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首页> 外文期刊>Geoderma: An International Journal of Soil Science >Determination of soil erodibility using fluid energy method and measurement of the eroded mass
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Determination of soil erodibility using fluid energy method and measurement of the eroded mass

机译:利用流体能量法测定土壤易蚀性并测量侵蚀质量

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The resistance of soil to erosional processes, especially in hillslopes is generally well recognized and documented in many researches, however, the full implications of tillage (soil disturbance) and slope degree on erodibility of a soil are not considered and well investigated. Thus, in this paper we particularly examined the impact of tillage (soil disturbance) and surface slope on the erodibility of four types of soils (Masa, Oxisols, Andosols, Sand soil), and determined their thresholds of soil water content (SWC) and erosivity that initiate soil erosion. The soil samples were obtained in disturbed form, where the natural conditions of the soils such as structure, density and shear strength were changed. Hence, systematic compaction (soil pressing) treatment was carried out for a couple of months with the concept that the treated soil will be a surrogate of the soil at field condition (untilled-fallow soil) and the disturbed soil represents the soil in its tilled condition. We used dripper type of rainfall simulator to generate runoff and the suspended sediment concentration (SSC) in the runoff was measured using optical backscatter sensor, and the infiltration rate was measured with Mini disk portable tension infiltrometer. We used optical disdrometer under simulated rainfall to measure raindrop size, splash kinetic energy and erosivity of rain events; thereby, we applied fluid energy method to determine erodibility of different soils. The results revealed that both in disturbed and treated conditions, erodibility of Oxisols was the highest followed by Andosols, Masa and Sand soil. After the treatment, erodibility and threshold of SWC significantly decreased in most of the soils while their threshold of erosivity increased; and this implies that the treated soils had better resistance to erosion than disturbed soils. Slope had also notable impact on erodibility (t ha h/MJ mm ha) of all soils, where the measured soil erodibility varied from 0.08 to 0.21 in the gentlest slope (5.2 degrees) and from 021 to 0.49 for the steepest slope (35.3 degrees). Particularly, the erodibility of Oxisols and Andosols showed a remarkable increase in the steeper slope. Furthermore, the finding showed that erodibility, thresholds of SWC (%) and erosivity were different for different soils considered in the study. Masa soil had the lowest threshold of SWC and erosivity to initiate erosion followed by Sand soil, Oxisols and Andosols. In general, the treated soils had lower erodibility than the disturbed soil. The erodibility of all soils increased with slope, however, Oxisols and Andosols showed a significant increase towards higher slope degree. Thus, tilling steep slope areas of the latter two soils might cause significant erosion and soil loss due to their substantial increase in erodibility towards higher slope. (C) 2016 Published by Elsevier B.V.
机译:土壤对侵蚀过程的抵抗力,特别是在山坡上,尤其是在山坡上,已被许多研究充分认识并记录在案,但是,耕作(土壤扰动)和坡度对土壤易蚀性的全部影响尚未得到考虑和充分研究。因此,在本文中,我们特别研究了耕作(土壤扰动)和表面坡度对四种类型的土壤(马萨(Masa),油溶土(Oxisols),Andosols,沙土)的侵蚀性的影响,并确定了它们的土壤含水量(SWC)阈值和引发土壤侵蚀的侵蚀性。以扰动形式获得土壤样品,改变了土壤的自然条件,如结构,密度和抗剪强度。因此,进行了几个月的系统压实(土壤压实)处理,其概念是处理后的土壤将是田间条件下的土壤(未耕种的休耕土壤)的替代物,而受干扰的土壤则代表耕种的土壤。健康)状况。我们使用滴头式降雨模拟器产生径流,并使用光学反向散射传感器测量径流中的悬浮泥沙浓度(SSC),并使用小型圆盘便携式张力渗透计测量入渗率。我们使用光驱在模拟降雨条件下测量雨滴大小,飞溅动能和降雨事件的侵蚀性。因此,我们应用了流能方法来确定不同土壤的可蚀性。结果表明,在扰动和处理条件下,Oxisols的侵蚀性最高,其次是Andosols,Masa和Sand土壤。处理后,大多数土壤中的SWC侵蚀性和阈值显着降低,而其侵蚀性阈值则增加。这意味着经过处理的土壤比受干扰的土壤具有更好的抗侵蚀能力。坡度还对所有土壤的可蚀性(t ha h / MJ mm ha)产生显着影响,在最平缓的坡度(5.2度)中测得的土壤可蚀性从0.08变至0.21,而在最陡坡(35.3度)中测得的土壤可蚀性从021变至0.49 )。特别是,Oxisols和Andosols的可蚀性在陡峭的坡度上显示出明显的增加。此外,研究结果表明,研究中考虑的不同土壤的可蚀性,SWC阈值(%)和侵蚀性不同。 Masa土壤的SWC和侵蚀力最低阈值引发侵蚀,其次是沙土,Oxisols和Andosols。通常,处理过的土壤的可蚀性低于被扰动的土壤。所有土壤的易蚀性均随坡度的增加而增加,但是,土壤中的Oxisols和Andosols却显示出明显的增加。因此,耕作后两种土壤的陡坡区域可能会导致侵蚀,并因其向较高坡度的侵蚀性显着增加而导致土壤流失。 (C)2016由Elsevier B.V.发布

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