远程通信站光伏/风力混合发电系统优化

Subodh Paudel, J. Shrestha, Fernando Buarque de Lima-Neto, Jorge A. F. Ferreira, Muna Adhikari
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引用次数: 64

摘要

矿物燃料资源的迅速枯竭和对环境的关切使人们认识到可再生能源的产生。在各种可再生能源中,混合太阳能和风能似乎是有前途的解决方案,可以提供可靠的电力供应,提高系统效率,降低单机应用的存储要求。本文介绍了在尼泊尔纬度(27°23′50″)和经度(86°44′23″)的远程电信站建立独立的太阳能/风能混合发电系统(HSWPS)的可行性评估和最佳尺寸,该系统由极小孔径终端(VSAT)、中继站和码分多址基站(CDMA 2C10 BTS)的电信负载组成。在任何基于RES的系统中,可行性评估都被认为是第一步分析。在这项工作中,通过可再生电力混合优化模型(HOMER)进行可行性分析,并在MATLAB环境中实现数学模型,以可靠性和平准化单位电力成本(LUCE)定义的成本函数值最小的一组系统组件,对给定负载和期望的供电损失概率(LPSP)进行最优配置。对现有模型和所提模型的仿真结果进行了比较。仿真结果表明,由6.12 kW KC85T光伏组件、1kW H3.1风力发电机组和1600 Ah ggm -800蓄电池组组成的现有体系,一年的未满足负荷为36.6%。另一方面,该系统包括1kW∗2 H3.1风力发电机,8.05 kW TSM-175DA01光伏组件和1125 Ah T-105电池组,系统可靠性为99.99%,显著降低了成本并可靠地生产能源。
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Optimization of hybrid PV/wind power system for remote telecom station
The rapid depletion of fossil fuel resources and environmental concerns has given awareness on generation of renewable energy resources. Among the various renewable resources, hybrid solar and wind energy seems to be promising solutions to provide reliable power supply with improved system efficiency and reduced storage requirements for stand-alone applications. This paper presents a feasibility assessment and optimum size of photovoltaic (PV) array, wind turbine and battery bank for a standalone hybrid Solar/Wind Power system (HSWPS) at remote telecom station of Nepal at Latitude (27°23′50″) and Longitude (86°44′23″) consisting a telecommunication load of Very Small Aperture Terminal (VSAT), Repeater station and Code Division Multiple Access Base Transceiver Station (CDMA 2C10 BTS). In any RES based system, the feasibility assessment is considered as the first step analysis. In this work, feasibility analysis is carried through hybrid optimization model for electric renewables (HOMER) and mathematical models were implemented in the MATLAB environment to perform the optimal configuration for a given load and a desired loss of power supply probability (LPSP) from a set of systems components with the lowest value of cost function defined in terms of reliability and levelized unit electricity cost (LUCE). The simulation results for the existing and the proposed models are compared. The simulation results shows that existing architecture consisting of 6.12 kW KC85T photovoltaic modules, 1kW H3.1 wind turbine and 1600 Ah GFM-800 battery bank have a 36.6% of unmet load during a year. On the other hand, the proposed system includes 1kW ∗2 H3.1 Wind turbine, 8.05 kW TSM-175DA01 photovoltaic modules and 1125 Ah T-105 battery bank with system reliability of 99.99% with a significant cost reduction as well as reliable energy production.
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