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The Sensitivity of Ground Surface Temperature Prediction to Soil Thermal Properties Using the Simple Biosphere Model (SiB2)

机译:简单生物圈模型(SiB2)预测地表温度对土壤热力特性的敏感性

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摘要

Using the Simple Biosphere Model (SiB2),soil thermal properties (STP) were examined in a Tibetan prairie during the monsoon period to investigate ground surface temperature prediction.We improved the SiB2 model by incorporating a revised force-restore method (FRM) to take the vertical heterogeneity of soil thermal diffusivity (k) into account.The results indicate that (1) the revised FRM alleviates daytime overestimation and nighttime underestimation in modeled ground surface temperature (Tg),and (2) its role in little rainfall events is significant because the vertical gradient of k increases with increasing surface evaporation.Since the original formula of thermal conductivity (λ) in the SiB2 greatly underestimates soil thermal conductivity,we compared five algorithms of λ involving soil moisture to investigate the cause of overestimation during the day and underestimation at night on the basis of the revised FRM.The results show that (1) the five algorithms significantly improve Tg prediction,especially in daytime,and (2) taking one of these five algorithms as an example,the simulated Tg values in the daytime are closer to the field measurements than those in the nighttime.The differences between modeled Tg and field measurements are mostly within the margin of error of ±2 K during 3 August to 4 September 1998.
机译:使用简单生物圈模型(SiB2),在季风期间在西藏大草原上调查了土壤热性质(STP),以研究地表温度预测。我们通过结合修正的力恢复方法(FRM)改​​进了SiB2模型结果表明:(1)修正的FRM减轻了模拟地表温度(Tg)中的白天高估和夜间低估,(2)在少量降雨事件中的作用很明显因为k的垂直梯度随表面蒸发量的增加而增加。由于SiB2中的原始热导率(λ)公式大大低估了土壤的热导率,因此我们比较了涉及土壤水分的λ的五种算法,以研究白天和夏季高估的原因结果表明:(1)这五种算法显着提高了Tg。 (2)以这五种算法之一为例,白天的模拟Tg值比夜间模拟的Tg值更接近现场测量值。建模的Tg与现场测量值之间的差异主要在在1998年8月3日至9月4日,误差范围为±2K。

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  • 来源
    《大气科学进展(英文版)》 |2012年第3期|623-634|共12页
  • 作者单位

    College of Earth Science, Graduate University of Chinese Academy of Sciences, Beijing 100049;

    Key Laboratory of Computational Geodynamics, Chinese Academy of Sciences, Beijing 100049;

    State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry,Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100081;

    State Key Laboratory of Atmospheric Boundary Layer Physics and Atmospheric Chemistry,Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100081;

    College of Applied Meteorology, Nanjing University of Information Science and Technology, Nanjing 210044;

    College of Earth Science, Graduate University of Chinese Academy of Sciences, Beijing 100049;

    Key Laboratory of Computational Geodynamics, Chinese Academy of Sciences, Beijing 100049;

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