埃塞俄比亚阿姆哈拉地区农村电气化微电网电力系统优化设计可行性研究

A. Abebe, A. Pushparaghavan, Edmealem Gedefaye
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引用次数: 0

摘要

电力系统是近年来发展起来的一个重要的能源领域,它将水力、热能、太阳能、风能等自然资源转化为电能。它通过输电和配电网络将产生的电力输送给消费者。传统的电力系统存在着输配网功率损耗大、电能质量和可靠性差、最终不环保等问题。这些问题都可以通过使用微电网来解决,微电网将通过整合和优化不同的可再生能源,以改善电力质量、可靠性和最小损耗的方式经济地向消费者提供电力。本研究的主要目的是实现微电网的最优供电和可行性设计。基于微电网电力系统的这一目标,该研究已扩展到提供电力,以满足埃塞俄比亚巴希尔达尔镇的位置,特别是农村电气化作为一个模型,通过提高电力质量、可靠性和最小的输电/配电线路损耗,为内陆村庄Abay Mado-Gedro kebele小学、卫生站和当地社区提供电力。微电网由太阳能、风能和电池存储资源组成。它被设计成在独立操作模式下运行。微电网各组成部分的优化设计和规模是本研究工作的主要贡献,以研究作为农村电气化模式的村电。因此,通过使用HOMER优化工具进行分析和设计,在考虑太阳辐射、温度、风速等各种环境参数的情况下,最优功率场地的总耗电量为25 kWh /天,峰值为6 kW。根据最优的电力能耗计算得出,所需的各种电力资源为7 kW的光伏发电、3 kW的风力发电、104 kWh的蓄电池和6 kW的变流器,总投资为75993美元。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Study on Optimal Design Feasibility of Microgrid Power System for Rural Electrification: Amhara Region in Ethiopia
Power system is an essential energy domain in recent years which helps to converts non-electrical energy resources, such as hydraulic, thermal, solar, wind and other natural resources to electrical energy. It conveys the generated power to the consumers via transmission and distribution networks. The conventional power system has many problems, which are significant power loss at the transmission and distribution networks, poor power quality and reliability, and ultimately it is not an environmental friendly. These problems are resolved by using a microgrid which will provide electricity to the consumer economically with improved power quality, reliability, and minimum loss by integrating and optimizing different renewable energy sources. The main objective of this research study is to enable the optimal power provision and feasibility to design a microgrid. Based on this objective of Micro grid power system, the study has extended to deliver electricity to satisfy the location of Ethiopia, Bahir Dar Town, specifically the rural electrification as a model for the interior village Abay Mado-Gedro kebele primary school, health post and local communities demand by enhancing the power quality, reliability and minimum transmission / distribution line losses. The microgrid consists of solar, wind and battery storage sources. It is designed to operate in stand-alone mode of operation. Optimum designing and sizing of different components of the microgrid is taken as major contributions of this research work to the study for the Village Gedro as a rural electrification model. Hence it is observed through the analysis and design using HOMER Optimization tool, the total power consumptions for the site of optimal power is 25 kWh / day and 6 kW peak with the consideration of various environmental parameters like solar radiation, temperature and wind speed. Based on the optimal power energy consumption resulted out that the required various power resources are 7 kW Photo-Voltaic (PV), 3 kW Wind turbine, 104 kWh storage battery and 6 kW converter with the total investment cost $ 75993.
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