7, pp 101928-101940
TLDR
In this paper, a parameter optimization of universal droop and internal model control (IMC) is proposed based on an accurate small-signal model for an inverter dominated microgrid.
Abstract
Microgrid comprises of several distributed generations (DGs), which are typically integrated through power electronic inverters. The existence of low inertial devices combined with the dynamic nature of the load challenges the stability of a microgrid and the effectiveness of the controller, mainly when operated in islanded mode. It is essential to optimize the parameters of the controller to enhance its efficacy under various operating conditions. In this paper, parameter optimization of universal droop and internal model control (IMC) is proposed based on an accurate small-signal model for an inverter dominated microgrid. In order to achieve robust control performance under different load conditions, a four-step approach is proposed: 1) an accurate small-signal model of a parallel multi-inverter system is prepared, which operates with the universal droop and internal model controller. The developed small-signal model is more accurate because it considers the dynamics of filter and phase-locked loop; 2) an investigation of critical control parameters of universal droop and internal model controller influencing the system stability is carried out, and their corresponding stability domain is identified through eigenvalue analysis; 3) particle swarm optimization (PSO) is used to optimize the critical parameters; and 4) the obtained result is validated under different load disturbances. Following the above approach, the time domain simulation is performed, which establishes that the proposed scheme improves the dynamic response of the DGs, counteracts the disturbances effectively and simultaneously improves the power-sharing. The proposed model is also compared with the well-established conventional PI-based droop controller, which demonstrates the efficacy of the proposed scheme.

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Citations
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Journal ArticleDOI

Decentralized control strategy for fuel cell/PV/BESS based microgrid using modified fractional order PI controller

TL;DR: Comparisons of various performance indices show that proposed control strategy is efficient in improving the steady state as well as dynamic performance of the system under all operating conditions by effectively regulating the real and reactive power flows among the DGs.
Journal ArticleDOI

Comprehensive review on control strategies of parallel-interfaced voltage source inverters for distributed power generation system

TL;DR: This study presents various current and power-sharing control strategies of parallel-interfaced voltage source inverters with a common AC bus and a detailed classification and analysis of wired and wireless (droop) controllers for parallel-connected voltage sources inverters have been done.
Journal ArticleDOI

Simultaneous Optimization of Virtual Synchronous Generators (VSG) Parameters in Islanded Microgrids Supplying Induction Motors

TL;DR: In this paper, a generalized small-signal stability analysis framework is proposed for an islanded microgrid including several virtual synchronous generators (VSGs), lines, static loads, and SIM loads.
Journal ArticleDOI

Iterative Approach for Tuning Multiple Converter-Integrated DER in Microgrids

TL;DR: In this article , an iterative approach is proposed to adjust the control parameters of multiple power converters within a microgrid, which operates in grid-connected and grid-islanded modes.
Journal ArticleDOI

Multi-objective Optimization Technique for Droop Controlled Distributed Generators in AC Islanded Microgrid

TL;DR: In this article , a multi-objective optimization droop control strategy is proposed to improve the system performance and stability in an AC islanded microgrid, where three objective functions corresponding to: (i) load-bus voltage regulation; (ii) accurate real power sharing; and (iii) reactive power sharing, are constructed.
References
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Journal ArticleDOI

Modeling, Analysis and Testing of Autonomous Operation of an Inverter-Based Microgrid

TL;DR: In this paper, the authors developed a model for autonomous operation of inverter-based micro-grids, where each sub-module is modeled in state-space form and all are combined together on a common reference frame.
Journal ArticleDOI

Trends in Microgrid Control

TL;DR: The major issues and challenges in microgrid control are discussed, and a review of state-of-the-art control strategies and trends is presented; a general overview of the main control principles (e.g., droop control, model predictive control, multi-agent systems).
Journal ArticleDOI

Robust Droop Controller for Accurate Proportional Load Sharing Among Inverters Operated in Parallel

TL;DR: An improved droop controller is proposed to achieve accurate proportional load sharing without meeting these two requirements and to reduce the load voltage drop due to the load effect and the droop effect.
Journal ArticleDOI

Dynamic Stability of a Microgrid With an Active Load

TL;DR: In this article, an active rectifier and voltage regulator are modeled in nonlinear state-space form, linearized around an operating point, and joined to network and inverter models, and participation analysis of the combined system identified that the low-frequency modes are associated with the voltage controller of the active rectifiers and the droop controllers of the inverters.
Journal ArticleDOI

Some Aspects of Stability in Microgrids

TL;DR: In this article, a review of the existing microgrid control methods in the literature and different industry solutions is presented, along with an initial platform for different types of microgrids stability assessment.
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