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A comprehensive review ofmodern trends in optimization techniques applied to hybrid microgrid systems

机译:综合审查应用于混合微电网系统的优化技术趋势

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摘要

Microgrids have drawn substantial consideration due to high quality and reliable mix sources of electricity. This paper articulates the implication of innovative algorithms for cognitive microgrid. It perceived the algorithms that are backed by artificial intelligence (AI) are quite efficient due to the precision, convergence speed, and less computation time as compared to the conventional heuristic methods. Solar PV/Battery grid-connected MG is modeled to achieve optimum size, supreme power quality, reduced fluctuations in voltage and frequency, reduced settling time, eliminate short transient currents, seamless power, least annual cost and high reliability as an objective function under wavering weather condition and dynamic load changes. Four broad categorizations of metaheuristic algorithms, that is, evolutionary, swarm intelligence, physics, and human intelligence-based algorithms are well elaborated in this study. The optimal solution to the fitness function by using a hybrid optimization method also directed in the study. This paper gives deep insight to readers working in the area.
机译:由于高品质和可靠的电力来源,微电网具有大量考虑因素。本文阐明了创新算法对认知微电网的影响。它感知了人工智能(AI)支持的算法由于与传统启发式方法相比,由于精度,收敛速度和计算时间较少。太阳能光伏电池连接的MG模型,以实现最佳尺寸,最高功率质量,降低电压和频率的波动,降低稳定时间,消除短暂的瞬态电流,无缝功率,最小成本和高可靠性,作为在动摇下的目标函数的目标天气状况和动态负荷变化。在这项研究中,阐述了四种的成群质算法,即进化,群智能,物理和人类智能的算法。通过使用混合优化方法对健身功能的最佳解决方案也在研究中。本文深入了解在该地区工作的读者。

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