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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >The Improved Freeze-Thaw Process of a Climate-Vegetation Model: Calibration and Validation Tests in the Source Region of the Yellow River
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The Improved Freeze-Thaw Process of a Climate-Vegetation Model: Calibration and Validation Tests in the Source Region of the Yellow River

机译:改进的冻融过程的Climate-Vegetation模型:校准验证测试的源区黄河

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摘要

The freeze-thaw process significantly impacts land surface processes in permafrost and influences the regional climate. In this study, the freeze-thaw process in the atmosphere-vegetation interaction model (AVIM) was improved by utilizing the universal soil hydrothermal coupling equations, and by introducing the freezing depression point-based freeze-thaw parameterization scheme to form a model known as the AVIM frozen soil model (AVIM_FSM). Then, the seasonal frozen soil observational data at Maqu station, located in the Yellow River source region, were used to calibrate the freeze-thaw-related parameters with an artificial intelligence particle swarm optimization method, and the model was validated. The results indicated that by improving the freeze-thaw process, the temporal variations in soil temperature and liquid water content simulated by the AVIM_FSM model agreed well with the observations. By calibrating the parameters, the deviations between the observations and corresponding simulations were reduced compared with those in the AVIM. Based on the AVIM_FSM, the physical mechanism of the freeze-thaw process was discussed, the different freeze-thaw parameterization schemes were compared, the related freeze-thaw process parameters were quantitatively evaluated, and the following was indicated: (1) the freeze-thaw process was mainly determined by radiation, sensible heat flux, and ice change in frozen soil; (2) the freezing depression point-based freeze-thaw parameterization scheme was superior to the empirical scheme, which can reasonably describe the freezing and thawing start dates with lower deviations; and (3) the particle swarm optimization algorithm can efficiently calibrate the freeze-thaw-related parameters and improve the simulation accuracy.
机译:冻融过程对土地造成很大的影响在永久冻土和表面过程的影响区域气候。atmosphere-vegetation冻融过程交互模型(AVIM)是提高了利用通用土壤水热耦合方程,通过引入冻结的抑郁积分冻融形成一个模型被称为参数化方案的AVIM冻土模型(AVIM_FSM)。在黄河季节性冻土观测数据站,位于黄河的源头地区,被用来校准的人造freeze-thaw-related参数情报粒子群优化方法,和模型验证。表明,通过改善冻融土壤过程中,时间的变化温度和水含量模拟AVIM_FSM模型同意的观察。观察和之间的偏差减少相应的模拟比较与那些在AVIM。冻融过程的物理机制讨论了不同的冻融吗参数化方案比较,冻融过程参数有关定量评估,以下指出:(1)冻融过程主要是由辐射、显热通量和冰在冻土变化;抑郁积分冻融参数化方案优于实验方案,可以合理地描述冻融开始日期较低偏差;优化算法可以有效地校正freeze-thaw-related参数和改进仿真精度。

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