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February 22, 2026Geophysical Research Letters0 citationsOpen Access

The Role of Land‐Atmosphere Feedbacks in Midlatitude Wintertime Surface Temperature Variability

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KLKezhou LuGCGang ChenBGBowen Ge

Key Points

  • This research aims to understand how land-atmosphere interactions affect midlatitude winter surface temperature variability.
  • Introduced a new scaling framework for temperature variance incorporating land-atmosphere feedbacks.
  • Compared the new framework to the existing mixing length approach.
  • Conducted model experiments with perturbed circulation and land conditions.
  • Identified that land-atmosphere feedbacks are included in the mixing length approach.
  • Found that longwave radiative damping is a dominant factor in temperature variance under certain conditions.

Abstract

Abstract Accurately representing synoptic near‐surface temperature variability is crucial to predict weather extremes, yet models remain biased. Existing studies primarily attribute wintertime midlatitude near‐surface temperature variability to tropospheric large‐scale advection, assuming minimal land influence. However, nudging the model's circulation toward observations yields little improvement in wintertime temperature variance over Northern Hemisphere land, suggesting that land‐atmosphere interactions also warrant attention. We introduce a new scaling framework for temperature variance that incorporates local land‐atmosphere feedbacks. Comparing our framework to the mixing length approach—which links temperature variance to the meridional temperature gradient and air parcel displacement (mixing length)—shows that land‐atmosphere feedbacks are inherently embedded in the mixing length, a connection previously overlooked. Roles of land–atmosphere feedbacks are evaluated via model experiments with perturbed circulation, land, or both. We find that longwave radiative damping dominates temperature variance responses over meridional temperature gradient when both land and circulation are perturbed.

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Cite This Study

Lu et al. (2026) studied this question.

synapsesocial.com/papers/699a9d8e482488d673cd3787https://doi.org/10.1029/2025gl120713
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