Literature DB >> 30918401

Mid-latitude net precipitation decreased with Arctic warming during the Holocene.

Cody C Routson1, Nicholas P McKay2, Darrell S Kaufman2, Michael P Erb2, Hugues Goosse3, Bryan N Shuman4, Jessica R Rodysill5, Toby Ault6.   

Abstract

The latitudinal temperature gradient between the Equator and the poles influences atmospheric stability, the strength of the jet stream and extratropical cyclones1-3. Recent global warming is weakening the annual surface gradient in the Northern Hemisphere by preferentially warming the high latitudes4; however, the implications of these changes for mid-latitude climate remain uncertain5,6. Here we show that a weaker latitudinal temperature gradient-that is, warming of the Arctic with respect to the Equator-during the early to middle part of the Holocene coincided with substantial decreases in mid-latitude net precipitation (precipitation minus evapotranspiration, at 30° N to 50° N). We quantify the evolution of the gradient and of mid-latitude moisture both in a new compilation of Holocene palaeoclimate records spanning from 10° S to 90° N and in an ensemble of mid-Holocene climate model simulations. The observed pattern is consistent with the hypothesis that a weaker temperature gradient led to weaker mid-latitude westerly flow, weaker cyclones and decreased net terrestrial mid-latitude precipitation. Currently, the northern high latitudes are warming at rates nearly double the global average4, decreasing the Equator-to-pole temperature gradient to values comparable with those in the early to middle Holocene. If the patterns observed during the Holocene hold for current anthropogenically forced warming, the weaker latitudinal temperature gradient will lead to considerable reductions in mid-latitude water resources.

Year:  2019        PMID: 30918401     DOI: 10.1038/s41586-019-1060-3

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  8 in total

1.  Coupled impacts of sea ice variability and North Pacific atmospheric circulation on Holocene hydroclimate in Arctic Alaska.

Authors:  Ellie Broadman; Darrell S Kaufman; Andrew C G Henderson; Irene Malmierca-Vallet; Melanie J Leng; Jack H Lacey
Journal:  Proc Natl Acad Sci U S A       Date:  2020-12-07       Impact factor: 11.205

2.  Anthropogenic impacts on Late Holocene land-cover change and floristic biodiversity loss in tropical southeastern Asia.

Authors:  Zhuo Zheng; Ting Ma; Patrick Roberts; Zhen Li; Yuanfu Yue; Huanhuan Peng; Kangyou Huang; Ziyun Han; Qiuchi Wan; Yaze Zhang; Xiao Zhang; Yanwei Zheng; Yoshiki Satio
Journal:  Proc Natl Acad Sci U S A       Date:  2021-10-05       Impact factor: 11.205

3.  Applying Infrared Thermography to Soil Surface Temperature Monitoring: Case Study of a High-Resolution 48 h Survey in a Vineyard (Anadia, Portugal).

Authors:  William Frodella; Giacomo Lazzeri; Sandro Moretti; Jacob Keizer; Frank G A Verheijen
Journal:  Sensors (Basel)       Date:  2020-04-25       Impact factor: 3.576

4.  Ancient genomes reveal tropical bovid species in the Tibetan Plateau contributed to the prevalence of hunting game until the late Neolithic.

Authors:  Ningbo Chen; Lele Ren; Linyao Du; Jiawen Hou; Victoria E Mullin; Duo Wu; Xueye Zhao; Chunmei Li; Jiahui Huang; Xuebin Qi; Marco Rosario Capodiferro; Alessandro Achilli; Chuzhao Lei; Fahu Chen; Bing Su; Guanghui Dong; Xiaoming Zhang
Journal:  Proc Natl Acad Sci U S A       Date:  2020-10-19       Impact factor: 11.205

5.  Central Mongolian lake sediments reveal new insights on climate change and equestrian empires in the Eastern Steppes.

Authors:  Julian Struck; Marcel Bliedtner; Paul Strobel; William Taylor; Sophie Biskop; Birgit Plessen; Björn Klaes; Lucas Bittner; Bayarsaikhan Jamsranjav; Gary Salazar; Sönke Szidat; Alexander Brenning; Enkhtuya Bazarradnaa; Bruno Glaser; Michael Zech; Roland Zech
Journal:  Sci Rep       Date:  2022-02-18       Impact factor: 4.379

6.  Holocene seasonal temperature evolution and spatial variability over the Northern Hemisphere landmass.

Authors:  Wenchao Zhang; Haibin Wu; Jun Cheng; Junyan Geng; Qin Li; Yong Sun; Yanyan Yu; Huayu Lu; Zhengtang Guo
Journal:  Nat Commun       Date:  2022-09-10       Impact factor: 17.694

7.  Wavier jet streams driven by zonally asymmetric surface thermal forcing.

Authors:  Woosok Moon; Baek-Min Kim; Gun-Hwan Yang; John S Wettlaufer
Journal:  Proc Natl Acad Sci U S A       Date:  2022-09-12       Impact factor: 12.779

8.  A global database of Holocene paleotemperature records.

Authors:  Darrell Kaufman; Nicholas McKay; Cody Routson; Michael Erb; Basil Davis; Oliver Heiri; Samuel Jaccard; Jessica Tierney; Christoph Dätwyler; Yarrow Axford; Thomas Brussel; Olivier Cartapanis; Brian Chase; Andria Dawson; Anne de Vernal; Stefan Engels; Lukas Jonkers; Jeremiah Marsicek; Paola Moffa-Sánchez; Carrie Morrill; Anais Orsi; Kira Rehfeld; Krystyna Saunders; Philipp S Sommer; Elizabeth Thomas; Marcela Tonello; Mónika Tóth; Richard Vachula; Andrei Andreev; Sebastien Bertrand; Boris Biskaborn; Manuel Bringué; Stephen Brooks; Magaly Caniupán; Manuel Chevalier; Les Cwynar; Julien Emile-Geay; John Fegyveresi; Angelica Feurdean; Walter Finsinger; Marie-Claude Fortin; Louise Foster; Mathew Fox; Konrad Gajewski; Martin Grosjean; Sonja Hausmann; Markus Heinrichs; Naomi Holmes; Boris Ilyashuk; Elena Ilyashuk; Steve Juggins; Deborah Khider; Karin Koinig; Peter Langdon; Isabelle Larocque-Tobler; Jianyong Li; André Lotter; Tomi Luoto; Anson Mackay; Eniko Magyari; Steven Malevich; Bryan Mark; Julieta Massaferro; Vincent Montade; Larisa Nazarova; Elena Novenko; Petr Pařil; Emma Pearson; Matthew Peros; Reinhard Pienitz; Mateusz Płóciennik; David Porinchu; Aaron Potito; Andrew Rees; Scott Reinemann; Stephen Roberts; Nicolas Rolland; Sakari Salonen; Angela Self; Heikki Seppä; Shyhrete Shala; Jeannine-Marie St-Jacques; Barbara Stenni; Liudmila Syrykh; Pol Tarrats; Karen Taylor; Valerie van den Bos; Gaute Velle; Eugene Wahl; Ian Walker; Janet Wilmshurst; Enlou Zhang; Snezhana Zhilich
Journal:  Sci Data       Date:  2020-04-14       Impact factor: 6.444

  8 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.