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Nonmonotonic and spatial-temporal dynamic slope effects on soil erosion during rainfall-runoff processes

机译:降雨径流过程中非单调和时空动态边坡对土壤侵蚀的影响

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摘要

The slope effect on flow erosivity and soil erosion still remains a controversial issue. This theoretical framework explained and quantified the direct slope effect by coupling the modified Green-Ampt equation accounting for slope effect on infiltration, 1-D kinematic wave overland flow routing model, and WEPP soil erosion model. The flow velocity, runoff rate, shear stress, interrill, and rill erosion were calculated on 0 degrees-60 degrees isotropic slopes with equal horizontal projective length. The results show that, for short-duration rainfall events, the flow erosivity and erosion amounts exhibit a bell-shaped trend which first increase with slope gradient, and then decrease after a critical slope angle. The critical slope angles increase significantly or even vanish with increasing rainfall duration but are nearly independent of the slope projective length. The soil critical shear stress, rainfall intensity, and temporal patterns have great influences on the slope effect trend, while the other soil erosion parameters, soil type, hydraulic conductivity, and antecedent soil moisture have minor impacts. Neglecting the slope effect on infiltration would generate smaller erosion and reduce critical slope angles. The relative slope effect on soil erosion in physically based model WEPP was compared to those in the empirical models USLE and RUSLE. The trends of relative slope effect were found quite different, but the difference may diminish with increasing rainfall duration. Finally, relatively smaller critical slope angles could be obtained with the equal slope length and the range of variation provides a possible explanation for the different critical slope angles reported in previous studies.
机译:坡度对水流侵蚀性和土壤侵蚀的影响仍然是一个有争议的问题。该理论框架通过结合考虑坡度对入渗影响的修正Green-Ampt方程,一维运动波陆上水流路径模型和WEPP土壤侵蚀模型,解释并量化了直接坡度效应。在相等的水平投影长度下,在0度至60度各向同性的坡度上计算了流速,径流速率,剪切应力,层间钻具和钻头侵蚀。结果表明,对于短时降雨事件,流的侵蚀力和侵蚀量呈钟形趋势,先随坡度增加而增大,然后在临界坡度后减小。临界坡度角随降雨持续时间的增加而显着增加,甚至消失,但几乎与坡度投影长度无关。土壤临界切应力,降雨强度和时间格局对边坡效应趋势有很大影响,而其他土壤侵蚀参数,土壤类型,水力传导率和前期土壤水分影响较小。忽略坡度对渗透的影响将产生较小的侵蚀并减小临界坡度角。将基于物理的模型WEPP中的相对坡度对土壤侵蚀的影响与基于经验模型USLE和RUSLE中的相比进行了比较。发现相对斜率效应的趋势完全不同,但随着降雨持续时间的增加,差异可能会减小。最后,在相等的坡度长度下可以获得相对较小的临界坡度角,变化范围为先前研究中报道的不同临界坡度角提供了可能的解释。

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  • 来源
    《Water resources research》 |2017年第2期|1369-1389|共21页
  • 作者

    Wu Songbai; Yu Minghui; Chen Li;

  • 作者单位

    Wuhan Univ, State Key Lab Water Resources & Hydropower Engn S, Wuhan, Peoples R China|Desert Res Inst, Div Hydrol Sci, Las Vegas, NV USA;

    Wuhan Univ, State Key Lab Water Resources & Hydropower Engn S, Wuhan, Peoples R China;

    Desert Res Inst, Div Hydrol Sci, Las Vegas, NV USA|Hohai Univ, State Key Lab Hydrol Water Resources & Hydraul En, Nanjing, Jiangsu, Peoples R China;

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