Dynamic Power Control In Utility-Connected Microgrids: A Back To Back Converter Approach For Efficient Integration Of Solar And Wind Energy

L. Nadam,, Dr.M. Chakravarthy,, Dr.M. Manjula
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Abstract

This research directs the imperative need for robust power management and control in utility-connected microgrids featuring solar and wind energy sources. The suggested method employs back to back converters for precise control on the transfer of both active and reactive power between the microgrid and the utility. The new control strategy operates in two states, effectively sharing power among the utility and the microgrid. An innovative arrangement among DGs ensures seamless load sharing in both grid-connected (GCM) and islanded modes (IM). The back-to-back converters provide complete frequency isolation, protecting the microgrid from voltage or frequency fluctuations from the utility side. The study introduces synchronized relay-breaker operation during faults, along with disabling back to back converters, ensuring smooth resynchronization after fault clearance. System stability is confirmed under different load changes. The proposed control setup proves resilient to changes in grid-side voltage and frequency, ensuring a stable and reliable power-sharing mechanism under various operating conditions. Simulations conducted in MATLAB/SIMULINK validate the efficacy of the proposed control strategy, highlighting its ability to enhance the stability and reliability of utility-connected microgrids incorporating solar and wind energy sources. This study contributes to advancing sustainable energy solutions, advocating for resilient and eco-friendly power systems.Top of Form.
市电连接微电网中的动态功率控制:高效整合太阳能和风能的背靠背转换器方法
这项研究表明,在以太阳能和风能为特色的公用事业连接微电网中,亟需稳健的电力管理和控制。所建议的方法采用背靠背转换器,以精确控制微电网与市电之间有功和无功功率的传输。新的控制策略在两种状态下运行,有效地实现了电力公司和微电网之间的电力共享。DG 之间的创新安排确保了并网模式(GCM)和孤岛模式(IM)下的无缝负载分担。背靠背变流器可提供完全的频率隔离,保护微电网免受来自市电侧的电压或频率波动的影响。研究引入了故障期间的同步继电器断路器操作,同时禁用背靠背变流器,确保故障排除后的平稳再同步。在不同的负荷变化下,系统稳定性得到了证实。事实证明,所提出的控制设置能够适应电网侧电压和频率的变化,确保在各种运行条件下建立稳定可靠的电力共享机制。在 MATLAB/SIMULINK 中进行的仿真验证了所提出的控制策略的有效性,突出了其增强包含太阳能和风能的公用事业并网微电网的稳定性和可靠性的能力。这项研究有助于推进可持续能源解决方案,倡导弹性和生态友好型电力系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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