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Analysis of the Potential for a Heat Island Effect in Large Solar Farms

机译:大太阳能电池中热岛效应的潜力分析

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Large-scale solar power plants are being built at a rapid rate, and are setting up to use hundreds of thousands of acres of land surface. The thermal energy flows to the environment related to the operation of such facilities have not, so far, been addressed comprehensively. We are developing rigorous computational fluid dynamics (CFD) simulation capabilities for modeling the air velocity, turbulence, and energy flow fields induced by large solar PV farms to answer questions pertaining to potential impacts of solar farms on local microclimate. Using the CFD codes Ansys CFX and Fluent, we conducted detailed 3-D simulations of a 1 MW section of a solar farm in North America and compared the results with recorded wind and temperature field data from the whole solar farm. Both the field data and the simulations show that the annual average of air temperatures in the center of PV field can reach up to 1.9°C above the ambient temperature, and that this thermal energy completely dissipates to the environment at heights of 5 to 18 m. The data also show a prompt dissipation of thermal energy with distance from the solar farm, with the air temperatures approaching (within 0.3°C) the ambient at about 300 m away of the perimeter of the solar farm. Analysis of 18 months of detailed data showed that in most days, the solar array was completely cooled at night, and, thus, it is unlikely that a heat island effect could occur. Work is in progress to approximate the flow fields in the solar farm with 2-D simulations and detail the temperature and wind profiles of the whole utility scale PV plant and the surrounding region. The results from these simulations can be extrapolated to assess potential local impacts from a number of solar farms reflecting various scenarios of large PV penetration into regional and global grids.
机译:大型太阳能发电厂正在以快速建造,并建立使用数十万英亩的土地面。到目前为止,迄今为止,热能流向与此类设施的操作有关的环境。我们正在开发严格的计算流体动力学(CFD)模拟能力,用于建模大型太阳能光伏电场诱导的空气速度,湍流和能量流场,以应对太阳能农场对局部小气门的潜在影响的问题。使用CFD代码ANSYS CFX和FLUENT,我们在北美进行了一台1 MW段的详细3-D模拟,并将结果与​​整个太阳能农场的记录风和温度场数据进行了比较。现场数据和模拟都表明,光伏电磁场中心的空气温度的年平均值可以高达1.9°C以上的环境温度,并且该热能完全耗散到环境的高度为5至18米。数据还显示了距离太阳能电池距离的热能及距离的热能,空气温度在太阳能电池的周边约300米的环境下接近(0.3°C)。分析18个月的详细数据显示,在大多数日子里,太阳能阵列在夜间完全冷却,因此,可能发生热岛效果不太可能发生。工作正在进行中,以近似太阳能电池的流场,具有二维模拟,并详细说明整个公用事业量表PV工厂和周围地区的温度和风力谱。这些模拟的结果可以推断,以评估来自多种太阳能电池的潜在局部影响,反映了大型光伏渗透到区域和全球网格的各种场景。

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