Growing Pacific Linkage with Western North Atlantic Explosive Cyclogenesis

Abstract

Explosive cyclones (ECs), defined as extratropical cyclones that experience normalized pressure drops of at least 24 hPa in 24 h, are impactful weather events in the North Atlantic sector, but year-to-year changes in the frequency and impacts of these storms are sizeable. To analyze the sources of this interannual variability, we track cases of ECs and dissect them into two spatial groups: those that formed near the east coast of North America (coastal) and those in the north central Atlantic (high latitude). The frequency of high-latitude ECs is strongly correlated with the North Atlantic Oscillation, a well-known feature, whereas coastal EC frequency is statistically linked with an atmospheric wave train emanating from the North Pacific in the last 30 years. This wave train pattern of alternating high and low pressure is associated with heightened upper-level divergence and Eady growth rates along the east coast of North America, likely resulting in a stronger correspondence between the atmospheric wave train and coastal EC frequency. Using coupled model experiments, we show that the tropical and North Pacific oceans are an important factor for this atmospheric wave train and the subsequent enhancement of seasonal baroclinicity in the North Atlantic.

Document Details

Document Type
Pub Defense Publication
Publication Date
Oct 15, 2023
Source ID
10.1175/jcli-d-22-0784.1

Entities

People

  • Jacob Stuivenvolt-allen
  • Jonathan D. D. Meyer
  • Liping Deng
  • Simon S.-y. Wang
  • Yoshimitsu Chikamoto
  • Zachary F. Johnson

Organizations

  • Central Michigan University
  • National Natural Science Foundation of China
  • National Science Foundation
  • Ocean University of China
  • Office of Science
  • Strategic Environmental Research and Development Program
  • United States Bureau of Reclamation
  • Utah State University
  • Yale University

Tags

Fields of Study

  • Environmental science

Readers

  • Atmospheric Science / Meteorology, specifically Wind Wave Turbulence.
  • Atmospheric Science/Meteorology