Automation and Coupling of Models for Coastal Flood Forecasting in South Texas

C. Hernandez, S. Davila, Martin Flores, J. Ho, Dong-Chul Kim
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Abstract

Forecasting natural disasters such as inundations can be of great help for emergency bodies and first responders. In coastal communities, this risk is often associated with storm surge. To produce flood forecasts for coastal communities, a system must incorporate models capable of simulating such events based on forecasted weather conditions. In this work, a system for forecasting inundations based predominantly on storm surge is explored. An automation and a coupling strategy were implemented to produce forecasted flood maps automatically. The system leverages an ocean circulation model and a channel water flow model to estimate flood events in South Texas specially alongside the Lower Laguna Madre. The system around the models is implemented using Python and the meteorological forcing input is obtained from weather forecasting models maintained by the National Oceanic and Atmospheric Administration. The forecasted weather data retrieval, data processing and automation of the models are successful, and the complete stack of software can be deployed locally or in cloud solutions to accelerate computations. The resulting system performs as expected and successfully produces flood maps automatically providing vital information for flood emergency management in coastal communities.
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德克萨斯州南部沿海洪水预报模型的自动化与耦合
预测洪水等自然灾害对应急机构和急救人员有很大帮助。在沿海社区,这种风险通常与风暴潮有关。为了对沿海社区进行洪水预报,系统必须包含能够根据预测的天气条件模拟此类事件的模型。在这项工作中,探索了一个主要基于风暴潮的洪水预报系统。实现了自动化和耦合策略,自动生成洪水预报图。该系统利用海洋环流模型和河道水流模型来估计德克萨斯州南部的洪水事件,特别是下拉古纳马德雷沿岸的洪水事件。模型周围的系统是使用Python实现的,气象强迫输入是从美国国家海洋和大气管理局维护的天气预报模型中获得的。预测天气数据检索、数据处理和模型自动化是成功的,完整的软件堆栈可以在本地或云解决方案中部署,以加速计算。由此产生的系统按预期运行,并成功生成洪水地图,自动为沿海社区的洪水应急管理提供重要信息。
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