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Optimized network planning of mini-grids for the rural electrification of developing countries

机译:为发展中国家的农村电气化优化的小型电网网络规划

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摘要

1.2 billion people, predominantly living in remote rural regions in countries of the Global South, currently live without access to any modern source of energy. Options for electrification of these communities include extending existing national grid infrastructure, deploying mini-grids, and installing standalone home systems (SHS). Deriving the most cost effective means of delivering energy to these consumers is a complex, multidimensional problem that normally requires determination on a case-by-case basis. However, optimization of the network planning may help to maximize the socio-economic return of the installed energy system. This paper presents an optimization process that minimizes the installation cost of a mix of generation sources for a rural mini-grid using a multi-objective particle swarm optimization (MOPSO) technique. Minimizing the cost of distribution layout is first formulated as a capacitated minimum spanning tree (CMST) problem and solved using the Esau-Williams method. Multiple cable sizes and source locations are then added to create a multi-level capacitated minimum spanning tree (MLCMST) problem, solved via a Genetic Algorithm (GA) employing Prim-Pred encoding. The method is applied to a case study village in India.
机译:目前,有12亿人主要生活在全球南方国家的偏远农村地区,他们目前无法获得任何现代能源。这些社区的电气化选择包括扩展现有的国家电网基础设施,部署小型电网以及安装独立的家庭系统(SHS)。寻求最经济有效的向这些用户输送能量的方法是一个复杂的多维问题,通常需要根据具体情况进行确定。但是,网络规划的优化可能有助于最大化已安装能源系统的社会经济回报。本文提出了一种优化过程,该过程使用多目标粒子群优化(MOPSO)技术将农村微型电网的混合发电源的安装成本降至最低。首先将最小化配电布局的成本公式化为有能力的最小生成树(CMST)问题,然后使用Esau-Williams方法解决。然后添加多种电缆尺寸和信号源位置,以创建多级容量最小生成树(MLCMST)问题,该问题可通过采用Prim-Pred编码的遗传算法(GA)解决。该方法应用于印度的一个案例研究村。

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