Modulation of precession-forced Asian–African monsoon and arid climate variability by obliquity

Precession and obliquity play vital roles in orbital-scale climate change. However, their combined effects remain poorly understood. In this study, we examine how obliquity modulates precession-driven climate responses across Asian–African monsoon and arid regions (AAMAR). Results demonstrate that under high obliquity, the minimum-precession-induced precipitation increase is weakened in the Asian–African monsoon regions but enhanced in the Asian–African arid regions. The changes in precipitation responses over Africa and West Asia are largely explained by an enhanced northward displacement of the regional Hadley circulation, which shifts the zone of precipitation increase northward from monsoon regions into adjacent northern arid regions. Additionally, intensified negative cloud-radiative feedback and adiabatic cooling under high obliquity contribute to attenuated Tibetan Plateau heating, further modulating hydroclimate responses over Asia. Overall, our findings reveal that obliquity modulates low-latitude climate sensitivity to precession and provide new insights into the spatially heterogeneous responses of the climate system to orbital forcing.

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Publication Details

Journal
npj Climate and Atmospheric Science
Published
2026-10-07
DOI
https://doi.org/10.1038/s41612-026-01566-7
Primary Topic
Geology and Paleoclimatology Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Modulation of precession-forced Asian–African monsoon and arid climate variability by obliquity

Xinzhou Li, Yingying Sha, Jing Lei, Heng Zhang et al.
npj Climate and Atmospheric Science
Geology and Paleoclimatology Research
article

Modulation of precession-forced Asian–African monsoon and arid climate variability by obliquity

Xinzhou Li, Yingying Sha, Jing Lei, Heng Zhang, Zhengguo Shi
article en

Abstract

Precession and obliquity play vital roles in orbital-scale climate change. However, their combined effects remain poorly understood. In this study, we examine how obliquity modulates precession-driven climate responses across Asian–African monsoon and arid regions (AAMAR). Results demonstrate that under high obliquity, the minimum-precession-induced precipitation increase is weakened in the Asian–African monsoon regions but enhanced in the Asian–African arid regions. The changes in precipitation responses over Africa and West Asia are largely explained by an enhanced northward displacement of the regional Hadley circulation, which shifts the zone of precipitation increase northward from monsoon regions into adjacent northern arid regions. Additionally, intensified negative cloud-radiative feedback and adiabatic cooling under high obliquity contribute to attenuated Tibetan Plateau heating, further modulating hydroclimate responses over Asia. Overall, our findings reveal that obliquity modulates low-latitude climate sensitivity to precession and provide new insights into the spatially heterogeneous responses of the climate system to orbital forcing.

npj Climate and Atmospheric Science
Chinese Academy of Sciences (CN), Institute of Earth Environment (CN), Xi'an Jiaotong University (CN)
National Natural Science Foundation of China
Climate action
Openalex Percentile: Top 19%
Geology and Paleoclimatology Research
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Modulation of precession-forced Asian–African monsoon and arid climate variability by obliquity — Xinzhou Li, Yingying Sha, et al. · npj Climate and Atmospheric Science (2026) | TGRS Research Map | TGRS