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SCALABILITY CONSIDERATIONS IN THE DESIGN OF MICROGRIDS TO SUPPORT SOCIOECONOMIC DEVELOPMENT IN RURAL COMMUNITIES

机译:微电网设计的可扩展性考虑,以支持农村社区的社会经济发展

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The interaction between technology and people is characterized by sociotechnical models. In the context of design, these types of systems are analyzed to increase productivity. The level of productivity is expected to increase as the technology evolves. Still, a lack of focus on adaptive design hinders the success of sociotechnical systems. The problem is evident in the relationship between microgrid technology and the residents of developing communities. An analysis of this type of sociotechnical system is analyzed in this paper. Rural villages in the developing world often lack access to the power grid. However, microgrids can provide electrical power in these locations. Power can be harnessed from renewable resources such as wind, solar, geothermal, and hydropower. Large batteries are used to store energy and buffer the electrical supply with the demand. The system powers security lighting, water pumps, and purification systems. Microgrids also power small machines that sustain agriculture in developing communities. The access to energy uplifts the developing community socially and economically. Still, as the community evolves, energy demand increases and the microgrid is unable to provide sufficient energy. A challenge in microgrid design involves the scalability of the system. Currently, there is no method for adapting the microgrid system to the increases in demand that occur over time. Accordingly, a mathematical framework is needed to support design decisions that could otherwise support adaptability. A demand model to predict the energy use for a composite rural village is presented. The predicted demand requirements are configured using a design optimization simulation model. These configurations are studied, and adaptive design techniques are devised through the process. The outcome of this study identifies a basic design methodology for microgrid design that is cognizant of scalability. Moreover, it identifies key attributes and relationships for the mathematical framework that supports the overarching goal of adaptable design.
机译:技术和人民之间的互动的特点是社会科技模式。在设计的背景下,分析了这些类型的系统以提高生产率。随着技术的发展,预计生产率水平将增加。尽管如此,缺乏对自适应设计的关注阻碍了社会科技系统的成功。在微电网技术与发展社区居民之间的关系中,问题是显而易见的。本文分析了这种类型的社会科技系统的分析。发展中国家的农村村庄往往缺乏电网。然而,微电网可以在这些位置提供电力。可以从风,太阳能,地热和水电等可再生资源利用电力。大电池用于将能量和缓冲电源储存,需求。该系统为安全照明,水泵和净化系统提供动力。微电网还电源在发展社区维持农业的小型机器。能源的获得社会和经济地提升了发展中国家。尽管如此,随着社区的发展,能源需求增加,微电网无法提供足够的能量。微电网设计中的挑战涉及系统的可扩展性。目前,没有用于将MicroGrid系统适应随时间发生的需求的增加。因此,需要数学框架来支持可能支持适应性的设计决策。提出了一种需求模型,以预测复合农村村的能源使用。使用设计优化仿真模型配置预测的需求要求。研究了这些配置,通过该过程设计了自适应设计技术。本研究结果标识了用于微电网设计的基本设计方法,其认识到可扩展性。此外,它标识了支持适应性设计的总体目标的数学框架的关键属性和关系。

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