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A methodology for computing spatially and temporally varying surface sensible heat flux from thermal imagery

机译:一种从热图像计算空间和时间变化的表面显热通量的方法

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摘要

Thermal infrared imagery provides a measure of surface temperature by quantifying the thermal emission of radiation from objects. In this work, we propose a novel approach for computing surface sensible heat fluxes from a time series of thermal imagery sampled at 20 Hz. The approach consists of using a surface energy budget, where the ground heat flux is easily computed from limited measurements using a force restore-type methodology, the latent heat fluxes are neglected, and the energy storage is computed using a lumped capacitance model. Preliminary validation of the method is presented using experimental data acquired at a desert playa in western Utah from an intensive observation period during the Mountain Terrain Atmospheric Modeling and Observations (MATERHORN) Program. The sensible heat fluxes computed from thermal imagery show encouraging agreement (approximate to 4% difference for 1 h averaged fluxes computed with the force-restore method) compared to heat fluxes obtained using the eddy-covariance technique, however additional evaluation is required to confirm the method's validity. Further, the technique illustrates the richness of surface heat flux spatio-temporal structure even over very smooth surfaces.
机译:热红外图像通过量化来自物体的辐射的热排放来提供表面温度的量度。在这项工作中,我们提出了一种用于从20Hz采样的热图像的时间序列计算表面明智的热通量的新方法。该方法包括使用表面能预算,其中使用力恢复型方法容易地从有限的测量计算地热通量,忽略潜热通量,并且使用集总电容模型计算能量存储器。使用在犹他州西部的沙漠普拉亚在山地地形大气建模和观测(物质)计划(物质)计划期间,使用西犹他州沙漠普拉亚的实验数据呈现该方法的初步验证。与使用涡流协方识技术获得的热通量相​​比,从热图像计算的可显着的热量(用力恢复方法计算的1小时平均助熔剂差异为4%),但需要额外的评估来确认方法的有效性。此外,该技术说明了即使在非常平滑的表面上也表示表面热通量的丰富性。

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