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Customized converter for cost-effective and DC-fault resilient HVDC Grids

机译:用于成本效益和直流故障弹性HVDC网格的定制转换器

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摘要

This paper presents a comprehensive study that aims to establish the meaningful range for the ratios of fullbridge cells to the total number of cells per arm, in which the performance of the mixed cells modular multilevel converter (MC-MMC) can be customized by trading the number of FB cells for high value features such as: resiliency to DC faults, reduced capital costs of DC circuit breakers (DCCBs) and running costs of the semiconductor, and continued operation. The MC-MMC design for particular ratio of FB cells to total number of cells per arm to achieve tailored features at system level is termed as an customized modular multilevel converter (CMMC). The primary motivation for the CMMC is to facilitate the use of low-cost and relative slow mechanical DC circuit breakers, with fault isolation times in the order of 8 ms to 12.5 ms. With these objectives to be achieved, interruption of power flows across the DC grid and surrounding AC grids must be minimized. It has been found that after certain ratios of FB cells to total cells per arm, the CMMC starts to exhibit current limiting mode, which helps to reduce DCCBs current breaking capacities and extend critical fault clearance times for remote converters from the fault point. Results of the pole-to-ground and pole-to-pole DC faults, semiconductor loss studies, and extended control range indicate that the presented CMMC is promising for future realization of DC grids.
机译:本文呈现了一项综合研究,旨在建立Qualbridge细胞比率的有意义范围,以通过交易来定制混合电池模块化多级转换器(MC-MMC)的性能。用于高价值特征的FB单元数,例如:对直流故障的弹性,降低DC断路器(DCCB)的资本成本(DCCB)和半导体的运行成本,并继续运行。 MC-MMC设计对于特定比率FB细胞以在系统级别实现定制特征的每只臂的每个手臂的总数被称为定制模块化多级转换器(CMMC)。 CMMC的主要动机是为了便于使用低成本和相对慢速机械直流断路器,故障隔离时间为8 ms至12.5ms。通过这些目标可以实现,必须最小化DC电网和周围的AC网格上的功率流动。已经发现,在每只臂的总电池到总电池的某些比率之后,CMMC开始表现出电流限制模式,这有助于降低DCCBS电流断开容量,并从故障点扩展远程转换器的关键故障清除时间。杆面对面和极点直流故障,半导体损耗研究和扩展控制范围的结果表明,所呈现的CMMC是对DC网格的未来实现有望。

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