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LiDAR-Based Solar Mapping for Distributed Solar Plant Design and Grid Integration in San Antonio, Texas

机译:基于LiDAR的太阳能测绘,用于德克萨斯州圣安东尼奥市的分布式太阳能发电厂设计和电网集成

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This study represents advancements in the state-of-the-art of the solar energy industry by leveraging LiDAR-based building characterization for city-wide, distributed solar photovoltaics, solar maps, highlighting the distribution of solar energy across the city of San Antonio. A methodology is implemented to systematically derive the tilt and azimuth angles of each rooftop and to quantify solar direct, diffuse, and global horizontal irradiance for hundreds of buildings in a LiDAR tile scale, by using already established methodologies that are typically only applied to a single location or building rooftop. The methodology enables the formulation of typical meteorological data, measured or forecasted time series of irradiances over distributed assets. A new concept on the subject of distributed solar plant (DSP) design is also introduced, by using the building rooftop tilt and azimuth angles, to strategically optimize the use and adoption of solar incentives according to the grid age and its vulnerabilities to solar variability in the neighborhoods. The method presented here shows that on an hourly basis DSP design could provide a 5% and 9% of net load capacity support per hour in the afternoon and morning times, respectively. Our results show that standard building rooftop tilt angles in the south Texas region has significant impact on the total amount of the energy over the course of a day, though its impact on the shapes of the daily energy profile is relatively insignificant when compared to the azimuth angle. Building surfaces’ azimuth angle is the most important factor to determine the shape of daily energy profile and its peak location within a day. The methodology developed in this study can be employed to study the potential solar energy in other regions and to match the design of distributed solar plants to the capacity needs on specified distribution grids.
机译:这项研究通过利用基于LiDAR的建筑物表征技术在全市范围内分布太阳能光伏,太阳能地图,突出了整个圣安东尼奥市的太阳能分布,从而代表了太阳能行业的最新发展。通过使用已经建立的方法(通常仅应用于单个方法),可以实施一种方法来系统地得出每个屋顶的倾斜角和方位角,并量化LiDAR瓷砖比例的数百栋建筑物的太阳直射,漫射和全局水平辐照度位置或建筑物屋顶。该方法能够制定典型的气象数据,对分布式资产的辐照度进行测量或预测的时间序列。通过使用建筑物屋顶的倾斜和方位角,还引入了有关分布式太阳能发电厂(DSP)设计主题的新概念,以根据电网时代及其对太阳能可变性的脆弱性,从战略上优化太阳能激励措施的使用和采用。社区。此处介绍的方法表明,按小时计算,DSP设计可以分别在下午和早晨提供每小时5%和9%的净负载能力支持。我们的结果表明,德克萨斯南部地区的标准建筑物屋顶倾斜角在一天的过程中对能量总量有重大影响,尽管与方位角相比,它对每日能量分布形状的影响相对较小角度。建筑表面的方位角是确定每日能量分布图的形状及其一天中的峰值位置的最重要因素。本研究中开发的方法可用于研究其他地区的潜在太阳能,并使分布式太阳能发电厂的设计与指定配电网的容量需求相匹配。

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