首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Using bi-directional soil spectral reflectance to model soil surface changes induced by rainfall and wind-tunnel abrasion
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Using bi-directional soil spectral reflectance to model soil surface changes induced by rainfall and wind-tunnel abrasion

机译:使用双向土壤光谱反射率模拟降雨和风洞磨蚀引起的土壤表面变化

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To improve wind erosion model calculations across several spatial and temporal scales simultaneously, there is a requirement for a noninvasive approach that can be used rapidly to assess changes in the compositional and structural nature of a soil surface in time and space. Remote sensing allows consideration of the processes controlling erodibility on the same spatial continuum to avoid time-consuming and expensive fieldwork. Multi-angular spectral reflectance appears to provide a holistic framework for the measurement and calculation of soil surface characteristics remotely using ground-based radiometers and current and future generations of angular sensors on airborne and satellite platforms. To investigate the utility of this framework, a ground-based study was performed using three soils susceptible to wind erosion that were modified using rainfall simulation and wind tunnel abrasion experiments. Measurements of those changes were made and recorded using digital images. Multi-angular spectral measurements of reflectance were also made and inverted against a bi-directional soil spectral reflectance model. Comparison of the measurements and calculations showed good agreement with small errors in accuracy. Optimised values of the model parameters produced the single scattering albedo and a description of the reflectance scattering behaviour of the soil surfaces that included an estimate of roughness. The model parameters removed the effect of illumination and viewing geometry on the spectral reflectance. The combination of single-scattering albedo spectra and model parameters for each treatment provided information about the composition and structure of the soil surface changes. The main changes detected at the soil surface included the presence of a crust produced by rain-splash, the production of loose erodible material covering a rain crust and the selective erosion of the soil surface. Redundancy analysis showed that much of the variation in the values of the soil reflectance model parameters was explained by the scattering properties and the roughness parameter of the soil surfaces. Variation in the soil surface reflectance was not explained solely by soil type. Instead, low intensity rainfall combined with short and long duration abrasion explained a significant portion. These findings provide a source of considerable variation in experimental and operational spectral reflectance measurements that has perhaps hitherto been largely ignored. The results demonstrated the readily available information on the composition and structure of the soil surface without interfering with natural processes. The directional soil reflectance methodology appears to have potential for use in improving the understanding of erodibility and ultimately for identifying and quantifying soil erosion. (c) 2006 Elsevier Inc. All rights reserved.
机译:为了同时在多个时空尺度上改进风蚀模型的计算,需要一种非侵入性方法,该方法可以迅速用于评估时空土壤表面的组成和结构性质的变化。遥感可以考虑在相同的空间连续性上控制可蚀性的过程,以避免耗时和昂贵的野外工作。多角度光谱反射似乎为使用地面辐射计以及机载和卫星平台上当前和未来的角度传感器的远程测量和计算土壤表面特征提供了一个整体框架。为了研究此框架的实用性,我们使用三种易受风蚀的土壤进行了地面研究,这些土壤通过降雨模拟和风洞磨蚀实验进行了修改。进行了这些更改的测量,并使用数字图像进行了记录。还进行了反射率的多角度光谱测量,并针对双向土壤光谱反射率模型进行了反演。测量和计算的比较显示出良好的一致性,但精度误差很小。模型参数的最佳值产生了单个散射反照率,并描述了土壤表面的反射散射行为,其中包括粗糙度的估计值。模型参数消除了照明和观察几何形状对光谱反射率的影响。每次处理的单散射反照率谱和模型参数的组合提供了有关土壤表面变化的组成和结构的信息。在土壤表面检测到的主要变化包括雨水飞溅产生的结皮,覆盖雨水的易蚀物质的产生以及土壤表面的选择性侵蚀。冗余分析表明,土壤反射率模型参数值的大部分变化是由土壤表面的散射特性和粗糙度参数引起的。土壤表面反射率的变化不能仅通过土壤类型来解释。取而代之的是,低强度降雨加上短时和长时磨耗说明了很大一部分。这些发现为实验和操作光谱反射率测量提供了可观的变化,这可能迄今为止一直被忽略。结果表明,在不干扰自然过程的情况下,可以容易地获得有关土壤表面组成和结构的信息。定向土壤反射率方法学似乎有潜力用于增进对可蚀性的理解,并最终用于识别和量化土壤侵蚀。 (c)2006 Elsevier Inc.保留所有权利。

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