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Robust Control Design of MMC-HVDC Systems Using Multivariable Optimal Guaranteed Cost Approach

机译:使用多变量最优保证成本方法MMC-HVDC系统的鲁棒控制设计

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The modular multilevel converter (MMC) represents the important technological innovation that emerged among the diverse available topologies of voltage source converter and is avowedly the most suitable solution for converters in high voltage direct current (HVDC) transmission and multiterminal direct current grids. Special focus is given through this paper to the dynamic performance of an MMC-based, point-to-point HVDC system. Using an optimal guaranteed cost control theory, a robust control approach is designed in order to reject the impact of the unmodeled uncertainty, mainly in the ac side of the MMC. For this aim, a small-signal state-space linear model is derived for the control design of an advanced local controller of each MMC station. Furthermore, a new optimal guaranteed cost controller is proposed based on the convex optimization problem using linear matrix inequality optimization approach. The proposed strategy leads to regulate simultaneously the ac grid and differential currents as well as total stored energy per phase in abc frame. To ensure the energy balancing between upper and lower arm per phase, an outer control loop is used in order to control the energy difference per phase between upper and lower arms of MMC. For the MMC linked to HVDC system, the active power reference is generated through an outer classical dc voltage controller. This combined control strategy between classic and advanced robust regulation methods allows exploiting the advantages of both control methods. Effectiveness of the proposed optimal robust control strategy for point-to-point MMC-HVDC system is evaluated across accurate and skillful simulation study under MATLAB/SimPowerSystem environment. The simulation results convince satisfactory dynamics responses of a two-terminal MMC-HVDC system based on the robust control approach under various operating conditions, even under unbalanced ac grid conditions (e.g., asymmetrical fault).
机译:模块化多级转换器(MMC)代表了电压源转换器的多样化拓扑中出现的重要技术创新,并且在高压直流(HVDC)传输和多端子直流网格中的转换器提供了最合适的解决方案。通过本文通过本文给出了特殊焦点,以便对MMC的点对点HVDC系统的动态性能进行了动态性能。使用最佳保证成本控制理论,设计了一种强大的控制方法,以拒绝未确定的不确定性的影响,主要是在MMC的AC侧。为此目的,为每个MMC站的高级本地控制器的控制设计导出了一个小信号状态空间线性模型。此外,使用线性矩阵不等式优化方法基于凸优化问题提出了一种新的最佳保证成本控制器。所提出的策略导致同时调节ABC帧每相的AC电网和差动电流以及每相的总存储的能量。为了确保每相之间的上臂和下臂之间的能量平衡,使用外部控制回路,以便在MMC的上臂之间控制每个相之间的能量差。对于连接到HVDC系统的MMC,通过外部经典直流电压控制器产生有源功率参考。经典和先进的强大规则方法之间的这种组合控制策略允许利用控制方法的优点。在Matlab / SimPowersysystem环境下的准确和熟练的仿真研究,评估了拟议的最佳稳健控制策略的有效性。仿真结果说服了基于各种操作条件下的鲁棒控制方法的双端MMC-HVDC系统的令人满意的动力响应,即使在不平衡的AC网格条件下(例如,不对称故障)。

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