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首页> 外文期刊>Soil & Tillage Research >Modelling aeolian sediment transport during initial soil development on an artificial catchment using WEPS and aerial images.
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Modelling aeolian sediment transport during initial soil development on an artificial catchment using WEPS and aerial images.

机译:使用WEPS和航拍图像对人工集水区初始土壤发育过程中的风沙沉积物进行建模。

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Wind and water erosion are among the most important physical processes that affect the soil surface structure of artificial catchments, especially during earliest stages immediately after the construction. During this initial stage of a hydro-geo-system, bare surfaces are directly exposed to the atmospheric impact. Since erosion measurements are often not feasible during and immediately after construction, sediment transport and relocation can at best be estimated based on qualitative observations or photos only. While sediments transported by water remain in the catchment, the aeolian transport involves sediment exchange with surrounding areas and induces more balance-uncertainty. The objective of this study was to test a modelling approach for estimating the possible range of aeolian transport and quantifying possible contributions to the overall sediment mass balance of a catchment. The question was whether one can apply a wind erosion model to predict the effect of wind erosion on the initial soil and landscape development. We used the erosion sub-model of the raster-based Wind Erosion Prediction System (WEPS) to simulate aeolian sediment fluxes for the "Chicken Creek" catchment, located south of the city of Cottbus. This 6-ha-sized artificial hydrologic catchment was constructed in 2005. Parameters representing soil surface conditions were based on textural data and field estimations. Wind speed, wind direction, and precipitation came from a nearby meteorological station. The well-defined constructed initial surface conditions facilitated the estimation of uncertain surface parameters. The parameter surface roughness is based on wind tunnel measurements on similar surfaces, the area of loose sediment cover was estimated from photos; crust strengths and initial amount of erodible material were estimated by assuming analogies with surfaces in semi-arid regions. The simulation scenarios yielded annual net sediment losses from the catchment area during the 27-month simulation period in a range from 0.01 Mg ha-1 to about 10 Mg ha-1. Losses were mostly compensated when assuming external sediment input. The simulated masses of aeolian transport for high-erosivity scenarios correspond best with those derived from aerial image analysis. Assuming complex soil textural distributions further improved predictions of sediment distribution patterns. The results suggest that WEPS simulations combined with image analysis can be used to estimate aeolian transport during initial soil development. The model is simple enough to operate with limited data while being complex enough to capture main features such as heterogeneous soil texture distribution. The approach improved insight in ecological development of constructed systems in the initial phase after implementation of their design.Digital Object Identifier http://dx.doi.org/10.1016/j.still.2011.09.008
机译:风蚀和水蚀是影响人工集水区土壤表面结构的最重要的物理过程,尤其是在施工后的最早阶段。在水文地质系统的初始阶段,裸露的表面直接暴露在大气中。由于在施工期间和施工后立即进行侵蚀测量通常是不可行的,因此最多只能根据定性观察或照片估算沉积物的运输和迁移。虽然通过水输送的沉积物保留在流域中,但风沙输送涉及与周围区域的沉积物交换,并导致更多的平衡不确定性。这项研究的目的是测试一种模拟方法,以估算可能的风沙运移范围,并量化对流域总体泥沙质量平衡的可能贡献。问题是,是否可以应用风蚀模型来预测风蚀对初始土壤和景观发育的影响。我们使用基于栅格的风蚀预测系统(WEPS)的腐蚀子模型来模拟位于科特布斯市以南的“鸡溪”流域的风沙沉积通量。这个6公顷大小的人工水文流域建于2005年。代表土壤表面状况的参数是基于纹理数据和田间估算的。风速,风向和降水来自附近的气象站。定义明确的初始表面条件有助于估算不确定的表面参数。参数表面粗糙度基于相似表面的风洞测量,疏松的沉积物覆盖面积是根据照片估算的;通过假设与半干旱地区的表面相似,估算了地壳强度和易蚀材料的初始量。在27个月的模拟期内,模拟情景得出了集水区的年净泥沙损失,范围从0.01 Mg ha -1 到大约10 Mg ha -1 。假设外部沉积物输入,损失大部分得到补偿。在高侵蚀力情况下模拟的风沙运移质量与从航空影像分析中得出的质量最为吻合。假设复杂的土壤质地分布进一步改善了沉积物分布模式的预测。结果表明,WEPS模拟与图像分析相结合可用于估计土壤初始发育过程中的风沙运移。该模型足够简单,可以处理有限的数据,同时又足够复杂,可以捕获主要特征(例如非均质土壤质地分布)。该方法在实施设计后的初始阶段就改善了已构建系统在生态发展方面的洞察力。数字对象标识符http://dx.doi.org/10.1016/j.still.2011.09.008

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