使用太阳能光伏和基于微型轮的风能系统的分布式电力系统的设计,配有飞轮储能系统
Tharinaematam Bhavani1, Durgam Rajababu1, Md Mujahid Irfan1
1Department of Electrical and Electronics Engineering, SR University, Warangal, 506371, India.
Scientific reports
|December 1, 2025
概括
这项研究介绍了一种使用太阳能,风能和飞轮储能来提供可靠,可持续的电力的混合微电网系统. 模糊逻辑控制器提高了系统的稳定性和效率,优于传统方法.
科学领域:
- 电气工程 电气工程
- 可再生能源系统可再生能源系统
- 控制系统 控制系统
背景情况:
- 微电网系统对于分布式发电至关重要,集成太阳能光伏 (PV) 和风能等可再生能源.
- 储能对于电网的稳定性至关重要,特别是在停电或波动期间,滑轮为电池提供了可持续的替代方案.
- 现有的控制方法与混合系统的复杂动态作斗争,需要先进的控制策略.
研究的目的:
- 介绍一个新的设计方法,用于混合微电网系统集成太阳能光伏,微风力轮和飞轮储能.
- 开发和实施一个模糊逻辑控制器 (FLC) 用于动态能源管理和控制混合微电网中的直流-直流转换器.
- 确保分散发电的提高效率,弹性和稳定性.
主要方法:
- 混合微电网系统的设计,包括太阳能光伏,风力轮和飞轮储能系统.
- 开发用于先进能源管理的模糊逻辑控制器 (FLC),包括源优先级,电源质量调节和存储控制.
- 对FLC与传统PID控制器进行动态响应和功率质量的比较分析.
主要成果:
- 拟议的混合微电网系统显示出高可靠性,快速响应时间 (毫秒),以及适合去中心化操作.
- 与PID控制器相比,FLC有效地管理实时能量流,处理非线性条件,并提供优越的电压/频率调节.
- FLC显著降低了输出波纹,从而提高了电源质量和优化了能源利用.
结论:
- 新型混合微电网设计与FLC为分布式发电提供了可持续和弹性解决方案.
- 像FLC这样的先进控制策略对于管理混合可再生能源系统的复杂性至关重要.
- 这项研究有助于推进微电网技术,支持向可持续能源基础设施的过渡.
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