Understanding the Evolution of Global Atmospheric Rivers with Vapor Kinetic Energy Framework

Fuente: arXiv
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Main Authors: Zhang, Aidi, Yang, Da, Ong, Hing, Tan, Zhihong
Format: Preprint
Published: 2025
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author Zhang, Aidi
Yang, Da
Ong, Hing
Tan, Zhihong
author_facet Zhang, Aidi
Yang, Da
Ong, Hing
Tan, Zhihong
contents Atmospheric rivers (ARs) often cause damaging winds, rainfall, and floods. However, the physical mechanisms governing their evolution remain poorly understood. To close this gap, we perform a global Vapor Kinetic Energy (VKE) budget analysis. Using two formulations of VKE, we show that ARs are governed by similar mechanisms regardless of ocean basins. ARs intensify primarily through the conversion of potential energy to kinetic energy (PE-to-KE), with horizontal convergence of vapor kinetic energy providing a secondary contribution in some regions. ARs decay mainly through condensation and turbulent dissipation, while their propagation is governed by the downstream convergence and upstream divergence of vapor kinetic energy. We also find PE-to-KE conversion varies spatially and strengthens in regions of greater baroclinic instability or enhanced topographic lifting, e.g., along North America's west coast. Collectively, these findings demonstrate that the VKE framework provides a powerful diagnostic for how physical processes shape AR evolution and regional variability.
format Preprint
id arxiv_https___arxiv_org_abs_2510_03627
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Understanding the Evolution of Global Atmospheric Rivers with Vapor Kinetic Energy Framework
Zhang, Aidi
Yang, Da
Ong, Hing
Tan, Zhihong
Atmospheric and Oceanic Physics
Atmospheric rivers (ARs) often cause damaging winds, rainfall, and floods. However, the physical mechanisms governing their evolution remain poorly understood. To close this gap, we perform a global Vapor Kinetic Energy (VKE) budget analysis. Using two formulations of VKE, we show that ARs are governed by similar mechanisms regardless of ocean basins. ARs intensify primarily through the conversion of potential energy to kinetic energy (PE-to-KE), with horizontal convergence of vapor kinetic energy providing a secondary contribution in some regions. ARs decay mainly through condensation and turbulent dissipation, while their propagation is governed by the downstream convergence and upstream divergence of vapor kinetic energy. We also find PE-to-KE conversion varies spatially and strengthens in regions of greater baroclinic instability or enhanced topographic lifting, e.g., along North America's west coast. Collectively, these findings demonstrate that the VKE framework provides a powerful diagnostic for how physical processes shape AR evolution and regional variability.
title Understanding the Evolution of Global Atmospheric Rivers with Vapor Kinetic Energy Framework
topic Atmospheric and Oceanic Physics
url https://arxiv.org/abs/2510.03627