针对可再生微电网的主动耐故障和抗攻击控制,防止电力损失故障和数据完整性攻击
IEEE transactions on cybernetics
|October 3, 2023
概括
本研究介绍了智能微电网的新型故障耐受性控制 (FTC) 和攻击弹性控制 (ARC) 策略. 这些方法提高了可再生能源系统的可靠性和安全性,防止物理故障和网络攻击.
科学领域:
- 网络物理能源系统
- 智能电网技术是一项智能电网技术.
- 实现可再生能源的整合.
背景情况:
- 智能微电网对于下一代电网至关重要,需要提高可靠性,安全性和安全性.
- 现有系统面临物理故障和网络攻击的挑战,影响成本效益和运营完整性.
研究的目的:
- 为智能微电网开发创新的耐故障控制 (FTC) 和抗攻击控制 (ARC) 战略.
- 提高混合可再生能源系统对物理故障和网络攻击的弹性.
- 确保智能微电网与多种分布式发电单元的可靠运行.
主要方法:
- 设计了用于脉冲宽度调制 (PWM) 转换器的新型活性FTC和ARC策略.
- 实施了最佳的模糊增益调度技术,用于对光伏功率损失故障的故障耐受性控制.
- 利用估计的传感器测量用于在网络攻击期间的攻击弹性控制.
- 使用模糊建模集成了一个基于模型的入侵检测和故障诊断 (IDFD) 系统.
主要成果:
- 证明了拟议的FTC战略在适应光伏 (PV) 损耗功率故障方面的有效性.
- 验证了拟议的ARC战略在数据完整性网络攻击期间保持系统完整性的能力.
- 展示了集成IDFD系统在微电网的实时健康状况评估方面的能力.
- 通过在MATLAB/Simulink.进行广泛的模拟来验证拟议的解决方案.
结论:
- 开发的FTC和ARC战略显著提高了智能微电网的可靠性和安全性.
- 集成的IDFD系统为智能微电网提供了有效的实时健康监测.
- 拟议的方法为混合可再生能源系统的物理故障和网络攻击的管理提供了强大的解决方案.
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