基于进化算法的FOPID控制器对常规能源和可再生能源的潮流和电网频率进行最优控制

IF 5.9 Q2 ENERGY & FUELS
Debodyuti Upadhaya , Soumen Biswas , Susanta Dutta , Anagha Bhattacharya
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引用次数: 0

摘要

电力系统中最优潮流(OPF)的主要目标是最小化燃料费用,同时解决几个关键因素,包括减少传输损耗、最小化电压变化和提高整体系统稳定性。随着能源格局的演变,将可再生能源(RES)并入电网变得越来越重要。本文通过与其他两种进化算法的综合研究,对包括RES在内的自动生成控制进行研究,以实现成本优化,突出GZA算法的优势。这项研究的重点是在一个放松管制的环境中整合可再生能源(特别是太阳能、风能和电动汽车)的三区域系统。虽然这些能源可以显著降低与火力发电厂相关的燃料成本,但它们也带来了新的挑战。具体来说,可再生能源的可变性和不可预测性会导致由于负载惯性变化导致的频率偏差增加。这种频率偏差会破坏电力系统的同步,潜在地损害稳定性和可靠性。仿真结果中对实现LFC的频率偏差进行了详细的研究,强调了超调、欠调和稳态稳定性等性能指标。对传统PID和FOPID控制器在控制频率偏差方面的有效性进行了评估。LFC确保电力系统的频率保持在可接受的范围内,特别是在不同区域可能经历不同负载和发电能力的多区域系统中。有效的频率控制是维持发电和用电平衡的关键,对电网的平稳运行至关重要。这种创新的方法旨在通过有效管理可再生能源与传统火力发电相结合所引入的动态来加强频率调节。研究结果旨在证明进化算法GZA在提高具有不同发电源的多区域电力系统整体性能方面的有效性。通过深入了解先进控制策略的好处,本研究引入了一种同时最小化成本和管理频率偏差的新方法,标志着该领域的重大进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal power flow and grid frequency control of conventional and renewable energy source using evolutionary algorithm based FOPID controller
The primary objective of optimal power flow (OPF) in power systems is to minimize fuel expenses while simultaneously addressing several critical factors,including reducing transmission losses, minimizing voltage variations, and enhancing overall system stability. As the energy landscape evolves, the integration of renewable energy sources (RES) into the power grid has become increasingly important. In this research article, a study of Automatic Generation Control including RES to achieve cost optimization highlighting the advantages of GZA algorithm through a comprehensive study with other two evolutionary algorithm has been done. The research focuses on a three-area system integrating renewable energy sources – specifically solar, wind, and electric vehicles (EVs) – within a deregulated environment. While these sources can significantly reduce fuel costs associated with thermal power plants, they also introduce new challenges. Specifically, the variability and unpredictability of renewable energy can lead to increased frequency deviations due to changes in load inertia. This frequency deviation can disrupt the synchronization of the power system, potentially compromising stability and reliability. Detail study has been done in the simulation results for frequency deviation to achieve LFC, emphasizing performance metrics like overshoot, undershoot, and steady-state stability. Both traditional PID and FOPID controllers were evaluated for their effectiveness in managing frequency deviations.LFC ensures that the frequency of the power system remains within acceptable limits, particularly in a multi-area system where different regions may experience varying loads and generation capabilities. Effective frequency control is essential for maintaining the balance between generation and consumption, which is vital for the smooth operation of the grid. This innovative approach aims to enhance frequency regulation by effectively managing the dynamics introduced by the incorporation of renewable energy sources alongside traditional thermal power generation. The findings aim to demonstrate the effectiveness of the evolutionary algorithm GZA in enhancing the overall performance of multi-area power systems with diverse generation sources. By providing insights into the benefits of advanced control strategies, this study has been introduced a novel approach to simultaneously minimize costs and manage frequency deviations, marking a significant advancement in the field.
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来源期刊
Renewable Energy Focus
Renewable Energy Focus Renewable Energy, Sustainability and the Environment
CiteScore
7.10
自引率
8.30%
发文量
0
审稿时长
48 days
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