LEAP-HI: Fighting Wildfires: A Data-Informed, Physics-Based Computational Framework for Probabilistic Risk Assessment and Mitigation and Emergency Response Management
LEAP-HI: Fighting Wildfires: A Data-Informed, Physics-Based Computational Framework for Probabilistic Risk Assessment and Mitigation and Emergency Response Management
批准号:
1953333
负责人:
Hamed Ebrahimian
金额:
$200.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-09-01 至 2025-08-31
中文摘要
在过去的二十年里,美国野火造成的破坏显著增加。虽然联邦政府在野火扑救上的支出一直在稳步增加,但野火的严重程度也在上升。这个美国繁荣、健康和基础设施领先工程(LEAP-HI)项目的重点是在多个空间和时间尺度上为野火风险管理创建一个总体计算平台。这一愿景将通过在数据分析、计算建模和基于模型的推理领域创建和整合跨学科科学技术来实现。其目标是为实时数字平台开发科学基础,该平台随着新数据的发展而发展,并动态更新区域和社区规模的长期(季节/数月)至短期(数周/数天)提前点火火灾风险,并在火灾前沿近实时预测点火后火灾行为。一旦开发完成,计算平台将通过为决策者提供可操作的信息来提高野火管理过程的效率,以减轻点火前风险和点火后应急响应管理。主要利益相关者和公用事业公司的参与,未来劳动力的准备,以及K-12外展计划是该项目的组成部分。该研究有望提供一个严格的计算方法来量化和预测野火风险。预期的科学进步包括:(一)在不同的空间和时间尺度上进行野火损失概率评估的总体计算平台,随着数据的可用而发展;(二)综合模拟框架,包括野火模型,城市火灾模型和社会经济模型,以预测野火损失的经济和社会损失;(iii)一种新的数据驱动的城市火灾模拟建模方法,以及一种新的野火引起的生活质量变化的经验模型;(iv)新的数据收集模块和先进的数据处理技术,以收集精确的数据,处理和注入不同来源的数据,并量化测量数据的不确定性;以及(v)贝叶斯模型推理框架,用于量化建模不确定性,并通过将新的测量数据模块与野火模型集成来实时更新火灾蔓延。从长远来看,该项目旨在为预测和监测野火风险的整体新计算平台奠定科学基础。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Destruction caused by wildfires in the US has significantly increased in the past two decades. While the federal government’s spending on wildfire fighting has been steadily increasing, wildfire severity has also been on the rise. The focus of this Leading Engineering for America's Prosperity, Health, and Infrastructure (LEAP-HI) project is the creation an overarching computational platform for wildfire risk management at multiple space and time scales. This vision will be accomplished by creating and integrating transdisciplinary scientific techniques in the fields of data analytics, computational modeling, and model-based inference. The objective is to develop scientific foundations for a live digital platform that evolves with new data and dynamically updates the long-term (seasons/months ahead) to short-term (weeks/days ahead) pre-ignition fire risks at regional and community scales, and predicts the post-ignition fire behavior in near-real-time at the fire front. Once developed, the computational platform will increase the efficiency of wildfire management process by providing actionable information to decision-makers for pre-ignition risk mitigation and post-ignition emergency response management. Involvement of key stakeholders and utility companies, preparation of future workforce, and K-12 outreach programs are integral parts of the project.The research promises to provide a rigorous computational approach to quantifying and predicting wildfire risk. Scientific advancements that are anticipated include: (i) an overarching computational platform for probabilistic wildfire loss assessment at different spatial and temporal scales that evolves with data as they become available; (ii) an integrated simulation framework including a wildfire model, urban-fire model, and socioeconomic model to predict the wildfire loss in terms of economic and social losses; (iii) a novel data-driven modeling approach for urban-fire simulation, and a new empirical model for change in quality-of-life (QoL) due to wildfire; (iv) new data collection modules and advanced data processing techniques to collect refined data, process and infuse different sources of data, and quantify uncertainty in the measurement data; and, (v) a Bayesian model inference framework to quantify modeling uncertainties and update the fire spread in ear-real-time by integrating new measurement data modules with the wildfire model. In perspective, the project aims to lay the scientific foundations of a holistic new computational platform to predict and monitor wildfire risk. The resulting technology has the potential to positively influence the wildfire management process, including the development of accurate actuarial strategies.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(6)
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Coupled fire-atmosphere simulation of the 2018 Camp Fire using WRF-Fire
使用 WRF-Fire 对 2018 年营火进行火灾-大气耦合模拟
DOI:
10.1071/wf22013
发表时间:
2023
期刊:
International Journal of Wildland Fire
影响因子:
3.1
作者:
[Shamsaei, Kasra, Juliano, Timothy W., Roberts, Matthew, Ebrahimian, Hamed, Kosovic, Branko, Lareau, Neil P., Taciroglu, Ertugrul]
通讯作者:
Taciroglu, Ertugrul
DOI:
10.3390/rs14061447
发表时间:
2022-03-01
期刊:
REMOTE SENSING
影响因子:
5
作者:
[DeCastro, Amy L., Juliano, Timothy W., Balch, Jennifer K.]
通讯作者:
Balch, Jennifer K.
Tracking Wildfires With Weather Radars
使用天气雷达追踪野火
DOI:
10.1029/2021jd036158
发表时间:
2022
期刊:
Journal of Geophysical Research: Atmospheres
影响因子:
--
作者:
[Lareau, Neil P., Donohoe, Amanda, Roberts, Matthew, Ebrahimian, Hamed]
通讯作者:
Ebrahimian, Hamed
Characterizing the Role of Moisture and Smoke on the 2021 Santa Coloma de Queralt Pyroconvective Event Using WRF‐Fire
使用 WRF–Fire 表征水分和烟雾对 2021 年圣科洛马德奎拉尔特火对流事件的作用
DOI:
10.1029/2022ms003288
发表时间:
2023
期刊:
Journal of Advances in Modeling Earth Systems
影响因子:
6.8
作者:
[Eghdami, Masih, Juliano, Timothy W., Jiménez, Pedro A., Kosovic, Branko, Castellnou, Marc, Kumar, Rajesh, Vila‐Guerau de Arellano, Jordi]
通讯作者:
Vila‐Guerau de Arellano, Jordi
The Role of Fuel Characteristics and Heat Release Formulations in Coupled Fire-Atmosphere Simulation
燃料特性和放热配方在火焰-大气耦合模拟中的作用
DOI:
10.3390/fire6070264
发表时间:
2023
期刊:
Fire
影响因子:
--
作者:
[Shamsaei, Kasra, Juliano, Timothy W., Roberts, Matthew, Ebrahimian, Hamed, Lareau, Neil P., Rowell, Eric, Kosovic, Branko]
通讯作者:
Kosovic, Branko
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