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How memory effects, check dams, and channel geometry control erosion and deposition by debris flows

机译:记忆效果,滤芯和频道几何形状控制侵蚀和沉积通过碎片流动

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Debris flows can grow greatly in size and hazardous potential by eroding bed and bank material, but effective hazard assessment and mitigation is currently hampered by limited understanding of erosion and deposition dynamics. We have collected high-resolution pre- and post-flow topography for 6 debris flows over a 3?km long unconsolidated reach of the Illgraben channel in the Swiss Alps with drone-based photogrammetry. We show that the spatio-temporal patterns of erosion and deposition in debris-flow torrents are highly variable and dynamic. Check dams strongly control the spatial patterns of erosion and deposition. We identify a memory effect where erosion is strong at locations of strong deposition during previous flows and vice versa. Large sediment inputs from subcatchments initially result in new channel erosion through the subcatchment deposits and simultaneous upstream deposition, likely as a result of backwater effects. It is generally believed that erosion increases with debris-flow magnitude, but we show that there is a limit to debris-flow bulking set by channel geometry. These findings provide key guidelines for flow volume forecasting, emphasizing the importance of memory effects and the need to resolve both erosion and deposition in predictive models.
机译:通过侵蚀床和银行材料,碎片流量可以大大增大和危险的潜力,但有效的危害评估和减缓目前通过了对侵蚀和沉积动态的了解有限的阻碍。我们收集了6次碎片流动的高分辨率和流动后地形,超过了瑞士阿尔卑斯山的虚幻峡湾的3次碎片流量的流量,具有基于无人机的摄影测量。我们表明,在碎屑流动渗流中的侵蚀和沉积的时空模式是高度可变和动态的。检查水坝强烈控制侵蚀和沉积的空间模式。我们确定了在先前流动期间强沉积的位置强烈侵蚀的记忆效应,反之亦然。从分割的大沉积物输入最初通过分割沉积物和同时上游沉积产生新的通道侵蚀,可能是反水效应的结果。通常认为侵蚀随着碎片流动幅度而增加,但我们表明通过通道几何形状设定的碎屑流量限制。这些调查结果提供了流量预测的关键指南,强调了记忆效应的重要性,并需要在预测模型中解决侵蚀和沉积的必要性。

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