Operation Control and Analysis of a Hybrid AC/DC Microgrid.

S. Bansal, Dhairya Gaur, K. Roy, Apoorva Choumal
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Abstract

Distributed renewable energy production is making smart microgrid concepts based on AC, DC, and hybrid-MG design more attractive (DRE). In light of the growing population and the pressing need to minimize the load, research into effective control techniques and architectural solutions is a hot topic right now. "However, a comprehensive and coordinated literature assessment of hierarchical control approaches based on diverse configurations of the microgrid (MG) architecture has been explored relatively little in the past.'' Primary, secondary, and tertiary methods to MG system control are outlined in this suggested method. Primary, secondary and third-tier techniques are examined for each MG structure in a short literature review. In addition, the paper offers the best and worst aspects of current control methods. In addition, a simulation research connected to the literature review's future trends in MG control is offered as a further contribution to this subject. Since renewable energy supplies are intermittent in nature, a hybrid microgrid is needed to minimize overall deficit inadequacies and increase system dependability. This is due to the depletion of natural resources and to the intermittent nature of renewable energy resources. Using a hybrid microgrid, the present distributed and concentrated load situations may be accommodated. In order to better understand how the hybrid microgrid may be integrated, optimized and controlled, there is a growing demand for research. It is necessary to do a thorough evaluation of the performance, efficiency, dependability, security, design flexibility, and cost-effectiveness of a hybrid microgrid. Issues such as AC and DC microgrids integrating into a single hybrid microgrid are discussed in this paper, as well as how to manage renewable energy resources in a cost-effective manner and how to place the optimal number of feeders in a microgrid. There is a quick overview of the primary research fields, with the goal of finding the research gap that may further enhance the grid's performance. ''New hybrid microgrid solutions are being offered in light of current study trends that have been determined to be the most effective and most-friendly." Research, comparative analysis, and further development of new methodologies related to hybrid microgrids will be aided by this study as the foundation for future work
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交直流混合微电网的运行控制与分析。
分布式可再生能源生产使得基于交流、直流和混合mg设计的智能微电网概念更具吸引力(DRE)。鉴于不断增长的人口和最小化负荷的迫切需要,研究有效的控制技术和体系结构解决方案是当前的一个热门话题。“然而,在过去,对基于微电网(MG)结构的不同配置的分层控制方法进行全面和协调的文献评估的研究相对较少。在这个建议的方法中概述了MG系统控制的主要、次要和第三种方法。在一篇简短的文献综述中,对每个MG结构进行了一级、二级和三级技术检查。此外,本文还提供了当前控制方法的优点和缺点。此外,与文献综述中MG控制的未来趋势相关的仿真研究作为对这一主题的进一步贡献。由于可再生能源供应本质上是间歇性的,因此需要混合微电网来最大限度地减少总体赤字不足并提高系统可靠性。这是由于自然资源的枯竭和可再生能源的间歇性。采用混合微电网,可以适应目前的分散负荷和集中负荷情况。为了更好地了解混合微电网如何集成、优化和控制,研究需求日益增长。有必要对混合微电网的性能、效率、可靠性、安全性、设计灵活性和成本效益进行全面评估。本文讨论了交流和直流微电网整合成单一混合微电网的问题,以及如何以具有成本效益的方式管理可再生能源,以及如何在微电网中放置最佳数量的馈线。这里有一个主要研究领域的快速概述,目的是找到可能进一步提高网格性能的研究差距。“根据目前的研究趋势,新的混合微电网解决方案已经被确定为最有效和最友好的解决方案。”研究、比较分析和进一步开发与混合微电网相关的新方法将得到本研究的帮助,作为未来工作的基础
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Operation Control and Analysis of a Hybrid AC/DC Microgrid. Comparison of Power flow Enhancement for varying loads using different Controllers
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