Uncrewed Aerial Vehicle-Based Multispectral Imagery for River Soil Monitoring

IF 3 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES Journal of Flood Risk Management Pub Date : 2025-03-06 DOI:10.1111/jfr3.70027
Michael H. Gardner, Nina Stark, Kevin Ostfeld, Nicola Brilli, Anne Lemnitzer
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Abstract

Flood hazards pose a significant threat to communities and ecosystems alike. Triggered by various factors such as heavy rainfall, storm surges, or rapid snowmelt, floods can wreak havoc by inundating low-lying areas and overwhelming infrastructure systems. Understanding the feedback between local geomorphology and sediment transport dynamics in terms of the extent and evolution of flood-related damage is necessary to build a system-level description of flood hazard. In this research, we present a multispectral imagery-based approach to broadly map sediment classes and how their spatial extent and relocation can be monitored. The methodology is developed and tested using data collected in the Ahr Valley in Germany during post-disaster reconnaissance of the July 2021 Western European flooding. Using uncrewed aerial vehicle-borne multispectral imagery calibrated with laboratory-based soil characterization, we illustrate how fine and coarse-grained sediments can be broadly identified and mapped to interpret their transport behavior during flood events and their role regarding flood impacts on infrastructure systems. The methodology is also applied to data from the 2022 flooding of the Yellowstone River, Gardiner, Montana, in the United States to illustrate the transferability of the developed approach across environments. Here, we show how the distribution of soil classes can be mapped remotely and rapidly, and how this facilitates understanding their influence on local flow patterns to induce bridge abutment scour. The limitations and potential expansions to the approach are also discussed.

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基于无人机的河流土壤多光谱影像监测
洪水灾害对社区和生态系统都构成重大威胁。洪水由多种因素引发,如暴雨、风暴潮或快速融雪,洪水会淹没低洼地区和压倒基础设施系统,造成严重破坏。了解当地地貌和泥沙输运动力学之间在洪水相关损害程度和演变方面的反馈,是建立洪水灾害系统级描述的必要条件。在这项研究中,我们提出了一种基于多光谱图像的方法来广泛地绘制沉积物类别,以及如何监测它们的空间范围和迁移。该方法是利用2021年7月西欧洪水灾后侦察期间在德国Ahr河谷收集的数据开发和测试的。通过使用实验室土壤表征校准的无人驾驶飞行器机载多光谱图像,我们展示了如何广泛识别和绘制细粒度和粗粒度沉积物,以解释它们在洪水事件中的运输行为及其对基础设施系统的影响。该方法还应用于2022年美国蒙大拿州加德纳市黄石河洪水的数据,以说明开发的方法在不同环境中的可移植性。在这里,我们展示了如何远程和快速地绘制土壤类别的分布,以及这如何有助于理解它们对局部流动模式的影响,从而诱发桥台冲刷。本文还讨论了该方法的局限性和可能的扩展。
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来源期刊
Journal of Flood Risk Management
Journal of Flood Risk Management ENVIRONMENTAL SCIENCES-WATER RESOURCES
CiteScore
8.40
自引率
7.30%
发文量
93
审稿时长
12 months
期刊介绍: Journal of Flood Risk Management provides an international platform for knowledge sharing in all areas related to flood risk. Its explicit aim is to disseminate ideas across the range of disciplines where flood related research is carried out and it provides content ranging from leading edge academic papers to applied content with the practitioner in mind. Readers and authors come from a wide background and include hydrologists, meteorologists, geographers, geomorphologists, conservationists, civil engineers, social scientists, policy makers, insurers and practitioners. They share an interest in managing the complex interactions between the many skills and disciplines that underpin the management of flood risk across the world.
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