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首页> 外文期刊>International Journal of Wildland Fire >Short-term fire front spread prediction using inverse modelling and airborne infrared images
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Short-term fire front spread prediction using inverse modelling and airborne infrared images

机译:使用逆模型和机载红外图像的短期火锋蔓延预测

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摘要

A wildfire forecasting tool capable of estimating the fire perimeter position sufficiently in advance of the actual fire arrival will assist firefighting operations and optimise available resources. However, owing to limited knowledge of fire event characteristics (e.g. fuel distribution and characteristics, weather variability) and the short time available to deliver a forecast, most of the current models only provide a rough approximation of the forthcoming fire positions and dynamics. The problem can be tackled by coupling data assimilation and inverse modelling techniques. We present an inverse modelling-based algorithm that uses infrared airborne images to forecast short-term wildfire dynamics with a positive lead time. The algorithm is applied to two real-scale mallee-heath shrubland fire experiments, of 9 and 25 ha, successfully forecasting the fire perimeter shape and position in the short term. Forecast dependency on the assimilation windows is explored to prepare the system to meet real scenario constraints. It is envisaged the system will be applied at larger time and space scales.
机译:能够在实际火灾到达之前充分估计火灾周边位置的野火预测工具将有助于灭火操作并优化可用资源。但是,由于对火灾事件特征(例如燃料分布和特征,天气多变性)的了解有限,并且可用于提供预报的时间较短,因此,大多数当前模型仅提供了即将来临的火灾位置和动态的近似值。可以通过结合数据同化和逆建模技术来解决该问题。我们提出了一种基于逆建模的算法,该算法使用红外机载图像来预测具有提前期的短期野火动态。该算法被应用于9到25公顷的两次真实规模的马氏荒地灌木丛生火实验,成功地在短期内预测了火的外围形状和位置。探索对同化窗口的预测依赖性,以准备系统满足实际场景的约束。设想该系统将在更大的时间和空间规模上应用。

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