Small Signal Modelling and Stability Analysis of a Grid Connected Inverted Based Microgrid

Aditya Sharma, D. K. Palwalia
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Abstract

Objectives: This work focuses on the stability analysis of grid connected microgrids. It considers the impact of load disturbance and grid voltage change on voltage and current levels, as well as reactive and active power responses, is analysed. Methods: A comprehensive small-signal state-space model is developed for an inverter-based microgrid, incorporating submodules of inverters, phase-locked loops (PLLs), and LCL filters. The model is linearized around a stable operating point, and eigenvalue analysis is performed and validated through MATLAB/Simulink simulations. A current controller operating in the d-q frame is proposed to enhance stable power conversion and maintain microgrid stability. Findings: The proposed model and control strategy demonstrate the microgrid's ability to maintain transient voltage stability under severe dynamic conditions. During a 10% grid voltage fluctuation, the microgrid exhibits stable active and reactive power responses, with currents and voltages at the point of common coupling stabilizing within 0.2 seconds. Furthermore, when a 25 kVA active load is disconnected, the microgrid effectively manages the power transition, maintaining stable operation with minimal deviations in key parameters. The current controller simplifies AC current control, integrating active power management from solar input, DC-link voltage stability, and reactive power control. Novelty: The novelty lies in the comprehensive analysis of transient voltage stability in grid-connected microgrids under grid voltage fluctuations and load disturbances, areas that have received limited attention in previous research. By developing a detailed small-signal state-space model incorporating PLL and LCL filter dynamics and proposing a robust control strategy with the current controller, this study offers new insights into enhancing the resilience and reliability of grid-connected microgrids during transient events. Keywords: Microgrid, Small Signal Stability, Voltage Source Inverter, State Space model, Eigen Values
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基于逆变的并网微电网的小信号建模和稳定性分析
目标:这项工作的重点是并网微电网的稳定性分析。它考虑了负载扰动和电网电压变化对电压和电流水平的影响,并分析了无功和有功功率响应。分析方法为基于逆变器的微电网开发了一个全面的小信号状态空间模型,其中包含逆变器、锁相环(PLL)和 LCL 滤波器的子模块。该模型围绕稳定工作点进行线性化,并通过 MATLAB/Simulink 仿真进行特征值分析和验证。提出了一种在 d-q 框架下运行的电流控制器,以增强稳定的功率转换并保持微电网的稳定性。研究结果:所提出的模型和控制策略证明了微电网在恶劣动态条件下保持瞬态电压稳定性的能力。在 10% 的电网电压波动期间,微电网表现出稳定的有功和无功响应,共耦点的电流和电压在 0.2 秒内趋于稳定。此外,当一个 25 千伏安的有功负载断开时,微电网能有效地管理电力过渡,在关键参数偏差最小的情况下保持稳定运行。电流控制器简化了交流电流控制,集成了太阳能输入的有功功率管理、直流链路电压稳定和无功功率控制。新颖性:新颖性在于全面分析了并网微电网在电网电压波动和负载扰动情况下的瞬态电压稳定性,这些领域在以往的研究中受到的关注有限。通过建立包含 PLL 和 LCL 滤波器动态特性的详细小信号状态空间模型,并提出使用电流控制器的稳健控制策略,本研究为提高并网微电网在瞬态事件中的恢复能力和可靠性提供了新的见解。关键词微电网 小信号稳定性 电压源逆变器 状态空间模型 特征值
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