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GIS-Based Estimation of Seasonal Solar Energy Potential for Parking Lots and Roads

机译:基于GIS的停车场和道路季节太阳能潜力估算

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The amount of sun cast on roads and parking lots determines the charging opportunities for solar vehicles and impacts the efficiency of conventional vehicles. Estimates of solar energy potential on urban surfaces to assess parking and driving conditions need to account for the shadows cast by surrounding trees and buildings. However, though existing GIS tools can calculate solar potential on surfaces that have buildings and trees, these tools do not estimate the conditions beneath trees and do not consider the seasonal changes in deciduous trees. We introduce a new approach to address these factors using pixel substitution and a light penetration factor. In this paper, we describe how to integrate these techniques into a workflow for computing solar potential estimates for parking and driving conditions. We demonstrate the methodology in an urban setting in North Carolina that includes a mixture of urban structures and trees. We provide code samples so that this workflow is easily repeatable. The solar maps produced with our method are a useful resource for planning solar vehicle parking and routing, and identifying shaded conditions for conventional vehicles.
机译:道路和停车场上的太阳队的数量决定了太阳能车辆的充电机会,并影响了传统车辆的效率。对城市表面的太阳能潜力估计,评估停车场和驾驶条件需要考虑周围树木和建筑物所铸造的阴影。然而,尽管现有的GIS工具可以在具有建筑物和树木的表面上计算太阳能潜力,但这些工具不会估计树下下方的条件,并且不考虑落叶树的季节变化。我们介绍了一种使用像素替换和光穿透因子来解决这些因素的新方法。在本文中,我们描述了如何将这些技术集成到用于计算停车和驾驶条件的太阳能估计的工作流程。我们展示了北卡罗来纳州城市环境中的方法,包括城市结构和树木的混合。我们提供代码样本,以便此工作流程很容易重复。用我们的方法生产的太阳贴图是规划太阳能车辆停车和路由的有用资源,并识别传统车辆的阴影条件。

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