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On the uncertainty of initial condition and initialization approaches in variably saturated flow modeling

机译:关于可变饱和流模型初始条件和初始化方法的不确定性

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摘要

Soil water movement has direct effects on environment, agriculture and hydrology. Simulation of soil water movement requires accurate determination of model parameters as well as initial and boundary conditions. However, it is difficult to obtain the accurate initial soil moisture or matric potential profile at the beginning of simulation time, making it necessary to run the simulation model from the arbitrary initial condition until the uncertainty of the initial condition (UIC) diminishes, which is often known as "warming up". In this paper, we compare two commonly used methods for quantifying the UIC (one is based on running a single simulation recursively across multiple hydrological years, and the other is based on Monte Carlo simulations with realization of various initial conditions) and identify the warmup time t(wu) (minimum time required to eliminate the UIC by warming up the model) required with different soil textures, meteorological conditions and soil profile lengths. Then we analyze the effects of different initial conditions on parameter estimation within two data assimilation frameworks (i.e., ensemble Kalman filter and iterative ensemble smoother) and assess several existing model initializing methods that use available data to retrieve the initial soil moisture profile. Our results reveal that Monte Carlo simulations and the recursive simulation over many years can both demonstrate the temporal behavior of the UIC, and a common threshold is recommended to determine t(wu). Moreover, the relationship between t(wu) for variably saturated flow modeling and the model settings (soil textures, meteorological conditions and soil profile length) is quantitatively identified. In addition, we propose a warm-up period before assimilating data in order to obtain a better performance for parameter and state estimation.
机译:土壤水运动对环境,农业和水文产生了直接影响。土壤水运动的仿真需要准确地确定模型参数以及初始和边界条件。然而,在模拟时间开始时难以获得准确的初始土壤湿度或Matric潜在的轮廓,使得必须从任意初始条件运行模拟模型,直到初始条件(UIC)减小的不确定性,这是通常被称为“热身”。在本文中,我们比较了两个用于量化UIC的常用方法(一个是基于多个水文岁月运行单一模拟,另一个是基于Monte Carlo模拟,实现了各种初始条件,并识别预热时间T(wu)(通过预热模型来消除UIC所需的最短时间),需要不同的土壤纹理,气象条件和土壤轮廓长度。然后,我们分析了不同初始条件对两个数据同化框架中的参数估计的影响(即,集合Kalman滤波器和迭代集合更顺畅),并评估使用可用数据来检索初始土壤湿度曲线的几种现有模型初始化方法。我们的结果表明,蒙特卡罗模拟和多年来递归模拟都可以证明UIC的时间行为,建议确定常见的阈值以确定T(wu)。此外,定量鉴定了可变饱和流模型的T(WU)与模型设置(土壤纹理,气象条件和土壤曲线曲线)之间的关系。此外,我们提出了在吸收数据之前的预热时段,以便获得更好的参数和状态估计性能。

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  • 作者单位

    Wuhan Univ State Key Lab Water Resources &

    Hydropower Engn S Wuhan 430072 Hubei Peoples R China;

    Wuhan Univ State Key Lab Water Resources &

    Hydropower Engn S Wuhan 430072 Hubei Peoples R China;

    Wuhan Univ State Key Lab Water Resources &

    Hydropower Engn S Wuhan 430072 Hubei Peoples R China;

    Wuhan Univ State Key Lab Water Resources &

    Hydropower Engn S Wuhan 430072 Hubei Peoples R China;

    Guangxi Hydraul Res Inst Nanning 530023 Guangxi Peoples R China;

    Hohai Univ Sch Earth Sci &

    Engn Nanjing 210098 Jiangsu Peoples R China;

    Wuhan Univ State Key Lab Water Resources &

    Hydropower Engn S Wuhan 430072 Hubei Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 水文科学(水界物理学);
  • 关键词

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