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首页> 外文期刊>International Journal of Electrical Power & Energy Systems >Fault-tolerant control of MMCs based on SCDSMs in HVDC systems during DC-cable short circuits
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Fault-tolerant control of MMCs based on SCDSMs in HVDC systems during DC-cable short circuits

机译:直流电缆短路期间基于HVDC系统中SCDSM的MMC的容错控制

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This paper proposes a fault-tolerant control of the high-voltage direct current (HVDC) systems based on modular-multilevel converters (MMC) under DC-cable short-circuit faults, where the MMCs are configured by hybrid scheme of series-connected double submodules (SCDSM) and half-bridge submodules (HBSM). Under faults, the SCDSM-based MMCs are able to control the real and reactive powers, which assists to adjust the fault currents in an allowable range and stabilize the grid voltage. For this operation mode, the SCDSMs are utilized to generate the bipolar output voltages, which are based on the arm current direction. In a converter leg, an arm is operated in the blocked state, while the other arm is controlled in the conducting mode to produce desirable output voltages for regulating the phase currents of the MMC. With this configuration, the SCDSM-based MMCs in the HVDC system still provide the capabilities of fault-current blocking as well as the reactive power compensation. Furthermore, the power loss and investment cost of the MMC based on the SCDSMs are lower than those of the HVDC system based on the MMCs with the hybrid SMs and clamp double SMs (CDSM). Simulation results for 400 MW-320 kV HVDC system are presented to verify the proposed control scheme and the fundamental operation of the MMC based on the SCDSMs is proved by experimental results for a resealed prototype in laboratory.
机译:本文提出了一种基于模块化多电平转换器(MMC)的直流电缆短路故障下的高压直流(HVDC)系统的容错控制,其中MMC由串联双回路的混合方案配置子模块(SCDSM)和半桥子模块(HBSM)。发生故障时,基于SCDSM的MMC能够控制有功功率和无功功率,从而有助于在允许范围内调整故障电流并稳定电网电压。对于此工作模式,利用SCDSM生成双极性输出电压,该电压基于臂电流方向。在转换器分支中,一个臂在阻塞状态下工作,而另一臂在导通模式下受到控制,以产生理想的输出电压,以调节MMC的相电流。通过这种配置,HVDC系统中基于SCDSM的MMC仍可提供故障电流阻断和无功功率补偿的功能。此外,基于SCDSM的MMC的功率损耗和投资成本要低于基于具有混合SM和钳位双SM的MMC的HVDC系统的功率损耗和投资成本。给出了400 MW-320 kV高压直流输电系统的仿真结果,以验证所提出的控制方案,并通过实验室重新密封的原型的实验结果证明了基于SCDSM的MMC的基本操作。

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