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Hydrodynamic simulation of the effects of stable in-channel large wood on the flood hydrographs of a low mountain range creek, Ore Mountains, Germany

机译:稳定渠道大型木材对低山范围小溪,矿山,德国洪水文化效果的流体动力学模拟

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Large wood (LW) can alter the hydromorphological and hydraulic characteristics of rivers and streams and may act positively on a river's ecology by i.e.?leading to increased habitat availability. On the contrary, floating as well as stable LW is a potential threat for anthropogenic goods and infrastructure during flood events. Concerning the contradiction of potential risks and positive ecological impacts, addressing the physical effects of stable large wood is highly important. Hydrodynamic models offer the possibility of investigating the hydraulic effects of anchored large wood. However, the work and time involved varies between approaches that incorporate large wood in hydrodynamic models. In this study, a two-dimensional hydraulic model is set up for a mountain creek to simulate the hydraulic effects of stable LW and to compare multiple methods of accounting for LW-induced roughness. LW is implemented by changing in-channel roughness coefficients and by adding topographic elements to the model; this is carried out in order to determine which method most accurately simulates observed hydrographs and to provide guidance for future hydrodynamic modelling of stable large wood with two-dimensional models. The study area comprises a 282m long reach of the Ullersdorfer Teichb?chel, a creek in the Ore Mountains (south-eastern Germany). Discharge time series from field experiments allow for a validation of the model outputs with field observations with and without stable LW. We iterate in-channel roughness coefficients to best fit the mean simulated and observed flood hydrographs with and without LW at the downstream reach outlet. As an alternative approach for modelling LW-induced effects, we use simplified discrete topographic elements representing individual LW elements in the channel. In general, the simulations reveal a high goodness of fit between the observed flood hydrographs and the model results without and with stable in-channel LW. The best fit of the simulation and mean observed hydrograph with in-channel LW can be obtained when increasing in-channel roughness coefficients throughout the reach instead of an increase at LW positions only. The best fit in terms of the hydrograph's general shape can be achieved by integrating discrete elements into the calculation mesh. The results illustrate that the mean observed hydrograph can be satisfactorily modelled using an adjustment of roughness coefficients. In conclusion, a time-consuming and work-intensive mesh manipulation is suitable for analysing the more detailed effects of stable LW on a small spatio-temporal scale where high precision is required. In contrast, the reach-wise adjustment of in-channel roughness coefficients seems to provide similarly accurate results on the reach scale and, thus, could be helpful for practical applications of model-based impact assessments of stable LW on flood hydrographs of small streams and rivers.
机译:大型木材(LW)可以改变河流和溪流的水样和水力特性,并可通过I.E的生态作用,以增加栖息地可用性。相反,浮动以及稳定的LW是洪水事件期间对人为货物和基础设施的潜在威胁。关于潜在风险的矛盾和积极的生态影响,解决稳定大型木材的物理效果非常重要。流体动力学模型提供了研究锚定大型木材的液压效果的可能性。然而,所涉及的工作和时间在加工在流体动力学模型中的大木材之间的方法之间变化。在这项研究中,为山溪设立了二维液压模型,以模拟稳定LW的液压效果,并比较LW诱导粗糙度的多种算法方法。通过改变信道粗糙度系数并通过向模型添加地形元素来实现LW;这是为了确定哪种方法最精确地模拟观察到的水文,并为未来大型木材与二维模型提供指导。该研究领域包括282米长的Ullersdorfer Teichb?Chel,矿山(德国东南部)的小溪。从现场实验中放电时间序列允许验证模型输出,其中具有稳定的LW的现场观察。我们迭代通道粗糙度系数以最适合下游伸展出口的平均模拟和观察到的洪水文化,而没有LW。作为用于建模LW诱导效果的替代方法,我们使用表示信道中的单个LW元素的简化离散地形元素。通常,模拟揭示了观察到的洪水文化照片和模型结果之间的高性度,而没有稳定的通道内LW。当在整个到达的沟道粗糙度系数增加时,可以获得具有在通道LW的模拟和平均观察水的最佳拟合,而不是仅在LW位置增加。通过将离散元件集成到计算网格中,可以实现在水文中的一般形状方面的最佳拟合。结果表明,使用粗糙系数的调节可以令人满意地建模平均观察到的水文。总之,耗时和工作密集的网格操作适用于分析稳定LW在需要高精度的小时空尺度上更详细的效果。相比之下,通道内粗糙度系数的综合调整似乎提供了类似的准确结果对达额尺度,因此可能有助于对稳定LW的模型的影响评估对小型溪流的洪水文化的实际应用有所帮助河流。

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