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Optimal PI Based Secondary Control for Autonomous Micro-Grid via Particle Swarm Optimization Technique

机译:基于微粒群优化技术的基于PI的最优微电网二次控制

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Hybrid micro-grids require harmony operation of renewable energy resources based voltage source inverters (VSIs) in grid-tied as well as islanded modes. In this paper, the modeling, analysis, and control strategy of VSIs based autonomous micro-grid are developed. An integrated control system for autonomous micro-grid is carried out including two control levels. The primary control level is comprised of the current and voltage inner control loops, the virtual inductor loops, and the droop control loops. This control level is necessary to regulate voltage and frequency, and also to achieve accurate power sharing among the paralleled distributed generators (DGs). However, the secondary control level is employed to eliminate the voltage magnitude and angular frequency deviations produced by primary control level. The parameters of secondary controllers are optimized using particle swarm optimization technique to achieve good dynamic and steady state performance for micro-grid voltage and frequency. Two micro-grid structures are modeled and simulated in MATLAB environment to accomplish this study. The first structure consists of only one distributed generation unit, while the second contains four DGs. Each structure is tested with and without secondary control level under the load variations to confirm the robustness of the control system. The results of the traditional and optimized secondary controllers are compared.
机译:混合微电网要求并网和孤岛模式下基于电压源逆变器(VSI)的可再生能源的和谐运行。本文研究了基于VSI的自治微电网的建模,分析和控制策略。进行了包括两个控制级别的自主微电网的集成控制系统。主要控制级别包括电流和电压内部控制回路,虚拟电感器回路和下垂控制回路。此控制级别对于调节电压和频率以及在并联的分布式发电机(DG)之间实现准确的功率共享是必不可少的。然而,采用次级控制水平来消除由初级控制水平产生的电压幅度和角频率偏差。使用微粒群优化技术对辅助控制器的参数进行优化,以实现微电网电压和频率的良好动态和稳态性能。在MATLAB环境中对两个微网格结构​​进行了建模和仿真,以完成本研究。第一种结构仅包含一个分布式发电单元,而第二个结构包含四个DG。在负载变化的情况下,在有无辅助控制级别的情况下测试每种结构,以确认控制系统的鲁棒性。比较了传统的和优化的辅助控制器的结果。

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