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Advanced LVDC Electrical Power Architectures and Microgrids:A Step toward a New Generation of Power Distribution Networks

机译:先进的LVDC电力架构和微电网:迈向新一代配电网络的一步

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摘要

Current trends indicate that worldwide electricity distribution networks are experiencing a transformation towards direct-current (DC) at both generation and consumption level. This tendency is powered by the outburst of various electronic loads and, at the same time, with the struggle to meet the high set goals for share of renewable energy sources (RESs) in satisfying total demand. RESs operate either natively at DC or have a DC link in the heart of their power electronic interface, whereas the end point connection of electronic loads, batteries and fuel cells is exclusively DC. Therefore, merging these devices into dedicated DC distribution architectures through corresponding DC-DC converters arises as an attractive option not only in terms of enhancing efficiency due to reduction of conversion steps, but also for having power quality independence from the utility mains. These kinds of systems generally provide improved reliability in comparison to their alternating current (AC) counterparts since the number of active elements in DC-DC power electronic devices is smaller than in DC-AC converters. Besides that, control design in DC systems is significantly simpler since there are no reactive and harmonic power flows or problems with synchronization.
机译:当前的趋势表明,全球的配电网络正在发电和消费水平上都向直流电(DC)转变。这种趋势是由各种电子负载的爆发推动的,与此同时,为了满足可再生能源(RES)在满足总需求中所占份额的既定目标而奋斗。 RES本身以直流电运行,或者在其电力电子接口的心脏具有直流链路,而电子负载,电池和燃料电池的端点连接完全是直流电。因此,不仅通过减少转换步骤来提高效率,而且还具有与市电无关的电能质量,通过相应的DC-DC转换器将这些设备合并到专用的DC分配体系结构中成为一种有吸引力的选择。与直流电(AC)相比,这类系统通常提供更高的可靠性,因为DC-DC电力电子设备中的有源元件数量少于DC-AC转换器中的有源元件数量。除此之外,由于不存在无功和谐波功率流或同步问题,因此直流系统的控制设计非常简单。

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