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Design and analysis of solar PV based low-power low-voltage DC microgrid architectures for rural electrification

机译:农村电气化太阳能光伏基低功耗低压直流微电网架构的设计与分析

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Over 1.3 billion people worldwide primarily in Africa and South-East Asia have no access to electricity. Electrification of these remote rural regions through national power grids is largely unviable low due to i) a high infrastructure cost and ii) limited power generation capacity in many countries. Therefore, low-power, low-voltage, solar photovoltaic (PV) based DC microgrids are becoming very popular in these regions. Many of these low voltage solar powered DC microgrids are based on central generation and central storage with distribution efficiencies typically ranging from 60% to 80%. Therefore, it is important to design better architectures to attain the highest possible efficiency within system constraints. In this work, we analyze three possible distribution architectures and evaluate their operational efficiency with regards to typical spatial village orientations in many developing countries. These include C-Architecture, Cluster-Architectures and O-Architecture with maximum distribution efficiencies of 83.5%, 91.6% and 95.6%, respectively for a typical 40-house village at 24V DC distribution utilizing 10 AWG conductors. Based upon the comparative analysis in this work, an efficient distribution architecture of a village can be proposed in accordance with its orientation (arrangement of houses) to achieve a higher operational efficiency and a reduced upfront cost. This work will typically be useful in the design and implementation of new low-power low-voltage microgrid systems as well as in upgradation of existing microgrid systems to maximize their utility.
机译:主要在非洲和东南亚世界各地超过13亿人无法获得电力。由于i)通过国家电网通过国家电网的电气化在很大程度上是不太低的基础设施成本和II)许多国家的发电能力有限。因此,基于低功耗,低压,太阳能光伏(PV)的直流微电网在这些区域中变得非常受欢迎。这些低压太阳能直流微电网中的许多基于中央生成和中央存储,分配效率范围为60 %至80 %。因此,设计更好的架构以实现系统约束中的最高效率非常重要。在这项工作中,我们分析了三种可能的分销架构,并在许多发展中国家的典型空间村定位方面评估其运作效率。这些包括C-Architecture,Claster-Clasterures和O-架构,分别为83.5 %,91.6 %和95.6 %和95.6 %的最大分布效率,用于使用10个AWG导体的24V DC分布处为典型的40室村。基于这项工作的比较分析,可以根据其定向(房屋的排列)提出一个村庄的有效分配架构,以实现更高的运营效率和降低的前期成本。这项工作通常在新的低功耗低压微电网系统的设计和实现中有用,以及现有微电网系统的升级,以最大限度地提高其实用程序。

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