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Effects of pipeflow on hydrological process and its relation to landslide: a review of pipeflow studies in forested headwater catchments

机译:管流对水文过程的影响及其与滑坡的关系:森林源头流域的管流研究综述

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Since the 1980s, several field studies of pipeflow hydrology have been conducted in forested, steep headwater catchments. However, adequate information is lacking with regard to questions as to how representative these previous studies are and how widespread the phenomena might be. Thus, the aim of this study is to review some studies of pipeflow hydrology on forested steep hillslopes. Several points were clarified. (1) The maximum discharge of pipeflow was mainly determined by the soil pipe diameter. When the condition of both the soil pipe diameter and the slope gradient in forest soil were similar to those in peaty podzol, the maximum discharge of pipeflow on forest slopes was slighter than that in peaty podzol. (2) Pipeflow was delivered from a variety of sources, and the contributing area of pipeflow extended as the soil layer became wetter. Therefore, the dominant contributor (new water and old water) was varied and the contribution of pipeflow to streamflow increased with the increase of rainfall magnitude. (3) The roles of pipeflow in the storm runoff generation processes demonstrated two roles: the concentration of water and the rapid drainage to downslopes. Thus, soil pipes can increase the peak discharge from the hillslope and decrease the peak lag time of the storm hydrograph, when compared to the unpiped hillslope. (4) The roles of pipeflow on hydrological process suggested that the soil pipes contribute to the slope stability by increasing the rate of soil drainage and limiting the development of perched groundwater conditions. However, if the rate of water concentration to the soil pipe network is in excess of the pipeflow transmission capacity, the cavity of the soil pipe could readily be filled with water during a rain event, increasing pore water pressure in the surrounding matrix. In this case, the soil pipe induced slope instability. (5) Moreover, pipe erosion has significant impact on the runoff characteristics of pipeflow, since pipe erosion contributed to a change in the limited drainage capacity of soil pipe. Thus, pipe erosion plays an important role in shallow landslide initiation. Copyright © 2001 John Wiley & Sons, Ltd.
机译:自1980年代以来,已经在森林陡峭的源头集水区进行了一些管道水文水文学的野外研究。但是,关于这些先前研究的代表性和这种现象可能有多广泛的问题,缺乏足够的信息。因此,本研究的目的是回顾一些在森林陡峭的山坡上进行的管道水文学研究。澄清了几点。 (1)管道最大流量主要由土管直径决定。当森林土壤的土壤管径和坡度都与豌豆荚pod相似时,森林坡面的最大管道流量要小于豌豆荚slight。 (2)管道有多种来源,随着土壤层变湿,管道的贡献面积扩大。因此,随着降雨量的增加,主要的贡献者(新水和旧水)发生了变化,并且管道流量对水流的贡献增加了。 (3)径流在暴雨径流产生过程中的作用表现为两个作用:水的集中和向下坡的快速排水。因此,与无管道的山坡相比,土管可以增加山坡的峰值流量并减少暴雨水位图的峰值滞后时间。 (4)管道在水文过程中的作用表明,土壤管通过增加土壤排泄速率和限制地下水位条件的发展而有助于边坡的稳定性。但是,如果水进入土壤管网的速率超过了管道的传输能力,则在下雨时土壤管的空腔很容易充满水,从而增加了周围基质中的孔隙水压力。在这种情况下,土管会引起边坡失稳。 (5)此外,管道侵蚀对管道的径流特性有重大影响,因为管道侵蚀导致土壤管道有限的排水能力发生了变化。因此,管道侵蚀在浅层滑坡的形成中起着重要作用。版权所有©2001 John Wiley&Sons,Ltd.

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