利用现场测量和 CFD 模拟实现小型风力涡轮机在建筑物内的最佳定位

Alexander Vallejo Díaz, Idalberto Herrera Moya, Juan E. Castellanos, Edwin Garabitos Lara
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摘要

可再生能源解决方案对于解决气候变化、化石燃料供应链脆弱和燃料价格波动等几个紧迫问题至关重要。其中一个很有前景的技术解决方案是在建筑物屋顶安装涡轮机。本研究对 29 米高的典型建筑屋顶的风能利用潜力进行了评估。这项研究的主要目的是开发一种方法,可以有效地研究将小型风力涡轮机(SWT)集成到城市建筑中的问题,以促进城市地区的能源充足。研究开发了一个由七个基本步骤组成的稳健框架。这些步骤包括选址、通过计算流体动力学(CFD)模拟和现场测量评估城市风能、选择合适的 SWT、估算年发电量(AEP)、进行环境影响评估、恢复能力和经济分析,最后是安装系统。这一简单而可靠的框架为评估城市地区风能利用的可行性提供了一种全面的方法。研究结果表明,最合适的安装地点的 AEP 估计约为 1030 千瓦时,可减少 0.64 吨二氧化碳/年的排放量。此外,还观察到建筑物的几何形状对风流有很大影响,导致下游风速大幅下降。风速的大幅下降(从风力入射到另一端可下降 100%)会极大地影响发电量。由于动能减少,SWT 产生的电能也会减少。要使风能项目的发电量最大化,选择最佳地点和考虑风力模式至关重要。
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Optimal positioning of small wind turbines into a building using on-site measurements and CFD simulation
Renewable energy solutions are critical for addressing several pressing issues, including climate change, the fossil fuels supply chain fragility and fuel price fluctuations. One promising technological solution is rooftop-mounted turbines into buildings. This study presents an evaluation of the potential for wind energy utilization on the rooftop of a typical 29 m tall building. The primary objective of this research is to develop a methodology that can effectively investigate the integration of small wind turbines (SWTs) into urban buildings, intending to promote energy sufficiency in urban areas. A robust framework has been developed that consists of seven fundamental steps. These steps include site selection, evaluating urban wind energy with computational fluid dynamics (CFD) simulation and on-site measurements, selecting an appropriate SWT, estimating the annual energy production (AEP), conducting an evaluation of the environmental impact, resilience, and economic analysis, and finally, installing the system. This straightforward yet reliable framework provides a comprehensive approach to assessing the viability of wind energy utilization in urban areas. The findings revealed that the most suitable location for installation had an estimated AEP of around 1030 kWh, leading to a reduction in emissions of 0.64 tCO2/y. Additionally, it was observed that the building's geometry significantly affected the wind flow, causing a substantial decrease in wind speed downstream. A significant decline in wind speed, up to 100% from wind incidence to the opposite end, can greatly impact energy generation. With less kinetic energy available, SWTs may generate less electrical energy. Selecting optimal sites and considering wind patterns is crucial for maximizing energy generation in wind energy projects.
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