连接两个极弱电网的 B2B 高压直流系统的综合分析与稳定(考虑功率前馈补偿的影响

IF 5 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE open journal of power electronics Pub Date : 2024-01-26 DOI:10.1109/OJPEL.2024.3358818
Hassanien Ramadan A. Mohamed;Yasser Abdel-Rady I. Mohamed
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引用次数: 0

摘要

背靠背 (B2B) 高压直流系统可提高跨区域输电能力和整个电力系统的稳定性。然而,将其用于两个极弱电网的互联可能会损害系统稳定性。本文对 B2B HVDC 系统进行了全面的稳定性分析,以区分不稳定机制的根本原因,并在考虑直流母线电压控制器功率前馈补偿影响的情况下,确定逆变器和整流器运行时每个换流站的临界短路比 (CSCR)。研究还探讨了当直流输电线路连接换流站,形成点对点 (P2P) 高压直流系统时,稳定性的影响和 CSCR 的变化。基于详细小信号建模的特征值分析表明,高频、低频和中频不稳定性这三种不同的不稳定机制会在极弱电网条件下影响 VSC 站的运行。值得注意的是,P2P 高压直流系统在逆变器运行期间观察到的中频不稳定性主要是由直流母线电压控制器的功率前馈补偿引起的。此外,分析表明,直流母线电压控制型 VSC 站的 CSCR 比功率控制型高。这表明,在弱电网情况下,直流母线电压控制型 VSC 比功率控制型 VSC 更容易出现不稳定。我们根据参与因子分析设计了有源补偿器,以缓解已发现的不稳定性。研究结果通过大量模拟和实时硬件在环测试得到验证,证明了分析的准确性和所建议补偿器的功效。
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Comprehensive Analysis and Stabilization of a B2B HVDC System Connecting Two Extremely Weak Grids Considering the Impact of Power Feedforward Compensation
Back-to-Back (B2B) HVDC systems can enhance cross-regional transmission capacity and overall power system stability. However, their use in interconnecting two extremely weak grids can compromise system stability. This paper presents a comprehensive stability analysis of a B2B HVDC system to distinguish the root causes of instability mechanisms and identify the critical short circuit ratio (CSCR) of each converter station under inverter and rectifier operations considering the impact of power feedforward compensation of the dc-bus voltage controller. The study also investigates the stability implications and CSCR changes when a dc transmission line connects the converter stations, creating a point-to-point (P2P) HVDC system. Eigenvalue analysis, based on detailed small-signal modeling, showed that three distinct instability mechanisms, high-, low-, and medium-frequency instabilities, can compromise the operation of VSC stations under extremely weak grid conditions. Notably, the medium-frequency instability observed in the P2P HVDC system during inverter operation is predominantly caused by the power feedforward compensation of the dc-bus voltage controller. Furthermore, the analysis reveals that the CSCRs for dc-bus voltage-controlled VSC stations are higher in comparison to power-controlled ones. This suggests that a dc-bus voltage-controlled VSC is more susceptible to instability in weak grid scenarios than its power-controlled counterpart. Active compensators are designed based on participation factor analysis to mitigate the identified instabilities. The findings are validated with extensive simulations and real-time hardware-in-the-loop tests, demonstrating the analysis's accuracy and the proposed compensators' efficacy.
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