优化撒哈拉以南非洲的新型风力涡轮机:技术经济和多标准评估

IF 4.3 3区 工程技术 Q2 ENERGY & FUELS
Kehinde A. Adeyeye, Nelson Ijumba, Jonathan S. Colton
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引用次数: 0

摘要

风能已成为全球可再生能源结构的主要贡献者,但由于风速低和传统水平轴风力涡轮机(HAWTs)的局限性,撒哈拉以南非洲(SSA)的大部分地区仍未得到充分利用。本研究探讨了一种新型的低风条件下优化的摩天轮风力涡轮机(FWT)的性能和经济可行性。在卢旺达、尼日利亚、坦桑尼亚、纳米比亚和摩洛哥这五个具有代表性的非洲国家,对三种额定功率为800千瓦、轮辋直径分别为200、240和341英尺的FWT配置进行了评估。利用NASA POWER数据库中的1年(2024年)风数据和设计特定的功率曲线,该研究模拟了容量因子(CF)、平准化电力成本(LCOE)、运行风日数和结构质量。考虑轮缘尺寸、风力资源适应性、运行性能和结构可行性,进行了多准则权衡分析。结果表明,341英尺的设计在能源产量和成本效益方面始终优于较小的变体,其lcoe低于卢旺达以外所有国家的国家电价。240英尺的设计在中等风力地区提供了性能和资本成本之间的良好平衡,而200英尺的设计由于低输出和高LCOE而通常不适合。这些发现强调了将涡轮机配置与现场特定风力条件和结构约束相匹配的重要性。通过为低风速环境提供具有电网竞争力和技术可行性的解决方案,风力发电机组,特别是大型配置的风力发电机组,在扩大南撒哈拉地区风能部署方面具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Optimizing a Novel Wind Turbine for Sub-Saharan Africa: A Techno-Economic and Multicriteria Evaluation

Optimizing a Novel Wind Turbine for Sub-Saharan Africa: A Techno-Economic and Multicriteria Evaluation

Wind energy has emerged as a key contributor to the global renewable energy mix, yet much of sub-Saharan Africa (SSA) remains underutilized due to predominantly low wind speeds and the limitations of conventional horizontal-axis wind turbines (HAWTs). This study investigates the performance and economic viability of a novel Ferris-wheel wind turbine (FWT) optimized for low-wind conditions. Three FWT configurations, each rated at 800 kW with rim diameters of 200, 240, and 341 ft, were evaluated across five representative African countries: Rwanda, Nigeria, Tanzania, Namibia, and Morocco. Using 1-year (2024) wind data from the NASA POWER database and design-specific power curves, the study models capacity factor (CF), levelized cost of electricity (LCOE), operational wind days, and structural mass. A multicriteria trade-off analysis considering rim size, wind resource adaptability, operational performance, and structural feasibility was conducted. Results show that the 341 ft design consistently outperforms the smaller variants in energy yield and cost-effectiveness, achieving LCOEs below national electricity tariffs in all countries except Rwanda. The 240 ft design offers a favorable balance between performance and capital cost in moderate-wind locations, while the 200 ft design is generally unsuitable due to low output and high LCOE. These findings highlight the importance of matching turbine configuration to site-specific wind conditions and structural constraints. FWTs, particularly larger configurations, hold strong potential to expand wind energy deployment in SSA by offering grid-competitive and technically viable solutions for low-wind-speed environments.

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来源期刊
International Journal of Energy Research
International Journal of Energy Research 工程技术-核科学技术
CiteScore
9.80
自引率
8.70%
发文量
1170
审稿时长
3.1 months
期刊介绍: The International Journal of Energy Research (IJER) is dedicated to providing a multidisciplinary, unique platform for researchers, scientists, engineers, technology developers, planners, and policy makers to present their research results and findings in a compelling manner on novel energy systems and applications. IJER covers the entire spectrum of energy from production to conversion, conservation, management, systems, technologies, etc. We encourage papers submissions aiming at better efficiency, cost improvements, more effective resource use, improved design and analysis, reduced environmental impact, and hence leading to better sustainability. IJER is concerned with the development and exploitation of both advanced traditional and new energy sources, systems, technologies and applications. Interdisciplinary subjects in the area of novel energy systems and applications are also encouraged. High-quality research papers are solicited in, but are not limited to, the following areas with innovative and novel contents: -Biofuels and alternatives -Carbon capturing and storage technologies -Clean coal technologies -Energy conversion, conservation and management -Energy storage -Energy systems -Hybrid/combined/integrated energy systems for multi-generation -Hydrogen energy and fuel cells -Hydrogen production technologies -Micro- and nano-energy systems and technologies -Nuclear energy -Renewable energies (e.g. geothermal, solar, wind, hydro, tidal, wave, biomass) -Smart energy system
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