智能5Grid解决方案,用于在大规模的可再生能源透环境中提高电网可观测性和可管理性
Daniel Shangov1, Krassimir Vlachkov1, Ralitsa Rumenova2
1Project Management, Elektroenergien Sistemen Operator (ESO EAD), Sofia, Bulgaria.
Open research Europe
|September 28, 2023
概括
智能5Grid开放实验平台 (OEP) 尽量减少使用分布式可再生能源资源的电网延迟. 实验结果显示,5G支持的解决方案提供与有线系统相比较的延迟,提高了电网可观测性和可管理性.
科学领域:
- 电气工程 电气工程
- 计算机网络 计算机网络.
- 可再生能源系统可再生能源系统
背景情况:
- 分布式可再生能源 (DRER) 越来越多地融入电网,需要先进的通信解决方案来改善控制和监控.
- 现有的电网基础设施在管理与DRERs相关的动态性质和双向电力流方面面临挑战.
- 视野2020智能5Grid项目开发了一个开放的实验平台 (OEP),利用5G能力来应对这些挑战.
研究的目的:
- 评估Smart5Grid开放实验平台 (OEP) 对电网应用的延迟最小化潜力.
- 证明OEP对分布式可再生能源发电的增强可观察性和可管理性的贡献.
- 提供5G支持解决方案在智能电网环境中的性能的实验证据.
主要方法:
- 开发和部署Smart5Grid开放试验平台 (OEP).
- 实施两项试点演示:使用5G虚拟相位数据集中器 (vPDC) 的毫秒级精确分布生成控制和实时广域监控 (WAM).
- 使用特定的软件,方法和实验测试台来测量OEP延迟性能.
主要成果:
- 实验数据证实,OEP的延迟时间与已建立的有线通信系统相美.
- OEP在精确的分布式发电控制和实时广域监控方面表现出有效性.
- 该平台提供固有的灵活性,可扩展性和模块化,以及高可用性和可靠性.
结论:
- 智能5Grid OEP提供了一种可行的支持5G的解决方案,用于降低具有高DRER透率的电网中的延迟.
- 该平台通过提高可观测性和可管理性来增强电网智能化,这对于整合可再生能源至关重要.
- 来自试点演示的公开可访问数据支持在智能电网中验证和进一步开发5G应用程序.
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