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Adaptive Integrated Coordinated Control Strategy Based on Sliding Mode Control for MMC-MTDC

机译:基于MMC-MTDC滑模控制的自适应综合协调控制策略

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Traditional double closed-loop PI control and DC voltage-active power droop control are suitable for the modular multilevel converter based Multi terminal flexible DC transmission system (MMC-MTDC). However, due to the strong nonlinearity of the system and the fixed droop coefficient, the system has poor stability under transient conditions, which is prone to full load. In order to improve the response speed and stability of the system, an adaptive integrated coordinated control strategy based on sliding mode theory is proposed. The strategy adopts a double closed loop cascade control structure, the outer-loop controller performs adaptive droop control based on the comparison of the MMC real-time power margin with the power reference command, and the inner-loop controller is designed based on a sliding film variable structure with current error as the sliding film plane. The simulation model of MMCMTDC direct current transmission system was built in PSCAD/EMTDC. The simulation results of the proposed control strategy show that the control strategy can effectively avoid the full load margin of the system when the MMC is small, and the strategy also can improve the adaptability and dynamic performance of the system compared with the traditional control strategy.
机译:传统的双闭环PI控制和直流电压 - 主动功率下垂控制适用于基于模块化多电平转换器的多端子柔性直流传输系统(MMC-MTDC)。然而,由于系统的强烈非线性和固定的下垂系数,该系统在瞬态条件下具有差的稳定性,这易于满载。为了提高系统的响应速度和稳定性,提出了一种基于滑模理论的自适应综合协调控制策略。该策略采用双闭环级联控制结构,外环控制器基于MMC实时功率裕度与功率参考命令的比较执行自适应下垂控制,并且基于滑动设计内环控制器薄膜可变结构具有电流误差作为滑动膜平面。 PSCAD / EMTDC建立了MMCMTDC直流传输系统的仿真模型。所提出的控制策略的仿真结果表明,当MMC小时,控制策略可以有效避免系统的全负负载余量,与传统的控制策略相比,该策略还可以提高系统的适应性和动态性能。

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