Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes

Arctic land-cover changes induced by recent global climate change (e.g., expansion of woody vegetation into tundra and effects of permafrost degradation) are expected to generate further feedbacks to the climate system. Past changes can be used to assess our understanding of feedback mechanisms thro...

Full description

Bibliographic Details
Main Authors: P. J. Bartlein, M. E. Edwards, S. W. Hostetler, S. L. Shafer, P. M. Anderson, L. B. Brubaker, A. V. Lozhkin
Format: Article
Language:English
Published: Copernicus Publications 2015-09-01
Series:Climate of the Past
Online Access:http://www.clim-past.net/11/1197/2015/cp-11-1197-2015.pdf
id doaj-37f74e34a0e846bf9d5746d7d593d972
record_format Article
collection DOAJ
language English
format Article
sources DOAJ
author P. J. Bartlein
M. E. Edwards
S. W. Hostetler
S. L. Shafer
P. M. Anderson
L. B. Brubaker
A. V. Lozhkin
spellingShingle P. J. Bartlein
M. E. Edwards
S. W. Hostetler
S. L. Shafer
P. M. Anderson
L. B. Brubaker
A. V. Lozhkin
Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes
Climate of the Past
author_facet P. J. Bartlein
M. E. Edwards
S. W. Hostetler
S. L. Shafer
P. M. Anderson
L. B. Brubaker
A. V. Lozhkin
author_sort P. J. Bartlein
title Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes
title_short Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes
title_full Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes
title_fullStr Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes
title_full_unstemmed Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changes
title_sort early-holocene warming in beringia and its mediation by sea-level and vegetation changes
publisher Copernicus Publications
series Climate of the Past
issn 1814-9324
1814-9332
publishDate 2015-09-01
description Arctic land-cover changes induced by recent global climate change (e.g., expansion of woody vegetation into tundra and effects of permafrost degradation) are expected to generate further feedbacks to the climate system. Past changes can be used to assess our understanding of feedback mechanisms through a combination of process modeling and paleo-observations. The subcontinental region of Beringia (northeastern Siberia, Alaska, and northwestern Canada) was largely ice-free at the peak of deglacial warming and experienced both major vegetation change and loss of permafrost when many arctic regions were still ice covered. The evolution of Beringian climate at this time was largely driven by global features, such as the amplified seasonal cycle of Northern Hemisphere insolation and changes in global ice volume and atmospheric composition, but changes in regional land-surface controls, such as the widespread development of thaw lakes, the replacement of tundra by deciduous forest or woodland, and the flooding of the Bering–Chukchi land bridge, were probably also important. We examined the sensitivity of Beringia's early Holocene climate to these regional-scale controls using a regional climate model (RegCM). Lateral and oceanic boundary conditions were provided by global climate simulations conducted using the GENESIS V2.01 atmospheric general circulation model (AGCM) with a mixed-layer ocean. We carried out two present-day simulations of regional climate – one with modern and one with 11 ka geography – plus another simulation for 6 ka. In addition, we performed five ~ 11 ka climate simulations, each driven by the same global AGCM boundary conditions: (i) <i>11 ka Control</i>, which represents conditions just prior to the major transitions (exposed land bridge, no thaw lakes or wetlands, widespread tundra vegetation), (ii) sea-level rise, which employed present-day continental outlines, (iii) vegetation change, with deciduous needleleaf and deciduous broadleaf boreal vegetation types distributed as suggested by the paleoecological record, (iv) thaw lakes, which used the present-day distribution of lakes and wetlands, and (v) post-11 ka <i>All</i>, incorporating all boundary conditions changed in experiments (ii)–(iv). We find that regional-scale controls strongly mediate the climate responses to changes in the large-scale controls, amplifying them in some cases, damping them in others, and, overall, generating considerable spatial heterogeneity in the simulated climate changes. The change from tundra to deciduous woodland produces additional widespread warming in spring and early summer over that induced by the 11 ka insolation regime alone, and lakes and wetlands produce modest and localized cooling in summer and warming in winter. The greatest effect is the flooding of the land bridge and shelves, which produces generally cooler conditions in summer but warmer conditions in winter and is most clearly manifest on the flooded shelves and in eastern Beringia. By 6 ka continued amplification of the seasonal cycle of insolation and loss of the Laurentide ice sheet produce temperatures similar to or higher than those at 11 ka, plus a longer growing season.
url http://www.clim-past.net/11/1197/2015/cp-11-1197-2015.pdf
work_keys_str_mv AT pjbartlein earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
AT meedwards earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
AT swhostetler earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
AT slshafer earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
AT pmanderson earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
AT lbbrubaker earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
AT avlozhkin earlyholocenewarminginberingiaanditsmediationbysealevelandvegetationchanges
_version_ 1725558243854385152
spelling doaj-37f74e34a0e846bf9d5746d7d593d9722020-11-24T23:25:19ZengCopernicus PublicationsClimate of the Past1814-93241814-93322015-09-011191197122210.5194/cp-11-1197-2015Early-Holocene warming in Beringia and its mediation by sea-level and vegetation changesP. J. Bartlein0M. E. Edwards1S. W. Hostetler2S. L. Shafer3P. M. Anderson4L. B. Brubaker5A. V. Lozhkin6Department of Geography, University of Oregon, Eugene, Oregon, USAGeography and Environment, University of Southampton, Southampton, UKU.S. Geological Survey, Corvallis, Oregon, USAU.S. Geological Survey, Corvallis, Oregon, USAQuaternary Research Center, University of Washington, Seattle, Washington, USASchool of Environmental and Forest Sciences, University of Washington, Seattle, Washington, USANortheast Interdisciplinary Research Institute, Far East Branch of the Russian Academy of Sciences, Magadan, RussiaArctic land-cover changes induced by recent global climate change (e.g., expansion of woody vegetation into tundra and effects of permafrost degradation) are expected to generate further feedbacks to the climate system. Past changes can be used to assess our understanding of feedback mechanisms through a combination of process modeling and paleo-observations. The subcontinental region of Beringia (northeastern Siberia, Alaska, and northwestern Canada) was largely ice-free at the peak of deglacial warming and experienced both major vegetation change and loss of permafrost when many arctic regions were still ice covered. The evolution of Beringian climate at this time was largely driven by global features, such as the amplified seasonal cycle of Northern Hemisphere insolation and changes in global ice volume and atmospheric composition, but changes in regional land-surface controls, such as the widespread development of thaw lakes, the replacement of tundra by deciduous forest or woodland, and the flooding of the Bering–Chukchi land bridge, were probably also important. We examined the sensitivity of Beringia's early Holocene climate to these regional-scale controls using a regional climate model (RegCM). Lateral and oceanic boundary conditions were provided by global climate simulations conducted using the GENESIS V2.01 atmospheric general circulation model (AGCM) with a mixed-layer ocean. We carried out two present-day simulations of regional climate – one with modern and one with 11 ka geography – plus another simulation for 6 ka. In addition, we performed five ~ 11 ka climate simulations, each driven by the same global AGCM boundary conditions: (i) <i>11 ka Control</i>, which represents conditions just prior to the major transitions (exposed land bridge, no thaw lakes or wetlands, widespread tundra vegetation), (ii) sea-level rise, which employed present-day continental outlines, (iii) vegetation change, with deciduous needleleaf and deciduous broadleaf boreal vegetation types distributed as suggested by the paleoecological record, (iv) thaw lakes, which used the present-day distribution of lakes and wetlands, and (v) post-11 ka <i>All</i>, incorporating all boundary conditions changed in experiments (ii)–(iv). We find that regional-scale controls strongly mediate the climate responses to changes in the large-scale controls, amplifying them in some cases, damping them in others, and, overall, generating considerable spatial heterogeneity in the simulated climate changes. The change from tundra to deciduous woodland produces additional widespread warming in spring and early summer over that induced by the 11 ka insolation regime alone, and lakes and wetlands produce modest and localized cooling in summer and warming in winter. The greatest effect is the flooding of the land bridge and shelves, which produces generally cooler conditions in summer but warmer conditions in winter and is most clearly manifest on the flooded shelves and in eastern Beringia. By 6 ka continued amplification of the seasonal cycle of insolation and loss of the Laurentide ice sheet produce temperatures similar to or higher than those at 11 ka, plus a longer growing season.http://www.clim-past.net/11/1197/2015/cp-11-1197-2015.pdf