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Modeling wildfire spread in wildland-industrial interfaces using dynamic Bayesian network

机译:使用动态贝叶斯网络对野火-工业界中的野火蔓延进行建模

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摘要

Global warming and the subsequent increase in the frequency and severity of wildfires demand for specialized risk assessment and management methodologies to cope with the ever-increasing risk of wildfires in wildland-industrial interfaces (WIIs). Wildfires can jeopardize the safety and integrity of industrial plants, and trigger secondary fires and explosions especially in the case of process plants where large inventory of combustible and flammable substances is present. In the present study, by modeling the WII as a two dimensional lattice, we have developed an innovative methodology for modeling and assessing the risk of wildfire spread in WIIs by combining dynamic Bayesian network and wildfire behavior prediction models. The developed methodology models the spatial and temporal spread of fire, based on the most probable path of fire, both in the wildland and in the industrial area.
机译:全球变暖以及随后野火发生的频率和严重性增加,因此需要专门的风险评估和管理方法,以应对野外工业界(WII)中野火的不断增加的风险。野火会危害工厂的安全性和完整性,并引发二次火灾和爆炸,尤其是对于存在大量可燃和易燃物质库存的加工厂而言。在本研究中,通过将WII建模为二维晶格,我们通过结合动态贝叶斯网络和野火行为预测模型,开发了一种创新的方法来建模和评估WII中野火传播的风险。所开发的方法基于野外和工业区中最可能的火灾路径,模拟了火灾的时空分布。

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