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Enhancing sediment flux control and natural hazard risk mitigation through a structured conceptual planning approach

机译:通过结构化的概念规划方法加强对泥沙通量的控制和减轻自然灾害风险

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Sediment fluxes from mountain rivers contribute to shape the geomorphologic features of lowland rivers and to establish the physical basis for an optimal set of ecosystem functions and related services to people. Through significant public funding, the hydro-morphological regimes of mountain rivers in the European Alps have been progressively altered over the last century, with the aim to provide a safe dwelling space, to boost transport, mobility and to support economic growth. We claim that the underlying planning weaknesses contribute to determine these inefficient resource allocations, since flood risk is still high and the ecosystem services are far from being optimal. Hence, with the overall aim to enhance sediment flux control and hazard risk mitigation in such heavily modified alpine streams, we propose a structured design workflow which guides the planner through system analysis and synthesis. As a first step the proposed workflow sets the relevant planning goals and assesses the protection structure functionality. Then a methodology is proposed to achieve the goals. This methodology consists in characterising the hydrologic basin of interest and the sediment availability and determining the sediment connectivity to channels. The focus is set on the detailed analysis of existing river cross sections where the sediment continuity is interrupted (e.g. slit and check dams). By retaining relevant sediment volumes these structures prevent the reactivation of hydro morphological and associated ecological functionalities. Since their actual performance can be unsatisfying with respect to flood risk mitigation (e.g. mainly old structures), we introduce specific efficiency indicators as a support for the conceptual design stage to quantify effects related to sediment flux control and risk management. The proposed planning approach is then applied to the Gadria system (stream, slit dam, retention basin and culvert), located in South Tyrol, Italy. This case study shows that design excellence is needed to reestablish the sediment continuity, while keeping flood risk below acceptable levels. Moreover, the detailed hydraulic analyses highlight that the slit dam is oversized and it could be redesigned to improve sediment continuity and to reduce maintenance costs. (C) 2017 Elsevier B.V. All rights reserved.
机译:来自山区河流的沉积物通量有助于塑造低地河流的地貌特征,并为最佳的生态系统功能和对人类的相关服务建立物理基础。通过大量的公共资金,上个世纪以来,欧洲阿尔卑斯山的山区河流水文形态已经发生了变化,目的是提供一个安全的居住空间,促进运输,交通和支持经济增长。我们认为,潜在的规划弱点有助于确定这些低效的资源分配,因为洪水风险仍然很高,而且生态系统服务远非最佳。因此,总体目标是在这种经过大量修改的高山溪流中加强对泥沙流量的控制和减轻灾害风险,我们提出了一种结构化的设计流程,该流程可指导规划者进行系统分析和综合。第一步,建议的工作流程设定相关的计划目标并评估保护结构的功能。然后提出了一种实现目标的方法。该方法包括表征感兴趣的水文盆地和沉积物的可利用性,并确定沉积物与河道的连通性。重点是对沉积物连续性中断的现有河道断面(例如纵缝和止水坝)进行详细分析。通过保留相关的沉积物体积,这些结构可防止水形态和相关生态功能的重新激活。由于它们的实际性能对于减轻洪水风险(例如,主要是旧结构)可能并不令人满意,因此我们引入了特定的效率指标作为概念设计阶段的支持,以量化与泥沙通量控制和风险管理有关的影响。然后,将拟议的规划方法应用于位于意大利南蒂罗尔的加德里亚系统(溪流,裂坝,涵洞和涵洞)。该案例研究表明,要使泥沙保持连续性,同时将洪水风险保持在可接受的水平以下,就需要进行出色的设计。此外,详细的水力分析表明,狭缝坝尺寸过大,可以重新设计,以提高沉积物的连续性并降低维护成本。 (C)2017 Elsevier B.V.保留所有权利。

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