集成地理信息系统和三维虚拟现实的大型光伏风混合系统优化建模——以摩洛哥达赫拉市为例

IF 3.6
Elmostafa Achbab , Rachid Lambarki , Hassan Rhinane , Dennoun Saifaoui
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引用次数: 0

摘要

该研究率先将地理信息系统(GIS)和虚拟现实(VR)框架内的3D建模集成在一起,以评估连接到当地电网的20兆瓦混合风能-太阳能-光伏(PV)系统的可行性和规划。这项研究的重点是摩洛哥的Dakhla,这是一个拥有巨大可再生能源潜力的地区。通过利用地理信息系统,我们创新性地分析了影响最佳选址和系统设计的地理和环境因素。VR技术的结合提供了前所未有的真实感和沉浸感,允许利益相关者在动态的互动环境中虚拟体验项目的影响和设计。这种新颖的方法包括广泛的数据收集,先进的建模和模拟,确保混合系统精确地适应Dakhla独特的气候和环境条件。我们的分析显示,该地区拥有每年约2400千瓦时/平方米的光伏太阳能潜力,在80米的轮毂高度,平均年风力密度约为434瓦/平方米。生产力模拟表明,20兆瓦的混合系统每年可以产生大约60吉瓦时的能量,在其25年的使用寿命内可以产生1369吉瓦时的能量。为了验证这些发现,我们使用了系统顾问模型(SAM)软件和全球太阳能光伏图集平台。这种综合和跨学科的方法不仅对该系统的可行性进行了有力的评估,而且对其潜在的社会经济和环境影响提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Integrating geographic information system and 3D virtual reality for optimized modeling of large-scale photovoltaic wind hybrid system: A case study in Dakhla City, Morocco

Integrating geographic information system and 3D virtual reality for optimized modeling of large-scale photovoltaic wind hybrid system: A case study in Dakhla City, Morocco
This research pioneers the integration of geographic information systems (GIS) and 3D modeling within a virtual reality (VR) framework to assess the viability and planning of a 20 MW hybrid wind-solar-photovoltaic (PV) system connected to the local grid. The study focuses on Dakhla, Morocco, a region with vast untapped renewable energy potential. By leveraging GIS, we are innovatively analyzing geographical and environmental factors that influence optimal site selection and system design. The incorporation of VR technologies offers an unprecedented level of realism and immersion, allowing stakeholders to virtually experience the project's impact and design in a dynamic, interactive environment. This novel methodology includes extensive data collection, advanced modeling, and simulations, ensuring that the hybrid system is precisely tailored to the unique climatic and environmental conditions of Dakhla. Our analysis reveals that the region possesses a photovoltaic solar potential of approximately 2400 kWh/m2 per year, with an average annual wind power density of about 434 W/m2 at an 80-meter hub height. Productivity simulations indicate that the 20 MW hybrid system could generate approximately 60 GWh of energy per year and 1369 GWh over its 25-year lifespan. To validate these findings, we employed the System Advisor Model (SAM) software and the Global Solar Photovoltaic Atlas platform. This comprehensive and interdisciplinary approach not only provides a robust assessment of the system's feasibility but also offers valuable insights into its potential socio-economic and environmental impact.
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