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April 24, 2026Climate of the past1 citationsOpen Access

Weakened miocene temperature response to orbital forcing compared to the modern-day

YZY L ZhangJWJilin WeiZLZhen Li

Key Points

  • This research aims to understand how the Miocene climate's temperature reacts to changes in insolation compared to pre-industrial conditions.
  • Utilized fully coupled climate model simulations
  • Assessed temperature response to different insolation levels
  • Analyzed regional contrasts and feedback mechanisms
  • Miocene temperature response to insolation changes is overall weaker than in pre-industrial conditions.
  • Notable differences include reduced boreal continental sensitivity due to feedback mechanisms.
  • Regional responses show stronger cooling in tropical North Africa and reversed anomalies in the Southern Ocean under low insolation.

Abstract

Abstract. Although orbital signal is widely identified in Miocene proxy records, the climate mechanisms linking insolation changes to regional temperature within this warm, low-ice period remains not well known. Here we use fully coupled climate model simulations to assess temperature response to maximum and minimum boreal summer insolation under Miocene and pre-industrial (PI) conditions. Under both conditions, temperature exhibits broadly anti-phased responses to increased and decreased insolation, but the Miocene response is overall weaker, with regionally dependent contrasts and reduced symmetry between two orbital cases. Three notable Miocene-PI differences emerge: (1) reduced boreal continental sensitivity in the Miocene due to dampened albedo, water-vapor and cloud feedbacks in a warmer, low-ice climate; (2) stronger Miocene cooling over tropical North Africa under high insolation, driven by intensified hydrological and moisture-feedbacks supported by a wider Tethys Sea; (3) reversed Southern Ocean anomalies under low insolation, where poleward-restricted Miocene sea ice enables winter insolation changes to trigger positive ice-albedo feedbacks. These results demonstrate that background climate state strongly modulates orbital-scale responses and provide important context for interpreting Miocene proxy records and long-term changes in Earth's climate sensitivity through the Neogene.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69eb0cb2553a5433e34b5a63https://doi.org/10.5194/cp-22-879-2026
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