基于改进Green Ampt模型的HYDROL-INF模拟环境下不同土层对入渗速率和累积入渗的影响

M. Khanaum, M. Borhan
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引用次数: 1

摘要

由于地质作用、地壳的形成或其他人工或人为活动,土壤剖面通常是不均匀的,由各种水平层组成。为了量化这些非均匀土壤剖面的入渗,修正的Green-Ampt模型(MGAM)是一个基于物理的水文模型,可以有效地在稳定和非稳定降雨事件下运行。基于二手数据,本研究试图确定在实验室和野外环境下,土壤层(土壤质地)变化对入渗速率和累积入渗的影响。通过土壤层的重新排列,分析不同情景对相应入渗速率和累积入渗的影响。采用MGAM软件在HYDROL-INF软件环境下进行仿真。在实验室试验中,考虑了两种不同类型的土壤质地与五种不同的土壤剖面的三种情况。同样,对5种不同类型的土壤质地偶和8种不同的土壤剖面进行了4种情景的田间试验。模拟入渗速率和累积入渗随土层变化而变化。3种情况下,5层实验土柱的模拟累积入渗量、蓄水次数、蓄水时入渗速率和蓄水时润湿锋总深度相同。在野外8层土壤剖面中,情景1、情景2、情景3和情景4的模拟累计入渗分别为33.16、23.65、21.29和42.77 cm。池内各场景的入渗速率与现场相同(0.46 ~ 0.53 cm/h)。
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Influence of Soil Layers on the Infiltration Rates and Cumulative Infiltration Using Modified Green Ampt Model in the HYDROL-INF Simulation Environment
Soil profiles are generally heterogeneous and consist of various horizontal layers due to geological processes, the formation of crusts, or other artificial or man-made activities. To quantify infiltration into these heterogeneous soil profiles, the Modified Green-Ampt Model (MGAM) is a physically-based hydrologic model that can efficiently perform under both steady and unsteady rainfall events. Based on the secondary data, this study sought to determine the effect of changing soil layers (soil textures) on infiltration rates and cumulative infiltrations in in both laboratory and field settings. Different scenarios were analyzed by rearranging soil layers and evaluating their impacts on corresponding infiltration rates and cumulative infiltrations. Simulations were run with HYDROL-INF software environment using MGAM. Three scenarios were considered for a laboratory experiment with two different types of soil texture coupled with five different soil profiles. Similarly, four scenarios were considered for the field experiments with five different types of soil texture couple with eight different soil profiles. The simulated infiltration rates and cumulative infiltrations were found to vary with soil layer change scenarios. The simulated cumulative infiltrations, ponding times, infiltrating rates at ponding, and total depth of wetting front at ponding of a five-layered laboratory soil column were identical for the three scenarios. Simulated cumulative infiltrations were 33.16, 23.65, 21.29, and 42.77 cm, respectively, for scenarios (combinations) 1, 2, 3, and 4 in the eight-layered soil profile in the field scenarios. Infiltration rates among scenarios at ponding were identical (0.46 to 0.53 cm/h) with field scenario data.
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