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首页> 外文期刊>IEEE Transactions on Power Delivery >Operating Region of Modular Multilevel Converter for HVDC With Controlled Second-Order Harmonic Circulating Current: Elaborating P-Q Capability
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Operating Region of Modular Multilevel Converter for HVDC With Controlled Second-Order Harmonic Circulating Current: Elaborating P-Q Capability

机译:具有受控二阶谐波循环电流的HVDC模块化多电平转换器的工作区域:完善的P-Q功能

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摘要

The operating region of the modular multilevel converter (MMC) is limited by the maximum-allowable voltage ripple of cells, which is associated with the arm energy variation. Injecting the controlled second-order harmonic component into the circulating current can reduce energy variation of the arm and, thus, extend the operating region of MMC. Care must be taken, however, that the second-order circulating current affects the arm current, and inappropriately injected harmonic current may cause an undesirable arm current polarity change. Therefore, this paper first investigates and proposes the maximum-allowable second-order circulating current for extending the operating region reliably and efficiently. The active and reactive power capability of MMC is further elaborated and illustrated in line with the maximum excess energy capability for two cases, running with: 1) the original operating region and 2) the extended operating region. Finally, the - diagrams for contingent operating conditions with faulty or disabled submodules are presented. Understanding the unique shape and change of - capability with credible submodule failure contingency should be crucial for planning MMC-HVDC lines, and determining the energy requirements and the level of redundancy in submodules properly in order to achieve the envisioned benefits of the new HVDC. The efficacy and accuracy of the research findings are validated for the MMC-HVDC system using PSCAD/EMTDC.
机译:模块化多电平转换器(MMC)的工作区域受到单元的最大允许电压纹波的限制,该纹波与臂能量的变化有关。将受控的二次谐波分量注入到循环电流中可以减少臂的能量变化,从而扩展MMC的工作范围。但是,必须注意,二次循环电流会影响臂电流,并且注入不适当的谐波电流可能会导致臂电流极性发生不良变化。因此,本文首先研究并提出了可靠而有效地扩展工作区域的最大允许二阶循环电流。 MMC的有功和无功功率能力将根据两种情况下的最大过剩能量能力进行进一步阐述和说明:1)原始运行区域,2)扩展运行区域。最后,给出了带有故障或禁用子模块的或有工况的-图。了解可靠的子模块故障突发事件的能力的独特形状和变化对于计划MMC-HVDC线路,正确确定子模块的能源需求和冗余水平以实现新HVDC的预期效益至关重要。使用PSCAD / EMTDC的MMC-HVDC系统验证了研究结果的有效性和准确性。

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