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Advanced EMT and Phasor-Domain Hybrid Simulation With Simulation Mode Switching Capability for Transmission and Distribution Systems

机译:先进的EMT和相量域混合仿真以及传输和分配系统的仿真模式切换功能

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摘要

Conventional electromagnetic transient (EMT) and phasor-domain hybrid simulation approaches presently exist for transmission system level studies. Their simulation efficiency is generally constrained by the EMT simulation. With an increasing number of distributed energy resources and nonconventional loads being installed in distribution systems, it is imperative to extend the hybrid simulation application to include distribution systems and integrated transmission and distribution systems. Meanwhile, it is equally important to improve the simulation efficiency as the modeling scope and complexity of the detailed system in the EMT simulation increases. To meet both requirements, this paper introduces an advanced EMT and phasor-domain hybrid simulation approach. This approach has two main features: first, a comprehensive phasor-domain modeling and simulation framework which supports positive-sequence, three-sequence, three-phase, and mixed three-sequence/three-phase representations and second, a robust and flexible simulation mode switching scheme. The developed scheme enables simulation switching from hybrid simulation mode back to pure phasor-domain dynamic simulation mode to achieve significantly improved simulation efficiency. The proposed method has been tested on integrated transmission and distribution systems. The results show that with the developed simulation switching feature, the total computational time is significantly reduced compared to running the hybrid simulation for the whole simulation period while maintaining good simulation accuracy.
机译:当前存在用于传输系统级研究的常规电磁暂态(EMT)和相量混合仿真方法。它们的仿真效率通常受到EMT仿真的限制。随着分布式能源资源的增加和配电系统中安装的非常规负载,必须将混合仿真应用程序扩展到包括配电系统以及集成的输配电系统。同时,随着EMT仿真中详细系统的建模范围和复杂性的增加,提高仿真效率也同样重要。为了满足这两个要求,本文介绍了一种先进的EMT和相域混合仿真方法。这种方法具有两个主要特征:首先,一个全面的相量域建模和仿真框架,支持正序,三相,三相和三相/三相混合表示;其次,强大而灵活的仿真模式切换方案。开发的方案使仿真能够从混合仿真模式切换回纯相域动态仿真模式,从而显着提高仿真效率。所提出的方法已经在集成的输配电系统上进行了测试。结果表明,与已开发的混合切换相比,在整个仿真期间运行总仿真时间相比,在保持良好仿真精度的同时,显着减少了总计算时间。

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