High-resolution simulations unravel intensification mechanisms of pyrocumulonimbus clouds
High-resolution simulations unravel intensification mechanisms of pyrocumulonimbus clouds
Pyrocumulonimbus (pyroCb) firestorms -- wildfire-generated thunderstorms -- can trigger rapid fire spread. However, the multi-physics nature of pyroCb has made their core mechanisms inaccessible to direct observation and previous simulation and prediction efforts. We introduce a new simulation capability with the first high-resolution, fully coupled simulations of a pyroCb, allowing us to unravel its life cycle governed by two opposing mechanisms. We show fuel moisture is an energy sink that attenuates fire intensity rather than fueling clouds, resolving a long-standing debate. Conversely, we identify the driver of rapid intensification: the Self-Amplifying Fire-Induced Recirculation (SAFIR) mechanism, where precipitation-induced downdrafts intensify the parent fire under weak winds. This work provides a new mechanistic framework for pyroCb prediction and demonstrates a transformative computational approach for previously intractable problems in environmental science.
Qing Wang、Cenk Gazen、Matthias Ihme、Robert Carver、Jeffrey B. Parker、Tapio Schneider、Sheide Chammas、Yi-Fan Chen、John Anderson
环境科学理论灾害、灾害防治
Qing Wang,Cenk Gazen,Matthias Ihme,Robert Carver,Jeffrey B. Parker,Tapio Schneider,Sheide Chammas,Yi-Fan Chen,John Anderson.High-resolution simulations unravel intensification mechanisms of pyrocumulonimbus clouds[EB/OL].(2025-07-11)[2025-07-16].https://arxiv.org/abs/2507.01237.点此复制
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