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Soil moisture observations using L-, C-, and X-band microwave radiometers.

机译:使用L波段,C波段和X波段微波辐射计观察土壤湿度。

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摘要

The purpose of this thesis is to further the current understanding of soil moisture remote sensing under varying conditions using L-, C-, and X-band. Aircraft and satellite instruments are used to investigate the effects of frequency and spatial resolution on soil moisture sensitivity. The specific objectives of the research are to examine multi-scale observed and modeled microwave radiobrightness, evaluate new EOS Aqua Advanced Microwave Scanning Radiometer (AMSR-E) brightness temperature and soil moisture retrievals, and examine future satellite-based technologies for soil moisture sensing.; The cycling of Earth's water, energy and carbon is vital to understanding global climate. Over land, these processes are largely dependent on the amount of moisture within the top few centimeters of the soil. However, there are currently no methods available that can accurately characterize Earth's soil moisture layer at the spatial scales or temporal resolutions appropriate for climate modeling.; The current work uses ground truth, satellite and aircraft remote sensing data from three large-scale field experiments having different land surface, topographic and climate conditions. A physically-based radiative transfer model is used to simulate the observed aircraft and satellite measurements using spatially and temporally co-located surface parameters. A robust analysis of surface heterogeneity and scaling is possible due to the combination of multiple datasets from a range of microwave frequencies and field conditions. Accurate characterization of spatial and temporal variability of soil moisture during the three field experiments is achieved through sensor calibration and algorithm validation. Comparisons of satellite observations and resampled aircraft observations are made using soil moisture from a Numerical Weather Prediction (NWP) model in order to further demonstrate a soil moisture correlation where point data was unavailable. The influence of vegetation, spatial scaling, and surface heterogeneity on multi-scale soil moisture prediction is presented.; This work demonstrates that derived soil moisture using remote sensing provides a better coverage of soil moisture spatial variability than traditional in-situ sensors. Effects of spatial scale were shown to be less significant than frequency on soil moisture sensitivity. Retrievals of soil moisture using the current methods proved inadequate under some conditions; however, this study demonstrates the need for concurrent spaceborne frequencies including L-, C, and X-band.
机译:本文的目的是进一步了解当前使用L波段,C波段和X波段在不同条件下的土壤湿度遥感。飞机和卫星仪器用于研究频率和空间分辨率对土壤湿度敏感性的影响。该研究的具体目标是检查多尺度观测到的微波辐射亮度并建模,评估新的EOS Aqua高级微波扫描辐射计(AMSR-E)的亮度温度和土壤湿度,以及检查未来基于卫星的土壤湿度感测技术。 ;地球水,能源和碳的循环对于理解全球气候至关重要。在陆地上,这些过程很大程度上取决于土壤顶部几厘米内的水分含量。但是,目前尚无可用的方法可以在适合气候模拟的空间尺度或时间分辨率下准确表征地球的土壤水分层。当前的工作使用来自三个具有不同陆地表面,地形和气候条件的大规模野外实验的地面真相,卫星和飞机遥感数据。基于物理的辐射传递模型用于模拟使用空间和时间共处一地的表面参数观测的飞机和卫星的测量结果。由于结合了一系列微波频率和现场条件的多个数据集,因此可以对表面异质性和结垢进行有力的分析。通过传感器校准和算法验证,可以在三个田间实验中准确表征土壤水分的时空变化。使用数值天气预报(NWP)模型中的土壤湿度对卫星观测值和重新采样的飞机观测值进行比较,以进一步证明在没有点数据的情况下土壤湿度的相关性。提出了植被,空间尺度和表面异质性对多尺度土壤湿度预测的影响。这项工作表明,与传统的原位传感器相比,使用遥感获得的土壤水分可更好地覆盖土壤水分的空间变异性。结果表明,空间尺度对土壤水分敏感性的影响不如频率显着。在某些情况下,采用现行方法对土壤水分的取水量不足。但是,这项研究表明需要同时存在的星载频率,包括L波段,C波段和X波段。

著录项

  • 作者

    Bolten, John Dennis.;

  • 作者单位

    University of South Carolina.;

  • 授予单位 University of South Carolina.;
  • 学科 Geology.; Remote Sensing.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地质学;遥感技术;
  • 关键词

  • 入库时间 2022-08-17 11:42:10

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