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Projected increase in summer heat-dome-like stationary waves over Northwestern North America

Earth Sciences

Projected increase in summer heat-dome-like stationary waves over Northwestern North America

Z. Chen, J. Lu, et al.

This groundbreaking research conducted by Ziming Chen, Jian Lu, Chuan-Chieh Chang, Sandro W. Lubis, and L. Ruby Leung uncovers a startling 95% increase in summer stationary wave amplitude projected for Northwestern North America, primarily due to tropical Pacific heating changes. The findings suggest that heatwave risks in the region may escalate significantly by the end of the century.

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~3 min • Beginner • English
Abstract
Heat-dome-like stationary waves often lead to extreme heat events, such as the unprecedented heatwave in Northwestern North America during the summer of 2021. However, future changes in summer stationary waves over Northwestern North America and the underlying driving factors remain unclear. Here, we investigate the projected changes in the anticyclonic stationary wave circulation over Northwestern North America using data from the Coupled Model Intercomparison Project Phase 6 and diagnose the circulation changes using a stationary wave model. Our findings reveal a significant 95% increase in the summer stationary wave amplitude over Northwestern North America under the high-emission scenario in 2080–2099 relative to 1995–2014. The response is mainly driven by the diabatic heating changes over the tropical Pacific which induce a Rossby wave source in the northeastern tropical Pacific, and further supported by a northward expanded waveguide in North America, both enhancing wave activity flux into the Northwestern North America. The heat-dome-like stationary wave anomaly is expected to heighten the heatwave risk over the region.
Publisher
npj Climate and Atmospheric Science
Published On
Nov 21, 2023
Authors
Ziming Chen, Jian Lu, Chuan-Chieh Chang, Sandro W. Lubis, L. Ruby Leung
Tags
stationary waves
Northwestern North America
CMIP6
high-emission scenario
heatwave risk
diabatic heating
wave activity flux
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